往复式压缩机扭振计算

P. Kapustin, T. Degtyareva
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引用次数: 0

摘要

压缩机传动系统的发展趋势是制造商努力提高其容量,同时降低机器的质量尺寸参数并保持其可靠性。提高往复式压缩机组的能力的主要途径之一是提高轴速。然而,随着速度的增加,出现扭转振动的危险。由此产生的扭转振动是产生额外噪声源的原因,而且还会造成额外的动载荷,从而降低曲轴的寿命并可能导致其故障。此外,曲轴故障会导致压缩机机组的其他部件如轴承、十字头、活塞等的故障。此外,产生的大峰值扭矩会使齿轮、花键和联轴器等部件过载。因此,在往复式压缩机的设计过程中,应进行全面的扭转振动分析。介绍了多排往复式压缩机扭振计算的主要阶段,包括自然振动分析和强迫振动分析。本文描述了等效扭转系统建模的一般规则,用Holzer法和矩阵特征值法计算固有频率,用Campbell图评价压缩机组的运行方式,扭矩的谐波分析,振动幅值的确定以及扭转振动引起的附加应力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Torsion Vibration Calculation in Recipracating Compressors
The trend in the development of compressor trains is that manufacturers are striving to increase its capacity while reducing the mass-dimensional parameters of the machine and maintaining its reliability. One of the main way to raise the capacity of a reciprocating compressor unit is to increase the shaft speed. However, as the speed increases, the risk of torsion vibration appears. The resulting torsion vibration is the reason of an additional source of noise, and also cause additional dynamic loads that reduce the life of the crankshaft and may lead to its breakdown. Furthermore, crankshaft failure can cause breakdown of other parts of the compressor unit such as bearings, crosshead, piston and etc. Additionally, the large generated peak torques can overload components such as gears, splines, and couplings. Accordingly, a thorough torsion vibration analysis should be included as an integral part of the reciprocating compressor design process. This paper presents main stages of torsion vibration calculation in a multi-row reciprocating compressor including natural and forced vibration analysis. General rules of modeling an equivalent torsion system, natural frequencies calculation by Holzer's method and matrix-eigenvalue method, evaluation of operation mode of a compressor unit by Campbell diagram, harmonic analysis of the torque, determination of the vibration amplitudes and additional stress caused by torsion vibration are described in this work.
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