Benefits and Barriers of Implementing Building Information Modeling Techniques for Sustainable Practices in the Construction Industry—A Comprehensive Review
Abstract
:1. Introduction
1.1. BIM in Construction Projects
1.2. Sustainability in Construction Projects
1.3. Scope of the Research
- Question 1: Barriers to implementing BIM in the sustainable AEC industry is the first research topic.
- Question 2: How may sustainable concepts and BIM features help building projects address the difficulties of sustainable development?
2. Materials and Methods
3. Results and Discussion
3.1. Potential Benefits of Utilizing BIM Techniques on Sustainability Practices in the Construction Industry
3.1.1. Environmental Aspect
3.1.2. Economic Aspect
3.1.3. Social Aspect
3.2. Barriers to Integration of BIM Techniques into Sustainable Practices in the Construction Industry
Barriers | References | |
---|---|---|
1. | Lack of collaborative working environment | [55,95] |
2. | High cost of application | [96] |
3. | Lack of skilled personnel | [96] |
4. | High cost of training staff | [97] |
5. | High cost of BIM experts | [97] |
6. | Market readiness for innovation | [94,97] |
7. | The industry’s reluctance to move away from traditional methods of working | [3,97,98] |
8. | Lack of experts | [99,100,103,104] |
9. | Recurring need for additional and associated resources and high economic expenses | [101] |
10. | Limited studies on the application of BIM in eco-friendly building construction | [102] |
11. | Absence of well-defined guidelines for utilizing BIM in sustainable construction projects | [105] |
12. | Limited participation of individuals utilizing BIM in sustainable building projects | [105] |
13. | Absence of a well-defined method for exchanging operational management data | [54] |
14. | A lack of comprehension of the steps and activities needed for BIM and ecological sustainability | [54] |
15. | Inaccurate energy analysis predictions using BIM in eco-friendly buildings | [54,76,106] |
16. | Insufficient BIM data structures to accurately capture sustainability-related information | [107,113] |
17. | Lack of a comprehensive framework and implementation plan | [109] |
18. | Uncontrolled application risk of BIM technology in sustainable buildings | [111] |
19. | Increased liability | [111] |
20. | Lack of senior management support and attention toward integration of BIM and sustainability practices | [3,98,112] |
21. | Non-uniformity of sustainability and BIM evaluation criteria and measures | [87] |
4. Integration between BIM and Sustainability
Practical Implications
5. Conclusions
- Regarding the environmental benefits, 16 benefits from 46 general benefits that enhance the implementation of BIM in the sustainable CI were obtained. Among the factors, “Promoting carbon emission reduction”, and “Enhancing material wastage reduction” are the top environmental benefits of implementing BIM in sustainable construction projects. BIM applications can help lessen waste and minimize carbon emissions by optimizing the design of the site and managing logistics efficiently.
- Surrounding economic benefits, 15 economic benefits from 46 general benefits were obtained for sustainable construction projects. The popular benefits of the application of BIM to achieve sustainable construction were “Improving design efficiency” and “Reducing the overall project costs”. The inferior benefits were “Encourage the implementation of clean technologies that require less energy consumption”.
- Concerning social benefits, it was observed that among 15 benefits, “Enhancing project safety and health performance” was the most important factor, which can be achieved by implementing BIM in sustainable construction projects.
- The 21 barriers to BIM implementation also exhibited that the lack of experts was the major barrier to BIM implementation in sustainable construction projects. Moreover, “The industry’s reluctance to move away from traditional methods of working” was also the major barrier that hindered the sustainable development of projects through BIM implementation.
- From the BIM and sustainability integration perspective, it was observed that BIM has a strong implementation in life-cycle management, waste reduction, decreased energy expenditure, and the planning and development of buildings. It also leads to more efficient and less expensive work processes in the fields of building engineering and sustainable construction projects.
Limitations and Recommendations for Further Research
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Balasubramanian, S.; Shukla, V. Green supply chain management: An empirical investigation on the construction sector. Supply Chain Manag. Int. J. 2017, 22, 58–81. [Google Scholar] [CrossRef]
- Zhang, L.; Chu, Z.; Song, H. Understanding the relation between BIM application behavior and sustainable construction: A case study in China. Sustainability 2020, 12, 306. [Google Scholar] [CrossRef]
- Zhang, L.; Chu, Z.; He, Q.; Zhai, P. Investigating the constraints to buidling information modeling (BIM) applications for sustainable building projects: A case of China. Sustainability 2019, 11, 1896. [Google Scholar] [CrossRef]
- Schiavi, B.; Havard, V.; Beddiar, K.; Baudry, D. BIM data flow architecture with AR/VR technologies: Use cases in architecture, engineering and construction. Autom. Constr. 2022, 134, 104054. [Google Scholar] [CrossRef]
- Wang, H.; Pan, Y.; Luo, X. Integration of BIM and GIS in sustainable built environment: A review and bibliometric analysis. Autom. Constr. 2019, 103, 41–52. [Google Scholar] [CrossRef]
- Saieg, P.; Sotelino, E.D.; Nascimento, D.; Caiado, R.G.G. Interactions of Building Information Modeling, Lean and Sustainability on the Architectural, Engineering and Construction industry: A systematic review. J. Clean. Prod. 2018, 174, 788–806. [Google Scholar] [CrossRef]
- Eastman, C.M.; Eastman, C.; Teicholz, P.; Sacks, R.; Liston, K. BIM Handbook: A Guide to Building Information Modeling for Owners, Managers, Designers, Engineers and Contractors; John Wiley & Sons: Hoboken, NJ, USA, 2011. [Google Scholar]
- Montiel-Santiago, F.J.; Hermoso-Orzáez, M.J.; Terrados-Cepeda, J. Sustainability and energy efficiency: BIM 6D. Study of the BIM methodology applied to hospital buildings. Value of interior lighting and daylight in energy simulation. Sustainability 2020, 12, 5731. [Google Scholar] [CrossRef]
- Azhar, S. Building information modeling (BIM): Trends, benefits, risks, and challenges for the AEC industry. Leadersh. Manag. Eng. 2011, 11, 241–252. [Google Scholar] [CrossRef]
- Sidani, A.; Dinis, F.M.; Sanhudo, L.; Duarte, J.; Baptista, J.S.; Martins, J.P.; Soeiro, A. Recent tools and techniques of BIM-based virtual reality: A systematic review. Arch. Comput. Methods Eng. 2021, 28, 449–462. [Google Scholar] [CrossRef]
- Succar, B. Building information modelling framework: A research and delivery foundation for industry stakeholders. Autom. Constr. 2009, 18, 357–375. [Google Scholar] [CrossRef]
- Li, X.; Wu, P.; Shen, G.Q.; Wang, X.; Teng, Y. Mapping the knowledge domains of Building Information Modeling (BIM): A bibliometric approach. Autom. Constr. 2017, 84, 195–206. [Google Scholar] [CrossRef]
- Sinenko, S.; Hanitsch, P.; Aliev, S.; Volovik, M. The implementation of BIM in construction projects. In Proceedings of the E3S Web of Conferences, Irkutsk, Russia, 7–11 September 2020; p. 08002. [Google Scholar]
- Maliha, M.; Tayeh, B.; Abu Aisheh, Y. Building Information Modeling (BIM) in Enhancing the Applying of Knowledge Areas in the Architecture, Engineering and Construction (AEC) Industry. Open Civ. Eng. J. 2020, 14, 388–401. [Google Scholar] [CrossRef]
- Enshassi, M.; Hallaq, K.; Tayeh, B. Critical Success Factors for Implementing Building Information Modeling (BIM) in Construction Industry. Civ. Eng. Res. J. 2019, 8, 1–8. [Google Scholar] [CrossRef]
- Nafe Assafi, M.; Hossain, M.M.; Chileshe, N.; Datta, S.D. Development and validation of a framework for preventing and mitigating construction delay using 4D BIM platform in Bangladeshi construction sector. Constr. Innov. 2022; ahead-of-print. [Google Scholar] [CrossRef]
- Volk, R.; Stengel, J.; Schultmann, F. Building Information Modeling (BIM) for existing buildings—Literature review and future needs. Autom. Constr. 2014, 38, 109–127. [Google Scholar] [CrossRef]
- Latiffi, A.A.; Mohd, S.; Rakiman, U.S. Potential improvement of building information modeling (BIM) implementation in malaysian construction projects. In Proceedings of the IFIP International Conference on Product Lifecycle Management, Doha, Qatar, 19–21 October 2015; pp. 149–158. [Google Scholar]
- Hammond, R.; Nawari, N.; Walters, B. BIM in sustainable design: Strategies for retrofitting/renovation. Comput. Civ. Build. Eng. 2014, 2014, 1969–1977. [Google Scholar]
- Howell, I.; Batcheler, B. Building information modeling two years later–huge potential, some success and several limitations. Laiserin Lett. 2005, 22, 3521–3528. [Google Scholar]
- Giovannoni, E.; Fabietti, G. What is sustainability? A review of the concept and its applications. Integr. Report. 2013, 21–40. [Google Scholar] [CrossRef]
- Pero, M.; Moretto, A.; Bottani, E.; Bigliardi, B. Environmental Collaboration for Sustainability in the Construction Industry: An Exploratory Study in Italy. Sustainability 2017, 9, 125. [Google Scholar] [CrossRef]
- Tomislav, K. The concept of sustainable development: From its beginning to the contemporary issues. Zagreb Int. Rev. Econ. Bus. 2018, 21, 67–94. [Google Scholar]
- Stoddart, H.; Schneeberger, K.; Dodds, F.; Shaw, A.; Bottero, M.; Cornforth, J.; White, R. A Pocket Guide to Sustainable Development Governance, 2nd ed.; Commonwealth Secretariat Stakeholder Forum: Kampala, Uganda, 2011. [Google Scholar]
- Rosen, M.A. Sustainability: Concepts, Definitions, and Applications. In Building Sustainable Cities; Springer: Berlin/Heidelberg, Germany, 2020; pp. 15–26. [Google Scholar]
- Manzoor, B.; Othman, I.; Gardezi, S.S.S.; Harirchian, E. Strategies for Adopting Building Information Modeling (BIM) in Sustainable Building Projects—A Case of Malaysia. Buildings 2021, 11, 249. [Google Scholar] [CrossRef]
- FF, A.A.; Rashidi, T.H.; Akbarnezhad, A.; Waller, S.T. BIM-enabled sustainability assessment of material supply decisions. Eng. Constr. Archit. Manag. 2017, 24, 668–695. [Google Scholar]
- Doumbouya, L.; Gao, G.; Guan, C. Adoption of the Building Information Modeling (BIM) for construction project effectiveness: The review of BIM benefits. Am. J. Civ. Eng. Archit. 2016, 4, 74–79. [Google Scholar]
- Sourani, A. A review of sustainability in construction and its dimensions. Comb. Forces Adv. Facil. Manag. Constr. Through Innov. Ser. 2008, 4, 536–547. [Google Scholar]
- Oke, A.E.; Aigbavboa, C.O.; Semenya, K. Energy savings and sustainable construction: Examining the advantages of nanotechnology. Energy Procedia 2017, 142, 3839–3843. [Google Scholar] [CrossRef]
- Shurrab, J.; Hussain, M.; Khan, M. Green and sustainable practices in the construction industry: A confirmatory factor analysis approach. Eng. Constr. Archit. Manag. 2019, 26, 1063–1086. [Google Scholar] [CrossRef]
- Hill, R.C.; Bowen, P.A. Sustainable construction: Principles and a framework for attainment. Constr. Manag. Econ. 1997, 15, 223–239. [Google Scholar] [CrossRef]
- Ametepey, O.; Aigbavboa, C.; Ansah, K. Barriers to Successful Implementation of Sustainable Construction in the Ghanaian Construction Industry. Procedia Manuf. 2015, 3, 1682–1689. [Google Scholar] [CrossRef]
- Agyekum-Mensah, G.; Knight, A.; Coffey, C. 4Es and 4 Poles model of sustainability: Redefining sustainability in the built environment. Struct. Surv. 2012, 30, 426–442. [Google Scholar] [CrossRef]
- Wang, C.; Xiao, J.; Liu, W.; Ma, Z. Unloading and reloading stress-strain relationship of recycled aggregate concrete reinforced with steel/polypropylene fibers under uniaxial low-cycle loadings. Cem. Concr. Compos. 2022, 131, 104597. [Google Scholar] [CrossRef]
- Wang, C.; Wu, H.; Li, C. Hysteresis and damping properties of steel and polypropylene fiber reinforced recycled aggregate concrete under uniaxial low-cycle loadings. Constr. Build. Mater. 2022, 319, 126191. [Google Scholar] [CrossRef]
- Sobuz, M.H.R.; Datta, S.D.; Akid, A.S.M.; Tam, V.W.Y.; Islam, S.; Rana, M.J.; Aslani, F.; Yalçınkaya, Ç.; Sutan, N.M. Evaluating the effects of recycled concrete aggregate size and concentration on properties of high-strength sustainable concrete. J. King Saud Univ. Eng. Sci. 2022; ahead of print. [Google Scholar] [CrossRef]
- Sobuz, M.H.R.; Datta, S.D.; Akid, A.S.M. Investigating the combined effect of aggregate size and sulphate attack on producing sustainable recycled aggregate concrete. Aust. J. Civ. Eng. 2022, 1–16, ahead of print. [Google Scholar] [CrossRef]
- Nath, A.D.; Datta, S.D.; Hoque, M.I.; Shahriar, F. Various recycled steel fiber effect on mechanical properties of recycled aggregate concrete. Int. J. Build. Pathol. Adapt. 2021; ahead-of-print. [Google Scholar] [CrossRef]
- Ismail, F.Z.; Halog, A.; Smith, C. How sustainable is disaster resilience? An overview of sustainable construction approach in post-disaster housing reconstruction. Int. J. Disaster Resil. Built Environ. 2017, 8, 555–572. [Google Scholar] [CrossRef]
- Jamwal, A.; Agrawal, R.; Sharma, M.; Kumar, V. Review on multi-criteria decision analysis in sustainable manufacturing decision making. Int. J. Sustain. Eng. 2021, 14, 202–225. [Google Scholar] [CrossRef]
- Jamwal, A.; Agrawal, R.; Sharma, M.; Kumar, A.; Luthra, S.; Pongsakornrungsilp, S. Two decades of research trends and transformations in manufacturing sustainability: A systematic literature review and future research agenda. Prod. Eng. 2022, 16, 109–133. [Google Scholar] [CrossRef]
- Presley, A.; Meade, L. Benchmarking for sustainability: An application to the sustainable construction industry. Benchmarking: Int. J. 2010, 17, 435–451. [Google Scholar] [CrossRef]
- Pan, S.-Y.; Gao, M.; Kim, H.; Shah, K.J.; Pei, S.-L.; Chiang, P.-C. Advances and challenges in sustainable tourism toward a green economy. Sci. Total Environ. 2018, 635, 452–469. [Google Scholar] [CrossRef]
- Aghimien, D.O.; Aigbavboa, C.O.; Thwala, W.D. Microscoping the challenges of sustainable construction in developing countries. J. Eng. Des. Technol. 2019, 17, 1110–1128. [Google Scholar] [CrossRef]
- Abd Jamil, A.H.; Fathi, M.S. The integration of lean construction and sustainable construction: A stakeholder perspective in analyzing sustainable lean construction strategies in Malaysia. Procedia Comput. Sci. 2016, 100, 634–643. [Google Scholar] [CrossRef]
- Willar, D.; Waney, E.V.Y.; Pangemanan, D.D.G.; Mait, R.E. Sustainable construction practices in the execution of infrastructure projects: The extent of implementation. Smart Sustain. Built Environ. 2020, 10, 106–124. [Google Scholar] [CrossRef]
- Ndlangamandla, M.G.; Combrinck, C. Environmental sustainability of construction practices in informal settlements. Smart Sustain. Built Environ. 2019, 9, 523–538. [Google Scholar] [CrossRef]
- Oh, T.H.; Hasanuzzaman, M.; Selvaraj, J.; Teo, S.C.; Chua, S.C. Energy policy and alternative energy in Malaysia: Issues and challenges for sustainable growth–An update. Renew. Sustain. Energy Rev. 2018, 81, 3021–3031. [Google Scholar] [CrossRef]
- Viegas, C.V.; Bond, A.J.; Vaz, C.R.; Borchardt, M.; Pereira, G.M.; Selig, P.M.; Varvakis, G. Critical attributes of Sustainability in Higher Education: A categorisation from literature review. J. Clean. Prod. 2016, 126, 260–276. [Google Scholar] [CrossRef]
- Salam, M.A. An empirical investigation of the determinants of adoption of green procurement for successful green supply chain management. In Proceedings of the 2008 4th IEEE International Conference on Management of Innovation and Technology, Bangkok, Thailand, 21–24 September 2008; pp. 1038–1043. [Google Scholar]
- Qian, Q.; Chan, E. Government measures for promoting Building Energy Efficiency (BEE): A comparative study between China and some developed countries. Int. J. Interdiscip. Soc. Sci. 2019, 4, 45–63. [Google Scholar]
- Verbeeck, G.; Hens, H. Life cycle inventory of buildings: A calculation method. Build. Environ. 2010, 45, 1037–1041. [Google Scholar] [CrossRef]
- Motawa, I.; Carter, K. Sustainable BIM-based Evaluation of Buildings. Procedia Soc. Behav. Sci. 2013, 74, 419–428. [Google Scholar] [CrossRef]
- Aksamija, A. BIM-based building performance analysis: Evaluation and simulation of design decisions. Proc. ACEEE Summer Study Energy Effic. Build. 2012, 1–12. Available online: https://www.google.com.hk/url?sa=t&rct=j&q=&esrc=s&source=web&cd=&cad=rja&uact=8&ved=2ahUKEwjz-sDDguCAAxX1a2wGHRuYBksQFnoECAgQAQ&url=https%3A%2F%2Fwww.aceee.org%2Ffiles%2Fproceedings%2F2012%2Fdata%2Fpapers%2F0193-000367.pdf&usg=AOvVaw2baSNivVBrbqP2VulPdWUu&opi=89978449 (accessed on 22 July 2023).
- Rosen, M.A.; Kishawy, H.A. Sustainable manufacturing and design: Concepts, practices and needs. Sustainability 2012, 4, 154–174. [Google Scholar] [CrossRef]
- Olawumi, T.O.; Chan, D.W. Identifying and prioritizing the benefits of integrating BIM and sustainability practices in construction projects: A Delphi survey of international experts. Sustain. Cities Soc. 2018, 40, 16–27. [Google Scholar] [CrossRef]
- Shareef, S.L.; Altan, H. Building sustainability rating systems in the Middle East. Proc. Inst. Civ. Eng.-Eng. Sustain. 2016, 170, 283–293. [Google Scholar] [CrossRef]
- Lee, G.; Park, H.K.; Won, J. D3 City project—Economic impact of BIM-assisted design validation. Autom. Constr. 2012, 22, 577–586. [Google Scholar] [CrossRef]
- Manzoor, B.; Othman, I. Safety Management Model During Construction Focusing on Building Information Modeling (BIM). In Proceedings of the Advances in Civil Engineering Materials: Selected Articles from the International Conference on Architecture and Civil Engineering (ICACE2020), Lumpur, Malaysia, 30 April 2021; p. 31. [Google Scholar]
- Ismail, N.A.A.; Ramli, H.; Ismail, E.D.; Rooshdi, R.R.R.M.; Sahamir, S.R.; Idris, N.H. A review on green BIM potentials in enhancing the construction industry practice. MATEC Web Conf. 2019, 266, 1023. [Google Scholar] [CrossRef]
- Santos, R.; Costa, A.A.; Grilo, A. Bibliometric analysis and review of Building Information Modelling literature published between 2005 and 2015. Autom. Constr. 2017, 80, 118–136. [Google Scholar] [CrossRef]
- Bonini, S.; Görner, S. The Business of Sustainability; McKinsey Co.: Hong Kong, China, 2011. [Google Scholar]
- Akinade, O.O.; Oyedele, L.O.; Ajayi, S.O.; Bilal, M.; Alaka, H.A.; Owolabi, H.A.; Bello, S.A.; Jaiyeoba, B.E.; Kadiri, K.O. Design for Deconstruction (DfD): Critical success factors for diverting end-of-life waste from landfills. Waste Manag. 2017, 60, 3–13. [Google Scholar] [CrossRef]
- Jalaei, F.; Jrade, A. Integrating building information modeling (BIM) and LEED system at the conceptual design stage of sustainable buildings. Sustain. Cities Soc. 2015, 18, 95–107. [Google Scholar] [CrossRef]
- Cao, D.; Li, H.; Wang, G. Impacts of isomorphic pressures on BIM adoption in construction projects. J. Constr. Eng. Manag. 2014, 140, 04014056. [Google Scholar] [CrossRef]
- Shi, Q.; Zuo, J.; Huang, R.; Huang, J.; Pullen, S. Identifying the critical factors for green construction—An empirical study in China. Habitat Int. 2013, 40, 1–8. [Google Scholar] [CrossRef]
- Azhar, S.; Nadeem, A.; Mok, J.Y.; Leung, B.H. Building Information Modeling (BIM): A new paradigm for visual interactive modeling and simulation for construction projects. In Proceedings of the First International Conference on Construction in Developing Countries, Karachi, Pakistan, 4–5 August 2008; pp. 435–446. [Google Scholar]
- Mellado, F.; Lou, E.C.W. Building information modelling, lean and sustainability: An integration framework to promote performance improvements in the construction industry. Sustain. Cities Soc. 2020, 61, 102355. [Google Scholar] [CrossRef]
- Boktor, J.; Hanna, A.; Menassa, C.C. State of practice of building information modeling in the mechanical construction industry. J. Manag. Eng. 2014, 30, 78–85. [Google Scholar] [CrossRef]
- Bynum, P.; Issa, R.R.; Olbina, S. Building information modeling in support of sustainable design and construction. J. Constr. Eng. Manag. 2013, 139, 24–34. [Google Scholar] [CrossRef]
- Li, Z.; Quan, S.J.; Yang, P.P.-J. Energy performance simulation for planning a low carbon neighborhood urban district: A case study in the city of Macau. Habitat Int. 2016, 53, 206–214. [Google Scholar] [CrossRef]
- Biswas, T.; Krishnamurti, R. Data Sharing for Sustainable Building Assessment. Int. J. Archit. Comput. 2012, 10, 555–574. [Google Scholar] [CrossRef]
- Kapogiannis, G.; Gaterell, M.; Oulasoglou, E. Identifying uncertainties toward sustainable projects. Procedia Eng. 2015, 118, 1077–1085. [Google Scholar] [CrossRef]
- Krygiel, E.; Nies, B. Green BIM: Successful Sustainable Design with Building Information Modeling; John Wiley & Sons: Hoboken, NJ, USA, 2008. [Google Scholar]
- Crosbie, T.; Dawood, N.; Dean, J. Energy profiling in the life-cycle assessment of buildings. Manag. Environ. Qual. Int. J. 2010, 21, 20–31. [Google Scholar] [CrossRef]
- Fan, S.-L.; Skibniewski, M.J.; Hung, T.W. Effects of building information modeling during construction. J. Appl. Sci. Eng. 2014, 17, 157–166. [Google Scholar]
- Datta, S.D.; Sobuz, M.H.R.; Nafe Assafi, M.; Sutan, N.M.; Islam, M.N.; Mannan, M.B.; Akid, A.S.M.; Hasan, N.M.S. Critical project management success factors analysis for the construction industry of Bangladesh. Int. J. Build. Pathol. Adapt, 2023; ahead-of-print. [Google Scholar] [CrossRef]
- Aibinu, A.; Venkatesh, S. Status of BIM adoption and the BIM experience of cost consultants in Australia. J. Prof. Issues Eng. Educ. Pract. 2014, 140, 04013021. [Google Scholar] [CrossRef]
- Benjaoran, V.; Bhokha, S. An integrated safety management with construction management using 4D CAD model. Saf. Sci. 2010, 48, 395–403. [Google Scholar] [CrossRef]
- Fearnside, P.M. Challenges for sustainable development in Brazilian Amazonia. Sustain. Dev. 2018, 26, 141–149. [Google Scholar] [CrossRef]
- Manzoor, B.; Othman, I.; Manzoor, M. Evaluating the critical safety factors causing accidents in high-rise building projects. Ain Shams Eng. J. 2021, 12, 2485–2492. [Google Scholar] [CrossRef]
- Chen, L.; Luo, H. A BIM-based construction quality management model and its applications. Autom. Constr. 2014, 46, 64–73. [Google Scholar] [CrossRef]
- Islam, H.; Jollands, M.; Setunge, S.; Haque, N.; Bhuiyan, M.A. Life cycle assessment and life cycle cost implications for roofing and floor designs in residential buildings. Energy Build. 2015, 104, 250–263. [Google Scholar] [CrossRef]
- Röck, M.; Hollberg, A.; Habert, G.; Passer, A. LCA and BIM: Visualization of environmental potentials in building construction at early design stages. Build. Environ. 2018, 140, 153–161. [Google Scholar] [CrossRef]
- Habib, H.M. Employ 6D-BIM Model Features for Buildings Sustainability Assessment. In Proceedings of the IOP Conference Series: Materials Science and Engineering, Chennai, India, 16–17 September 2020; p. 012021. [Google Scholar]
- Antón, L.Á.; Díaz, J. Integration of LCA and BIM for sustainable construction. Int. J. Civ. Environ. Eng. 2014, 8, 1378–1382. [Google Scholar]
- Datta, S.D.; Rana, M.J.; Assafi, M.N.; Mim, N.J.; Ahmed, S. Investigation on the generation of construction wastes in Bangladesh. Int. J. Constr. Manag. 2022, 23, 2260–2269. [Google Scholar] [CrossRef]
- Hwang, B.G.; Tan, J.S. Green building project management: Obstacles and solutions for sustainable development. Sustain. Dev. 2012, 20, 335–349. [Google Scholar] [CrossRef]
- Straub, A. Estimating the Service Lives of Building Products in Use. J. Civ. Eng. Archit. 2015, 9, 334–340. [Google Scholar] [CrossRef]
- Diaz-Sarachaga, J.M.; Jato-Espino, D.; Castro-Fresno, D. Methodology for the development of a new Sustainable Infrastructure Rating System for Developing Countries (SIRSDEC). Environ. Sci. Policy 2017, 69, 65–72. [Google Scholar] [CrossRef]
- Olatunji, S.; Olawumi, T.; Awodele, O. Achieving value for money (VFM) in construction projects. J. Civ. Environ. Res. 2017, 9, 54–64. [Google Scholar]
- Sepasgozar, S.M.; Hui, F.K.P.; Shirowzhan, S.; Foroozanfar, M.; Yang, L.; Aye, L. Lean practices using building information modeling (Bim) and digital twinning for sustainable construction. Sustainability 2021, 13, 161. [Google Scholar] [CrossRef]
- Gu, N.; London, K. Understanding and facilitating BIM adoption in the AEC industry. Autom. Constr. 2010, 19, 988–999. [Google Scholar] [CrossRef]
- Olatunji, S.O.; Olawumi, T.O.; Ogunsemi, D.R. Demystifying issues regarding public private partnerships (PPP). J. Econ. Sustain. Dev. 2016, 7, 1–22. [Google Scholar]
- Liu, S.; Xie, B.; Tivendal, L.; Liu, C. Critical barriers to BIM implementation in the AEC industry. Int. J. Mark. Stud. 2015, 7, 162. [Google Scholar] [CrossRef]
- Sriyolja, Z.; Harwin, N.; Yahya, K. Barriers to Implement Building Information Modeling (BIM) in Construction Industry: A Critical Review. In Proceedings of the IOP Conference Series: Earth and Environmental Science, Surakarta, Indonesia, 24–25 August 2021; p. 012021. [Google Scholar]
- Abubakar, M.; Ibrahim, Y.M.; Kado, D.; Bala, K. Contractors’ Perception of the Factors Affecting Building Information Modelling (BIM) Adoption in the Nigerian Construction Industry. In Proceedings of the Computing in Civil and Building Engineering, Orlando, FL, USA, 23–25 June 2014; pp. 167–178. [Google Scholar]
- Ghaffarianhoseini, A.; Tookey, J.; Ghaffarianhoseini, A.; Naismith, N.; Azhar, S.; Efimova, O.; Raahemifar, K. Building Information Modelling (BIM) uptake: Clear benefits, understanding its implementation, risks and challenges. Renew. Sustain. Energy Rev. 2017, 75, 1046–1053. [Google Scholar] [CrossRef]
- Wong, K.d.; Fan, Q. Building information modelling (BIM) for sustainable building design. Facilities 2013, 31, 138–157. [Google Scholar] [CrossRef]
- Aranda-Mena, G.; Crawford, J.; Chevez, A.; Froese, T. Building information modelling demystified: Does it make business sense to adopt BIM? Int. J. Manag. Proj. Bus. 2009, 2, 419–434. [Google Scholar] [CrossRef]
- Redmond, A.; Hore, A.; Alshawi, M.; West, R. Exploring how information exchanges can be enhanced through Cloud BIM. Autom. Constr. 2012, 24, 175–183. [Google Scholar] [CrossRef]
- Hope, A.; Alwan, Z. Building the future: Integrating building information management and environmental assessment methodologies. In Proceedings of the First UK Academic Conference on BIM, Northumbria University, Newcastle upon Tyne, UK, 5–7 September 2012. [Google Scholar]
- Meng, J.; Xue, B.; Liu, B.; Fang, N. Relationships between top managers’ leadership and infrastructure sustainability: A Chinese urbanization perspective. Eng. Constr. Archit. Manag. 2015, 22, 692–714. [Google Scholar] [CrossRef]
- Zahrizan, Z.; Ali, N.M.; Haron, A.T.; Marshall-Ponting, A.; Hamid, Z. Exploring the adoption of Building Information Modelling (BIM) in the Malaysian construction industry: A qualitative approach. Int. J. Res. Eng. Technol. 2013, 2, 384–395. [Google Scholar]
- Vangimalla, P.R.; Olbina, S.J.; Issa, R.R.; Hinze, J. Validation of Autodesk Ecotect™ accuracy for thermal and daylighting simulations. In Proceedings of the 2011 Winter Simulation Conference (WSC), Phoenix, AZ, USA, 11–14 December 2011; pp. 3383–3394. [Google Scholar]
- Adamus, L.W. BIM: Interoperability for Sustainability Analysis in Construction. Cent. Eur. Towards Sustain. Build. Integr. Build. Des. BIM 2013, 1–4. Available online: https://www.google.com.hk/url?sa=t&rct=j&q=&esrc=s&source=web&cd=&cad=rja&uact=8&ved=2ahUKEwiQs8P1g-CAAxU_d2wGHdHgCuEQFnoECAgQAQ&url=http%3A%2F%2Fwww.cesb.cz%2Fcesb13%2Fproceedings%2F4_design%2FCESB13_1120.pdf&usg=AOvVaw1kvI1i7S7sS0n8f2Ocf9wR&opi=89978449 (accessed on 22 July 2023).
- Bradley, A.; Li, H.; Lark, R.; Dunn, S. BIM for infrastructure: An overall review and constructor perspective. Autom. Constr. 2016, 71, 139–152. [Google Scholar] [CrossRef]
- Saxon, R.G. Growth through BIM. Constr. Ind. Counc. Lond. 2013, 4, 536–547. [Google Scholar]
- Terris, J.; Nepal, M. The potential of using BIM to improve the safety of temporary structures on construction sites. In Proceedings of the 43rd AUBEA: Australasian Universities Building Education Association Conference Proceedings, Noosa QLD, Australia, 6–8 November 2019; pp. 556–562. [Google Scholar]
- Kivits, R.A.; Furneaux, C. BIM: Enabling sustainability and asset management through knowledge management. Sci. World J. 2013, 2013, 983721. [Google Scholar] [CrossRef]
- Cao, D.; Wang, G.; Li, H.; Skitmore, M.; Huang, T.; Zhang, W. Practices and effectiveness of building information modelling in construction projects in China. Autom. Constr. 2015, 49, 113–122. [Google Scholar] [CrossRef]
- Djuedja, T.; Flore, J. Information Modelling for the Development of Sustainable Construction (MINDOC); INPT: Toulouse, France, 2019. [Google Scholar]
- Eleftheriadis, S.; Mumovic, D.; Greening, P. Life cycle energy efficiency in building structures: A review of current developments and future outlooks based on BIM capabilities. Renew. Sustain. Energy Rev. 2017, 67, 811–825. [Google Scholar] [CrossRef]
- Suermann, P.C.; Issa, R.R. Evaluating industry perceptions of building information modelling (BIM) impact on construction. J. Inf. Technol. Constr. 2009, 14, 574–594. [Google Scholar]
- Akinade, O.O.; Oyedele, L.O.; Bilal, M.; Ajayi, S.O.; Owolabi, H.A.; Alaka, H.A.; Bello, S.A. Waste minimisation through deconstruction: A BIM based Deconstructability Assessment Score (BIM-DAS). Resour. Conserv. Recycl. 2015, 105, 167–176. [Google Scholar] [CrossRef]
- Wang, W.; Zmeureanu, R.; Rivard, H. Applying multi-objective genetic algorithms in green building design optimization. Build. Environ. 2005, 40, 1512–1525. [Google Scholar] [CrossRef]
- Barlish, K.; Sullivan, K. How to measure the benefits of BIM—A case study approach. Autom. Constr. 2012, 24, 149–159. [Google Scholar] [CrossRef]
- Huang, R.-Y.; Lin, C.-H.; Tsai, T.-Y.; Chou, H.-Y. The study of bim-based infrastructure management system for Taiwan industrial parks. In Proceedings of the 14th International Conference on Computing in Civil and Building Engineering, Moscow, Russia, 27–29 June 2012. [Google Scholar]
- Akadiri, P.O.; Olomolaiye, P.O.; Chinyio, E.A. Multi-criteria evaluation model for the selection of sustainable materials for building projects. Autom. Constr. 2013, 30, 113–125. [Google Scholar] [CrossRef]
- Zhang, J.; Fei, Y.; Guo, Y. Study on BIM-based technological scheme design system. In Proceedings of the 30th CIB W78 International Conference, Beijing, China, 9–12 October 2013. [Google Scholar]
- Kota, S.; Haberl, J.S.; Clayton, M.J.; Yan, W. Building Information Modeling (BIM)-based daylighting simulation and analysis. Energy Build. 2014, 81, 391–403. [Google Scholar] [CrossRef]
- Alwan, Z.; Greenwood, D.; Gledson, B. Rapid LEED evaluation performed with BIM based sustainability analysis on a virtual construction project. Constr. Innov. 2015, 15, 134–150. [Google Scholar] [CrossRef]
- Liu, S.; Meng, X.; Tam, C. Building information modeling based building design optimization for sustainability. Energy Build. 2015, 105, 139–153. [Google Scholar] [CrossRef]
- Khaddaj, M.; Srour, I. Using BIM to retrofit existing buildings. Procedia Eng. 2016, 145, 1526–1533. [Google Scholar] [CrossRef]
- Gourlis, G.; Kovacic, I. Building Information Modelling for analysis of energy efficient industrial buildings–A case study. Renew. Sustain. Energy Rev. 2017, 68, 953–963. [Google Scholar] [CrossRef]
- Abanda, F.; Tah, J.; Cheung, F. BIM in off-site manufacturing for buildings. J. Build. Eng. 2017, 14, 89–102. [Google Scholar] [CrossRef]
- Olawumi, T.O.; Chan, D.W.; Wong, J.K. Evolution in the intellectual structure of BIM research: A bibliometric analysis. J. Civ. Eng. Manag. 2017, 23, 1060–1081. [Google Scholar] [CrossRef]
- Shin, J.; Choi, J.; Kim, I. A study on BIM performance assessment framework for architecture firm. Adv. Sci. Technol. Lett. 2015, 120, 599–602. [Google Scholar]
- Department of Economic and Social Affairs Sustainable Development. 17 SDGs. Available online: https://sdgs.un.org/goals (accessed on 22 July 2023).
Factors | Designation |
---|---|
Benefits | |
Providing predictive performance analysis (energy analysis, code analysis) | EN1 |
Monitoring performance effects | EN2 |
Controlling energy usage | EN3 |
Promoting carbon emission reduction | EN4 |
Improving ventilation performance | EN5 |
Assessing water harvesting | EN6 |
Promoting sustainable design alternatives’ creation | EN7 |
Promoting efficient resource management | EN8 |
Providing thermal building life-cycle analysis | EN9 |
Providing lighting building life-cycle analysis | EN10 |
Evaluating optimal opportunities | EN11 |
Encourage the implementation of clean technologies that require less energy consumption | EN12 |
Enhancing material wastage reduction | EN13 |
Promoting design, construction, and management of green buildings | EN14 |
Promoting stakeholders to realize benefits of sustainable development | EN15 |
Necessary technology to achieve CO2 goals | EN16 |
Improving design efficiency | EC1 |
Reducing the cost of as-built drawings | EC2 |
Reducing the overall project costs | EC3 |
Enhancing construction performance | EC4 |
Promoting productivity | EC5 |
Improving the management procedure throughout the entire life span of buildings (design, construction, operation, maintenance, and management) | EC6 |
Promote cost control | EC7 |
Reducing project delivery time | EC8 |
Coordinating necessary procurement requirements in advance (supplies, equipment, and capital requirements) | EC9 |
Promoting data workflow in the project operation process | EC10 |
Examining renewable energy sources that reduce the cost of energy | EC11 |
Determining the optimal options to decrease energy and resource utilization | EC12 |
Developing cost-effective sustainable design | EC13 |
Predicting energy savings | EC14 |
Promoting financial and investment opportunities | EC15 |
Supporting workers’ connection and collaboration toward accelerating projects | SA1 |
Enhancing project safety and health performance | SA2 |
Increasing building life | SA3 |
Smoothing the transition from design to implementation, to post-design, and finally to maintenance | SA4 |
Prompting stakeholders toward the adoption of sustainable projects | SA5 |
Facilitating input, extraction, exchange, or transform information in projects | SA6 |
Enhancing individuals’ quality of life | SA7 |
Facilitating operating sustainability systems smoothly | SA8 |
Monotiling construction quality | SA9 |
Recording project problems | SA10 |
Offering a centralized database that supports the management of the entire building life-cycle process | SA11 |
Enhancing sharing of physical and functional information of sustainable projects between all stakeholders | SA12 |
Supporting the decision-making process | SA13 |
Facilitating management departments for renovations, space planning, and maintenance operations | SA14 |
Enhancing construction industry brand image and competitive advantage | SA15 |
Barriers | |
Lack of collaborative working environment | BR1 |
High cost of application | BR2 |
Lack of skilled personnel | BR3 |
High cost of training staff | BR4 |
High cost of BIM experts | BR5 |
Market readiness for innovation | BR6 |
The industry’s reluctance to move away from traditional methods of working | BR7 |
Lack of experts | BR8 |
Recurring need for additional and associated resources and high economic expenses | BR9 |
Limited studies on the application of BIM in eco-friendly building construction | BR10 |
Absence of well-defined guidelines for utilizing BIM in sustainable construction projects | BR11 |
Limited participation of individuals utilizing BIM in sustainable building projects | BR12 |
Absence of a well-defined method for exchanging operational management data | BR13 |
A lack of comprehension of the steps and activities needed for BIM and ecological sustainability | BR14 |
Inaccurate energy analysis predictions using BIM in eco-friendly buildings | BR15 |
Insufficient BIM data structures to accurately capture sustainability-related information | BR16 |
Lack of a comprehensive framework and implementation plan | BR17 |
Uncontrolled application risk of BIM technology in sustainable buildings | BR18 |
Increased liability | BR19 |
Lack of senior management support and attention toward integration of BIM and sustainability practices | BR20 |
Non-uniformity of sustainability and BIM evaluation criteria and measures | BR21 |
Benefits | References | |
---|---|---|
Environmental Aspect | ||
1. | Providing predictive performance analysis (energy analysis, code analysis) | [53,54] |
2. | Monitoring performance effects | [53] |
3. | Controlling energy usage | [26,55] |
4. | Promoting carbon emission reduction | [26,56,57] |
5. | Improving ventilation performance | [26] |
6. | Assessing water harvesting | [56] |
7. | Promoting sustainable design alternatives’ creation | [58,59] |
8. | Promoting efficient resource management | [60] |
9. | Providing thermal building life-cycle analysis | [61] |
10. | Providing lighting building life-cycle analysis | [61] |
11. | Evaluating optimal opportunities | [62] |
12. | Encourage the implementation of clean technologies that require less energy consumption | [63] |
13. | Enhancing material wastage reduction | [56,64,65] |
14. | Promoting design, construction, and management of green buildings | [57] |
15. | Promoting stakeholders to realize benefits of sustainable development | [66] |
16. | Necessary technology to achieve CO2 goals | [54] |
Economic Aspect | ||
1. | Improving design efficiency | [67,68,69] |
2. | Reducing the cost of as-built drawings | [70] |
3. | Reducing the overall project costs | [67,68,71] |
4. | Enhancing construction performance | [9] |
5. | Promoting productivity | [9,57,68] |
6. | Improving the management procedure throughout the entire life span of buildings (design, construction, operation, maintenance, and management) | [9,72,73] |
7. | Promote cost control | [72] |
8. | Reducing project delivery time | [68] |
9. | Coordinating necessary procurement requirements in advance (supplies, equipment, and capital requirements) | [9,72] |
10. | Promoting data workflow in the project operation process | [3] |
11. | Examining renewable energy sources that reduce the cost of energy | [56] |
12. | Determining the optimal options to decrease energy and resource utilization | [9,72] |
13. | Developing cost-effective sustainable design | [58,74] |
14. | Predicting energy savings | [75,76,77] |
15. | Promoting financial and investment opportunities | [59,78] |
Social Aspect | ||
1. | Supporting workers’ connection and collaboration toward accelerating projects | [67,79] |
2. | Enhancing project safety and health performance | [60,72,80,81,82] |
3. | Increasing building life | [83,84] |
4. | Smoothing the transition from design to implementation, to post-design, and finally to maintenance | [83,84] |
5. | Prompting stakeholders toward the adoption of sustainable projects | [3] |
6. | Facilitating input, extraction, exchange, or transform information in projects | [3,85] |
7. | Enhancing individuals’ quality of life | [81,82] |
8. | Facilitating operating sustainability systems smoothly | [3] |
9. | Monotiling construction quality | [26] |
10. | Recording project problems | [26] |
11. | Offering a centralized database that supports the management of the entire building life-cycle process | [82,85] |
12. | Enhancing sharing of physical and functional information of sustainable projects between all stakeholders | [26] |
13. | Supporting the decision-making process | [57,86] |
14. | Facilitating management departments for renovations, space planning, and maintenance operations | [9] |
15. | Enhancing construction industry brand image and competitive advantage | [87] |
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Datta, S.D.; Tayeh, B.A.; Hakeem, I.Y.; Abu Aisheh, Y.I. Benefits and Barriers of Implementing Building Information Modeling Techniques for Sustainable Practices in the Construction Industry—A Comprehensive Review. Sustainability 2023, 15, 12466. https://doi.org/10.3390/su151612466
Datta SD, Tayeh BA, Hakeem IY, Abu Aisheh YI. Benefits and Barriers of Implementing Building Information Modeling Techniques for Sustainable Practices in the Construction Industry—A Comprehensive Review. Sustainability. 2023; 15(16):12466. https://doi.org/10.3390/su151612466
Chicago/Turabian StyleDatta, Shuvo Dip, Bassam A. Tayeh, Ibrahim Y. Hakeem, and Yazan I. Abu Aisheh. 2023. "Benefits and Barriers of Implementing Building Information Modeling Techniques for Sustainable Practices in the Construction Industry—A Comprehensive Review" Sustainability 15, no. 16: 12466. https://doi.org/10.3390/su151612466
APA StyleDatta, S. D., Tayeh, B. A., Hakeem, I. Y., & Abu Aisheh, Y. I. (2023). Benefits and Barriers of Implementing Building Information Modeling Techniques for Sustainable Practices in the Construction Industry—A Comprehensive Review. Sustainability, 15(16), 12466. https://doi.org/10.3390/su151612466