首页> 外文会议>National technical training symposium and Thirty-Fourth annual meeting >DYNAMIC STABILITY and WHIRL MOTION of LARGE DIESEL ENGINE TURBOCHARGERS in FLOATING BUSH and MULTI-LOBED BEARINGS
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DYNAMIC STABILITY and WHIRL MOTION of LARGE DIESEL ENGINE TURBOCHARGERS in FLOATING BUSH and MULTI-LOBED BEARINGS

机译:浮置和多叶片轴承中大型柴油机涡轮增压器的动态稳定性和旋转运动

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This paper deals with the stability and nonlinear dynamical analysis of a class of turbocharger used on locomotives and marine diesel engines. These larger sized turbochargers operate at 30,000 RPM and use floating ring bearings. The floating ring bearing is very common for use in the smaller highspeed automotive engines. The use of floating ring bearings for the heavier turbochargers can encounter a number of difficulties which can lead to catastrophic failure of the impeller and shaft, depending upon operating conditions and clearance values of the bearings. All turbochargers mounted in floating ring bearings are inherently unstable with limit cycle whirling. The whirl orbits are controlled by the nonlinear bearing forces generated in the inner and outer fluid films of the bearings. Depending upon the floating ring bearing clearances, a sufficiently high whirl motion can occur, causing the compressor impeller to rub, leading to impeller and shaft failure. A very tight internal compressor bearing ring clearance may cause the bushing to freeze to the shaft. When this occurs the bushing acts as a large clearance journal bearing and is violently unstable. The ensuing large amplitude whirl motion leads to rapid turbocharger failure. Dynamical models are presented to show the nonlinear behavior of the turbocharger and the magnitudes of the limit, cycle whirl motion with both the floating bush bearing and various multi-lobed bearing designs. Attempts to make a multilobed bearing out of a floating bush bearing by adding axial grooves is not effective and may actually lead to larger whirl orbits. Improvements in turbocharger reliability with floating bush bearings may be obtained by the use of closely controlled bearing ring clearances, use of a synthetic lubricant, secondary turbocharger oil filtration, turbocharger overspeed controls, and increased radial clearances in the turbocharger inducer and compressor sections. Finally, a superior bearing design is presented using a 3 lobed bearing design which improves the stability characteristics and reduces the nonsynchronous whirl amplitudes.
机译:本文研究了用于机车和船用柴油机的一类涡轮增压器的稳定性和非线性动力学分析。这些较大尺寸的涡轮增压器的转速为30,000 RPM,并使用浮动环轴承。浮动环轴承通常用于较小的高速汽车发动机中。将浮动环轴承用于较重的涡轮增压器会遇到许多困难,这些困难可能会导致叶轮和轴发生灾难性故障,具体取决于轴承的工作条件和游隙值。安装在浮动环轴承中的所有涡轮增压器固有地具有极限循环旋转的不稳定性。涡旋轨道由在轴承的内部和外部流体膜中产生的非线性轴承力控制。根据浮动环轴承的间隙,可能会发生足够高的涡旋运动,从而导致压缩机叶轮发生摩擦,从而导致叶轮和轴发生故障。内部压缩机轴承圈的间隙过紧会导致衬套冻结到轴上。发生这种情况时,衬套充当一个大间隙的轴颈轴承,并且非常不稳定。随后发生的大幅度旋转运动导致涡轮增压器快速失效。提出了动力学模型,以显示涡轮增压器的非线性行为以及浮动衬套轴承和各种多瓣轴承设计的极限值,循环涡动运动。试图通过增加轴向凹槽来从浮动衬套轴承中制成多瓣轴承是无效的,实际上可能导致更大的涡旋轨道。通过使用紧密控制的轴承套圈间隙,使用合成润滑剂,二次涡轮增压器机油过滤,涡轮增压器超速控制以及增加的涡轮增压器诱导器和压缩机部分的径向间隙,可以提高浮动轴承的涡轮增压器可靠性。最后,提出了一种采用三瓣轴承设计的卓越轴承设计,该轴承设计提高了稳定性,并降低了非同步涡动振幅。

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