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FEASIBILITY STUDY OF ABSORPTION CHILLERS WITH A LOW TEMPERATURE HEAT SOURCE

机译:具有低温热源的吸收冷却器的可行性研究

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Low temperature energy powering an absorption chiller will make more energy sources available for comfort cooling as compared to conventional heat driven chillers. Solar energy, industrial waste heat and heat from combined power and heat generation are examples of sources for driving energy. Also, the distribution of energy for comfort cooling could be made efficiently by transportation of hot water to the chiller situated near to the customers. Absorption chillers driven by temperatures lower than 90°C (194°F) are in general not available as an "off-the-shelf product." Usually the low temperature driven chillers are custom made to fit to the local conditions with respect to temperatures of the driving energy and of the cooling water. The optimal design of a chiller is dependant on the temperature of the driving energy as well as on the temperature of the available heat sink for cooling the absorber and the condenser. A scheme for optimization of the chiller with respect to the size of the heat transfer surfaces and of the temperature drop of the driving energy and of the cooling water is presented herein. Presented results illustrate the dramatic effect on the size of the absorber by changing the cooling water temperature, and the equally dramatic effect on the size of the condenser and generator by changing the temperature of the driving energy. Clearly, lowering the heat source temperature and/or increasing the heat sink temperature increases the capital cost for a chiller. However, when coupled to combined heat and power generation, reasonable pay-back times have here been demonstrated for low temperature driven absorption chillers due to the increased electricity production in the overall system.
机译:低温能量供电的吸收式制冷机将提供舒适的冷却相比于传统的热驱动式制冷机作为多个能量源。太阳能,工业余热和热从联合发电和供热是源用于驱动能量的例子。另外,能量的舒适冷却的分布可以有效地通过的热水输送制成,临近客户冷却器。由温度驱动的吸收式制冷机低于90℃(194°F)是一般不作为“现成的,现成的产品”。通常,低温驱动制冷机的定制以适应当地的条件相对于所述驱动能量以及冷却水的温度。冷却器的优化设计是依赖于用于冷却吸收器和冷凝器中的驱动能量,以及对可用的散热器的温度的温度。相对于所述热传递的大小为冷却器的优化的一种方案面和驱动能量的冷却水的温度和降在本文中描述。呈现的结果,通过改变冷却水的温度,并且通过改变驱动能量的温度在冷凝器和发生器的尺寸同样的戏剧性的效果示出在吸收体上的尺寸的显着的效果。显然,降低热源温度和/或增加的散热片的温度增加了冷却器的资本成本。然而,当连接到热电发电,合理付费回倍已经在这里被证明为低温驱动吸收式制冷机由于增加的电力生产在整个系统中。

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