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Thermal energy storage (TES) capacity of a lab scale magnesium hydro carbonates/silica gel system

机译:实验室规模的碳酸氢镁/硅胶系统的热能存储(TES)容量

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In this paper the focus is on the reactive material, reactor design, and heat capacity properties of a TES process. A standardized method for producing the reactive material was developed, for use in a TES reactor vessel. The magnesium hydro carbonate used (Nesquehonite, MgCO3 center dot 3H(2)O) can be produced by a carbon capture and storage by mineralisation process. A composite material for the TES using chemisorption of water is a mixture of MgCO3 center dot 3H(2)O and silica gel. Several heat effects were tested simultaneously with a set up for 40-70 g composite material using temperature and relative humidity sensors to monitor the hydration reaction and its conditions. Operating temperatures and humidity were measured inside the reactor, in a set up design that matches the parameters of a novel technical concept, while also the maximum reaction heat effect using the composite material was measured. A thermal storage capacity of 0.41 MJ/kg using 70 g composite material could be measured, while using 3 g sample a hydration/chemisorption effect of 0.71 MJ/kg was obtained. Heating system containing a heat pump would use the TES as an extra heat source during colder periods which implies improved efficiency and COP.
机译:在本文中,重点是TES工艺的反应性材料,反应器设计和热容量特性。开发了用于反应材料的标准化方法,用于TES反应堆容器中。所使用的碳酸氢镁(钠锰矿,MgCO3中心点3H(2)O)可以通过碳捕获和矿化过程来生产。使用水的化学吸附作用的TES复合材料是MgCO3中心点3H(2)O和硅胶的混合物。同时使用温度和相对湿度传感器监控水合反应及其条件,同时测试了40-70 g复合材料的几种热效应。在反应器内部以符合新颖技术概念的参数的设置设计测量了操作温度和湿度,同时还测量了使用复合材料的最大反应热效应。使用70克复合材料测得的储热容量为0.41 MJ / kg,而使用3 g样品时,其水合/化学吸附效果为0.71 MJ / kg。包含热泵的供暖系统在较冷的时期将使用TES作为额外的热源,这意味着效率和COP均得到提高。

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