Signal processing circuit, control device, environment forming device, and signal processing method
The signal processing circuit addresses the challenge of detecting accuracy deterioration in voltage measuring devices by comparing reference and actual correspondence relationships between voltage and frequency data, facilitating easy error detection and correction.
Patent Information
- Application Number
- JP2022095773
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-14
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2042-06-14
AI Technical Summary
Existing voltage measuring devices lack a mechanism to detect deterioration in conversion accuracy of AD conversion circuits due to aging, necessitating cumbersome periodic accuracy inspections using high-precision reference devices.
A signal processing circuit that includes a first conversion unit for converting voltage measurement values into voltage data, a second conversion unit for converting these values into frequency data, a holding unit for storing a reference correspondence relationship between voltage and frequency values, and a signal processing unit that detects errors by comparing the reference relationship with the actual correspondence relationship between voltage and frequency data.
Enables easy detection of a decrease in conversion accuracy due to aging, eliminating the need for frequent and cumbersome accuracy inspections, and allows for accurate correction of voltage values based on detected deviations.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to a signal processing circuit, a control device, an environment creating device, and a signal processing method. [Background technology]
[0002] A voltage measuring device according to the background art is disclosed, for example, in the following Patent Document 1. In this voltage measuring device, a measured voltage is first amplified by an amplifier circuit, then converted into digital data by an AD conversion circuit, and then input to a microprocessor. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 57-108759 Summary of the Invention [Problem to be solved by the invention]
[0004] The voltage measuring device according to the background art does not have a function for detecting deterioration in conversion accuracy of a voltage measuring circuit such as an AD conversion circuit caused by aging, etc. Therefore, it is necessary to periodically carry out accuracy inspections using traceable high-precision reference devices, etc., which is a cumbersome task.
[0005] The present invention has been made in consideration of the above circumstances, and aims to provide a signal processing circuit, a control device, an environment forming device, and a signal processing method that are capable of easily detecting a decrease in the accuracy of conversion from a voltage measurement value to voltage data due to deterioration over time, etc. [Means for solving the problem]
[0006] A signal processing circuit according to a first aspect of the present invention includes a first conversion unit that converts a voltage measurement value input from a measurement unit into voltage data and outputs it, a second conversion unit that converts the voltage measurement value input from the measurement unit into frequency data and outputs it, a holding unit that holds a first correspondence relationship which is a reference correspondence relationship between a voltage value indicated by the voltage data and a frequency value indicated by the frequency data, and a signal processing unit that detects an error when a second correspondence relationship which is a correspondence relationship between a voltage value indicated by the voltage data input from the first conversion unit and a frequency value indicated by the frequency data input from the second conversion unit differs from the first correspondence relationship.
[0007] According to the first aspect, the signal processing unit detects an error when the second correspondence relationship between the voltage value indicated by the voltage data input from the first conversion unit and the frequency value indicated by the frequency data input from the second conversion unit differs from the first correspondence relationship which is the reference correspondence relationship. Therefore, it is possible to easily detect a decrease in the conversion accuracy of the first conversion unit due to aging or the like.
[0008] A signal processing circuit according to a second aspect of the present invention is the signal processing circuit according to the first aspect, further comprising an acquisition unit that acquires time series data for the current time from an external source, and the signal processing unit generates a reference clock of a predetermined frequency based on the time series data input from the acquisition unit, and calculates the frequency value of the frequency data based on the reference clock and the frequency data input from the second conversion unit.
[0009] According to the second aspect, the signal processing unit generates a reference clock based on time series data of the current time acquired from the outside, and by using the reference clock, it is possible to more accurately calculate the frequency value of the frequency data input from the second conversion unit.
[0010] A signal processing circuit according to a third aspect of the present invention is the signal processing circuit according to the first or second aspect, wherein the signal processing unit corrects the voltage value indicated by the voltage data based on the amount of deviation between the first correspondence relationship and the second correspondence relationship.
[0011] According to the third aspect, the signal processing unit can easily correct the voltage value indicated by the voltage data, based on the amount of deviation between the first correspondence relationship and the second correspondence relationship.
[0012] A control device according to a fourth aspect of the present invention includes the signal processing circuit according to any one of the first to third aspects.
[0013] According to the fourth aspect, in the control device, it becomes possible to easily detect a decrease in the conversion accuracy of the first conversion unit caused by aging or the like.
[0014] An environment forming device according to a fifth aspect of the present invention includes the control device according to the fourth aspect.
[0015] According to the fifth aspect, in the environment creating device, it is possible to easily detect a decrease in the conversion accuracy of the first conversion unit caused by aging or the like.
[0016] A signal processing method according to a sixth aspect of the present invention includes a signal processing circuit that converts voltage measurement values input from a measurement unit into voltage data, converts the voltage measurement values input from the measurement unit into frequency data, retains a first correspondence relationship which is a reference correspondence relationship between the voltage values indicated by the voltage data and the frequency values indicated by the frequency data, and detects an error when a second correspondence relationship which is a correspondence relationship between the voltage values indicated by the voltage data and the frequency values indicated by the frequency data differs from the first correspondence relationship.
[0017] According to the sixth aspect, the signal processing circuit detects an error when the second correspondence relationship between the voltage value indicated by the voltage data and the frequency value indicated by the frequency data differs from the first correspondence relationship which is the reference correspondence relationship. This makes it possible to easily detect a decrease in the accuracy of conversion from the voltage measurement value to the voltage data due to aging or the like. Effect of the Invention
[0018] According to the present invention, it is possible to easily detect a decrease in the accuracy of conversion from a voltage measurement value to voltage data caused by aging or the like. [Brief description of the drawings]
[0019] [Figure 1] FIG. 1 is a simplified diagram showing the overall configuration of an environmental testing device according to a first embodiment. [Diagram 2] 1 is a diagram showing a simplified configuration of a signal processing circuit according to a first embodiment. [Diagram 3] FIG. 13 is a diagram showing a simplified configuration of a signal processing circuit according to a second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0020] Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. In addition, elements with the same reference numerals in different drawings indicate the same or corresponding elements.
[0021] First Embodiment 1 is a simplified diagram showing the overall configuration of an environmental testing device 1 according to a first embodiment of the present invention. The environmental testing device 1 includes a control device 11, an environmental control unit 12, a storage unit 13, an input unit 14, and a display unit 15.
[0022] The control device 11 has a signal processing circuit 21. The signal processing circuit 21 is configured using a microprocessor or the like.
[0023] The environment control unit 12 is configured using a heating device, a cooling device, a humidifying device, a dehumidifying device, and the like. The environment control unit 12 controls the temperature, or the temperature and humidity, of the environment in the storage unit 13 by drive control from the control device 11. The above configuration of the environment control unit 12 is an example, and can be changed depending on the controlled object of the environment in the storage unit 13. For example, if the controlled object of the environment is only the temperature, the environment control unit 12 may be configured using only a heating device. The environment control unit 12 may also control the pressure of the environment in the storage unit 13. In this case, the environment control unit 12 may be configured using a decompressor and / or a pressurizer, and the like.
[0024] The accommodation unit 13 is a chamber surrounded by a heat-insulating housing, and accommodates therein an object W. The object W is, for example, an electronic component such as a circuit board.
[0025] The measuring unit 40 is disposed inside the storage unit 13. The measuring unit 40 is configured using a temperature sensor, a humidity sensor, or a pressure sensor. The temperature sensor is configured using a thermocouple or a resistance temperature detector, etc., and measures the temperature of the environment inside the storage unit 13. The measuring unit 40 may further include a temperature sensor (not shown) that measures the temperature of the refrigeration circuit of the refrigeration device and / or the dehumidification device of the environment control unit 12. The humidity sensor is, for example, a resistance-type humidity sensor, and measures the humidity of the environment inside the storage unit 13. The pressure sensor is configured using a pressure-sensitive element, etc., and measures the pressure inside the chamber when the storage unit 13 is a vacuum chamber, etc. The pressure sensor may be one that measures the safety pressure of the refrigeration circuit of the refrigeration device and / or the dehumidification device of the environment control unit 12 (not shown). The measuring unit 40 outputs a voltage value according to the measured object, or outputs a current value or a resistance value according to the measured object. When the measuring unit 40 outputs a current value or a resistance value, the output current value or resistance value is converted into a voltage value by a current-voltage conversion circuit or a resistance-voltage conversion circuit (not shown).
[0026] The input unit 14 is configured using an operation switch, a touch panel, etc. The display unit 15 is configured using a liquid crystal display, an organic EL display, etc. By using a touch panel type display, etc., the input unit 14 and the display unit 15 may be configured as one unit.
[0027] The environmental test device 1 is an example of an environment forming device. The environmental test device 1 evaluates the performance of the object W by applying temperature stress, or temperature stress and humidity stress, to the object W. However, the environment forming device may be a heat treatment device or the like that performs heat treatment such as heating on the object W, or may be a vacuum heating device or the like that performs pressure treatment such as reducing pressure on the object W.
[0028] 2 is a diagram showing a simplified configuration of the signal processing circuit 21 according to the first embodiment. The signal processing circuit 21 includes a first conversion unit 31, a second conversion unit 32, a holding unit 33, and a signal processing unit 34. Note that the signal processing circuit 21 may include a signal amplification unit (not shown) configured using an amplifier circuit, etc., in a stage preceding the first conversion unit 31 and the second conversion unit 32.
[0029] The first conversion unit 31 is configured using an ADC (Analog to Digital Converter). The first conversion unit 31 converts a voltage measurement value D1, which is an analog signal input from the measurement unit 40, into voltage data D2, which is a digital signal, and outputs the voltage data D2. The voltage data D2 output from the first conversion unit 31 is input to the signal processing unit 34. The voltage measurement value D1 may be a voltage value output by the measurement unit 40, or may be a voltage value converted from a current value or resistance value output by the measurement unit 40.
[0030] The second conversion unit 32 is configured using a VFC (Voltage to Frequency Converter). The second conversion unit 32 converts the voltage measurement value D1, which is an analog signal input from the measurement unit 40, into frequency data D3 of a pulse train, which is a digital signal, and outputs the frequency data D3. For example, the smaller the voltage measurement value D1, the lower the frequency of the pulse train, and the larger the voltage measurement value D1, the higher the frequency of the pulse train. The frequency data D3 output from the second conversion unit 32 is input to the signal processing unit .
[0031] The holding unit 33 is configured using a non-volatile semiconductor memory or the like. The holding unit 33 holds a first correspondence relationship which is a reference correspondence relationship between a voltage value indicated by the voltage data D2 and a frequency value indicated by the frequency data D3. The first correspondence relationship is table information or function information or the like indicating a correspondence relationship between a plurality of voltage values and a plurality of frequency values. The first correspondence relationship may be created in advance using a traceable high-precision voltage generator before aging occurs in the ADC or the like of the first conversion unit 31 and the VFC of the second conversion unit 32, or may be created in advance using product specification information of the ADC and the VFC. Data D4 indicating the first correspondence relationship is input from the holding unit 33 to the signal processing unit 34.
[0032] The signal processing unit 34 is configured using a processor such as a CPU. The signal processing unit 34 creates a second correspondence relationship between the voltage value indicated by the voltage data D2 input from the first conversion unit 31 and the frequency value indicated by the frequency data D3 input from the second conversion unit 32 during the execution period of the environmental test by the environmental test device 1. The signal processing unit 34 compares the created second correspondence relationship with the first correspondence relationship indicated by the data D4 input from the holding unit 33. If the second correspondence relationship is the same as the first correspondence relationship as a result of the comparison, the signal processing unit 34 judges it to be normal, and if the second correspondence relationship is different from the first correspondence relationship, it judges it to be abnormal and detects an error. The signal processing unit 34 may set an error tolerance range for the first correspondence relationship in advance and judge it to be abnormal if the difference between the second correspondence relationship and the first correspondence relationship exceeds this error tolerance range. This makes it possible to avoid frequent abnormality judgments due to minute noise, etc.
[0033] When an error is detected, the signal processing unit 34 displays a warning such as a text message or a graphic notifying the occurrence of the error on the display unit 15. This warning may include information indicating the amount of deviation between the first correspondence relationship and the second correspondence relationship. By displaying the warning on the display unit 15, the operator can determine whether to continue the environmental test or to redo it. Note that the manner of notifying the occurrence of the error is not limited to a display on the display unit 15, and may also be a warning announcement or a warning sound output from a speaker (not shown).
[0034] Furthermore, when an error is detected, the signal processing unit 34 may record flag information indicating that an error is being detected in the error detection period together with time information, etc., in the storage unit 33. This allows the error detection period to be identified after the fact within the execution period of the environmental test by the environmental test device 1, and the information can be used for the analysis of defective lots, etc.
[0035] According to the signal processing circuit 21 of the first embodiment, the signal processing unit 34 detects an error when the second correspondence relationship between the voltage value indicated by the voltage data D2 input from the first conversion unit 31 and the frequency value indicated by the frequency data D3 input from the second conversion unit 32 differs from the first correspondence relationship which is the reference correspondence relationship. Therefore, it becomes possible to easily detect a decrease in the conversion accuracy of the first conversion unit 31 caused by aging deterioration or the like.
[0036] <Second embodiment> 3 is a diagram showing a simplified configuration of a signal processing circuit 21 according to the second embodiment. The signal processing circuit 21 includes a first conversion unit 31, a second conversion unit 32, a holding unit 33, a signal processing unit 34, and an acquisition unit 35.
[0037] The acquisition unit 35 is configured using a receiver for standard radio waves from a radio-controlled clock or a receiver for GPS signals. The standard radio waves or GPS signals contain current time information. The acquisition unit 35 continuously receives the standard radio waves or GPS signals to acquire time series data D5 of the current time from outside. The time series data D5 is input from the acquisition unit 35 to the signal processing unit 34.
[0038] The signal processing unit 34 generates a reference clock of a predetermined frequency based on the time series data D5 input from the acquisition unit 35. The predetermined frequency is, for example, 1 Hz. This 1 Hz reference clock is not traceable, but can be regarded as extremely accurate reference information.
[0039] The signal processing unit 34 calculates a frequency value of the frequency data D3 based on the pulse train of the generated 1 Hz reference clock and the pulse train of the frequency data D3 input from the second conversion unit 32. The signal processing unit 34 calculates the frequency value of the frequency data D3 as, for example, the reciprocal of the ratio of the period of the pulse train of the frequency data D3 to the period of the pulse train of the 1 Hz reference clock.
[0040] The signal processing unit 34 creates a second correspondence relationship between the voltage value indicated by the voltage data D2 input from the first conversion unit 31 and the frequency value calculated based on the reference clock and the frequency data D3 input from the second conversion unit 32 during the execution period of the environmental test by the environmental test device 1. The signal processing unit 34 compares the created second correspondence relationship with the first correspondence relationship indicated by the data D4 input from the holding unit 33. If the second correspondence relationship is the same as the first correspondence relationship as a result of the comparison, the signal processing unit 34 judges that the first conversion unit 31 is normal, and if the second correspondence relationship is different from the first correspondence relationship, the signal processing unit 34 judges that an abnormality has occurred in the first conversion unit 31 and detects an error. The signal processing unit 34 may set an error tolerance range for the first correspondence relationship in advance and judge that an abnormality has occurred when the difference between the second correspondence relationship and the first correspondence relationship exceeds this error tolerance range. This makes it possible to avoid frequent abnormality judgments due to minute noise, etc.
[0041] When an error is detected, the signal processing unit 34 displays a warning such as a text message or a graphic notifying the occurrence of the error on the display unit 15. This warning may include information indicating the amount of deviation between the first correspondence relationship and the second correspondence relationship. By displaying the warning on the display unit 15, the operator can determine whether to continue or redo the environmental test. The manner of notifying the occurrence of the error is not limited to display on the display unit 15, but may also be a warning announcement or an alarm sound output from a speaker (not shown). In addition, this warning may include a message asking whether or not to execute a correction process for the deviation. When a response to execute the correction process for the deviation is input from the input unit 14, the signal processing unit 34 executes a correction process of adding or subtracting a voltage value corresponding to the amount of deviation between the first correspondence relationship and the second correspondence relationship to or from the voltage value indicated by the voltage data D2 input from the first conversion unit 31. The timing of the deviation correction process may be selected by the operator through the input operation of the input unit 14, either during the execution period of the environmental test by the environmental test device 1 or after the execution period of the environmental test by the environmental test device 1 is completed. By executing the correction process during the execution period of the environmental test, the deviation can be eliminated early. On the other hand, by executing the correction process after the execution period of the environmental test is completed, it is possible to avoid the output value of the first conversion unit 31 being changed stepwise during the execution of the environmental test. The signal processing unit 34 may automatically execute the correction process without including an inquiry message as to whether or not to execute the deviation correction process. The deviation correction process by the signal processing unit 34 may be executed in the first embodiment, not limited to the second embodiment.
[0042] Furthermore, when an error is detected, the signal processing unit 34 may record flag information indicating that it is an error detection period together with time information and the like in the holding unit 33. This allows the error detection period to be identified after the fact within the execution period of the environmental test by the environmental test device 1, and the information can be used for analysis of defective lots and the like. This flag information may also include information indicating the amount of deviation between the first correspondence relationship and the second correspondence relationship. This allows the amount of deviation to be accurately corrected after the fact. The process of recording the flag information by the signal processing unit 34 is not limited to the second embodiment, and may be performed in the above-mentioned first embodiment.
[0043] According to the signal processing circuit 21 of the second embodiment, the signal processing unit 34 generates a reference clock based on the time series data D5 of the current time acquired from the outside, and by using the reference clock, it becomes possible to accurately calculate the frequency value of the frequency data D3 input from the second conversion unit 32.
[0044] Furthermore, according to the signal processing circuit 21 of the second embodiment, the signal processing unit 34 is able to easily correct the voltage value indicated by the voltage data D2 based on the amount of deviation between the first correspondence relationship and the second correspondence relationship. [Explanation of symbols]
[0045] 1 Environmental testing equipment 11 Control device 21 Signal processing circuit 31 First conversion unit 32 Second conversion section 33 Holding part 34 Signal Processing Section 35 Acquisition Department 40 Measuring part
Claims
1. A first conversion unit that converts a voltage measurement value input from a measurement unit into voltage data and outputs it; A second conversion unit that converts the voltage measurement value input from the measurement unit into frequency data and outputs it; A holding unit that holds a first correspondence relationship, which is a reference correspondence relationship between the voltage value indicated by the voltage data and the frequency value indicated by the frequency data; A signal processing unit that detects an error when a second correspondence relationship, which is a correspondence relationship between the voltage value indicated by the voltage data input from the first conversion unit and the frequency value indicated by the frequency data input from the second conversion unit, is different from the first correspondence relationship; A signal processing circuit comprising the above.
2. The signal processing circuit further comprises an acquisition unit that acquires time-series data of the current time from outside the signal processing circuit, The signal processing unit, Generates a reference clock of a predetermined frequency based on the time-series data input from the acquisition unit, The signal processing circuit according to claim 1, wherein the frequency value of the frequency data is calculated based on the reference clock and the frequency data input from the second conversion unit.
3. The signal processing unit corrects the voltage value indicated by the voltage data based on the deviation amount between the first correspondence relationship and the second correspondence relationship. The signal processing circuit according to claim 2.
4. A control device that performs drive control of an environment control unit that controls the environment inside the housing unit in which the measurement unit is disposed, Comprising the signal processing circuit according to any one of claims 1 to 3, A control device in which the signal processing circuit detects the error.
5. A housing unit in which the measurement unit is disposed and that houses an object, An environment control unit that controls the environment inside the housing unit, The control device according to claim 4 that performs drive control of the environment control unit, An environment forming device comprising the above.
6. The signal processing circuit, Converts the voltage measurement value input from the measurement unit into voltage data, Converts the voltage measurement value input from the measurement unit into frequency data, Holds a first correspondence relationship, which is a reference correspondence relationship between the voltage value indicated by the voltage data and the frequency value indicated by the frequency data, Detects an error when a second correspondence relationship, which is a correspondence relationship between the voltage value indicated by the voltage data and the frequency value indicated by the frequency data, is different from the first correspondence relationship. A signal processing method.
Citation Information
Patent Citations
Voltage measuring device
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Method for the Secure Acquisition of Multiple Analog Input Signals, Analog Input Circuit, and Measuring Sensor and Measuring Transducer Having an Analog Input Circuit of This Type
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