Industrialized Construction and Sustainability: A Comprehensive Literature Review
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Quantitative Analysis Results
3.2. Qualitative Analysis Results
- Sustainability and life cycle analysis. Sustainability in industrialized construction and the evaluation of its impact on the environment by means of the life cycle analysis (LCA) tool.
- Circular economy and waste reduction. The transition of the construction sector through industrialization towards a circular model in which on-site and manufacturing waste is decreased, promoting the recycling and reuse of materials.
- Development of industrialized construction. Development and implementation of industrialized construction and studying its challenges, barriers, and opportunities.
- Integration of technology in construction. Industrialized construction is partly based on the use of new technology to optimize building processes.
- Industrialized construction systems. The study of new installation and assembly systems makes it possible to optimize the benefits of assembly in terms of the quality, deadlines, and cost of the processes.
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Topic (Title, Abstract or Index) | Results | ||
---|---|---|---|
Industrialized construction | And | Environment | 21 |
Industrialized building system | 6 | ||
Off-site construction or offsite construction | 83 | ||
Prefabrication | 193 | ||
Prefabricated construction | 100 | ||
Prefabricated building | 57 | ||
Modular construction | 141 | ||
Modular integrated construction | 6 | ||
Industrialized construction | And | Sustainability | 9 |
Industrialized building system | 11 | ||
Off-site construction or offsite construction | 82 | ||
Prefabrication | 179 | ||
Prefabricated construction | 70 | ||
Prefabricated building | 25 | ||
Modular construction | 61 | ||
Modular integrated construction | 18 |
No. | Author | Number of Publications |
---|---|---|
1 | Li, Z | 15 |
2 | Li, X | 11 |
3 | Wang, Y | 11 |
4 | Al-hussein, M | 10 |
5 | Pan, W | 10 |
6 | Wu, Z | 10 |
7 | Wu, Zz | 10 |
8 | Li, L | 9 |
9 | Li, Zf | 9 |
10 | Wang, J | 9 |
11 | Liu, Y | 8 |
12 | Wang, X | 8 |
13 | Zhang, S | 8 |
14 | Lu, Ws | 7 |
15 | Mao, C | 7 |
16 | Wei, Pan | 7 |
17 | Yuan, M | 7 |
18 | Yuan, Mq | 7 |
19 | Zayed, T | 7 |
20 | Hong, J | 6 |
21 | Hong, Jk | 6 |
22 | Li, Xd | 6 |
23 | Liu, G | 6 |
24 | Mendis, P | 6 |
25 | Orlowski, K | 6 |
No. | Journal Research Areas | Number of Publications | % of 616 |
---|---|---|---|
1 | Engineering | 474 | 76.95% |
2 | Construction Building Technology | 376 | 61.04% |
3 | Business Economics | 282 | 45.78% |
4 | Environmental Sciences Ecology | 246 | 39.94% |
5 | Computer Science | 168 | 27.27% |
6 | Science Technology Other Topics | 146 | 23.70% |
7 | Energy Fuels | 136 | 22.08% |
8 | Mathematics | 84 | 13.64% |
9 | Materials Science | 81 | 13.15% |
10 | Geography | 63 | 10.23% |
11 | Instruments Instrumentation | 57 | 9.25% |
12 | Automation Control Systems | 39 | 6.33% |
13 | Architecture | 31 | 5.03% |
14 | Physics | 26 | 4.22% |
15 | Social Issues | 25 | 4.06% |
16 | Robotics | 23 | 3.73% |
17 | Chemistry | 19 | 3.08% |
18 | Urban Studies | 17 | 2.76% |
19 | Forestry | 16 | 2.60% |
20 | Public Administration | 12 | 1.95% |
No. | Author | Total Citations | Citations in 2021 | Citations in 2022 | |
---|---|---|---|---|---|
1 | Pavlovic et al. | [31] | 307 | 60 | 62 |
2 | Aye et al. | [32] | 263 | 45 | 40 |
3 | Kamali and Hewage | [17] | 258 | 57 | 69 |
4 | Chen et al. | [33] | 255 | 31 | 27 |
5 | Cao et al. | [34] | 184 | 41 | 38 |
6 | Aarseth et al. | [35] | 179 | 42 | 29 |
7 | Jaillon and Poon | [36] | 163 | 32 | 32 |
8 | Akanbi et al. | [37] | 150 | 43 | 46 |
9 | Tam | [38] | 147 | 13 | 10 |
10 | Hwang et al. | [39] | 143 | 29 | 34 |
11 | Hong et al. | [40] | 141 | 20 | 32 |
12 | Lu and Yuan | [41] | 139 | 17 | 9 |
13 | Kamali and Hewage | [42] | 134 | 25 | 38 |
14 | Li et al. | [43] | 133 | 32 | 37 |
15 | Zhang et al. | [44] | 127 | 22 | 30 |
16 | Mao et al. | [45] | 122 | 23 | 26 |
17 | Hu et al. | [46] | 112 | 71 | 17 |
18 | Ghisellini et al. | [47] | 111 | 33 | 32 |
19 | McKenna et al. | [48] | 111 | 15 | 26 |
20 | Jiang et al. | [49] | 109 | 25 | 26 |
21 | Lu and Yuan | [50] | 109 | 17 | 21 |
22 | Wang et al. | [51] | 105 | 23 | 14 |
23 | Babic et al. | [52] | 105 | 13 | 8 |
24 | Telesca et al. | [53] | 97 | 13 | 13 |
25 | Ajayi et al. | [54] | 88 | 18 | 15 |
26 | Loss et al. | [55] | 87 | 18 | 22 |
27 | Pons and Wadel | [56] | 87 | 12 | 12 |
28 | Pan et al. | [57] | 83 | 10 | 15 |
29 | O’Connor et al. | [58] | 81 | 13 | 13 |
30 | Innella et al. | [59] | 79 | 21 | 32 |
Author | Title of Article | |
---|---|---|
1. Sustainability and. Life Cycle Analysis | ||
Aye et al. | [32] | Life cycle greenhouse gas emissions and energy analysis of prefabricated reusable building modules |
Chen et al. | [35] | Sustainable performance criteria for construction method selection in concrete buildings |
Kamali and Hewage | [17] | Life cycle performance of modular buildings: A critical review |
Cao et al. | [34] | A comparative study of environmental performance between prefabricated and traditional residential buildings in China |
Aarseth et al. | [35] | Project sustainability strategies: A systematic literature review |
Jaillon and Poon | [36] | Life cycle design and prefabrication in buildings: A review and case studies in Hong Kong |
Hong et al. | [40] | Life-cycle energy analysis of prefabricated building components: an input-output-based hybrid model |
Kamali and Hewage | [42] | Development of performance criteria for sustainability evaluation of modular versus conventional construction methods |
Hu et al. | [46] | Sustainability perceptions of off-site manufacturing stakeholders in Australia |
Pons and Wadel | [56] | Environmental impacts of prefabricated school buildings in Catalonia |
2. Circular Economy and Waste Reduction | ||
Akanbi et al. | [37] | Salvaging building materials in a circular economy: A BIM-based whole-life performance estimator |
Lu and Yuan | [41] | Exploring critical success factors for waste management in construction projects of China |
Tam | [38] | On the effectiveness in implementing a waste-management-plan method in construction |
Ghisellini et al. | [47] | Evaluating the transition towards cleaner production in the construction and demolition sector of China: A review |
Lu and Yuan | [50] | Investigating waste reduction potential in the upstream processes of offshore prefabrication construction |
Wang et al. | [51] | Identifying best design strategies for construction waste minimization |
Telesca et al. | [53] | Flue gas desulfurization gypsum and coal fly ash as basic components of prefabricated building materials |
Ajayi et al. | [54] | Reducing waste to landfill: A need for cultural change in the UK construction industry |
3. Development of Industrialized Construction | ||
Hwang et al. | [39] | Key constraints and mitigation strategies for prefabricated prefinished volumetric construction |
Zhang et al. | [44] | Exploring the challenges to industrialized residential building in China |
Mao et al. | [45] | Cost analysis for sustainable off-site construction based on a multiple-case study in China |
Jiang et al. | [49] | A SWOT analysis for promoting off-site construction under the backdrop of China’s new urbanisation |
Pan et al. | [57] | Establishing and Weighting Decision Criteria for Building System Selection in Housing Construction |
O’Connor et al. | [58] | Critical Success Factors and Enablers for Optimum and Maximum Industrial Modularization |
Innella et al. | [59] | Lean Methodologies and Techniques for Modular Construction: Chronological and Critical Review |
4. Integration of Technology in Construction | ||
Li et al. | [43] | Integrating RFID and BIM technologies for mitigating risks and improving schedule performance of prefabricated house construction |
Babic et al. | [52] | Integrating resource production and construction using BIM |
5. Industrialized Construction Systems | ||
Pavlovic et al. | [31] | Bolted shear connectors vs. headed studs behaviour in push-out tests |
McKenna et al. | [48] | Key challenges and prospects for large wind turbines |
Loss et al. | [55] | Connections for steel-timber hybrid prefabricated buildings. Part I: Experimental tests |
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Sotorrío Ortega, G.; Cobo Escamilla, A.; Tenorio Ríos, J.A. Industrialized Construction and Sustainability: A Comprehensive Literature Review. Buildings 2023, 13, 2861. https://doi.org/10.3390/buildings13112861
Sotorrío Ortega G, Cobo Escamilla A, Tenorio Ríos JA. Industrialized Construction and Sustainability: A Comprehensive Literature Review. Buildings. 2023; 13(11):2861. https://doi.org/10.3390/buildings13112861
Chicago/Turabian StyleSotorrío Ortega, Guillermo, Alfonso Cobo Escamilla, and José Antonio Tenorio Ríos. 2023. "Industrialized Construction and Sustainability: A Comprehensive Literature Review" Buildings 13, no. 11: 2861. https://doi.org/10.3390/buildings13112861
APA StyleSotorrío Ortega, G., Cobo Escamilla, A., & Tenorio Ríos, J. A. (2023). Industrialized Construction and Sustainability: A Comprehensive Literature Review. Buildings, 13(11), 2861. https://doi.org/10.3390/buildings13112861