Harnessing High-Performance Computing for Carbon Capture and Storage: A Strategic Pathway to Climate Change Mitigation.

Introduction: The accelerating pace of climate change, driven primarily by rising greenhouse gas emissions, presents a critical challenge to sustainable natural resource management. Carbon Capture and Storage (CCS) is increasingly recognized as a viable mitigation strategy to reduce atmospheric CO2...

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Published in:Journal of Humanities & Social Sciences Research Vol. 7; pp. 101 - 106
Main Authors: Suetrong, Nopparuj, Panyadee, Pornnapa, Promsuk, Natthanan, Natwichai, Juggapong
Format: Article
Published: BP Services 2025 Special Issue
Subjects:
Online Access:View this record in EBSCOhost
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      dt: 2025 Special Issue
      vid: 7
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      pub: BP Services
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        10.37534/bp.jhssr.2025.v7.nS.id1297.p101-105
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        atl: Harnessing High-Performance Computing for Carbon Capture and Storage: A Strategic Pathway to Climate Change Mitigation.
      aug:
        au:
          Suetrong, Nopparuj
          Panyadee, Pornnapa
          Promsuk, Natthanan
          Natwichai, Juggapong
        affil:
          Department of Computer Engineering, Faculty of Engineering, Chiang Mai University, Chiang Mai, Thailand
          Information Technology Service Center, Chiang Mai University, Chiang Mai, Thailand
      su:
        High performance computing
        Climate change mitigation
        Sustainability
        Decision making
        Carbon sequestration
        Graph neural networks
        Machine learning
      sug:
        subj:
          High performance computing
          Climate change mitigation
          Sustainability
          Decision making
          Carbon sequestration
          Graph neural networks
          Machine learning
      keyword:
        Carbon Capture and Storage
        Climate Change
        Computational Modeling
        Green Technology
        High-Performance Computing
        Machine Learning
        Transportation
      ab: Introduction: The accelerating pace of climate change, driven primarily by rising greenhouse gas emissions, presents a critical challenge to sustainable natural resource management. Carbon Capture and Storage (CCS) is increasingly recognized as a viable mitigation strategy to reduce atmospheric CO2 levels and support global carbon neutrality goals. Methods: This study explores the integration of Machine Learning (ML)-- specifically Graph Convolutional Networks (GCNs)--and High-Performance Computing (HPC) to optimize CCS processes. GCNs are employed to analyze and model complex datasets for CO2 transport, identifying optimal routes based on criteria such as distance, cost, and efficiency. Simultaneously, HPC infrastructure, including GPU acceleration, is leveraged to enhance computational speed and processing capabilities. Results: The combined implementation of GCNs and HPC significantly reduces computational time--by approximately 65% compared to GCNs without HPC support. This acceleration enables real-time route optimization and model recalibration based on dynamic environmental and logistical inputs, improving the operational efficiency of CO2 capture, transport, and storage. Conclusions: The integration of high-performance computing with advanced ML techniques offers a transformative approach to improving CCS systems. By enabling rapid, data-driven decision-making, this strategy not only enhances the precision and efficiency of CCS but also strengthens broader efforts toward climate change mitigation and sustainable environmental management.
      pubtype: Academic Journal
      doctype: Article
      src: R
    language: English
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          year: 2025
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