Development of a Theoretical Model for Predicting Performance of a Gas Ejector in Different Boundary Conditions and Working Fluids

IF 0.9 Q4 ENERGY & FUELS
Saeed Akbarnejad,  Masoud Ziabasharhagh
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Abstract

Ejectors are devices designed to suck fluid, steam or gas (primary fluid) from a closed space using a powerful jet of steam (secondary fluid), usually operated under specified boundary conditions using specific working fluids. If ejectors are to be used under new boundary conditions, predicting their performance requires either numerical or experimental studies. This paper presents a simple theoretical model capable of accurately predicting the performance of an ejector, given its geometry and boundary conditions, under different operating conditions. The model can predict the entrainment ratio, critical back pressure, and break-up back pressure using a given simple performance curve. The accuracy of the model is validated using computational fluid dynamics (CFD) simulations. Two ejectors with different geometries, dimensions, and boundary conditions are studied using ANSYS Fluent 19.2, and the results are compared with those from two other studies. The model successfully predicts the performance of all four ejectors across a wide range of operating conditions. Finally, the model is extended to any working fluid and temperature and validated numerically using air as the working fluid instead of water vapor. The results show that the model has an entrainment ratio error of less than 2%. It’s worth noting that this model’s applicability is contingent upon simultaneous changes to both the primary and suction streams by the same factor. Under these conditions, the model aligns closely with CFD-simulations.

Abstract Image

不同边界条件和工质下气体喷射器性能预测理论模型的建立
喷射器是一种利用强大的蒸汽射流(二次流体)从封闭空间吸入流体、蒸汽或气体(一次流体)的装置,通常在特定的边界条件下使用特定的工作流体。如果要在新的边界条件下使用喷射器,预测其性能需要进行数值或实验研究。本文提出了一个简单的理论模型,在给定喷射器的几何形状和边界条件下,可以准确地预测喷射器在不同工作条件下的性能。该模型可以使用给定的简单性能曲线来预测夹带比、临界背压和破裂背压。通过计算流体力学(CFD)仿真验证了该模型的准确性。利用ANSYS Fluent 19.2软件对两种不同几何形状、尺寸和边界条件的喷射器进行了研究,并与其他两种研究结果进行了比较。该模型成功地预测了所有四种喷射器在各种操作条件下的性能。最后,将该模型推广到任何工作流体和温度下,并以空气代替水蒸气作为工作流体进行了数值验证。结果表明,该模型的夹带比误差小于2%。值得注意的是,该模型的适用性取决于同一因素同时改变主流和吸力流。在这些条件下,模型与cfd模拟非常接近。
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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来源期刊
CiteScore
1.30
自引率
20.00%
发文量
94
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