我国低阶煤清洁高效利用技术路径与集成发展趋势

Technical Pathways and Integrated Development Trends of Clean and Efficient Utilization of Low−Rank Coal in China

  • 摘要: 随着“双碳”战略的深入推进,低阶煤作为我国储量最为丰富的煤种之一,其清洁高效转化利用问题成为煤炭资源高质量开发的研究重点。由于低阶煤具有高水分、高挥发分、低热值和结构复杂等理化特性,传统直接燃烧方式存在能效低与环境负担重等局限。因此,针对低阶煤开展多路径协同利用与系统集成优化成为当前研究的重要方向。本文采用系统综述方法,对近年来国内外低阶煤清洁高效利用领域的研究成果进行了全面梳理与归纳。首先从资源赋存与煤质特性出发,解析了低阶煤在结构组成、反应活性与矿物组分等方面对转化路径选择的影响。随后,系统回顾了预处理与热解提质、气化与液化、清洁燃烧与热能利用、炭基材料高值化路径的技术原理、典型工艺与工程化进展,比较不同路径的适煤性、产物价值、系统效率与环境绩效。进一步地,归纳了多路径间的协同关系与集成机制,提出了以热解为核心平台、构建“热−电−材−碳”多联产系统的集成思路,并结合区域资源禀赋提出了多路径适配配置策略。最后,阐明低阶煤利用技术正在由单一路径转向以多元集成为特征的系统优化模式,其未来发展应聚焦于:高值化产品路径拓展、热解−材料−碳封存协同机制构建、智能化系统调控方法引入,以及标准化模块化平台建设。本文旨在为低阶煤从资源端到价值端的全过程高效利用提供路径识别依据、系统集成思路与研究前沿展望。

     

    Abstract: With the progressive implementation of China's "dual carbon" strategy, Low−rank coal, as one of China's most abundant resources, has become a major focus in efforts to achieve clean and efficient utilization under the dual−carbon strategy. Due to its high moisture and volatile content, low calorific value, and structurally disordered nature. low−rank coal presents major challenges to conventional direct combustion often resulting in low energy efficiency and substantial environmental burdens. Consequently, Integrating multiple technological pathways and optimizing system configurations has become a key research focus. This paper provides a comprehensive review of recent advancements in clean and efficient utilization technologies for low−rank coal, both domestically and internationally. Beginning with an analysis of resource distribution and coal quality characteristics, the study explores how factors such as molecular structure, reactivity, and mineral composition influence the selection of conversion routes. Subsequently, the review examines the technical principles, core processes, and engineering applications of key pathways−including pretreatment and pyrolytic upgrading, gasification and liquefaction, clean combustion with thermal energy recovery, and carbon−based material valorization. A comparative assessment is carried out to evaluate the feedstock compatibility, product value, energy efficiency, and environmental performance of each pathway. Furthermore, this review summarizes the synergistic relationships and integration mechanisms across different pathways and proposes a pyrolysis−centered polygeneration strategy to construct an integrated system of heat, heat, power, carbon management, and materials production. Regional adaptation and configuration strategies are also proposed, based on coal quality and resource endowment. The findings indicate a transition from single−path utilization toward a system optimization paradigm characterized by multi−dimensional integration. Future development should focus on expanding high−value product pathways, building synergistic mechanisms among pyrolysis, material production, and carbon sequestration, introducing intelligent control and optimization methods, and advancing the standardization and modularization of system platforms. This study aims to provide a theoretical foundation and technical reference for the full−process, high−efficiency utilization of low−rank coal from resource extraction to value−oriented transformation.

     

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