Research on operating parameters of T-groove cylindrical gas film seal based on computational fluid dynamics

IF 1.7 4区 材料科学 Q3 MATERIALS SCIENCE, COMPOSITES
Junfeng Sun, M. Liu, Zhen Xu, Taohong Liao
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引用次数: 5

Abstract

Cylindrical gas film sealing technology is a new type of dry gas sealing technology. Compared with the face gas film sealing technology, the cylindrical gas film seal presents a strong floating property, which can reduce the vibration and thermal deformation of the rotor system. In this article, the effect of operating parameters such as speed, pressure difference and viscosity on the T-groove gas cylindrical film seal performance are studied in detail by the method of control variable in computational fluid dynamics software, and pressure distribution, gas film stiffness, leakage, leakage stiffness ratio and hydrodynamic force are analysed. Results show that with the increase of the rotational speed, static pressure, hydrodynamic force and film stiffness increase, but leakage decreases first and then increases. Furthermore, the results indicate that with the increase of pressure difference, the static pressure, leakage and hydrodynamic force increase. In addition, the simulations show that when the viscosity increases, the maximum pressure and film stiffness increase, but the leakage decreases. This indicates that as the rotational speed increases, the hydrodynamic effect and the amount of gas overflow in the axial direction increase, resulting in an increase of leakage. Lastly, the results also show that when the pressure difference increases, both the radial and axial gas flow rates increase, resulting in an increase in both the film stiffness and the leakage. With the increase of viscosity, the viscous shear force and fluid hydrodynamic force increase, resulting in the increase of the gas film stiffness. This study can provide a theoretical basis in industrial applications for setting the operating parameters and serving as a reference.
基于计算流体力学的T型槽圆柱气膜密封工作参数研究
圆柱形气膜密封技术是一种新型的干气密封技术。与端面气膜密封技术相比,圆柱形气膜密封具有较强的浮动性能,可以减少转子系统的振动和热变形。本文采用计算流体力学软件中的控制变量法,详细研究了速度、压差、粘度等操作参数对T型槽气膜密封性能的影响,分析了压力分布、气膜刚度、泄漏、泄漏刚度比和流体动力。结果表明,随着转速的增加,静压、水动力和膜刚度增大,但泄漏量先减小后增大。此外,结果表明,随着压差的增大,静压、泄漏和水动力都会增大。此外,模拟表明,当粘度增加时,最大压力和膜刚度增加,但泄漏量减少。这表明,随着转速的增加,流体动力学效应和轴向上的气体溢出量增加,导致泄漏增加。最后,结果还表明,当压差增加时,径向和轴向气体流量都增加,导致膜刚度和泄漏都增加。随着粘度的增加,粘性剪切力和流体动力增加,导致气膜刚度增加。该研究可为工业应用中操作参数的设置提供理论依据,并可供参考。
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
Advanced Composites Letters
Advanced Composites Letters 工程技术-材料科学:复合
自引率
0.00%
发文量
0
审稿时长
4.2 months
期刊介绍: Advanced Composites Letters is a peer reviewed, open access journal publishing research which focuses on the field of science and engineering of advanced composite materials or structures.
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