首页> 外文期刊>Journal of Tribology >Rotordynamics of Small Turbochargers Supported on Floating Ring Bearings- Highlights in Bearing Analysis and Experimental Validation
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Rotordynamics of Small Turbochargers Supported on Floating Ring Bearings- Highlights in Bearing Analysis and Experimental Validation

机译:浮环轴承支撑的小型涡轮增压器的转子动力学-轴承分析和实验验证的重点

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摘要

Turbochargers (TCs) improve performance in internal combustion engines. Due to low production costs, TC assemblies are supported on floating ring bearings (FRBs). TCs show subsynchronous motions of significant amplitudes over a wide speed range. However, the subsynchronous whirl motions generally reach a limit cycle enabling continuous operation. The paper advances progress on the validation against measurements of linear and nonlinear rotordynamic models for predicting shaft motions of automotive TCs. A comprehensive thermohydrodynamic model predicts the floating ring speeds, inner and outer film temperatures and lubricant viscosity changes, clearances thermal growth, operating eccentricities for the floating ring and journal, and linearized force coefficients. A nonlinear rotordynamics program integrates the FRB lubrication model for prediction of system time responses under actual operating conditions. Measurements of shaft motion in a TC unit driven by pressurized air demonstrate typical oil-whirl induced instabilities and, due to poor lubricant conditions, locking of the floating rings at high shaft speeds. Nonlinear predictions are in good agreement with the measured total amplitude and subsynchronous frequencies when implementing the measured ring speeds into the computational model. The computational tools aid to accelerate TC prototype development and product troubleshooting.
机译:涡轮增压器(TC)改善了内燃机的性能。由于生产成本低,TC组件被支撑在浮动环轴承(FRB)上。 TC在很宽的速度范围内显示出显着幅度的次同步运动。然而,次同步旋转运动通常达到极限循环,从而能够连续操作。本文针对用于预测汽车TC轴运动的线性和非线性转子动力学模型的测量验证提供了进展。全面的热流体动力学模型可预测浮环的速度,内外膜温度和润滑剂粘度的变化,间隙热增长,浮环和轴颈的工作偏心率以及线性化的力系数。非线性转子动力学程序集成了FRB润滑模型,用于预测实际工况下的系统时间响应。对由压缩空气驱动的TC单元中轴运动的测量表明,典型的油涡动引起的不稳定性,并且由于不良的润滑条件,浮子环在高轴速下也被锁定。当将测得的振铃速度实现到计算模型中时,非线性预测与测得的总振幅和次同步频率非常吻合。计算工具有助于加速TC原型开发和产品故障排除。

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