首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >One Explanation for Two-Times Running Speed Response Due to Misalignment in Rotors Connected by Flexible Couplings
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One Explanation for Two-Times Running Speed Response Due to Misalignment in Rotors Connected by Flexible Couplings

机译:挠性联轴器连接的转子不对中引起的两次运行速度响应的一种解释

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摘要

Misalignment in turbomachinery is commonly thought to produce two-times running-speed (2N) response. The source of 2N vibration response was investigated, starting with the development of finite-element models for three flexible disk-pack couplings (four-bolt, six-bolt, and eight-bolt couplings). Parallel and angular misalignments were analyzed. The resultant lateral stiffness terms had 1N, 2N, and 3N harmonic components versus the shaft rotation angle. The four-bolt coupling had large 1N stiffness components under angular and parallel misalignment. The six-bolt coupling had only a 1N reaction component under angular misalignment, while parallel misalignment showed a strong 2N reaction component, larger than either the 1N or 3N components. Under angular misalignment, the eight-bolt model produced large 1N reaction components. Under parallel misalignment, it produced 1N, 2N, and 3N components that were similar in magnitude. All the couplings behaved linearly in the range studied. Some experts attribute observed 2N response to nonlinear bearing forces produced by bearings at high unit loads. Static tests for a five-pad tilting-pad journal bearing with unit loads up to 34.5 bars produced small 2N motion components that did not grow with increasing unit load. A Jeffcott-rotor model with shaft stiffness orthotropy and a fixed-direction side load predicts that 2N response depends on three related factors: (1) the degree of orthotropy (the 1N stiffness variation magnitude), (2) the magnitude of the side load, and (3) the relative ratio of running speed to rotor first natural frequency, (ω/ω)_n). The 2N response magnitude is largest when ω is close to ω_n/2. The side load is required to create 2N response due to shaft stiffness orthotropy. Misaligned couplings create precisely the same (very old) physical model as a two-pole turbogenerator rotor with a gravity side load (gravity critical speed). The response of a two-rotor/coupling system with parallel and angular misalignment was simulated using a time-transient code. When the frequency ratio was 0.5, the system response with the four-bolt and six-bolt coupling had a synchronous 1N component as well as a significant 2N component. Parallel misalignment at a coupling produces stiffness orthotropy and a fixed-direction side load. For ranges of running speed near ω_n/2, these two elements can combine to produce 2N response.
机译:通常认为涡轮机械的不对中会产生两倍的运行速度(2N)响应。对2N振动响应的来源进行了研究,首先是针对三种挠性盘片式联轴器(四螺栓,六螺栓和八螺栓联轴器)的有限元模型的开发。分析了平行和角度失准。相对于轴旋转角度,所得的横向刚度项具有1N,2N和3N谐波分量。四螺栓联轴器在角度和平行未对准情况下具有较大的1N刚度分量。六螺栓联轴器在角度未对准时只有1N反应成分,而平行未对准则显示出较强的2N反应成分,大于1N或3N成分。在角度未对准的情况下,八螺栓模型产生了较大的1N反应分量。在平行未对准下,它产生了大小相似的1N,2N和3N分量。在研究的范围内,所有联轴器均呈线性表现。一些专家将2N响应归因于在高单位载荷下轴承产生的非线性轴承力。对单位负载不超过34.5 bar的五轴瓦可倾瓦轴颈轴承的静态测试产生了小的2N运动分量,该分量不会随单位负载的增加而增长。具有轴刚度正交性和固定方向侧向载荷的Jeffcott转子模型预测2N响应取决于三个相关因素:(1)正交性的程度(1N刚度变化幅度),(2)侧向载荷的幅度(3)运行速度与转子第一固有频率的相对比(ω/ω)_n)。当ω接近ω_n/ 2时,2N响应幅度最大。由于轴刚度正交性,需要产生2N响应的侧向载荷。错位的联轴器会创建与具有重力侧向负载(重力临界速度)的两极涡轮发电机转子完全相同的(非常旧的)物理模型。使用时间瞬变代码模拟了具有平行和角度失准的两转子/耦合系统的响应。当频率比为0.5时,具有四螺栓和六螺栓耦合的系统响应具有同步的1N分量和显着的2N分量。联轴器的平行未对准会产生刚度正交性和固定方向的侧向载荷。对于接近ω_n/ 2的运行速度范围,这两个元素可以组合产生2N响应。

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