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Dynamic Compensation of Ultra-Low-Range Pressure Sensors

机译:超低频压力传感器的动态补偿

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摘要

A technique has been developed to compensate pressure readings from arrays of highly sensitive membrane-type pressure sensors for deflections caused by acceleration normal to the plane of the membrane using a single inertial measurement unit. By normalizing the fourth-order unsteady Kirchoff-Love equation, it can be shown that inertial body pseudoforces and applied surface pressure elicit a similar and additive response from the sensors. Inertial effects arising from linear and angular acceleration as well as angular velocity may therefore be converted to 'pseudopressures' and eliminated by means of a simple linear compensation process which can be calibrated using only gravity. To demonstrate, signals from a conventional six-axis inertial measurement unit (including three orthogonal components each of angular velocity and linear acceleration) are used to provide an approximation of the acceleration of the sensing dies within a seven-channel distributed array of ultra-low pressure sensors. Applying the proposed correction reduces the maximum full-scale uncertainty of the measurements by as much as 50%.
机译:已经开发了一种技术以补偿高敏感膜型压力传感器阵列的压力读数,用于使用单个惯性测量单元对膜平面的加速度垂直引起的偏转。通过归一化第四阶的非惰性Kirchoff-Love等式,可以示出惯性体伪和施加的表面压力从传感器中引出类似的和附加响应。因此,从线性和角度加速以及角速度产生的惯性效应可以转换为“假主题”并通过简单的线性补偿过程消除,这可以仅使用重力校准。为了证明,来自传统的六轴惯性测量单元的信号(包括角速度和线性加速度的三个正交分量)用于提供超低七通道分布式阵列内的传感模具的加速度的近似压力传感器。应用提出的校正将测量的最大全面不确定性降低多达50%。

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