Advancing the circular economy: a BIM and lean construction dynamic framework for pre-construction phases

DOI: https://doi.org/10.3846/jcem.2026.26828

Abstract

The execution of construction technology projects generates substantial construction waste, both site-based and non-site-based, posing significant environmental and economic challenges worldwide. This paper explores a proactive approach to minimizing construction waste by controlling its causes during the pre-construction phase by integrating Building Information Modeling (BIM) and Lean Construction principles. Key pre-construction activities such as cost estimation, scheduling, constructability reviews, value engineering, procurement, and contracting are analyzed for their potential to reduce waste. Two scenarios - Existing Waste Management Strategies and Waste-Effective Site Management Practices are assessed using quantitative metrics and system dynamics modeling. The proposed technique employs eight causal loop diagrams, reflecting expert insights into waste reduction strategies, and is implemented using AnyLogic software with a stock-flow system dynamics model. Validation is achieved through a real-world case study, demonstrating the technique’s applicability and effectiveness in minimizing construction waste during the pre-construction phase. The findings highlight the dynamic buildup of critical variables influencing waste generation and provide a framework for evaluating and implementing optimal waste reduction strategies. This research underscores the potential of BIM and Lean Construction to drive sustainable waste management practices in construction technology projects, contributing to enhanced efficiency and environmental stewardship.

Keywords:

sustainable pre-construction phase, construction waste, lean construction and BIM, system dynamics, sustainability

How to Cite

Meshref, A. N., Elkasaby, E. A. F. A., Farid, A. A. K. M., Elmousalami, H., & Alotaibi, A. (2026). Advancing the circular economy: a BIM and lean construction dynamic framework for pre-construction phases. Journal of Civil Engineering and Management, 32(4), 583–604. https://doi.org/10.3846/jcem.2026.26828

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May 21, 2026
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References

Addis, W. (2006). Building with reclaimed components and materials: A design handbook for reuse and recycling. Earthscan.

Agyekum, K., Ayarkwa, J., & Adinyira, E. (2012). Consultants’ perspectives on materials waste reduction in Ghana. Engineering Management Research, 1(1), 138–150. https://doi.org/10.5539/emr.v1n1p138

Ajayi, S. O., Oyedele, L. O., Bilal, M., Akinade, O. O., Alaka, H. A., Owolabi, H. A., & Kadiri, K. O. (2015). Waste effectiveness of the construction industry: Understanding impediments and requisites for improvements. Resources, Conservation and Recycling, 102, 101–112. https://doi.org/10.1016/j.resconrec.2015.06.001

Alarcón, L. (1997). Lean construction. CRC Press. https://doi.org/10.4324/9780203345825

Alshubbak, A., Pellicer, E., & Catalá, J. (2009). A collaborative approach to project life cycle definition. In Proceedings of the 3rd Conference on Engineering Work in Palestine. Engineers Association – Jerusalem Center.

Alwi, S., Hampson, K., & Mohamed, S. (2002). Waste in Indonesian construction projects. In Proceedings of the CIB W107 Conference (pp. 541–549). CIB.

Allwood, J. M., Ashby, M. F., Gutowski, T. G., & Worrell, E. (2011). Material efficiency: A white paper. Resources, Conservation and Recycling, 55(3), 362–381. https://doi.org/10.1016/j.resconrec.2010.11.002

Anderson, J., Shiers, D., & Sinclair, M. (2002). The green guide to specification (3rd ed.). Blackwell Publishing. https://doi.org/10.1002/9780470690666

Anis, A. R., Garas, G. L., & El-Gammal, A. (2001). Materials waste in the Egyptian construction industry.

Associated General Contractors of America. (2005). The contractor’s guide to BIM. Las Vegas, NV, USA.

Azhar, S., Hein, M., & Sketo, B. (2008). Building information modeling (BIM): Benefits, risks and challenges.

Bajjou, M. S., Chafi, A., & En-Nadi, A. (2017). A comparative study between lean construction and traditional production systems. International Journal of Engineering Research in Africa, 29, 118–132. https://doi.org/10.4028/www.scientific.net/JERA.29.118

Bekr, G. A. (2014). Study of the causes and magnitude of material waste on construction sites in Jordan. Journal of Construction Engineering, 2014, Article 283298. https://doi.org/10.1155/2014/283298

Bossink, B. A. G., & Brouwers, H. J. H. (1996). Construction waste: Quantification and source evaluation. Journal of Construction Engineering and Management, 122(1), 55–60. https://doi.org/10.1061/(ASCE)0733-9364(1996)122:1(55)

Cheng, Y. (2012). Financial control systems in Chinese listed companies. International Journal of Business Administration, 3(4), 67–71. https://doi.org/10.5430/ijba.v3n4p67

Coventry, S., Woolveridge, C., & Patel, V. (1999). Waste minimization and recycling in construction: Boardroom handbook. CIRIA.

Dajadian, S. A., & Koch, D. C. (2014). Waste management models and applications on construction sites. International Journal of Construction Engineering and Management, 3, 91–98.

Department for Environment, Food and Rural Affairs. (2013). Waste prevention programme for England.

Ekanayake, L. L., & Ofori, G. (2000). Construction material waste source evaluation. In Proceedings of the Strategies for Sustainable Built Environment Conference.

Emmitt, S. (2007). Design management for architects. Blackwell.

Formoso, C. T., Soibelman, L., De Cesare, C., & Isatto, E. L. (2002). Material waste in the building industry: Main causes and prevention. Journal of Construction Engineering and Management, 128(4), 316–325. https://doi.org/10.1061/(ASCE)0733-9364(2002)128:4(316)

Gavilan, R. M., & Bernold, L. E. (1995). Source evaluation of solid waste in building construction. Journal of Construction Engineering and Management, 120(3), 536–552. https://doi.org/10.1061/(ASCE)0733-9364(1994)120:3(536)

Hao, J. L., Hills, M. J., & Huang, T. (2007). A simulation model for waste management in Hong Kong. Construction Innovation, 7(1), 7–21. https://doi.org/10.1108/14714170710721269

High Performance Systems, Inc. (1997). iThink technical documentation.

Horman, M. J., & Kenley, R. (2005). Quantifying wasted time in construction. Journal of Construction Engineering and Management, 131(1), 52–61. https://doi.org/10.1061/(ASCE)0733-9364(2005)131:1(52)

Hsiao, T. Y., Huang, Y. T., Yu, Y. H., & Wernick, I. K. (2002). Modeling material flows of waste concrete in Taiwan. Resources Policy, 28(1–2), 39–47. https://doi.org/10.1016/S0301-4207(03)00004-7

Hu, D., & Mohamed, Y. (2014). Dynamic programming for fabrication sequencing. Automation in Construction, 40, 9–20. https://doi.org/10.1016/j.autcon.2013.12.013

John, A. O., & Itodo, D. E. (2013). Professionals’ views of material wastage on construction sites and cost overruns. Organization, Technology and Management in Construction: An International Journal, 5, 747–757. https://doi.org/10.5592/otmcj.2013.1.11

Karim, K., & Marosszeky, M. (1999). Process monitoring using KPIs. In Proceedings of Construction Process Reengineering Conference.

Kartam, N. A. (1996). Effective use of lessons learned in construction. Journal of Construction Engineering and Management, 122, 14–21. https://doi.org/10.1061/(ASCE)0733-9364(1996)122:1(14)

Khanh, H. D., & Kim, S. Y. (2014). Causes of waste in high-rise construction projects. KSCE Journal of Civil Engineering, 18, 865–874. https://doi.org/10.1007/s12205-014-1327-z

Koskela, L. (1992). Application of the new production philosophy to construction (Technical Report No. 72). Stanford University.

Koskela, L., Howell, G., Ballard, G., & Tommelein, I. (2002). The foundations of lean construction. In B. Hollingsworth, R. Best, & G. de Valence (Eds.), Design and construction: Building in value (pp. 211–226). Elsevier.

Liu, Z., Osmani, M., Demian, P., & Baldwin, A. (2011). BIM for waste minimization. In Proceedings of CIB W78 Conference. CIB.

Macozoma, D. S. (2002). Construction site waste management and minimization. CIB.

Meshref, A., El-Dash, K., Basiouny, M., & El-Hadidi, O. (2022). Implementation of a life cycle cost deep learning prediction model based on building structure alternatives for industrial buildings. Buildings, 12(5), Article 502. https://doi.org/10.3390/buildings12050502

Meshref, A. N., Elkasaby, E., & Farid, A. (2023). Reducing construction waste using system dynamics. Journal of Building Engineering, 69, Article 106302. https://doi.org/10.1016/j.jobe.2023.106302

Nagapan, S., Rahman, I. A., Asmi, A., Memon, A. H., & Latif, I. (2012). Issues in construction waste management. In IEEE CHUSER Conference (pp. 325–330), Kota Kinabalu, Malaysia. IEEE. https://doi.org/10.1109/CHUSER.2012.6504333

NIST. (2012). National Building Information Modeling standard (Version 2). US National Institute of Building Science, Washington, DC, USA.

Nouh, A., Elkasaby, E., & Hussein, K. (2022a). Establishment of a prediction system for the cost of the defect liability phase in construction projects. Construction Innovation, 23(2), 467–486. https://doi.org/10.1108/CI-05-2021-0096

Nouh, A., Elkasaby, E., & Ibrahim, A. (2022b). Selecting key drivers for successful lean construction implementation using Simos’ and WSM: The case of Egypt. Buildings, 12(5), Article 673. https://doi.org/10.3390/buildings12050673

Osmani, M., Glass, J., & Price, A. (2006). Architect and contractor attitudes to waste minimization. Proceedings of the ICE – Waste and Resource Management, 159(WR2), 65–72. https://doi.org/10.1680/warm.2006.159.2.65

Porwal, A., & Hewage, K. N. (2012). BIM-based waste minimization. Journal of Construction Engineering and Management, 138(8), 943–954. https://doi.org/10.1061/(ASCE)CO.1943-7862.0000508

Richardson, G. P., & Pugh, A. L. (1981). Introduction to system dynamics modeling. Productivity Press.

Rong, L. (2004). Using system dynamics in decision support for sustainable waste management [Master’s thesis]. National University of Singapore.

Shen, L. Y., Tam, V. W. Y., Tam, C. M., & Drew, D. (2004). Mapping waste management on construction sites. Journal of Construction Engineering and Management, 130(4), 472–481. https://doi.org/10.1061/(ASCE)0733-9364(2004)130:4(472)

Sterman, J. D. (2000). Business dynamics. McGraw-Hill.

Tam, V. W. Y., Shen, L. Y., Fung, I. W. H., & Wang, J. Y. (2007). Controlling construction waste in Hong Kong. Construction Innovation, 7(2), 149–166. https://doi.org/10.1108/14714170710738522

Vanlande, R., Nicolle, C., & Cruz, C. (2008). IFC and building lifecycle management. Automation in Construction, 18(1), 70–78. https://doi.org/10.1016/j.autcon.2008.05.001

Wan, S. K., Kumaraswamy, M. M., & Liu, D. T. (2009). Construction debris contributors. Journal of Construction Engineering and Management, 135(7), 637–646. https://doi.org/10.1061/(ASCE)0733-9364(2009)135:7(637)

Wang, J.-Y., Shen, Y.-K., & Tian, J.-X. (2009). Study on the construction project life-cycle integrated management system. In Proceedings of the 16th International Conference on Management Science & Engineering (pp. 1976–1981), Ankara, Turkey. https://doi.org/10.1109/ICMSE.2009.5318871

Xia, B., & Chan, A. P. C. (2012). Measuring complexity for building projects: A Delphi study. Engineering, Construction and Architectural Management, 19(1), 7–24. https://doi.org/10.1108/09699981211192544

Yuan, H. (2012). Social performance of construction waste management. Waste Management, 32, 1218–1228. https://doi.org/10.1016/j.wasman.2012.01.028

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2026-05-21

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How to Cite

Meshref, A. N., Elkasaby, E. A. F. A., Farid, A. A. K. M., Elmousalami, H., & Alotaibi, A. (2026). Advancing the circular economy: a BIM and lean construction dynamic framework for pre-construction phases. Journal of Civil Engineering and Management, 32(4), 583–604. https://doi.org/10.3846/jcem.2026.26828

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