Studies of paired microalga-bacteria interactions.
\\n\\n
Released this past November, the list is based on data collected from the Web of Science and highlights some of the world’s most influential scientific minds by naming the researchers whose publications over the previous decade have included a high number of Highly Cited Papers placing them among the top 1% most-cited.
\\n\\nWe wish to congratulate all of the researchers named and especially our authors on this amazing accomplishment! We are happy and proud to share in their success!
Note: Edited in March 2021
\\n"}]',published:!0,mainMedia:{caption:"Highly Cited",originalUrl:"/media/original/117"}},components:[{type:"htmlEditorComponent",content:'IntechOpen is proud to announce that 191 of our authors have made the Clarivate™ Highly Cited Researchers List for 2020, ranking them among the top 1% most-cited.
\n\nThroughout the years, the list has named a total of 261 IntechOpen authors as Highly Cited. Of those researchers, 69 have been featured on the list multiple times.
\n\n\n\nReleased this past November, the list is based on data collected from the Web of Science and highlights some of the world’s most influential scientific minds by naming the researchers whose publications over the previous decade have included a high number of Highly Cited Papers placing them among the top 1% most-cited.
\n\nWe wish to congratulate all of the researchers named and especially our authors on this amazing accomplishment! We are happy and proud to share in their success!
Note: Edited in March 2021
\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:"2915",leadTitle:null,fullTitle:"Finite Element Analysis - Applications in Mechanical Engineering",title:"Finite Element Analysis",subtitle:"Applications in Mechanical Engineering",reviewType:"peer-reviewed",abstract:"In the past few decades, the Finite Element Analysis (FEA) has been developed into a key indispensable technology in the modeling and simulation of various engineering systems. 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The growth of microalgae is correlated directly with the chlorophyll
Other described processes that occur between bacteria and microalgae involve various ecological relationships such as competence, parasitism and other important microbiological processes [19]. Thereby, the microalgae can inhibit and/or induce the bacterial growth due to the production of organic exudates or toxic metabolites. Inversely, the bacteria can produce stimulating or inhibiting effects in microalgae through the production or absence of nutrients and/or stimulating or inhibiting substances which affect microalgae [20, 21, 22]. Delucca and McCracken (1977) [23] suggest that the interactions bacteria-algae are not randomly but highly specific. There are numerous data which report that the extracellular products from algae are capable to stimulate the growth of bacterial strains [21, 22] through the excretion of carbohydrates, organic acids, nitrogenous substances and vitamins [24]. Some studies in natural ecosystems have determined that organic substances derived from phytoplankton are used by bacteria as a substrate for growing. However, microalgae also inhibit bacterial growth by production of organic exudates or toxic metabolites. There are several reports suggesting a synergistic action between microalgae and its bacterial flora associated [figure 2; 25].
Most part of microbial life develops in biofilm form, either in surface or aggregates. In this ecosystem, bacteria and microalgae are the predominant components and they are the basis of the trophic chain and of the organic matter recirculation. A biofilm is a microbial consortium associated with EPS and other molecules attached to a submerged surface. The formation of a biofilm begins with the accumulation of organic molecules over a submerged surface, this physicochemical event occurs in a few seconds or minutes after the immersion of any surface in a liquid. Few hours later of the establishment of a macromolecular film, the bacterial colonization starts [26].
A mature biofilm is capable to maintain the concentrations of ammonium and phosphate present in the surrounding medium at low levels. Thompson et al. (2002) [27] determined that the decline of the ammonium concentrations is related with the increase of the chlorophyll
Mainly, the use of bacteria-microalgae biofilms would be applicable to tanks of intensive cultures in which there are a great accumulation of dissolved nitrogen, especially ammonium, as a result of addition of food and excretion of organisms maintained in high density, being one of the most important problems in intensive culture of shrimp and other mollusks, affecting the ingestion of food, growth and survival [28, 30]. One alternative to maintain a high water quality is the biological treatment, based in the use of pre-colonized filters by microorganisms that absorb the excess of nutrients from water. A similar process occurs in nature, where biofilms associated with a matrix of EPS attached are responsible of many biogeochemical cycles in aquatic ecosystems, especially the one of the nitrogen [31]. The eutrophication process accelerates if the main form of nitrogen inputted in the ecosystem is ammonium. This happens due to that the primary producers use less energy to incorporate this source of N into the amino acids and proteins, while the nitrate form must be transformed inside the cells to ammonium, with a higher cost of energy. Therefore, autotrophic cells grow faster in presence of ammonium forms than nitrate [27]. Thus, the presence of biofilms could reduce the eutrophication in the water mass that receives the effluents of aquaculture rich in ammonium through the absorption of this.
A, Biofilm from bacteria
Nevertheless, a point to consider is that the biofilms have been thoughtful as reservoirs of pathogens bacteria, like
Interactions between microalgae and bacteria.
Aquaculture is an important economic activity worldwide, in an attempt to improve the production of organisms it has been used a great quantity of antibiotics in an indiscriminate way for diseases control. Due to this, nowadays its use is questioned because the bacterial resistance generated and for the tons of antibiotics released to the biosphere during the last 60 years [48]. Recently, as an alternative for improve the growth of the cultured organisms, disease control and to improve the immune system it has been proposed the use of probiotics [49, 50, 51, 52]. The term “probiotic” is defined as “live microorganisms administered in appropriated quantities as food or food supplement that have benefic effects in the intestinal microbiological equilibrium of the host” [53]. The benefits for the host consist in to optimize the degradation and absorption of the food, favoring the autochthonous microbiota balance [49] reducing the pathogenic load [50]. According to the literature, most of the probiotics proposed as agents of biological control in aquaculture are bacteria from genus
In natural habitats, most bacteria are associated to algae and can have both effects in the algal growth, beneficial or deleterious. The interaction between algae and bacteria are complex and include competition for resources [54], production of antimicrobial agents [55, 56], stress protection through the production of extracellular polymeric substances, and the junction of metals or transformation through the production of exudates [57]. The algal cells can associate with a range of bacterial communities [58, 59] and this association vary from to share the general habitat, to a colonization of bacteria in the algal surface (epiphytic biofilm) and the endophytic association of bacteria inside de algal cells. There are reports that show that the presence of a large number and diversity of bacteria associated with algal cultures enhances the growth of algal species [table 1; 60]. This increase in growth rate suggests that the relationship between algae and bacteria in these cultures is beneficial to algae. Grossart et al. (2006) [59] also found that the cell density of
There are many studies reporting the growth promoter effect on microalgae by bacteria (table 1). Induction of bacterial growth in specific cultures has been reported for a few species of microalgae such as
De Bashan and Bashan (2008) [78], proposed and studied a model of microalgae and bacteria immobilized in alginate to analyze and evaluate their possible interactions. In their study described the following sequence of events occurring during the interaction between the two microorganisms. Randomly immobilization of
The EPS (a heterogeneous mixture of polysaccharides, proteins, nucleic acids, lipids and humic acids [84]) have a key role in biofilms, recently defined as a stabilization mechanism in mixed biofilms of bacteria and microalgae and present in a significantly higher percentage only when microalgae are associated with bacteria [3]. Furthermore, EPS are also important for the recycling of trace metals in aquatic systems, favoring metal binding to bacterial and algal agglomerates, and colloidal material/EPS, allowing the removal from surface waters and large particles [57]. Bacterial colonization is superior in stressed algal cells more than in healthy algal cells [54], which can be related to the release of organic material from the cell after cell lysis as part of a process of senescence, or under conditions of induced stress, such as exposure to contaminant metals [60]. The inability to detect visually bacteria from axenic cultures may be due to a very close association of the bacteria in the algal phycosphere or in the cell wall, or bacteria are in endophytic form in the algal cell, making it impossible to remove the bacteria from the algae using physical techniques. What\'s more, it appears that algal species benefit from the presence of bacteria, increasing their growth rate [60, 67]. The production of exudates of communities in bacteria/microalgae mixed biofilm increase in exposure to metals [85]. These exudates may be produced from algae or bacteria, but they are used as a mechanism of survival and resistance to stress for entire biofilm [60].
Growth promotion | 23 | ||
Growth promotion (dry wt, cell no., colony size, cell size) | 20 | ||
Antibacterial activity | 20 | ||
Growth promotion | 20 | ||
Antibacterial activity | 108 | ||
Growth promotion | 22 | ||
Antibacterial activity | 34 | ||
Growth promotion (dry wt, cell no., colony size, cell size) | 65, 70 | ||
Delayed senescence | 79 | ||
Population control | 59, 79 | ||
Lipids | 126 | ||
Modification of fatty acids | 126 | ||
Cell-cell interactions | 126 | ||
Mitigation of heat and intense sunlight | 126 | ||
Population dynamics | 63 | ||
Mitigation of tryptophan inhibition | 63 | ||
Mitigation of pH inhibition | 8 | ||
Photosynthetic pigments | 8, 66, 72, 105, 126 | ||
Nutrient starvation | 70 | ||
Enzymes in the nitrogen cycle | 70 | ||
Hormones | 66, 70 | ||
Absortion of nitrogen and phosphorus | 73 | ||
Growth promotion | 67 |
Studies of paired microalga-bacteria interactions.
Benthic diatoms present in the biofilm plays an important role in the marine ecosystem not only serve as food for advanced stages of development of marine invertebrate larvae [86], but also with bacteria and other microorganisms, form an attractive site for larval settlement in the process of metamorphosis [87]. There are numerous studies which have determined the characteristics that make a substrate optimal for larval settlement, and which are the effects of various biofilms in controlling larval settlement events [87, 88, 89, 90]. In the natural environment, the development of a biofilm formed by diatoms and other organisms is preceded by primary colonization of bacteria [91] aided by the EPS which act as "glue" and work at the cellular and molecular level to establish a strong and irreversible binding to a given substrate [92]. This succession of microorganisms often precedes the subsequent stages in a substrate, in which the macroorganisms eventually begin to be dominant [26].
Avendaño-Herrera and Riquelme (2007) [87] showed how optimize the production of a biofilm formed by the diatom
According to the study of Sharifah and Eguchi (2011) [94] there is synergy and beneficial contribution by using bacteria belonging to the
From this point of view, the
Immobilization of microorganisms on polymers because the production of different products and environmental and agricultural applications is well known and have increased in the last two decades [93, 114, 115]. The immobilization of microalgae is a common approach for many applications of bioremediation [66]. Immobilization in several substances provides to the microorganisms several advantages over free-living microorganisms. These advantages include: (i) a continuous source of nutrients without competition with other microorganisms [116] and (ii) protection against environmental stress [66, 117], bacteriophages, toxins, and UV irradiation [118]. A recently developed treatment for tertiary domestic wastewaters uses the green microalga
The algae are the organisms most commonly used to assess metal contamination and bioavailability in aquatic systems, are highly sensitive to heavy metals such as Cu, Fe and Cd in environmentally relevant concentrations. Algae are primary producers and affect nutrient cycling in marine and fresh water ecosystems, and in aquaculture [121]. As such, the algae are considered ecologically significant organisms and the ideal candidates for ecotoxicological studies. However, algae are rarely isolated in the environment, but are part of complex planktonic communities and biofilms. The alteration of community structure may influence the overall function (e.g. respiration, photosynthesis) and community sensitivity to toxicants. Although the tests of toxicity for single-species used in microalgae are highly sensitive and reproducible, they do not have a realistic environment. Interactions between algae and associated bacteria, in plankton or in biofilms, may alter algal sensitivity to pollutants. Recent research has attempted to develop multi-species algal test in the evaluation of metals based on toxicity [122, 123]. These studies explored the toxicological response of individual algal species when they are exposed in combination with one or other species of algae.
Bacteria can have both positive and negative effects on algae in polluted environments. For example, the tolerance of the green macroalga
Since the first studies of bacteria-microalgae interactions decades ago, it has been elucidate and discovered several events in which the close connection between these two heterotrophs and autotrophs components is evidenced. Showing that the coupling of microalgae-bacteria produces changes in the excreted compounds in the surrounding environment, that affects positively or negatively to others organisms.
Most of the interactions are strongly regulated by chemical signals. Although it has been described lots of phenomena in positive and negative interactions in biofilms, there are a few investigations that explore the chemical and molecular nature of chemical compounds involved in this interactions which are produced by microorganisms, this is why in the future will be required to deepen in the study of mechanisms involved in the growth of mixture biofilms.
The use of this biofilms in nature can be easily developed in the laboratory; they can be used increasing and affecting some specific compounds which are useful for a third organism of commercial interest. As well, in phenomena like larval settlement, induction of growth and increment of biomass rich in lipids has revealed a great potential probiotic use, particularly in aquatic industry which require more attention to the involved mechanisms in the action of this beneficial biofilms. These uses will allow us to get a better understanding of the role of these microbial consortiums in nature, and also a biotechnological orientation could be spread for the production of these beneficial biofilms in a stable and standard form.
In the recent years, particularly since about 2010, I have been capturing and recording the significant projects that I have worked upon and been involved in either restoring, strengthening and preserving in the field of Heritage buildings and Heritage sea defence masonry structures. This usually involves repairing or strengthening these structures ‘in place’, often with invisible strengthening methods that minimise adding or altering the fabric of the Heritage structure as little as practically possible.
The forces at work attacking these masonry structures, particularly the sea and sometimes man-made development around the areas in which they sit, means that there has usually only been a transient focus on what was done to preserve them in the current era .. This quite often means that what was recorded for the long-term posterity is limited and minimal records being kept during the projects. The detailed information of how, why, and where the structure was repaired and strengthened is quite frequently not recorded sufficiently and the useful and critical data is often lost.
Since the 1990s, major projects that I have been involved with as project manager or repair works engineering designer and specifier have been recorded by progress photographs and video notes. In this way a visual and 3D record of what was done and how it was achieved has been archived. This work has now accumulated a significant archive of different types of Heritage structures and how they were investigated, repaired, or strengthened for both teaching and sharing the more innovative ideas of such sensitive repairs. The objective is then to make this recorded visual detailed information available to the current, or present-day generation of engineers or conservationists who are interested in the preservation of these types of Heritage monuments. The method of doing this in the past has been by passing this knowledge on and includes ‘papers’ and ‘presentations’ at conferences for Civil Engineering, Forensic Engineering and Heritage bodies [1]. This after many years has built up a ‘legacy store’ of digital data used for such presentations. In recent years the progression of technology has meant transferring all of this type of standard information usually from VHS video for projects in the 1990s to CDs and then more recently having the CD information available on hard drives in the current era. This type of data storage not only condenses a large amount of practical knowledge down into a very small space for archiving but can transfer information through the internet as required to interested parties anywhere in the world. Currently even less space for storage will be needed when storing is transferred to the next stage of archiving development in the ‘Cloud’ and as a by-product of ‘file sharing’ and ‘transfer links’ data sent worldwide (Figure 1).
1. Level – Normal hard copy files of projects, investigations, and solutions. 2. Level – Information from files and VHS video takes. on to CDs. 3. Level – Information stored on files on hard drives. 4. Level – Information available from ‘cloud’.
For digital examples it is important to note and record what was learnt from the archive searches, how we arrived at a solution and then how it was made to work successfully on site. In this electronic archive way the methods used can be made available to various bodies of engineers and conservation societies that need such data examples and who would find it useful in the future because having worked visual examples is both very informative as well as helpful and reassuring. In the United Kingdom these worked examples and papers have been for the Institute of Civil Engineers ‘Structural Faults’ and ‘Concrete Solutions’ conferences in the main. A list of references for these is in the Citing Sources section of the Appendices, as are the selection of video material referred to in the text [2].
Most Heritage monuments are subjected to the destructive forces of nature and in particular old sea walls and breakwaters to an increase of storm duration and intensity, due to sea level rise through climate change. Also, many land-based Heritage masonry walls are subject to chemical attack from pollutants in the atmosphere, floods, and heavy rainfall. More direct human intervention forces, quite often from developers changing the surrounding environment of the building or wall is another frequent source of destructive intervention. Usually unrecognised, manmade influence is often the lack of finance leading to greatly reduced or even zero maintenance for the structure and its environment. Another more recent threat to the structures is when the personnel or custodians of such monuments change from different departments, or different governments take over responsibility and they do not provide an effective ‘hand over’ of knowledge for preserving the Heritage monument. Therefore, it is important to ensure that the organisation or society responsible for the upkeep of the asset has a ‘virtual’ record of what is currently in existence in case some future disaster should happen i.e. earthquakes, wars etc. The new custodians need an understanding of the behaviour of the structure and the strengths and weaknesses of it as well as having access to the store of archive data.
This chapter gives practical examples of using digital capture of Heritage masonry structures that can be used by those responsible for the future conversation of similar types of asset. This philosophy of digital access will also enable those who have to take over responsibility for the various, sometimes iconic, structures to be able to see what was done and where it was done in a previous similar example which was invariably under great pressures to expend a minimal cost for the maximum advantage gained for the preservation i.e. the constraints of most custodian’s budgets. There are several examples where the use of digital models have helped to procure the funding for major and significant civil and marine engineering repairs such as St. Aubins breakwater, Gorey Pierhead and St. St. Catherine’s Breakwater in the UK Channel Island of Jersey which has an aggressive 11 m tidal range and faces the storms from the Western Atlantic Ocean.
This chapter therefore provides examples of how digitally capturing the whole external shape, surface and geometry of the structure was applied to examples at St. Aubins Harbour piers and Gorey Pier in Jersey where LiDAR (Light Detection and Ranging) was used to great effect. The use of LiDAR again, together with drone surveys and photo model enhancement, was used at St. Catherine’s breakwater at a different part of the coast of the island of Jersey. The use of this data proved essential in illustrating to the Government funding bodies of the Island that emergency finance was essential to save these assets for the Island of Jersey’s Heritage.
From the archives search the failure of the inner face of the breakwater wall (Figure 2), Ref. [3] was seen to be the result of wave impact on the outside face of the breakwater causing, through ‘stress propagation’, the wall on the inner face of the breakwater to be forced outwards resulting in a partial collapse. The inner wall had also settled because it was originally built on the beach sand using large, loose blocks of granite stones with no foundations in 1640 by a young king Charles II. The solution shown in the model, in Figure 3 (Ref. [3] Vid [1]), was for ‘mini-piles’ and ‘secret fix ties’ across the two granite walls of the structure which are designed to arrest any further movement.
St Aubin’s fort breakwater failure 1972 (archives).
St. Aubins N. pier LiDAR 3D model. (video Fly through and model Ref. [
The North Pier of the harbour at St. Aubins was also suffering from the same defects common to these old marine structures of inner wall settlement on no existing foundations that was resulting in a significant rotation inwards of the inner wall of the structure getting worse and more vertical towards the end of the breakwater [5, 6, 7, 8]. The LiDAR survey produced the accurate model of the loose stone structure that was able to be assessed (Figure 4, Ref. [3] Vid [1]).
North pier St. Aubins harbour LiDAR screenshot.
Of particular interest here was that the model moved graphically with the blue curser moving along the wall in plan with an imbedded graphic which showed the verticality of the inside loose stone wall becoming more vertical as the curser approached the end of the breakwater (Figure 5, Ref. [3], Vid Ref. [1]). As the original loose granite stone breakwater slopes inwards (called a ‘batter’), the graphic was able to show dramatically that the further along the breakwater the inner face of the loose stones had reached vertical towards its end and was about to fail in a similar manner to the St. Aubins Fort breakwater seen in Figure 2. This demonstrated to everybody concerned with the maintenance of the structure that there was an urgent need to ‘pin’ and ‘support’ the inner stone wall at the end of the breakwater and tie the two masonry walls together with a ‘secret fix’.
Model used to demonstrate inner wall rotation of north pier. (Video of curser in moving blue cross section, Ref. [
Similarly, Gorey Pierhead in Jersey was also saved from destruction (it also had failed in 1964, Figure 6, Ref. [10], Vid [1]) using LiDAR techniques to make the digital models that helped to demonstrate the need for intervention and to secure funds to enable the preservation of the pierhead of the breakwater and jetty.
Collapse of Pierhead in 1965 (archives), Ref. [
Photographic merges and videos of the pierhead at low tide (with Gorey Castle in the background) showed the size of the loose granite masonry structure and where’bulging’ of masonry and loss of concrete foundations were exposed (Figure 7). The pierhead itself show in Figure 8 had to be rebuilt in 1964 after a major storm failure shown from the archives in Figure 6. To understand the evolution of the structure from the original pre-1620 pier, a LiDAR survey accurately captured the geometry of the whole of the pier in 2009. There was another major storm event in 2011 and a second LiDAR survey was taken, and the Point Cloud data overlaid on the GPS referenced coordinates of the original 2009 survey. Figure 7 shows graphically the super imposed LiDAR scans to show where there was a “bulge” outwards of the masonry and a loss of concrete at the base.
Digital models overlaid 2 years apart. Localised masonry movements highlighted. Screen shot graphic colour. Ref. [
Gorey Pierhead and breakwater at low tide. Gorey Castle in background (digital photo merge), Ref. [
I have used this image widely in several engineering papers and conferences because the overlay of LiDAR models (with an accuracy of ±2 mm) superimposed upon one another two years apart is self-explanatory. The second survey was directly after a severe storm and significant concerns by the structures’ custodians were raised as some areas of visible physical movement had taken place. The model was able to demonstrate that one small area was ‘bulging’ out of the page (red in x, y, z coordinates indicates out of the page movement) and at the base concrete had been lost from the foundation apron (blue in x, y, z coordinates indicate in to the page movement). Just as importantly, the model graphic was able to clearly demonstrate that the damage was in two areas only because most of the pierhead and breakwater had remained in place after the storm (green overlay of the two sets of x, y, z coordinates have no distance). This meant that for the custodians (the Ports of Jersey) no very high costs were involved for the whole breakwater and only localised strengthening was requiring funding.
Another very large breakwater on the island of Jersey (Jersey projects are particularly challenging because of the 11 m tidal range and adverse sea state conditions) was St. Catherine’s Breakwater which stretches some 600 m out to sea (Figure 9, Ref. [11]). In a time of urgent crisis for the end of the structure in 2008, the breakwater roundhead was surveyed with GPR (ground penetrating radar) and found to have a very large hidden void under the concrete slab covering the roundhead at the end. If not repaired before the coming winter, then there was likely to be a failure and collapse. As soon as this occurred a section of the breakwater would have been likely to unravel during the type of fierce winter storms that occur around the coast of the Island. Digital models, drawing models using photoshopping images (Figure 10, Ref. [9]) of a likely collapse and unravelling mechanism helped to convince the governments treasury to release emergency funds. Drone surveys were then used to capture visual images of the whole structure that is particularly difficult and dangerous to survey conventionally and this also contributed to obtaining the urgent Government funding to repair and preserve this heritage marine monument as well as to be able to monitor it in the following years. (An early graphical model of the rock armour protection needed following the roundhead repairs is shown in Figure 11).
St. Catherine’s breakwater and roundhead 600 m out to sea.
Photographic manipulation used to obtain emergency repair and protection funding, Ref. [
Early digital model illustrating rebuild with rock Armour protection, Ref. [
The deterioration of Heritage monuments due to manmade problems, for example at La Hougue Bie which is a Neolithic burial mound and tomb on the island of Jersey (Figure 12, Ref. [12], Vid Ref. [3]), also prompted a LiDAR scan and model of the whole site. In the course of recent history, trees had been planted on to the burial mound and there was great concern that the mound was slowly being destroyed by tree roots growing ever larger and into the mound. So its digital preservation for the current and future generations was recorded and the finished model has a fly-through and around the mound, as well as recording the 12th century chapel on the top of the mound (Figure 13, Ref. [12], Vide Ref. [3]) and even into and around the burial mound itself (Figure 14, Ref. [12], Vid Ref. [3]).
LiDAR scan of burial mound entrance. Screen shot of mound entrance and film. Ref [
Photograph of burial mound with trees (and not a real mammoth!), Ref. [
Spectacular LiDAR fly through into chamber. Screen shot and film, Ref. [
The nearby Gorey Castle East Gate area was also damaged by manmade interventions because to accommodate tourist parking to visit the Gorey harbour and Castle, excavations were carried out to create more car parking space adjacent to the Castle entrance (Figure 15, Ref. [10], Vid Ref. [2]). However, the works were excavated too close to the East Gate of the Castle and undermined the wall close to, and beneath this gate. The resulting movement and cracking in the masonry was significant but was also difficult to assess and map conventionally but with the use of the LiDAR model the engineering team was able to design repairs (Figure 16 Ref. [10], Vid Ref. [2]).
LiDAR area of high density focus for accuracy. Show red line cracks.
Drone survey of castle. Target area for LiDAR. Screen shots and survey video of castle, Ref. [
LiDAR was used to accurately record the surface of the structure’s masonry shape and to map the cracks so as to identify what parts of the masonry had moved and by how much. This type of heritage masonry is very difficult to draw conventionally but the high intensity LiDAR scans produce accurate drawings that not only provide an archive but also very good visual records of this type of historic masonry structure and when and where it was repaired.
A slightly more academic exercise was carried out for the Elizabeth Castle in St. Helier because the custodians of the Castle, Jersey Heritage, required a ‘resilience study’ of the major elements of the Castle complex (Figure 17, Ref. [9], Vid Ref. [4]). In addition to a full photographic record, drone surveys were used to visually access the very high inaccessible castle walls on the rock outcrop to examine the masonry and to have a full record of the large number and variety of different era structures that make up Elizabeth Castle complex (Figure 18, Ref. [9], Vid Ref. [4]).
The area to be scanned of the St. Helier breakwater.
Drone survey of area to be scanned by LiDAR for the Elizabeth Castle, St. Helier breakwater. (Screen shot of LiDAR castle fly over, reference video….). (Link to video materials is available at the end of the chapter).
The Jersey Heritage Board were concerned that the annual vintage airplane display and fly past for celebrating the Battle of Britain in Jersey flew directly over the castle complex from the St. Aubins Bay in the south. The CEO of the organisation needed to know what the scale of the damage would be should any one of these ancient aircraft fall and impact on some of the priceless Heritage buildings. This included St. Helier’s Chapel itself dating from 555 AD which was directly in the flight path of the display (Figure 19, Ref. [9], Vid Ref. [4]). The evidence from the study was then used to justify the organisers of the display in to changing the flight path away into a different direction in the Bay to safeguard the Heritage buildings (Figures 20–22).
Helier chapel from 555 AD in the flight path.
From the shore the aerial fly past display over Elizabeth Castle.
The full drone Elizabeth Castle model. The fly through over the complex is along the flight path and St. Helier’s Chapel is in the centre of the picture. Screen shot and fly over.
The drone survey model of the higher in accessible west facing castle walls.
This type of technology, especially the use of drones to gather large numbers of images of a difficult to access part of a structure enables the production of ‘Point Cloud’ models with 3 mm accuracy. This methodology also means that the safety of personnel in gathering data such as at the Castle walls and the difficult and dangerous to access breakwater walls, has increased significantly. Also, distance in using this digital technology is not limited and Heritage conservation knowledge has, or should have, no international boundaries. By using LiDAR and drones to produce digital models, I have been able to work on the strengthening and preservation of several Heritage monuments in China. Examples are the Chongching Gate and the Yongying Bridge in Shanghai and the White Pagoda in Guang’an were able to be assessed for strengthening and preservation using the ‘secret fix’ Cintec anchor method developed in the UK. Through digital communications and from exchanges of data I have been able to provide assistance in these Heritage preservation schemes. Along with the progress of Chinese modernisation and development in recent decades has come the recognition and appreciation by local Government Authorities, the community value of the Heritage monuments being preserved (Figures 23–28, Ref. [15]).
The threatened Chongquing gate to be preserved and strengthened.
The 3D model of the Cintec ‘secret’ anchor strengthening of the gate.
The damage to the slender Yongying bridge.
3D model of the Cintec ‘secret’ anchor strengthening scheme.
LiDAR scan of the white pagoda surface erosion.
Model of the structure for analysis.
In the UK historical bridges and buildings have also had their structural integrity enhanced and preserved using digital models to work with the Cintec Anchors ‘secret fix’ stitching reinforcing anchor system, as demonstrated in the St. Aubins breakwater examples in Section 4.
When modernising areas of city centers for example, façade retention has also been required in terms of Heritage and Planning to enable modern buildings to be constructed within or behind the Heritage façades. The new structure can be tied to the façade to be retained by using these methods.
An important aspect of the accumulation of the digital data work prior to commencing an investigation or study involves obtaining as much historical data from archives, drawings and records obtained from any available source. A good example recently of this whole sequential process and has been the Principal Engineer’s inspection of the Elizabeth Castle Breakwater in St. Helier, Jersey (Figure 29, also refer back to Figures 17 and 18, Ref. [9], Vid Ref. [4]).
The damaged west side of Elizabeth Castle breakwater.
This structure was conceived and constructed in 1860s by the English Victorian era engineer Jonathan Coode (Figure 30). He developed in the course of designing the breakwater a new innovative method for constructing new concrete blocks instead of using large granite stone blocks to construct the Elizabeth Castle Breakwater (Figure 31). It was also discovered in other archive records on the Island that at about this same time, he was able to construct the first concrete lighthouse on the island of Jersey at Corbiere (Figures 32 and 33).
Archive drawings of the breakwater’s construction with concrete blocks instead of granite blocks forming the outer walls of the breakwater.
Principal Engineer’s report using LiDAR and drone information. Ref. [
Archive search of construction of lighthouse. (Link to video materials is available at the end of the chapter).
Lighthouse with raging storm.
The work to preserve and protect the lighthouse at Corbierre in Jersey (Figure 32, Ref. [13], Vid Ref. [5]) has also involved LiDAR scanning common archive research and drone surveys to assess the inaccessible damaged surface coatings to the very first cast concrete lighthouse erected during the UK’s Victorian era in the 1860s (Figure 33). Access there is only gained by a causeway at low tide and is in at a very dangerous rocky part of the Channel.
In terms of circumventing dangerous rocks and restoring Heritage value to a site, the recent work to assess and design the repairs to a sea wall at Les Minquiers, a rock archipelago 20 km south of Jersey, between the island of Jersey and mainland of France, has relied heavily upon a drone survey (Figure 34,Vid Ref. [6]). This particular dangerously rocky outcrop of islands forming an archipelago of unique flora and fauna is virtually inaccessible unless by light small boat (Figure 35). Previously there had been no surveys or any drawings done of the main island itself or the fisherman’s shelter cottages that had historically been built on the island (Figure 36). The ability to replay and ‘pause’ the drone video enabled the difficult and remote access parts of the failed sea wall to be studied and modelled so that a Heritage and environmentally sensitive repair and rebuild could be achieved.
LiDAR model of structure and later a full access drone survey of outer surface, Ref. [6]. (Link to video materials is available at the end of the chapter).
Access to the island at low tide through a rock reef.
Location of the damaged sea wall to be rebuilt.
The issue of using digital capture has therefore come into its own in the modern era and in a practical sense to be able to ‘bring back’ the structure into a design office to be able to discuss the problems and the practical methods that can be used to strengthen and preserve the Heritage structures (Figures 36 and 37 for the sea wall rebuild at Les Minquiers is another good example).
Initial model helped select design geometry of sea wall repairs.
However, the types and format of digital information and records need to be available to all and pooled together if possible and practical so that the various bodies that can benefit from using the visual experiences which has been captured. It should then be practically possible to not only pass on the technical knowledge but also provide a ‘virtual record’ of what was originally constructed from the archive research together with the visual records of how the site investigation and repair work was done. The data stored then remains as a full detailed record of what was done at a particular time to preserve these magnificent heritage structures for future generations to marvel at. This concept puts forward a new way of sharing how these unique structures have been assessed, repaired and strengthened and creates a new paradigm for Heritage Structural Preservation.
Videos are currently being edited professionally and they will be labelled and forwarded to Intech separately.
Jersey Fly through
Gorey fly through
La Hougue Bie
The Hermitage
Lighthouse at Corbierre
Les Minquiers
Video mentioned in References [4, 9, 12] is available to download here: https://arup-my.sharepoint.com/:v:/p/bernadette_gardner/EU9S2nYdaYRDgmyaYCuGCGMBDhTI2F0LK77zEptBojrt0A?e=4gGoD8
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Aalborg University has Two Satellite Campuses, one in Copenhagen (Aalborg University Copenhagen) and the other in Esbjerg (Aalborg University Esbjerg).\n· He is a member of prestigious IEEE (Institute of Electrical and Electronics Engineers), and IAENG (International Association of Engineers) organizations. \n· He is the chief Editor of the Journal of Software Engineering.\n· He is the member of the Editorial Board of International Journal of Computer Science and Software Technology (IJCSST) and International Journal of Computer Engineering and Information Technology. \n· He is also the Editor of Communication in Computer and Information Science CCIS-20 by Springer.\n· Reviewer For Many Conferences\nHe is the lead person in making collaboration agreements between Aalborg University and many universities of Pakistan, for which the MOU’s (Memorandum of Understanding) have been signed.\nProfessor Akbar is working in Academia since 1990, he started his career as a Lab demonstrator/TA at the University of Sussex. After finishing his P. hD degree in 1992, he served in the Industry as a Scientific Officer and continued his academic career as a visiting scholar for a number of educational institutions. In 1996 he joined National University of Science & Technology Pakistan (NUST) as an Associate Professor; NUST is one of the top few universities in Pakistan. In 1999 he joined an International Company Lineo Inc, Canada as Manager Compiler Group, where he headed the group for developing Compiler Tool Chain and Porting of Operating Systems for the BLACKfin processor. The processor development was a joint venture by Intel and Analog Devices. In 2002 Lineo Inc., was taken over by another company, so he joined Aalborg University Denmark as an Assistant Professor.\nProfessor Akbar has truly a multi-disciplined career and he continued his legacy and making progress in many areas of his interests both in teaching and research. 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