Leak detection device and method for detecting leaks using the sniffer method
Patent Information
- Application Number
- JP2024552125
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-03-09
- Filing Date
- 2023-01-17
- Publication Date
- 2025-07-30
AI Technical Summary
Existing leak detection methods using the sniffer method face errors and confusion due to gas type singularities during calibration, and lack accurate evaluation of measurement signals from gas detectors, especially when dealing with unknown or varied leakage specimens.
A sniffer probe equipped with a receiver to retrieve first data about the specimen's characteristics, such as leak rate, duration, or temperature, which is then used to consider the specimen's specific information during gas detection, improving the accuracy of leak detection.
This solution enhances the accuracy and reliability of leak detection by considering the specimen's characteristics, reducing errors and improving the interpretation of measurement signals from gas detectors.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a leak detection device and a leak detection method for performing leak detection by a sniffer method. [Background technology]
[0002] In leak detection using the sniffer method, a gas flow is sucked in by a hand-operated sniffer probe and sent to a gas detector for gas analysis. The sniffer probe sucks in gas from outside the test piece, and the presence and size of the leak can be estimated based on the gas analysis.
[0003] When calibrating a leak detector using an independent test leak device as a test specimen, the user must input the test leak parameters of the test leak device, such as the leak rate value and / or the type of test gas, into the gas detector base device in order to be able to carry out the calibration procedure, so that the resulting measurement signal is assigned to the manually entered leak rate. Summary of the Invention [Problem to be solved by the invention]
[0004] On the other hand, peculiarities related to the type of gas can lead to errors, confusion and erroneous inputs during calibration.In addition, when testing objects with unknown leak sizes, which may be of various types, such as in the case of cooling devices (refrigeration units, air conditioners, etc.), knowledge of the properties of the object is often important for evaluating the measurement signal of the gas detector and for obtaining meaningful measurement results from said measurement signal.
[0005] SUMMARY OF THE PRESENT EMBODIMENTS In view of this background, it is an object of the present invention to provide an improved leak detection apparatus and an improved method for leak detection. [Means for solving the problem]
[0006] The invention is defined in the independent claims. The dependent claims define respective embodiments of the invention.
[0007] In the present invention, a manually or robotically operated sniffer probe is provided with a receiver configured to receive first data including first information about properties of the test object stored in the test object that are important for evaluating the measurement signal of the leak detector, and to take this data into account when detecting gas.
[0008] The first information may be a leak rate of a leak in the test body, or a period of use of the test body, or a temperature of the test body or a test fluid or test gas contained in the test body, or the test fluid or test gas.
[0009] The specimen may be a test leak device with a leak of known size.
[0010] The receiver may be, for example, a wireless receiver, such as an RFID reader, a Bluetooth receiver, an infrared receiver, or an optical reader, such as a barcode scanner, an optical camera, or the like.
[0011] The first data including the first information may be stored on the specimen in an electronic memory provided on the specimen. In this case, the first data is electronic data in which the first information is stored in encoded form. Alternatively or additionally, the first data may be optically encoded data such as a barcode, DataMatrix code, QR code, characters / symbols, etc., carrying the first information in encoded form and attached to the outside of the specimen.
[0012] A second memory may be provided on the detector side, in which second data including corresponding second information for various first information are stored, for example in the form of a table, a matrix, etc. In this regard, various first data or information are assigned corresponding respective second data or information, i.e. from the received first information about the properties of the test object, corresponding second information that is important for the evaluation or interpretation of the measurement signal of the gas detector depending on the received first information can be read out from the second memory.
[0013] For example, the first information may be the type of test fluid or test gas contained in the test body, and in the case of a mass spectrometry gas detector, the second memory stores molecular weights associated with various test fluids or test gases that are important when evaluating the measurement signal to detect leaks.
[0014] Alternatively or additionally, the second information may be information about possible interactions of gases in the test environment, which must be taken into account when evaluating the leak rate measurement. The second information may also be a suitable critical limit assigned to the test gas, indicating an acceptable leak rate that must not be exceeded for the test specimen. If the loaded critical limit is exceeded during the test specimen measurement, a warning indicating a "failed part" may be issued. The second information may also refer to a test leak rate and / or a test leak gas type. For example, optimal operating conditions of a mass spectrometer (mass line width, signal gain factor, etc.) may be determined and assigned to the first information.
[0015] In a leak detection system that optically detects the test gas, for example by spectroscopic measurement of wavelengths absorbed by or emitted from the test gas, the second information may be a wavelength range suitable for detecting the corresponding leak gas that must be evaluated in the leak rate measurement.
[0016] The second data may be electronic data containing the second information in encoded form and stored in an electronic memory of the gas detector, alternatively or additionally, the second data may be optically encoded data such as a bar code, letters / symbols, etc., attached to or within the gas detector containing the second information in encoded form.
[0017] Hereinafter, an exemplary embodiment of the present invention will be described in detail with reference to the drawings. [Brief description of the drawings]
[0018] [Figure 1] FIG. 1 is a block diagram illustrating an exemplary embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0019] The leak detection device 10 of the illustrated exemplary embodiment includes a hand-operated sniffer probe 12. The sniffer probe 12 includes a grip portion 14 and a sniffer probe 16 extending from the grip portion 14. In addition to the sniffer probe 16, the grip portion 14 includes a receiver 18. The receiver 18 faces the same direction as the sniffer tip 16 from the distal end 20 of the handpiece 14. A proximal end 22 opposite the distal end 20 is connected to a general gas detector 26 via a gas-conducting connection line 24. The gas detector 26 may be a partial pressure sensor in a vacuum mode equipped with a vacuum pump (not shown). The vacuum pump generates a vacuum pressure for sucking gas from the outside of the sniffer tip 16. More specifically, the gas detector 26 may be a mass spectrometer.
[0020] The test body 28 is filled with a test gas (not shown). The test body includes a leak (not shown). The test body may be a test leak device having a known test gas, and the leak may be a test leak of known magnitude for calibrating the leak detection device 10. Alternatively, the test body 28 may be a cooling device such as a refrigerator, air conditioner, etc.
[0021] The test body is provided with a memory 30. The memory 30 may be an electronic data memory or optical information, for example in the form of a sticker, an inscription, etc. on the outer surface of the test body 28. The first memory 30 stores first information in coded form about a characteristic of the test body 28. This may be information about the leak rate or the magnitude of a leak in the test body, the age or temperature of the test body or test fluid inside the test body 28, or about a test gas or test fluid in the test body 28. The first information is important for evaluating the measurement signal of the gas detector 26 and for reliably deducing from the measurement signal the presence and the magnitude of a leak.
[0022] For this purpose, when the sniffer probe 12 approaches the test specimen 28, the receiver 18 receives said first data from the first memory 30, for example by being a radio receiver and receiving said data in the form of a radio signal (RFID, Bluetooth, infrared, WIFI, etc.). As a variant, the receiver 18 may be an optical reader, for example equipped with a camera, a barcode scanner, etc. for scanning said data.
[0023] The sniffer probe 14 is brought close to the test object 28. When the distance to the test object 28 becomes less than a predetermined distance, or when the signal amplitude of the data signal containing the first data received by the receiver 18 increases or exceeds a certain signal amplitude, or when an activation button (not shown) of the sniffer probe 12 is activated, data transmission from the first memory 30 to the receiver 18 or reception of the first data by the receiver 18 is started. Then, the received first data is transmitted to an evaluation device 32 of the leak detection device 10. For this purpose, the evaluation device 32 is electronically connected to the receiver 18 by wire or wirelessly.
[0024] In the illustrated exemplary embodiment, an evaluation device 32 is provided in the gas detector 26. The evaluation device 32 comprises a second data memory in which second data are stored in the form of a table matrix. In this regard, second information is stored which is respectively associated with various first information which is important for evaluating the measurement signal of the gas detector 26 in order to detect a leak in the test object 28.
[0025] The sniffer tip 16 draws gas from the outside of the test body 28 and feeds it to the gas detector 26, which analyzes the drawn gas taking into account the first information received and / or the second information. For example, if the first information is the leak rate of a test leak in the test body 28, the evaluation device 32 can calibrate the leak detector 26 by assigning the received leak rate to a measurement signal. The first information can also be the type of test gas used in the test body 28, and if the gas detector 26 is a mass spectrometer, for example, the second information indicates the respective molecular weight. If the first information indicates the type of test fluid present in the test body, such as a specific refrigerant of a cooling device, the evaluation device 32 can assign a predefined threshold value as the second information associated with the first information. If the measurement signal of the gas detector 26 exceeds the threshold value for each type of gas, it is determined that a gas leak has been detected, and the user is notified.
Claims
1. A gas detector, and a sniffer probe (12) gas-connectably connected to the gas detector, wherein in a leak detection device (10) comprising: the sniffer probe (12) is provided with a receiver (18) configured to receive first data including first information about characteristics of the test object (28) related to leak detection using the gas detector, which is provided in the test object (28) or transmitted from the test object (28). A leak detection device (10), characterized in that
2. The leak detection device (10) according to claim 1, wherein the receiver (18) is a wireless receiver or an optical receiver (18). A leak detection device (10), characterized in that
3. The leak detection device (10) according to claim 1, wherein the first data is stored as electronic data in a first digital memory (30) of the test object (28), or is attached to the test object (28) as optically readable encoded data, for example, data in the form of a barcode, a DataMatrix code, a QR code, etc. A leak detection device (10), characterized in that
4. The leak detection device (10) according to claim 1, wherein the characteristics are the leak rate or size of the leak to be detected, the test fluid contained in the test object (28), the service life or temperature of the test object (28), or the service life or temperature of the test fluid contained in the test object (28). A leak detection device (10), characterized in that
5. The leak detection device (10) according to claim 1, wherein the test object (28) is a test leak device for calibrating the gas detector, which has a test leak of a known size. A leak detection device (10), characterized in that
6. The leak detection device (10) according to claim 1, wherein the test object (28) is a cooling device, for example, a refrigerator, an air conditioner, etc. A leak detection device (10), characterized in that
7. In the leak detection device (10) according to claim 1, a second memory (32) is provided in the leak detection device (10) to store corresponding second information in addition to various items of the first information stored in the test body (28) and received by the receiver (18). The gas detector selects at least one corresponding second information from the second information for detecting gas with reference to the transmitted first information according to the transmitted first information of the test body (28). A leak detection device (10).
8. In the leak detection device (10) according to claim 7, the gas detector is a mass spectrometer, the first information is a test fluid, the second information is the molecular weight of each test fluid, and the second memory (32) of the gas detector stores the molecular weight of each evaluation target of the gas detector for each test fluid. A leak detection device (10).
9. In the leak detection device (10) according to claim 7, the gas detector is an optical spectroscopic gas detector, the first information is a test fluid, the second information is the wavelength range of each test fluid, and the second memory (32) of the gas detector stores the wavelength range of each evaluation target of the gas detector for each test fluid. A leak detection device (10).
10. In the leak detection device (10) according to claim 1, further,[[]] an evaluation device (32) configured to obtain the first data from the first memory (30) when the distance between the sniffer probe (12) and the test body (28) becomes less than a predetermined distance, or when the signal amplitude of the signal received by the receiver (18) increases or exceeds a certain signal amplitude, or when the operation button of the sniffer probe (12) is actuated.[[]] A leak detection device (10), characterized in that it comprises.[[]]
11. A combination of the leak detection device (10) according to claim 1 and a test body (28) provided with a memory (10) storing the first information.[[]]
12. A leak detection method using the leak detection device (10) according to claim 1 and a test object (28) equipped with the first memory (30), wherein the first memory (30) stores first data including first information about the characteristics of the test object (28), and the method comprises: bringing the sniffer probe (12) close to the test object (28); sucking gas from outside the test object (28) by the sniffer probe (12); receiving the first data from the first memory (30) of the test object (28) by the receiver (18) of the sniffer probe (12); analyzing the sucked gas by the gas detector (26) taking into account the first information from the received first data; A method comprising the steps of:
13. The method according to claim 12, characterized in that the calibration of the gas detector is performed by comparing a measured value obtained from the measurement signal of the gas detector (26) with the received first information.
14. The method according to claim 12, characterized in that second data including corresponding second information is read from the second memory (32) of the gas detector (26) according to the received first information, and the measurement signal of the gas detector (26) is evaluated according to the read second information.
15. The method according to claim 12, characterized in that the receiver (18) receives the first data from the first memory (30) and transmits the data to the evaluation device (32) of the leak detection device (10) when the distance to the test object (28) is less than a predetermined distance, or when the signal amplitude of the data signal including the first data received by the receiver (18) increases or exceeds a certain signal amplitude, or when the operation button of the sniffer probe (12) is actuated.