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Research on modal analysis method of CNC machine tool based on operational impact excitation

机译:基于操作影响激发的数控机床模态分析方法研究

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摘要

With the rapid development of modern industry and industrial upgrading, machine tool performances such as high machining speed, high machining accuracy, and high reliability have gradually become the development trend of high-end CNC machine tools. The vibration characteristics of the machine structure become an important factor affecting the machining quality and processing efficiency of the machine tool. Since the movable parts of the CNC machine tool will impact the machine structure itself during the acceleration and deceleration process, by identifying the structural vibration response signal, the modal parameters of the machine tool in the running state can be obtained, called active excitation mode analysis. However, this method still has certain defects in theory and experiment. For example, the excitation principle is not theoretically explained, and the excitation energy and the frequency band of the method are limited. To solve these problems, this paper conducts more comprehensive research on the modal analysis method of CNC machine tools based on operational impact excitation. The main research contents are as follows: considering the rigid body motion of the table and the elastic collision of the screw nut pair, the impact excitation is modeled and analyzed. We have introduced a response-based modal identification algorithm. The influence factors of impact excitation energy and frequency band were studied from both theoretical and experimental aspects. Design three excitation sequences for workbench excitation and spindle excitation, respectively, analyze the vibration response and modal identification of the machine tool structure under different excitation sequences. It is verified that the method does not depend on the specific excitation sequence, as long as it satisfies the random characteristics. Aiming at the problem of insufficient excitation energy of the machine tool structure for single-component impact excitation, a multi-component joint impact excitation method based on the principle of multi-point excitation technology is proposed. The design experiment is carried out to verify the impact excitation method, which shows that the joint excitation has better excitation effect than single-axis excitation.
机译:随着现代工业和工业升级的快速发展,机床表演如高加工速度,高加工精度和高可靠性逐渐成为高端数控机床的发展趋势。机器结构的振动特性成为影响机床加工质量和加工效率的重要因素。由于CNC机床的可移动部件将在加速和减速过程中影响机器结构本身,因此通过识别结构振动响应信号,可以获得在运行状态下的机床的模态参数,称为主动激励模式分析。然而,这种方法在理论和实验中仍然存在某些缺陷。例如,激发原理不是理论上解释的,并且该方法的激发能量和频带是有限的。为了解决这些问题,本文对基于操作撞机激励的数控机床模态分析方法进行了更全面的研究。主要研究内容如下:考虑到刀片的刚体运动和螺母对的弹性碰撞,模拟和分析冲击激发。我们介绍了基于响应的模态识别算法。从理论和实验方面研究了冲击激发能量和频段的影响因素。为工作台激励和主轴激励设计三个激励序列,分析了不同激励序列下机床结构的振动响应和模态识别。验证该方法不依赖于特定的激励序列,只要它满足随机特性即可。针对单组分冲击激励的机床结构的励磁能量不足的问题,提出了一种基于多点激励技术原理的多分量接头冲击激励方法。进行设计实验以验证冲击激励方法,表明联合激发具有比单轴激励更好的激发效果。

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