Technical Papers
Apr 12, 2018

Identification of Factors and Decision Analysis of the Level of Modularization in Building Construction

Publication: Journal of Architectural Engineering
Volume 24, Issue 2

Abstract

In the majority of ordinary housing development projects, instead of using complex multicriteria decision-making systems, companies still rely on expert knowledge, checklists, or similar tools to decide on an appropriate level of modularization. Generally, in these types of projects the level of modularization is mainly driven by site constraints, such as accessibility and harsh weather conditions. Because of the lack of appropriate decision support tools, it is very hard for decision makers to include factors, such as lifecycle costs, quality, productivity, efficiency, and design complexity, into their decision, even if they are willing to do so. Simple decision support tools are required to provide practical assistance to the decision makers to adopt an appropriate level of modularization for such projects. This study, as a part of a broad ongoing research project on the optimum level of modularization in building construction, has compiled the expert knowledge for decision support that enables the decision makers to perform an easy initial feasibility study on the use of an appropriate level of modularization in their construction projects. First, a list of critical decision-making criteria is created. These criteria are obtained from an extensive literature review, qualitative survey questionnaires, and semistructured interviews with researchers and professionals in the construction industry as well as modular manufacturers. Then, using the results, a simple multicriteria decision analysis (MCDA) approach is developed as a practical decision support system to facilitate the decision-making process for selecting appropriate construction systems as well as determining the proper level of modularization for building construction projects. The validation of the study is demonstrated through a local actual case study.

Get full access to this article

View all available purchase options and get full access to this article.

References

Al-Momani, A. H. (2000). “Construction delay: A quantitative analysis.” Int. J. Project Manage., 18(1), 51–59.
Ashworth, A., and Perera, S. (2015). Cost studies of buildings, Taylor & Francis, Florence, KY.
Assaf, S. A., and Al-Hejji, S. (2006). “Causes of delay in large construction projects.” Int. J. Project Manage., 24(4), 349–357.
Aye, L., Ngo, T., Crawford, R. H., Gammampila, R., and Mendis, P. (2012). “Life cycle greenhouse gas emissions and energy analysis of prefabricated reusable building modules.” Energy Build., 47(Apr), 159–168.
Azhar, S., Lukkad, M. Y., and Ahmad, I. (2013). “An investigation of critical factors and constraints for selecting modular construction over conventional stick-built technique.” Int. J. Constr. Educ. Res., 9(3), 203–225.
Ballast, D. K. (2007). Handbook of construction tolerances, John Wiley & Sons, Hoboken, NJ.
Blismas, N., and Wakefield, R. (2009). “Drivers, constraints and the future of offsite manufacture in Australia.” Constr. Innovation, 9(1), 72–83.
Chen, Y., Okudan, G. E., and Riley, D. R. (2010a). “Decision support for construction method selection in concrete buildings: Prefabrication adoption and optimization.” Autom. Constr., 19(6), 665–675.
Chen, Y., Okudan, G. E., and Riley, D. R. (2010b). “Sustainable performance criteria for construction method selection in concrete buildings.” Autom. Constr., 19(2), 235–244.
Chiang, Y.-H., Hon-Wan Chan, E., and Ka-Leung Lok, L. (2006). “Prefabrication and barriers to entry—A case study of public housing and institutional buildings in Hong Kong.” Habitat Int., 30(3), 482–499.
Cole, R. J., and Rousseau, D. (1992). “Environmental auditing for building construction: Energy and air pollution indices for building materials.” Build. Environ., 27(1), 23–30.
Davies, J. M. (2008). Lightweight sandwich construction, Blackwell Science, London.
Deodatis, G., Ellingwood, B. R., and Frangopol, D. M. (2014). Safety, reliability, risk and life-cycle performance of structures and infrastructures, CRC Press, Boca Raton, FL.
Eastman, C. M. (1999). Building product models: Computer environments, supporting design and construction, CRC Press, Boca Raton.
Fard, M. M., Terouhid, S. A., Kibert, C. J., and Hakim, H. (2017). “Safety concerns related to modular/prefabricated building construction.” Int. J. Inj. Control Saf. Promotion, 24(1), 10–23.
Fleming, E. (2010). Construction technology: An illustrated introduction, Blackwell Publishing, Oxford, U.K.
Gann, D. M. (1996). “Construction as a manufacturing process? Similarities and differences between industrialized housing and car production in Japan.” Constr. Manage. Econ., 14(5), 437–450.
Goodier, C., and Gibb, A. (2007). “Future opportunities for offsite in the UK.” Constr. Manage. Econ., 25(6), 585–595.
Gosling, J., Pero, M., Schoenwitz, M., Towill, D., and Cigolini, R. (2016). “Defining and categorizing modules in building projects: An international perspective.” J. Constr. Eng. Manage., 04016062.
Griffith, A., Sidwell, A. C., and Sidwell, T. (1995). Constructability in building and engineering projects, Macmillan, Basingstoke, U.K.
Griffith, A., and Watson, P. (2003). Construction management: Principles and practice, Palgrave Macmillan, Basingstoke, U.K.
Haas, C. T., and Fagerlund, W. R., (2002). “Preliminary research on prefabrication, pre-assembly, modularization and off-site fabrication in construction.” Ph.D. thesis, Univ. of Texas at Austin, Austin, TX.
Hughes, P., and Ferrett, E. (2016). Introduction to health and safety in construction: For the NEBOSH national certificate in construction health and safety, Taylor & Francis, London.
Ikuma, L. H., Nahmens, I., and James, J. (2011). “Use of safety and lean integrated Kaizen to improve performance in modular homebuilding.” J. Constr. Eng. Manage., 551–560.
Islam, H., Zhang, G., Setunge, S., and Bhuiyan, M. A. (2016). “Life cycle assessment of shipping container home: A sustainable construction.” Energy Build., 128(Sep), 673–685.
Jack, H. (2013). Engineering design, planning, and management, Academic Press/Elsevier Science, Oxford, U.K.
Jaillon, L., and Poon, C. S. (2009). “The evolution of prefabricated residential building systems in Hong Kong: A review of the public and the private sector.” Autom. Constr., 18(3), 239–248.
Jaillon, L., and Poon, C. S. (2010). “Design issues of using prefabrication in Hong Kong building construction.” Constr. Manage. Econ., 28(10), 1025–1042.
Jaillon, L., and Poon, C. S. (2014). “Life cycle design and prefabrication in buildings: A review and case studies in Hong Kong.” Autom. Constr., 39(Apr), 195–202.
Jaillon, L., Poon, C. S., and Chiang, Y. H. (2009). “Quantifying the waste reduction potential of using prefabrication in building construction in Hong Kong.” Waste Manage., 29(1), 309–320.
Kaming, P. F., Olomolaiye, P. O., Holt, G. D., and Harris, F. C. (1997). “Factors influencing construction time and cost overruns on high-rise projects in Indonesia.” Constr. Manage. Econ., 15(1), 83–94.
Kaufmann, M., and Remick, C. (2009). Prefab green, Gibbs Smith, Layton, UT.
Korman, T. M., and Lu, N., (2011). “Innovation and improvements of mechanical, electrical, and plumbing systems for modular construction using building information modeling.” Proc., 2011 Architectural Engineering National Conf., ASCE, Reston, VA, 448–455.
Lawson, M., Ogden, R., and Goodier, C. (2014). Design in modular construction, CRC Press, Boca Raton, FL.
Li, Z., Shen, G. Q., and Xue, X. (2014). “Critical review of the research on the management of prefabricated construction.” Habitat Int., 43(Jul), 240–249.
Lopez, D., and Froese, T. M. (2016). “Analysis of costs and benefits of panelized and modular prefabricated homes.” Procedia Eng., 145, 1291–1297.
Loushine, T. W., Hoonakker, P. L. T., Carayon, P., and Smith, M. J. (2006). “Quality and safety management in construction.” Total Qual. Manage. Bus. Manage. Bus. Business Excellence, 17(9), 1171–1212.
Luo, Y., Riley, R., Horman, M., and Kremer, G., (2008). “Decision support methodology for prefabrication decisions on green building projects.” Proc., Symp. on Sustainability and Value through Construction Procurement, The Digital World Centre, Manchester, U.K.
Mao, C., Shen, Q., Shen, L., and Tang, L. (2013). “Comparative study of greenhouse gas emissions between off-site prefabrication and conventional construction methods: Two case studies of residential projects.” Energy Build., 66(Nov) 165–176.
McGraw Hill Construction. (2011). “Prefabrication and modularization: Increasing productivity in the construction industry.” SmartMarket Rep., Bedford, MA.
McGraw Hill Construction. (2013). “Lean construction: Leveraging collaboration and advanced practices to increase project efficiency.” SmartMarket Rep., Bedford, MA.
Murtaza, M., Fisher, D., and Skibniewski, M. (1993). “Knowledge-based approach to modular construction decision support.” J. Constr. Eng. Manage., 115–130.
Nasereddin, M., Mullens, M. A., and Cope, D. (2007). “Automated simulator development: A strategy for modeling modular housing production.” Autom. Constr., 16(2), 212–223.
National Research Council. (2009). Advancing the competitiveness and efficiency of the U.S. construction industry, U.S. National Academies Press, Washington DC.
O’Brien, J. J. (2012). Construction inspection handbook: Total quality management, Springer, Boston.
O’Connor, J. T., O’Brien, W. J., and Choi, J. O. (2015). “Standardization strategy for modular industrial plants.” J. Constr. Eng. Manage., 04015026.
Oka, T., Suzuki, M., and Konnya, T. (1993). “The estimation of energy consumption and amount of pollutants due to the construction of buildings.” Energy Build., 19(4), 303–311.
Olearczyk, J., Al-Hussein, M., and Bouferguène, A. (2014). “Evolution of the crane selection and on-site utilization process for modular construction multilifts.” Autom. Constr., 43(Jul), 59–72.
Pahl, G., Wallace, K., Blessing, L. T. M., Beitz, W., and Bauert, F. (2013). Engineering design: A systematic approach, Springer, London.
Ramaji, I., and Memari, A. (2016). “Product architecture model for multistory modular buildings.” J. Constr. Eng. Manage., 04016047.
Rashidi, M., and Lemass, B. (2011). “A decision support methodology for remediation planning of concrete bridges.” J. Constr. Eng. Manage., 1(2), 1–10.
Rashidi, M., Samali, B., and Sharafi, P. (2016a). “A new model for bridge management: Part A: condition assessment and priority ranking of bridges.” Aust. J. Civil Eng., 14(1), 35–45.
Rashidi, M., Samali, B., and Sharafi, P. (2016b). “A new model for bridge management: Part B: decision support system for remediation planning.” Aust. J. Civil Eng., 14(1), 46–53.
Sharafi, P., Hadi, M. N. S., and Teh, L. H. (2012a). “Optimum column layout design of reinforced concrete frames under wind loading.” Topics on the Dynamics of Civil Structures, Vol. 1: Proceedings of the 30th IMAC, a Conf. on Structural Dynamics, 2012, J. M. Caicedo, F. N. Catbas, A. Cunha, V. Racic, and P. Reynolds, eds, Springer, New York, 327–340.
Sharafi, P., Hadi, M. N. S., and Teh, L. H. (2012b). “Optimum spans’ lengths of multi-span reinforced concrete beams under dynamic loading.” Topics on the Dynamics of Civil Structures, Vol. 1: Proceedings of the 30th IMAC, a Conf. on Structural Dynamics, 2012, J. M. Caicedo, F. N. Catbas, A. Cunha, V. Racic, and P. Reynolds, eds, Springer, New York, 353–361.
Sharafi, P., Mortazavi, M., Samali, B., and Ronagh, H. (2018). “Interlocking system for enhancing the integrity of multi-storey modular buildings.” Autom. Constr., 85(Jan) 263–272.
Sharafi, P., Samali, B., Ronagh, H., and Ghodrat, M. (2017). “Automated spatial design of multi-story modular buildings using a unified matrix method.” Autom. Constr., 82(Oct), 31–42.
Sharafi, P., Teh, L. H., and Hadi, M. N. S. (2015). “Conceptual design optimization of rectilinear building frames: A knapsack problem approach.” Eng. Optim., 47(10), 1303–1323.
Singh, A. (2001). Creative systems in structural and construction engineering, A.A. Balkema, Rotterdam, Netherlands.
Smith, R. E., and Rice, T. (2015). Permanent modular construction, process, practice, performance, Modular Building Institute, Charlottesville, VA.
Smith, R. E., and Timberlake, J. (2011). Prefab architecture: A guide to modular design and construction, Wiley, Hoboken, NJ.
Stapelberg, R. F. (2009). Handbook of reliability, availability, maintainability and safety in engineering design, Springer, London.
Tam, V. W. Y., Tam, C. M., Zeng, S. X., and Ng, W. C. Y. (2007). “Towards adoption of prefabrication in construction.” Build. Environ., 42(10), 3642–3654.
Tolman, F. P. (1999). “Product modeling standards for the building and construction industry: Past, present and future.” Autom. Constr., 8(3), 227–235.
Tsoutsos, T., Drandaki, M., Frantzeskaki, N., Iosifidis, E., and Kiosses, I. (2009). “Sustainable energy planning by using multi-criteria analysis application in the island of Crete.” Energy Policy, 37(5), 1587–1600.
Voordijk, H., Meijboom, B., and de Haan, J. (2006). “Modularity in supply chains: A multiple case study in the construction industry.” Int. J. Oper. Prod. Manage., 26(6), 600–618.
Wang, J.-J., Jing, Y.-Y., Zhang, C.-F., and Zhao, J.-H. (2009). “Review on multi-criteria decision analysis aid in sustainable energy decision-making.” Renewable Sustainable Energy Rev., 13(9), 2263–2278.
Wu, P., and Low, S. (2010). “Project management and green buildings: Lessons from the rating systems.” J. Prof. Issues Eng. Educ. Pract., 64–70.
Yates, J. K., and Castro-Lacouture, D. (2015). Sustainability in engineering design and construction, CRC Press, Boca Raton, FL.

Information & Authors

Information

Published In

Go to Journal of Architectural Engineering
Journal of Architectural Engineering
Volume 24Issue 2June 2018

History

Received: Jun 16, 2017
Accepted: Jan 3, 2018
Published online: Apr 12, 2018
Published in print: Jun 1, 2018
Discussion open until: Sep 12, 2018

Permissions

Request permissions for this article.

Authors

Affiliations

Pezhman Sharafi [email protected]
Lecturer, Centre for Infrastructure Engineering, Western Sydney Univ., NSW 2747, Australia (corresponding author). E-mail: [email protected]
Maria Rashidi
Lecturer, Centre for Infrastructure Engineering, Western Sydney Univ., NSW 2747, Australia.
Bijan Samali
Professor, Centre for Infrastructure Engineering, Western Sydney Univ., NSW 2747, Australia.
Hamid Ronagh
Professor, Centre for Infrastructure Engineering, Western Sydney Univ., NSW 2747, Australia.
Mina Mortazavi
Ph.D. Candidate, Centre for Infrastructure Engineering, Western Sydney Univ., NSW 2747, Australia.

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share