炭素回収・削減技術による持続可能な産業成長の未来
Future of Sustainable Industrial Growth with Carbon Capture and Reduction technologies  (原題)
Priya Ranjan
🤖 gxceed AI 要約
日本語
本論文は、産業部門の脱炭素化におけるCCUS技術とAI・インダストリー4.0の役割を概説する。鉄鋼、セメント、石油化学などの排出源を特定し、再生可能エネルギー、グリーン水素、AI活用の効率化とCCUSの組み合わせが重要と論じる。2026年の産業拡大を見据え、持続可能な成長とビジネス両立の可能性を展望する。
English
This paper reviews the role of CCUS and AI/Industry 4.0 in industrial decarbonization. It identifies major emission sources like steel, cement, and petrochemicals, and argues that combining renewables, green hydrogen, AI-driven efficiency, and carbon capture is essential. It discusses the state, potential, and challenges of these technologies for sustainable industrial growth by 2026.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
日本では、GX推進戦略やCCS事業法の整備が進み、鉄鋼・化学などの排出削減にCCUSが注目される。本稿は、日本の産業界がAIとCCUSを組み合わせた脱炭素投資を検討する際の背景整理に有用。
In the global GX context
Globally, CCUS is recognized as critical for hard-to-abate sectors, with policy support like the US 45Q tax credit and EU innovation fund. This paper provides a broad overview that can inform corporate strategy and policy discussions on integrating AI with carbon capture for industrial decarbonization.
👥 読者別の含意
🔬研究者:Provides a concise overview of CCUS and AI integration in industrial decarbonization, useful for framing research questions.
🏢実務担当者:Highlights the role of CCUS and AI in corporate decarbonization strategies, relevant for sustainability teams planning net-zero roadmaps.
🏛政策担当者:Summarizes the technology landscape and policy relevance of CCUS, useful for designing industrial decarbonization policies.
📄 Abstract(原文)
The world economy has significantly evolved over the past few decades through modernization of industry. Advances in infrastructure, transportation, energy production, manufacturing and civil engineering have resulted in increased productivity and employment opportunities. Nevertheless, a continued dependence on fossil-fuel based industrial processes has also contributed to a rise in greenhouse gas levels and subsequent global warming (1)(2).&nbsp; <div> Within various sectors, the main contributors to CO2 emissions into the atmosphere include those related to the production sector and its large-scale industries such as iron &amp; steel, thermal power generation, cement manufacture, petrochemical refineries and mining. Growing environmental awareness, international agreements to limit carbon emissions, and the drive to achieve a net-zero emission target are currently leading to a transition towards greener and sustainable industrial production models (2)(3).&nbsp; </div> <div> The present industrial decarbonization roadmap relies on the combination of renewables, green hydrogen, waste heat recovery, energy-efficient machines, AI-based operations, smart manufacturing, and carbon capture technologies (4)(5). CCUS (Carbon Capture, Utilization and Storage) technology is considered essential to reduce industrial CO2 emissions. AI and Industry 4.0 technologies supplement green projects with predictive maintenance, energy efficiency strategies, digital environment monitoring, and real-time emissions assessment (5)(6). In this paper, the current state, potential uses, perspectives, disadvantages, and future importance of carbon capture and mitigation technologies will be discussed in the context of industrial expansion in 2026. The goal is to highlight how sustainable industrial development will not compromise business </div>
🔗 Provenance — このレコードを発見したソース
- openaire https://doi.org/10.2139/ssrn.6804118first seen 2026-09-01 04:57:22 · last seen 2026-09-21 04:30:26
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