热余热发电和光伏发电的吸收式制冷系统研究

P. Sesotyo, S. Sunaryo, Z. Arifin, Puji Basuki
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引用次数: 0

摘要

目前,建筑占世界能源消耗的32%,其中制冷系统是设施中最大的能源消耗设备。光伏发电是一种不会对环境造成破坏的替代能源。太阳能制冷是一种有吸引力的解决方案,因为当太阳辐射很大时,会产生峰值热能,需要大量的制冷量。在本研究中,研究了光伏组件作为lib - h2o吸收式制冷系统一次能源的用量。光伏组件具有双重功能,即产生电能和产生热余热,两者都可以作为能源来驱动该制冷系统。在该热余热中,热对流和热辐射两个热源聚集,激活了lib - h2o吸收式制冷系统发生器侧的热交换。来自光伏组件的电力用于运行空气加热器,以提高温度,直到达到65至70℃之间的最佳热水供应点。结果表明,驱动溴化锂- h2o吸收式制冷系统至少需要100个100Wp单晶光伏组件。然而,它被限制在15.00,之后,能源从PLN切换回电力,因为在15.00之后,需要许多光伏组件,占用足够大的空间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Studying the Absorption Refrigeration System powered by Thermal Waste and Electricity Conversion from Photovoltaic
Currently, buildings are responsible for 32% of the world’s energy consumption, with the most massive energy-consuming device in facilities being the refrigeration system. Photovoltaic is an alternative source of energy without causing environmental damage. Solar Refrigeration is an attractive solution because when there is much solar radiation, peak thermal energy is generated, and a lot of cooling capacity is needed. In this research, the amount of PV modules used as the LiBr-H2O Absorption Refrigeration System’s primary energy source is investigated. PV modules have a dual function, namely as a producer of electric power and producing thermal waste, both of which can be used as energy sources to drive this refrigeration system. In this thermal waste, two thermal sources, namely thermal convection and thermal radiation, accumulate to activate heat exchange at the LiBr-H2O absorption refrigeration system’s generator side. For electrical power from the PV module, it is used to run the air heater to increase the temperature until it reaches the optimum point for hot water supply between 65 to 70 oC. The results are that at least 100 modules of 100Wp Monocrystalline PV Module are needed to drive the LiBr-H2O absorption refrigeration system. Still, it is limited to 15.00, after which the energy source is switched back to electricity from PLN because, after 15.00, many PV modules are required and takes up a large enough space.
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