Challenges to the Implementation of Building Information Modeling (BIM) for Sustainable Construction Projects
Abstract
:1. Introduction
1.1. Background
1.2. Knowledge of BIM in the Developing Countries
1.3. The Developing Country’s BIM and Building Lifecycle
2. Barriers to BIM in the Building Industry
3. Research Methods
3.1. Construct Validity Analysis
3.2. Analytical Technique
4. Results
4.1. Characteristics of the Respondent
4.2. EFA Analysis
4.3. Common Method Bias
4.4. Measurement Model
4.5. Structural Model Analysis
5. Discussion
6. Conclusions
6.1. Conceptual and Empirical Contributions
- The study makes a theoretical contribution by illuminating new ideas that can be included in the existing framework. For instance, challenges to implementing BIM have an effect on BIM adoption and understanding at all stages of a project’s lifespan.
- While several studies have been conducted on the subject of BIM deployment in industrialized nations, research on the topic in Nigeria is still in its infancy. This research fills that need by focusing on the most pressing issues impeding the widespread implementation of BIM and the factors that are directly related to those issues.
- The study’s model is the first predictive model to assess the impact of BIM implementation hurdles on BIM utilization and awareness across the AECO industry’s project lifecycle. Hopefully, this resource will accelerate the spread of BIM in underdeveloped nations. This contribution is empirical since it focuses on doing what no previous research has performed: evaluating the theoretical linkages between two variables (“BIM implementation hurdles” and “BIM usage and awareness in project lifecycle”).
6.2. Managerial Implications
- Helping AECO companies remove impediments to BIM adoption boosts customer satisfaction through better visual representation.
- It helps with decision making when considering the effects of BIM barriers on BIM consciousness throughout the project’s lifespan.
6.3. Insufficiencies and Directions for Further Study
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
AVE | Average Variance Extracted |
CMB | Common Method Bias |
EFA | Exploratory Factor Analysis |
KMO | Kaiser–Meyer–Olkin |
PLS | Partial Least Squares |
SPSS | Statistical Package for The Social Sciences |
SEM | Structural Equation Modeling |
SD | System Dynamic |
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S/N | Problem | [82] | [83] | [84] | [85] | [43] | [86] | [87] |
---|---|---|---|---|---|---|---|---|
1 | Lack of government, clients, and contractor support | ✓ | ||||||
2 | Failures in technological support | ✓ | ||||||
3 | High cost of BIM application and inadequate BIM awareness | ✓ | ||||||
4 | The construction industry’s lack of trained professionals | ✓ | ||||||
5 | Accessibility and cost of specialized BIM software | ✓ | ||||||
6 | Computer self-efficacy | ✓ | ||||||
7 | Lack of information technology infrastructure to enhance BIM use | ✓ | ||||||
8 | Challenges in implementing new forms of teamwork | ✓ | ||||||
9 | Resistance to change of professionals in the construction industry | ✓ | ||||||
10 | The failure to retrain professional members in the use and application of BIM | ✓ | ||||||
11 | Problems with BIM interoperability at every stage of a project | ✓ | ||||||
12 | Lack of BIM cooperation guidelines and standards | ✓ | ||||||
13 | Data privacy and data ownership issues | ✓ | ||||||
14 | Lack of managers’ awareness and support | ✓ | ||||||
15 | Contractual environment | ✓ | ||||||
16 | Inefficient BIM education on collaboration | ✓ | ||||||
17 | Failure to acquire individual BIM knowledge | ✓ | ||||||
18 | Lack of reference materials to recommend BIM application to Professionals | |||||||
19 | Lack of qualified BIM experts | ✓ | ||||||
20 | Not having sufficient knowledge when it’s needed | ✓ | ||||||
21 | Problem of BIM application incompatibility | ✓ | ||||||
22 | Frequency update on software | |||||||
23 | Fragment nature of the construction industry | ✓ | ||||||
24 | Lack of initiative and education | ✓ | ||||||
25 | Conflicts between project managers, information technology managers, and building information modeling managers | ✓ | ||||||
26 | Fear of Safety and reliability of building information modeling | ✓ | ✓ | |||||
27 | Cost of required hardware upgrade for BIM | ✓ | ||||||
28 | Lack of common data environment | ✓ | ||||||
29 | Lack of standard BIM protocols for cross-industry collaboration | |||||||
30 | Lack of standards to guide the implementation of BIM | ✓ | ||||||
31 | Complicated nature of BIM tools | ✓ | ||||||
32 | Awkward team configuration and structure | ✓ | ||||||
33 | Team members tend to work in isolation during projects | ✓ | ||||||
34 | Opposition to information sharing | ✓ | ||||||
35 | Designers and the supply chain downstream have not established a reliable method of working together | ✓ |
S/N | Information | Frequency Percentage (%) |
---|---|---|
A. Highest academic qualification | ||
OND/HND | 10 | 9.8 |
B.SC/B.TECH | 42 | 41.2 |
M.SC/M.TECH | 49 | 48.0 |
OTHERS | 1 | 1.0 |
TOTAL | 102 | 100.0 |
B. Years of experience | ||
1–5 years | 23 | 22.5 |
6–10 years | 40 | 39.2 |
11–15 years | 22 | 21.6 |
15–20 years | 15 | 14.7 |
Above 20 years | 2 | 2.0 |
Total | 102 | 100.0 |
C. Numbers of project currently engaged on | ||
1–5 projects | 21 | 20.6 |
6–10 projects | 25 | 24.5 |
11–15 projects | 39 | 38.2 |
16–20 projects | 12 | 11.8 |
Above 20 projects | 5 | 4.9 |
Total | 102 | 100.0 |
D. Professional body of respondents | ||
RIBA | 6 | 5.9 |
NICS | 8 | 7.8 |
CIBSE | 22 | 21.6 |
ICE/COREN | 41 | 40.2 |
PMI | 25 | 24.5 |
Total | 102 | 100.0 |
E. Membership status | ||
Graduate | 14 | 13.7 |
Probationer | 25 | 24.5 |
Corporate/Associate | 42 | 41.2 |
Fellow | 21 | 20.6 |
Total | 102 | 100.0 |
Kaiser–Meyer–Olkin Measure | ||
---|---|---|
Kaiser–Meyer–Olkin Measure of Sampling Adequacy | 0.916 | |
Bartlett’s Test of Sphericity | Approx. Chi-Square | 2311.112 |
Df | 595 | |
Sig. | 0.000 |
Component | Initial Eigenvalues | Rotation Sums of Squared Loadings | ||||
---|---|---|---|---|---|---|
Total | % of Variance | Cumulative% | Total | % of Variance | Cumulative% | |
1 | 15.483 | 44.238 | 44.238 | 6.096 | 17.417 | 17.417 |
2 | 1.955 | 5.587 | 49.825 | 4.200 | 12.000 | 29.417 |
3 | 1.503 | 4.295 | 54.120 | 3.458 | 9.879 | 39.296 |
4 | 1.380 | 3.943 | 58.063 | 3.186 | 9.103 | 48.399 |
5 | 1.216 | 3.475 | 61.538 | 2.564 | 7.325 | 55.724 |
6 | 1.107 | 3.163 | 64.700 | 2.255 | 6.443 | 62.167 |
7 | 1.005 | 2.872 | 67.573 | 1.892 | 5.406 | 67.573 |
8 | 0.957 | 2.734 | 70.307 | |||
9 | 0.856 | 2.445 | 72.752 | |||
10 | 0.778 | 2.222 | 74.974 | |||
11 | 0.768 | 2.196 | 77.170 | |||
12 | 0.699 | 1.997 | 79.166 | |||
13 | 0.683 | 1.950 | 81.116 | |||
14 | 0.602 | 1.720 | 82.836 | |||
15 | 0.581 | 1.661 | 84.497 | |||
16 | 0.482 | 1.377 | 85.874 | |||
17 | 0.463 | 1.324 | 87.198 | |||
18 | 0.438 | 1.250 | 88.448 | |||
19 | 0.391 | 1.118 | 89.566 | |||
20 | 0.366 | 1.046 | 90.613 | |||
21 | 0.350 | 1.001 | 91.614 | |||
22 | 0.302 | 0.863 | 92.476 | |||
23 | 0.299 | 0.853 | 93.330 | |||
24 | 0.281 | 0.803 | 94.133 | |||
25 | 0.270 | 0.771 | 94.903 | |||
26 | 0.256 | 0.733 | 95.636 | |||
27 | 0.247 | 0.705 | 96.341 | |||
28 | 0.217 | 0.621 | 96.962 | |||
29 | 0.206 | 0.588 | 97.550 | |||
30 | 0.190 | 0.542 | 98.091 | |||
31 | 0.172 | 0.490 | 98.582 | |||
32 | 0.154 | 0.440 | 99.022 | |||
33 | 0.150 | 0.428 | 99.450 | |||
34 | 0.104 | 0.297 | 99.747 | |||
35 | 0.089 | 0.253 | 100.000 |
Constructs | Barriers | Loading |
---|---|---|
BIM literacy among the construction professionals | B9 | 0.680 |
B10 | 0.750 | |
B4 | 0.520 | |
B24 | 0.554 | |
B23 | 0.687 | |
B17 | 0.556 | |
B18 | 0.564 | |
B11 | 0.850 | |
B7 | 0.780 | |
B35 | 0.654 | |
B8 | 0.950 | |
BIM collaboration and standard | B16 | 0.856 |
B34 | 0.687 | |
B12 | 0.786 | |
B32 | 0.569 | |
B22 | 0.785 | |
B31 | 0.654 | |
B30 | 0.458 | |
Cost Impact of BIM | B5 | 0.965 |
B2 | 0.650 | |
B3 | 0.856 | |
B6 | 0.654 | |
B28 | 0.576 | |
Problem of standardization | B29 | 0.789 |
B33 | 0.657 | |
Competitive mentality among the stakeholders and BIM Reliability | B25 | 0.756 |
B26 | 0.650 | |
B27 | 0.860 | |
Contract condition | B15 | 0.650 |
B14 | 0.756 | |
B13 | 0.745 | |
Culture | B19 | 0.654 |
B20 | 0.650 | |
B21 | 0.890 | |
B1 | 0.685 |
Constructs | Cronbach’s Alpha | Composite Reliability | Average Variance Extracted (AVE) |
---|---|---|---|
BIM collaboration and standard | 0.931 | 0.941 | 0.593 |
BIM literacy among the construction professionals | 0.861 | 0.894 | 0.549 |
Contract condition | 0.723 | 0.844 | 0.643 |
Cost Impact of BIM | 0.829 | 0.88 | 0.596 |
Culture | 0.790 | 0.864 | 0.614 |
Problem of standardization | 0.669 | 0.858 | 0.751 |
The competitive mentality among the stakeholders and BIM Reliability | 0.797 | 0.881 | 0.711 |
Constructs | BIM Collaboration and Standard | BIM Literacy among the Construction Professionals | Contract Condition | Cost Impact of BIM | Culture | Problem of Standardization | The Competitive Mentality among the Stakeholders and BIM Reliability |
---|---|---|---|---|---|---|---|
BIM collaboration and standard | 0.770 | ||||||
BIM literacy among the construction professionals | 0.701 | 0.741 | |||||
Contract condition | 0.633 | 0.682 | 0.802 | ||||
Cost Impact of BIM | 0.701 | 0.668 | 0.588 | 0.772 | |||
Culture | 0.759 | 0.655 | 0.569 | 0.626 | 0.783 | ||
Problem of standardization | 0.662 | 0.602 | 0.420 | 0.537 | 0.608 | 0.867 | |
The competitive mentality among the stakeholders and BIM Reliability | 0.720 | 0.587 | 0.585 | 0.559 | 0.665 | 0.518 | 0.843 |
Constructs | BIM Collaboration and Standard | BIM Literacy among the Construction Professionals | Contract Condition | Cost Impact of BIM | Culture | Problem of Standardization | The Competitive Mentality among the Stakeholders and BIM Reliability |
---|---|---|---|---|---|---|---|
BIM collaboration and standard | |||||||
BIM literacy among the construction professionals | 0.792 | ||||||
Contract condition | 0.768 | 0.858 | |||||
Cost Impact of BIM | 0.794 | 0.785 | 0.757 | ||||
Culture | 0.782 | 0.791 | 0.745 | 0.771 | |||
Problem of standardization | 0.731 | 0.794 | 0.602 | 0.721 | 0.835 | ||
The competitive mentality among the stakeholders and BIM Reliability | 0.73 | 0.695 | 0.769 | 0.677 | 0.83 | 0.699 |
Paths | B | p-Values |
---|---|---|
BIM collaboration and standard -> BIM Barriers | 0.397 | 0 |
BIM literacy among the construction professionals -> BIM Barriers | 0.213 | 0 |
Contract condition -> BIM Barriers | 0.093 | 0 |
Cost Impact of BIM -> BIM Barriers | 0.156 | 0 |
Culture -> BIM Barriers | 0.133 | 0 |
The problem of standardization -> BIM Barriers | 0.070 | 0 |
The competitive mentality among the stakeholders and BIM Reliability -> BIM Barriers | 0.108 | 0 |
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Kineber, A.F.; Othman, I.; Famakin, I.O.; Oke, A.E.; Hamed, M.M.; Olayemi, T.M. Challenges to the Implementation of Building Information Modeling (BIM) for Sustainable Construction Projects. Appl. Sci. 2023, 13, 3426. https://doi.org/10.3390/app13063426
Kineber AF, Othman I, Famakin IO, Oke AE, Hamed MM, Olayemi TM. Challenges to the Implementation of Building Information Modeling (BIM) for Sustainable Construction Projects. Applied Sciences. 2023; 13(6):3426. https://doi.org/10.3390/app13063426
Chicago/Turabian StyleKineber, Ahmed Farouk, Idris Othman, Ibukun O. Famakin, Ayodeji Emmanuel Oke, Mohammed Magdy Hamed, and Taiwo Matthew Olayemi. 2023. "Challenges to the Implementation of Building Information Modeling (BIM) for Sustainable Construction Projects" Applied Sciences 13, no. 6: 3426. https://doi.org/10.3390/app13063426
APA StyleKineber, A. F., Othman, I., Famakin, I. O., Oke, A. E., Hamed, M. M., & Olayemi, T. M. (2023). Challenges to the Implementation of Building Information Modeling (BIM) for Sustainable Construction Projects. Applied Sciences, 13(6), 3426. https://doi.org/10.3390/app13063426