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储能系统技术 储能系统 ★ 5.0

集成液氢冷能的卡诺电池储能系统:热力学、经济性分析与优化

Carnot battery energy storage system integrated with liquid hydrogen cold energy: Thermodynamics, economic analysis and optimization

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中文摘要

摘要 卡诺电池储能系统提供了一种高能量密度且不受地理条件限制的储能方案,通过将电能以热能形式进行转换和存储来实现储能。然而,卡诺电池与低温储能技术(特别是液氢冷能利用)的耦合集成仍是一个尚未充分探索的研究领域。本研究提出了一种创新性设计方案,将卡诺电池系统与液氢冷能利用系统相结合,并进一步回收燃料电池产生的余热,从而实现冷、热、电联供。研究内容包括系统的稳态建模、关键部件的敏感性分析,以及采用粒子群优化算法对系统进行优化,旨在最大化电-电转换效率。优化后的系统实现了1.59的电-电转换效率、1.02的能量效率、0.18的㶲效率,以及0.1516美元/千瓦时的平准化储能成本。上述结果标志着储能技术领域的一项重要进展,为液氢冷能在储能系统及电力调峰应用中的集成提供了新的发展方向。

English Abstract

Abstract Carnot battery systems provide a high-energy–density storage solution that is not geographically constrained, converting and storing electricity in thermal form. However, the integration of Carnot batteries with cryogenic energy storage, specifically the utilization of liquid hydrogen cold energy, is an underexplored area. A pioneering design is presented in this study where a Carnot battery system is integrated with a liquid hydrogen cold energy utilization system. Additionally, it captures the waste heat from fuel cells to achieve combined generation of cold, heat, and power. The study includes steady-state modeling, sensitivity analysis of key components, and optimization using a particle swarm optimization algorithm aimed at maximizing power-to-power efficiency. The optimized system achieves a power-to-power conversion efficiency of 1.59, an energy efficiency of 1.02, an exergy efficiency of 0.18, and an Levelized Cost of Storage of 0.1516 USD/kWh. These findings represent a significant advance in energy storage technology, offering a new direction for integrating liquid hydrogen cold energy in energy storage systems and peak power applications.
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SunView 深度解读

该卡诺电池储能技术对阳光电源ST系列PCS及PowerTitan储能系统具有重要启示。其1.59的功率转换效率和0.1516美元/kWh的平准化成本,为我司储能系统热管理优化提供新思路。液氢冷能利用可应用于大规模储能电站的温控系统,结合我司三电平拓扑和GFM控制技术,可提升系统能效。冷热电三联供架构与iSolarCloud平台的预测性维护功能协同,可拓展工商业储能场景应用,降低运营成本。