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MODELLING AND SIMULATION OF A SOLAR SINGLE EFFECT ABSORPTION COOLING SYSTEM IN ASPEN HYSYS®

机译:ASPENHYSYS®中的太阳能单效吸收冷却系统的建模与仿真

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As an alternative to conventional vapor compression cooling systems, a thermodynamic analysis with the integration of Aspen Hysys® and MatLab® to a solar driven single effect LiBr - Water absorption cooling is conducted in this paper under meteorological conditions for Barranquilla in Colombia supplied with a solar captive system integrated by 15 flat plat solar collectors Barilla F22AR. First law and second law of thermodynamic are applied to system in order to calculate the thermodynamic states and exergy of each stream of the system, in addition to the Coefficient of performance and second law exergy efficiency of the chiller, and exergy loss rate for every component and the whole system. The influence of monthly variation of total solar irradiance on COP, exergy efficiency and exergy loss rate is evaluated in this study under steady state condition for each month of the year. The results of this study show a proportional relationship between heat loads calculated in each component and the heat flow supplied by the solar captive system to the generator, moreover the total solar radiation is directly related to the COP and inversely proportional exergy efficiency.
机译:作为常规蒸汽压缩冷却系统的替代方案,在本文随着太阳能的Barranquilla的气象条件下,在本文中,通过将AspenHysys®和Matlab®集成到太阳驱动的单一效应Libr - 吸水冷却的热力学分析。由15个平板平台太阳能收集器Barilla F22AR集成的俘虏系统。热力学的第一法和第二律法适用于系统,以计算系统的每条流的热力学状态,除了性能系数和冷却器的第二律效率,以及每个组件的漏洞损失率和整个系统。在本研究中,在每年的稳定状态条件下,在本研究中评估了每月太阳能辐照度的每月变化对COP,高度效率和丧失损失率的影响。该研究的结果表明,在每个部件中计算的热负荷与太阳能覆盖系统提供给发电机的热流之间的比例关系,以及总太阳辐射与COP直接相关,并成反比度的高度效率。

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