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Theoretical modelling and optimization of bubble column dehumidifier for a solar driven humidification-dehumidification system

机译:太阳能驱动加湿除湿系统气泡柱除湿器的理论建模与优化

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Availability and utilization of energy and water are the top most global challenges being faced by the new millennium. At the present state water scarcity has become a global as well as a regional challenge. 40 % of world population faces water shortage. Challenge of water scarcity can be tackled only with increase in water supply beyond what is obtained from hydrological cycle. This can be achieved either by desalinating the sea water or by reusing the waste water. High energy requirement need to be overcome for either of the two processes. Of many desalination technologies, humidification dehumidification (HDH) technology powered by solar energy is widely accepted for small scale production. Detailed optimization studies on system have the potential to effectively utilize the solar energy for brackish water desalination. Dehumidification technology, specifically, require further study because the dehumidifier effectiveness control the energetic performance of the entire HDH system. The reason attributes to the high resistance involved to diffuse dilute vapor through air in a dehumidifier. The present work intends to optimize the design of a bubble column dehumidifier for a solar energy driven desalination process. Optimization is carried out using Matlab simulation. Design process will identify the unique needs of a bubble column dehumidifier in HDH system.
机译:能量和水的可用性和利用是新千年面临的最大全球挑战。目前,目前的水资源稀缺已成为全球性的以及区域挑战。 40%的世界人口面临缺水。水资源稀缺的挑战只能随着水文循环所获得的影响而增加。这可以通过淡化海水或通过重用废水来实现。需要为两个过程中的任何一个都需要克服高能量要求。许多脱盐技术,广泛接受了由太阳能供电的加湿除湿(HDH)技术用于小规模生产。关于系统的详细优化研究有可能有效地利用太阳能来熔化水脱盐。除了除湿技术,需要进一步研究,因为除湿器有效性控制了整个HDH系统的能量性能。通过在除湿器中通过空气弥漫稀释蒸汽所涉及的高抗性的原因。本作者旨在优化用于太阳能驱动的脱盐过程的气泡柱除湿器的设计。使用MATLAB仿真进行优化。设计过程将确定HDH系统中泡泡柱除湿器的独特需求。

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