Impact of Flexibility on Working Drawing and Specification in the Nigerian Construction Industry
Authors
Department of Architecture, College of Environmental Science and Management, Caleb University, Imota, Ikorodu, Lagos (Nigeria)
Department of Architecture, College of Environmental Science and Management, Caleb University, Imota, Ikorodu, Lagos (Nigeria)
Department of Architecture, College of Environmental Science and Management, Caleb University, Imota, Ikorodu, Lagos (Nigeria)
Department of Architecture, College of Environmental Science and Management, Caleb University, Imota, Ikorodu, Lagos (Nigeria)
Department of Architecture, College of Environmental Science and Management Caleb University, Imota, Ikorodu, Lagos (Nigeria)
Article Information
DOI: 10.51244/IJRSI.2025.120800231
Subject Category: Environment
Volume/Issue: 12/9 | Page No: 2628-2635
Publication Timeline
Submitted: 2025-08-18
Accepted: 2025-08-26
Published: 2025-09-25
Abstract
The Nigerian construction industry continues to face significant challenges, particularly in the areas of project delays, cost overruns, and miscommunication among stakeholders. A major contributor to these issues is the prevalence of rigid and often unclear working drawings and specifications, which hinder effective collaboration and limit the flexibility needed to address unforeseen site conditions or design changes. This study investigates how adopting more flexible documentation approaches, supported by advanced digital tools such as Building Information Modeling (BIM), can enhance project delivery, improve quality outcomes, and strengthen coordination across multidisciplinary teams.
By employing a mixed-method approach—drawing on case studies from construction projects in Lagos and survey data collected from industry professionals—this research provides an in-depth analysis of the root causes of documentation-related inefficiencies. The findings underscore the urgent need for adaptable practices that reflect the complex realities of the Nigerian construction environment, where infrastructural constraints, regulatory gaps, and varying levels of technical capacity often complicate project execution.
In response to these challenges, the study recommends the strategic integration of digital technologies to streamline information flow, the implementation of targeted professional training programs to build competency in modern documentation practices, and stronger regulatory enforcement to ensure compliance with industry standards. Together, these measures aim to foster a more responsive and efficient construction process, ultimately contributing to the timely and successful delivery of projects within Nigeria’s rapidly growing built environment.
Keywords
Flexibility, Project management, Quality assurance, Building Information Modeling (BIM), Specifications
Downloads
References
1. Adewumi, Bamidele J.; Onamade, Akintunde O., Asaju, Opeyemi A.; & Adegbile, Michael B.O. (2023). Impact of Architectural Education on Energy Sustainability in Selected Schools of Architecture in Lagos Megacity. Caleb International Journal of Development Studies, 6(2), 209-218. [Google Scholar] [Crossref]
2. Opeyemi A. Asaju; Bamidele J. Adewumi; Akintunde O. Onamade, Oluwole A. Alagbe(2024). Environmental Impact on Energy Efficiency of Architectural Studios in Selected Tertiary Institutions in Lagos Mega City, Nigeria. Gus-Multidisciplinary Journal of Sustainable Development, 2(1), 29-37. [Google Scholar] [Crossref]
3. Adewumi, B.J., Onamade, A.O., David-Mukoro, K.D., Bamiloye, M.I., Otuonoyo,, G.A., Chukwuka, O.P., & Oru, T.O. (2023). Quality Reassurance in Construction Projects: Leveraging Specifications for Standards and Testing Materials/Workmanship. International Journal of Research and Innovation in Social Science, 9(3), 1662-1672. [Google Scholar] [Crossref]
4. Hassan, T.A., Adewumi, B.J., Olukunga, O.A. (2024). An Empirical Review on Affordable Housing Estate Using Vernacular Architecture in Lagos State. EKSU Journal of the Management Scientists, 3(1), 218-224. [Google Scholar] [Crossref]
5. Adewumi, Bamidele J., Asaju, Opeyemi A., Bello, Ahmed O., Atulegwu, Akudo E., Ibhafidon, Osesesele F., David-Mukoro, K.D.,Otuonoyo, George A.& Ogunyemi, Olaoye G. (2025a). The Role of Specifications in Material Selection for Architects. Jigawa Journal of Multidisciplinary Studies (JMS), 8(1), 74-89. [Google Scholar] [Crossref]
6. Oru, T.O., Adewumi, B.J., Asaju, O.A. (2024). A Comparative Study on Improving Energy Efficiency in Multi-Apartment Residential Buildings. EKSU Journal of the Management Scientists, 3(1), 255-267. [Google Scholar] [Crossref]
7. Bamidele J. Adewumi, Akintunde O. Onamade, Felix A. Onyikeh, George A. Otuonoyo, Oluwole A. Alagbe, Michael B.O. Adegbile, & Matthew A. Dayomi (2025b). Who benefits? A Deep Dive into the Social and Economic Impact of Cooperative Housing Estates in Lagos Megacity. UNIABUJA Journal of Engineering and Technology, 2(1), 104-117. [Google Scholar] [Crossref]
8. Alagbe, W. K., Otuonuyo, G. A., Adewumi, B. J., Onamade, A. O., & Asaju, O. A. (2024). Impact of specification on construction administration for project management within Lagos Megacity. International Journal of Research and Innovation in Social Science, 8(10), 4664–4672. [Google Scholar] [Crossref]
9. Anumba, C. J., & Messner, J. I. (2021). Digital twins and the future of construction documentation. Automation in Construction, 125, 103618. https://doi.org/10.1016/j.autcon.2021.103618 [Google Scholar] [Crossref]
10. Azhar, S., Khalfan, M., & Maqsood, T. (2020). Building Information Modeling (BIM): Now and beyond. Australasian Journal of Construction Economics and Building, 20(2), 28–40. https://doi.org/10.5130/AJCEB.v20i2.7200 [Google Scholar] [Crossref]
11. Coleman, H., Lee, P., & Mohamad, F. (2020). Specifications and regulatory alignment for inclusive technology deployment. Journal of Engineering and Technology Management, 57(2), 149–165. https://doi.org/10.1016/j.jengtecman.2020.101564 [Google Scholar] [Crossref]
12. Emesiobi, P. M., Otuonuyo, G. A., Adewumi, B. J., Asaju, O. A., & Onamade, A. O. (2024). Specification: A key tool for efficient facility management in Lagos Megacity. International Journal of Research and Innovation in Social Science, 8(11), 2717–2723. [Google Scholar] [Crossref]
13. Ezeokoli, F. O., Akinradewo, O. F., & Ogunsemi, D. R. (2023). Assessment of specification practices on construction quality in public building projects in Nigeria. Journal of Sustainable Design and Construction, 6(1), 45–59. [Google Scholar] [Crossref]
14. Ghaffarianhoseini, A., Tookey, J., Ghaffarianhoseini, A., & Naismith, N. (2021). Parametric modeling and construction innovation: A review. Journal of Information Technology in Construction, 26, 542–562. [Google Scholar] [Crossref]
15. Gurevich, U., & Sacks, R. (2020). Digital collaboration in construction: A systems approach to BIM implementation. Journal of Construction Engineering and Management, 146(1), 04019087. https://doi.org/10.1061/(ASCE)CO.1943-7862.0001710 [Google Scholar] [Crossref]
16. Leygonie, J., Motamedi, A., & Iordanova, I. (2022). Technology adoption and gender equity in smart construction environments. Journal of Smart Built Environment, 8(1), 55–71. https://doi.org/10.1108/JSBE-12-2021-0043 [Google Scholar] [Crossref]
17. Owolabi, T. O. S., Harry, E. G., Adewumi, B. J., Onamade, A. O., & Alagbe, O. A. (2024). Ensuring quality in construction project: The role of specifications as quality assurance tools. Anchor University Journal of Science and Technology, 5(2), 181–191. [Google Scholar] [Crossref]
18. Oyedele, L. O., Ajayi, S. O., & Kadiri, K. O. (2020). Smart construction: The role of BIM in enhancing flexibility and productivity. International Journal of Built Environment and Sustainability, 7(3), 1–12. [Google Scholar] [Crossref]
19. Patacas, J., Dawood, N., & Kassem, M. (2021). Improving information flow and collaboration through digital working drawings. Journal of Construction Innovation, 21(4), 841–860. https://doi.org/10.1108/JCI-06-2020-0052 [Google Scholar] [Crossref]
20. Rahman, M. M., & Sidwell, A. C. (2020). The role of procurement systems in enabling flexibility in documentation. Construction Management and Economics, 38(2), 101–115. https://doi.org/10.1080/01446193.2020.1695991 [Google Scholar] [Crossref]
21. Sacks, R., Eastman, C. M., Lee, G., & Teicholz, P. (2020). BIM handbook: A guide to building information modeling for owners, designers, engineers, contractors, and facility managers (3rd ed.). Wiley. [Google Scholar] [Crossref]
22. Tariq, S., Shah, U., & Usman, M. (2021). Impact of digital fabrication on architectural design and documentation. Journal of Construction Technology and Management, 8(2), 39–51. [Google Scholar] [Crossref]
Metrics
Views & Downloads
Similar Articles
- Methane Emissions from Municipal Solid Waste - Case Study in Cai Rang District, Can Tho City, Vietnam
- Youth Activism, Intentional Integration of Policies to Raise Awareness on Climate Change Action among the Youth
- Breathing Spaces: Environmental & User Experience in Dhanmondi and Zigatola Multistoried Apartments, Dhaka, Bangladesh
- Effects of Solid Waste Disposal on Soil Quality in Makurdi Metropolis, Benue State, Nigeria
- Environmental Impact of Artisanal and Small-Scale Gold Mining in Borgu Local Government Area