Robust, low-cost capacitive measurement system

US11193797B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11193797-B2
Application numberUS-201816482073-A
CountryUS
Kind codeB2
Filing dateJan 31, 2018
Priority dateJan 31, 2017
Publication dateDec 7, 2021
Grant dateDec 7, 2021

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A complex current measurement circuit for a guard-sense capacitive sensor includes a periodic signal voltage source, a differential transimpedance amplifier circuit (DTA) and a demultiplexer circuit (DMX). At least one sense antenna electrode of the capacitive sensor is electrically connectable to a signal input line of the DMX which has signal output lines electrically connected to differential signal input lines of the DTA. The DTA includes operational amplifiers having input ports each electrically connected to one of the signal output lines. For each differential signal input line, either a capacitor is electrically connected between an output port of the voltage source and the differential signal input line, wherein an impedance of the capacitor is close to zero Ohm, or a galvanic connection is provided to one of the signal output lines. An output signal provided by the DTA is usable for determining a complex sense current of the capacitive sensor.

First claim

Opening claim text (preview).

The invention claimed is: 1. A complex current measurement circuit that is configured to determine a complex sense current of a guard-sense capacitive sensor operated in loading mode, comprising: a periodic signal voltage source that is configured for providing a periodic electrical measurement signal at an output port that is electrically connectable to at least one guard antenna electrode of the capacitive sensor, a differential transimpedance amplifier circuit, comprising at least one electronic amplifier, at least two differential signal input lines and at least one signal output, a demultiplexer circuit comprising a demultiplexer, a signal input line, a plurality of signal output lines and a local oscillator for controlling switching operation, wherein at least one sense antenna electrode of the capacitive sensor is electrically connectable to the signal input line, and each one of the signal output lines is electrically connected to a different one of the at least two differential signal input lines of the differential transimpedance amplifier circuit, wherein when the demultiplexer circuit includes three signal output lines, the differential transimpedance amplifier circuit includes three operational amplifiers having a signal input port each, and wherein each signal output line of the demultiplexer circuit is electrically connected to a different one of the signal input ports of the three operational amplifiers; and when the demultiplexer circuit includes four signal output lines, the differential transimpedance amplifier circuit includes two differential amplifiers having two signal input ports each, and wherein each signal output line of the demultiplexer circuit is electrically connected to a different one of the signal input ports of the two operational amplifiers, and for each differential signal input line, either: a capacitor is electrically connected between the output port of the periodic signal voltage source and the differential signal input line, wherein an impedance of the capacitor at an operating frequency of the electrical measurement signal is lower than a predetermined value, or a galvanic connection is provided to a different one of the signal output lines of the demultiplexer circuit, wherein an output signal provided at the at least one differential signal output of the differential transimpedance amplifier circuit is usable for determining the complex sense current. 2. The complex current measurement circuit as claimed in claim 1 , wherein the electrical measurement signal is formed as a sinusoidal voltage signal having a fundamental frequency in a range between 10 kHz and 100 MHz. 3. The complex current measurement circuit as claimed in claim 1 , wherein the differential transimpedance amplifier circuit includes two or more operational amplifiers. 4. The complex current measurement circuit as claimed in claim 1 , wherein the operating or fundamental frequency of the electrical measurement signal is equal to a switching operation frequency of the demultiplexer circuit within predetermined tolerance margins. 5. The complex current measurement circuit as claimed in claim 1 , wherein the operating or fundamental frequency of the electrical measurement signal differs from a switching operation frequency of the demultiplexer circuit by a predetermined amount that is different from zero. 6. The complex current measurement circuit as claimed in claim 1 , wherein the differential transimpedance amplifier circuit includes at least one current conveyor analog electronic device. 7. The complex current measurement circuit as claimed in claim 6 , wherein the at least one current conveyor analog electronic device is built from discrete components. 8. A method for determining a complex sense current of a guard-sense capacitive sensor operated in loading mode using the complex current measurement circuit as claimed in claim 1 , the method comprising steps of: providing a periodic electric measurement signal to at least one guard antenna electrode of the capacitive sensor, setting a phase difference between the periodic signal voltage source and a switching operation of the demultiplexer circuit to a first phase value such that an absolute value of one of the phases is a priori known, then, determining a voltage at the differential signal output of the differential transimpedance amplifier circuit, then, setting a phase difference between the periodic signal voltage source and a switching operation of the demultiplexer circuit to a second phase value that is different from the first phase value, and then, determining a voltage at the differential signal output of the differential transimpedance amplifier circuit. 9. The method for determining a complex sense current according to claim 8 , wherein the steps of determining a voltage at the differential signal output comprises determining a voltage difference at the differential signal output. 10. The method as claimed in claim 8 , the method comprising steps of providing a periodic electric measurement signal to at least one guard antenna electrode of the capacitive sensor, then, determining a complex voltage difference at the differential signal output of the differential transimpedance amplifier circuit at a measuring frequency that is equal to a difference of the operating or fundamental frequency of the electrical measurement signal and the operating frequency of the local oscillator or a switching operation frequency of the demultiplexer circuit, then, electrically connecting a remotely-switchable reference impedance upstream of the signal input line of the demultiplexer circuit, and then, determining a complex voltage difference at the differential signal output of the differential transimpedance amplifier circuit at the measuring frequency. 11. The complex current measurement circuit as claimed in claim 1 , wherein the predetermined value of the impedance of the capacitor at the operating frequency of the electrical measurement signal is between 100 Ohm and 10 mOhm.

Assignees

Inventors

Classifications

  • G01D5/24Primary

    by varying capacitance · CPC title

  • Measuring current only · CPC title

  • Amplifier which being suitable for instrumentation applications · CPC title

  • the FBC comprising a resistor-capacitor combination and being coupled between the LC and the IC · CPC title

  • Two or more differential amplifiers in IC-block form are combined, e.g. measuring amplifiers · CPC title

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What does patent US11193797B2 cover?
A complex current measurement circuit for a guard-sense capacitive sensor includes a periodic signal voltage source, a differential transimpedance amplifier circuit (DTA) and a demultiplexer circuit (DMX). At least one sense antenna electrode of the capacitive sensor is electrically connectable to a signal input line of the DMX which has signal output lines electrically connected to differentia…
Who is the assignee on this patent?
Iee Sa
What technology area does this patent fall under?
Primary CPC classification G01D5/24. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Dec 07 2021 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).