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Real-Time, Advanced Electrical Filtering for Pressure Transducer Frequency Response Correction

机译:用于压力传感器频率响应校正的实时高级电气滤波

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The frequency response of a pressure transducer is influenced by the natural resonance of the sensor structure, the spatial resolution of the sensor due to its diaphragm size, the sensor packaging, signal conditioning and mounting at the measurement location. The resonance of the sensor and aerodynamically-driven resonances related to the sensor packaging and/or mounting, specifically, can distort dynamic pressure measurements within the range of greatest interest (10Hz-20kHz), typically resulting in erroneous amplification. Historically, correcting for such errors within the frequency response of a pressure transducer or measurement system has been challenging, because such errors are hard to quantify with unknown resonant frequencies and damping factors (quality factors). However, with the ability to fully characterize resonant frequencies that lie within 10Hz - 50kHz using a previously demonstrated dynamic pressure characterization methodology, it is possible to apply electrical filtering to substantially extend the flat (0±2dB) frequency response of a transducer before any digital signal conversion. In this work, we present a real-time frequency response compensation scheme that uses electrical filtering to correct for aerodynamically driven packaging or mounting related resonances while at the same time preventing signal distortion caused by the sensor resonances. The compensation extends the useable, flat amplitude bandwidth of the transducer while also correcting the phase response to maintain constant time delay over the extended bandwidth. This real-time frequency response correction scheme can be similarly used to compensate for chip resonances, which can limit the frequency response in applications such as shock and blast testing. A theoretical model of the frequency response correction methodology is presented. We additionally present temperature dependent experimental results that compare the frequency response with and without the correction scheme. These results demonstrate that the usable bandwidth of pressure transducers can be increased when real time, analog frequency response correction is applied. This work shows that if the frequency response of a transducer is well characterized, advanced signal conditioning can be implemented to substantially extend the flat bandwidth of the transducer without changes to the sensor, packaging or mounting.
机译:压力传感器的频率响应受传感器结构的固有共振,传感器的膜片尺寸,传感器封装,信号调节以及在测量位置的安装所引起的空间分辨率的影响。传感器的共振和与传感器的包装和/或安装有关的空气动力学驱动的共振,尤其会使动态压力测量值在最大关注范围(10Hz-20kHz)内失真,通常会导致错误的放大。从历史上看,在压力传感器或测量系统的频率响应范围内校正此类误差一直具有挑战性,因为很难用未知的共振频率和阻尼系数(品质因数)来量化此类误差。但是,由于能够使用先前演示的动态压力表征方法完全表征10Hz-50kHz范围内的谐振频率,因此可以在任何数字信号之前应用电滤波来充分扩展换能器的平坦(0±2dB)频率响应。信号转换。在这项工作中,我们提出了一种实时频率响应补偿方案,该方案使用电滤波来校正空气动力驱动的包装或安装相关的共振,同时防止由传感器共振引起的信号失真。该补偿扩展了换能器的可用的平坦幅度带宽,同时还校正了相位响应,以在扩展的带宽上保持恒定的时间延迟。这种实时频率响应校正方案可以类似地用于补偿芯片谐振,这会限制冲击和爆炸测试等应用中的频率响应。提出了频率响应校正方法的理论模型。我们还提出了温度相关的实验结果,比较了有无校正方案时的频率响应。这些结果表明,当应用实时模拟频率响应校正时,可以增加压力传感器的可用带宽。这项工作表明,如果能够很好地表征传感器的频率响应,则可以实施高级信号调节,以在不改变传感器,封装或安装的情况下,充分扩展传感器的平坦带宽。

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