首页> 外文会议>ASME international conference on energy sustainability;ES2009 >ANALYSIS OF APPLICATION OF PRESSURE EXCHANGE DEVICE IN THERMAL VAPOR COMPRESSION DESALINATION SYSTEM
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ANALYSIS OF APPLICATION OF PRESSURE EXCHANGE DEVICE IN THERMAL VAPOR COMPRESSION DESALINATION SYSTEM

机译:压力交换装置在热蒸汽压缩淡化系统中的应用分析

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Recent advances in direct fluid-fluid flow induction provide potential for major improvement in performance of thermal distillation systems based on the pressure exchange phenomenon compared to the conventional turbulent mixing controlled ejectors. Pressure exchange devices utilize the work of non-steady pressure forces acting across moving interfaces. Optimal performances of such devices can be determined through the use of the ideal turbomachinery analog. The analog is configured as a turbine-compressor unit, where the high energy primary fluid expands through the turbine that drives a compressor which compresses the low energy secondary fluid and the two then discharges in a common mixing chamber at a common intermediate pressure. The overall functioning of the turbomachinery analog is similar to the conventional ejector. Thus the turbomachinery analog provides the highest possible performance that an ejector can achieve ideallyAn analytical single effect thermal vapor compression (TVC) desalination model is developed. The turbomachinery analog which is the simplest kind of pressure exchange device is simulated in place of the conventional ejector. The objective of the research is to investigate the performance of the system for various ejector efficiencies, so as to achieve the minimum production cost of distilled water. Such a development would make the process comparable with reverse osmosis and mechanical vapor compression desalination system. The system performance is expressed in the form of thermal performance ratio. For similar systems employing conventional steady-state ejectors, thermal performance ratios as high as 2 has been achieved for low compression ratio and low boiling temperature but at a price of high pressure primary steam. This paper revealsthat the application of pressure exchange device can achieve even greater performance ratios for lower primary pressure and temperatures, contributing to a significant decrease in production cost.The model is designed for 5m~3/day capacity, with an aim of achieving highest possible thermal efficiency. The system is analyzed by varying the critical operating parameters, like compression ratio, top brine temperature, primary pressure and ejector efficiency. The results show that with increase in primary pressure, the required primary temperature goes down. Also the application of pressure exchange device results in a phenomenal 3 fold rise in thermal performance ratio, as compared to conventional ejectors. The results achieved from the simulations are quite encouraging and promising for the future development of more efficient and compact device called the supersonic pressure exchange ejector.
机译:与常规的湍流混合控制喷射器相比,基于压力交换现象的直接流体流感应技术的最新进展为热蒸馏系统的性能提供了重大改进的潜力。压力交换设备利用了在移动界面上作用的非恒定压力的作用。可以通过使用理想的涡轮机械模拟来确定此类设备的最佳性能。该类似物被配置为涡轮压缩机单元,其中高能一次流体通过涡轮膨胀,涡轮驱动压缩机,该压缩机压缩低能二次流体,然后二者在共同的中间压力下在共同的混合室中排出。涡轮机械模拟装置的整体功能类似于传统的喷射器。因此,涡轮机械模拟提供了喷射器可以理想达到的最高性能 建立了分析型单效热蒸汽压缩(TVC)脱盐模型。模拟了作为最简单的一种压力交换装置的涡轮机械模拟装置,以代替传统的喷射器。该研究的目的是研究该系统在各种喷射器效率下的性能,从而实现最低的蒸馏水生产成本。这样的发展将使该工艺可与反渗透和机械蒸汽压缩脱盐系统相媲美。系统性能以热性能比的形式表示。对于采用常规稳态喷射器的类似系统,对于低压缩比和低沸点温度,已经达到了高达2的热性能比,但价格却很高。本文揭示了 压力交换装置的应用可以在较低的一次压力和较低温度下实现更高的性能比,从而大大降低了生产成本。 该模型设计用于5m〜3 / day的产能,旨在实现最高的热效率。通过更改关键运行参数(例如压缩比,最高盐水温度,主压力和喷射器效率)来分析系统。结果表明,随着初级压力的增加,所需的初级温度下降。与传统的喷射器相比,压力交换装置的应用还导致热性能比显着提高3倍。从模拟获得的结果对于被称为超音速压力交换喷射器的更高效,更紧凑的设备的未来发展而言,是令人鼓舞和有希望的。

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