Enhancement of ejector performance for a desalination system

E. Negeed
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引用次数: 5

Abstract

This paper describes the use of Computational Fluid Dynamics (CFD) to investigate the performance of the ejector used in desalination applications that use air as the working fluid. A three-dimensional model for the CFD was used to investigate the effect of operating conditions and ejector geometry on ejector performance. The results show that ejector performance increases by increasing the primary nozzle throat diameter and the entrained flow reaches a maximum at a certain diameter; beyond this value, the entrained flow will decrease. Also, the entrainment ratio increases with an increasing suction pressure. Moreover, the results determine the optimum position with respect to the ejector's mixing chamber, which yields a maximum entrainment ratio. Also, the results determine the optimum constant area mixing length to diameter (L/D) ratio, which yields a maximum ejector performance. As this ratio increases, the entrainment ratio increases. Besides, the increase in entrainment becomes very small and can be neglected for an L/D ratio greater than 7.5. Also, for the high value of the primary pressure, constructing the constant area mixing section through multichannel tubes enhances ejector performance. A comparison between the present results and experimental results from other researchers gave a good agreement between them.
海水淡化系统喷射器性能的提高
本文介绍了用计算流体动力学(CFD)来研究以空气为工作流体的海水淡化应用中喷射器的性能。采用三维CFD模型研究了工作条件和喷射器几何形状对喷射器性能的影响。结果表明:随着主喷管喉部直径的增大,引射器的性能有所提高,在一定的喉部直径下引射流量达到最大值;超过这个值,夹带流量就会减少。吸入压力越大,吸入比越高。此外,结果确定了相对于喷射器混合室的最佳位置,从而产生最大的夹带比。结果还确定了最佳的等面积混合长径比(L/D),从而获得最大的喷射器性能。随着这个比率的增加,夹带比也随之增加。此外,夹带的增加变得非常小,当L/D比大于7.5时可以忽略。同时,在一次压力较大的情况下,通过多道管构造等面积混合段可以提高喷射器的性能。本文的结果与其他研究人员的实验结果相比较,两者吻合得很好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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