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      <title>(2025-26) EC310C-EC31CP Final Year Project Supervisors by </title>
      <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k</link>
      <description>Supervisors and their topics of interest</description>
      <language>en-us</language>
      <pubDate>2025-09-17 08:02:37 UTC</pubDate>
      <lastBuildDate>2026-04-03 15:19:14 UTC</lastBuildDate>
      <webMaster>hello@padlet.com</webMaster>
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      <item>
         <title>Mujib Rahman</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398116</link>
         <description><![CDATA[<div><strong>Project 1: Thermal properties of modified asphalt mixtures</strong></div><div>More than 80% of the globally paved road network is comprised of asphalt pavements. Hot mix asphalt mixture is used in 90% asphalt pavement construction. Uncontrolled temperature during construction is one of the primary reasons for the premature failure of road surfaces. Research has shown that the quality of road construction and maintenance is significantly inferior in winter than summer months. The objective of this project to determine the thermal properties of various modified asphalt mixtures to ensure all seasons (summer, winter, rainy season) superior road construction and maintenance.&nbsp;<br><br>This is a lab-based project. Necessary training will be provided. Student will have the opportunity to work with key industrial partners.&nbsp;<br>(2 student projects could be supported)</div><div><br><br><strong>Project 2: The performance of high PSV recycled aggregate as an anti-slip material </strong><br><br></div><div>One of the important characteristics of roads is the frictional force between the road surface and the vehicle tyres. This force has a direct and critical effect on the skid resistance of vehicles on roads, which makes it a rather important factor when investigating traffic accidents. Many studies have demonstrated that how this factor affects the accident rates on roads. Maintaining acceptable limits of skid resistance is required during the service life of the paved surfaces. However, specific locations, such as pedestrian crossings, bus lanes, roundabout approaches, steep long grades, fast bends, accident blackspots, and high-stress areas, require higher levels of skid resistance due to the higher risk of accidents at these locations. In the UK, many of these high-stress locations are finished with Type 1 High Friction Surface (HFS). Due to the significant increase in demand, the raw material used in HFS becomes very expensive. The objective of this project is to various types of alternative materials in the construction of HFS.&nbsp;<br><br>This is a lab-based project. Necessary training will be provided. Students will have the opportunity to work with key industrial partners. ( 2 student projects could be supported)</div><div><br><br><strong>Project 3: Integrated management of linear highway assets</strong><br><br></div><div>In the developed world, approximately 90% of road spending is on maintenance and rehabilitation (M&amp;R) of the existing network to ensure safety and serviceability. Condition assessment at both network and project levels is, therefore, vital for optimum M&amp;R design towards the goal of achieving sustainable transport infrastructure. Although machine-based condition monitoring, together with manual data collection, can generate continuous streams of data for highway assessment, the sheer variety and volume of the data present unique challenges for analysis and application. Analysing multiple metrics simultaneously further compounds these challenges. As technology continues to rapidly advance, it seems reasonable to question whether we are applying the most efficient and/or effective means for analysing the large volumes of linear highway assets (pavement, safety barrier, signpost, lamppost, side drain, etc) response data being collected. A systematic study is therefore needed to develop a model for distress inventory concerning the specific asset type and then develop robust methodologies for integrated asset management tools. This research project will do a comprehensive desktop study to review various tools and techniques available to road condition surveys, reviewing the current state of the art and identifying the gap in the knowledge.<br>This is a desktop study ( 2 student projects could be supported)<br><br><strong>Project 4:</strong> <strong>Thermally conductive asphalt</strong> - This laboratory-based pilot study aims to investigate the functional, thermal, and mechanical properties of asphalt mixtures incorporating foundry fillers. The project will entail the design and production of semi-impermeable asphalt specimens with 5%, 10%, and 20% conventional filler replacement. The project will evaluate the functional characteristics (macro and micro texture, wet and dry friction), thermal properties (thermal conductivity and diffusivity) and mechanical properties such as stiffness and tensile strength. All results will be compared with control mixtures.<br><br></div><div><strong>Project 5: Sustainable Concrete –</strong> This laboratory-based pilot study will investigate the early-life behaviour of concrete containing recycled slag from steel profiling. The task will involve design and production of concrete specimens by replacing 5%, 10%, and 20% of sand and fine aggregate with recycled foundry slag and powder. A detail investigation will be carried out to evaluate the consistency of these mixtures in terms of their flowability, segregation, dispersion, and curing potential. Subsequently, the mixtures will undergo air and water curing, and their strength development will be monitored using non-destructive methods. Finally, the compressive and tensile strength will be determined and compared with control mixtures.<br><br></div>]]></description>
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         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398116</guid>
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         <title>Matteo Rubinato</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398117</link>
         <description><![CDATA[<p><br></p><p><strong>1)&nbsp;&nbsp;&nbsp; Sewer Rehabilitation in the UK</strong></p><ul><li><p><strong>Objective</strong>: Critically evaluate current practices, challenges, and advancements in sewer rehabilitation in the UK. It aims to assess the effectiveness of existing legislation, engineering methods, and sustainability measures in addressing ageing sewer infrastructure. The dissertation will provide recommendations for enhancing sewer rehabilitation strategies to ensure long-term functionality, environmental protection, and flood mitigation in line with regulatory requirements.</p></li><li><p><strong>Approach</strong>: The dissertation will adopt a multi-disciplinary approach, combining a literature review, case study analysis, and possibly interviews with industry professionals. The literature review will cover key legislation, technical standards, and rehabilitation technologies. Case studies of sewer rehabilitation projects in different parts of the UK will provide practical insights into challenges and best practices.</p></li><li><p><strong>Potential Topics</strong>:</p><ul><li><p>Legislative Framework: An evaluation of UK legislation, such as the Water Industry Act 1991 and Building Regulations 2010, and their influence on sewer rehabilitation.</p></li><li><p>Rehabilitation Technologies: A comparison of traditional and modern techniques, including trenchless technologies like cured-in-place pipe (CIPP) lining and pipe bursting.</p></li><li><p>Environmental Impact: The role of sewer rehabilitation in reducing pollution and achieving Water Framework Directive objectives.</p></li></ul></li><li><p><strong>Type</strong>: Desk-based research</p></li></ul><p><br></p><p><strong>2)</strong>&nbsp; <strong>Evaluation of SuDS Effectiveness in Urban Flood Mitigation</strong></p><ul><li><p><strong>Objective</strong>: Analyze the effectiveness of SuDS in reducing urban flood risk through case studies to be identified via a state-of-the-art literature review, focusing on challenges posed by climate change and increased urbanization.</p></li><li><p><strong>Potential Topics</strong>:</p><ul><li><p>Comparative analysis of SuDS implementations in different cities.</p></li><li><p>Role of SuDS in managing pluvial and fluvial flooding.</p></li><li><p>Assessment of SuDS performance under extreme weather events (e.g., climate change scenarios).</p></li></ul></li><li><p><strong>Type</strong>: Desk-based research</p><p><br></p></li></ul><p><strong>3)&nbsp;&nbsp;&nbsp; Impact of SuDS on Water Quality Improvement</strong></p><ul><li><p><strong>Objective</strong>: Explore how SuDS contribute to improving water quality by filtering pollutants before they enter natural water bodies. This will be achieved by conducting a state-of-the-art literature review and meta-analysis of studies on the water quality benefits of SuDS components (e.g., bio-retention systems, green roofs).</p></li><li><p><strong>Potential Topics</strong>:</p><ul><li><p>Effectiveness of different SuDS in removing specific pollutants (e.g., heavy metals, nutrients, sediments).</p></li><li><p>Role of vegetated SuDS (rain gardens, wetlands) in nutrient uptake and pollutant breakdown.</p></li></ul></li><li><p><strong>Type</strong>: Desk-based research</p><p><br></p></li></ul><p><strong>4)&nbsp;&nbsp;&nbsp; Flow Around Structures</strong></p><ul><li><p><strong>Objective</strong>: Study how water flow interacts with different structures such as bridge piers, embankments, or artificial reefs.</p></li><li><p><strong>Potential Topics</strong>:</p><ul><li><p>Vortex shedding and flow separation around bridge piers.</p></li><li><p>Scouring effects and erosion patterns near structures.</p></li></ul></li><li><p><strong>Type</strong>: Laboratory based work</p></li></ul><p><br></p><p><strong>5)&nbsp;&nbsp;&nbsp; Dam Spillways and energy dissipators</strong></p><ul><li><p><strong>Objective</strong>: Conduct an experimental study on dam spillways and energy dissipators, focusing on optimizing their design for effective flood control and structural safety. The research aims to analyze the hydraulic behavior of spillways under different flow conditions and evaluate the performance of various energy dissipators in reducing downstream erosion and structural damage. The findings will provide recommendations for improving the design of spillways and dissipators to enhance dam safety and environmental protection.</p></li><li><p><strong>Potential Topics</strong>:</p><ul><li><p>Hydraulic Performance of Spillways: Investigation of the flow characteristics over different types of spillways  under varying discharge conditions.</p></li><li><p>Construction and testing of a physical spillway model to evaluate hydraulic behavior and optimize design parameters.</p></li><li><p>Comparative analysis of common dissipator designs such as stilling basins, plunge pools, and stepped spillways in terms of energy dissipation and erosion control.</p></li></ul></li><li><p><strong>Type</strong>: Laboratory based work</p><p><br></p></li></ul><p><strong>6)&nbsp;&nbsp;&nbsp; Hydraulic Jump Analysis</strong></p><ul><li><p><strong>Objective</strong>: Study the characteristics of hydraulic jumps, including energy dissipation and flow pattern transitions. This will be achieved by varying the flow rate to produce hydraulic jumps in the flume and measure water surface profiles and velocity fields.</p></li><li><p><strong>Potential Topics</strong>:</p><ul><li><p>The role of downstream slope on hydraulic jump formation.</p></li><li><p>Energy dissipation across different Froude numbers.</p></li><li><p>Application of hydraulic jumps in energy dissipation structures (like spillways).</p></li></ul></li></ul><ul><li><p><strong>Type</strong>: Laboratory based work</p></li></ul><p><br></p><p><br></p><p><br></p><p>&nbsp;</p><p><br></p><p><br></p>]]></description>
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         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398117</guid>
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         <title>Marina Bock</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398118</link>
         <description><![CDATA[<p>1. Structural performance of aluminium alloys. Scope for lab work, numerical modelling work or desk study. The desk study will involve creating a database of structural performance data, the lab work could include measuring relevant data in the lab and the numerical modelling work will require you to develop computer models with a finite element software. Scope for 3 projects.</p><p><br></p><p>2. Generative AI for structural and or applications. This project will require you to perform generative design using Autodesk Fusion to generate complex and optimised organic structures. You will evaluate AI generated outcomes with FE software and perform parametric studies to generate data. There is freedom to select the structure you want to look at from simple supported beams and columns to complex connections. Scope for 2 projects.</p><p><br></p><p>3. 3D printed metallic alloys. This is a desk study project that will require you to undertake a thorough literature review on 3D printed material data available in scientific journals. You will analyse the data you have obtained and draw conclusions. The data analysis might involve adjusting/deriving mathematical models using Excel. Scope for 1-2 projects.</p><p><br></p><p>4. For QS/CPM students: perceptions of 3D printing from student view to views/opinions from professionals. This study is based on questionnaire/survey and aims to explore perceptions of 3D printing technology.</p>]]></description>
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         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398118</guid>
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         <title>Behzad Rahimzadeh</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398119</link>
         <description><![CDATA[<div>1. Electronic Data Monitoring of Asphalt Pavement Resurfacing</div><div><br></div><div>2. Advance technology and tools for evaluation, testing, specification, mixture proportioning and optimisation for materials used in highway construction, preservation, maintenance, and rehabilitation.</div><div><br></div><div>3. Preservation tools, technologies, and guidance to help maintain pavements in good condition.</div><div><br></div><div>4. Environmental stewardship and sustainability to provide tools and technologies to enable appropriate consideration of the short and long-term environmental implications of pavement engineering decisions, and support expanded use of recycled, reused, and marginal materials in highway pavement construction without detriment to long-term performance.</div><div><br></div><div>5. Pavement management tools and technologies to help understand the condition and performance of the pavement network and make sound decisions concerning investments to preserve and improve the system.</div><div><br></div><div>6. Whole Life Carbon of Highway projects</div>]]></description>
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         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398119</guid>
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         <title>Sam Adu-Amankwah</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398120</link>
         <description><![CDATA[<div><strong>1.&nbsp; Performance of low carbon concrete</strong><br>Concrete is the most used infrastructural material. Its production does not only consume natural resources (e.g. aggregates, cement, and water) but also generates more than 10% of man-made carbon dioxide, principally from clinker production. One approach to make concrete sustainable is to use supplementary cementitious materials (SCMs) e.g. blast furnace slag, calcined clays and fly ash. This project will investigate fresh and hardened state properties of novel low carbon cementitious materials with individual and blends of SCMs.<br><strong><em>Who is this for?</em></strong><em> Anyone with interest in civil engineering materials, knowledge of cement and concrete and keen to gain laboratory experience.<br></em><br><strong>2. Circularity of&nbsp; infrastructural materials </strong><br>&nbsp;Concrete is the most used infrastructural material. Its production does not only consume natural resources (e.g. aggregates, cement, and water) but also generates more than 10% of man-made carbon dioxide. However, concrete-based infrastructures are designed for defined service life. This presents opportunities to reclaim, repurpose and reuse structural elements e.g. columns, beams and slabs, at the end of the design life, thus offsetting the carbon footprint of construction projects. In this desk-based project, you will conduct systematic review of the published literature on deconstruction of rigid concrete-framed structures; establishing feasible reclamation and repurposing strategies and enablers for reuse. <br><strong><em>Who is this for?</em></strong><em> This project will suit you if you are interested in civil engineering materials and you are a careful/critical reader and writer<br><br></em><strong>3. Influence of early age weather patterns on performance of concrete </strong><br>Concrete elements e.g. columns and beams are undergo shrinkage whilst in service, the extent of which depends on weather patterns i.e. temperature and relative humidity. In this laboratory-based project, you will investigate the influence of early stage exposure on dimensional stability. Factors to be investigated include cement type, temperature, humidity and UV exposure.<br><strong><em>Who is this for?</em></strong><em> Anyone with interest in civil engineering materials, knowledge of cement and concrete and keen to gain laboratory experience</em><br><em><br></em><br></div>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398120</guid>
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         <title>Heba N. Sabboubeh</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398122</link>
         <description><![CDATA[<p>1.&nbsp; Construction in conflict zones, political architecture, social architecture, and humanitarian architecture. In addition to spatial justice and urban health, focusing on examining how history, power, and structural inequalities, such as class, gender, race, and age intersect to shape disparities in urban health.</p><p><br></p><p>2. Sustainable construction, green architecture, and the development of smart cities.</p><p><br></p><p>3. Environmental management practices within the construction industry.</p><p><br></p><p>4. Use of recycled materials and strategies for construction waste recycling.</p><p><br></p><p>5. Modern construction techniques, including off-site and prefabricated methods.</p><p><br></p><p>6. Regeneration in construction, including the conversion and adaptation of existing buildings.</p><p><br></p><p>7. Promoting diversity within the construction workforce and trades.</p><p><br></p><p>8. Affordable, sustainable housing and equitable urban development.</p><p><br></p><p>9. Construction project management and innovative project management methodologies.</p><p><br></p><p>10. Enhancing teaching and learning practices in construction and built environment education.&nbsp;</p><p><br></p>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398122</guid>
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         <title>Nii Ankrah </title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398124</link>
         <description><![CDATA[<p>1. Health and Safety in construction</p><p>2. Achieving Circular Economy in construction</p><p>3. Contract administration and dispute resolution topics</p><p>4. Project Delay, Cost Management and Net Zero related topics</p><p>5. Tendering and procurement practices in construction</p><ol start="6"><li><p>Data Centre delivery issues</p></li></ol>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398124</guid>
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         <title>Kenny Park</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398125</link>
         <description><![CDATA[<p>1. Construction Technology to Tackle the Climate Crisis and Net Zero Carbon</p><p><br></p><p>2. Demolition and deconstruction. </p><p><br></p><p>3. Whole life management for construction projects.</p><p><br></p><p>4. The challenges facing UK construction.</p><p><br></p><p>5. Smart System for Construction Project Management.</p><p><br></p><p>6. Technology Adoption in Construction.</p>]]></description>
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         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398125</guid>
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         <title>Nikolaos Tziavos</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398126</link>
         <description><![CDATA[<p><strong>1.</strong> <strong>Performance of composite connections for offshore wind turbine structures<br></strong>Laboratory or numerical work, with necessary training to be provided. Focus on structural level </p><p><br></p><p><strong>2. Cast-in fasteners in High performance concrete</strong></p><p>Laboratory or numerical work, with necessary training to be provided. Focus on structural level </p><p><br></p><p><strong>3. Acoustic Emission testing for defect detection on Reinforced Concrete structures<br></strong>Laboratory based work, with necessary training to be provided. </p><p><br></p><p><strong>4. Continuous monitoring of reinforced concrete elements using acoustic emission</strong></p><p>Desk based study focusing on data analysis of field and experimental testing.</p>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398126</guid>
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         <title>Maxwell Fordjour Antwi-Afari </title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398127</link>
         <description><![CDATA[<ol><li><p>Bio-inspired self-powered wearable IoT sensors for construction health and safety applications: A systematic literature review</p></li></ol><p><br></p><ol start="2"><li><p>Identification and classification of exoskeleton-assisted manual handling tasks in construction: A machine learning approach</p><p><br></p></li><li><p>Human robot collaboration in industrial applications: A systematic review of measurements, technologies, and challenges</p><p><br></p></li><li><p>Integrating large language model, digital twins, and human-robot collaboration in the context of industry 5.0: Framework, challenges and opportunities</p><p><br></p></li><li><p> Artificial intelligence and Bio-inspired self-powered wearable IoT sensors for construction health and safety applications: Review and future research directions</p><p><br></p></li><li><p>Barriers and strategies for implementing robotics and additive manufacturing in the construction industry</p><p><br></p></li><li><p>Implementation of cybersecurity technologies in project lifecycle: A review and conceptual framework</p><p><br></p></li><li><p>A systematic review of digital twins, big data, and blockchain technology towards Construction 5.0 applications</p><p><br></p></li><li><p>Factors affecting the implementation of self-powered wearable IoT sensors in the construction industry: A structural equation modeling and fuzzy set theory</p><p><br></p></li><li><p>Drivers/Barriers/Strategies for the adoption of advanced digital technologies (Digital twin, AR/VR/XR, robotics, blockchain, etc) for sustainable construction projects in developed and developing countries: Structural Equation Modelling, Fuzzy Set Theory, Delphi Approach, Artificial Neural Network, Factor Analysis</p><p><br></p></li><li><p>Any suggested topic in the field of Construction Informatics, Construction Health &amp; Safety, Construction Ergonomics, Digital Construction Technologies and Innovations (e.g., BIM, wearable sensors, IoT, Digital twin, robotics, exoskeleton, etc.)</p></li></ol>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398127</guid>
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         <title>James Hart</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398128</link>
         <description><![CDATA[<ol><li><p>Nature based solutions for flood mitigation&nbsp;</p></li><li><p>Nature based solutions for pollution mitigation</p></li><li><p>Alternative and innovative methods for generating hydro power</p></li><li><p>Pollution transport in groundwater systems</p></li><li><p>Sustainable Urban Drainage Systems and stormwater management</p></li><li><p>Pollution transport in environmental flows (Rivers, Wetlands, Ponds etc.)</p></li><li><p>Pollution transport in water distribution networks</p></li></ol><p><strong>&nbsp;<br></strong></p><p><br></p>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398128</guid>
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      <item>
         <title>Tala Kasim </title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398130</link>
         <description><![CDATA[<p>1.&nbsp; Challenges of managing construction information and data sharing-&nbsp; BIM Integrated solutions for construction managements&nbsp;</p><p>2. New approach for residential property development through transparent project planning and control&nbsp; &nbsp;&nbsp;</p><p>3. Health and safety at constructions site, use of QR-based information management system&nbsp;</p><p>4. Development of information management system of construction equipment- A case study for Aston University construction labs&nbsp;</p><p>5. Comparative study on environmental assessment methods an rating systems&nbsp; used in the UK and Internationally and&nbsp; the possibility for automation</p><p>6. Any student suggested topic on the field of BIM, digital construction and the impact of COVID 19 on construction workflow</p><p>7. Advancements and Challenges in 3D Printed Concrete for Civil Engineering Applications</p><p>8. Materials optimisation for 3D printed concrete</p><p>9. Integrating sensing technologies with 3D printed concrete</p><p>10. A Critical Review of Digital Twin Technology in Civil Engineering</p><p>11. Integration of Digital Twins and Building Information Modelling (BIM) for Infrastructure Management</p>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398130</guid>
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      <item>
         <title>Haris (Charalampos) Alexakis</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398131</link>
         <description><![CDATA[<div><strong>1. A brief history of the Masonry Arch: from Mesopotamia to Modern Times</strong><br><br></div><div>For those with interest to learn more about the Architectural Heritage, History of Structures or Structural Mechanics<br><br></div><div><strong>2. Fibre optic sensors and their applications in Civil Engineering</strong><br><br></div><div>For those with interest in Digital Technologies, like fibre optic sensing systems, for enhanced management and maintenance of civil infrastructure.<br><br></div><div><strong>3. Non-destructive testing methods and their applications in Bridge Monitoring</strong>&nbsp;<br><br></div><div>For those with interest in Digital Technologies, like acoustic emission sensing systems, for enhanced management and maintenance of bridges.<br><br></div><div><strong>4. Acceleration-based deterioration monitoring for ageing infrastructure</strong><br><br></div><div>For those with interest to learn more about signal processing and how to use accelerators for the condition monitoring of structures.<br><br></div><div><strong>5. Fibre Optic-based deterioration monitoring for ageing infrastructure</strong><br><br></div><div>The focus is on the use of novel sensing to tackle the challenge of complex deteriorating system, such as old Victorian Railway Bridges<br><br></div>]]></description>
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         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398131</guid>
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         <title>Gayan Wedawatta </title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398132</link>
         <description><![CDATA[<ol><li><p>Financial performance of large-scale construction companies - trends, challenges and opportunities</p><p><br></p></li><li><p>Late and delayed payment in construction, security of payment</p><p><br></p></li><li><p>Business failure and bankruptcies in construction</p><p><br></p></li><li><p>Relationship between retention and profits for construction businesses</p><p><br></p></li><li><p>Strategic priorities for the construction industry in the age of AI</p><p><br></p></li><li><p>Collaborative procurement practices in the construction industry - Integrated Insurance and Cost-led Procurement&nbsp;</p><p><br></p></li><li><p>Smart contracts in construction - How 'smart' are they at the moment?</p><p><br></p></li><li><p>Next fastest thing or the next most important thing - work prioritisation for busy QSs/PMs</p><p><br></p></li><li><p>Review of teaching pedagogy used in built environment UG/PG programmes&nbsp;</p><p><br></p></li><li><p>Cost-benefit analysis of Chinese Sponge Cities (or similar) for flood resilience</p><p><br></p></li><li><p>Citizen oriented digital twins for disaster resilience in the age of Society 5.0</p></li></ol>]]></description>
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      <item>
         <title>Mershack Opoku Tetteh</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398134</link>
         <description><![CDATA[<div>My research interests cover a wide range in the area of construction engineering with a focus on construction project management and advanced technology applications. <br>&nbsp;<br>&nbsp;1. This includes <em>international construction </em>and <em>management<br>strategies;</em><br> <br> 2. Forming and building <em>hybrid-oriented project-based partnerships – international construction joint ventures;</em><br> <br> 3. C<em>ontract management and administration</em>; <br> <br> 4. C<em>onstruction procurement and digital supply chain management; <br></em><br>&nbsp;5. G<em>reen and sustainable construction;</em> <br> <br> 6. T<em>ransforming aged existing buildings to Net Zero Energy Buildings;</em> <br> <br> 7. Developing comprehensive models for complex <em>infrastructure management processes; <br>&nbsp;<br></em>8. Intelligent decision support systems for infrastructure design, construction, maintenance, and operation processes; <br>&nbsp;<br>&nbsp;9. M<em>odular and offsite construction; <br></em><br>&nbsp;10. B<em>uilding information modeling;</em> <br> <br> 11. A<em>rtificial intelligence, and other digital technologies - i.e. augmented reality, digital twin.<br></em><br></div>]]></description>
         <enclosure url="" />
         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398134</guid>
      </item>
      <item>
         <title>Ahmed Abed</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398135</link>
         <description><![CDATA[<p><strong>1-Moisture Effects on Clay Settlement under a Changing Climate</strong></p><p>UK clays undergo significant volume changes with seasonal wetting and drying. This project investigates how moisture variation affects settlement and strength of compacted clay, linking results to climate-driven foundation risks.</p><p><br></p><p><strong>2-Ground Improvement Strategies for Compressible UK Soils</strong></p><p>Infrastructure on weak soils suffers excessive settlement. This project evaluates laboratory ground improvement treatments and models compressibility reduction and strength gains to enhance long-term performance of transport infrastructure.</p><p><br></p><p><strong>3- Reducing Soil Permeability Using Sustainable Additives</strong></p><p>Low-permeability soil layers are critical for embankments, tunnel linings, and cutoff walls. This project investigates how sustainable additives, such as industrial by-products or biochar, affect soil hydraulic conductivity using permeability-cell tests, providing practical guidance for environmentally friendly ground improvement.</p><p><br></p><p><strong>4- Assessment of water damage on the fatigue life of asphalt</strong></p><p>Water damage significantly reduces the fatigue performance of Stone Mastic Asphalt (SMA). This project investigates how varying moisture content affects the fatigue life of 14 mm SMA mixtures using Indirect Tensile Fatigue Testing (ITFT) at multiple stress levels.</p><p><br></p><p><strong>5- Development of an Accelerated Asphalt Saturation Model Using Low Vacuum Pressure</strong></p><p>Water ingress over time degrades asphalt pavements. This project develops an accelerated laboratory method to simulate long-term asphalt saturation using low vacuum pressure, evaluating how air voids and gradation affect water uptake, and building predictive statistical models.</p><p><br></p><p><br></p><p><br></p><p><br></p>]]></description>
         <enclosure url="" />
         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398135</guid>
      </item>
      <item>
         <title>Denis Chamberlain</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398136</link>
         <description><![CDATA[<div><strong>1. Comparison of environmental impact for road transportation options.<br></strong><br></div><div><strong>Objective:</strong> to determine the best environmental options for future road transportation<br><br></div><div><strong>Background</strong>:&nbsp;<br><br></div><div>Production of lithium-based batteries for electric vehicles could be responsible for one of the greatest ever ecological disasters in terms of land pollution. At the same time electric vehicles are seen as part of the solution for global warming. Is there a role for compressed&nbsp; air powered vehicles with their pure air exhaust. There are diesel power vehicles with superior performance and substantially less exhaust pollution than some modern petrol cars. How do hybrid vehicle compare and what about vehicles using fuel cells, are they safe. In view of the UK GOVs potential 20mph limit for cities, is there a role for e-power assisted cycles/trikes.<br>&nbsp;<br><br></div><div><strong>2. Preventing pothole repair failure in -15 to + 10 deg C ambient temperature range&nbsp;<br></strong><br></div><div><strong>Objective:&nbsp; </strong>To determine by digital modelling and laboratory experimentation an optimal preheating sequence (time and energy) for pothole repairs in the -15 to +15 deg C ambient temperature.<br><br></div><div><strong>Background:<br></strong><br></div><div>Current hot asphalt repair methods are unreliable because they are NOT founded on the scientific principles of thermal energy transfer within and between adjacent masses.&nbsp; This needs to be understood&nbsp; because asphalt material has high specific heat (large heating requirement), low thermal conductivity (weak heat propagation) and limited safe maximum working temperature (fire risk).&nbsp; Incorrectly, current repair methods rely on the hot mix, which is placed in the pothole, heating up the cold pothole surfaces to achieve a bond&nbsp; (&gt;85 deg C). There are many influential factors such as thermal properties of repair mix and pothole void, pothole dimensions, climatic conditions (wind and ambient temp etc), temperature of the repair mix and pothole void and speed of repair process (especially in cold weather). Preheating the base asphalt prior to placing the hot asphalt fill is a way of ensuring repair interface temperature remains above 85degC during the following compaction stage. This invest heat energy is shared with the placed fill mix.<br><br></div><div>Aston University pavement laboratory has a mobile heater for pre-heating pothole repairs.</div><div>&nbsp;<br><br></div><div><strong>3. Preventing cold weather pothole repair failures when using cooled asphalt mix fill. &nbsp;<br></strong><br></div><div><strong>Objective:&nbsp; </strong>To determine by digital modelling and laboratory experimentation&nbsp; preheating sequences for pothole repairs using asphalt mix fill in the 100 -120 deg C range for 5 degC ambient temperature.<br><br></div><div><strong>Background:<br></strong><br></div><div>Current hot asphalt repair methods are unreliable because they are NOT founded on the scientific principles of thermal energy transfer within and between adjacent masses.&nbsp; This needs to be understood&nbsp; because asphalt material has high specific heat (large heating requirement), low thermal conductivity (weak heat propagation) and limited safe maximum working temperature (fire risk).&nbsp; Incorrectly, current repair methods rely on the hot mix, which is placed in the pothole, heating up the cold pothole surfaces to achieve a bond&nbsp; (&gt;85 deg C). There are many influential factors such as thermal properties of repair mix and pothole void, pothole dimensions, climatic conditions (temps, wind etc), temperature of the repair mix and pothole void and speed of repair process (especially in cold weather). Preheating the base asphalt prior to placing the hot asphalt fill is a way of ensuring repair interface temperature is remains above 85degC during the following compaction stage.&nbsp;<br><br></div><div>Aston University pavement laboratory has a mobile heater for pre-heating pothole repairs.<br><br><br></div><div><strong>4. Effectiveness of pre-heating in the application of thin overlays (25mm &amp; 40mm) on low temperature asphalt base.<br></strong><br></div><div><strong>Objective:&nbsp; </strong>To determine by digital modelling and experimentation the shear and bond strength of hot applied mastic overlays on pre-heated asphalt base applied in cold weather conditions.<br><br></div><div><strong>Background:<br></strong><br></div><div>Current hot asphalt overlay surfacing methods are unreliable because they are NOT founded on the scientific principles of thermal energy transfer within and between adjacent masses.&nbsp; This needs to be understood&nbsp; because asphalt material has high specific heat (large heating requirement), low thermal conductivity (weak heat propagation), possible weak transfer at interfaces (overlay - base) and limited safe maximum working temperature (fire risk).&nbsp; Incorrectly, current hot overlays at 140degC, for example, are expected to always remain &gt;85degC on&nbsp; base-overlay interface during laying and the following compaction process. At low temperature this is unlikely to be realised thus risking bond failure on the overlay-base interface. There are many influential factors such as thermal properties of overlay mix and asphalt base, &nbsp; climatic conditions (temps, wind etc), temperature of the overlay mix and road base and speed of overlay process (especially in cold weather). Preheating the base asphalt prior to placing the hot asphalt fill is a way of ensuring repair interface temperature remains&nbsp; above 85degC during the following compaction stage.&nbsp;<br><br></div><div>Tension (pull off), shear strength and tracker wheel testing are possible ways of assessing the likely durability of the overlay.<br><br></div><div>Aston University pavement laboratory has a mobile heater for pre-heating asphalt surfaces.<br><br><br></div><div><strong>5. Effectiveness of pre-heating in the application of thin overlays (25mm &amp; 40mm) on low temperature concrete base.<br></strong><br></div><div><strong>Objective:&nbsp; </strong>To determine by digital modelling and experimentation the shear and bond strength of hot applied mastic overlays on pre-heated concrete base applied in cold weather conditions.<br><br></div><div><strong>Background:<br></strong><br></div><div>Current hot asphalt overlay surfacing methods are unreliable because they are NOT founded on the scientific principles of thermal energy transfer within and between adjacent masses.&nbsp; This needs to be understood&nbsp; because asphalt and concrete both have high specific heat (large heating requirement), low thermal conductivity (weak heat propagation) plus limited safe maximum working temperature in the case of the asphalt overlay. Incorrectly, current hot overlays at 140degC, for example, are expected to remain &gt;85degC on the base-overlay interface during laying and the following overlay compaction process, irrespective of ambient temperature (at &gt;5degC). At low temperature this is unlikely to be realised thus risking bond failure on the overlay-base interface.&nbsp;<br><br></div><div>There are many influential factors such as thermal properties of repair mix and overlay thickness, climatic conditions (temps, wind etc), temperature of the overlay mix and concrete road base and speed of laying process (especially in cold weather). Preheating the concrete base, prior to placing the hot overlay, is a way of ensuring repair interface temperature is marginally above 85degC during the following compaction stage.&nbsp;<br><br></div><div>Tension (pull off), shear strength and tracker wheel testing are possible ways of assessing the likely durability of the overlay.<br><br></div><div>Aston University pavement laboratory has a mobile heater for pre-heating concrete surfaces.<br><br></div><div><br></div><div><strong>6. Managing RAAC Concrete in Buildings and Structures<br></strong><br></div><div><strong>Objective:&nbsp; </strong>To objectively review the threat and management of RAAC concrete in buildings<br><br></div><div><strong>Background:<br></strong><br></div><div>The current RAAC (Reactive Aluminous Aggregate Concrete) scare refers to the concerns and controversies surrounding the use of RAAC in construction projects.. The background to the current RAAC scare can be traced back to the 1990s when RAAC was first introduced as a promising alternative to traditional concrete. It was marketed as a durable and sustainable material with potential applications in various construction projects.</div><div>As a result of failure incidents, regulatory bodies and industry organizations started investigating the use of RAAC and its potential risks. Guidelines and standards were developed to provide recommendations for the use of RAAC in construction projects. Despite these efforts, the RAAC scare continues to persist due to the inherent uncertainties and challenges associated with the material. The long-term performance of RAAC remains a subject of debate, and there is a lack of consensus among experts regarding its suitability for various applications. As a result, many construction professionals and project owners have become cautious about using RAAC, opting for alternative materials with proven track records. This has led to a decline in the demand for RAAC and a shift towards more traditional concrete mixes.</div><div><strong>&nbsp;</strong></div><div><strong>Activity:</strong> Desk top data/information gathering and analysis.&nbsp;</div>]]></description>
         <enclosure url="" />
         <pubDate>2025-09-17 08:02:37 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589398136</guid>
      </item>
      <item>
         <title>Chonghui Wang</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589401122</link>
         <description><![CDATA[<ol><li><p>Exploring how smart construction technologies can improve asphalt pavement quality</p><p><br></p></li><li><p>Applications and trends of smart sensing technologies in infrastructure construction</p><p><br></p></li><li><p>Analysing the application potential of digital twin technology in transport infrastructure</p><p><br></p></li><li><p>Emerging asphalt materials and their application prospects in pavement engineering</p><p><br></p></li><li><p>Key technologies and practical pathways to improve asphalt pavement construction efficiency</p><p><br></p></li><li><p>Practical applications and challenges of Reclaimed Asphalt Pavement (RAP) in UK road construction</p><p><br></p></li><li><p>Assessing the suitability of smart construction materials for sustainable pavement development</p></li></ol>]]></description>
         <enclosure url="" />
         <pubDate>2025-09-17 08:05:02 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3589401122</guid>
      </item>
      <item>
         <title>Yakubu Olawale</title>
         <author>calexakis</author>
         <link>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3595559359</link>
         <description><![CDATA[<ol><li><p>The Role of Construction Contracts in Construction Project Success&nbsp;</p></li><li><p>The factors causing low profitability of construction companies in the UK</p></li></ol>]]></description>
         <enclosure url="" />
         <pubDate>2025-09-21 07:05:12 UTC</pubDate>
         <guid>https://padlet.com/calexakis/rjzzbaixizi0rz5k/wish/3595559359</guid>
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