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Energy saving potential of thermoelectric modules integrated into liquid desiccant system for solution heating and cooling

机译:热电模块集成到液滴系统中的热电模块的节能电位,用于加热和冷却

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The main objective of this research was to investigate the impact thermoelectric modules (TEMs) integrated into a liquid desiccant (LD) system have on the heating and cooling of the desiccant solution, and to evaluate the energy saving potential of the proposed system. Two TEM-integrated LD systems were considered; in the first case (i.e., Case A), the TEMs accommodated the solution heating load at the regenerator and a portion of the solution cooling load at the absorber. The remaining solution cooling load was met by an auxiliary chiller. In the second case (i.e., Case B), the TEMs accommodated both the solution cooling and heating loads before the absorber and the regenerator, while extra heat released from the hot side of the TEMs was reclaimed and used to heat the scavenger air entering the regenerator. The conventional LD system, with a boiler and a chiller for heating and cooling the desiccant solution, was also considered as a reference case, to evaluate the energy saving potential of both TEM-integrated LD systems. Hourly energy consumption and temperature variation in the desiccant solution in each system case were predicted via detailed energy simulation with existing mathematical and empirical models for each system component, such as the absorber, regenerator of LD, and TEMs. An approach for determining the required number of TEMs and the optimum temperature difference between the hot side and the cold side of the TEMs is also suggested, based on the coefficient of performance (COP) of the TEMs. It was found that a primary energy saving of about 2% could be expected in Case A compared with the reference case, whereas 55% more primary energy was consumed in Case B. Consequently, based on detailed energy simulations for the TEM-integrated LD system, it was found that the TEMs should be sized to accommodate the regeneration heating load of the desiccant solution before the solution enters the regenerator. In this case, the cooling capacity of the TEMs would be insufficient for cooling the strong solution before the solution enters the absorber, and an auxiliary cooling device would be required.
机译:本研究的主要目的是研究集成在液体干燥剂(LD)系统中的冲击热电模块(TEM)对干燥剂溶液的加热和冷却,并评估所提出的系统的节能电位。考虑了两个TEM集成的LD系统;在第一种情况下(即,案例A),TEM在吸收器处容纳在再生器处的溶液加热负载和在吸收器处的溶液冷却负荷的一部分。通过辅助冷却器满足剩余的溶液冷却负荷。在第二种情况(即,案例B)中,TEM容纳在吸收器和再生器之前的溶液冷却和加热负载,同时从TEM的热侧释放的额外热量被回收并用于加热进入的清道空气再生器。具有用于加热和冷却干燥剂溶液的锅炉和冷却器的传统LD系统也被认为是参考情况,以评估TEM集成LD系统的节能电位。通过对每个系统部件的现有数学和经验模型的详细能量模拟预测每个系统壳体中干燥剂解决方案中的每小时能耗和温度变化,例如LD和TEM的吸收器,再生器和TEM。还提出了一种确定所需的TEM数量和热侧和冷却侧的最佳温度差的方法,基于TEM的性能系数(COP)。结果发现,在与参考案例相比的情况下,可以预期大约2%的主要节能,而在B案例B中消耗了55%的主要能量。因此,基于TEM集成LD系统的详细能量模拟然而,发现在溶液进入再生器之前,应尺寸设定温度以适应干燥剂溶液的再生加热负荷。在这种情况下,在溶液进入吸收器之前,TEM的冷却能力不足以冷却强溶液,并且需要辅助冷却装置。

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