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A Novel Absorption Cycle for Combined Water Heating, Dehumidification, and Evaporative Cooling

机译:用于组合水加热,除湿和蒸发冷却的新型吸收循环

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In this study, development of a novel system for combined water heating, dehumidification, and space evaporative cooling is discussed. Ambient water vapor is used as a working fluid in an open system. First, water vapor is absorbed from an air stream into an absorbent solution. The latent heat of absorption is transferred into the process water that cools the absorber. The solution is then regenerated in the desorber, where it is heated by a heating fluid. The water vapor generated in the desorber is condensed and its heat of phase change is transferred to the process water in the condenser. The condensed water can then be used in an evaporative cooling process to cool the dehumidified air exiting the absorber, or it can be drained if primarily dehumidification is desired. Essentially, this open absorption cycle collects space heat and transfers it to process water. This technology is enabled by a membrane-based absorption/desorption process in which the absorbent is constrained by hydrophobic vapor-permeable membranes. Constraining the absorbent film has enabled fabrication of the absorber and desorber in a plate-and-frame configuration. An air stream can flow against the membrane at high speed without entraining the absorbent, which is a challenge in conventional dehumidifiers. Furthermore, the absorption and desorption rates of an absorbent constrained by a membrane are greatly enhanced. Isfahani and Moghaddam (Int. J. Heat Mass Transfer, 2013) demonstrated absorption rates of up to 0.008 kg/m~2s in a membrane-based absorber and Isfahani et al. (Int. J. Multiphase Flow, 2013) have reported a desorption rate of 0.01 kg/m~2s in a membrane-based desorber. The membrane-based architecture also enables economical small-scale systems, novel cycle configurations, and high efficiencies. The absorber, solution heat exchanger, and desorber are fabricated on a single metal sheet. In addition to the open arrangement and membrane-based architecture, another novel feature of the cycle is recovery of the solution heat energy exiting the desorber by process water (a "process-solution heat exchanger") rather than the absorber exiting solution (the conventional "solution heat exchanger"). This approach has enabled heating the process water from an inlet temperature of 15°C to 57°C (conforming to the DOE water heater test standard) and interfacing the process water with absorbent on the opposite side of a single metal sheet encompassing the absorber, process-solution heat exchanger, and desorber. The system under development has a 3.2 kW water heating capacity and a target thermal coefficient of performance (COP) of 1.6.
机译:在该研究中,讨论了开发用于组合水加热,除湿和空间蒸发冷却的新型系统。环境水蒸气用作开放系统中的工作流体。首先,水蒸气从空气流吸收到吸收溶液中。吸收的潜热被转移到冷却吸收器的过程水中。然后将溶液再生在解吸器中,通过加热流体加热。在解吸器中产生的水蒸气被冷凝,并将其相变热传递到冷凝器中的工艺水中。然后可以在蒸发的冷却过程中使用冷凝水以冷却离开吸收器的除湿空​​气,如果需要除湿,则可以排出它。基本上,这种开放的吸收循环收集空间热量并将其转移到处理水中。该技术通过膜的吸收/解吸过程能够,其中吸收剂受疏水性气相渗透膜的约束。约束吸收膜在板框架配置中使吸收器和解吸器能够制造。空气流可以高速流动,而不夹带吸收剂,这是常规除湿剂中的挑战。此外,膜受吸收性的吸收和解吸速率大大提高。 Isfahani和Moghaddam(int。J.热传质转移,2013)在膜的吸收体和isfahani等人中证明了高达0.008kg / m〜2的吸收率。 (int。J.Multiphase Flow,2013)报道了一种基于膜的解吸器中0.01kg / m〜2s的解吸速率。基于膜的架构还使经济的小规模系统,新的循环配置和高效性能够实现。吸收器,溶液热交换器和解吸器在单个金属板上制造。除了开放的布置和基于膜的架构外,循环的另一个新颖特征是通过工艺水(“工艺 - 溶液热交换器”)而不是吸收器离开溶液(常规)离开解吸器的溶液热能的恢复“溶液热交换器”)。该方法使加热处理水从15℃至57°C的入口温度(符合DOE热水器测试标准),并将工艺水与包含吸收器的单个金属板的相对侧的吸收剂相互作用,处理 - 溶液热交换器,解吸器。开发系统的系统具有3.2千瓦水供热能力和1.6的靶热系数(COP)为1.6。

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