CA2629960C - Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor - Google Patents
Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor Download PDFInfo
- Publication number
- CA2629960C CA2629960C CA002629960A CA2629960A CA2629960C CA 2629960 C CA2629960 C CA 2629960C CA 002629960 A CA002629960 A CA 002629960A CA 2629960 A CA2629960 A CA 2629960A CA 2629960 C CA2629960 C CA 2629960C
- Authority
- CA
- Canada
- Prior art keywords
- capacitance
- calibration
- sensor
- measured
- measurement
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Active
Links
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D3/00—Indicating or recording apparatus with provision for the special purposes referred to in the subgroups
- G01D3/02—Indicating or recording apparatus with provision for the special purposes referred to in the subgroups with provision for altering or correcting the law of variation
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D5/00—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable
- G01D5/12—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means
- G01D5/14—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage
- G01D5/24—Mechanical means for transferring the output of a sensing member; Means for converting the output of a sensing member to another variable where the form or nature of the sensing member does not constrain the means for converting; Transducers not specially adapted for a specific variable using electric or magnetic means influencing the magnitude of a current or voltage by varying capacitance
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F23/00—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm
- G01F23/22—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water
- G01F23/26—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring variations of capacity or inductance of capacitors or inductors arising from the presence of liquid or fluent solid material in the electric or electromagnetic fields
- G01F23/263—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring variations of capacity or inductance of capacitors or inductors arising from the presence of liquid or fluent solid material in the electric or electromagnetic fields by measuring variations in capacitance of capacitors
- G01F23/266—Indicating or measuring liquid level or level of fluent solid material, e.g. indicating in terms of volume or indicating by means of an alarm by measuring physical variables, other than linear dimensions, pressure or weight, dependent on the level to be measured, e.g. by difference of heat transfer of steam or water by measuring variations of capacity or inductance of capacitors or inductors arising from the presence of liquid or fluent solid material in the electric or electromagnetic fields by measuring variations in capacitance of capacitors measuring circuits therefor
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F25/00—Testing or calibration of apparatus for measuring volume, volume flow or liquid level or for metering by volume
- G01F25/20—Testing or calibration of apparatus for measuring volume, volume flow or liquid level or for metering by volume of apparatus for measuring liquid level
- G01F25/24—Testing proper functioning of electronic circuits
Landscapes
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Fluid Mechanics (AREA)
- Electromagnetism (AREA)
- Thermal Sciences (AREA)
- Technology Law (AREA)
- Measurement Of Levels Of Liquids Or Fluent Solid Materials (AREA)
Abstract
Description
Backaround
Because of the correlation between capacitance and voltage, the parameter measured by a capacitance-type sensor can be determined from the voltage measured at the capacitor. In this disclosure, by way of example, the apparatus and method are described in relation to capacitance-type level sensors, but persons skilled in the technology will understand that the same apparatus and method can be applied to other applications with other types of capacitance-type sensors to improve the accuracy of a measured parameter.
and "cryogenic liquid" are used herein to respectively describe a fluid or a liquid that is at a cryogenic temperature.
Summary of the Invention
This is an advantage over other level sensors that require more instrumentation inside the storage vessel where it is more diffrcult to service, and where it is exposed to harsh operating conditions.
Brief Description of the Drawings
Detailed Description
Sometimes it can be difficult to know when a change in the measured capacitance is because of a drift in accuracy or because the liquid level has changed. The disclosed apparatus and method have been found to improve the accuracy of level sensing measurements by using a measurement circuit that comprises at least one calibration capacitor, which has a capacitance that is fixed and known. The microprocessor is programmed to calculate a correction value that is used to correct the measured level sensor capacitance based on the difference between the known capacitance and the measured capacitance of one or more calibration capacitors.
Because of the known relationship between the calibration voltage and the calibration capacitance, the calculated error is the difference between the measured voltage and the calibration voltage that is normally associated with the known calibration capacitance. If more than one calibration capacitor is employed to calculate the error at two calibration points, a linear extrapolation between the two calibration points can be used to calculate a correction value that is an estimation of the error at the measured voltage when the measurement circuit is connected to level sensor capacitor 110. Accordingly, the accuracy of the liquid level measurement can be improved by applying the correction value to the measured voltage to determine a corrected voltage, and from that microprocessor 130 can be programmed to calculate a corrected capacitance and a corrected liquid level measurement. Because the amount of error can vary depending upon the value of the measured voltage, using more than one calibration capacitor, each with a different known and fixed capacitance, improves the accuracy of the corrected capacitor sensor measurements across the measurement range. In a preferred apparatus the measurement circuit comprises a plurality of calibration capacitors and in a preferred method measurements are taken from a plurality of calibration capacitors to better estimate the error and the appropriate correction value to be applied to the sensor measurements. The two illustrative examples described in more detail with reference to Figures 2 through 6 each comprise a measurement circuit that comprises a plurality of calibration capacitors.
Figure 3 shows the portion of the measurement circuit that collects the data from the calibration capacitors and the level sensor capacitor. Figure 4 shows a plot of voltage versus capacitance which shows how the calibration measurements can be used to determine an error and calculate a correction value that is applied to the measurements from the level sensor capacitor to calculate a corrected liquid level measurement.
duty cycle has been found to be effective with the disclosed 'method. The measuring signal produced by microprocessor 230 is sent to measurement circuit 220 shown in Figure 2 within the dashed lines. In step 232 a PWM driver boosts the power of the measuring signal to provide the measuring signal with the needed load driving capability. In step 234 a slope control capacitor adjusts the slope of a plot of the voltage measured at the capacitor against capacitance (measured in farads). Slope is adjusted to select a voltage range that spans a corresponding voltage range that is associated with the measurable range of capacitance at level sensor capacitor 210 as well as the capacitance of low side calibration capacitor and high side calibration capacitor, these calibration capacitances typically already being within the measurable range of capacitance from level sensor capacitor 210. The selected voltage range is preferably near an optimal voltage range for best signal resolution, since there is normally a voltage range where signal resolution is maximized. In the tested prototypes the slope control capacitor was used to broaden the voltage range, but if the voltage range was increased too far beyond the optimal voltage range, the signal resolution decreased. That is, there is a limit to how much the voltage range should be increased. Because it can be difficult to select a voltage range that always maximizes the signal resolution for all capacitance measurements, the disclosed method teaches selecting a voltage range that is at or near the voltage range that delivers the maximum signal resolution.
While the capacitance of level sensor capacitor 210 is variable with changes in the liquid level inside the storage vessel, the calibration capacitors have a fixed and known capacitance and they are not disposed within the storage vessel. In preferred embodiments the calibration capacitors are on a circuit board with the other components of the measurement circuit. It is important that the same measurement circuit is used to measure the capacitance of both level sensor capacitor 210 and the calibration capacitors because this allows the errors introduced by the measurement circuit to be compensated for, in effect re-calibrating the liquid level measurements whenever measurements from the calibration capacitor(s) are taken and used to correct the liquid level measurements. As discussed previously, errors can be introduced into the data measured by the measurement circuit, for example, because of component degradation over time, measurement signal noise, and other influences such as changes in temperature. Accordingly, switch 236 is an important component of measurement circuit 220 because it allows the same components of measurement circuit 220 to collect data from both level sensor capacitor 210 and the calibration capacitors. In preferred embodiments there are at least two calibration capacitors, which are shown in the illustrated embodiment shown in Figures 2 through 4. With reference still to Figure 2, high side calibration capacitor 238 preferably has a fixed capacitance near the upper end of the capacitance range measurable by level sensor capacitor 210, corresponding to a condition when the storage vessel is full or close to being full, and low side calibration capacitor 240 preferably has a fixed capacitance near the lower end of the capacitance range measurable by level sensor capacitor 210, corresponding to when the liquid level is near the bottom of the storage vessel and the storage vessel is close to being empty. More calibration capacitors can be employed as will be explained in more detail with reference to the embodiment shown in Figures 5 and 6. The measurements taken by measurement circuit 220 when it is connected to the calibration capacitors are used to calculate a correction value that can be used to calibrate measurements taken from level sensor capacitor 210, which is mounted within the storage vessel in a known manner.
When measurement circuit 220 is connected to one of the capacitors, the measuring signal is sent to the connected capacitor and the voltage out is measured from the charged capacitor. The same measuring steps are repeated for each one of calibration capacitors 238 and 240, and level sensing capacitor 210. In step 242 a direct current offset, commonly known as a DC bias is applied to the voltage out signal so that the centre point of the voltage out signal is shifted a predetermined voltage. In step 244 a minimum voltage capture circuit captures the minimum voltage of the measurement signal ("Vm_min"), and in step 246 a maximum voltage capture circuit captures the maximum voltage of the measurement signal ("Vm_max"). In step 248 a differential amplifier is employed to calculate the difference between the maximum voltage of the measurement signal and the minimum voltage of the measurement signal, and then the calculated difference is multiplied by the gain. The gain can be a fixed value associated with the differential amplifier. The output from the differential amplifier is a measured voltage result ("Vm-result"), shown in Figure 2 as the Analog/Digital ("A/D") Input. That is, expressed as an equation, Vm_result = G
x (Vm_max - Vm_min), where G is the gain of the differential amplifier.
ref+" in Figure 2), and the A/D reference voltage - (shown as "A/D ref-" in Figure 2). The microprocessor uses the variable A/D ref+ and the A/D ref- to increase the signal resolution and the measurement accuracy. For example, if the A/D
reference voltage is fixed at 5 volts, the A/D resolution is 10 bits, and the measurement range is 1 Volt, resolution of the measured A/D signal =(A/D ref+
- A/D ref-)/21110 = 5000 mV / 1024 bits = 4.88 mV/bit. The "Accuracy" =
Resolution of A/D /(Vm_result max - Vm_result_ min) = 4.88 / 1000 = 0.488%.
If the A/D reference voltage is variable based on the range of measurement result, the improved resolution of the A/D signal =(A/D ref+ - A/D ref -)/2~10 =
1000 mV / 1024 bits = 0.98 mV/bit and the Accuracy = Resolution of A/D /
(Vm_result max - Vm_result min) = 0.98 / 1000 = 0.098%.
measurements from the charged calibration and level sensor capacitors. The embodiment shown in Figure 3 shows slope control capacitor 234, which has the same function described with reference Figure 2. Switch 236 is an analog switch that connects measurement circuit 220 to one of the calibration or level sensor capacitors. Like in the method steps of Figure 2, there is high side calibration capacitor 238, low side calibration capacitor 240 and level sensor capacitor 210.
Level sensor capacitor 210 is disposed inside the storage vessel, where it is immersible in the liquid stored therein, while the calibration sensors are not in contact with the liquid and are preferably disposed outside of the storage vessel.
When switch 236 connects the circuit to each of the capacitors, by measuring the voltage out for each capacitor when it is charged, as will be described with reference to Figure 4, the measured voltages can be used to detect an error and calculate a correction value from the calibration capacitor measurements that can be applied to the level sensor capacitor measurement to determine a corrected capacitance and/or a corrected liquid level measurement. The data that defines the predetermined relationships between the voltage and the capacitance of the calibration and level sensor capacitors can be stored in a reference table that can be accessed by the microprocessor.
[00401 Figure 4 is a graph that illustrates the disclosed method for a circuit that has two calibration capacitors like the embodiment shown in Figures 2 and 3.
The graph plots voltage out versus capacitance. This plot is not to scale and some features have been exaggerated to better illustrate the disclosed method.
Voltage out V9 is the baseline calibration voltage out that is expected when measurement circuit 220 is connected to low side calibration capacitor 240 and ~ -16-C1 is the known capacitance thereof. V1' is the voltage out that is actually measured when switch 236 connects low side calibration capacitor 240 to measurement circuit 220. Voltage out V2 is the baseline calibration voltage out that is expected when measurement circuit 220.is connected to high side calibration capacitor 238, and C2 is the known capacitance thereof. V2' is the voltage out that is actually measured when switch 236 connects high side calibration capacitor 238 to measurement circuit 220.
[0041] Curve 401 is a plot of the characteristic baseline relationship between voltage out and capacitance for level sensor capacitor 210. Line 402 is a linear plot through the intersections of V1 and C1, and V2 and C2, while line 403 is a linear plot through the intersections of V9' and Cl, and V2' and C2. The voltage difference between line 402 and 403 is the estimated correction value to be applied to the measured voltage to correct the measured voltage Vout to calculate Vcor that is used to calculate Ccor, which is the corrected value for the level sensor capacitance. That is, if Vout is not corrected, in the illustrated example, based upon predefined curve 401, the capacitance determined from measured voltage out Vout would be Cmea, which correlates to a higher liquid level than the actual liquid level which correlates more accurately to the liquid level associated with Ccor, which is determined from Vcor, which is calculated by subtracting Vdiff from Vout.
[0042] In a preferred method for the embodiment shown in Figures 2 through 4, by operating switch 236, three voltage measurements are taken each time the liquid level is measured. Plotted line 402 is predefined. Voltage out Vout is measured when measurement circuit 220 is connected to level sensor capacitor 210, but before this voltage is used to determine the level sensor capacitance and the liquid level, it is corrected by adding or subtracting Vdiff. Vdiff is the voltage difference between line 402 and 403 where Vout intersects with line 403.
Line 403 can be calculated from the measurements of V1' and V2' when the measurement circuit is connected to low side calibration capacitor 240 and high side calibration capacitor 238, respectively. In the example shown in Figure 4, for a given capacitance, the corresponding measured voltage associated with line 403 is higher than the corresponding calibration voltage associated with line 402. This means that to correct the measured voltage out associated with the level sensor capacitor, Vdiff must be subtracted from Vout to calculate Vcor.
If, unlike the illustrated example, line 403 happened to be below line 402 at Vout, then the voltage difference between the lines 402 and 403 would be added to Vout to calculate Vcor. Since curve 401 defines the relationship between voltage and capacitance for level sensor capacitor 210, based on this predefined relationship, which can be stored in a table accessible by the microprocessor, from the calculated value for Vcor or Ccor the liquid ievel can be more accurately determined. In Figure 4 the slightly bolder dashed line that has one end extending horizontally from Vout graphically demonstrates how Ccor is calculated using the disclosed method. The bolder dashed line steps down to Vcorfrom Vout, based on the calculated Vdiff, which is the difference between line 403 and 402 at the point where Vout intersects line 403, and using the intersection between Vcor and line 401 to determine the corrected capacitance Ccor instead of Cmea.
[0043] In embodiments like the preferred one shown in Figures 2 through 4, with only two calibration capacitors a linear approximation is used to calculate a capacitance correction value based upon the difference between baseline calibration plot 402 and measured values associated with plot 403. This apparatus and method have been found to adequately improve the accuracy of the liquid level sensor measurements, but in other embodiments, more than two calibration capacitors can be employed if there are more significant variations between the measured voltages and the calibration voltages across the measurement range. Generally, the use of more calibration capacitors improves the accuracy of corrected liquid level sensor measurements and the accuracy is greatest when the measured level sensor capacitance is at or near one of the known calibration capacitances.
[0044] To illustrate an example where more than two calibration sensors are employed, Figure 5 shows an embodiment wherein three calibration capacitors are employed, namely low side calibration capacitor 540, high side calibration capacitor 538 and intermediate calibration capacitor 539, which has a known and fixed capacitance between that of the other two calibration capacitors. Slope control capacitor 534, analog switch 536 and level sensor capacitor 510 function in the substantially the same way as the like-numbered components shown in Figure 3. Figure 6 is a plot of voltage versus capacitance for an embodiment that employs the measurement and calibration circuit shown in Figure 5. V3 is the baseline calibration voltage out that corresponds to known capacitance C3. As shown in this example, the values for V1', V2' and V3' are all lower than the corresponding values for V1, V2 and V3. This means that the measured voltages are lower than the baseline calibration so when applying the disclosed method in this example, the voltage difference between line 402 and 403 at the point where Vout intersects line 403 is added to Vout to calculate Vcor, which can then be used to calculate Ccor and liquid level based upon the predefined relationship characterized by plot 601 and the known relationship between level sensor capacitance and liquid level. In Figure 6, like in Figure 4, the slightly bolder dashed line that extends horizontally from Vout demonstrates graphically how Ccor is determined from Vout. That is, in this example, Vout is stepped up to Vcor because line 603 is below line 602 and the size of the step is the difference between lines 603 and 602 where Vout intersects line 603. Ccor is determined from the point where Vcor intersects line 601, and the corrected liquid level can be determined from Vcor or Ccor because of the known relationship between voltage, capacitance, liquid level.
[0045] When a measurement circuit has a plurality of calibration capacitors, to reduce the number of measurements that are taken to calculate the corrected liquid level, the microprocessor can be programmed to connect the liquid level sensor capacitor first, and then the microprocessor can be programmed to operate the switch to connect and take voltage out measurements from only the calibration capacitors with a known capacitance within a predetermined range of the measured level sensor capacitance. Accordingly, if a measurement circuit comprises several calibration capacitors, this technique can reduce the number of calibration measurements that are taken and the computational effort and time required of the microprocessor whenever a liquid level measurement is taken.
[0046] Other strategies can also be combined with the disclosed method. For example, the microprocessor can be programmed so that it does not re-calibrate the measurement circuit with each sensor data measurement, but only periodically on a timed basis, or only when the measured sensor data has changed from the previous measurement by more than a predetermined amount.
Different strategies can be combined with each other, for example, the microprocessor can be programmed to take measurements from the calibration capacitors and correct the measured sensor data at the earlier instance of:
(a) detecting a change in the measured sensor data from the previously measured sensor data that is greater than 0.5%; or (b) the passing of a predetermined amount of time since the last time measurements were taken from the calibration capacitors.
[0047] As shown by the illustrative examples, in the preferred embodiments a plurality of calibration capacitors are used because the error in the measured voltage can be different depending upon the value of the measured voltage, and by using at least two calibration capacitors, the measurement error can be better approximated across the voltage measurement range. However, not all applications require the same degree of accuracy across the entire measurement range and the number of calibration capacitors can be chosen to match the needs of the application. For example, for some applications the method can employ a single calibration capacitor to calculate the measured voltage error at a single point and then the correction value determined from this point can be applied to the voltage out measured when the measurement circuit is connected to the level sensor capacitor. Compared to embodiments that use more than one calibration capacitor, depending upon the sensor and the application, a circuit with only one calibration capacitor can be increasingly less accurate as the difference increases between the measured level sensor capacitance and the calibration capacitance, especially if the error is known to change across the measurement range. In addition, a circuit with only one calibration capacitor is less robust than circuits with a plurality of calibration capacitors should there be a problem with the one calibration capacitor. Nevertheless, for an application that only requires accurate level measurements near one point, for example, to determine when a storage vessel is empty, or near empty, the disclosed method can be employed with only one calibration capacitor, such as only a "low side"
calibration capacitor that has a fixed and known capacitance near the low end of the range of measurable level sensor capacitance values. For other applications it may be more important to accurately detect when the liquid level is high to control other systems, for example to prevent overfilling the storage vessel or to prevent wasting liquid that otherwise by-passes or overflows from the storage vessel. In such an application it can be acceptable to use only one calibration capacitor, for example, only a "high side" calibration capacitor that has a fixed and known capacitance near the high end of the range of measurable level sensor capacitance values. Figure 7 shows by way of example the data collection and processing steps for an embodiment that uses only one calibration capacitor, 739, which could be a low side calibration capacitor like 240 in Figure 2, or a high side calibration capacitor like 238 in Figure 2, depending upon the needs of the application. The rest of the reference numbers in Figure 7 that are the same as the reference numbers in Figure 2 refer to like steps and components.
[0048] In yet another embodiment, where the application is concerned mostly with determining when the storage vessel is empty and warning when the storage vessel is nearly empty, a plurality of calibration sensors can be employed, but instead of using a high side calibration capacitor, two or more calibration capacitors can be used, each with different fixed and known capacitances, with these capacitances all being closer to the low end of the measurable range of capacitance than to the high end of this range. This can deliver more accuracy than a single low side calibration capacitor and improved robustness should one of the calibration capacitors fail.
[0049] The disclosed apparatus and method has been described in relation to preferred illustrative embodiments. However, it will be apparent to persons skilled in the art that a number of variations and modifications can be made without departing from the scope of the invention as defined in the claims.
Claims (19)
a. ~a capacitance-type sensor for measuring a parameter;
b. ~a measurement circuit comprising:
i) ~a calibration capacitor with a known and fixed capacitance;
ii) ~a switch for selectively connecting the measurement circuit to one of the capacitance-type sensor or the calibration capacitor;
c. ~a microprocessor that is connected to the measurement circuit to send commands thereto and to receive data therefrom, wherein the microprocessor is programmed to:
i) ~command the position of the switch;
ii) ~determine an error between measured data that is collected by the measurement circuit when it is connected to the calibration capacitor, and predefined data associated with the known capacitance;
iii) ~calculate a correction value based on the error and measured data that is collected by the measurement circuit when it is connected to the capacitance-type sensor; and iv) ~determine a corrected data measurement by applying the correction value to measured data that is collected by the measurement circuit when it is connected to the capacitance-type sensor.
charging the capacitance-type sensor by connecting it to a measurement circuit and collecting measured sensor data correlating to the capacitance of the capacitance-type sensor when the capacitance-type sensor is charged;
charging a calibration capacitor, which has a known and fixed capacitance by connecting.it to the measurement circuit and collecting measured calibration data correlating to the capacitance of the calibration capacitor when the calibration capacitor is charged;
calculating an error between the measured calibration data and predefined calibration data that correlates to the known capacitance of the calibration capacitor;
calculating a correction value for the measured sensor data based on the calculated error alone or the calculated error in combination with and the measured sensor data; and calculating a corrected sensor measurement by applying the correction value to the measured sensor data.
Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA002629960A CA2629960C (en) | 2008-04-28 | 2008-04-28 | Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor |
| PCT/CA2009/000562 WO2009132437A1 (en) | 2008-04-28 | 2009-04-27 | Apparatus and method for improving the accuracy of measurements taken with a capacitance- type sensor |
| CN200980113815.8A CN102007424B (en) | 2008-04-28 | 2009-04-27 | Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor |
| AU2009242917A AU2009242917B2 (en) | 2008-04-28 | 2009-04-27 | Apparatus and method for improving the accuracy of measurements taken with a capacitance- type sensor |
| EP09737579.4A EP2271949B1 (en) | 2008-04-28 | 2009-04-27 | Apparatus and method for improving the accuracy of measurements taken with a capacitance- type sensor |
| US12/906,995 US9255831B2 (en) | 2008-04-28 | 2010-10-18 | Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA002629960A CA2629960C (en) | 2008-04-28 | 2008-04-28 | Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| CA2629960A1 CA2629960A1 (en) | 2008-08-06 |
| CA2629960C true CA2629960C (en) | 2009-12-08 |
Family
ID=39678600
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA002629960A Active CA2629960C (en) | 2008-04-28 | 2008-04-28 | Apparatus and method for improving the accuracy of measurements taken with a capacitance-type sensor |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US9255831B2 (en) |
| EP (1) | EP2271949B1 (en) |
| CN (1) | CN102007424B (en) |
| AU (1) | AU2009242917B2 (en) |
| CA (1) | CA2629960C (en) |
| WO (1) | WO2009132437A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10444054B2 (en) | 2013-11-28 | 2019-10-15 | Westport Power Inc. | Capacitance-type sensor probe |
Families Citing this family (29)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8281655B2 (en) | 2009-04-03 | 2012-10-09 | Eaton Corporation | Fuel gauging system utilizing a digital fuel gauging probe |
| US9856129B2 (en) * | 2010-10-18 | 2018-01-02 | Zonar Systems, Inc. | Method and apparatus for automatically monitoring fuel tank ullage in an automated fuel authorization program |
| US20140195046A1 (en) * | 2010-10-18 | 2014-07-10 | Zonar Systems, Inc. | Method and apparatus for automatically monitoring fuel tank ullage in an automated fuel authorization program |
| US10429228B2 (en) * | 2013-05-13 | 2019-10-01 | The Boeing Company | Fuel level measurement using in-tank measuring system |
| CA2819721C (en) * | 2013-06-27 | 2014-07-08 | Westport Power Inc. | Engine control apparatus |
| CN105021218B (en) * | 2014-04-17 | 2019-06-04 | 河北工业大学 | A water immersion calibration method for batch calibrator of digital soil temperature and humidity sensor |
| US10573540B2 (en) * | 2016-03-30 | 2020-02-25 | Shibaura Mechatronics Corporation | Substrate processing apparatus and substrate processing method |
| DE102017213432A1 (en) | 2017-08-02 | 2019-02-07 | Robert Bosch Gmbh | Method and device for determining the filling level in a tank for storing a fluid, tank |
| CN107518851B (en) * | 2017-08-02 | 2020-06-30 | 佛山市顺德区美的洗涤电器制造有限公司 | Dish washing machine and liquid level detection device and liquid level detection method thereof |
| WO2020022982A2 (en) * | 2018-02-08 | 2020-01-30 | Arzum Elektri̇kli̇ Ev Aletleri̇ San. Ve Ti̇c. A.Ş. | An apparatus for sensing liquid level, a device using the said apparatus, and a calibration method |
| DE112019002572T5 (en) * | 2018-05-23 | 2021-03-11 | Iee International Electronics & Engineering S.A. | Method for compensating a temperature influence in capacitive measurements |
| US12523514B2 (en) | 2019-02-21 | 2026-01-13 | Pankov Boris | Capacitive level sensor, sensitive element of the capacitive level sensor, electrode housing for the capacitive level sensor |
| CN110441615A (en) * | 2019-09-05 | 2019-11-12 | 湖南省计量检测研究院 | A kind of modification method of capacitor |
| US11493378B2 (en) * | 2020-09-22 | 2022-11-08 | Caterpillar Inc. | Fuel level measurement system for a machine |
| US12270695B2 (en) | 2020-10-19 | 2025-04-08 | Parker-Hannifin Corporation | Capacitive fuel gaging system with resistive elements |
| CN112378491A (en) * | 2020-11-13 | 2021-02-19 | 四川泛华航空仪表电器有限公司 | Method for measuring height of oil level of irregular oil tank |
| CN112345030A (en) * | 2020-11-30 | 2021-02-09 | 北京航天试验技术研究所 | Liquid level fault detection system and method |
| US11467020B1 (en) * | 2021-05-24 | 2022-10-11 | Simmonds Precision Products, Inc. | Method and apparatus for validating a capacitive fuel level sensor |
| CN113484375A (en) * | 2021-07-23 | 2021-10-08 | 中国水利水电科学研究院 | Octane number determination system based on differential comparison |
| CN114323195A (en) * | 2021-12-02 | 2022-04-12 | 淮阴工学院 | Capacitor level switch based on 555 time-base circuit |
| CN114813455B (en) * | 2022-03-11 | 2025-02-18 | 北京航天试验技术研究所 | A calibration method for low temperature medium density sensor |
| CN114323085B (en) * | 2022-03-11 | 2022-05-20 | 武汉熠微科技有限公司 | Detection device for capacitance liquid level sensor |
| CN115875600B (en) * | 2022-10-31 | 2025-07-08 | 中石化石油工程技术服务有限公司 | Main liquid container leakage liquid level detection and control system in three-wall normal-pressure full-capacity storage tank |
| CN115685038A (en) * | 2022-11-02 | 2023-02-03 | 云南电网有限责任公司电力科学研究院 | Testing system and testing method of broadband voltage sensor |
| CN115951288A (en) * | 2023-01-05 | 2023-04-11 | 珠海市奥德维科技有限公司 | Capacitance calibration system, method, device and storage medium |
| CN116429204B (en) * | 2023-04-07 | 2026-03-17 | 河海大学 | A paddy field water level monitoring device and monitoring method |
| US20250237589A1 (en) * | 2024-01-18 | 2025-07-24 | Sensia Netherlands B.V. | Systems and methods for a self-verifying capacitive sensor system |
| CN119023020B (en) * | 2024-10-22 | 2025-02-28 | 四川泛华航空仪表电器有限公司 | A multi-parameter compensation high-precision oil level sensor |
| CN119459304A (en) * | 2025-01-16 | 2025-02-18 | 东风汽车集团股份有限公司 | Fuel tank sway identification method, device, equipment and storage medium |
Family Cites Families (27)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3543046A (en) * | 1969-04-14 | 1970-11-24 | Fisher Governor Co | Capacitance-measuring techniques |
| US3648165A (en) * | 1970-09-24 | 1972-03-07 | Sun Oil Co | Capacitance-measuring apparatus including means maintaining the voltage across the unknown capacitance constant |
| FR2114226A5 (en) | 1970-11-20 | 1972-06-30 | Schlumberger Prospection | |
| US3735371A (en) * | 1971-06-02 | 1973-05-22 | Sun Oil Co Pennsylvania | Arrangement for multiplexing of a plurality of remotely-located capacitive probes |
| US4090408A (en) * | 1976-10-12 | 1978-05-23 | Hedrick Geoffrey S | Fluid quantity indicator |
| US4590575A (en) * | 1981-12-15 | 1986-05-20 | Robertshaw Controls Company | Dielectric compensated level control system for use in tanks containing substance |
| US4417473A (en) * | 1982-02-03 | 1983-11-29 | Tward 2001 Limited | Multi-capacitor fluid level sensor |
| US4448072A (en) * | 1982-02-03 | 1984-05-15 | Tward 2001 Limited | Fluid level measuring system |
| US4417472A (en) * | 1982-02-03 | 1983-11-29 | Tward 2001 Limited | Fluid level sensor |
| US4676100A (en) * | 1984-10-31 | 1987-06-30 | Berwind Corporation | Capacitance-type material level indicator |
| US4716536A (en) * | 1985-04-16 | 1987-12-29 | The Foxboro Company | Measurement calibration |
| US4723122A (en) * | 1985-10-25 | 1988-02-02 | Drexelbrook Controls, Inc. | Remotely calibratable instrument system |
| DE288215T1 (en) | 1987-04-24 | 1989-03-09 | Simmonds Precision Products, Inc., Tarrytown, N.Y. | DETERMINATION OF ELECTRICAL CAPACITY AND ELECTRICAL RESISTANCE. |
| US5404485A (en) * | 1993-03-08 | 1995-04-04 | M-Systems Flash Disk Pioneers Ltd. | Flash file system |
| US5541886A (en) * | 1994-12-27 | 1996-07-30 | Intel Corporation | Method and apparatus for storing control information in multi-bit non-volatile memory arrays |
| US5930167A (en) * | 1997-07-30 | 1999-07-27 | Sandisk Corporation | Multi-state non-volatile flash memory capable of being its own two state write cache |
| US6016697A (en) * | 1997-09-09 | 2000-01-25 | American Magnetics, Inc. | Capacitive level sensor and control system |
| US6469931B1 (en) * | 2001-01-04 | 2002-10-22 | M-Systems Flash Disk Pioneers Ltd. | Method for increasing information content in a computer memory |
| JP3631463B2 (en) * | 2001-12-27 | 2005-03-23 | 株式会社東芝 | Nonvolatile semiconductor memory device |
| US6522580B2 (en) * | 2001-06-27 | 2003-02-18 | Sandisk Corporation | Operating techniques for reducing effects of coupling between storage elements of a non-volatile memory operated in multiple data states |
| US6977646B1 (en) | 2001-11-30 | 2005-12-20 | 3M Innovative Properties Co. | Touch screen calibration system and method |
| US6847550B2 (en) * | 2002-10-25 | 2005-01-25 | Nexflash Technologies, Inc. | Nonvolatile semiconductor memory having three-level memory cells and program and read mapping circuits therefor |
| JP2005092923A (en) * | 2003-09-12 | 2005-04-07 | Renesas Technology Corp | Semiconductor memory device |
| KR100719380B1 (en) * | 2006-03-31 | 2007-05-18 | 삼성전자주식회사 | Multivalued flash memory device with improved reliability characteristics and memory system including the same |
| US7240690B2 (en) * | 2004-12-01 | 2007-07-10 | Torrent Trading Ltd. | Valve assembly with overfill protection device and capacitive liquid level gauge |
| EP1677084A1 (en) * | 2004-12-22 | 2006-07-05 | Roxer Industries S.A. | LIquid level sensor and method of estimation |
| WO2008064010A2 (en) * | 2006-11-13 | 2008-05-29 | Dtec Systems Llc | Fuel storage tank monitoring and phase separation detection system |
-
2008
- 2008-04-28 CA CA002629960A patent/CA2629960C/en active Active
-
2009
- 2009-04-27 WO PCT/CA2009/000562 patent/WO2009132437A1/en not_active Ceased
- 2009-04-27 AU AU2009242917A patent/AU2009242917B2/en not_active Ceased
- 2009-04-27 EP EP09737579.4A patent/EP2271949B1/en active Active
- 2009-04-27 CN CN200980113815.8A patent/CN102007424B/en active Active
-
2010
- 2010-10-18 US US12/906,995 patent/US9255831B2/en active Active
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US10444054B2 (en) | 2013-11-28 | 2019-10-15 | Westport Power Inc. | Capacitance-type sensor probe |
Also Published As
| Publication number | Publication date |
|---|---|
| AU2009242917A1 (en) | 2009-11-05 |
| WO2009132437A1 (en) | 2009-11-05 |
| WO2009132437A4 (en) | 2010-01-21 |
| AU2009242917B2 (en) | 2013-08-29 |
| CN102007424A (en) | 2011-04-06 |
| CA2629960A1 (en) | 2008-08-06 |
| US20110071777A1 (en) | 2011-03-24 |
| CN102007424B (en) | 2015-04-08 |
| EP2271949A4 (en) | 2016-03-30 |
| EP2271949A1 (en) | 2011-01-12 |
| US9255831B2 (en) | 2016-02-09 |
| EP2271949B1 (en) | 2017-08-09 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| AU2009242917B2 (en) | Apparatus and method for improving the accuracy of measurements taken with a capacitance- type sensor | |
| US6578416B1 (en) | Fuel system | |
| US7997132B2 (en) | Capacitive sensor assembly for determining relative position | |
| US20130298667A1 (en) | Apparatus and Method for Capacitive Fill Level Measurement | |
| US8161814B2 (en) | Self-calibrating capacitive transducer for determining level of fluent materials | |
| US20110276281A1 (en) | Apparatus for determining and/or monitoring a process variable of a medium | |
| US20110079078A1 (en) | Fuel Level Sensor | |
| US9383281B2 (en) | Fuel storage system and method for detecting a gas pressure therein | |
| KR101868841B1 (en) | Fuel level detecting apparatus using electric capacity | |
| US7421896B2 (en) | Variable frequency charge pump in capacitive level sensor | |
| US20230042239A1 (en) | Capacitive filling level probe without dead zone | |
| WO2010109317A1 (en) | Capacitive measurement of fuel level and dielectric constant | |
| US20100058844A1 (en) | Ethanol concentration sensor | |
| US20130233707A1 (en) | Sensor and sensor system | |
| KR20090125868A (en) | Capacitive fuel level detection device using tilt angle sensor | |
| WO2010092055A1 (en) | Motionless liquid level gauge having three electrodes | |
| KR20150002269A (en) | Water level sensing apparatus and Method for sensing water level | |
| JP2013108958A (en) | Liquid level detector | |
| US20240011857A1 (en) | Measuring arrangement and method for operating a measuring arrangement | |
| US11371871B2 (en) | Sensor unit, fluid power unit with sensor unit and method for measuring parameters of a fluid | |
| JP5507022B1 (en) | Capacitive fuel level gauge | |
| JP2012185074A (en) | Alcohol concentration detector | |
| KR20080002445U (en) | Liquid level detection sensor and liquid level detection device having the same | |
| HK1036651A (en) | Apparatus for measuring the flow of a medium to be measured through a measuring tube |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| EEER | Examination request | ||
| R00 | Party data change recorded |
Free format text: ST27 STATUS EVENT CODE: A-4-4-R10-R00-R116 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: APPOINTMENT OF AGENT REQUEST Effective date: 20240809 |
|
| R11 | Change to the name of applicant or owner or transfer of ownership requested |
Free format text: ST27 STATUS EVENT CODE: A-4-4-R10-R11-R127 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: TRANSFER RECORDAL REQUEST OR RESPONSE Effective date: 20241213 |
|
| W00 | Other event occurred |
Free format text: ST27 STATUS EVENT CODE: A-4-4-W10-W00-W111 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: CORRESPONDENT DETERMINED COMPLIANT Effective date: 20241213 |
|
| R00 | Party data change recorded |
Free format text: ST27 STATUS EVENT CODE: A-4-4-R10-R00-R119 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: REVOCATION OF AGENT REQUEST Effective date: 20250103 |
|
| W00 | Other event occurred |
Free format text: ST27 STATUS EVENT CODE: A-4-4-W10-W00-W111 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: CORRESPONDENT DETERMINED COMPLIANT Effective date: 20250103 |
|
| R14 | Transfer of ownership recorded |
Free format text: ST27 STATUS EVENT CODE: A-4-4-R10-R14-R129 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: TRANSFER REQUIREMENTS DETERMINED COMPLIANT Effective date: 20250225 |
|
| MPN | Maintenance fee for patent paid |
Free format text: FEE DESCRIPTION TEXT: MF (PATENT, 17TH ANNIV.) - STANDARD Year of fee payment: 17 |
|
| U00 | Fee paid |
Free format text: ST27 STATUS EVENT CODE: A-4-4-U10-U00-U101 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE REQUEST RECEIVED Effective date: 20250418 |
|
| U11 | Full renewal or maintenance fee paid |
Free format text: ST27 STATUS EVENT CODE: A-4-4-U10-U11-U102 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: MAINTENANCE FEE PAYMENT PAID IN FULL Effective date: 20250418 |
|
| R17 | Change to representative recorded |
Free format text: ST27 STATUS EVENT CODE: A-4-4-R10-R17-R117 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: APPOINTMENT OF AGENT REQUIREMENTS DETERMINED COMPLIANT Effective date: 20250423 Free format text: ST27 STATUS EVENT CODE: A-4-4-R10-R17-R121 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: REVOCATION OF AGENT REQUIREMENTS DETERMINED COMPLIANT Effective date: 20250423 |
|
| W00 | Other event occurred |
Free format text: ST27 STATUS EVENT CODE: A-4-4-W10-W00-W100 (AS PROVIDED BY THE NATIONAL OFFICE); EVENT TEXT: LETTER SENT Effective date: 20250423 |