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Optimum fin spacing of finned tube adsorber bed heat exchangers in an exhaust gas-driven adsorption cooling system

机译:废气驱动吸附冷却系统中翅片管吸附床换热器的最佳翅片间距

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Adsorption cooling systems (ACS) are considered as potential alternatives to traditional vapor compression air conditioning systems in heavy-duty vehicles. In ACS, adsorber bed heat exchangers (ABHEx) replace compressors and their appropriate design directly impacts the ACS performance. During operation, ABHEx undergo a large temperature swing to derive a refrigerant in ACS and their response time affects the dynamic behavior of ACS. In this study, a detailed three dimensional non-equilibrium model is developed to study the effects of heat and mass transfer in annular and longitudinal finned tube adsorber beds filled with zeolite-13x particles. The effects of fin height and spacing are studied on the system operating parameters to identify an optimum fin geometry. The simulation results show that a decrease in fin spacing leads to a decrease in the coefficient of performance (COP) and an increase in the specific cooling power (SCP), and no optimum value is observed for them in a specific fin spacing. However, variations of the total cooling power (TCP) maximize at a certain fin spacing. For longitudinal finned tube ABHEx, the optimum averaged fin spacing shifts from 5.4 to 6.8 mm for the adsorber beds with 10, 15, and 20 mm fin heights, while the optimum fin spacing of annular finned tube ABHEx changes from 5.0 to 6.4 mm. Furthermore, the results show that under similar dimensions and operating conditions, an ACS with annular finned tube ABHEx provides a 10% higher total cooling power than that with a longitudinal finned tube ABHEx at the optimum fin spacing. Using the ACS with optimized ABHEx in a truck would annually save about 370 L of fuel consumption and decreases greenhouse emissions by up to 738 kg CO2e.
机译:吸附式冷却系统(ACS)被认为是重型车辆中传统蒸气压缩空调系统的潜在替代品。在ACS中,吸附床热交换器(ABHEx)代替了压缩机,其适当的设计直接影响ACS的性能。在运行过程中,ABHEx会经历较大的温度波动,从而在ACS中产生制冷剂,其响应时间会影响ACS的动态行为。在这项研究中,建立了详细的三维非平衡模型,以研究载有13x沸石颗粒的环形和纵向翅片管吸附床中传热和传质的影响。研究了鳍片高度和间距对系统运行参数的影响,以确定最佳的鳍片几何形状。仿真结果表明,翅片间距的减小导致性能系数(COP)的减小和比冷却功率(SCP)的增加,并且在特定的翅片间距中没有观察到最佳值。但是,总冷却功率(TCP)的变化在一定的散热片间距处最大。对于纵向翅片管ABHEx,翅片高度为10、15和20 mm的吸附床的最佳平均翅片间距从5.4毫米变到6.8毫米,而环形翅片管ABHEx的最佳翅片间距从5.0变为6.4毫米。此外,结果表明,在类似的尺寸和工作条件下,带有环形翅片管ABHEx的ACS在最佳翅片间距下的总冷却能力比纵向翅片管ABHEx高10%。在卡车中使用带有优化的ABHEx的ACS每年可节省约370 L的燃料消耗,并减少多达738 kg CO2e的温室气体排放。

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