Economic Analysis of an Electric Thermal Energy Storage System Using Solid Particles for Grid Electricity Storage

Zhiwen Ma, Xingchao Wang, P. Davenport, Jeffrey Gifford, Janna Martinek
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引用次数: 5

Abstract

As renewable power generation becomes the mainstream new-built energy source, energy storage will become an indispensable need to complement the uncertainty of renewable resources to firm the power supply. When phasing out fossil-fuel power plants to meet the carbon neutral utility target in the midcentury around the world, large capacity of energy storage will be needed to provide reliable grid power. The renewable power integration with storage can support future carbon-free utility and has several significant impacts including increasing the value of renewable generation to the grid, improving the peak-load response, and balancing the electricity supply and demand. Long-duration energy storage (10–100 hours duration) can potentially complement the reduction of fossil-fuel baseload generation that otherwise would risk grid security when a large portion of grid power comes from variable renewable sources. Current energy storage methods based on pumped storage hydropower or batteries have many limitations. Thermal energy storage (TES) has unique advantages in scale and siting flexibility to provide grid-scale storage capacity. A particle-based TES system has promising cost and performance for the future growing energy storage needs. This paper introduces the system and components required for the particle TES to be technically and economically competitive. A technoeconomic analysis based on preliminary component designs and performance shows that the particle TES integrated with an efficient air-Brayton combined cycle power system can provide power for several days by low-cost, high-performance storage cycles. It addresses grid storage needs by enabling large-scale grid integration of intermittent renewables like wind and solar, thereby increasing their grid value. The design specifications and cost estimations of major components in a commercial scale system are presented in this paper. The cost model provides insights for further development and cost comparison with competing technologies.
基于固体颗粒的电网蓄电电热储能系统经济性分析
随着可再生能源发电成为主流的新建能源,储能将成为弥补可再生资源不确定性、稳固电力供应的不可或缺的需求。到本世纪中叶,全球将逐步淘汰化石燃料发电厂,以实现碳中和公用事业目标,届时将需要大容量的能源储存来提供可靠的电网电力。可再生能源与储能的整合可以支持未来的无碳公用事业,并具有几个重大影响,包括增加可再生能源发电对电网的价值,改善高峰负荷响应,平衡电力供需。长期储能(持续时间10-100小时)可以潜在地补充化石燃料基本负荷发电的减少,否则,当大部分电网电力来自可变的可再生能源时,将危及电网安全。目前基于抽水蓄能、水力发电或电池的储能方法存在许多局限性。热储能在规模和选址灵活性方面具有独特的优势,可以提供电网规模的存储容量。基于粒子的TES系统具有良好的成本和性能,可以满足未来不断增长的能源存储需求。本文介绍了粒子TES在技术和经济上具有竞争力所需的系统和部件。基于初步组件设计和性能的技术经济分析表明,颗粒TES与高效的空气-布雷顿联合循环电力系统相结合,可以通过低成本,高性能的存储循环提供数天的电力。它通过实现风能和太阳能等间歇性可再生能源的大规模电网整合来解决电网存储需求,从而提高其电网价值。本文介绍了商业规模系统中主要部件的设计规范和成本估算。成本模型为进一步的开发和与竞争技术的成本比较提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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