The selected static frames from the videos for 3DSSPP analysis.
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More than half of the publishers listed alongside IntechOpen (18 out of 30) are Social Science and Humanities publishers. IntechOpen is an exception to this as a leader in not only Open Access content but Open Access content across all scientific disciplines, including Physical Sciences, Engineering and Technology, Health Sciences, Life Science, and Social Sciences and Humanities.
\\n\\nOur breakdown of titles published demonstrates this with 47% PET, 31% HS, 18% LS, and 4% SSH books published.
\\n\\n“Even though ItechOpen has shown the potential of sci-tech books using an OA approach,” other publishers “have shown little interest in OA books.”
\\n\\nAdditionally, each book published by IntechOpen contains original content and research findings.
\\n\\nWe are honored to be among such prestigious publishers and we hope to continue to spearhead that growth in our quest to promote Open Access as a true pioneer in OA book publishing.
\\n\\n\\n\\n
\\n"}]',published:!0,mainMedia:{caption:"IntechOpen Maintains",originalUrl:"/media/original/113"}},components:[{type:"htmlEditorComponent",content:'
Simba Information has released its Open Access Book Publishing 2020 - 2024 report and has again identified IntechOpen as the world’s largest Open Access book publisher by title count.
\n\nSimba Information is a leading provider for market intelligence and forecasts in the media and publishing industry. The report, published every year, provides an overview and financial outlook for the global professional e-book publishing market.
\n\nIntechOpen, De Gruyter, and Frontiers are the largest OA book publishers by title count, with IntechOpen coming in at first place with 5,101 OA books published, a good 1,782 titles ahead of the nearest competitor.
\n\nSince the first Open Access Book Publishing report published in 2016, IntechOpen has held the top stop each year.
\n\n\n\nMore than half of the publishers listed alongside IntechOpen (18 out of 30) are Social Science and Humanities publishers. IntechOpen is an exception to this as a leader in not only Open Access content but Open Access content across all scientific disciplines, including Physical Sciences, Engineering and Technology, Health Sciences, Life Science, and Social Sciences and Humanities.
\n\nOur breakdown of titles published demonstrates this with 47% PET, 31% HS, 18% LS, and 4% SSH books published.
\n\n“Even though ItechOpen has shown the potential of sci-tech books using an OA approach,” other publishers “have shown little interest in OA books.”
\n\nAdditionally, each book published by IntechOpen contains original content and research findings.
\n\nWe are honored to be among such prestigious publishers and we hope to continue to spearhead that growth in our quest to promote Open Access as a true pioneer in OA book publishing.
\n\n\n\n
\n'}],latestNews:[{slug:"intechopen-supports-asapbio-s-new-initiative-publish-your-reviews-20220729",title:"IntechOpen Supports ASAPbio’s New Initiative Publish Your Reviews"},{slug:"webinar-introduction-to-open-science-wednesday-18-may-1-pm-cest-20220518",title:"Webinar: Introduction to Open Science | Wednesday 18 May, 1 PM CEST"},{slug:"step-in-the-right-direction-intechopen-launches-a-portfolio-of-open-science-journals-20220414",title:"Step in the Right Direction: IntechOpen Launches a Portfolio of Open Science Journals"},{slug:"let-s-meet-at-london-book-fair-5-7-april-2022-olympia-london-20220321",title:"Let’s meet at London Book Fair, 5-7 April 2022, Olympia London"},{slug:"50-books-published-as-part-of-intechopen-and-knowledge-unlatched-ku-collaboration-20220316",title:"50 Books published as part of IntechOpen and Knowledge Unlatched (KU) Collaboration"},{slug:"intechopen-joins-the-united-nations-sustainable-development-goals-publishers-compact-20221702",title:"IntechOpen joins the United Nations Sustainable Development Goals Publishers Compact"},{slug:"intechopen-signs-exclusive-representation-agreement-with-lsr-libros-servicios-y-representaciones-s-a-de-c-v-20211123",title:"IntechOpen Signs Exclusive Representation Agreement with LSR Libros Servicios y Representaciones S.A. de C.V"},{slug:"intechopen-expands-partnership-with-research4life-20211110",title:"IntechOpen Expands Partnership with Research4Life"}]},book:{item:{type:"book",id:"5291",leadTitle:null,fullTitle:"Metal-Organic Frameworks",title:"Metal-Organic Frameworks",subtitle:null,reviewType:"peer-reviewed",abstract:"The emerging and interesting field of MOF encouraged us to bring forth the book titled ''Metal Organic Frameworks''. The book is divided into three sections. Section A consists of introduction, Section B comprises the synthesis and characterization techniques, and Section C is dedicated to the applications of MOFs. The book would be useful for scientists and researchers interested in the field of MOFs.",isbn:"978-953-51-2663-8",printIsbn:"978-953-51-2662-1",pdfIsbn:"978-953-51-6680-1",doi:"10.5772/61907",price:119,priceEur:129,priceUsd:155,slug:"metal-organic-frameworks",numberOfPages:166,isOpenForSubmission:!1,isInWos:null,isInBkci:!1,hash:"11a4acb20c880870e43c6f9dcf71e31e",bookSignature:"Fahmina Zafar and Eram Sharmin",publishedDate:"October 12th 2016",coverURL:"https://cdn.intechopen.com/books/images_new/5291.jpg",numberOfDownloads:18971,numberOfWosCitations:51,numberOfCrossrefCitations:18,numberOfCrossrefCitationsByBook:3,numberOfDimensionsCitations:55,numberOfDimensionsCitationsByBook:5,hasAltmetrics:1,numberOfTotalCitations:124,isAvailableForWebshopOrdering:!0,dateEndFirstStepPublish:"November 12th 2015",dateEndSecondStepPublish:"December 3rd 2015",dateEndThirdStepPublish:"March 22nd 2016",dateEndFourthStepPublish:"June 20th 2016",dateEndFifthStepPublish:"July 20th 2016",currentStepOfPublishingProcess:5,indexedIn:"1,2,3,4,5,6,7",editedByType:"Edited by",kuFlag:!1,featuredMarkup:null,editors:[{id:"89672",title:"Dr.",name:"Fahmina",middleName:null,surname:"Zafar",slug:"fahmina-zafar",fullName:"Fahmina Zafar",profilePictureURL:"https://mts.intechopen.com/storage/users/89672/images/system/89672.png",biography:"Dr. Fahmina Zafar is a senior researcher in the Department of Chemistry, Jamia Millia Islamia (JMI), New Delhi, India. She received her MSc and Ph.D. in Chemistry from JMI in 1999 and 2006, respectively. She has worked as a principal investigator for the Department of Science and Technology, Women Scientists Scheme, Government of India; a postdoctoral fellow for University Grant Commission India; and a research associate in the Scientist\\'s Pool Scheme of the Council of Scientific and Industrial Research, India. Dr. Zafar has four patents, fifty-six peer-reviewed papers in reputed journals, eight books, and twenty-seven book chapters with international publishers to her credit. She has presented more than fifty research papers at national and international conferences. Her research work involves the development of bio-based polymers, metallopolymers, organic-inorganic hybrids, coordination polymers, and nanocomposites for the green environment in different fields including adsorption, antimicrobial, and corrosion-protective applications.",institutionString:"Jamia Millia Islamia",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"8",totalChapterViews:"0",totalEditedBooks:"5",institution:{name:"Jamia Millia Islamia",institutionURL:null,country:{name:"India"}}}],equalEditorOne:null,equalEditorTwo:null,equalEditorThree:null,coeditorOne:{id:"107375",title:"Dr.",name:"Eram",middleName:null,surname:"Sharmin",slug:"eram-sharmin",fullName:"Eram Sharmin",profilePictureURL:"https://mts.intechopen.com/storage/users/107375/images/system/107375.jpeg",biography:'Dr. Eram Sharmin is an Associate Professor at the Department of Pharmaceutical Chemistry, College of Pharmacy, Umm Al-Qura University, Makkah, Saudi Arabia. She obtained her Ph.D. degree in Chemistry from Jamia Millia Islamia (JMI) - A Central University, New Delhi, India, in the year 2007. She received her MSc degree in Organic Chemistry, in the year 2000, and BSc degree in Chemistry, in the year 1998, from Aligarh Muslim University (AMU), Aligarh, Uttar Pradesh (UP), India. She has previously worked as Senior Research Associate [Under Scientists’ Pool Scheme, Council of Scientific and Industrial Research (CSIR), New Delhi, India], Research Associate (CSIR, New Delhi), and Senior Research Fellow (CSIR, New Delhi), at Materials Research Laboratory, Department of Chemistry, JMI. She has more than 50 publications in peer-reviewed journals and books and has presented more than 30 research papers in national and international conferences. Her research interests include the development of "green” materials with applications as antimicrobial and protective coatings, films, hydrogels, and packaging materials.',institutionString:"Umm al-Qura University",position:null,outsideEditionCount:0,totalCites:0,totalAuthoredChapters:"6",totalChapterViews:"0",totalEditedBooks:"1",institution:{name:"Umm al-Qura University",institutionURL:null,country:{name:"Saudi Arabia"}}},coeditorTwo:null,coeditorThree:null,coeditorFour:null,coeditorFive:null,topics:[{id:"938",title:"Coordination Chemistry",slug:"coordination-chemistry"}],chapters:[{id:"52190",title:"Introductory Chapter: Metal Organic Frameworks (MOFs)",doi:"10.5772/64797",slug:"introductory-chapter-metal-organic-frameworks-mofs-",totalDownloads:4851,totalCrossrefCites:6,totalDimensionsCites:29,hasAltmetrics:1,abstract:null,signatures:"Eram Sharmin and Fahmina Zafar",downloadPdfUrl:"/chapter/pdf-download/52190",previewPdfUrl:"/chapter/pdf-preview/52190",authors:[{id:"89672",title:"Dr.",name:"Fahmina",surname:"Zafar",slug:"fahmina-zafar",fullName:"Fahmina Zafar"},{id:"107375",title:"Dr.",name:"Eram",surname:"Sharmin",slug:"eram-sharmin",fullName:"Eram Sharmin"}],corrections:null},{id:"52076",title:"Interaction of Small Molecules within Metal Organic Frameworks Studied by In Situ Vibrational Spectroscopy",doi:"10.5772/64906",slug:"interaction-of-small-molecules-within-metal-organic-frameworks-studied-by-in-situ-vibrational-spectr",totalDownloads:2211,totalCrossrefCites:2,totalDimensionsCites:4,hasAltmetrics:0,abstract:"Molecular-level characterization of interaction between small gases and metal organic frameworks (MOFs) is crucial to elucidate the adsorption mechanism and establish the relationship between the structure and chemical features of MOFs with observed adsorptive properties, which ultimately guide the new structure design and synthesis for enhanced functional performance. Among different techniques, vibrational spectroscopy (infrared and Raman), which provides fingerprint of chemical bonds by their vibrational spectra, is one of the most powerful tools to study adsorbate-adsorbent interaction and give rich detailed information for molecular behaviors inside MOFs pores. This chapter reviews a number of exemplary works utilizing vibrational spectroscopy to study the interaction of small molecules with metal organic frameworks.",signatures:"Kui Tan and Yves Jean Chabal",downloadPdfUrl:"/chapter/pdf-download/52076",previewPdfUrl:"/chapter/pdf-preview/52076",authors:[{id:"182024",title:"Dr.",name:"Kui",surname:"Tan",slug:"kui-tan",fullName:"Kui Tan"},{id:"183655",title:"Prof.",name:"Yves",surname:"Chabal",slug:"yves-chabal",fullName:"Yves Chabal"}],corrections:null},{id:"51319",title:"Looking into Metal-Organic Frameworks with Solid-State NMR Spectroscopy",doi:"10.5772/64134",slug:"looking-into-metal-organic-frameworks-with-solid-state-nmr-spectroscopy",totalDownloads:2449,totalCrossrefCites:5,totalDimensionsCites:9,hasAltmetrics:0,abstract:"Nuclear magnetic resonance (NMR) spectroscopy is a powerful tool for characterization of materials. It can detect local structure around selected atomic nuclei and provide information on the dynamics of these nuclei. In case of metal-organic frameworks, NMR spectroscopy can help elucidate the framework structure, locate the molecules adsorbed into the pores, and inspect and characterize the interactions of these molecules with the frameworks. The present chapter discusses selected recent examples of solid-state NMR studies that provide valuable insight into the structure and function of metal-organic frameworks.",signatures:"Gregor Mali",downloadPdfUrl:"/chapter/pdf-download/51319",previewPdfUrl:"/chapter/pdf-preview/51319",authors:[{id:"183097",title:"Prof.",name:"Gregor",surname:"Mali",slug:"gregor-mali",fullName:"Gregor Mali"}],corrections:null},{id:"51425",title:"Molecular Simulations for Adsorption-Based CO2 Separation Using Metal Organic Frameworks",doi:"10.5772/64226",slug:"molecular-simulations-for-adsorption-based-co2-separation-using-metal-organic-frameworks",totalDownloads:2217,totalCrossrefCites:0,totalDimensionsCites:1,hasAltmetrics:0,abstract:"Metal organic frameworks (MOFs) have received significant attention as a new family of nanoporous materials in the last decade. Variations in geometry, size, and chemical functionality of these materials have led to several thousands of different MOF structures. MOFs typically have high porosities, large surface areas, and reasonable thermal and mechanical stabilities. These properties make them ideal adsorbents for adsorption-based gas separations. It is not practically possible to test the adsorption-based gas separation potential of all available MOFs using purely experimental techniques. Molecular simulations can guide experimental studies by providing insights into the gas adsorption and separation mechanisms of MOFs. Several molecular simulation studies have examined adsorption-based CO2 separation using MOFs due to the importance of CO2 capture for clean energy applications. These simulations have been able to identify the MOF having the most promising CO2 separation properties prior to extensive experimental efforts. The aim of this chapter is to address current opportunities and challenges of molecular simulations of MOFs for adsorption-based CO2 separations and to provide an outlook for prospective simulation studies.",signatures:"Seda Keskin",downloadPdfUrl:"/chapter/pdf-download/51425",previewPdfUrl:"/chapter/pdf-preview/51425",authors:[{id:"106387",title:"Prof.",name:"Seda",surname:"Keskin",slug:"seda-keskin",fullName:"Seda Keskin"}],corrections:null},{id:"51884",title:"Classical Density Functional Theory for Fluids Adsorption in MOFs",doi:"10.5772/64632",slug:"classical-density-functional-theory-for-fluids-adsorption-in-mofs",totalDownloads:1789,totalCrossrefCites:0,totalDimensionsCites:1,hasAltmetrics:0,abstract:"The designing of metal organic frameworks (MOFs) requires an efficient method to predict its adsorption properties. The conventional method to do this is molecular simulation, which is time consuming. In contrast, classical density functional theory (CDFT) is a much more efficient tool. Recently, CDFT has been successfully applied to MOF adsorptions. In this chapter, we will introduce the development and the different versions of CDFT and show how to apply CDFT to predict fluid adsorption in MOFs. We have reviewed the recent applications of CDFT in MOF adsorption and mainly focused on material screening. According to the recent developments, it seems CDFT is an efficient and robust tool for material screening; how to deal with more complicated fluids is the challenge of current CDFT.",signatures:"Yu Liu and Honglai Liu",downloadPdfUrl:"/chapter/pdf-download/51884",previewPdfUrl:"/chapter/pdf-preview/51884",authors:[{id:"182639",title:"Dr.",name:"Honglai",surname:"Liu",slug:"honglai-liu",fullName:"Honglai Liu"},{id:"182987",title:"Prof.",name:"Yu",surname:"Liu",slug:"yu-liu",fullName:"Yu Liu"}],corrections:null},{id:"51866",title:"Metal‐Organic Frameworks and their Applications in Hydrogen and Oxygen Evolution Reactions",doi:"10.5772/64657",slug:"metal-organic-frameworks-and-their-applications-in-hydrogen-and-oxygen-evolution-reactions",totalDownloads:2560,totalCrossrefCites:3,totalDimensionsCites:4,hasAltmetrics:0,abstract:"The hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) play a vital role in many energy storage and conversion systems, including water splitting, rechargeable metal‐air batteries, and the unitized regenerative fuel cells. The noble‐metal catalysts based on Pt, Ir, and Au are the best electrocatalysts for the HER/OER, but they suffer from high price and scarcity problems. Therefore, it is urgently necessary to develop efficient, low‐cost, and environment‐friendly non‐noble metal electrocatalysts. Metal‐organic frameworks (MOFs) are crystalline materials with porous network structure. MOFs possess various compositions, large specific surface area, tunable pore structures, and they are easily functionalized. MOFs have been widely studied and applied in many fields, such as gas adsorption/separation, drug delivery, catalysis, magnetism, and optoelectronics. Recently, MOFs‐based electrocatalysts for HER/OER have been rapidly developed. These MOFs‐based catalysts exhibit excellent catalytic performance for HER/OER, demonstrating a promising application prospect in HER/OER. In this chapter, the concept, structure, category, and synthesis of MOFs will be first introduced briefly. Then, the applications of the MOFs‐based catalysts for HER/OER in recent years will be discussed in details. Specially, the synthesis, structure, and catalytic performance for HER/OER of the MOFs‐based catalysts will be emphatically discussed.",signatures:"Fengxiang Yin, Xiao Zhang, Xiaobo He and Hao Wang",downloadPdfUrl:"/chapter/pdf-download/51866",previewPdfUrl:"/chapter/pdf-preview/51866",authors:[{id:"182638",title:"Prof.",name:"FengXiang",surname:"Yin",slug:"fengxiang-yin",fullName:"FengXiang Yin"},{id:"186953",title:"Ms.",name:"Xiao",surname:"Zhang",slug:"xiao-zhang",fullName:"Xiao Zhang"},{id:"186954",title:"Dr.",name:"Xiaobo",surname:"He",slug:"xiaobo-he",fullName:"Xiaobo He"},{id:"186955",title:"Dr.",name:"Hao",surname:"Wang",slug:"hao-wang",fullName:"Hao Wang"}],corrections:null},{id:"51337",title:"Bio-Inspired Metal-Organic Frameworks in the Pharmaceutical World: A Brief Review",doi:"10.5772/64027",slug:"bio-inspired-metal-organic-frameworks-in-the-pharmaceutical-world-a-brief-review",totalDownloads:2895,totalCrossrefCites:2,totalDimensionsCites:7,hasAltmetrics:0,abstract:"One of the great challenges in the pharmaceutical industry is the search for more efficient and cost-effective ways to store and deliver existing drugs. Bio-inspired metal-organic frameworks (BioMOFs) are groundbreaking materials that have recently been explored for drug storage, delivery and controlled release as well as for applications in imaging and sensing for therapeutic and diagnostic. This review presents a brief overview on these materials, and by alluding to a few reported examples, it intends to clearly show the extremely important role that BioMOFs have been playing in the pharmaceutical field.",signatures:"Vânia André and Sílvia Quaresma",downloadPdfUrl:"/chapter/pdf-download/51337",previewPdfUrl:"/chapter/pdf-preview/51337",authors:[{id:"183115",title:"Dr.",name:"Vania",surname:"Andre",slug:"vania-andre",fullName:"Vania Andre"},{id:"187001",title:"MSc.",name:"Sílvia",surname:"Quaresma",slug:"silvia-quaresma",fullName:"Sílvia Quaresma"}],corrections:null}],productType:{id:"1",title:"Edited Volume",chapterContentType:"chapter",authoredCaption:"Edited by"},subseries:null,tags:null},relatedBooks:[{type:"book",id:"2003",title:"Polyurethane",subtitle:null,isOpenForSubmission:!1,hash:"7391b5a0085d7c0aa0a5c75ee6f275b2",slug:"polyurethane",bookSignature:"Fahmina Zafar and Eram Sharmin",coverURL:"https://cdn.intechopen.com/books/images_new/2003.jpg",editedByType:"Edited 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The construction sector is dynamic and usually follows a rigid work schedule. The high number of acute and chronic injuries and illnesses put construction sector as one of the most dangerous workplaces in the United States. Due to the production-oriented nature of the job, exposure to the risk factors is not uncommon in construction related jobs. Opportunity of using the personal protective equipment (PPEs) is not scarce but high production pressure necessitates the workers to focus more on the outcome than a safe procedure.
The author of this chapter has carried out several focus groups in different construction sectors in greater Boston area. In the author’s experience, the workers most of the time, discussed on the issues of the weight of the panels. It is noteworthy that in any focus groups, the workers did not participate well if the facilitator used words like ‘safety’, ‘problem’, ‘research’ or ‘solution’. However, the workers spontaneously participated while they were asked about ‘any concern they can share’ with the facilitator. In such focus groups, the workers were supposed to brainstorm with any possible ideas of implementing or using an assistive device for ceiling installation. Before we learn about the possible solutions, let us have a look at the problems associated with ceiling installation in the following.
The main operation of drywall carpentry is installation of the drywall panels onto the walls and ceilings. Installation of drywall panels is faster and cheaper than plaster walls. The drywall installers lay out the whole interior wall system and ceiling with studs and hang large drywall panels to the ceiling and sidewalls.
Drywall panels consist of a layer of gypsum (often used as building material) between two layers of heavy paper. In commercial applications, the standard sizes are 4 ft. X 8 ft. and 4 ft. X 12 ft. with a 5/8 inch thickness. The usual weight of a 4 ft. X 8 ft. panel is 70 lbs. and that of a 4 ft. X 12 ft. is 105 lb. [1]. The panels used in residential carpentry are 4 ft. X 8 ft. with a thickness of ½ inch.
The main difference between residential and commercial drywall installation is the use of wood studs in residential carpentry instead of lighter metal studs in commercial carpentry. As far as the hanging of the drywall itself is concerned, there are no other significant differences between the two settings.
In the case of ceiling installation, usually a pair of installers lifts the panels to the ceiling while standing on separate ladders. One of the installers continues to hold the panel to the ceiling while the other installer uses the screw gun and affixes the panel permanently on his side. The first installer then releases one of his hands to use the screw gun until the panel becomes attached to the ceiling (Figure 1). In the case of smaller drywall pieces, one installer instead of two carries out the process.
Holding the panel, being on ladder.
For wall installation, the entire 4 ft. X 8 ft. or 4 ft. X 12′ pieces are attached vertically to the wall; this is often carried out by a single installer. For walls more than 12′ high, wall installation might include horizontal attachment of more than one panel.
The main tasks of the drywall installation process, which the workers carry out in a routine sequential order, are as follows [2]:
Lifting the panel.
Handling and carrying the heavy and bulky drywall panels have been cited as exposure sources for the high amount of back and shoulder muscle injuries of drywall carpenters. Handling of heavy drywall pieces was reported by [3], to be associated with more than 40 percent of the overexertion injuries of drywall workers. In this study, more than 15% of total traumatic injuries were muscle overexertion due to lifting of the heavy drywall panels, whereas 37.2% of total traumatic injuries were injuries due to bodily reaction while handling the drywall panels.
Ref. [4] analyzed the four most common techniques (three horizontal and one vertical) used to lift a drywall panel and showed that each lifting technique exerted a minimum of 655 lb. disc compression force on the low back (L5/S1 region) of the workers whether for a 60 lb., 80 lb. or 100 lb. drywall panel. The same study found that low back loading while lifting a 100 lb. drywall panel exceeds 760 lb., the maximum value recommended by NIOSH in the Work Practices Guide for Manual Lifting. All four lifting techniques also involved risk of perturbation in postural balance [5].
Yuan et. Al., [2] found that the average disc compression force during installation of drywall panels exceeded value of 760 lb. (3400 N) disc compression force, set by NIOSH as the recommended action limit. The highest value of disc compression force in this study was found to be 1721 lb. (7748.8 N) and was sustained for an average of 8.5% of the total 8 hour work shift, or around 41 minutes.
PATH method [6, 7], was used to code posture, activities, tools used and materials handled at every moment for at least 3–4 hours every day with a hierarchical taxonomy. Since the drywall installation task is cyclical in nature, we collected data for a week that is absolutely representative of the whole task. We used fixed intervals to make direct observations and coded postures into a PDA.
3DSSPP (3 Dimensional Static Strength Prediction Program) was utilized in order to find out the compressive forces generated at low back and shoulder moments generated in the ceiling installers.
The sequence of static postures was selected while performing the task of ceiling drywall installation. The selected static postures from the task videos were not made at a defined interval of seconds or minutes. Instead, the postures were selected corresponding to the main set of activities. For example, the task of installing the drywall to the ceiling at the intervention phase comprised the following six activities, i) loading the panels to the electrical lift, ii) lifting the panels while being on the lift, iii) raising the panels to the ceiling, iv) holding the panels to the ceiling, v) attaching the panes to the ceiling.
This intervention study was designed as a quasi-experimental study with no control group. The only experimental group consisted of the five drywall installers. To find out a change of exposure
Table 1
Baseline PHASE | Intervention PHASE |
---|---|
Lifting the drywall in overhead arm posture | Sliding the drywall panel to the electrical lift, both arms down |
Carrying the drywall panel in overhead arm posture and stepping on the ladder | Keeping the hands on the drywall panel being raise by the electrical lift |
One feet in air, maintaining the previous posture | The arms are down, maintaining the previous posture |
Holding the drywall panel (overhead arms) to the ceiling, drywall in air | Overhead arms, drywall being lifted to the ceiling and supported by ‘deadman’ |
The selected static frames from the videos for 3DSSPP analysis.
As mentioned earlier, the idea of having the focus groups was to engage the workers to brainstorming sessions in order to find out a solution to their concerns of ceiling/sidewall installation. Some of the ideas that the facilitator of those focus groups brought to the discussion are as follows:
Coupling devices for carrying the panel were already introduced by [8] in order to reduce awkward trunk postures while carrying the drywall panels. Installers were of the opinion that the coupling tools would be suitable for carrying, but could not be used as a help during installation of the panels simply because they lost time for removing the coupling tools from the panel before the installation process.
Although stilts have not been tested as an alternative to the ladders for drywall installers, workers tend to put extra efforts on their lower extremity to balance their gait, which results in limiting their joint mobility and increasing the risk for falling over objects [1, 3, 4, 9]. However, a 2009 study by Pan [5] concluded that if stilts are kept at low height, it enables the workers to maintain a good postural balance. The facilitator made it an open question to be answered by the installers.
Reducing the weight of drywall panels by cutting it into two pieces would increase the task of fastening additional boards and taping additional joints [1]. The facilitator made it an open question for the installers.
The idea of engaging workers in these focus groups were to receive suggestions from them is a useful way to find a solution for a reduction in exposure(s) [10, 11]. These groups gave the workers an opportunity to speak on their work concerns, to collectively discuss advantages or disadvantages of tools and techniques, and to brainstorm solutions to problems.
In two different sites, the workers approached the outcome of the focus group quite differently:
In site 1, the workers wanted to use a narrow piece of panel that is called a ‘deadman’ as evidenced by [12].
In site B, the workers wanted to give a try with the prototype ‘hanger’s helper’ [13] that was fabricated with the idea of the ‘deadman’. We named the prototype ‘hanger’s helper’.
In both of these sites, the workers took the trial and error method, i.e., they would continue with the devices if they like it and they would stop the trial immediately if they do not like it.
Efficacy studies, usually, are those that proves the accuracy of an instrument or assistive devices to the degree it says it will. By that definition, both ‘deadman’ and ‘hanger’s helper’ were ready to be assessed for their efficaciousness in the real field. Effectiveness studies, in construction are those that will prove whether any instrument/assistive device would be effective in making a permanent place in the construction trade. This study did not evaluate the effectiveness.
There were precipitating factors behind the success of implementing the ‘deadman’ and electrical lift as an intervention. The participants of the intervention or the ‘users’ had suggested the ‘deadman’ after perceiving its beneficial use in reducing their overhead arm postures to hold drywall panels to the ceiling. Nevertheless, a brief yet imperative role was played by the safety management crew who gave substantial amount of importance on the safety features of the drywall job at this site. The management was dissatisfied with the potential hazards of the ‘bucketing’ or ‘laddering activities and perceived the electrical lift and ‘deadman’ to be more stable and therefore safer. The spontaneously yielded to provide one of the two electrical lifts (that were present at the site for some electrical work) for ceiling installation and thus, offered a pivotal support to the ‘deadman’ use (Figure 3).
Use of ‘Deadman: narrow piece of panel’.
The ceiling installation task have many physical exposures that are discussed under sections 3 and 4. These physical exposures are present throughout each cycle in case of a cyclical task or throughout all day (in case it is a non-cyclical task). For example, a ceiling drywall installer will go through the same physical exposures (such as heavy handling, overhead arm postures, back and neck stress) for each ceiling panel installation. Assessment of these exposures will give the opportunity to fix parts of the task. These parts would get fixated by modifying different activities. By doing thus, only a small part of the tasks can get rectified, however, the result oftentimes is a huge reduction in the physical exposure level. If exposure to MSD risk factor is reduced by modifying a task or activity, then usually the modified task or activity gets adopted by all the workers in the organization [14, 15, 16]. The next section will describe how and why the exposure was reduced.
The physical exposures and risk factors of drywall installation task were handling and holding more than 50 lbs in air with overhead arm postures while being on a ladder and continuously handling and handling such load. The idea of deadman did reduce some part of the exposure such as holding it with overstretched arm posture while raising it towards the ceiling. However, it is noteworthy that the worker standing on the floor still needed to hold the narrow ‘deadman’ piece with his hand. Deadman is 14 pounds in weight, that is much lighter than the panel weight. As a continuation to this intervention technique, the author was able to implement ‘hanger’s helper’ (Figure 4) which was much stable in its base and could be placed on its own to hold the ceiling. These studies were conducted in real field and through the analysis of ergonomic observations at the pre and post intervention phases in real construction workplace settings, evaluated the efficacy of an assistive device for ceiling installation. Detailed analysis of the panel load effect on low back and shoulder joints of the installers were possible due to direct observation of the ceiling installation task at the real construction sites, through video analysis of the task and a clear picture of the shoulder and low back workload of the installers could be drawn. Prior biomechanical studies conducted in simulated laboratory environment did not evaluate other biomechanical variables such as shoulder moments while holding the drywall panels to the ceiling, placing the panels to the ceiling, using the neck and head while holding the ceiling or while using the screwgun to attach those panels.
Use of ‘hanger’s helper’.
To assess the workers’ perception about any reduction in the exposure of ceiling installation, they were anonymously asked questions about their perception on it. Moreover, workers’ suggestions on further modification of the tool gave an insight to its future evolution. Hence these exposure assessment methods are an important addition in the long run research on future possibilities on marketing stronger and more stable version of the prototype.
The ceiling installers from the beginning of the study, accepted the idea of participatory research. To them it was something that can simultaneously change their work while they are also doing research. Also, they believed that as a workers’ community they could identify what was an important concern, when it became an important concern and what was needed to address the concern. Throughout the installers were of opinion that they loved the interventions, they stated that release of panel loads from their shoulders and neck was the main reason that they liked it. Also, they felt much energetic at work.
The work has examined the physical ergonomic exposures in the ceiling drywall installation task and has established the ergonomic advantage of working with an assistive device during this task. Finding a solution to reduce the exposures in the ceiling installation task was the focus of the study. The initial results were consistent with previous literature that also showed presence of physical exposures such as handling and lifting heavy drywall panels and suggested the high workload as the reason behind the musculoskeletal injury and illness rates of drywall workers. This is the first study that has evaluated the reduction of these exposures of ceiling drywall installation by implementing the ceiling assistive tool as an intervention.
To date, research on drywall carpentry has mostly focused on the workers in simulated working conditions that either analyzed ideal lifting position of the panels or evaluated tools to assist in carrying the panels. This study, through the analysis of ergonomic observations at the on pre and post intervention phases in real construction workplace settings, evaluated the efficacy of an assistive device for ceiling installation and focused on the drywall installers’ during real working conditions at the construction fields, which is rare in drywall installation research.
The main limitation of this dissertation was associated with convenience sampling of sites. As discussed in the introduction section of this dissertation, the difficulty of gaining access to sites did not give much choice other than to focus on a sample of convenience. Thus, the study sites were the only ones tested with the research hypothesis. However, due to high consistency in ceiling installation work, the efficacy results of this study should be reproducible at other sites too.
Participatory involvement continues to be a preferred intervention method to reduce the exposure to musculoskeletal risk factors. The workers feel that they are ‘empowered’ to choose a way of doing the job which makes them more comfortable [17]. This process also makes them able to compare the productivity of the task with the proposed method.
Participatory research can change the lives of the communities as opposed to the academic research. The latter will have a long term effect which can be far away from us. Participatory research has an effect on us while we are doing it. If the research obtains a meaningful data, then an immediate change can be made. The researcher can see the trend and react when community research is obtaining some results and then we can label the change they are having, you can do some permanent changes with it.
Little research on diffusion or adoption of an innovative tool or technique appears to have been conducted in the area of construction intervention. The relative advantage, observability, complexity and compatibility are four of five important criteria that are perceived by the workers in order to decide if an innovation will be adopted by the workers. Despite the explanatory power of perceived attributes, the reason for the scarcity of an investigation might be related to the pre-test phase of an innovation which is kept in confidence for the sake of market research. Future research could bridge this gap by carrying out a thorough qualitative analysis in measuring the five attributes of perception of the relative advantage of an innovation.
Even though power electronics plays a key role for controlling electrical drives for industrial and aerospace applications since 1909, the recent developments and inventions in semiconductors caused the revolution in power electronics field, which results in many converter topologies. For example, there are two types of AC-AC converters, which convert fixed AC voltage and frequency into variable voltage with variable frequency. Figure 1 shows structure of AC-AC converter topologies [1]:
DC link
Direct link
AC-AC power converter topologies.
DC link converter or AC-DC-AC converter has been implemented at industries since 1902 because of its special features. For example, voltage source inverter has following merits:
Easy voltage supply control is possible for VSI.
Low harmonics content exist.
The main demerits of AC-DC-AC converter or DC link converters are as follows: (1) they are not suitable for transients operations because voltage across the large capacitor or large inductor in the circuit cannot be instantly changed [2]; (2) bulky, more weight, and costly. These limitations are overcome by direct AC-AC converters such as cycloconverters and matrix converters [2, 3]. This chapter is about matrix converter [4, 5], and its application is especially for aerospace. The matrix converter is preferred for cycloconverter [6] because of no limitations with respect to obtaining output frequency. The reason is that cycloconverter is limited to offer output frequency of one-third of its input frequency.
\nM. Venturini and A. Alesina invented the matrix converter technology in 1981 [4], and this paper described the fundamentals of matrix converter such as PWM to generate nine pulses with maximum voltage transfer ratio of 0.5 [4, 5]. The main advantages of MC are good sinusoidal input/output waveforms and inherent regeneration capability. The same authors improved the PWM algorithm to get 0.866 voltage transfer ratio with good sinusoidal output waveforms in 1986 [5]. After that, a lot of papers discussed different kinds of modulation schemes for MC [4, 5, 7]. The MC has severe problem with commutating bidirectional switches (BDS); but in 1992, four-step commutation [8, 9] was introduced. In 2001, Yaskawa Electric in Japan made 5.5-kW and 11-kW matrix converters, and now it is developing higher rating of matrix converters such as 22 kW and 45 kW [10] and selling for lift applications. Because of potential advantages of the Matrix Converter, this has been considered for commercial, industrial [11] and aerospace applications [12].
\nThe MC is especially suitable for aerospace applications because of it capability to provide wide range of unrestricted output frequencies which is imposed by it switching frequency.
\nThe aim of More Electric Aircraft (MEA) is to support green technology by replacing other powers usage of aircraft with electrical power usage. The conventional aircraft requires mainly four powers such as electrical power, pneumatic power, hydraulic power, and mechanical power. The concept of MEA is to replace other powers with electrical power using green technologies. This chapter is focused on green technology for aerospace applications such as aircraft surface actuation control systems. The reason is that regenerative power from the MC drive causes stability problems at aircraft power supply. Overcoming this limitation of MC drive is vital. For example, the host drum drive motor (HDDM) regenerates power when the tanker aircraft (TA) refueling hose trails and winds at air. Figure 2 shows circuit of the tanker aircraft with regeneration control circuit (RCC), which is used to dissipate regenerative power of MC drive using proposed methods.
\nTanker aircraft with RCC.
The host drum drive system (HDDS), which is controlled by Refuelling Control Unit (RCU) and Aeronautical Radio Incorporated Commands (ARINC), controls refueling hose and has three units such as motor control unit (MCU), dump resistor pack (DRP), and two motors. The schematic circuit of HDDS of TA is depicted in Figure 3.
\nSchematic of host drum drive system of TA.
Regeneration occurs only whenever refueling hose winds and trails and this action is commanded by MCU with RCU. It means that the MCU supervises direction of motors based on input from RCU commands. Hence, HDDS must dissipate the regenerated power; otherwise, it can cause below mentioned problems:
The input supply to HDDS will be increased during regeneration.
There is possibility of deactivation of HDDS system because of instability in the input supply of HDDS.
The HDDS is using DC link converter, which is not favorable to transient operations of HDDS drive, and this system is bulky and more weight, which are not desirable characteristics for aircraft. The MC drive is proposed to address above problems. However, inherent regeneration capability of matrix converter limits itself being used for above application because bidirectional switches directly fed back to regenerated power to aircraft input power supply without requiring any additional power electronic components.
\nAccording to aerospace power quality specifications, this regeneration onto aircraft input power supply must be limited. For this reason, avoidance of regeneration is vital for aircraft surface actuation systems of aircraft. Hence, to avoid regeneration in the matrix converter drive, three novel methods are proposed:
Bidirectional switch (BDS) method
Input power clamp (IPC) method
Standard clamp circuit (SCC) method
To detect regeneration in MC drive, two novel techniques are proposed:
Power comparison (PC) technique
Input voltage reference (IVR) technique
Each and every method has its own regeneration control circuit (RCC). For example, RCC for BDS method consists of three bidirectional switches (BDS) in series with three resistors, and this setup is connected across small input filter of MC drive. The RCC for IPC method requires one conventional uncontrolled six-pulse rectifier and a unidirectional switch (UDS) in series with a resistor, and this setup is connected in between input power supply and small input filter of MC. SCC method does not require additional components, which means that no separate RCC is required to do the same action.
\nThe simulation results prove that the matrix converter is a suitable alternative to conventional HDDS converter topologies. The BDS method is experimentally adopted to verify the proposed concept by laboratory prototype matrix converter, which is built at Smiths Aerospace laboratory (later called GE Aviation laboratory) in University of Nottingham. This MEA project strongly supports the green environment by adopting abovementioned green technologies to obtain reduced aircraft emissions.
\nMatrix converter consists of nine bidirectional switches arranged in 3 × 3 as shown in Figure 4. This is called all silicon solution [13]. The input phases (A, B, C) can be connected to output phases (a, b, c) for any switching period of time using bidirectional switches. The switches are controlled in such a way that the average output voltage is a sinusoidal waveform of the desired frequency and amplitude.
\nThe general structure of the conventional MC.
The matrix converter consists of nine bidirectional switches with 29 (512) possible switching states. However, only 27 switching states can be used because two basic rules have to be followed [13].
No short circuit of two inputs
Never open circuit the outputs
Because of the above rules and also inductive loads nature of MC drive, each output line must always be connected to an input line. Under these basic rules, space vector modulation (SVM) for MC drive has 27 switching states.
\nThe space vector modulation (SVM) is defined as type of pulse width modulation (PWM) to generate gate drive signal to trigger the bidirectional switches (BDS) in MC [14]. SVM is also preferable to control and analyze machines with vector control (VC) or field oriented control of machines and allows visualization of the spatial and time relationships between the resultant current and flux vectors (or space phasors) in various reference frames.
\nDecoupling flux and torque is feature of VC to overcome sluggish torque response of Induction Motor (IM) to work like a separately excited DC machine. To achieve an independent control of the flux and torque, the direct axis (
Field orientation: Ψr is aligned with d-axis.
Both faster current control loop and speed control loop outputs [12] provide the reference voltages (Vsd, Vsq) and hence (Va, Vb, Vc) to SVM to get the stable operation of MC drive as shown in Figure 6.
\nClosed-loop indirect field-oriented vector control (IFOVC) scheme.
Two novel techniques [18] are used to identify regeneration when step is applied to reverse the MC drive. These are (1) power comparison technique (PC) and (2) input voltage reference (IVR) technique. These techniques are responsible for generating pulses for regeneration control circuit (RCC) or electrical braking circuit (EBC) whenever regeneration is detected in the MC drive. In PC, output power is used as reference; hence, it is called PC technique similarly in IVR technique, the voltage across the small input filter capacitor and output power both are used as reference; hence, it is called IVR technique. The IVR technique is similar to and derived from conventional dynamic braking technique.
\nTo calculate the absolute value of output power of MC drive to achieve power comparison (PC) technique, the torque producing current (i*sq) and measured rotor speed (ωre) are sensed. Figure 7 shows the gate drive signal, which is generated for RCC of input power clamp (IPC) method. Here power dissipation through a resistor in the regeneration control circuit (RCC) is directly proportional to the duty cycle of unidirectional switch (UDS), as in Eq. (1),
\nBlock diagram of the power comparison (PC) technique for IPC method.
where D = duty cycle of the unidirectional switch and Pdis = power dissipation through the resistor.
\nThe duty cycle calculation requires the maximum electrical braking power (Pmb) to be calculated, as shown in Eq. (2). The duty cycle of the switches is then less than or equal to unity under all operating conditions.
\nwhere Tme = electromagnetic torque and ωmre = speed of MC drive.
\nThe gate drive signals for RCC switches are generated by using field programmable gate array (FPGA) with digital signal processor (DSP). Here FPGA that receives input parameters (ωre, Te, i*sq) from sensors is fed into DSP, which does all mathematical calculations to generate gate drive signal as shown in Figure 7, and again fed back to FPGA that is sending gate drive signal to the gate drive of UDS. The duty of UDS/BDS is linearly varying with respect to output negative power. The MC drive is not capable to output whole of regenerated power because of it losses such as friction, windage, iron, switching and conduction losses. Because of above reason, the braking resistor dissipates less than the actually regenerated power. As written in Eqs. (3) and (4), the design of braking resistor (Rb) relies on maximum regenerative power during regeneration.
\nwhere the braking current (Ib) and input power (Pin,max) are directly proportional to the input voltage. The braking resistor design also depends on the braking time, thermal capacity of the resistor, and heat sink. And the current rating of UDS/BDS in RCC must be higher than the braking current.
\nThe voltage across small input filter capacitor is measured and compared to the MC supply voltage to generate gate drive signal for RCC of IPC method as shown in Figure 8.
\nBlock diagram of the input voltage reference (IVR) technique for IPC method.
The IVR technique can be used to detect the regeneration in the matrix converter for electrical braking methods. The duty cycle variation is directly proportional to the increase in the line to line voltage across the input filter capacitor of the matrix converter under regeneration with respect to the output power (Po), as shown in Eq. (5).
\nHere,
The RCC is turned on only if any voltage difference is detected between MC supply voltage and voltage across the small input filter capacitor for each sampling period. In addition, if the small input filter capacitor voltage is equal to the MC supply voltage, then the duty cycle is set to zero. Gate drive signal is generated using FPGA and DSP control platform similar to PC technique. The power dissipation through RCC happens only if the MC drive is operating under regenerative mode.
\nTo avoid regeneration in matrix converters, three novel circuit topologies are investigated:
Bidirectional switch (BDS) method
Input power clamp (IPC) method
Standard clamp circuit (SCC) method
The power circuit for the BDS method [18], regeneration control circuit (RCC) or electrical braking circuit, is shown in Figure 9. The regeneration control circuit (RCC) is introduced across the input filter capacitors (CAB, CBC, and CAC). The regeneration control circuit (RCC) is responsible for power dissipation when regeneration takes place in the MC motor drive.
\nBidirectional switch (BDS) method.
The RCC consists of three bidirectional switches (BDSAB, BDSBC, and BDSAC) in series with three resistors (RAB, RBC, and RAC) connected across the input lines, in parallel with the input filter capacitor. The schematic of the regeneration control circuit (RCC) or electrical braking circuit (EPC) is depicted in Figure 9.
\nThe input power clamp (IPC) method [19] is used for braking the electrical energy in a matrix converter motor drive. The IPC method requires only one braking resistor and a UDS, as shown in Figure 10, when compared to the BDS method, which requires three switches in series with three resistors. Electrical braking circuit or regeneration control circuit (RCC) for the input power clamp (IPC) method is located across the input filter capacitors (
The input power clamp (IPC) method.
The main power electronic components for RCC of IPC are conventional uncontrolled six-pulse rectifier and a UDS in series with a braking resistor (R), as shown in Figure 10. This braking resistor does not have inductive property to help to achieve better electrical braking when regeneration happens in MC drive. It is believed that IPC method is the best method when compared to BDS method because it requires only fewer power semiconductor switching components but not suitable for aerospace applications because it has electrolytic capacitor in the RCC.
\nSimilar to the BDS method and the IPC method [19], the proposed standard clamp circuit (SCC) method is using two techniques to detect the regeneration in the matrix converter drive. These are (1) power comparison (PC) technique and (2) input voltage reference technique. However, here the PC technique is only considered and the simulation results of the SCC method with PC technique are discussed. The block diagram for standard clamp circuit is shown in Figure 11. The electrical braking circuit for SCC is shown in Figure 14.
\nThe standard clamp circuit method.
Power dissipation through resistor is directly proportional to duty cycle of UDS, which is already given in Eq. (1). To prove the performance of the SCC method for electrical braking in the MC drive, a 2.2-kW vector-controlled induction motor fed by MC drive is considered.
\nWhen compared to earlier methods, called the BDS method and IPC method, no auxiliary hardware is required for SCC method for electrical braking in the matrix converter drive as shown in Table 1. The BDS method [18] has three drawbacks:
It requires three BDS in series with three resistors.
Also, it requires complex control platform, which controls six PWM for electrical braking.
This auxiliary circuit increases size, weight, and cost.
Factors | \nBDS method | \nIPC method | \nSCC method | \n
---|---|---|---|
Switches | \n3 (BDS) | \n1 (UDS) | \n1 (UDS) | \n
Resistors | \n3 | \n1 | \n1 | \n
Diodes | \n0 | \n6 | \n0 | \n
Weight, size, and cost | \nConsiderably increased | \nBit increased | \nRemains same | \n
Implementation | \nComplicated | \nNot complicated | \nSimple | \n
Comparison of BDS, IPC, and SCC.
Similarly, the IPC method has three main drawbacks:
It requires conventional uncontrolled diode rectifier and UDS with a resistor.
Separate control platform for a PWM for electrical braking is required.
This auxiliary circuit increases the size, weight, and cost.
The SCC method requires only one UDS switch in series with a resistor. Because of using SCC in the MC drive, achieving electrical braking using this method is easy and no complicated control platform is required. The SCC is considered as a safety device to protect the matrix converter under abnormal conditions such as overvoltage in the input side or output side.
\nTo predict and verify the performance of the proposed methods for avoiding regeneration in a matrix converter, a simulation study is carried out using SABER software package [12].
\nThe regeneration can be demonstrated at Vin = 240 V, q = 0.75, and fs = 10 kHz by applying step transient to reverse the speed at 1.2 s as shown in Figure 12. A step transient lasts upto 2.4s, no load speed reversal (from +188.5 rad/s to -188.5 rad/s), as shown in the Figure 13 which also shows developed torque which is direclty proportional to torque producing current (isq) of IM during VC. The torque producing current (iq) of the induction motor reaches the maximum limit of 35 A during acceleration as shown in Figure 13. Here regenerative power depends upon large inertial load (j = 0.089 kg m2) of the induction motor, which is created coupling IM with the same rating of DC motor (4 kW). The output current waveforms of the matrix converter drive is depicted in Figure 14(a), which also indicates during speed reversal, the four-quadrant operation, inherent property, of MC from motoring mode to regenerating mode is smoothly achieved. The control of dq-currents (id, iq) with no coupling effects is demonstrated. Figure 14(b) shows input phase currents (iA, iB, iC) of the matrix converter during the four-quadrant operation. The input regenerative powers (PA, PB, PC) to be dissipated using the regeneration control circuit (RCC) are shown in Figure 15(a). During regeneration, the phase opposition (180
Overview of the simulation diagram for obtaining regeneration in the MC vector-controlled induction motor.
Speed and torque of the vector-controlled IM in regeneration. Vin = 240 V, q = 0.75, and fs = 10 kHz.
(a) Output currents of the MC and (b) input phase currents of the MC.
(a) Input phase powers of the MC and (b) phase opposition at regeneration.
The generation of the required identical six pulses using PC technique for the regeneration control circuit (RCC) of BDS method is shown in Figure 16(a). Here duty cycle is linearly varying with respect to the output power of the MC drive as shown in Figure 16(b). In order to verify the regenerative energy dissipation, the input phase powers are calculated using input phase voltages and the input phase currents. The resulting input phase currents and calculated input phase power are shown in Figure 17(a) and (b), respectively. When compared to Figure 15(b), Figure 18 proves that regenerative power is dissipated using novel RCC of BDS method, hence input phase voltages (VA, VB, VC) and input phase currents (iA, iB, iC) are in phase. However, there is some input power left, as shown in Figure 17(b), because of constant losses (such as friction, windage losses, and inertial losses) in the IM and switching noises.
\n(a) Generation of the six pulses and (b) duty cycle and output power variation for regeneration control circuit of the BDS method with the PC technique. Vin = 240 V, q = 0.75, and fs = 10 kHz.
(a) Input phase currents and (b) input phase powers for BDS method.
Phase relationship between input phase voltages and currents of MC drive.
The generation of a pulse to trigger the RCC, duty cycle variation, and the output power (Po) variation during regeneration for the IPC method with the IVR technique is shown in Figure 19. Figure 20 shows input phase powers (PA, PB, PC) of MC drive after regeneration control. From simulation results, the IVR technique for both methods (IPC and SCC) is producing acceptable results to avoid regeneration with a MC drive similar to PC technique.
\nPulse for RCC, duty cycle variation, and output power for the IPC method with the IVR technique. Vin = 240 V, q = 0.75, and fs = 10 kHz.
Input phase powers for the SCC method with the IVR technique. Vin = 240 V, q = 0.75, and fs = 10 kHz.
The control platform includes both the control circuits and the interface circuits. The control circuit consists of a DSP card and an FPGA card as shown in Figure 21. The interface circuit includes encoder interface board and DSP daughter card (C6713DSK HPI), which is used to send user inputs and output waveforms plotting to troubleshoot hardware problems that are faced during hardware implementation and achieving desired output results. For example, if spike occurs while reversing the speed of the MC drive, the error data were captured and troubleshot through DSP daughter card. Figure 22(a) shows the RCC of three bidirectional switches (BDSAB, BDSBC, BDSAC) that are connected between MC input supply line voltages (VAB, VBC, VAC) and the small input filter capacitors (2).
\nLayout of control and interface circuits.
(a) Photograph of RCC for BDS method and (b) complete experimental setup.
The RCC resistors (RAB, RBC, RAC) are connected in series (1) with the bidirectional switches. The triggering pulses (3) for bidirectional switches are obtained from FPGA card. Figure 22(b) shows complete experimental setup of MC drive. The host user interface PC is used to help monitor inputs to the system (complete experimental setup of MC drive) and get output from the system. The power circuit and control circuit of the laboratory prototype matrix converter drive is highlighted by letters (C) and (B), respectively. Letters (D) and (E) indicate the 4 kW induction motor with high inertial load and the RCC resistors with their heat sink arrangement, respectively.
\nProof of BDS method for electrical braking in the MC drive by carried out experiments, at Smiths aerospace (later called GE Aviation) laboratory in PEMC Group of University of Nottingham, using a prototype rated at 7.5 kW MC fed a 4 kW IM. The field current (d-currents), torque current (q-currents), torque of IM and stator currents of IM during regeneration at speed reversal from +157 rad/s to −157 rad/s [Vin = 200 V, fs = 12.5 kHz, q = 0.75] are shown in Figure 23(a) and Figure 23 (b), respectively. The input phase voltages (VA, VB), input phase currents (iA, iB), and three phase input power (using two-wattmeter method) during regeneration and after avoiding regeneration are shown in Figure 24(a) and (b), respectively. The above experimental results (from Figure 24(a) and (b)) clearly show that the regenerative (negative) power is dissipated through the RCC.
\n(a) Torque, dq-currents and (b) stator currents of the motor.
(a) During regeneration and (b) after avoiding regeneration.
The matrix converter (MC) technology has been preferred since 1989 than other direct AC/AC converters or AC-DC-AC link converters because of its special features such as no DC link components, good sinusoidal input/output waveforms, inherent regeneration capability, and unrestricted output frequency. The published research work on the matrix converter focuses on the following ideas:
MC for aerospace and industrial applications
Power quality and stability of MC
Addressing commutation techniques to avoid failure of the power circuit of MC
Modulation topologies for the MC
This novel research work is dedicated to matrix converter for more electric aircraft (MEA) application. And making MC suitable for aerospace applications by avoiding inherent regeneration in it, it means eliminating unique property of four-quadrant operation of MC, in order to satisfy the aircraft power quality specifications. Until this work, no one has paid attention on this research area, which will make the matrix converter feasible for aerospace applications and some specific industrial applications. For example, at the beginning of the twenty-first century, the matrix converter has been made as a commercial product, lift, which is manufactured by Yaskawa (Japan). The Power Electronics Machines and Control (PEMC) Group at the University of Nottingham has been developing 150-kVA matrix converter for higher power applications. Even though all three methods (BDS, IPC, and SCC) can produce good results, the standard clamp circuit method with power comparison technique is preferable because no auxiliary hardware is required. Hence, the weight, size, and cost of the matrix converter are considerably reduced. Therefore, the matrix converter with SCC method is recommended to aerospace applications where regeneration into the supply is not allowed. From obtained experimental results, it is concluded that electrical braking with a matrix converter drive is feasible and matrix converter is opt for aerospace applications such as more electric aircraft.
\nThe authors would like to thank Smiths Aerospace/GE Aviation laboratory for their support to complete this research successfully.
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On September, 29th 2006 he has won a post PhD fellowship from the university of Bologna (from October 2006 to October 2008), at the competitive examination he was ranked first in the industrial engineering area. He extensively served as referee for several international journals. He is author/coauthor of more than 100 research papers. He has been involved in some projects supported by MURST and European Community. 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He also obtained an MSc in Molecular and Genetic Medicine, and a Ph.D. in Clinical Immunology and Human Genetics from the University of Sheffield, UK. He also completed a short-term fellowship in Pediatric Clinical Immunology and Bone Marrow Transplantation at Newcastle General Hospital, England. Dr. Rezaei is a Full Professor of Immunology and Vice Dean of International Affairs and Research, at the School of Medicine, Tehran University of Medical Sciences, and the co-founder and head of the Research Center for Immunodeficiencies. He is also the founding president of the Universal Scientific Education and Research Network (USERN). Dr. Rezaei has directed more than 100 research projects and has designed and participated in several international collaborative projects. He is an editor, editorial assistant, or editorial board member of more than forty international journals. He has edited more than 50 international books, presented more than 500 lectures/posters in congresses/meetings, and published more than 1,100 scientific papers in international journals.",institutionString:"Tehran University of Medical Sciences",institution:{name:"Tehran University of Medical Sciences",country:{name:"Iran"}}},{id:"180733",title:"Dr.",name:"Jean",middleName:null,surname:"Engohang-Ndong",slug:"jean-engohang-ndong",fullName:"Jean Engohang-Ndong",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/180733/images/system/180733.png",biography:"Dr. Jean Engohang-Ndong was born and raised in Gabon. After obtaining his Associate Degree of Science at the University of Science and Technology of Masuku, Gabon, he continued his education in France where he obtained his BS, MS, and Ph.D. in Medical Microbiology. He worked as a post-doctoral fellow at the Public Health Research Institute (PHRI), Newark, NJ for four years before accepting a three-year faculty position at Brigham Young University-Hawaii. Dr. Engohang-Ndong is a tenured faculty member with the academic rank of Full Professor at Kent State University, Ohio, where he teaches a wide range of biological science courses and pursues his research in medical and environmental microbiology. Recently, he expanded his research interest to epidemiology and biostatistics of chronic diseases in Gabon.",institutionString:"Kent State University",institution:{name:"Kent State University",country:{name:"United States of America"}}},{id:"188773",title:"Prof.",name:"Emmanuel",middleName:null,surname:"Drouet",slug:"emmanuel-drouet",fullName:"Emmanuel Drouet",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/188773/images/system/188773.png",biography:"Emmanuel Drouet, PharmD, is a Professor of Virology at the Faculty of Pharmacy, the University Grenoble-Alpes, France. As a head scientist at the Institute of Structural Biology in Grenoble, Dr. Drouet’s research investigates persisting viruses in humans (RNA and DNA viruses) and the balance with our host immune system. He focuses on these viruses’ effects on humans (both their impact on pathology and their symbiotic relationships in humans). He has an excellent track record in the herpesvirus field, and his group is engaged in clinical research in the field of Epstein-Barr virus diseases. He is the editor of the online Encyclopedia of Environment and he coordinates the Universal Health Coverage education program for the BioHealth Computing Schools of the European Institute of Science.",institutionString:null,institution:{name:"Grenoble Alpes University",country:{name:"France"}}},{id:"131400",title:"Prof.",name:"Alfonso J.",middleName:null,surname:"Rodriguez-Morales",slug:"alfonso-j.-rodriguez-morales",fullName:"Alfonso J. Rodriguez-Morales",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/131400/images/system/131400.png",biography:"Dr. Rodriguez-Morales is an expert in tropical and emerging diseases, particularly zoonotic and vector-borne diseases (especially arboviral diseases). He is the president of the Travel Medicine Committee of the Pan-American Infectious Diseases Association (API), as well as the president of the Colombian Association of Infectious Diseases (ACIN). He is a member of the Committee on Tropical Medicine, Zoonoses, and Travel Medicine of ACIN. He is a vice-president of the Latin American Society for Travel Medicine (SLAMVI) and a Member of the Council of the International Society for Infectious Diseases (ISID). Since 2014, he has been recognized as a Senior Researcher, at the Ministry of Science of Colombia. He is a professor at the Faculty of Medicine of the Fundacion Universitaria Autonoma de las Americas, in Pereira, Risaralda, Colombia. He is an External Professor, Master in Research on Tropical Medicine and International Health, Universitat de Barcelona, Spain. He is also a professor at the Master in Clinical Epidemiology and Biostatistics, Universidad Científica del Sur, Lima, Peru. In 2021 he has been awarded the “Raul Isturiz Award” Medal of the API. Also, in 2021, he was awarded with the “Jose Felix Patiño” Asclepius Staff Medal of the Colombian Medical College, due to his scientific contributions to COVID-19 during the pandemic. He is currently the Editor in Chief of the journal Travel Medicine and Infectious Diseases. His Scopus H index is 47 (Google Scholar H index, 68).",institutionString:"Institución Universitaria Visión de las Américas, Colombia",institution:null},{id:"332819",title:"Dr.",name:"Chukwudi Michael",middleName:"Michael",surname:"Egbuche",slug:"chukwudi-michael-egbuche",fullName:"Chukwudi Michael Egbuche",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/332819/images/14624_n.jpg",biography:"I an Dr. Chukwudi Michael Egbuche. I am a Senior Lecturer in the Department of Parasitology and Entomology, Nnamdi Azikiwe University, Awka.",institutionString:null,institution:{name:"Nnamdi Azikiwe University",country:{name:"Nigeria"}}},{id:"284232",title:"Mr.",name:"Nikunj",middleName:"U",surname:"Tandel",slug:"nikunj-tandel",fullName:"Nikunj Tandel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/284232/images/8275_n.jpg",biography:'Mr. Nikunj Tandel has completed his Master\'s degree in Biotechnology from VIT University, India in the year of 2012. He is having 8 years of research experience especially in the field of malaria epidemiology, immunology, and nanoparticle-based drug delivery system against the infectious diseases, autoimmune disorders and cancer. He has worked for the NIH funded-International Center of Excellence in Malaria Research project "Center for the study of complex malaria in India (CSCMi)" in collaboration with New York University. The preliminary objectives of the study are to understand and develop the evidence-based tools and interventions for the control and prevention of malaria in different sites of the INDIA. Alongside, with the help of next-generation genomics study, the team has studied the antimalarial drug resistance in India. Further, he has extended his research in the development of Humanized mice for the study of liver-stage malaria and identification of molecular marker(s) for the Artemisinin resistance. At present, his research focuses on understanding the role of B cells in the activation of CD8+ T cells in malaria. Received the CSIR-SRF (Senior Research Fellow) award-2018, FIMSA (Federation of Immunological Societies of Asia-Oceania) Travel Bursary award to attend the IUIS-IIS-FIMSA Immunology course-2019',institutionString:"Nirma University",institution:{name:"Nirma University",country:{name:"India"}}},{id:"334383",title:"Ph.D.",name:"Simone",middleName:"Ulrich",surname:"Ulrich Picoli",slug:"simone-ulrich-picoli",fullName:"Simone Ulrich Picoli",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/334383/images/15919_n.jpg",biography:"Graduated in Pharmacy from Universidade Luterana do Brasil (1999), Master in Agricultural and Environmental Microbiology from Federal University of Rio Grande do Sul (2002), Specialization in Clinical Microbiology from Universidade de São Paulo, USP (2007) and PhD in Sciences in Gastroenterology and Hepatology (2012). She is currently an Adjunct Professor at Feevale University in Medicine and Biomedicine courses and a permanent professor of the Academic Master\\'s Degree in Virology. She has experience in the field of Microbiology, with an emphasis on Bacteriology, working mainly on the following topics: bacteriophages, bacterial resistance, clinical microbiology and food microbiology.",institutionString:null,institution:{name:"Universidade Feevale",country:{name:"Brazil"}}},{id:"229220",title:"Dr.",name:"Amjad",middleName:"Islam",surname:"Aqib",slug:"amjad-aqib",fullName:"Amjad Aqib",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/229220/images/system/229220.png",biography:"Dr. Amjad Islam Aqib obtained a DVM and MSc (Hons) from University of Agriculture Faisalabad (UAF), Pakistan, and a PhD from the University of Veterinary and Animal Sciences Lahore, Pakistan. Dr. Aqib joined the Department of Clinical Medicine and Surgery at UAF for one year as an assistant professor where he developed a research laboratory designated for pathogenic bacteria. Since 2018, he has been Assistant Professor/Officer in-charge, Department of Medicine, Manager Research Operations and Development-ORIC, and President One Health Club at Cholistan University of Veterinary and Animal Sciences, Bahawalpur, Pakistan. He has nearly 100 publications to his credit. His research interests include epidemiological patterns and molecular analysis of antimicrobial resistance and modulation and vaccine development against animal pathogens of public health concern.",institutionString:"Cholistan University of Veterinary and Animal Sciences",institution:{name:"University of Agriculture Faisalabad",country:{name:"Pakistan"}}},{id:"333753",title:"Dr.",name:"Rais",middleName:null,surname:"Ahmed",slug:"rais-ahmed",fullName:"Rais Ahmed",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/333753/images/20168_n.jpg",biography:null,institutionString:null,institution:{name:"University of Agriculture Faisalabad",country:{name:"Pakistan"}}},{id:"62900",title:"Prof.",name:"Fethi",middleName:null,surname:"Derbel",slug:"fethi-derbel",fullName:"Fethi Derbel",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/62900/images/system/62900.jpeg",biography:"Professor Fethi Derbel was born in 1960 in Tunisia. He received his medical degree from the Sousse Faculty of Medicine at Sousse, University of Sousse, Tunisia. He completed his surgical residency in General Surgery at the University Hospital Farhat Hached of Sousse and was a member of the Unit of Liver Transplantation in the University of Rennes, France. He then worked in the Department of Surgery at the Sahloul University Hospital in Sousse. Professor Derbel is presently working at the Clinique les Oliviers, Sousse, Tunisia. His hospital activities are mostly concerned with laparoscopic, colorectal, pancreatic, hepatobiliary, and gastric surgery. He is also very interested in hernia surgery and performs ventral hernia repairs and inguinal hernia repairs. He has been a member of the GREPA and Tunisian Hernia Society (THS). During his residency, he managed patients suffering from diabetic foot, and he was very interested in this pathology. For this reason, he decided to coordinate a book project dealing with the diabetic foot. Professor Derbel has published many articles in journals and collaborates intensively with IntechOpen Access Publisher as an editor.",institutionString:"Clinique les Oliviers",institution:null},{id:"300144",title:"Dr.",name:"Meriem",middleName:null,surname:"Braiki",slug:"meriem-braiki",fullName:"Meriem Braiki",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/300144/images/system/300144.jpg",biography:"Dr. Meriem Braiki is a specialist in pediatric surgeon from Tunisia. She was born in 1985. She received her medical degree from the University of Medicine at Sousse, Tunisia. She achieved her surgical residency training periods in Pediatric Surgery departments at University Hospitals in Monastir, Tunis and France.\r\nShe is currently working at the Pediatric surgery department, Sidi Bouzid Hospital, Tunisia. Her hospital activities are mostly concerned with laparoscopic, parietal, urological and digestive surgery. She has published several articles in diffrent journals.",institutionString:"Sidi Bouzid Regional Hospital",institution:null},{id:"229481",title:"Dr.",name:"Erika M.",middleName:"Martins",surname:"de Carvalho",slug:"erika-m.-de-carvalho",fullName:"Erika M. de Carvalho",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/229481/images/6397_n.jpg",biography:null,institutionString:null,institution:{name:"Oswaldo Cruz Foundation",country:{name:"Brazil"}}},{id:"186537",title:"Prof.",name:"Tonay",middleName:null,surname:"Inceboz",slug:"tonay-inceboz",fullName:"Tonay Inceboz",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/186537/images/system/186537.jfif",biography:"I was graduated from Ege University of Medical Faculty (Turkey) in 1988 and completed his Med. PhD degree in Medical Parasitology at the same university. I became an Associate Professor in 2008 and Professor in 2014. I am currently working as a Professor at the Department of Medical Parasitology at Dokuz Eylul University, Izmir, Turkey.\n\nI have given many lectures, presentations in different academic meetings. I have more than 60 articles in peer-reviewed journals, 18 book chapters, 1 book editorship.\n\nMy research interests are Echinococcus granulosus, Echinococcus multilocularis (diagnosis, life cycle, in vitro and in vivo cultivation), and Trichomonas vaginalis (diagnosis, PCR, and in vitro cultivation).",institutionString:"Dokuz Eylül University",institution:{name:"Dokuz Eylül University",country:{name:"Turkey"}}},{id:"71812",title:"Prof.",name:"Hanem Fathy",middleName:"Fathy",surname:"Khater",slug:"hanem-fathy-khater",fullName:"Hanem Fathy Khater",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/71812/images/1167_n.jpg",biography:"Prof. Khater is a Professor of Parasitology at Benha University, Egypt. She studied for her doctoral degree, at the Department of Entomology, College of Agriculture, Food and Natural Resources, University of Missouri, Columbia, USA. She has completed her Ph.D. degrees in Parasitology in Egypt, from where she got the award for “the best scientific Ph.D. dissertation”. She worked at the School of Biological Sciences, Bristol, England, the UK in controlling insects of medical and veterinary importance as a grant from Newton Mosharafa, the British Council. Her research is focused on searching of pesticides against mosquitoes, house flies, lice, green bottle fly, camel nasal botfly, soft and hard ticks, mites, and the diamondback moth as well as control of several parasites using safe and natural materials to avoid drug resistances and environmental contamination.",institutionString:null,institution:{name:"Banha University",country:{name:"Egypt"}}},{id:"99780",title:"Prof.",name:"Omolade",middleName:"Olayinka",surname:"Okwa",slug:"omolade-okwa",fullName:"Omolade Okwa",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/99780/images/system/99780.jpg",biography:"Omolade Olayinka Okwa is presently a Professor of Parasitology at Lagos State University, Nigeria. She has a PhD in Parasitology (1997), an MSc in Cellular Parasitology (1992), and a BSc (Hons) Zoology (1990) all from the University of Ibadan, Nigeria. She teaches parasitology at the undergraduate and postgraduate levels. She was a recipient of a Commonwealth fellowship supported by British Council tenable at the Centre for Entomology and Parasitology (CAEP), Keele University, United Kingdom between 2004 and 2005. She was awarded an Honorary Visiting Research Fellow at the same university from 2005 to 2007. \nShe has been an external examiner to the Department of Veterinary Microbiology and Parasitology, University of Ibadan, MSc programme between 2010 and 2012. She is a member of the Nigerian Society of Experimental Biology (NISEB), Parasitology and Public Health Society of Nigeria (PPSN), Science Association of Nigeria (SAN), Zoological Society of Nigeria (ZSN), and is Vice Chairperson of the Organisation of Women in Science (OWSG), LASU chapter. She served as Head of Department of Zoology and Environmental Biology, Lagos State University from 2007 to 2010 and 2014 to 2016. She is a reviewer for several local and international journals such as Unilag Journal of Science, Libyan Journal of Medicine, Journal of Medicine and Medical Sciences, and Annual Research and Review in Science. \nShe has authored 45 scientific research publications in local and international journals, 8 scientific reviews, 4 books, and 3 book chapters, which includes the books “Malaria Parasites” and “Malaria” which are IntechOpen access publications.",institutionString:"Lagos State University",institution:{name:"Lagos State University",country:{name:"Nigeria"}}},{id:"273100",title:"Dr.",name:"Vijay",middleName:null,surname:"Gayam",slug:"vijay-gayam",fullName:"Vijay Gayam",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/273100/images/system/273100.jpeg",biography:"Dr. Vijay Bhaskar Reddy Gayam is currently practicing as an internist at Interfaith Medical Center in Brooklyn, New York, USA. He is also a Clinical Assistant Professor at the SUNY Downstate University Hospital and Adjunct Professor of Medicine at the American University of Antigua. He is a holder of an M.B.B.S. degree bestowed to him by Osmania Medical College and received his M.D. at Interfaith Medical Center. His career goals thus far have heavily focused on direct patient care, medical education, and clinical research. He currently serves in two leadership capacities; Assistant Program Director of Medicine at Interfaith Medical Center and as a Councilor for the American\r\nFederation for Medical Research. As a true academician and researcher, he has more than 50 papers indexed in international peer-reviewed journals. He has also presented numerous papers in multiple national and international scientific conferences. His areas of research interest include general internal medicine, gastroenterology and hepatology. He serves as an editor, editorial board member and reviewer for multiple international journals. His research on Hepatitis C has been very successful and has led to multiple research awards, including the 'Equity in Prevention and Treatment Award” from the New York Department of Health Viral Hepatitis Symposium (2018) and the 'Presidential Poster Award” awarded to him by the American College of Gastroenterology (2018). He was also awarded 'Outstanding Clinician in General Medicine” by Venus International Foundation for his extensive research expertise and services, perform over and above the standard expected in the advancement of healthcare, patient safety and quality of care.",institutionString:"Interfaith Medical Center",institution:{name:"Interfaith Medical Center",country:{name:"United States of America"}}},{id:"93517",title:"Dr.",name:"Clement",middleName:"Adebajo",surname:"Meseko",slug:"clement-meseko",fullName:"Clement Meseko",position:null,profilePictureURL:"https://mts.intechopen.com/storage/users/93517/images/system/93517.jpg",biography:"Dr. Clement Meseko obtained DVM and PhD degree in Veterinary Medicine and Virology respectively. He has worked for over 20 years in both private and public sectors including the academia, contributing to knowledge and control of infectious disease. Through the application of epidemiological skill, classical and molecular virological skills, he investigates viruses of economic and public health importance for the mitigation of the negative impact on people, animal and the environment in the context of Onehealth. \r\nDr. Meseko’s field experience on animal and zoonotic diseases and pathogen dynamics at the human-animal interface over the years shaped his carrier in research and scientific inquiries. He has been part of the investigation of Highly Pathogenic Avian Influenza incursions in sub Saharan Africa and monitors swine Influenza (Pandemic influenza Virus) agro-ecology and potential for interspecies transmission. He has authored and reviewed a number of journal articles and book chapters.",institutionString:"National Veterinary Research Institute",institution:{name:"National Veterinary Research Institute",country:{name:"Nigeria"}}},{id:"158026",title:"Prof.",name:"Shailendra K.",middleName:null,surname:"Saxena",slug:"shailendra-k.-saxena",fullName:"Shailendra K. Saxena",position:null,profilePictureURL:"https://s3.us-east-1.amazonaws.com/intech-files/0030O00002bRET3QAO/Profile_Picture_2022-05-10T10:10:26.jpeg",biography:"Professor Dr. Shailendra K. Saxena is a vice dean and professor at King George's Medical University, Lucknow, India. His research interests involve understanding the molecular mechanisms of host defense during human viral infections and developing new predictive, preventive, and therapeutic strategies for them using Japanese encephalitis virus (JEV), HIV, and emerging viruses as a model via stem cell and cell culture technologies. His research work has been published in various high-impact factor journals (Science, PNAS, Nature Medicine) with a high number of citations. He has received many awards and honors in India and abroad including various Young Scientist Awards, BBSRC India Partnering Award, and Dr. JC Bose National Award of Department of Biotechnology, Min. of Science and Technology, Govt. of India. Dr. Saxena is a fellow of various international societies/academies including the Royal College of Pathologists, United Kingdom; Royal Society of Medicine, London; Royal Society of Biology, United Kingdom; Royal Society of Chemistry, London; and Academy of Translational Medicine Professionals, Austria. He was named a Global Leader in Science by The Scientist. 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