PRESSURE SENSOR AND METHOD FOR OPERATING A PRESSURE SENSOR
20180372571 ยท 2018-12-27
Inventors
Cpc classification
G01L9/0042
PHYSICS
International classification
G01L9/00
PHYSICS
Abstract
Pressure sensor comprising a housing, a pressure sensor element arranged in the housing, a lighting means arranged in the housing, and a control/evaluation unit, wherein the pressure sensor element has a semiconductor material and a measuring membrane, wherein a first pressure is supplied to a first side of the measuring membrane and a second pressure to a second side of the measuring membrane, and the measuring membrane experiences a pressure-dependent deflection, wherein the lighting means provides an optical excitation of the pressure sensor element and the control/evaluation unit, based on a change of the electrical signal caused by the optical excitation, ascertains a static pressure value present in the first and/or second pressure and performs a correcting, or compensating, of the pressure measurement variable with the assistance of the static pressure value.
Claims
1-10. (canceled)
11. A pressure sensor for determining a pressure measurement variable, comprising: a housing; a pressure sensor element arranged in the housing, the pressure sensor element including a semiconductor material and a measuring membrane having at least one integrated resistance element, wherein the housing is configured to enable a first pressure to be applied to a first side of the measuring membrane and a second pressure to be applied to a second side of the measuring membrane, such that the measuring membrane experiences a pressure-dependent deflection; a light source arranged in the housing and adapted to provide an optical excitation of the pressure sensor element; and a control/evaluation unit configured to ascertain, using the integrated resistance element, an electrical signal for determining a pressure measurement variable, to determine a static pressure value from the first pressure and/or second pressure based on a change of the electrical signal caused by the optical excitation, and to perform a correcting, or compensating, of the pressure measurement variable using the static pressure value.
12. The pressure sensor of claim 11, wherein the optical excitation includes a plurality of individual optical pulses.
13. The pressure sensor of claim 11, wherein the measuring membrane includes additional integrated resistance elements and an additional light source is provided for each additional resistance element.
14. The pressure sensor of claim 11, wherein the light source is a light-emitting diode.
15. The pressure sensor of claim 11, wherein the optical excitation occurs cyclically, wherein during two cycles the control/evaluation unit uses the last determined static pressure value for the correcting or compensating.
16. A method for operating a pressure sensor, the method comprising: optically exciting a pressure sensor element of a pressure sensor using a light source, the pressure sensor further including: a housing, wherein the light source and the pressure sensor element are arranged in the housing, wherein the pressure sensor element includes a semiconductor material and a measuring membrane having at least one integrated resistance element, and wherein the housing is configured to enable a first pressure to be applied to a first side of the measuring membrane and a second pressure to be applied to a second side of the measuring membrane, such that the measuring membrane experiences a pressure-dependent deflection; and a control/evaluation unit configured to execute the method; determining a pressure measurement variable using the pressure sensor; using the control/evaluation unit, registering a change of an electrical signal from the at least one integrated resistance element caused by optically exciting the pressure sensor element; determining a static pressure value based on the change of the electrical signal using the control/evaluation unit; and correcting or compensating the pressure measurement variable of the pressure sensor based on the static pressure value using the control/evaluation unit.
17. The method of claim 16, wherein a plurality of individual optical pulses are used to optically excite the pressure sensor element and, for registering the change of the electrical signal, a plurality of individual electrical signal values are registered.
18. The method of claim 17, wherein the change of the electrical signal is determined by averaging the registered plurality of individual electrical signal values.
19. The method of claim 16, wherein the pressure sensor element is optically excited cyclically during measurement operation.
20. The method of claim 16, wherein the correcting, or compensating, is performed via a look-up table and/or a mathematical equation.
Description
[0024] The invention will now be explained in greater detail based on the appended drawing, the figures of which show as follows:
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[0036] The pressure sensor element 3 introduced into the housing 2 includes a semiconductor material, preferably silicon. Formed in the pressure sensor element 3, for example, by an etching process, is a measuring membrane 5. For determining a pressure measurement variable, for example, when the pressure sensor 1 is embodied as a relative pressure sensor, the measuring membrane 5 is fed a first pressure p.sub.1 on a first side, for example, an atmospheric pressure, and a second pressure p.sub.2 on a second side, for example, a media pressure to be measured, which contains a static pressure.
[0037] For registering a pressure dependent deflection produced by applying the pressures p.sub.1 and p.sub.2, the measuring membrane includes, in turn, four resistance elements 6, which are produced, for example, by doping the semiconductor material. The resistance elements 6 integrated in this way into the measuring membrane 5 are typically arranged in the edge region of the measuring membrane 5, in order to register the pressure-dependent deflection of the measuring membrane 5 in the form of a resistance change. Based on the resistance changes of the resistance elements 6, the pressure sensor 1 can ascertain, and output, a pressure measurement variable.
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[0041] The pressure sensor element is electrically connected with a sensor electronics, which includes especially a control/evaluation unit. Via the sensor electronics, the electrical signal, which results from the resistance change of the resistance elements 6 of the Wheatstone bridge 9, is converted into a pressure measurement variable.
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[0043] As is evident from
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[0046] Evident from the first to third measurement curves is that the photoelectric effect can be used for estimating the static pressure in a pressure sensor, so that with the assistance of a mathematical model the measurement error of a pressure sensor can be reduced. For this, for example, a correction function, such as shown in
[0047] For the correcting, or compensating, the control/evaluation unit 8 is designed to execute the method of the invention shown schematically in
LIST OF REFERENCE CHARACTERS
[0053] 1 pressure sensor
[0054] 2 housing
[0055] 3 pressure sensor element
[0056] 4 lighting means
[0057] 5 measuring membrane
[0058] 6 resistance element
[0059] 7 lighting means control unit
[0060] 8 control/evaluation unit
[0061] 9 Wheatstone bridge
[0062] 10 electrical signal
[0063] 11 first assembly
[0064] 12 second assembly
[0065] 13 hydraulic chamber interconnect
[0066] 14 fill nozzle
[0067] 15 TO-8 housing
[0068] 16 sensor electronics
[0069] 17 photodiode
[0070] p.sub.1 first pressure
[0071] p.sub.2 second pressure
[0072] U.sub.B bridge voltage