有轨电车车轮零件动力学参数的确定,采用数值和实验模态分析方法

Q2 Engineering Archives of Transport Pub Date : 2023-09-30 DOI:10.5604/01.3001.0053.7357
Julia Milewicz, Krzysztof Kołodziejczak, T. Nowakowski, Grzegorz M. Szymański
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引用次数: 0

摘要

动态参数分析在与机器技术状态评估有关的过程中得到了有效的应用。大众运输车辆尤其注重通过相关的设计和诊断来维持适当的交通安全水平。数值与实验相结合的方法提高了模态特性研究的效率,可以作为诊断参数。在研究过程中,作者对安装在Konstal 105Na有轨电车上的车轮轮辋和内盘组成的系统进行了数值模型,该有轨电车在波兰许多城市广泛使用,经常受到维修和翻新过程的影响。然后在SOLIDWORKS中进行时间响应分析(也称为模态时程分析),得到给定点处物体振动对脉冲激励的时域响应信息。然后在MATLAB中对这些信号进行处理,以确定自振频率和阻尼比。MATLAB中的处理参数对应于在BK Connect环境中使用冲击模态锤和压电换能器进行的实验测量的分析设置。在对实验测量结果进行分析时,采用了快速傅立叶变换、频响函数和复模态指示函数(并给出了其理论基础和实际应用意义)。最后,将实验结果与仿真结果进行了比较。这种比较可以获得冲击振动响应的频率特性,并确定实际物体的动态参数。在0 ~ 3000hz的频率范围内确定了6个固有振动频率,以及它们的阻尼比和模态间的自相关指标。确定并解释了数值结果与实验结果之间的相似之处和潜在差异来源,然后对所提出的研究方法在行业中的实际应用进行了总结。
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Determination of dynamic parameters of a tram wheel parts in a numerical and experimental modal analysis
The analysis of dynamic parameters finds effective application in processes related to the assessment of the technical condition of machines. Mass transport vehicles are particularly sensitive to maintaining an appropriate level of traffic safety through relevant design and diagnostics. The combination of numerical and experimental methods increases the efficiency of modal properties investigations, which can be used as diagnostic parameters. During the research, the authors performed a numerical model of a system composed of a rim and an inner disc of a wheel fitted in a Konstal 105Na tram, widely used in many polish cities and frequently subjected to repair and renovation processes. The Time Response analysis in SOLIDWORKS (also called Modal Time History) was then conducted, resulting in obtaining information about object vibration response in time domain to the impulsive excitation at given points. These signals were then processed in MATLAB aiming at determining the frequencies of natural vibration and damping ratios. The processing parameters in MATLAB were corresponding to the analysis settings of the experimental measurement, carried out within the BK Connect environment, with an impact modal hammer and piezoelectric transducers. When analyzing the experimental measurements, the authors applied Fast Fourier Transformation, Frequency Response Function and Complex Mode Indicator Function (the theoretical basis of which and practical sense of application were also presented in the paper). Finally, the results of the experiment were compared with simulation outcomes. This comparison allowed the obtainment of frequency characteristics of the vibration response to the impact and the deter-mination of the dynamic parameters of the actual object. Six frequencies of natural vibrations were determined in the frequency range of 0 to 3000 Hz, as well as their damping ratios and autocorrelation indicators between modes. Similarities and potential sources of differences between the numerical and the experimental results were identified and explained, followed by conclusions on the practical application of the presented research methodology in the industry.
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来源期刊
Archives of Transport
Archives of Transport Engineering-Automotive Engineering
CiteScore
2.50
自引率
0.00%
发文量
26
审稿时长
24 weeks
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