産業における水素利用:脱炭素化の推進力としての包括的レビュー
Use of Hydrogen in Industry as a Driver for Decarbonization: A Comprehensive Review (原題)
Fabiola Tovar-Lasheras, Jorge Arroyo, Pedro Garcia-Gonzalez, Pedro Compais, Antonia Gil
🤖 gxceed AI 要約
日本語
本レビューは、鉄鋼、セメント、ガラス、セラミックス、精製・化学などエネルギー多消費産業における水素燃焼の脱炭素化ポテンシャルを、燃焼基礎、CFDモデリング、AI・カメラ診断の3軸で分析。技術的課題(火炎安定性、NOx排出、材料適合性)と経済・規制制約を整理し、標準化されたCFD検証データセットや産業条件下での堅牢なモニタリングなど知識ギャップを特定。産業界と研究者への重要な参照点を提供する。
English
This review analyzes hydrogen combustion's decarbonization potential in energy-intensive industries (steel, cement, glass, ceramics, refining, chemicals) along three axes: combustion fundamentals, CFD modeling, and AI/camera diagnostics. It identifies technical challenges (flame stability, NOx, materials) and knowledge gaps such as standardized CFD validation datasets and robust industrial monitoring, serving as a critical reference for industry and researchers.
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
日本では水素社会実現に向けた政策が進むが、産業炉への水素利用は技術的・経済的課題が残る。本レビューは鉄鋼や化学など日本の基幹産業の脱炭素化に示唆を与え、SSBJ開示や移行計画策定の裏付けとなる。
In the global GX context
Globally, hydrogen is a key pillar of industrial decarbonization, yet deployment faces technical and economic hurdles. This review provides a comprehensive synthesis of combustion science and AI-based monitoring, informing transition finance and technology roadmaps aligned with ISSB and CSRD disclosure expectations.
👥 読者別の含意
🔬研究者:Provides a structured overview of hydrogen combustion research gaps, especially CFD validation and AI diagnostics.
🏢実務担当者:Highlights technical and economic considerations for adopting hydrogen in industrial furnaces, useful for feasibility studies.
🏛政策担当者:Offers evidence on sector-specific maturity and regulatory constraints, supporting hydrogen policy design.
📄 Abstract(原文)
The high levels of greenhouse gas emissions from energy-intensive industries have created an urgent need for decarbonization. As major sources of pollution, industries are increasingly being forced to reconsider the fuels they use in their processes. Interest in hydrogen combustion, particularly in high-temperature applications, has grown due to its physical properties and the absence of carbon dioxide emissions. Despite its potential, hydrogen combustion presents technical challenges, such as flame stability, burner adjustment requirements, control of nitrogen oxides (NOx) emissions and material compatibility. This review examines the use of hydrogen as a fuel in industrial furnaces along three complementary axes. First, it analyzes combustion fundamentals, blending limits and mitigation strategies, including oxy-fuel and MILD combustion, and assesses their deployment maturity across the steel, cement, glass, ceramics, and refining and chemicals sectors, together with economic and regulatory constraints. Second, it reviews advances in Computational Fluid Dynamics (CFD) modeling of hydrogen flames, addressing turbulence-chemistry interaction, reaction kinetics, radiative heat transfer, NOx formation and model validation. Third, it surveys camera-based diagnostics combined with Artificial Intelligence and computer vision for flame monitoring and combustion optimization. By synthesizing recent literature, the review identifies the principal knowledge gaps, notably standardized CFD validation datasets and robust monitoring under industrial conditions, providing a critical reference for researchers and industry.
🔗 Provenance — このレコードを発見したソース
- crossref https://doi.org/10.3390/app16178588first seen 2026-09-02 06:00:02 · last seen 2026-09-11 06:08:05
- semanticscholar https://doi.org/10.3390/app16178588first seen 2026-09-08 05:14:31 · last seen 2026-09-22 05:02:43
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