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Features and Design Constraints for an Optimized SC Front-End Circuit for Capacitive Sensors With a Wide Dynamic Range

机译:适用于宽动态范围的电容式传感器的优化SC前端电路的特性和设计约束

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This paper presents optimization criteria for an integrated switched-capacitor front-end circuit for capacitive sensors with a wide dynamic range. The principle of the interface is based on the use of a relaxation oscillator. A negative-feedback circuit controls the charge-transfer speed to prevent the overload of the input amplifier for large input signals which thus enables a wide dynamic range of capacitor values. Moreover, it has been shown that the use of negative feedback can also result in much better noise performance. However, for the interface to function properly, there is a serious limitation for the value of a specific parasitic capacitance. Therefore, a method which extends the acceptable range of this parasitic capacitance is proposed. A novel method of linearity measurement which takes the influence of PCB parasitic capacitances into account, is also presented. The circuit has been designed and implemented in 0.7 $mu{hbox{m}}$ standard CMOS technology. The supply voltage is 5 V and the measured value for the supply current is about 1.4 mA. Experimental results show that for the capacitor range of 1 pF to 300 pF, application of negative feedback yields a linearity of about 50$,times 10 {-6}$ (14 bits) with a 16-bit resolution for a measurement time of 100 ms. Tests have been performed over the temperature range from $-{hbox{55}},{circ}{hbox{C}}$ to $+ {hbox{125}},{circ}{hbox{C}}$.
机译:本文提出了适用于动态范围宽的电容传感器集成开关电容前端电路的优化标准。接口的原理基于张弛振荡器的使用。负反馈电路控制电荷传输速度,以防止输入放大器对大输入信号造成过载,从而实现宽动态范围的电容值。而且,已经表明,使用负反馈还可以导致更好的噪声性能。但是,为了使接口正常工作,特定寄生电容的值受到严重限制。因此,提出了一种扩展该寄生电容的可接受范围的方法。还提出了一种新的线性度测量方法,该方法考虑了PCB寄生电容的影响。该电路已采用0.7μmu{hbox {m}} $标准CMOS技术进行设计和实现。电源电压为5 V,电源电流的测量值约为1.4 mA。实验结果表明,在1 pF至300 pF的电容器范围内,施加负反馈会产生大约50 $的线性度,乘以10 {-6} $(14位),具有16位分辨率,测量时间为100多发性硬化症。已在$-{hbox {55}},{circ} {hbox {C}} $至$ + {hbox {125}},{circ} {hbox {C}} $的温度范围内执行测试。

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