Blockchain in the Construction Industry between 2016 and 2022: A Review, Bibliometric, and Network Analysis
Abstract
:1. Introduction
- Permissioned Blockchains: These are private networks that only certain people or organizations can use to carry out transactions;
- Public or Permissionless Blockchains: As an open-source network, everyone can utilize and access them (such as Cryptocurrencies).
- Which keywords are relevant for studying Blockchain in the construction sector?
- Which publications and writers are responsible for the most outstanding blockchain-related work in the construction sector?
- What are the most popular Blockchain topics among academics?
- What are the future trends of research work on Blockchain in the construction industry research works?
No. | Year | Ref. | Application | Article Type | Software | Database | Journal/Conference |
---|---|---|---|---|---|---|---|
1 | 2023 | [37] | Blockchain Governance | SLR | Google sheet | GS | Journal of Systems and Software |
2 | 2023 | [38] | Patent Management | SLR | - | Scopus, WOS, IEEE Xplore, and GS | International Journal of Information Management |
3 | 2023 | [39] | Construction Contract Management | SLR | - | WOS, ScienceDirect, and Scopus | Journal of Construction Engineering and Management |
4 | 2022 | [40] | Electronic Health Records | SLR and BR | VOSviewer | GS, WOS, and IEEE | Security and Communication Networks |
5 | 2022 | [35] | Managing Construction Disputes | SLR | - | Scopus and WOS | Automation in Construction |
6 | 2022 | [41] | SCM System | BR | VOSviewer | WOS | Journal of Management and Organization |
7 | 2022 | [42] | Big Data | Survey | - | GS and arXiv | Future Generation Computer Systems |
8 | 2022 | [43] | Smart Cities | BR | VOSviewer | Scopus | Quality and Quantity |
9 | 2022 | [44] | Human Resource Management | SLR and BR | VOSviewer | Scopus and WOS | Technology Analysis and Strategic Management |
10 | 2022 | [45] | E-Commerce SCM | BR | VosViewer | WOS | Sustainability |
11 | 2021 | [46] | Construction Supply Chain (CSC) | SLR | - | WOS | Journal of Construction Engineering and Management |
12 | 2021 | [47] | Vehicle Industry | SLR and BR | VOSviewer | WOS | ICIMTech |
13 | 2021 | [48] | Education Management | SLR | - | Scopus | Interactive Technology and Smart Education |
14 | 2021 | [49] | Logistics and SCM | BR | BibExcel | Scopus and WOS | Logistics |
15 | 2021 | [50] | SCM | BR | VOSviewer | WOS | Environmental Science and Pollution Research |
16 | 2020 | [51] | Reforming Construction | BR | VOSviewer | Scopus and WOS | Civil Engineering Journal |
17 | 2020 | [52] | Construction Industry | SLR | Excel | Scopus, ScienceDirect, IEEE Xplore | International Journal of Construction Management |
18 | 2020 | [53] | Logistics and SCM | BR | Gephi | Mainly Scopus and GS | IEEE Transactions on Engineering Management |
19 | 2019 | [54] | Agri-food Sector | BR | VOSviewer | Scopus | Journal of the Science of Food and Agriculture |
20 | 2016 | [1] | Current Research Topics | SLR | - | IEEE Xplore, ADL, Springer Link, ScienceDirect, Ebsco, and PLOS One | PLOS One |
2. Research Method
Bibliometric Analysis
3. Results and Discussion
3.1. Publication and Citation Results
3.2. Productive Authors
3.3. Top Journals
3.4. Organizational and Geographical Analysis
3.4.1. Country/Region
3.4.2. Organizations
3.4.3. Funding Agencies
3.5. Citation Analysis
No. | Paper’s Title | Author(s) | Journal (IF) | Year | CA’s Country/Region | Times Cited | Average Citations/Year | Primary Topic |
---|---|---|---|---|---|---|---|---|
1 | Blockchain in the built environment and construction industry: A systematic review, conceptual models and practical use cases | Li, Greenwood and Kassem [14] | Automation in Construction (10.517) | 2019 | The UK | 79 | 19.75 | Construction industry and Built environment |
2 | Potentials of Blockchain Technology for Construction Management | Turk and Klinc [84] | Procedia Engineering | 2017 | Slovenia | 70 | 14 | Construction industry |
3 | The outlook of blockchain technology for construction engineering management | Jun WANG [85] | Front. Eng | 2017 | S. Korea | 60 | 12 | Equipment leasing and Supply chain and contract management |
4 | Blockchain technology: Is it hype or real in the construction industry? | Perera, et al. [86] | Journal of Industrial Information Integration (11.718) | 2020 | Australia | 58 | 19.33 | Construction industry |
5 | Blockchain-based framework for improving supply chain traceability and information sharing in precast construction | Wang, et al. [87] | Automation in Construction (10.517) | 2020 | China | 49 | 16.33 | Supply chain management |
6 | Public and private blockchain in construction business process and information integration | Yang, et al. [88] | Automation in Construction (10.517) | 2020 | Australia | 46 | 15.33 | Construction industry |
7 | Do you need a blockchain in construction? Use case categories and decision framework for DLT design options | Hunhevicz and Hall [89] | Advanced Engineering Informatics (7.862) | 2020 | Switzerland | 40 | 13.33 | Construction industry |
8 | Construction quality information management with blockchains | Sheng, et al. [90] | Automation in Construction (10.517) | 2020 | China | 40 | 13.33 | Quality management |
9 | A semantic differential transaction approach to minimizing information redundancy for BIM and blockchain integration | Xue and Lu [91] | Automation in Construction (10.517) | 2020 | Hong Kong | 39 | 13 | Building Information Modeling (BIM) |
10 | Securing interim payments in construction projects through a blockchain-based framework | Das, et al. [92] | Automation in Construction (10.517) | 2020 | Hong Kong | 37 | 12.33 | Smart contracts |
3.6. Subject Analysis
3.7. Keyword Co-Occurrence Analysis
4. Discussion
5. Popular Research Subject in BCT in the Construction Industry
5.1. Supply Chain Management and Blockchain
5.2. Smart Contracts and Blockchain
5.3. Blockchain for Sustainability
5.4. BIM and Blockchain
5.5. Internet of Things (IoT) and Blockchain
5.6. Blockchain for Energy Efficiency
6. Future Research Directions
- Blockchain technology for circular economy in the construction industry;
- Blockchain technology for risk management;
- Blockchain technology for smart villages;
- Blockchain technology for infrastructure construction projects.
7. Conclusions
- (i) smart contracts; (ii) the Internet of Things; and (iii) BIM are the most suitable keywords in the stated subject.
- The most prolific author is Wilson LU.
- The University of Hong Kong is the most productive institution. It is clear from the above that most institutions were educational institutions, such as universities, with little to no close working relationships with industries or government agencies.
- Two of the most prestigious journals in this field are Automation in Construction and IEEE Access. It is interesting to note that every one of the highly cited journals is also a top source for works on BCT.
- China and the United States are the two most productive countries.
- Supply chain management, smart contracts, sustainability, BIM, and the IoT are among the most often discussed subjects in the field of Blockchain in the construction industry.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
BIM | Building Information Modeling |
BCT | Blockchain Technology |
IoT | Internet of Things |
SC | Supply Chain |
AEC | Architect, Engineering, and Construction |
LCA | Life Cycle Assessment |
WOS | Web of Science |
O and M | Operation and Maintenance |
NSFC | The National Natural Science Foundation of China |
RFID | Radio-Frequency Identification |
DLT | Distributed Ledger Technology |
IFC | Industry Foundation Class |
SCM | Supply Chain Management |
DT | Digital Twins |
SLR | Systematic Literature Review |
CAD | Computer-Aided Design |
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No. | Author | Documents | Citations | Country/Region | Organization | Average Citations Per Publication |
---|---|---|---|---|---|---|
1 | Wilson LU | 11 | 144 | Hong Kong | The University of Hong Kong | 13.09 |
2 | Liupengfei Wu | 10 | 89 | Hong Kong | The University of Hong Kong | 8.90 |
3 | Aggelos Kiayias | 9 | 156 | United Kingdom | University of Edinburgh | 17.33 |
4 | Fan Xue | 9 | 177 | Hong Kong | The University of Hong Kong | 19.66 |
5 | Rui Zhao | 7 | 89 | Hong Kong | The University of Hong Kong | 12.71 |
No. | Source | Documents | Citations | Total Link Strength | Average Citations Per Publication | IF (2021) |
---|---|---|---|---|---|---|
1 | Automation in Construction | 33 | 884 | 207 | 26.78 | 10.517 |
2 | IEEE Access | 23 | 268 | 28 | 11.65 | 3.476 |
3 | Buildings | 12 | 206 | 87 | 17.16 | 3.324 |
4 | Security and Communication Networks | 11 | 16 | 0 | 1.45 | 1.791 |
5 | Sustainability | 11 | 93 | 12 | 8.45 | 3.889 |
6 | Wireless Communications and Mobile Computing | 11 | 12 | 2 | 1.09 | 2.146 |
7 | IEEE Internet of Things Journal | 10 | 66 | 1 | 6.6 | 10.238 |
8 | Engineering, Construction and Architectural Management | 9 | 119 | 71 | 13.22 | 3.85 |
9 | Frontiers of Engineering Management | 9 | 257 | 92 | 28.55 | NA. |
10 | Journal of Information Security and Applications (JISA) | 8 | 21 | 0 | 2.625 | 4.96 |
No. | Organization | Country/Region | Number of Documents | Citations | Average Citations/ Publication |
---|---|---|---|---|---|
1 | The University of Hong Kong | Hong Kong | 14 | 187 | 13.35 |
2 | Chinese Academy of Sciences | China | 13 | 79 | 6.07 |
3 | The Hong Kong Polytechnic University | Hong Kong | 10 | 49 | 4.90 |
4 | University of Johannesburg | South Africa | 10 | 62 | 6.20 |
5 | Beijing University of Posts and Telecommunications | China | 9 | 26 | 2.88 |
6 | The University of Edinburgh | Scotland | 9 | 156 | 17.33 |
7 | Guangzhou University | China | 8 | 30 | 3.75 |
8 | Huazhong University of Science and Technology | China | 8 | 103 | 12.87 |
9 | Southeast University | China | 7 | 26 | 3.71 |
10 | Xidian University | China | 7 | 45 | 6.42 |
No. | Keywords | Occurrences | Total Link Strength | No. | Keywords | Occurrences | Total Link Strength |
---|---|---|---|---|---|---|---|
1 | Blockchain(s) | 286 | 397 | 9 | bitcoin | 15 | 21 |
2 | smart contract(s) | 92 | 173 | 10 | authentication | 11 | 34 |
4 | internet of things (iot) | 37 | 90 | 11 | supply chain management | 11 | 26 |
5 | bim | 22 | 47 | 12 | artificial intelligence | 10 | 19 |
6 | security | 21 | 69 | 13 | big data | 10 | 23 |
7 | construction | 19 | 47 | 14 | cloud computing | 10 | 32 |
8 | blockchain technology | 18 | 21 | 15 | industry 4 | 10 | 19 |
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Shishehgarkhaneh, M.B.; Moehler, R.C.; Moradinia, S.F. Blockchain in the Construction Industry between 2016 and 2022: A Review, Bibliometric, and Network Analysis. Smart Cities 2023, 6, 819-845. https://doi.org/10.3390/smartcities6020040
Shishehgarkhaneh MB, Moehler RC, Moradinia SF. Blockchain in the Construction Industry between 2016 and 2022: A Review, Bibliometric, and Network Analysis. Smart Cities. 2023; 6(2):819-845. https://doi.org/10.3390/smartcities6020040
Chicago/Turabian StyleShishehgarkhaneh, Milad Baghalzadeh, Robert C. Moehler, and Sina Fard Moradinia. 2023. "Blockchain in the Construction Industry between 2016 and 2022: A Review, Bibliometric, and Network Analysis" Smart Cities 6, no. 2: 819-845. https://doi.org/10.3390/smartcities6020040
APA StyleShishehgarkhaneh, M. B., Moehler, R. C., & Moradinia, S. F. (2023). Blockchain in the Construction Industry between 2016 and 2022: A Review, Bibliometric, and Network Analysis. Smart Cities, 6(2), 819-845. https://doi.org/10.3390/smartcities6020040