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Simulation of high temperature thermal energy storage system based on coupled metal hydrides for solar driven steam power plants

机译:基于耦合金属氢化物的太阳能蒸汽热电厂高温储热系统仿真

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Concentrating solar power plants can achieve low cost and efficient renewable electricity production if equipped with adequate thermal energy storage systems. Metal hydride based thermal energy storage systems are appealing candidates due to their demonstrated potential for very high volumetric energy densities, high exergetic efficiencies, and low costs. The feasibility and performance of a thermal energy storage system based on NaMgH2F hydride paired with TiCr1.6Mn0.2 is examined, discussing its integration with a solar-driven ultra-supercritical steam power plant. The simulated storage system is based on a laboratory-scale experimental apparatus. It is analyzed using a detailed transport model accounting for the thermochemical hydrogen absorption and desorption reactions, including kinetics expressions adequate for the current metal hydride system. The results show that the proposed metal hydride pair can suitably be integrated with a high temperature steam power plant. The thermal energy storage system achieves output energy densities of 226 kWh/m(3), 9 times the DOE SunShot target, with moderate temperature and pressure swings. In addition, simulations indicate that there is significant scope for performance improvement via heat-transfer enhancement strategies. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:如果配备足够的热能存储系统,集中式太阳能发电厂可以实现低成本和高效的可再生电力生产。基于金属氢化物的热能存储系统由于具有极高的体积能量密度,高能效和低成本的潜力而备受关注。研究了基于NaMgH2F氢化物与TiCr1.6Mn0.2配对的热能存储系统的可行性和性能,并讨论了其与太阳能驱动的超超临界蒸汽发电厂的集成。模拟的存储系统基于实验室规模的实验设备。使用详细的运输模型进行了分析,该模型解释了热化学氢的吸收和解吸反应,包括适用于当前金属氢化物系统的动力学表达式。结果表明,所提出的金属氢化物对可与高温蒸汽发电厂适当集成。该热能存储系统可实现226 kWh / m(3)的输出能量密度,是DOE SunShot目标的9倍,并具有适度的温度和压力波动。此外,模拟表明,通过传热增强策略可以显着改善性能。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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