一种新型的过冷加湿?海水淡化用热蒸汽压缩装置驱动的除湿系统

M. Saadawy, A. Karameldin, E. Negeed
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引用次数: 1

摘要

目前的研究提出了一种新型海水淡化系统的概念,该系统由加湿?基于蒸汽压缩过程(HDDTVC)的除湿装置。耦合制冷装置利用喷射喷射器对蒸汽进行热压缩。拟议的海水淡化系统的新技术理念主要依赖于在环境条件下为除湿过程创造过冷温度(接近0°C),而不是在冷却过程中使用散热器。随后,通过增加其可用性来实现装置性能的重大发展,这是由于大气蒸汽中的露水的冷凝和收集,作为主要海水来源的产品之外的另一种水生产来源。建立了基于仿真数学模型的计算机程序,并对新系统进行了综合分析。替代新工艺的特点是能够恢复传统工艺中倒退的产水,其中淡水的生产率可能比传统的加湿提高8倍。除湿工艺适用于炎热和热带气候条件的国家。在大多数潮湿地区,从露水中提取和回收的水量可以达到新装置产量的51%和37%左右。在本研究中,提高机组性能是主要目标。讨论和分析了改变喷射器(热制冷蒸汽压缩机组的基石)的特性对系统性能的影响,从而明确了控制参数。此外,还测试了不同工质在蒸汽压缩过程中的适用性。基于目前的工作,新的HDDTVC被认为是一个有前景的中等规模商业化生产单元,为干旱和偏远社区提供他们对饮用水的需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel super-cooled humidification?dehumidification system driven by thermal vapour compression unit for seawater desalination
The current study presents the concept of a novel seawater desalination system that is configured by a humidification?dehumidification unit based on the vapour-compression process (HDDTVC). The coupled refrigeration unit employs the thermal compression of vapour by a jet-ejector. The new technical idea of proposed desalination system depends mainly upon the creation of a super-cooled temperature under the ambient condition (near 0°C) for the dehumidification process, instead of using the heat sink in the cooling process. Subsequently, the significant development in the unit performance is achieved by increasing its availability owing to the condensation and collection of the dew from the atmospheric vapour as an additional source of water production, in addition to the product from the main source of seawater. A computer program based on a simulation mathematical model is constructed and a comprehensive analysis is discussed for the new system. The alternate novel process is characterised with the ability to recuperate the retrogressive water production in traditional process, where the productivity of freshwater may increase up to eight times compared with the conventional humidification?dehumidification process applied for the countries with hot and tropical climatological conditions. The amount of extracted and retrieved water from dew in most humid regions can reach around 51% and 37% of the new unit production. In this investigation, enhancement of the unit performance is the main objective. The influence of changing the characteristics of the jet-ejector (the cornerstone of the thermal refrigeration vapour-compression unit) on the system performance is discussed and analysed so as to clarify the controlling parameters. Also, the applicability of different working fluids is tested for the vapour compression process. Based on the current work, the new HDDTVC is suggested as a promising unit of medium-scale commercial production to provide arid and isolated communities with their requirements for potable water.
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