Viar Miguel, Pardo Fernando, Zarca Gabriel, Urtiaga Ane
Department of Chemical and Biomolecular Engineering, Universidad de Cantabria, Av. Los Castros 46, Santander 39005, Spain.
ACS Sustain Chem Eng. 2025 May 19;13(21):7728-7739. doi: 10.1021/acssuschemeng.5c00258. eCollection 2025 Jun 2.
A shift toward more sustainable practices is critical for the refrigeration, air conditioning, and heat pump (RACHP) sector, which is responsible for significant greenhouse gas emissions due to its reliance on vapor compression refrigeration cycles. Absorption refrigeration systems (ARS) have been proposed as a promising alternative due to their ecofriendliness, especially when powered by low-grade heat. This work introduces a novel approach by incorporating eco-friendly and biobased solvents as working fluids in ARS for the first time. Five green organic solventssolketal, propylene carbonate, terpinolene, γ-valerolactone, and Rhodiasolv PolarCleanwere carefully selected based on their safety, operational, and environmental profiles, assessed by referring to the CHEM21 solvent selection guide. Subsequently, the affinity and interactions between these solvents and three hydrofluorocarbons (HFCs): R-32, R-125 and R-134a, and two hydrofluoroolefins (HFOs): R-1234yf and R-1234ze-(E), were assessed using COSMO-RS quantum chemical calculations. The vapor-liquid equilibrium (VLE) of the binary systems was experimentally determined at several temperatures and pressures, followed by an in-depth thermodynamic evaluation to select the most promising solvent-refrigerant pairs. Finally, the coefficient of performance (COP) and the circulation factor () of γ-valerolactone and Rhodiasolv PolarClean-based working pairs were evaluated within the ARS framework, showcasing a significant breakthrough in the development of R-1234ze-(E)-based pairs. Notably, the pairs including R-1234ze-(E) achieved the highest COP value (0.60) reported to date with HFOs in analogous ARS. Moreover, the compression-assisted ARS (CA-ARS) evaluated proved to be competitive in terms of COP and when compared to those of conventional pairs. These results highlight the promising potential of green organic solvents and low-GWP HFC/HFO-based working pairs as an effective strategy for reducing emissions and improving the sustainability of the RACHP sector.
向更可持续的做法转变对制冷、空调和热泵(RACHP)行业至关重要,该行业由于依赖蒸汽压缩制冷循环而产生大量温室气体排放。吸收式制冷系统(ARS)因其生态友好性,特别是在由低品位热能驱动时,被提议作为一种有前途的替代方案。这项工作首次引入了一种新颖的方法,即将环保型和生物基溶剂作为工作流体纳入ARS。基于它们的安全性、操作性和环境概况,参考CHEM21溶剂选择指南,精心挑选了五种绿色有机溶剂——缩酮甘油、碳酸丙烯酯、萜品油烯、γ-戊内酯和罗地亚溶剂PolarClean。随后,使用COSMO-RS量子化学计算评估了这些溶剂与三种氢氟碳化合物(HFCs):R-32、R-125和R-134a,以及两种氢氟烯烃(HFOs):R-1234yf和R-1234ze-(E)之间的亲和力和相互作用。在几个温度和压力下通过实验测定了二元体系的气液平衡(VLE),随后进行了深入的热力学评估,以选择最有前途的溶剂-制冷剂对。最后,在ARS框架内评估了基于γ-戊内酯和罗地亚溶剂PolarClean的工作对的性能系数(COP)和循环因子(),展示了基于R-1234ze-(E)的工作对开发中的重大突破。值得注意的是,包括R-1234ze-(E)的工作对在类似ARS中与HFOs相比实现了迄今为止报道的最高COP值(0.60)。此外,评估的压缩辅助ARS(CA-ARS)在COP和方面与传统对相比具有竞争力。这些结果突出了绿色有机溶剂和低全球变暖潜能值的HFC/HFO基工作对作为减少排放和提高RACHP行业可持续性的有效策略的广阔前景。