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Hybrid refrigeration by CO2 vapour compression cycle and water-based adsorption chiller: An efficient combination of natural working fluids

机译:CO2蒸汽压缩循环和水基吸附冷却器的杂化制冷:天然工作流体的有效组合

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摘要

Sustainable refrigeration systems are of great importance to reduce greenhouse gas emissions. In particular, CO2 vapour compression cycles are very promising due to their environmentally friendly, natural refrigerant. However, a major challenge for implementing CO2 cycles is the low efficiency at high ambient temperatures resulting from high exergy losses in transcritical operation. To increase the efficiency, we present a hybrid system concept integrating an adsorption chiller into the CO2 cycle. The adsorption chiller employs the natural refrigerant water and is driven by waste heat from the CO2 cycle. The additional cooling generated by the adsorption chiller is integrated into the CO2 cycle to increase the efficiency of the overall hybrid system. Compared to a stand-alone CO2 cycle, we show by dynamic modelling and optimisation that the hybrid system leads to annual energy savings of 22% for a warm climate in Athens and of 16% for a moderate climate in Cologne. The results highlight the high potential of the hybrid system concept to efficiently provide refrigeration using environmentally friendly refrigerants. (C) 2019 Elsevier Ltd and IIR. All rights reserved.
机译:可持续的制冷系统非常重视减少温室气体排放。特别是,由于它们环保的天然制冷剂,CO2蒸汽压缩循环非常有前途。然而,用于实施CO2循环的主要挑战是高环境温度下的低效率,这是由于跨临界操作的高漏洞损失。为了提高效率,我们介绍了将吸附冷却器集成到CO2周期的混合系统概念。吸附式冷却器采用天然制冷剂水,并由来自CO2循环的废热驱动。吸附冷却器产生的额外冷却集成到CO2周期中以提高整体混合系统的效率。与独立二氧化碳循环相比,我们通过动态建模和优化表明,混合动力车系统导致雅典温暖气候的年度节能为22%,在科隆中温和的温和。结果突出了混合系统概念的高潜力,以利用环保制冷剂有效地提供制冷。 (c)2019年Elsevier Ltd和IIR。版权所有。

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