气流参数对多孔质空气静压轴承静态特性及性能影响研究
PDF下载 (326)阿怀斯,MUHAMMAD PUNHAL Sahto,FAWAD Jamil,SUMMIA Perveen,ALI NAWAZ Sanjrani.气流参数对多孔质空气静压轴承静态特性及性能影响研究[J].宁波大学学报(理工版),2023,36(5):1-10.DOI:10.20098/j.cnki.1001-5132.2023.0505
AWAIS Mehmood,MUHAMMAD PUNHAL Sahto,FAWAD Jamil,SUMMIA Perveen,ALI NAWAZ Sanjrani.Influence of flow parameters on static characteristics of porous aerostatic bearing[J].Journal of Ningbo University(Natural Science & Engineering Edition),2023,36(5):1-10.DOI:10.20098/j.cnki.1001-5132.2023.0505
| Title: | Influence of flow parameters on static characteristics of porous aerostatic bearing |
| 作者: | 阿怀斯, MUHAMMAD PUNHAL Sahto, FAWAD Jamil, SUMMIA Perveen, ALI NAWAZ Sanjrani |
| Author(s): | AWAIS Mehmood, MUHAMMAD PUNHAL Sahto, FAWAD Jamil, SUMMIA Perveen, ALI NAWAZ Sanjrani |
| 关键词: | 多孔质静压推力轴承; 气膜厚度; 承载能力; 静态特性; 质量流率 |
| Keywords: | porous aerostatic thrust bearing; film thickness; load-carrying capacity; static characteristics; mass flow rate |
| 分类号: | TH133.36 |
| DOI: | 10.20098/j.cnki.1001-5132.2023.0505 |
| 文献标识码: | A |
| 摘要: | 空气静压轴承在精密机床和计量设备等制造业领域应用广泛. 多孔质空气静压轴承是一种特殊类型的空气静压轴承, 其由于使用了多孔质材料, 因此更加稳定和坚固. 目前针对这类轴承有关气流参数对轴承静态特性及性能影响的研究还较为欠缺. 为此, 本文提出了一个数学模型用于模拟多孔质空气静压推力轴承的静态特性, 包括承载能力、刚度及质量流率等. 通过使用基于Navier-Stokes方程的计算, 对轴承内部的压力分布进行了分析. 随后, 研究了对轴承静态特性可能产生影响的相关气流参数及其影响情况. 研究结果表明, 轴承气膜层厚度的增加会导致轴承承载能力和刚度的下降, 但增加多孔质层的厚度可以提高轴承刚度. 此外, 增加气膜层厚度会使得进入轴承的空气质量流率得以提升. 这些结果可用于帮助设计更为高效且能够承担更高负载的多孔质空气静压轴承. |
| Abstract: | There is a wide variety of applications of aerostatic bearings in manufacturing such as precision machine tools and metrology equipment. As a specific type of aerostatic bearings, porous aerostatic bearings are more stable and stronger due to the use of porous materials. There is still not much research on the static characteristics influenced by flow-related parameters. In this paper, a mathematic model is proposed to simulate the static properties of porous aerostatic thrust bearings, including load-carrying capacity, mass flow rate and stiffness. The pressure distribution inside the bearing is analyzed by calculation based on Navier-Stokes equations. The flow factors and their effect on bearing static properties are then investigated. The findings indicate that, an increase in film thickness of the bearing shall cause load-carrying capacity decrease and also stiffness decrease. However, by increasing the thickness of porous layer the stiffness of the bearing can be effectively increased. In addition, the increased film thickness shall result in an increased mass flow rate into the bearing. These findings can be used to help design porous aerostatic bearings that are more efficient and able to handle higher loads. |
| 参考文献 /References: | [1] Gao Q, Chen W Q, Lu L H, et al. Aerostatic bearings design and analysis with the application to precision engineering: State-of-the-art and future perspectives[J]. Tribology International, 2019, 135:1-17. [2] Zeng C Q, Wang W, Cheng X H, et al. Three-dimensional flow state analysis of microstructures of porous graphite restrictor in aerostatic bearings[J]. Tribology International, 2021, 159:106955. [3] Sahto M P, Wang W, Imran M, et al. Modelling and simulation of aerostatic thrust bearings[J]. IEEE Access, 2020, 8:121299-121310. [4] Cui H L, Wang Y, Yue X B, et al. Numerical analysis and experimental investigation into the effects of manufacturing errors on the running accuracy of the aerostatic porous spindle[J]. Tribology International, 2018, 118:20-36. [5] Zhang J B, Zou D L, Ta N, et al. Numerical research of pressure depression in aerostatic thrust bearing with inherent orifice[J]. Tribology International, 2018, 123: 385-396. [6] Aguirre G, Al-Bender F, Van Brussel H. A multiphysics model for optimizing the design of active aerostatic thrust bearings[J]. Precision Engineering, 2010, 34(3):507-515. [7] Deng C Y, An C H, Wei B, et al. Investigation on the influence of aerostatic pressure upon surface generation in flycutting[J]. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 2019, 233(4):1136-1143. [8] Belforte G, Raparelli T, Viktorov V. Modeling and identification of gas journal bearings: Self-acting gas bearing results[J]. Journal of Tribology, 2002, 124(4): 716-724. [9] Chang S H, Chan C W, Jeng Y R. Numerical analysis of discharge coefficients in aerostatic bearings with orifice- type restrictors[J]. Tribology International, 2015, 90:157-163. [10] Wang W, Cheng X H, Zhang M, et al. Effect of the deformation of porous materials on the performance of aerostatic bearings by fluid-solid interaction method[J]. Tribology International, 2020, 150:106391. [11] Zhu J C, Chen H, Chen X D. Large eddy simulation of vortex shedding and pressure fluctuation in aerostatic bearings[J]. Journal of Fluids and Structures, 2013, 40:42-51. [12] Lin J R. Surface roughness effect on the dynamic stiffness and damping characteristics of compensated hydrostatic thrust bearings[J]. International Journal of Machine Tools and Manufacture, 2000, 40(11):1671-1689. [13] Yan R Z, Wang L Y, Wang S Z. Performance comparison between aerostatic bearings with orifice and porous restrictors based on parameter optimization[J]. Australian Journal of Mechanical Engineering, 2021, 19(4):378-389. [14] Liu H P, Xu H, Ellison P J, et al. Application of computational fluid dynamics and fluid-structure interaction method to the lubrication study of a rotor- bearing system[J]. Tribology Letters, 2010, 38(3):325-336. |
| 备注/Memo: | 收稿日期: 2023-05-08. 宁波大学学报(理工版)网址: http://journallg.nbu.edu.cn/ 基金项目: 宁波市“科技创新2025”重大专项(2022Z015). 第一作者: 阿怀斯(1989-), 男, 巴基斯坦人, 拉合尔大学实验员/宁波大学在读硕士研究生, 主要研究方向: 空气静压轴承. E-mail: awais_mehmood89@163.com 宁波大学学报(理工版)网址:http://journallg.nbu.edu.cn/ |