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    熔盐储热耦合燃煤机组灵活性转型研究进展

    Research progress on flexibility transformation of coal-fired units coupled with molten salt thermal energy storage

    • 摘要: 在“双碳”目标驱动下,构建以新能源为主体的新型电力系统已成为必然趋势。然而,常规燃煤机组在深度调峰工况下面临灵活性不足、调峰能力弱及新能源消纳受限等挑战。系统综述了熔盐储热技术耦合燃煤机组的最新研究进展,从材料、设备、系统集成及运行控制等维度进行全链条分析,以期为相关工程应用提供理论依据与技术支撑。首先,梳理了4种主流熔盐体系的热物性特点,重点分析了不同温域燃煤机组与熔盐种类的适配性及新型熔盐制备工艺的优化。其次,综述了熔盐储罐与熔盐换热器等设备的结构优化与强化传热机理。接着,列举了燃煤机组耦合熔盐储热系统在稳态与动态运行模型下的多源取热集成模式与控制策略,针对系统调峰深度、爬坡速率、往返效率及㶲效率等灵活性评价指标进行了综合分析。最后,通过分析当前示范项目的经济性与环境效益,表明该技术能够显著降低弃风弃光率,尽管初投资较高但经济回收期较短,具备良好的全生命周期经济性。面向未来规模化应用,建议重点关注高性能低成本熔盐材料的研发,全系统动态运行优化,以及形成多能互补的集成运行体系,建立更完善的容量电价机制与碳交易市场,充分体现灵活性资源的调节价值,形成技术进步与市场回报的良性循环。

       

      Abstract: Impelled by the “dual-carbon” targets, the transition toward a new power system dominated by renewable energy is accelerating. Nevertheless, conventional coal-fired power units encounter critical bottlenecks under deep peak-shaving operating conditions, characterized by insufficient operational flexibility and constraints on renewable energy accommodation. The latest research progress of Molten Salt Thermal Energy Storage (MSTES) technology coupled with coal-fired units is reviewed in this paper. The whole chain analysis is made from the dimensions of materials, equipments, system integration and operation control, in order to provide theoretical basis and technical support for related engineering applications. Initially, the thermophysical properties of four mainstream molten salt systems are synthesized, with particular emphasis on the compatibility between various molten salts and coal-fired units across different temperature ranges, alongside advancements in salt synthesis optimization. Subsequently, structural evolution and heat transfer enhancement mechanisms in key equipment—specifically molten salt tanks and heat exchangers—are examined. Then, the multi-source heat integration mode and control strategy of the coupled molten salt heat storage system in coal-fired units are presented in steady-state and dynamic operation models. The flexibility evaluation indexes such as peak load regulation depth, ramping rate, round-trip efficiency and exergy efficiency are analyzed. Economic and environmental evaluations of existing demonstration projects reveal that MSTES integration significantly mitigates wind and solar curtailment. Despite high capital costs, the technology exhibits a short payback period and robust life-cycle economic viability. Looking toward large-scale deployment, future research should prioritize high-performance low-cost materials, whole-system dynamic optimization, and multi-energy complementary integration. Moreover, establishing sound capacity pricing mechanisms and carbon trading markets is essential to fully realize the regulatory value of flexible resources, fostering a virtuous cycle between technological advancement and market returns.

       

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