合金作为储热介质的理论分析

Z. Abdel-Rehim
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引用次数: 0

摘要

为了实现蓄热系统的最佳性能,建议采用合金材料作为蓄热介质。通过暂态一维数学模型,得到了所建议的存储介质的存储容量和存储的热能。采用有限差分法和Thomas算法求解该模型。圆柱形罐中装满了建议的储存介质,形成床作为吸热器。热风沿轴向流经储层介质,在床上进行热风加热,热风与储层介质之间发生热交换。建议的合金材料(铝)是铝、硬铝、黄铜、铝青铜、熟铁、碳钢和铸铁,作为金属合金。得到了存储介质性质(ρ, C, p, K)的解,并对所建议的存储介质岩石和陶瓷进行了能量存储比较。结果表明,增加密度ρ或比热cp,都可以增加系统的存储容量和存储能量。另一方面,在充电的一定时间内,热导率K的增加会显著增加床层内储存的能量,超过这一时间,这一趋势完全相反。存储介质中储存能量最大的顺序为:mal6 > mal5 > mal4 > mal3 > mal7 > mal2 > mal1 >岩石>陶瓷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical Analysis of Alloys as Thermal Storage Media
Alloy materials are suggested as storing media to realize the optimum performance of the thermal energy storage system. The storage capacity and thermal energy stored inside the suggested storing media are obtained through a transient one-dimensional mathematical model for the present system. The finite difference method and Thomas algorithm solver are used to solve the present model. A cylindrical tank is filled with the suggested storing media to form beds as heat absorbers. The bed is thermally charged with hot air flowing axially through the storing media, then the heat exchange occurs between the hot air and the storing media. The suggested alloy materials (M al ) are alumgsi, duralumin, brass, al-bronze, wrought iron, carbon steel and cast iron, as metallic-alloys. Solutions are obtained for the storing media properties (ρ, C p and K). Energy stored comparison is done between the suggested storing media, rock and porcelain. The results show that increasing either the density, ρ, or specific heat, C p , increases the storage capacity and energy stored for the system. On the other hand, increasing of thermal conductivity, K, is found to markedly increase the energy stored inside the bed up to a certain time during charging, beyond which this trend completely reverses. The highest amount of energy stored inside the suggested storing media are arranged as M al6 > M al5 > M al4 > M al3 > M al7 > M al2 > M al1 > rock > porcelain.
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