Environmental Sustainability of Advanced Structures: A Descriptive and Thematic Analysis
Abstract
1. Introduction
2. Research Methodology
2.1. Keywords Selection, Search Strings, Strategy, and Article Search
2.2. Database Selection
2.3. Study Selection and Data Screening
2.4. Data Collection and Analysis
2.5. Descriptive and Thematic Analysis
3. Descriptive Analysis
3.1. Literature Frequency and Trends
3.2. Advanced Structures
3.2.1. Lightweight
3.2.2. Long Span Structures
3.2.3. Smart, BIM, Technology
3.2.4. Structural Safety
3.2.5. Form and Aesthetics
4. Thematic Analysis
4.1. Air Quality
4.2. Carbon Emissions
4.3. Construction Waste
4.4. Energy Efficiency
4.5. Green Environment
4.6. Life Cycle Assessment
4.7. Materials
4.8. Site and Land Use
4.9. Green Certification
4.10. Thermal Performance
5. Discussion
- LCA of TMS: Conduct an exhaustive LCA for TMS, quantifying the carbon emissions throughout their lifecycle—from material extraction to end-of-life disposal. This should encompass a detailed analysis of carbon footprints attributable to various tensile materials and their respective design and construction methodologies.
- Technological Innovations in Steel Structures: Investigate contemporary technological innovations in steel structures, with a special focus on their contributions to environmental sustainability. This research should evaluate the efficacy of innovative technologies in reducing the ecological impact during the steel structure’s lifecycle.
- Sustainable Design and Material Reuse in Steel Structures: Explore sustainable design strategies in steel construction, emphasizing material reuse. Research should aim to develop sustainable design frameworks that enhance material circularity and reduce waste in steel structures.
- Thermal Performance of LSS and Timber Structures: Analyze the thermal performance of long-span and timber structures through empirical case studies, advanced simulation techniques, assessments of solar radiation impact, and comprehensive site surveys. Studies should aim to inform design strategies that optimize energy efficiency and occupant comfort.
- Impact of Construction Waste in LSS and Timber Structures: Examine the environmental effects of construction waste generated by long-span and timber structures by conducting a life cycle assessment. Such analysis should consider the implications of waste management practices from the procurement of raw materials to the structure’s deconstruction.
- Energy Performance of Timber Structures: Assess the energy performance of timber structures through methodical case studies and continuous energy consumption monitoring throughout their entire lifecycle. The focus should be on uncovering opportunities for energy optimization and sustainability in timber-based construction.
- Site and Land Use Analysis for Advanced Structures: Investigate the site selection and land use planning processes for advanced structures. This research should include detailed case studies and site analyses to evaluate the environmental, social, and regulatory implications of land use decisions.
6. Conclusions
- Life cycle assessment of emerging structural systems: Comprehensive LCAs of underexplored systems (e.g., TMS, modular, hybrid) to assess embodied/operational carbon, energy use, and long-term sustainability should be conducted.
- Technological innovation and circular design: The impact of emerging technologies—such as prefabrication and smart systems—on reducing environmental footprints and promoting material reuse in structural engineering should be evaluated.
- Climate-responsive and site-sensitive design: Thermal and energy performance studies for long-span and timber structures should be advanced through simulations and case analyses, incorporating land use and site planning insights.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
CD | Construction Demolition |
CLT | Cross Laminated Timber |
CFD | Computational Fluid Dynamics |
CFRP | Carbon Fiber Reinforced Polymer |
ETFE | Ethylene Tetrafluoroethylene |
LCA | Life Cycle Assessment |
LSS | Long Span Structures |
PCMs | Phase Change Materials |
PEC | Precast Energy-dissipating Connection |
PTFE | Polytetrafluoroethylene |
PRISMA | Preferred Reporting Items for Systematic Reviews and Meta-analysis |
SLR | Systematic Literature Review |
TMS | Tensile Membrane Structures |
UHPC | Ultra-High-Performance Concrete |
Appendix A
Paper Title | Keywords | Nodes and Codes by NVivo | Research Methodology | Study Type | Citation | |
---|---|---|---|---|---|---|
1 | Circular economy application for a Green Stadium construction towards sustainable FIFA world cup Qatar 2022™ | Recycled concrete, Circular economy, Carbon footprint, Life cycle sustainability assessment, Sustainable construction, FIFA world cup 2022™ | Materials: concrete, Site & land use, Carbon emissions, Lifecycle assessment, Construction waste | Cyclopean concrete (CYC) methodology compared to conventional concrete (CC) using: Case Study: ECS project. System boundaries study for both materials. Literature review. | Empirical | [1] |
2 | Comparative whole building life cycle assessment of energy saving and carbon reduction performance of reinforced concrete and timber stadiums—A case study in China | Reinforced concrete, Timber, Energy saving, Carbon reduction | Materials: timber, concrete, long spans, Carbon emissions, Lifecycle assessment, BIM, Smart, Technology | Simulation, Modelling and LCA analysis: Flowchart of the life cycle energy assessment (LCEA). Flowchart of the life cycle carbon assessment (LCCA), Mass and volume of RC and timber buildings. Established model in the Integrated Environmental Solutions software platform (Integrated Environmental Solutions—VE (IES-VE) | Simulation | [14] |
3 | Thermal performance of stadium’s Field of Play in hot climates | Energy in sport facilities, Stadiums thermal performance, Urban heat island, Environmental simulation, Microclimate modelling | Long spans, Site & land use, Energy efficiency, green environment, Technology, Thermal performance | Direct Numerical Simulation (DNS) model. Simulating stadium FoP microclimate system using prognostic 3D ENVI-met climate model. | Simulation | [15] |
4 | Using simulation-based modelling to evaluate light trespass in the design stage of sports facilities | light pollution; light trespass; glare; sky glow; environmental lighting zones; sport lighting | Technology, BIM, Smart, Form & aesthetics, Long-spans, Energy efficiency: lighting | Quantifying existing light pollution. Predicting light trespass with computer simulations. | Simulation | [16] |
5 | The adoption and diffusion of pro-environmental stadium design | environment; stadium construction; design; decision-making; public policy | Smart, BIM, Technology, Construction waste, Long spans, green certification | Literature review: Eco-friendly sport facilities. Standardized, open-ended interviews with architects and relevant professionals. NVivo 10 qualitative analysis. | Empirical | [17] |
6 | Energy efficiency and thermal performance of lightweight steel framed (LSF) construction: A review | buildings; lightweight steel-framed (LSF); energy performance; thermal energy storage; phase change materials (PCM); life cycle assessment (LCA) | Lightweight, Carbon emissions, Materials: steel, Thermal performance, Energy efficiency | Dynamic and holistic simulation methodologies. Eurocode [68] analytical method to calculate U-values. | Simulation | [20] |
7 | Airports and environmental sustainability: A comprehensive review | aviation, greenhouse gases, environmental impact, environmental footprint, infrastructure | Energy efficiency: water, Site and land use, long spans, Materials, Construction waste, Air quality | Systematic Literature review and technical reports about airport buildings’ sustainability. Case study: San Francisco International Airport (SFO). | Conceptual | [21] |
8 | Research on the Indoor Physical Characteristics of the Ceiling of China National Aquatics Center under the Demand of the Olympic Games | ice stadium; building renovation; ceiling enclosure structure; indoor environmental condition | Materials, Textile, Tensile, membrane, Long-spans, Thermal performance | Case study: Water Cube/Beijing. Analysis of heat transfer performance. On-site tests. Simulation. | Simulation | [24] |
9 | Improving the sustainability of steel roofs: life cycle assessment of a case study roof | life cycle assessment; global warming potential; steel roofs; GaBi Ts; New Zealand | Roof systems, Materials: steel, Carbon emissions, Energy efficiency, Lifecycle assessment | LCA of a case study roof in NZ. GaBi Ts software Version 9.1.0.53. | Empirical | [26] |
10 | Embodied CO2 Reduction Effects of Composite Precast Concrete Frame for Heavily Loaded Long-Span Logistics Buildings | embodied CO2; reduction effect; composite precast concrete; sustainable structure; logistics building | Long spans, Advanced structures, Materials: concrete, steel, Carbon emissions, Smart, BIM, Technology | Case study: HLS logistics building. Re-designing a typical girder with a SMART frame. | Empirical | [27] |
11 | Environmental Sustainability in Stadium Design and Construction: A Systematic Literature Review | Environmentally Sustainable Stadium (ESS); mega-events; stadiums; environmental sustainability; design; construction; systematic literature review | Materials: bricks, masonry, cement, Energy efficiency: lighting, water, Construction waste, Thermal performance, Carbon emissions, Lifecycle assessment, long spans, green certification | Systematic Literature review: Keywords selection, search strings, strategy, and article search Database selection Study selection and Data screening Thematic analysis Descriptive analysis | Conceptual | [30] |
12 | Sustainability Improvement in the Design of Lightweight Roofs: A New Prototype of Hybrid Steel and Wood Purlins | sustainability; wooden structures; steel structures; design guide | Lightweight, Energy efficiency: water, Materials: steel, timber, Carbon emissions, Technology, Long spans, Construction waste | Comparative analysis of material behavior. Examining the effect of tensile stress and deformation criteria (CYPE 3D software). Design guide that provides a technical framework. | Simulation | [33] |
13 | Life Cycle Design and efficiency principles for membrane architecture: towards a new set of eco-design strategies | Membrane skins; Eco-efficiency; Time; Environmental Impacts; Life Cycle Assessment, Lightweight Buildings | Lifecycle assessment, Textile, Tensile, Membrane, Lightweight, Materials: fabric, Energy efficiency | Literature review: comparison between existing environmental data on membranes (LCA). A proposal of Eco-efficiency design strategies for membrane structures. | Conceptual | [34] |
14 | CO2 emission reduction effects of an innovative composite precast concrete structure applied to heavily loaded and long-span buildings | CO2 emission, Reduction effect, SMART frame, Composite precast concrete | Long spans, Materials: concrete, steel, Smart, BIM, Technology, Carbon emissions | Survey of green frame characteristics. Concept of the SMART frame. Case study analysis of energy and CO2 emissions: Car park building in Gyeonggi-do | Empirical | [35] |
15 | Development of performance criteria for sustainability evaluation of modular versus conventional construction methods | Modular construction, Conventional construction, Sustainability performance indicators, Sustainability criteria | Construction waste, green certification, Lifecycle assessment, Technology, Smart | Survey design. Survey implementation. Data analysis. | Empirical | [36] |
16 | Topology optimization of active tensegrity structures. Computers & Structures | Tensegrity structures, topology optimization, lightweight design, structural optimization | Lightweight, Advanced Structures, Smart/BIM Technology | Computational topology optimization methods applied to active tensegrity structures to achieve lightweight designs | Empirical | [38] |
17 | Fully solar-powered airport: A case study of Cochin International Airport | Greenhouse gases, Aerotropolis, Utility scale PV, SCADA, PVSyst, Zero emission | Long spans, Energy efficiency: lighting, Carbon emissions, Thermal performance | On-site visit and data collection. Performance indicators. Simulation software (PVSyst, SolarGIS) Economic and environmental benefits. | Simulation | [39] |
18 | An efficient Bayesian method with intrusive homotopy surrogate model for stochastic model updating | Bayesian method, intrusive homotopy, surrogate model, stochastic model updating, uncertainty quantification | Advanced Structures, Smart, BIM, Technology | Quantitative; computational modeling, Bayesian inference, surrogate modeling, uncertainty analysis | Simulation | [40] |
19 | Deep learning-based acoustic emission data clustering for crack evaluation of welded joints in field bridges | Crack evaluation, Acoustic emission, Deep learning, Data clustering, Operational noise, Damage mechanisms | Environmental Sustainability, Materials, Life Cycle Assessment, Advanced Structures, Smart/BIM Technology, Structural Safety, Long Spans | Data acquisition, preprocessing, feature extraction, clustering algorithm, classification, validation | Empirical | [41] |
20 | Hypergraph-Based Model for Modeling Multi-Agent Q-Learning Dynamics in Public Goods Games | Multi-agent systems, Q-learning, hypergraph, public goods games, reinforcement learning | Smart/BIM Technology | Theoretical modeling using hypergraph structures to analyze multi-agent Q-learning dynamics in public goods games. | Simulation | [42] |
21 | Falling risk analysis at workplaces through an accident data-driven approach based upon hybrid artificial intelligence (AI) techniques | Workplace safety, fall risk, AI techniques, and data-driven analysis | Smart/BIM Technology, Structural Safety | Application of hybrid AI techniques to analyze accident data for assessing falling risks in workplaces | Empirical | [43] |
22 | Sustainability-based lifecycle management for bridge infrastructure using 6D BIM | building information modelling (BIM); 6D; bridges; planning and scheduling; cost; carbon emission; life cycle | Smart, BIM, Technology, Long-spans, Carbon emissions, Lifecycle assessment | Case study: Donggou Bridge. Simulation and BIM modeling. BIM-based data extraction for the LCA. | Empirical | [44] |
23 | Firm-level perception of uncertainty, risk aversion, and corporate real estate investment: Evidence from China’s listed firms | Perception of uncertainty, Corporate real estate investment, Risk aversion | Smart/BIM Technology (textual analysis), Structural Safety (investment risk) | Textual analysis of MD&A reports, Panel data regression (2007–2019) | Empirical | [45] |
24 | Experimental investigation of sliding-based isolation system with re-centering functions for seismic protection of masonry structures | Seismic isolation, re-centering, masonry structures, experimental study | Structural Safety | Experimental testing of a sliding-based isolation system with re-centering capabilities for masonry structures | Empirical | [46] |
25 | Experimental and numerical investigation of the mechanical behavior of the segmental joint of shield tunnelling strengthened by prestressed CFRP plates | Shield tunneling, segmental joints, CFRP strengthening, and mechanical behavior | Structural Safety | Combined experimental and numerical analysis of segmental joints in shield tunneling, strengthened with prestressed CFRP plates. | Empirical | [47] |
26 | Seismic performance of steel-PEC spliced frame beam. Journal of Constructional Steel Research | Seismic performance, steel-PEC beam, spliced connections, structural analysis | Structural Safety | Evaluation of seismic behavior of steel-PEC spliced frame beams through experimental studies. | Empirical | [48] |
27 | Cyclic performance of novel composite beam-to-column connections with reduced beam section fuse elements | Composite connections, reduced beam section, cyclic loading, structural resilience | Structural Safety | Experimental assessment of the cyclic performance of novel composite beam-to-column connections featuring reduced beam section fuse elements | Empirical | [49] |
28 | Inter-Storey Isolation Versus Base Isolation Using Friction Pendulum Systems. | Seismic isolation, inter-storey isolation, base isolation, friction pendulum systems | Structural Safety | Comparative analysis of inter-storey and base isolation strategies using friction pendulum systems through experimental and numerical methods. | Empirical | [50] |
29 | Safety and serviceability of membrane buildings: A critical review on architectural, material, and structural performance | Architectural performance, Building serviceability, Material model, Material properties, Membrane buildings, Spatial structures, Structural analysis, Structural safety | Materials: fabric, Membrane structures, Structural safety, long spans, Energy efficiency: lighting, Thermal performance, Form & aesthetics | Literature review: comparing relevant theories, experiments, and simulations on building performance, mechanical properties, and structural behavior of membrane structures. Schematic diagrams for analyzing building forms. Tables to represent constitutive models used for fabrics. | Simulation | [51] |
30 | The Use of Textile-Based Materials in Shell System Design in Architecture and an Evaluation in Terms of Sustainability | Building shell, textile, textile architecture, architectural sustainability | Materials: textile, Membrane structures, Carbon emissions, Technology, Form & Aesthetics | Case Studies: Eden project Alliance Arena Water Cube. | Empirical | [52] |
31 | Life cycle engineering of lightweight structures | Life cycle, Methodology, Lightweight structures | Materials: steel, Form & aesthetics, Technology, Lifecycle assessment, Lightweight | Lifecycle engineering framework. Literature review: lightweight structures applications. | Conceptual | [53] |
32 | A Discussion on the Advantages of Steel Structures in the Context of Sustainable Construction | Sustainability, Sustainable construction, Steel, Life cycle | Life Cycle Assessment, Carbon emissions, Energy Efficiency, Materials: steel | Descriptive literature information. Framework for sustainable construction. Sustainability criteria in Life Cycle of steel diagrams. | Conceptual | [54] |
33 | Advances in Composite Structures: A Systematic Review of Design, Performance, and Sustainability Trends | Composite materials, Structural design, Performance optimization, Sustainability in engineering, and lightweight structure | Carbon Emissions, Smart, BIM, Technology, Environmental Sustainability, LCA, Energy Efficiency | Systematic literature review, inclusion/exclusion criteria, extracted data on design, performance, and sustainability trends in composite structures. | Conceptual | [55] |
34 | Carbon emission assessment for steel structure based on lean construction process | Carbon emission, Construction process, Lean principle, LCA, Steel structure | Energy efficiency: electricity, Construction waste, Lightweight, Lifecycle assessment, green certification, Carbon emissions, Materials: steel | Partial lifecycle assessment framework. Case study and previous measurements proposed. | Empirical | [56] |
35 | Sustainable design strategies for sports stadiums | Sports stadiums, Sustainable design, construction, and operations | Construction waste, Carbon emissions, Materials, Lightweight, Long spans, Energy efficiency. | Case studies: National Stadium: Kaohsiung, Taiwan, Olympic Park: London, England. Comparison of energy usage for traditional and non-traditional stadia | Empirical | [57] |
36 | Interpretation of green, environmentally friendly, and energy-conserving design of the Water Cube, PTW national swimming centre | PTW National swimming centre, Green and environmentally friendly, Energy conservation, Utilization | Pneumatic structures, Energy efficiency: water, lighting, electricity, Fabric, Air quality | Case study: Water Cube, PTW National Swimming Centre/Beijing. | Empirical | [58] |
37 | An integrated design method for a remanufacturing scheme considering carbon emission and customer demands | Remanufacturing, carbon emissions, customer demand, and design methodology | Carbon Emissions, Life Cycle Assessment | Development of an integrated design method that considers carbon emissions and customer demands in remanufacturing processes | Empirical | [59] |
38 | Adoption of a reliability approach for membrane structure analysis | Membrane structure; tensile fabric; stress factor; reliability analysis; safety index; Eurocode | Hypar, Materials: steel, concrete, Lightweight | Applying principles of “Eurocode—Basis for Structural Design [69]”. Mathematical analysis to predict membrane structure. | Simulation | [60] |
39 | Experimental study on circular steel tube-confined reinforced UHPC columns under axial loading. | UHPC, steel tube confinement, axial loading, structural performance | Structural Safety | Experimental investigation of the axial performance of circular steel tube-confined reinforced UHPC columns. | Empirical | [61] |
40 | Towards achieving Platinum standards for Green Building certification: a case study using the Jakarta International Stadium (JIS) design | JIS, Greenship, LEED, sustainability, platinum | Long spans, Thermal performance, Materials, Site and land use, Carbon emissions, green certification | Case study: Jakarta International Stadium (JIS). International rating systems comparisons (findings from literature). | Empirical | [65] |
41 | The Soil-Arching Effect in Pile-Supported Embankments: A Review | Pile-supported embankment; Soil arching; Load distribution; Deformation; factors | Environmental Sustainability, Materials, Site & Land Use, Advanced Structures, Structural Safety | Historical development, theoretical analysis, experimental investigations, numerical simulations. | Simulation | [66] |
42 | Evaluation platform for sustainable operation of stadiums integrating multidimensional data: Based on a multifunctional perspective | Building operation evaluation, Sustainability criteria, Stadium design, Visual evaluation platform, Principal component analysis (PCA) | Advanced structures, long spans, green certification, and Lifecycle assessment | Selection of key indicators. Digital database. Data analysis and verification. Weight evaluation: expert opinions and principal component analysis (PCA). Online platform development. | Empirical | [67] |
43 | Sustainability and life assessment of high-strength natural fibre composites in construction | Sustainability, Lifecycle assessment, Natural fibre composites, | Energy efficiency: Water, Materials, Carbon emissions, Site & land use, Lifecycle assessment | Literature review. Descriptive information and definitions of LCA. Tables and Illustrations of LCA Phases. Definitions of embodied carbon, acidification, eutrophication, ozone depletion, embodied water, land use. | Conceptual | [70] |
44 | The Sustainability of Lightweight Structures | Tensile structures, Tension, Tensile structure materials, Digital fabrication, Tension structure typologies, Textile | Materials: membranes, Energy efficiency, Wind loads, Lightweight, Technology, Textile & Tensile, Lightweight | Descriptive information from previous literature. Case studies: Venice Biennale ZKM in Karlsruhe | Empirical | [71] |
45 | The Impact of Using the Pneumatic Structures on the Sustainability of Iraqi Cities During Religious Events | Pneumatic structures, Sustainability, Religious events. | Technology, Form and aesthetics, Materials, Textile, tensile, membrane, Lightweight, Pneumatic structures. | Case studies: Inflatable Structure for Gaudí Institute, Ontario’s Celebration Zone pavilion, Coolhurst Tennis Airhall | Empirical | [72] |
46 | Long-term building thermal performance of enclosed large-span swimming stadiums with retractable membrane ceilings | Building performance, Indoor stadiums, Long-term performance, Retractable membrane ceiling, Spatial structures | Life cycle assessment, Wind loads, Materials: steel, Membrane structures, Energy efficiency, Thermal performance, Structural safety | Experiments using case studies: large-span swimming stadium in Nishi Gaya/Japan. Statistical analysis of measured temperatures with and without ceilings. | Empirical | [73] |
47 | Life-cycle assessment comparison for long-span cable and truss structural systems: case study | Case study; Efficiency; Environmental issues; Life cycles; Structural design; Structural systems; Sustainable buildings | Energy efficiency, Materials: concrete, steel, Long-spans, Carbon emissions, Lifecycle assessment | Case study investigation. LCA comparative analysis of two long-span systems (truss and cable). LCA methodology is defined by [74] | Empirical | [75] |
48 | Investigating alternative development strategies for sport arenas based on active and passive systems | Solar analyses, highly reflective materials, Sustainable development, Carbon footprint | Materials, Roof system, Energy efficiency, Lifecycle assessment, Carbon emissions, Long spans | European Committee for Standardization regulation for discussing the stages of LCA [76]. Numerical model for albedo calculation. European emission trading system analysis. Case study: Dacia Arena, Italy. | Empirical | [77] |
49 | Modular architecture principles–MAPs: a key factor in the development of sustainable open architecture products | Modular architecture principles; modularity; open architecture; personalization; sustainability; design | Energy efficiency, Lifecycle assessment, Construction waste, Carbon emissions, Smart, BIM, Technology | Analysis of the influence and potential of modular architecture principles (MAP). Figures and tables for LCA comparisons between modular and open architecture. | Conceptual | [78] |
50 | Contemporary Tensile Structures in Europe: tendencies, challenges, their sustainability, and life cycle | Tensile structures, Life Cycle, Sustainability, Limitations | Lightweight, Energy efficiency, Construction waste, Lifecycle assessment, Tensile | Life cycle assessment. Literature review. | Conceptual | [79] |
51 | Environmental and social impact assessment of optimized post-tensioned concrete road bridges | LCA; S-LCA; social assessment; ecoinvent; SOCA | Lifecycle assessment, Long-spans, Materials: steel, concrete, Textile, Tensile, Membrane, | Bibliographic review for evaluating environmental sustainability in bridges. Case study: LCA comparison of 3 concrete bridge designs. | Empirical | [80] |
52 | The role of ductility in the collapse of a long-span steel roof in Northern Italy | Double layer space truss systems, Mero joints, Geometrical imperfections, Collapse Ductility. | Materials: concrete, steel, Structural safety, Long spans, Wind loads | LCA analysis.Case study: two-storey house in Kerikeri, New Zealand | Empirical | [81] |
53 | A study on the durability properties of textile membranes for architectural purposes | Architectural membranes, weightless architecture, fibres, degradation, durability | Materials: fabric, Energy efficiency: lighting, Textile, Tensile, Membrane, Lightweight, Smart, BIM, Technology, Thermal performance | Scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS) analysis were used to examine membrane characteristics. | Empirical | [82] |
54 | Mitigation Strategies for Reduction of Embodied Energy and Carbon, in the Construction Systems of Contemporary Quality Architecture | embodied energy; embodied carbon; sustainable architecture design; eco-architecture; life cycle assessment; environmental pressures; dry technological system | Energy efficiency, Lifecycle assessment, Smart, BIM, Technology, Carbon emissions, Materials | Case studies to identify design strategies that reduce embodied energy and emissions. Calculations of embodied energy (EE) and carbon (EC). | Empirical | [83] |
55 | Thermal-physical behaviour and energy performance of air-supported membranes for sports halls: A comparison among traditional and advanced building envelopes | Energy performance, Thermal performance, Sport halls, Advanced building, Membrane structures | Materials: fabric, Textile, Membrane, Tensile, Smart, BIM, Technology, Thermal performance | Case studies: 2nd generation sports hall, Khan Shatyr Entertainment Center, Zaha Hadid studio. Site surveys. Simulation models. | Empirical | [84] |
56 | Indoor thermal environment of thin membrane structure Buildings: A review | Fabric membrane materials, Membrane structure, Thermal environmental behaviour, Indoor thermal environment | Advanced structures, Long spans, Materials: fabrics, Thermal performance | Literature review: thermal-optical properties of membrane materials. Case studies: Doppler Radar Dome, United States Pavilion, Fuji Museum, Shanghai Stadium, National Aquatics Center, Changzhou Flora Expo, Air-supported membrane structure coal storage. | Conceptual | [85] |
57 | Sustainability of using recycled plastic fibre in concrete | Life cycle assessment, recycled plastic fibre, Steel reinforcing mesh, Sustainability, Virgin plastic fibre | Materials: steel, concrete, Energy efficiency: water, Construction waste, Life cycle assessment | LCA comparative analysis between polypropylene (PP) fibers and steel reinforcing mesh (SRM). | Empirical | [86] |
58 | Examination of sustainable features of stadiums as an integral part of sustainable urban development: the case of Turkey | Sustainability, Stadium, Sustainable stadiums assessment tool | Energy efficiency: water, lighting, long spans, Materials, Lifecycle assessment | Procedure and sample: Sustainable Building Assessment Tool (SBAT) by [61]. Case studies: 20 stadium buildings built between 2008 and 2018. | Empirical | [87] |
59 | Sustainable innovation in minimal mass structures and lightweight architectures | Sustainability, Lightweight architecture, Innovation | Lightweight, Materials, Smart, BIM, Technology, Textile, Tensile, Membrane | Conceptual | [88] | |
60 | Effect of roof cooling and air curtain gates on thermal and wind conditions in stadiums for hot climates | computational fluid dynamics; stadium cooling; air curtain; building energy simulation; thermal comfort; hot climates | Wind loads, Thermal performance, long spans, Energy efficiency: electricity, Smart, BIM, Technology | Literature review. Stadium geometry and computational domain: case study stadium in Amsterdam. CFD simulations. Solar radiation analysis setup. Validation of stadium modeling. CFD solver settings. Building energy simulation settings (BES). | Simulation | [89] |
61 | The green energy-saving design of the stadium | Energy consumption, Energy saving, Stadium design, green sports building | Materials, Energy efficiency, Long spans, Lifecycle assessment, | Analytic Hierarchy Process (AHP). Assessment model. | Simulation | [90] |
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Inclusion Criteria | Exclusion Criteria |
---|---|
Keywords identified in search strings should be included in the abstract, keywords, or article title. | Gray literature such as theses, dissertations, newspapers, magazines, uncertain hypothetical papers that will need more research, commercial aims papers, and non-academic purposes. |
Papers in English Language | Papers published before 2013 |
Peer-reviewed papers only | Papers that focus on economics and costsustainability |
Published between 2013 and 2025 | Papers that focus on traditional, vernacular, and conventional construction systems |
Papers that focus on Advanced Structures and Construction | Papers that focus on generic subjects in sustainability and advanced buildings |
Articles that have genuine data and realistic investigational analysis | Papers that focus on social sustainability |
Papers that discuss the environmental sustainability of Advanced Structures | Papers that discuss Advanced Structures but not their lifecycle or their sustainability |
Papers that discuss Advanced Structures’ sustainability in terms of design, construction methods, life cycle, embodied and operational energies | Papers in languages other than English |
Database | Filters Used (97 Papers Screened) |
---|---|
Scopus (55) |
|
Google Scholar (42) |
|
Sub-Total = 97 | |
Total Inclusions = 61 |
Air Quality Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Indoor air pollution in large-span structures | ✗ | ~ | ✓ | Mentioned briefly in limited stadium or airport studies |
Membrane systems and ventilation | ✗ | ~ | ✓ | Referenced in the Water Cube case only; lacks broader analysis |
Smart controls for air quality | ✗ | ✗ | ✓ | Minimal exploration of sensor-driven air quality systems |
Impact on occupant health and well-being | ✗ | ~ | ✓ | Interdisciplinary connections underexplored |
Lifecycle air quality performance | ✗ | ~ | ✓ | No assessments linking materials, aging, or maintenance to air quality outcomes |
Carbon Emissions Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Embodied carbon in design/construction | ✓ | ~ | ~ | Frequently addressed through case studies and simulations. |
Operational carbon emissions | ✗ | ~ | ✓ | Rarely quantified beyond lighting or energy system references. |
Lifecycle carbon emissions (whole building) | ~ | ~ | ✓ | Few studies present a complete cradle-to-grave analysis. |
Material-specific carbon comparisons | ✗ | ~ | ✓ | Minimal integration of comparative carbon data for different materials |
Carbon reduction strategies by structural system | ✗ | ~ | ✓ | No unified framework linking form, structure, and emissions reduction |
Construction Waste Focus Area | Well Researched | Partially Explored | Lacking/ Inadequate Research | Comments |
---|---|---|---|---|
Modular construction waste reduction | ~ | ✓ | ✓ | Conceptual benefits noted, but limited LCA or field data. |
Waste types and sources in advanced systems | ✗ | ~ | ✓ | No classification specific to advanced structures |
Recycling/reuse practices and outcomes | ✗ | ~ | ✓ | Rarely linked to environmental performance metrics. |
Integration with sustainability goals | ~ | ~ | ✓ | Discussions lack cross-theme integration with emissions and lifecycle. |
Quantitative construction waste data | ✗ | ~ | ✓ | Few empirical studies or benchmarks for waste volumes or reductions |
Energy Efficiency Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Solar integration and renewables | ✓ | ~ | ~ | Case studies demonstrate integration but not always lifecycle performance |
Passive design strategies | ✗ | ~ | ✓ | Limited exploration of shading, orientation, or natural ventilation |
Systemic energy modeling | ✗ | ~ | ✓ | Lacks holistic or simulation-based evaluations across structure types |
Post-occupancy energy performance | ✗ | ~ | ✓ | Real-world monitoring and user behavior rarely addressed |
Cross-theme integration (energy + carbon/thermal) | ~ | ~ | ✓ | Few studies consider interdependencies between energy and other metrics |
Green Environment Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Urban greening and heat mitigation | ~ | ~ | ✓ | Mentioned in a few stadium/park contexts, rarely modeled. |
Integration of vegetation in advanced systems | ✗ | ~ | ✓ | Green elements are seldom designed alongside structural components. |
Hydrological/soil interaction in structural zones | ✗ | ~ | ✓ | No empirical data linking landscape features to performance |
Impact of greenery on building energy efficiency | ~ | ~ | ✓ | Limited investigation of shading, evapotranspiration, or cooling effects |
Green environment-user well-being connection | ✗ | ~ | ✓ | User experience and ecological benefits are not quantified |
LCA Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Cradle-to-gate assessments | ✓ | ~ | ~ | Common in case studies but not extended to full lifecycle |
End-of-life and reuse impacts | ✗ | ~ | ✓ | Rarely modeled or linked to demolition/disassembly strategies. |
Operational phase in LCA | ~ | ~ | ✓ | Limited inclusion of energy use, maintenance, or emissions |
Comparative LCA across structural types | ✗ | ~ | ✓ | No unified methodology for comparison across typologies |
LCA integration into design decision-making | ✗ | ~ | ✓ | Weak link between LCA results and architectural workflows |
Material Focus Area | Well-Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Low-Carbon Alternatives (e.g., timber, agro-bricks) | ~ | ✓ | ✓ | Case studies exist, but generalizability and scalability not well addressed |
High-Tech Fabrics (PTFE, ETFE) | ~ | ~ | ✓ | Environmental data often limited to case-based or manufacturer EPDs |
Material Lifecycle Integration (LCA) | ✓ | ~ | ~ | Addressed in some studies but not consistently across material types |
Durability and Maintenance | ~ | ~ | ✓ | Maintenance and aging performance underexplored for advanced materials |
Material Selection Frameworks | ✗ | ~ | ✓ | No unified decision frameworks linking sustainability metrics with material choice |
Site/Land Use Focus | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Land footprint efficiency | ✗ | ~ | ✓ | Minimal studies on how advanced structures reduce land usage or adapt to terrain |
Ecological and landscape integration | ✗ | ~ | ✓ | Limited research on biophilic or ecological site integration strategies |
Climatic responsiveness (wind, sun, etc.) | ~ | ✓ | ~ | General climatic adaptation is studied, but not specific to advanced systems. |
Urban infill and constrained sites | ✗ | ~ | ✓ | Advanced structures are rarely examined for urban density or limited plot adaptability. |
Foundation and soil interaction | ✗ | ~ | ✓ | The environmental impact of lightweight/minimal foundations is underexplored |
Green Certification Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
Mention of certification systems (LEED, BREEAM, etc.) | ~ | ✓ | ~ | Appears in some stadium studies, often general references |
Certification applied to advanced materials/tech. | ✗ | ~ | ✓ | Limited alignment between material innovation and certification criteria |
Context-specific certification challenges | ✗ | ~ | ✓ | Regional issues and the adaptation of tools were not addressed |
Certification metrics integration in design | ✗ | ~ | ✓ | No framework showing design choices driven by certification |
Stakeholder engagement with certification | ✗ | ~ | ✓ | Needs more empirical data on client, contractor, and designer perspectives |
Thermal Performance Focus Area | Well Researched | Partially Explored | Lacking/Inadequate Research | Comments |
---|---|---|---|---|
CFD and simulation in stadiums | ~ | ✓ | ~ | Focused mainly on large indoor spaces and sports fields |
Thermal behavior in tensile/lightweight systems | ✗ | ~ | ✓ | Limited empirical or modeled assessments of fabric-based systems |
Advanced materials for thermal control (e.g., PCMs) | ✗ | ~ | ✓ | Rarely examined in architectural or structural applications. |
Climate adaptability and regional variations | ✗ | ~ | ✓ | Few cross-climate comparisons of performance outcomes |
Integration of passive thermal strategies | ✗ | ~ | ✓ | Shading, massing, and natural ventilation are underrepresented |
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© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Elattar, S.; Hu, X.; Golzad, H.; Banihashemi, S. Environmental Sustainability of Advanced Structures: A Descriptive and Thematic Analysis. Buildings 2025, 15, 2027. https://doi.org/10.3390/buildings15122027
Elattar S, Hu X, Golzad H, Banihashemi S. Environmental Sustainability of Advanced Structures: A Descriptive and Thematic Analysis. Buildings. 2025; 15(12):2027. https://doi.org/10.3390/buildings15122027
Chicago/Turabian StyleElattar, Sarah, Xiancun Hu, Hamed Golzad, and Saeed Banihashemi. 2025. "Environmental Sustainability of Advanced Structures: A Descriptive and Thematic Analysis" Buildings 15, no. 12: 2027. https://doi.org/10.3390/buildings15122027
APA StyleElattar, S., Hu, X., Golzad, H., & Banihashemi, S. (2025). Environmental Sustainability of Advanced Structures: A Descriptive and Thematic Analysis. Buildings, 15(12), 2027. https://doi.org/10.3390/buildings15122027