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Exergoeconomic analysis and optimization of a solar driven dual evaporator vapor compression-absorption cascade refrigeration system using water/CuO nanofluid

机译:水/ CuO纳米流体的太阳能双蒸发器蒸汽压缩吸收级联制冷系统的能效分析和优化

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In this paper, a novel cascade refrigeration system integrated with, flat plate solar collector is modeled and optimized. While LiBr-H2O is applied as fluid pair in cascade absorption section, R134a, R1234ze, R1234yf, R407C and R22 fluids are applied in the vapor compression section and the water/copper oxide (CuO) nanofluid is applied as the heat transfer medium inside the collector subsystem. Nanoparticles volume fraction, mass flow rate of strong solution, low pressure of absorption section, collector tilt angle as well as solar collector area are selected as design parameters while the daily thermal and exergy coefficients of performance and total product cost rate are selected as three objective functions. Non dominated Sort Genetic Algorithm-II (NSGA-II) is individually employed to achieve the final solutions of the system for the best working fluids from the thermodynamic and thermoeconomic viewpoints. The proposed system modeling represents that R134a is the best fluid from the energy and exergy viewpoints with daily energy and exergy coefficients of performance of 9340% and 0.5815%, respectively and R1234ze with the total product cost rate of 7016 $/year is the best working fluid from the exergoeconomic viewpoint. The optimization results indicate that R134a with 2.4% and 2% improvement of the daily energy and exergy coefficients of performance, respectively, relative to the base case needs minimum collector area with amount of 680 m(2) among the other working fluids. In addition, R1234ze with the total product cost rate reduction of 2.4% requires maximum nanoparticles and collector area with values of 0.041 and 702.01 m(2), respectively. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在本文中,对集成有平板太阳能集热器的新型级联制冷系统进行了建模和优化。在级联吸收段中将LiBr-H2O用作流体对,而在蒸气压缩段中使用R134a,R1234ze,R1234yf,R407C和R22流体,并将水/铜氧化物(CuO)纳米流体用作内部的传热介质。收集器子系统。选择纳米粒子的体积分数,强溶液的质量流量,吸收段的低压,集热器倾斜角以及太阳能集热器面积作为设计参数,并选择性能的每日热能和热能系数以及总产品成本率作为三个目标。功能。从热力学和热经济学的观点出发,分别使用非支配排序遗传算法II(NSGA-II)来为最佳工作流体实现系统的最终解决方案。拟议的系统建模表明,从能量和火用角度出发,R134a是最佳流体,每日能量和火用性能系数分别为9340%和0.5815%,R1234ze的总产品成本率为7016 $ /年是最佳工作从能经济角度来看优化结果表明,相对于基本情况,R134a的每日能量和火用性能系数分别提高了2.4%和2%,在其他工作流体中需要的最小集热器面积为680 m(2)。此外,R1234ze的总产品成本率降低了2.4%,分别需要最大的纳米粒子和收集器面积,分别为0.041和702.01 m(2)。 (C)2016 Elsevier Ltd.保留所有权利。

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