炭素回収・資源化プロセスにおけるマルチ技術連携と相乗的排出削減メカニズムに関する研究
Research on Multi-technology Coupling and Synergistic Emission Reduction Mechanisms in Carbon Capture and Resource Utilization Processes (原題)
Xinyue Tu
🤖 gxceed AI 要約
日本語
本論文は、中国のCCUS技術ロードマップに基づき、マルチ技術連携の形態(統合的捕捉・変換、産業間連携、負排出技術、再生可能エネルギー統合)と協調的排出削減の種類(ソース・シンクマッチング、パラメータ調整、システム最適化)を分析。技術連携によりエネルギー消費削減や経済性向上が期待されるが、高コストや政策支援不足が課題。将来はクラスター展開と標準・政策整備が必要と提言。
English
This paper analyzes multi-technology coupling forms (integrated capture-conversion, cross-industry coupling, negative emission collaboration, renewable integration) and cooperative emission reduction types (source-sink matching, parameter coordination, system optimization) in CCUS based on China's roadmap. It finds that technology coupling can reduce energy consumption and improve economic efficiency, but high costs and insufficient policy support hinder large-scale deployment. Future directions include cluster deployment and strengthening standards and policies.
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CCUSはカーボンニュートラル実現の重要技術として位置づけられ、政府が技術開発や実証を支援。本論文のマルチ技術連携の分析は、日本のCCUS戦略や産業連携の検討に示唆を与える。特に、コスト低減や政策支援の重要性は日本にも共通する課題。
In the global GX context
Globally, CCUS is recognized as a key technology for achieving net-zero emissions, with increasing focus on integrated approaches and cluster development. This paper provides a framework for analyzing multi-technology coupling and cooperative emission reduction, which is relevant for international CCUS deployment strategies and policy design. It highlights the need for policy support and infrastructure to overcome cost and source-sink matching barriers.
👥 読者別の含意
🔬研究者:CCUSの技術統合と排出削減メカニズムの分類枠組みを提供し、今後の研究の基礎となる。
🏢実務担当者:CCUSプロジェクトの計画や技術選択において、マルチ技術連携の可能性と課題を理解するのに有用。
🏛政策担当者:CCUSの大規模展開には政策支援と標準化が重要であることを示唆。
📄 Abstract(原文)
Carbon Capture, Utilisation and Storage (CCUS) are technical routes for carbon neutrality. The five sections of the technical system in the "China Carbon Capture Utilization and Storage Technology Development Roadmap" for 2025 have been extended to include carbon capture, transport, use, storage and combined optimisation. Clusterisation and multi-technology integration have become the main directions for large-scale application. The following are the representative forms of multi-technology coupling discussed in this paper: integrated capture-conversion, cross-industry material and energy coupling, negative emission technology collaboration, and integration with renewable energy. The three kinds of cooperative emission reduction studied are source-sink matching, parameter coordination and system optimisation. Based on the analysis above, multiple-technology coupling can reduce energy consumption, expand the scope of application for carbon dioxide, and improve the economic efficiency of the entire chain. However, due to high costs, a lack of suitable source-sink areas and insufficient policy support, large-scale development has not been achieved. In the future, we will expand the cluster deployment, strengthen standards and policy systems, and move CCUS from an end-of-pipe mode to one based on resource utilisation and value creation.
🔗 Provenance — このレコードを発見したソース
- openalex https://doi.org/10.54691/m4t5pn20first seen 2026-08-28 04:43:14
- semanticscholar https://fsdjournal.org/index.php/ojs/article/download/321/309first seen 2026-08-30 05:15:43 · last seen 2026-09-22 05:04:04
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