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Comparative Analysis of Solar Thermal Cooling and Solar Photovoltaic Cooling Systems

机译:太阳能热冷却与太阳能光伏冷却系统的比较分析

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The Energy Information Administration of the United States Department of Energy projects that more than 80% of the energy consumption of the U.S. by 2035 will come from fossil fuels. This projection should be the fuel to promote projects related to renewable energy in order to reduce energy consumption from fossil fuels to avoid their undesirable consequences such as carbon dioxide emissions. Since solar radiation match pretty well building cooling demands, solar cooling systems will be an important factor in the next decades to meet or exceed the green gases reduction that will be demanded by the society and regulations in order to mitigate environmental consequences such as global warming. Solar energy can be used as source of energy to produce cooling through different technologies. Solar thermal energy applies to technology such as absorption chillers and desiccant cooling, while electricity from solar photovoltaic can be used to drive vapor compression electric chillers. This study focuses on the comparison of a solar thermal cooling system that uses an absorption chiller driven by solar thermal energy, and a solar photovoltaic cooling system that uses a vapor compression system (electric chiller) driven by solar electricity (solar photovoltaic system). Both solar cooling systems are compared against a standard air cooled cooling system that uses electricity from the grid. The models used in the simulations to obtain the results are described in the paper along with the parameters (inputs) used. Results are presented in two figures. Each figure has one curve for the solar thermal cooling system and one for the solar photovoltaic cooling system. One figure allows estimation of savings calculated based the present value of discounted energy consumption cost. The other figure allows estimating primary energy consumption reduction and emissions reduction. Both figures presents the result per ton of refrigeration and as a function of area of solar collectors or/and area of photovoltaic modules. This approach to present the result of the simulations of the systems makes these figures quite general. This means that the results can be used to compare both solar cooling systems independently of the cooling demand (capacity of the system), as well as allow the analysis for different sizes of the solar system used to harvest the solar energy (collectors or photovoltaic modules).
机译:美国能源部能源信息管理局(Energy Information Administration)预测,到2035年,美国80%以上的能源消耗将来自化石燃料。此预测应成为促进与可再生能源相关的项目的燃料,以减少化石燃料的能源消耗,避免产生不良后果,例如二氧化碳排放。由于太阳辐射能够很好地满足建筑物的制冷需求,因此,在未来几十年中,太阳能制冷系统将成为满足或超过社会和法规为减轻环境影响(例如全球变暖)而要求的绿色气体减排量的重要因素。太阳能可以用作通过不同技术产生冷却的能源。太阳能热能应用于吸收式制冷机和干燥剂冷却等技术,而太阳能光伏发电可用于驱动蒸汽压缩式电制冷机。这项研究的重点是比较使用由太阳能热能驱动的吸收式冷却器的太阳能热冷却系统和使用由太阳能电驱动的蒸气压缩系统(电冷却器)的太阳能光伏冷却系统(太阳能光伏系统)的比较。将两种太阳能冷却系统与使用电网电力的标准空气冷却系统进行了比较。在白皮书中描述了用于获得结果的仿真模型以及所使用的参数(输入)。结果以两个图表示。每个图都有一条曲线用于太阳能热冷却系统,一条曲线用于太阳能光伏冷却系统。一个数字可以估算根据折现的能耗成本的现值计算出的节约。另一个数字可以估算一次能源消耗的减少和排放量的减少。这两个图均表示每吨制冷量的结果,并且是太阳能收集器面积或/和光伏模块面积的函数。呈现系统仿真结果的这种方法使这些数字相当笼统。这意味着可以将结果用于独立于冷却需求(系统容量)来比较两个太阳能冷却系统,还可以分析用于收集太阳能的不同尺寸太阳能系统(收集器或光伏模块) )。

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