Harnessing Emerging Technologies in the Global Mining Sector from a Bibliometric Standpoint
Abstract
:1. Introduction
2. Emerging Technologies for Mining Solutions
3. Research Methodology
4. Results and Discussions
4.1. Publications per Year
4.2. Publications per Country
4.3. Publications per Document Source
4.4. Most Cited Publications
4.5. Publications Based on Co-Occurring Keywords
4.5.1. Cluster 1: Digital Transformation and Safety Management
4.5.2. Cluster 2—Sustainability Growth
4.5.3. Cluster 3—Automation
4.6. Research Focus by Year of Publication
5. Conclusions and Recommendations
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Source | Number of Documents | Citations |
---|---|---|
E3S Web of Conferences | 6 | 39 |
Resources Policy | 5 | 85 |
Eurasian Mining | 3 | 36 |
Sustainability (Switzerland) | 3 | 14 |
Journal of the Southern African Institute of Mining and Metallurgy | 3 | 14 |
IOP Conference Series: Earth and Environmental Science | 3 | 8 |
News of the National Academy of Sciences of the Republic of Kazakhstan, Series of Geology and Technical Sciences | 3 | 8 |
Journal Of Mines, Metals and Fuels | 3 | 5 |
Canadian Mining Journal | 3 | 0 |
Author(s) | Title | Citations | Method |
---|---|---|---|
Johnson and Hallberg [26] | “Acid mine drainage remediation options: a review”. | 1715 | Review |
Barnewold and Lottermoser [10] | “Identification of digital technologies and digitalisation trends in the mining industry”. | 121 | Review |
Samylovskaya et al. [27] | “Digital Technologies in Arctic Oil and Gas Resources Extraction: Global Trends and Russian Experience”. | 62 | Review |
Mann et al. [28] | “Blockchain technology for supply chain traceability, transparency and data provenance”. | 42 | Review |
Divyasudha et al. [29] | “Analysis of Smart Helmets and Designing an IoT based Smart Helmet: A cost-effective solution for Riders”. | 32 | Review |
Quayson et al. [30] | “Building blockchain-driven dynamic capabilities for developing circular supply chain: Rethinking the role of sensing, seizing, and reconfiguring”. | 30 | Case Study |
Onifade et al. [31] | “Challenges and applications of digital technology in the mineral industry”. | 29 | Review |
Smith et al. [32] | “Spatial distribution and management of total actual acidity in an acid sulfate soil environment, McLeods Creek, northeastern NSW, Australia”. | 29 | Experimental |
Lacey et al. [33] | “Public perceptions of established and emerging mining technologies in Australia”. | 28 | Survey |
Bissell [34] | “Encountering automation: Redefining bodies through stories of technological change”. | 28 | Interview |
More et al. [35] | “Automated measurement systems in mine water management and mine workings–A review of potential methods”. | 26 | Review |
Carr et al. [36] | “Development of a method to determine operator location using electromagnetic proximity detection”. | 25 | Experimental |
Clusters | Keywords | Occurrence | Link Strength |
---|---|---|---|
Cluster 1: Digital Transformation and Safety Management | Digital technologies | 36 | 94 |
Digital transformation | 17 | 62 | |
Accident prevention | 14 | 50 | |
Mineral industry | 11 | 54 | |
Internet of things | 10 | 41 | |
Digitalisation | 9 | 26 | |
Blockchain | 8 | 23 | |
Industry 4.0 | 8 | 34 | |
Digital economy | 7 | 26 | |
Mineral resources | 6 | 26 | |
Mining sector | 6 | 15 | |
Total | 132 | 451 | |
Cluster 2: Sustainability Growth | Mining industry | 32 | 93 |
Emerging technologies | 28 | 41 | |
Mining | 28 | 87 | |
Sustainable development | 14 | 54 | |
Artificial intelligence | 9 | 35 | |
Sustainability | 8 | 32 | |
Engineering education | 6 | 14 | |
Environmental technology | 6 | 18 | |
Technology | 6 | 15 | |
Environmental management | 5 | 21 | |
Mining operations | 5 | 15 | |
Total | 147 | 425 | |
Cluster 3: Automation | Automation | 12 | 43 |
Digital technology | 6 | 26 | |
Total | 18 | 69 |
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Emere, C.; Oguntona, O.; Ohiomah, I.; Ayorinde, E. Harnessing Emerging Technologies in the Global Mining Sector from a Bibliometric Standpoint. Mining 2025, 5, 13. https://doi.org/10.3390/mining5010013
Emere C, Oguntona O, Ohiomah I, Ayorinde E. Harnessing Emerging Technologies in the Global Mining Sector from a Bibliometric Standpoint. Mining. 2025; 5(1):13. https://doi.org/10.3390/mining5010013
Chicago/Turabian StyleEmere, Chijioke, Olusegun Oguntona, Ifije Ohiomah, and Emmanuel Ayorinde. 2025. "Harnessing Emerging Technologies in the Global Mining Sector from a Bibliometric Standpoint" Mining 5, no. 1: 13. https://doi.org/10.3390/mining5010013
APA StyleEmere, C., Oguntona, O., Ohiomah, I., & Ayorinde, E. (2025). Harnessing Emerging Technologies in the Global Mining Sector from a Bibliometric Standpoint. Mining, 5(1), 13. https://doi.org/10.3390/mining5010013