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Development of a novel unbalanced ammonia-water absorption-resorption heat pump cycle for space heating

机译:新型空间供热不平衡氨水吸收-吸收热泵循环的开发

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Ammonia-water absorption-resorption heat pump (ARHP) is a promising technology for promoting efficient utilization of low-temperature thermal for space heating. This paper proposes a novel unbalanced ARHP cycle by replacing the condenser and evaporator in the conventional absorption heat pump (AHP) cycle with a high-pressure absorber and a low-pressure generator, respectively. The proposed cycle can work just depending on the concentration difference of ammonia-water solution under different pressure levels. A numerical model has been developed to investigate the feasible high-pressure/low-pressure (P-H/P-L) values to effect the thermodynamic cycle. The cycle's coefficient of performance (COP) under different P-H/P-L pair values and other given working conditions are studied. The maximum COP is 1.550 and the corresponding optimum P-H/P-L pair to effect the cycle is 1.40 MPa/0.38 MPa at a heat source temperature of 95 degrees C. When P-H/P-L pair value is 1.40/0.38 MPa, heat supply temperature of 44.5 degrees C and COP value of 1.331 can be obtained, which can basically meet the temperature demand of building floor heating. In addition, effects of different P-H/P-L pair values on solution circulation ratios and vapor discharge scopes of generators are discussed. It is concluded that the ideal P-H/P-L candidates yield large concentration difference between the inlet and outlet of generators and absorbers. Meanwhile, the solution circulation ratios of the two generators at ideal P-H/P-L pairs are acceptable values between 2.0 and 12.0. The cycle can work when the ambient temperature is above 7.5 degrees C and the driving heat source temperature is larger than 85 degrees C, which is potential in efficient utilization of commonly used stationary solar collectors for winter heating. (C) 2018 Elsevier Ltd. All rights reserved.
机译:氨水吸收吸收式热泵(ARHP)是一种有前途的技术,可促进有效利用低温热力进行空间加热。本文提出了一种新颖的非平衡ARHP循环,通过分别用高压吸收器和低压发生器代替常规吸收式热泵(AHP)循环中的冷凝器和蒸发器。所提出的循环可以仅取决于不同压力水平下氨水溶液的浓度差而起作用。已经开发了一个数值模型来研究可行的高压/低压(P-H / P-L)值,以影响热力学循环。研究了不同P-H / P-L对值和其他给定工作条件下的循环性能系数(COP)。在摄氏95度的热源温度下,最大COP为1.550,实现循环的相应最佳PH / PL对为1.40 MPa / 0.38 MPa。当PH / PL对值为1.40 / 0.38 MPa时,供热温度为44.5可以得到的摄氏温度和COP值为1.331,基本可以满足建筑物地板采暖的温度要求。此外,讨论了不同的P-H / P-L对值对发生器的溶液循环比和蒸汽排放范围的影响。结论是,理想的P-H / P-L候选物在发生器和吸收器的入口和出口之间产生较大的浓度差。同时,在理想的P-H / P-L对下,两个发生器的溶液循环比在2.0到12.0之间是可以接受的值。当环境温度高于7.5摄氏度且驱动热源温度高于85摄氏度时,该循环可以工作,这对于有效利用常用的固定式太阳能集热器进行冬季采暖具有潜力。 (C)2018 Elsevier Ltd.保留所有权利。

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  • 来源
    《Energy》 |2018年第15期|251-265|共15页
  • 作者

    Jia Teng; Dai Yanjun;

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  • 正文语种 eng
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