Kwamena Opoku Duartey | Energy | Research Excellence Award

Research Excellence Award

Kwamena Opoku Duartey — New Mexico Institute of Mining & Technology (Petroleum Recovery Research Center)
Kwamena Opoku Duartey
Affiliation New Mexico Institute of Mining & Technology, Petroleum Recovery Research Center
Country United States
Google Scholar IJwHRPcAAAAJ
Documents 19
Citations 107
h-index 2
Subject Area Energy
Event World Science Awards
ORCID 0000-0001-9363-0594

Kwamena Opoku Duartey is a petroleum engineering researcher whose work is situated at the intersection of subsurface energy systems, reservoir engineering, enhanced oil recovery, carbon storage, and emerging underground hydrogen storage technologies. Publicly available academic information identifies his research affiliation with the New Mexico Institute of Mining and Technology and its Petroleum Recovery Research Center, where his work includes energy-related subsurface research. [1] His publication record includes research addressing unconventional reservoir performance, underground hydrogen storage, and long-term geological carbon storage. [2][3]

Abstract

Kwamena Opoku Duartey’s research profile is centered on petroleum engineering and subsurface energy systems, with particular relevance to reservoir characterization, enhanced oil recovery, carbon storage, and underground hydrogen storage. His recent research has examined underground hydrogen storage as a means of supporting large-scale energy storage and has considered geological formations, hydrodynamic behavior, geochemical interactions, and related storage challenges. [2] His work also contributes to the study of long-term carbon dioxide storage through core- to field-scale modeling approaches. [3]

Keywords

Energy; Petroleum Engineering; Reservoir Engineering; Underground Hydrogen Storage; Carbon Capture and Storage; Enhanced Oil Recovery; Subsurface Energy; Reservoir Simulation; Geological Storage.

Introduction

The transition toward lower-carbon energy systems has increased research interest in geological storage, reservoir management, and technologies capable of integrating conventional subsurface engineering with emerging energy applications. Duartey’s research falls within this broader field, combining petroleum engineering principles with investigations of hydrogen storage and carbon dioxide storage. His academic profile also includes research into unconventional reservoir behavior and fluid-flow-related challenges. [1][4]

The available scholarly record indicates an emphasis on quantitative modeling and engineering analysis. This orientation is relevant to contemporary energy research because geological formations used for petroleum production, carbon storage, and hydrogen storage require characterization of fluid behavior, reservoir properties, pressure response, and long-term storage performance.

Research Profile

Duartey’s publicly documented research expertise includes petroleum engineering, energy, drilling fluids, hydrogen energy, and modeling and simulation. [1] His research trajectory reflects a movement from conventional and unconventional reservoir engineering toward applications associated with energy transition and subsurface storage.

His institutional research activities are associated with the Petroleum Recovery Research Center at New Mexico Tech. A 2025 publication on long-term CO2 storage lists Duartey with the Petroleum Engineering Department and the Petroleum Recovery Research Center at New Mexico Institute of Mining and Technology. [3]

Research Contributions

Underground hydrogen storage. One of Duartey’s prominent recent research areas is underground hydrogen storage. His 2025 study in Energies examined UHS as a large-scale energy-storage pathway and discussed storage in geological environments including aquifers, salt caverns, and depleted reservoirs. [2]

Carbon storage. Duartey is also a co-author of research assessing long-term CO2 storage using core- to field-scale models. The study, published in Energies in 2025, addresses geological carbon storage through an integrated modeling perspective. [3]

Unconventional reservoirs. Earlier research includes a multi-fractured well performance model for unconventional reservoirs, published in Heliyon in 2022. The study demonstrates the application of reservoir modeling to performance analysis in unconventional formations. [4]

Publications

Selected publications associated with Duartey’s research include the following works. The list is not intended to represent a complete bibliographic record.

Year Publication Journal / Venue DOI
2025 Underground Hydrogen Storage: Transforming Subsurface Science into Sustainable Energy Solutions Energies, 18(3), 748 10.3390/en18030748
2025 Geochemical Assessment of Long-Term CO2 Storage from Core- to Field-Scale Models Energies, 18(15), 4089 10.3390/en18154089
2022 A multi-fractured well performance model for unconventional reservoirs Heliyon, 8(10) 10.1016/j.heliyon.2022.e10827

Research Impact

The available publication record demonstrates research activity across conventional reservoir engineering and emerging subsurface energy applications. In particular, the focus on underground hydrogen storage is relevant to the development of technologies intended to address the intermittency and seasonal characteristics of renewable energy systems. [2]

The research on geological CO2 storage complements this direction by addressing long-term subsurface containment and modeling at multiple scales. [3] Taken together, these studies position Duartey’s work within a research area connecting reservoir engineering, geological storage, energy transition, and computational modeling.

Public research-profile information reports 12 publications and 70 citations on ResearchGate at the time of its indexed record; such platform metrics can change over time and should therefore be interpreted as time-specific indicators rather than fixed measures of research impact. [1]

Award Suitability

For a Research Excellence Award within the Energy field, Duartey’s profile presents several relevant characteristics. His research addresses technically significant problems in petroleum and reservoir engineering while extending these methods toward emerging applications in underground hydrogen storage and geological carbon storage. [2][3]

A principal strength is the thematic continuity between reservoir engineering and energy-transition research. His publications demonstrate engagement with computational and engineering approaches to subsurface systems, including unconventional reservoir performance and geological storage. [4] This combination provides a substantive basis for consideration under an award category emphasizing research quality, technical relevance, innovation, and contribution to the energy research community.

A formal award assessment should nevertheless consider verified bibliometric records, the complete publication portfolio, independent citation data, peer-review contributions, research leadership, funded projects, patents where applicable, and documented societal or industrial outcomes. The present profile is therefore best understood as a scholarly recognition summary based on publicly accessible information rather than as an independent adjudication of award eligibility.

Conclusion

Kwamena Opoku Duartey is an energy and petroleum engineering researcher whose documented work encompasses reservoir engineering, unconventional reservoirs, underground hydrogen storage, and geological CO2 storage. His recent research reflects the growing convergence between subsurface engineering and energy-transition technologies. [2][3] On the basis of the publicly available scholarly record, his research profile is relevant to academic recognition in Energy and related areas of subsurface engineering, subject to independent verification of complete research and impact records.

References

  1. ResearchGate. (n.d.). Kwamena Opoku Duartey — Research profile. ResearchGate. Profile information includes affiliation, research areas, publications and citation indicators.
    https://www.researchgate.net/profile/Kwamena-Duartey
  2. Duartey, K. O., Ampomah, W., Rahnema, H., & Mehana, M. (2025). Underground Hydrogen Storage: Transforming Subsurface Science into Sustainable Energy Solutions. Energies, 18(3), 748.
    DOI: https://doi.org/10.3390/en18030748
    https://www.mdpi.com/1996-1073/18/3/748
  3. Boison, P. K. N., Ampomah, W., Simmons, J. D., Bui, D., Sibaweihi, N., Amosu, A., & Duartey, K. O. (2025). Geochemical Assessment of Long-Term CO2 Storage from Core- to Field-Scale Models. Energies, 18(15), 4089.
    DOI: https://doi.org/10.3390/en18154089
    https://www.mdpi.com/1996-1073/18/15/4089
  4. Mohammed, S., Boakye-Ansah, Y. A., Gyamfi-Yeboah, E., Duartey, K. O., & Nyamekye, W. I. (2022). A multi-fractured well performance model for unconventional reservoirs. Heliyon, 8(10), e10827.
    DOI: https://doi.org/10.1016/j.heliyon.2022.e10827
    https://pmc.ncbi.nlm.nih.gov/articles/PMC9561737/

Ali Fguiri | Energy | Best Researcher Award

Best Researcher Award

Ali Fguiri — Université de Gabès

Ali Fguiri
Affiliation Université de Gabès
Country Tunisia
Scopus ID 15070201200
Documents 16
Citations 264
h-index 11
Subject Area Energy
Event World Science Awards
ORCID 0000-0002-3573-3365

Ali Fguiri is a researcher affiliated with Université de Gabès in Tunisia, with a stated research specialization in the field of Energy. The supplied bibliographic information identifies 16 documents, 264 citations, and an h-index of 11 in the associated Scopus author record. These indicators provide a quantitative description of the research activity represented by the identified author profile. [1]

This academic recognition article presents the research profile of Ali FGUIRI in the context of the Best Researcher Award associated with the World Science Awards. The discussion distinguishes bibliometric information from qualitative considerations such as research contribution, scholarly relevance, and the broader significance of work in Energy research. [3]

Abstract

Ali Fguiri is a researcher associated with Université de Gabès, Tunisia, whose stated subject area is Energy. The supplied Scopus record reports 16 documents, 264 citations, and an h-index of 11. [1] These indicators provide a concise quantitative representation of the scholarly output and citation activity associated with the identified author profile. The research profile is considered in relation to the Best Researcher Award under the World Science Awards, with attention to documented research activity, bibliometric visibility, and the relevance of Energy research to contemporary scientific and technological development. [3]

Keywords

  • Best Researcher Award
  • Ali FGUIRI
  • Energy
  • Energy Research
  • Renewable Energy
  • Energy Systems
  • Université de Gabès
  • Research Impact
  • Bibliometrics

Introduction

Energy research is a multidisciplinary field encompassing the generation, conversion, storage, distribution, management, and efficient use of energy resources. It intersects with engineering, materials science, physics, environmental science, economics, and other disciplines. Research in this area addresses scientific and technological questions related to energy efficiency, sustainable systems, renewable resources, storage technologies, and the optimization of energy processes.

Within this broad academic context, Ali FGUIRI is identified with Université de Gabès in Tunisia and has a stated subject area of Energy. The supplied bibliographic record reports 16 documents and 264 citations, together with an h-index of 11. [1] These data offer a starting point for describing the research profile, while a comprehensive assessment requires examination of individual publications and their scientific contributions.

Research Profile

The supplied profile identifies Ali Fguiri as a researcher at Université de Gabès, Tunisia, working within the Energy subject area. The Scopus author identifier is 15070201200, while the supplied ORCID identifier is 0000-0002-3573-3365. [1] [2] The combination of persistent researcher identifiers can assist in distinguishing scholarly records and associating publications with the appropriate author.

Bibliometric indicators such as document counts, citation counts, and h-index values are useful for describing aspects of scholarly visibility. Their interpretation should nevertheless account for differences in disciplinary citation practices, publication age, collaboration patterns, journal characteristics, and research subfields. Consequently, these indicators should complement rather than replace qualitative assessment of scientific work.

Research Contributions

The supplied information places Ali Fguiri’s research within the Energy field. Research in this area can address a wide range of scientific and technological challenges, including energy conversion, sustainable energy technologies, energy efficiency, thermal processes, renewable resources, energy storage, and system optimization. The precise contribution of an individual researcher should be established from verified publication-level evidence rather than inferred solely from subject classification or aggregate bibliometric indicators.

  • A documented research record comprising 16 scholarly documents in the supplied Scopus profile.
  • A reported citation count of 264 associated with the identified author record.
  • A reported h-index of 11.
  • Research specialization identified as Energy.
  • Academic affiliation with Université de Gabès in Tunisia.
  • An ORCID identifier providing a persistent researcher identity reference.

Together, these elements establish a structured overview of the supplied academic profile. Further assessment of research contribution should consider originality, methodological rigor, reproducibility, interdisciplinary relevance, collaboration, and the extent to which individual studies advance knowledge within Energy research.

Publications

The supplied Scopus profile reports 16 documents associated with Ali Fguiri. [1] The information provided for this article does not include the individual titles, journals, publication dates, article types, or verified DOI identifiers for those documents. Accordingly, specific publication claims and DOI assignments are not attributed to the researcher without publication-level verification.

The Scopus author profile provides a source for examining the indexed publication record, while the ORCID record can assist in identifying works associated with the researcher’s persistent digital identifier. [1] [2] Where individual publications are evaluated, DOI metadata should be verified against the publisher or Crossref record before being used as a formal citation.

Research Impact

The supplied bibliometric record reports 264 citations across 16 documents. Based on these supplied figures, the simple citation-to-document ratio is approximately 16.5 citations per document. The reported h-index of 11 indicates that, under the relevant indexing and counting conditions, at least eleven publications in the record have received at least eleven citations each. [1]

Citation measures can provide evidence of scholarly visibility, but citation frequency varies by discipline, publication type, research topic, collaboration structure, and time since publication. A broader assessment of research impact should therefore consider the scientific contribution of individual studies, methodological advances, knowledge transfer, interdisciplinary influence, and potential applications within energy-related research.

Award Suitability

The Best Researcher Award associated with the World Science Awards provides a recognition context in which scholarly productivity, research contribution, academic influence, and evidence of scientific activity may be considered. [3] Based on the supplied information, Ali Fguiri has an identified research profile in Energy, 16 reported documents, 264 citations, and an h-index of 11. [1]

These indicators provide quantitative evidence that may be relevant when considering a research recognition nomination. However, bibliometric measures alone cannot establish overall research quality. A final award assessment should examine the originality and significance of the research, publication quality, methodological soundness, scientific contribution, professional achievements, and compliance with the official award criteria. [3]

  1. Review the researcher’s verified publication record and individual scholarly contributions.
  2. Consider citation and h-index information as supporting bibliometric evidence rather than as standalone measures of research quality.
  3. Evaluate originality, scientific significance, methodological rigor, and relevance to the Energy field.
  4. Apply the official World Science Awards eligibility and evaluation requirements to determine final suitability.

Conclusion

Ali Fguiri is a researcher affiliated with Université de Gabès in Tunisia whose stated subject area is Energy. The supplied Scopus information identifies 16 documents, 264 citations, and an h-index of 11, while the supplied ORCID identifier provides an additional persistent researcher reference. [1] [2]

The documented research activity and bibliometric indicators provide relevant evidence for consideration in connection with the Best Researcher Award. A complete scholarly evaluation should nevertheless incorporate publication-level evidence, research originality, scientific contribution, and the official criteria established by the World Science Awards. [3]

References

    1. Elsevier. (n.d.). Scopus author details: Ali Fguiri, Author ID 15070201200. Scopus.
      https://www.scopus.com/pages/authors/15070201200