Energy Analysis and Working Fluid Selection of Combined ORC-VCC Refrigeration System Operated by Low-Grade Thermal Energy Sources

Rajnesh Kumar, A. Memon, Abdullah bin Tariq, Faqeer Muhammad Yousfani
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引用次数: 1

Abstract

Combined Organic Rankine Cycle (ORC) and Vapor Compression Cycle (VCC) is one of the most common systems used for refrigeration and R22 is one of the most common refrigerants used in the system. However, global warming is one of the today’s biggest concern which is driving the world towards adoption of environmentally friendly products and processes. In this regard, many of the widely used refrigerants such as R22 are on the verge of being phased out due to their global warming potential (GWP) and ozone depletion potential (ODP). Hence, there is dire need to find refrigerants with not only low GWP and ODP but also promising performance. In this paper, thermodynamic analysis of a combined ORC-VCC system powered by low-grade energy source is presented. The system is modelled in Engineering Equation Solver (EES) and its performance is assessed using two parameters: Cooling Capacity (CC) and Coefficient of Performance (COP), calculated under complete refrigeration mode, i.e., all the turbine power output is consumed by compressor. Three working fluids with low GWP and ODP from different working fluid categories are selected: R290 (hydrocarbons), R152a (hydrofluorocarbons) and R1234yf (hydrofluoroolefins), and a comparative thermodynamic performance analysis of selected working fluids against R22 is conducted. From the results, it is concluded that both R152a and R290 are potential candidates. From performance point of view, R152a, with low but some GWP, is a high performing working fluid, having COP lower than that of R22 by approx. 2.8%. Whereas, from environmental perspective, R290 has no GWP, provides the highest CC under same operating conditions, and has COP lower than that of R22 by around 8.5%.
低品位热源运行的ORC-VCC联合制冷系统能量分析及工质选择
有机朗肯循环(ORC)和蒸汽压缩循环(VCC)组合是最常用的制冷系统之一,R22是该系统中最常用的制冷剂之一。然而,全球变暖是当今最大的问题之一,它正在推动世界采用环保产品和工艺。在这方面,许多广泛使用的制冷剂,如R22,由于其全球变暖潜能值(GWP)和臭氧消耗潜能值(ODP),正处于逐步淘汰的边缘。因此,迫切需要寻找不仅具有低GWP和ODP,而且具有良好性能的制冷剂。本文对低品位能源驱动的ORC-VCC联合系统进行了热力学分析。在工程方程求解器(EES)中对系统进行建模,并在完全制冷模式下计算制冷量CC (Cooling Capacity)和性能系数COP (Coefficient of performance),即所有涡轮输出的功率都被压缩机消耗。选取了R290(烃类)、R152a(氢氟碳化物)和R1234yf(氢氟烯烃)三种不同工质类别的低GWP和ODP工质,并与R22工质进行了热力学性能对比分析。从结果来看,R152a和R290都是潜在的候选者。从性能上看,R152a的GWP值较低,但有一定的GWP值,是一种高性能工质,其COP值比R22低大约。2.8%。而从环境角度来看,R290没有GWP,在相同工况下提供最高的CC, COP比R22低8.5%左右。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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