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An approach to working fluid selection for absorption power cycle based on the sub-cycle coupling concept

机译:基于子循环耦合概念的吸收功率循环工作流体选择的方法

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As a kind of distributed energy system, absorption power cycle is an advanced low-grade heat/power conversion technology. This article aims at studying a new approach to working fluid selection for absorption power cycle. This study proposed that absorption power cycle is coupled by a Rankine heat engine sub-cycle and a chemical heat converter (CHC) sub-cycle, and developed a cycle performance model of absorption power cycle, which is constituted by the contributions of both sub-cycles. Using the method of weight factor, a new mathematic model has been proposed to correlate the contributions of the two sub-cycles and get the cycle performance. Based on the proposed approach, a power working fluid R245fa (1, 1, 1, 3, 3- Pentafluoropropane) has been chosen to combine with N, N-Dimethylformamide (DMF), dimethylether diethylene glycol (DMEDEG) and N-Methyl-2-Pyrrolidone (NMP). These three new working fluids for absorption power cycle have been simulated and analyzed with Aspen Plus computer software. The vapor liquid equilibrium parameters of the three systems were determined by authors' previous experimental works. The simulated efficiencies were 18.98%, 15.39% and 16.76%, respectively. The efficiencies of the Rankine heat engine sub-cycle of the three working fluids have been calculated at first, which are 20.51%, 15.76% and 17.74%, respectively. Then a general computer program of absorption refrigeration cycle has been built up to get the efficiencies of the CHC sub-cycle, adopting the three working fluids. The results are 13.68%, 13.87%, 13.43%, respectively. So using the new model, the efficiencies of absorption power cycle have been obtained, which are 18.77%, 15.19% and 16.60%, respectively. To validate the feasibility of the new model, the deviation between the efficiencies of new model and the direct simulation of three working fluids were calculated, which are 1.07%, 1.26% and 0.92%, respectively. The evaluation result proves that the new model can well predict efficiency of absorption power cycle based on the working performances of the two sub-cycles. In addition, the weight factor of the Rankine heat engine sub-cycle is greater than CHC sub-cycle, around 0.763 to 0.229, which means the performance of the Rankine heat engine sub-cycle should be considered firstly, in order to determine the appropriate working fluid for absorption power cycle.
机译:作为一种分布式能量系统,吸收功率循环是先进的低级热/电源转换技术。本文旨在研究吸收电力循环的工作流体选择的新方法。该研究提出,吸收功率循环通过朗肯热发动机分循环和化学热转换器(CHC)分循环耦合,并开发了吸收功率循环的循环性能模型,其由子分段的贡献构成循环。使用权重因子方法,已经提出了一种新的数学模型来关联两个子周期的贡献并获得循环性能。基于所提出的方法,选择了一种功率工作流体R245FA(1,1,1,3,3-五氟丙烷)以与N,N-二甲基甲酰胺(DMF),二甲基醚二甘醇(DMEDEG)和N-甲基 - 2-吡咯烷酮(NMP)。这三种用于吸收功率循环的新工作流体已经模拟和分析了Aspen Plus计算机软件。三种系统的蒸汽液体平衡参数由作者之前的实验工作确定。模拟效率分别为18.98%,15.39%和16.76%。首先已经计算了三种工作流体的rankine热力发动机级周期的效率,分别为20.51%,15.76%和17.74%。然后,已经建立了一般的吸收制冷循环的计算机程序,以获得CHC子周期的效率,采用三个工作流体。结果分别为13.68%,13.87%,13.43%。因此,使用新模型,已经获得了吸收功率循环的效率,分别为18.77%,15.19%和16.60%。为了验证新模型的可行性,计算新模型的效率与三个工作流体的直接模拟之间的偏差分别为1.07%,1.26%和0.92%。评估结果证明,基于两个子循环的工作性能,新模型可以很好地预测吸收功率循环的效率。此外,朗肯热发动机分循环的重量因子大于CHC子循环,大约0.763至0.229,这意味着应该首先考虑朗肯热力发动机子循环的性能,以便确定合适的用于吸收功率循环的工作液。

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