首页> 外文会议>IMECE2009;ASME international mechanical engineering congress and exposition >INVESTIGATION AND MODIFICATION OF FREQUENCY RESPONSE FUNCTION USING DIGITAL FOURIER ANALYSIS FOR HIGH SPEED DYNAMIC TESTING FACILITY
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INVESTIGATION AND MODIFICATION OF FREQUENCY RESPONSE FUNCTION USING DIGITAL FOURIER ANALYSIS FOR HIGH SPEED DYNAMIC TESTING FACILITY

机译:基于数字傅里叶分析的频率响应函数对高速动态测试装置的研究和修正

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The increasing application of composites in the aviation and automobile industry demands a better understanding of composite material behavior under high loading rate. This shall provide a better insight of actual loads on occupants while preserving livable crashworthy structure. In this study, a high stroke rate MTS servo-hydraulic testing machine is used to characterize the behavior of composite materials at high strain rates. At higher stroke rates, the output of the load detection system acquired by the load cell deviates from the true load-time wave form of the specimen. This is due to the convolution of the structural response of the detection system with the true characteristic of the specimen. To identify the true nature of the specimen load-time behavior, the de-convolution of the detection system response is necessary to restore the specimen characteristic wave form closer to its true behavior. The convolution of data set in the time domain is a time consuming process which explains the benefit of using the frequency domain; as the convolution in time domain corresponds to multiplication in the frequency domain. This process requires the transformation of the time domain data to frequency domain data via Fast Fourier Transform (FFT). In the frequency domain the complex division of the Fourier transfer of the detection system output with frequency response function of the detection system shall provide the true complex input characteristic. This paper elaborates the methodology utilized for obtaining the Frequency Response Function (FRF) of the load detection system using digital Fourier analysis with a single input/output data set. This also emphasizes precautions and guidelines for improving results with FFT to obtain true FRF measurements of the load detection system. The FRF obtained is successfully used to identify the actual specimen wave formcharacteristic. This is achieved by extracting the structural response of the load detection system from the load cell output.
机译:复合材料在航空和汽车工业中的日益增长的应用要求更好地了解高负载率下复合材料的性能。这样可以更好地了解乘员的实际负担,同时保留宜居的防撞结构。在这项研究中,使用高行程速率MTS伺服液压测试机来表征高应变速率下复合材料的性能。在较高的冲程速率下,由称重传感器获取的载荷检测系统的输出会偏离样品的真实载荷时间波形。这是由于检测系统的结构响应与样本的真实特性发生了卷积。为了确定样本加载时间行为的真实性质,必须对检测系统响应进行去卷积,以使样本特征波形更接近其真实行为。在时域中对数据集进行卷积是一个耗时的过程,这说明了使用频域的好处。因为时域的卷积对应于频域的乘法。该过程需要通过快速傅立叶变换(FFT)将时域数据转换为频域数据。在频域中,检测系统输出的傅立叶传递的复数除法与检测系统的频率响应函数应提供真正的复数输入特性。本文阐述了使用具有单个输入/输出数据集的数字傅里叶分析来获得负载检测系统的频率响应函数(FRF)的方法。这也强调了预防措施和准则,以提高FFT的结果来获得负载检测系统的真实FRF测量值。成功获得的FRF已成功用于识别实际样本波形 特征。这是通过从称重传感器输出中提取负荷检测系统的结构响应来实现的。

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