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A TECHNO-ECONOMIC ANALYSIS OF SOLAR-DRIVEN ATMOSPHERIC WATER HARVESTING

机译:太阳能驱动的大气采集技术经济分析

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Water may be produced from atmospheric humidity anywhere on Earth; however, current approaches are energy intensive and costly, thus limiting the deployment of atmospheric water harvesting (AWH) technologies. A system level thermodynamic model of several AWH pathways is presented to elucidate the important energy flows in these processes as a means to reducing the energy required to produce a unit of water. Model results show that fresh water may be produced from humid air via processes driven solely with solar electricity in an arid climate with an energy input between 158 kWh_e/m~3 and 1021 kWh_e/m~3, depending on atmospheric conditions and processing configuration. We describe a novel, desiccant-based AWH approach in which the latent heat of vaporization is internally recovered resulting in a significant reduction in energy requirements relative to the state of the art. Finally, a parametric model of a desiccant-based AWH system is used to estimate the minimum levelized cost of water (LCOW) via solar-driven AWH at 6.5 $/m~3 when both latent and sensible energy are recovered internally.
机译:可以将水与地球上的大气湿度的任何地方生产;然而,目前的方法是高耗能,高成本,从而限制了大气集水(AWH)技术的部署。被呈现的几个AWH途径的系统级热力学模型,以阐明在这些方法中,以减少产生的水的单位所需的能量的装置的重要能源流动。模型结果表明,新鲜水可从潮湿的空气经由单独与太阳能发电在干旱气候之间158 kWh_e /米〜3和1021 kWh_e /米〜3,这取决于大气条件和处理结构的能量输入驱动的过程来制造。我们描述了其中汽化的潜热在内部回收导致相对于现有技术的能量需求的减少显著一种新颖的,基于干燥剂AWH方法。最后,基于干燥剂AWH系统的参数模型被用于当两个潜热和显能量被内部回收在6.5 $ /米〜3来估计通过太阳能驱动AWH水(LCOW)的最小平准化成本。

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