吸收式制冷机组蒸发器运行方式的改进

Oleksandr Titlov, Daniyorbek Adambayev, O. Vasyliv
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引用次数: 0

摘要

吸收式制冷装置(ARU)是吸收式制冷装置(ARD)的一部分,使用天然工作流体(水、氨和氢),具有许多独特的品质。这些品质包括:无噪音、高可靠性和长寿命;在一个设备中使用多种能源的可能性。与此同时,与类似的压缩模式相比,ARDs增加了能源消耗,这使得它们无法扩大在家用制冷设备市场的存在。ARU蒸发器在制冷设备的腔室中提供预定的温度水平和所需的冷却能力。因此,寻找能够为ARU提供最大能源效率的蒸发器运行模式是相关的,这也是本工作的目的。对直流式三管式蒸发器的热工况进行了模拟。考虑到蒸发过程的绝热性,当所有相变的热量都用于将净化后的蒸汽-气体混合物(VGM)和液氨的流入冷却到最低温度时,得到了一次性蒸发器的计算比。对蒸发器运行模式计算结果的分析使得确定提高蒸发器本身和ARU总体能效的方法方向成为可能:a)在蒸发器绝热段入口对净化后的VGM流进行初步冷却,低回收温度可达5°C和10°C;b)对蒸发器绝热段入口的液氨流进行初步冷却,所有ARU类型的欠回收温度最高可达5°C;c)增加吸收器中VGM流的净化程度,可以使蒸发器绝热段入口处净化后的VGM流的温度提高4…6°C,即将预冷的有用冷却能力的成本降低10…15%
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improvement of Operation Modes of the Evaporator of the Absorption Refrigerating Unit
Absorption refrigeration units (ARU), which are part of absorption refrigeration devices (ARD) with a natural working fluid (water, ammonia and hydrogen) have a number of unique qualities. These qualities include: noiselessness, high reliability and long life; the possibility of using several energy sources in one device. At the same time, ARDs have increased energy consumption compared to similar compression models, and this does not allow them to expand their presence in the market of household refrigeration equipment. The ARU evaporator provides a predetermined temperature level in the chambers of the refrigeration appliance and the required cooling capacity. In this regard, it is relevant to search for the operating modes of the evaporator that provide the ARU maximum energy efficiency, which is the aim of this work. The thermal conditions of the direct-flow three-pipe design of the evaporator are simulated. The calculated ratio for a once-through evaporator is obtained taking into account the assumption of the adiabaticity of the evaporation process, when all the heat of the phase transition is used to cool the incoming flows of the purified vapor-gas mixture (VGM) and liquid ammonia to a minimum temperature. The analysis of the results of calculating the operating modes of the evaporator made it possible to determine the directions of ways to increase the energy efficiency of both the evaporator itself and the ARU in general:    a) preliminary cooling of the purified VGM flow at the inlet of the adiabatic section of the evaporator with an under-recovery of up to 5 °C and up to 10 °C;    b) preliminary cooling of the liquid ammonia flow at the inlet of the adiabatic section of the evaporator with an under-recovery of up to 5 °C for all ARU types;    c) increasing the purification degree of the VGM flow in the absorber allows increasing the temperature of the purified VGM flow at the inlet of the adiabatic section of the evaporator by 4...6 °C, i. e. to reduce the costs of useful cooling capacity for pre-cooling by 10...15 %
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