考虑金属和陶瓷滚动体的主轴涡轮航空发动机轴承的热生成

Brian D. Nicholson, Jeremy T. Nickell
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引用次数: 0

摘要

本工作详细介绍了涡轮航空发动机主轴轴承的热生成分析评估,并开发了一个模型来预测热生成。新模型基于先前由空军研究实验室(AFRL)开发的经验模型,其特征是基于物理的术语乘以经验回归系数。该模型被证明是有限的,因为部分条款本质上是回归系数的延伸,因为实验数据仅限于一个轴承的数据。此外,每种滚动元件材料都有单独的模型。为了建立新的模型,使用经过验证的轴承分析程序ADORE生成了不同尺寸角接触球轴承的功率损失数据。考察了转速、推力载荷、节距直径、元件直径、滚动元件数量、润滑剂入口温度、润滑剂流量和滚动元件材料(AISI M50轴承钢和氮化硅)的影响。速度和推力载荷分别分为四个级别。元件数量、内径、元件直径以及润滑剂温度和流量都分为三个级别。这些影响在模型中通过牵引(摩擦)、搅拌(阻力)和剪切(粘性)项及其各自的回归系数来捕捉。通过在滚道与滚动元件接触面积的估计范围内使用有效弹性模量来解决材料效应。将该模型的性能与在AFRL高马赫发动机(HME)轴承座上收集的实验数据进行了比较。在这项工作中创建的模型为设计人员提供了一个有效的工具,可以在发动机早期设计阶段检查轴承的热量产生,避免了其他更详细的方法的大量计算和前端费用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat Generation in a Main-Shaft Turbine Aero-Engine Bearing Considering Metal and Ceramic Rolling Elements
This work details an analytical assessment of heat generation in a turbine aero-engine main-shaft bearing and the development of a model to predict that heat generation. The new model is based on an empirical model, previously developed by the Air Force Research Laboratory (AFRL), which features physics based terms multiplied by empirical regression coefficients. That model proved to be limited in that portions of the terms were essentially an extension of the regression coefficients due to the fact that the experimental data was limited to that of one bearing. Additionally, there were separate models for each rolling element material. To develop the new model, the validated bearing analysis code ADORE was used to generate power loss data for angular contact ball bearings of various sizes. The effects of speed, thrust load, pitch diameter, element diameter, number of rolling elements, lubricant inlet temperature, lubricant flow rate, and rolling element material (AISI M50 bearing steel and silicon nitride) are examined. Speed and thrust load are addressed at four levels each. Number of elements, bore diameter, and element diameter as well as lubricant temperature and flow rate are each addressed at three levels. These effects are captured in the model through traction (friction), churning (drag), and shearing (viscous) terms and their respective regression coefficients. The material effect is address through the use of an effective elastic modulus within an estimate of raceway to rolling element contact area. The performance of the model was then compared with experimental data collected in the AFRL High Mach Engine (HME) Bearing Rig. The model created in this work provides designers with an effective tool to examine bearing heat generation during the early engine design phases, avoiding the significant computational and front end expense of other, more detailed methods.
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