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Sorption Thermal Energy Storage: Concept, Progress and Prospects

机译:吸附热能存储:概念,进步和前景

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There are various ways for thermal energy storage, such as sensible, latent, sorption, and chemical reaction. Sensible thermal energy storage and latent thermal energy storage are already in use. However, the drawbacks of bulk size (small energy storage density) and the strict requirement for thermal insulation have hindered their wide applications. Sorption, and thermochemical reactions used for thermal energy storage have been considered as a future great potential product for thermal energy storage of solar energy, waste heat or even electric heating and etc.. The market thus needs such a "thermal battery", which should be with a variety of kWhs capacities (1, 10, 100, 1000 or even more). Several key problems remain to be solved for an efficient thermal battery: sorption working pairs in which sorption materials should have high sorption capacity, low generation temperature, and low cost; good design of a sorption bed, in which the sorption bed should be capable of good heat and mass transfer to ensure charging power and discharging power; being stable after repeated cycles; minimum heat capacity ratio between the inert materials to the sorption thermal energy; control of the output temperature and power to meet the use demand, which is critical for real applications; potential served as a heat transformer. In this paper, all these aspects related to sorption thermal energy storage concept, including materials, systems and demonstrations, were described. The detailed future researches and developing maps were also discussed.
机译:热能储存有各种方法,例如明智,潜伏,吸附和化学反应。明智的热能存储和潜热能储存已经在使用中。然而,散装尺寸(储能密度小的缺点)和严格的保温要求阻碍了它们的广泛应用。用于热能储存的吸附和热能储存的热化学反应被认为是太阳能,废热甚至电加热的热能储存的未来巨大潜在产品。因此,市场需要这种“热电电池”,应该具有各种KWHS容量(1,10,100,1000甚至更多)。有效的热电池仍有几个关键问题仍有待解决:吸附工作对,其中吸附材料应具有高吸附能力,低功率温度和低成本;良好的吸附床设计,吸附床应该能够良好的热量和传质,以确保充电电源和放电功率;重复循环后稳定;惰性材料与吸附热能之间的最小热容比;控制输出温度和功率以满足使用需求,这对于真实应用至关重要;电位用作热变压器。在本文中,描述了与吸附热能储存概念相关的所有这些方面,包括材料,系统和演示。还讨论了详细的未来研究和开发地图。

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