Vibration analysis device and abnormal area identification system equipped therewith

The vibration analysis apparatus enhances accuracy in identifying abnormal areas in rotating parts by excluding candidate parts without lower-order peaks and displaying high-probability areas based on frequency analysis, addressing the reliance on user skill in conventional methods.

JP7843810B2Active Publication Date: 2026-04-10NTN CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-08-30
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Conventional vibration analysis devices struggle with accurately identifying abnormal areas in rotating parts due to the reliance on user skill to validate candidate locations, leading to potential misidentification of actual abnormalities.

Method used

A vibration analysis apparatus that performs frequency analysis on measurement data from a rotating body, calculates characteristic frequencies, and excludes candidate parts without corresponding lower-order peaks or outside allowable ranges, displaying only high-probability abnormal areas, and prioritizes multiple abnormal areas based on frequency differences.

Benefits of technology

Improves the accuracy of identifying abnormal parts in rotating bodies by reducing reliance on user skill, clearly indicating high-probability abnormal areas and their priorities, enhancing user understanding.

✦ Generated by Eureka AI based on patent content.

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Abstract

The object of the present invention is to improve the accuracy of identifying a portion of a rotating body where an abnormality may exist in the vibration analysis device. [Solution] The vibration analysis device includes a control device 31 and a display device 34. The control device 31 determines candidate parts corresponding to each peak in the frequency spectrum based on a characteristic frequency caused by an abnormality in a part of the rotating body. If the frequency spectrum does not contain a second peak of a lower order than a first peak corresponding to the characteristic frequency of the specific part, the control device 31 excludes the specific part from the candidate parts and determines the remaining candidate parts as abnormal parts. The control device 31 causes the display device 34 to display the abnormal part for each peak in the frequency spectrum.
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Description

Technical Field

[0001] The present disclosure relates to a vibration analysis device and an abnormal part identification system including the same, and more particularly to a technique for improving the accuracy of identifying a part with an abnormality in a rotating body.

Background Art

[0002] When rotating parts are used, abnormalities such as damage and wear may occur in their bearings and other parts. Therefore, abnormal diagnosis is periodically performed on rotating parts. As a method for diagnosing abnormalities in rotating parts, a method of analyzing the vibration of rotating parts is known. For example, a method is known in which FFT (Fast Fourier Transform) processing is performed on a signal acquired from an acceleration sensor installed in a bearing part, a signal of a vibration generation frequency component is extracted, and a part with an abnormality in the rotating part is identified. A vibration analysis device used for such vibration measurement generally frequency-analyzes a signal from an acceleration sensor, displays an analysis result in which accelerations for each frequency are graphed, and shows it to a user.

[0003] Japanese Patent No. 7360887 (Patent Document 1) discloses a vibration analysis device that performs vibration analysis and presents a part that may be damaged. Further, Japanese Unexamined Patent Application Publication No. 2006-234786 (Patent Document 2) discloses an abnormal diagnosis device for mechanical equipment. These devices measure the vibration of a bearing that is a measurement target and present candidates for parts with abnormalities based on the frequency components of the frequency spectrum obtained by frequency analysis and the characteristic frequencies of the bearing.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0005] The devices described in Patent Documents 1 and 2 present candidate locations for abnormalities based on peaks in the frequency spectrum. Therefore, based on the presented information, users can recognize candidate locations for abnormalities regardless of their skill level. However, Patent Documents 1 and 2 do not examine the validity of the candidate locations for abnormalities identified by the devices. Therefore, users must identify the abnormal location from among the presented candidates, and depending on the user's skill level, identifying the abnormal location may be difficult.

[0006] The purpose of this disclosure is to improve the accuracy of identifying abnormal areas in a vibration analysis device that receives measurement data from a measuring instrument that measures the vibration of a rotating body to be measured, and identifies abnormal areas that may be abnormal in the rotating body. [Means for solving the problem]

[0007] A vibration analysis apparatus according to a certain aspect of this disclosure is a vibration analysis apparatus that receives measurement data from a measuring instrument for measuring the vibration of a rotating body and identifies an abnormal part, which is a part of the rotating body that may have an abnormality, and comprises a control device and a display device. The control device receives information about the rotating body and performs frequency analysis of the measurement data. Based on the information, the control device calculates each of the characteristic frequencies caused by the abnormality of each part of the rotating body, and determines candidate parts corresponding to each of the peaks of the frequency spectrum obtained by the frequency analysis based on each of the characteristic frequencies. If a first peak corresponding to the characteristic frequency of a specific part is present in the frequency spectrum, and there is no second peak corresponding to the characteristic frequency of the specific part and of a lower order than the first peak in the frequency spectrum, the control device excludes the specific part from the candidate parts and determines the remaining candidate parts as abnormal parts. For each of the peaks of the frequency spectrum, the control device causes the determined abnormal part to be displayed on the display device.

[0008] A vibration analysis apparatus according to other aspects of this disclosure is a vibration analysis apparatus that receives measurement data from a measuring instrument for measuring the vibration of a rotating body and identifies abnormal parts, which are candidates for abnormal parts in the rotating body. The vibration analysis apparatus comprises a control device and a display device. The control device receives information about the rotating body and an allowable range for each of the characteristic frequencies caused by abnormalities in each part of the rotating body calculated based on the information. The control device performs frequency analysis of the measurement data, calculates each of the characteristic frequencies, and determines the abnormal parts based on whether the frequency of each peak in the frequency spectrum obtained by the frequency analysis falls within the allowable range. If one or more parts are determined to be abnormal parts for a fourth peak included in the frequency spectrum, the control device calculates the difference between each of the characteristic frequencies of the one or more parts and the frequency of the fourth peak. The control device causes the display device to display one or more parts as abnormal parts for the fourth peak in a manner based on the difference. [Effects of the Invention]

[0009] The vibration analysis device described herein can improve the accuracy of identifying abnormal parts of a rotating body that is being measured. [Brief explanation of the drawing]

[0010] [Figure 1] This is a diagram showing the configuration of the abnormal area identification system. [Figure 2] This is a diagram showing the configuration of the measuring instrument. [Figure 3] This diagram shows the configuration of a mobile information terminal. [Figure 4] This is a diagram illustrating the content of the first process. [Figure 5] This is a diagram illustrating the content of the second process. [Figure 6] This figure shows an example of a display using a display device. [Figure 7] This is a diagram illustrating the contents of the third process. [Figure 8] This figure shows another example of display using a display device. [Figure 9]It is a diagram showing an example of setting information input by an input device. [Figure 10] It is a flowchart showing an example of a procedure of processing in a measuring instrument. [Figure 11] It is a flowchart showing an example of a procedure of processing in a portable information terminal.

Mode for Carrying Out the Invention

[0011] Hereinafter, this embodiment will be described in detail with reference to the drawings. In the drawings, the same or corresponding parts are denoted by the same reference numerals and their description will not be repeated.

[0012] [Configuration of Abnormal Site Identification System] FIG. 1 is a diagram showing an abnormal site identification system according to this embodiment. Referring to FIG. 1, the abnormal site identification system 10 includes a measuring instrument 20 and a portable information terminal 30.

[0013] The measuring instrument 20 is a device for measuring vibrations generated in the rolling bearing 15 that is the measurement target, and is configured to include an acceleration sensor (not shown) for detecting vibrations. The measuring instrument 20 is configured to be capable of wireless communication with the portable information terminal 30. When receiving a measurement start signal from the portable information terminal 30, the measuring instrument 20 detects vibrations generated in the rolling bearing 15 by the acceleration sensor. Then, the measuring instrument 20 transmits the acceleration data detected by the acceleration sensor to the portable information terminal 30. Note that the measuring instrument 20 may be connected to the portable information terminal 30 by wire and configured to be communicable.

[0014] The portable information terminal 30 is the "vibration analysis device" in the present disclosure. It receives measurement data (acceleration data of vibrations) from the measuring instrument 20 and analyzes the vibrations generated in the rolling bearing 15. The portable information terminal 30 is a terminal available to a user who uses the abnormal site identification system 10, and is, for example, a smartphone, a tablet, or the like. The portable information terminal 30 can be used as the "vibration analysis device" by application software operating on the portable information terminal 30.

[0015] Figure 2 is a diagram showing the configuration of the measuring instrument 20. Referring to Figure 2, the measuring instrument 20 includes an acceleration sensor 102, an anti-aliasing filter 104, an A / D converter 106, a microcomputer 108, a memory 110, and a communication module 112.

[0016] The acceleration sensor 102 is attached to the rolling bearing 15 (Figure 1) which is the measurement object, and detects and outputs the acceleration of the vibration generated in the rolling bearing 15. The anti-aliasing filter 104 is a low-pass filter for suppressing the aliasing error generated during A / D conversion in the A / D converter 106. The A / D converter 106 converts the measurement signal (analog signal) that has passed through the anti-aliasing filter 104 into a digital signal.

[0017] The microcomputer 108 receives the acceleration data converted into a digital signal by the A / D converter 106 and outputs it to the memory 110. Then, when a predetermined amount of data is accumulated in the memory 110, the microcomputer 108 reads out the accumulated data from the memory 110 and transmits it to the portable information terminal 30 by the communication module 112 as the measurement data by the measuring instrument 20.

[0018] The memory 110 receives the acceleration data converted into a digital signal by the A / D converter 106 and temporarily stores it. The communication module 112 is a wireless module for the measuring instrument 20 to communicate with the portable information terminal 30.

[0019] Figure 3 is a diagram showing the configuration of the portable information terminal 30. The portable information terminal 30 includes a control device 31, a display device 34, an input device 35, and a communication device 36.

[0020] The control device 31 comprises a processor 32 and a memory 33. The processor 32 is, for example, a CPU (Central Processing Unit) and is a processing circuitry that executes predetermined arithmetic operations described in a program. The processor 32 reads the program and data stored in the memory 33 and identifies a part of the rolling bearing 15, which is the object of measurement for the measuring instrument 20, that is highly likely to have an abnormality.

[0021] Memory 33 includes non-volatile memory or volatile memory such as ROM (Read Only Memory) or RAM (Random Access Memory), and / or mass storage devices such as HDD (Hard Disk Drive) or SSD (Solid State Drive). Memory 33 stores, for example, programs for executing various processes performed by the processor 32, information received from the input device 35, and acceleration data generated by the measuring instrument 20.

[0022] The control device 31 is connected to the display device 34, the input device 35, and the communication device 36. The display device 34 is, for example, a liquid crystal display (LCD) or an organic electroluminescent (EL) display. The control device 31 causes the display device 34 to display the measurement results from the measuring instrument 20 and the candidate areas and / or abnormal areas identified by the processor 32.

[0023] The input device 35 is, for example, a keyboard, mouse, pointing device, or touch panel, and accepts user input.

[0024] The communication device 36 is a device for the portable information terminal 30 to communicate wirelessly with the measuring instrument 20. The communication device 36 transmits a measurement start signal to the measuring instrument 20 when vibration measurement by the abnormal area identification system 10 begins, in accordance with the instructions of the control device 31. The communication device 36 also receives measurement data transmitted from the measuring instrument 20.

[0025] The control device 31 receives information about the rolling bearing 15 to be measured via the input device 35. In this embodiment, the information to be set is entered by the user from the screen of the portable information terminal 30, but it may also be stored in the memory 33 in advance and read by the control device 31 from the memory 33 when vibration measurement by the abnormal part identification system 10 starts. The information about the rolling bearing 15 is, for example, the bearing model number of the rolling bearing 15, and the rotational speed or rotational frequency of the rolling bearing 15 when measured by the measuring instrument 20.

[0026] In this embodiment, the specification data of various bearings whose vibration can be measured by the abnormal part identification system 10 is pre-stored in the memory 33, associated with the bearing model numbers. The control device 31 reads the bearing specification data from the memory 33 using the bearing model number received from the input device 35 as an indicator. In addition, as information regarding the rolling bearing 15, the specification data of the rolling bearing 15 may be input from the input device 35.

[0027] Furthermore, the control device 31 receives a judgment criterion value for determining the vibration state of the rolling bearing 15, which is the object of measurement. In this embodiment, this judgment criterion value is also input by the user from the screen of the portable information terminal 30, but it may also be stored in the memory 33 in advance and read from the memory 33 when vibration measurement by the abnormal part identification system 10 begins.

[0028] The control device 31 performs frequency analysis on the measurement data received from the communication device 36. For example, the control device 31 performs FFT processing on the time-series acceleration data received from the communication device 36 to generate a frequency spectrum of the measurement data.

[0029] Memory 33 stores specification data for various bearings whose vibration can be measured by the abnormal part identification system 10, associated with the bearing model number. In this embodiment, the specification data includes data that can calculate the frequency observed when an abnormality occurs in each part of the rotating body. Specifically, the specification data includes at least data that can calculate the inner ring pass frequency (Ball Pass Frequency of Inner ring: BPFI), outer ring pass frequency (Ball Pass Frequency of Outer ring: BPFO), and rolling element rotation frequency (Ball Spin Frequency: BSF) shown in the following equations (1) to (3).

[0030]

number

[0031] Here, D is the pitch circle diameter of the bearing, d is the diameter of the rolling element, α is the contact angle of the rolling element, and Z is the number of rolling elements. Note that f0 indicates the rotational frequency of the shaft, which the control device 31 receives via the input device 35, or, if the rotational speed is set by the control device 31, is calculated from that rotational speed.

[0032] Memory 33 stores at least the above-mentioned specifications data of the pitch circle diameter D, rolling element diameter d, rolling element contact angle α, and number of rolling elements Z, associated with the bearing model number. Alternatively, instead of these specifications data, memory 33 may store the coefficients Cin, Cout, and Crol of the rotational frequency f0 for calculating BPFI, BPFO, and BSF, respectively. The coefficients Cin, Cout, and Crol are given by the following equations (4) to (6).

[0033]

number

[0034] The control device 31 calculates the BPFI, BPFO, and BSF of the rolling bearing 15 at the time of measurement based on the information it has received about the rolling bearing 15. Specifically, the control device 31 reads the bearing specification data corresponding to the bearing model number received via the input device 35 from the memory 33, and calculates the BPFI, BPFO, and BSF from the read specification data and the set rotational speed (or rotational frequency) using the above equations (1) to (3).

[0035] The control device 31 identifies candidate locations for each peak in the frequency spectrum of the measurement data received from the measuring instrument 20, which are areas where an anomaly may be present. In doing so, the tolerance range included in the information received from the input device 35 is used. Specifically, for peaks whose peak frequency in the frequency spectrum (hereinafter referred to as "peak frequency") falls within the tolerance range set based on the respective tolerance ranges of BPFI and its higher-order components, the inner ring is identified as a candidate location, as it is assumed that a defect has occurred in the inner ring. Similarly, for peaks whose peak frequency falls within the respective tolerance ranges of BPFO and its higher-order components, the outer ring is identified as a candidate location, and for peaks whose peak frequency falls within the respective tolerance ranges of BSF and its higher-order components, the rolling element is identified as a candidate location.

[0036] Furthermore, if the peak frequency is included in the allowable range of the shaft's rotation frequency and its higher-order components, it is presumed that shaft imbalance has occurred. If the peak frequency is included in the allowable range of twice the rotation frequency and its higher-order components, it is presumed that misalignment has occurred. Therefore, if the peak frequency is included in the allowable range of the shaft's rotation frequency and its higher-order components, the processor 32 determines that there is a problem with the rotating shaft and identifies the rotating shaft as a candidate part. In this way, in this embodiment, for candidate parts corresponding to the peak, not only bearing parts (inner ring, outer ring, rolling elements) corresponding to BPFI, BPFO, and BSF are identified, but also problems with the rotating shaft caused by shaft imbalance and misalignment are identified.

[0037] In this specification, the frequencies resulting from damage to the inner ring, outer ring, and rolling elements, as well as the frequencies resulting from shaft unbalance and misalignment, are referred to as characteristic frequencies. Candidate locations are identified by the presence or absence of peaks within the tolerance range, which is set based on the characteristic frequencies and tolerance range, and which include the peak frequencies.

[0038] The control device 31 determines the vibration state for each peak based on the peak value, which is the acceleration of the peak in the frequency spectrum, and the judgment criterion value. For example, the control device 31 determines that a peak whose peak value exceeds the judgment criterion value is "dangerous". Also, the control device 31 determines that a peak whose peak value is lower than the judgment criterion value but exceeds 80% of the judgment criterion value is "cautionary", and that a peak whose peak value is lower than 80% of the judgment criterion value is "good".

[0039] [Comparative Example] The use of rotating parts can lead to damage, wear, and other abnormalities in their bearings and other components. Therefore, rotating parts are periodically inspected for abnormalities. One known method for diagnosing abnormalities in rotating parts is to analyze their vibrations. Vibration analysis devices used for vibration measurement generally analyze the signal from an acceleration sensor at different frequencies, display the analysis results as a graph of acceleration at each frequency, and show them to the user.

[0040] Conventional vibration analysis devices, such as those disclosed in Patent Documents 1 and 2, measure the vibration of a bearing to be measured, extract a predetermined number of peaks from the frequency spectrum obtained by frequency analysis, and present candidate areas of damage based on the characteristic frequencies of the bearing. However, if the specifications of the bearing to be measured differ from those expected, or if the rotational speed fluctuates and the frequency changes, areas that are not actually abnormal may be selected as areas with abnormalities. While experienced users can refer to the display of the vibration analysis device and judge the validity of its contents, it can be difficult for inexperienced users to judge the validity of the display. Therefore, it is desirable to improve the accuracy of identifying areas with abnormalities in vibration analysis devices.

[0041] [Vibration analysis device in the embodiment] Therefore, the portable information terminal 30, which is a vibration analysis device according to this embodiment, identifies candidate abnormal areas by comparing the frequency of each peak in the frequency spectrum obtained by frequency analysis with the characteristic frequencies originating from each area. It then excludes areas with a low probability of being abnormal from the list of candidate abnormal areas, and identifies the remaining candidate abnormal areas as abnormal areas. The portable information terminal 30 then presents the abnormal areas, from which areas with a low probability of being abnormal have been removed, to the user. With the display by the portable information terminal 30, the user can recognize areas with a high probability of being abnormal, regardless of the user's skill level.

[0042] Furthermore, the portable information terminal 30, which is a vibration analysis device according to this embodiment, determines a priority order for two or more locations when it identifies that one peak in the frequency spectrum is a peak caused by anomalies in two or more different locations. The portable information terminal 30 then presents these two or more locations to the user in a way that allows the user to recognize the priority order. Based on the display by the portable information terminal 30, the user can recognize which location is more likely to have an anomaly when it is identified that one peak in the frequency spectrum is caused by anomalies in two or more locations.

[0043] The following describes three processes performed by the mobile information terminal 30 related to this disclosure, and the content displayed on the display device 34 after these three processes.

[0044] <First Processing> The control device 31 identifies candidate regions for each peak based on the peak frequency and characteristic frequency of each peak in the frequency spectrum of the measurement data received from the measuring instrument 20. The control device 31 selects abnormal regions from the identified candidate regions that have a high probability of being abnormal. Specifically, if a peak frequency is identified as a higher-order component of the characteristic frequency of a predetermined region, the control device 31 determines whether the peaks in the frequency spectrum include a peak identified as a lower-order component of the characteristic frequency of that predetermined region. If the peaks in the frequency spectrum do not include a peak corresponding to the lower-order component of the characteristic frequency of that predetermined region, the control device 31 excludes that predetermined region from the candidate regions and does not select it as an abnormal region.

[0045] Figure 4 is a diagram illustrating the first process performed in the control device 31. Figure 4 shows an example of a frequency spectrum generated by performing FFT processing on time-series acceleration data measured by the measuring instrument 20.

[0046] In Figure 4, we assume that the frequency of peak P1 is included in the allowable range of the secondary component of the outer ring. In this case, the processor 32 checks whether there is a peak in the frequency spectrum that is included in the allowable range of the primary component of the outer ring, which is of a lower order than the secondary component of the outer ring. If the control device 31 confirms that peak P2 is detected in the allowable range of the primary component of the outer ring, it determines that peak P1 corresponds to the secondary component of the outer ring. On the other hand, if peak P2 is not confirmed in the allowable range of the primary component of the outer ring, the control device 31 determines that peak P1 does not correspond to the secondary component of the outer ring. Therefore, if peak P2 is not confirmed in the allowable range of the primary component of the outer ring, even if peak P1 is confirmed in the allowable range of the secondary component of the outer ring, the "outer ring" is excluded from the candidate parts and is not selected as an abnormal part.

[0047] <Second Processing> When the control device 31 determines that the peak of the higher-order component of a predetermined region and the peak of the lower-order component of the same predetermined region are included in the frequency spectrum, it determines whether the peak value of the higher-order component is less than or equal to the peak value of the lower-order component. If the peak value of the higher-order component is not less than or equal to the peak value of the lower-order component, the control device 31 excludes the predetermined region from the candidate regions.

[0048] Figure 5 is a diagram illustrating the second process performed in the control device 31. Figure 5 shows an example of a frequency spectrum generated by the control device 31 when it performs FFT processing on time-series acceleration data measured by the measuring instrument 20.

[0049] In Figure 5, the frequency of peak P3 is included in the allowable range of the outer ring's second-order component, and the frequency of peak P4 is included in the allowable range of the outer ring's first-order component. At this time, the control device 31 compares α, the peak value of peak P3, with β, the peak value of peak P4. In Figure 5, β, the peak value of the lower-order peak P4, is smaller than α, the peak value of the higher-order peak P3. Therefore, even if peak P4 is found in the allowable range of the outer ring's first-order component and peak P3 is found in the allowable range of the outer ring's second-order component, the "outer ring" is excluded from the candidate parts and is not selected as an abnormal part.

[0050] Figure 6 shows an example of a display screen that the control device 31 displays on the display device 34. Figure 6 shows the screen of the display device 34 with the display information displayed.

[0051] Referring to Figure 6, in this example, the peaks with the top 10 peak values ​​are displayed in descending order of peak value (a1>a2>...>a10), showing the peak value (acceleration), peak frequency, judgment result, and abnormal location.

[0052] In Figure 6, the frequency of the fifth largest peak falls within the tolerance range of the second-order inner ring. However, none of the four peaks with larger peak values ​​than this peak fall within the tolerance range of the first-order inner ring. Therefore, the inner ring is excluded from the candidate parts by the second processing. As a result, when the control device 31 presents the abnormal part to the user, the "inner ring" is not displayed as an abnormal part.

[0053] The first and second processes are performed based on the fact that when an abnormality occurs in a predetermined part of a rotating body, the first-order component of the characteristic frequencies of that part has the largest acceleration, and that the peak acceleration decreases as the order of the characteristic frequencies increases. The first and second processes may be performed or not based on user instructions.

[0054] By performing the first and second processes, the abnormality identification system 10 can present the user with areas that are highly likely to be abnormal. This eliminates the need for the user to search for peaks of different orders from the detected peaks in the display results or to read values ​​from the frequency spectrum graph, allowing them to easily identify areas that are highly likely to be damaged in the object being measured.

[0055] If misalignment occurs, a peak frequency of twice the rotation frequency and / or its higher-order components will be detected. Therefore, when misalignment occurs, the frequency spectrum may show a peak at twice the rotation frequency, but there may be no peak at the frequency corresponding to the rotation frequency. In such cases, performing the first and / or second processes may not identify the "rotating axis" corresponding to the misalignment as an abnormal part. Therefore, if the rotating axis is identified as a candidate part, it may not be subject to the first and second processes. Furthermore, if it is determined that no misalignment has occurred, the peaks included in the respective allowable ranges of the axis's rotation frequency and its higher-order components may also be subject to the first and second processes in order to improve the accuracy of unbalance detection.

[0056] <Third Processing> When the control device 31 identifies that a predetermined peak in the frequency spectrum originates from anomalies in multiple locations, it calculates the difference between the peak frequency of the predetermined peak and the characteristic frequency of each of the multiple locations, and determines the priority order of the multiple locations based on this difference.

[0057] Figure 7 is a diagram illustrating the third process performed by the control device 31. Figure 7 shows an example of a frequency spectrum generated by performing FFT processing on time-series acceleration data measured by the measuring instrument 20.

[0058] In Figure 7, peak P5 falls within the tolerance range of both the inner ring primary and outer ring secondary. Here, the control device 31 calculates the difference X between the frequency c of peak P5 and the characteristic frequency a of the inner ring primary, and the difference Y between the frequency c of peak P5 and the characteristic frequency b of the outer ring secondary. Since the difference Y is smaller than the difference X, the control device 31 determines that the outer ring secondary has a higher priority than the inner ring primary as the abnormal location of peak P5.

[0059] Figure 8 shows an example of a display screen shown on the display device 34. Figure 8 shows the screen of the display device 34.

[0060] Referring to Figure 8, the frequency of the fifth largest peak falls within the tolerance range of the first-order inner ring and the second-order outer ring. The control device 31 calculates the difference X between the peak frequency of the fifth largest peak and the characteristic frequency of the first-order inner ring, and the difference Y between the peak frequency of the fifth largest peak and the characteristic frequency of the second-order outer ring. If the difference Y is smaller than the difference X, the control device 31 determines that the second-order outer ring has a higher priority than the first-order inner ring as the abnormal location of peak P5. In the above case, the control device 31 displays the second-order outer ring, which has a higher priority, above the first-order inner ring as a candidate location for the fifth largest peak on the display device 34.

[0061] When process 3 is executed, if there are multiple abnormal areas corresponding to a single peak, the vibration analysis results are displayed based on priority, allowing the user to easily determine which area is most likely to be damaged.

[0062] In Figure 8, the abnormal parts are displayed in order of priority, but the display method is not limited to this. For example, the control device 31 may change the font size or the color of the parts according to their priority.

[0063] [Information to be set] Figure 9 shows an example of information received by the control device 31 via the input device 35. The information received by the control device 31 can be input by the user via the input device 35, and Figure 9 shows the screen displayed on the display device 34 for the user to input this information.

[0064] Referring to Figure 9, the user can input the bearing model number of the rolling bearing 15 (Figure 1) to be measured via the input unit 410. In Figure 9, the input unit 410 shows that "6206LLB" has been entered as the bearing model number.

[0065] The user can input the rotational speed (rpm) of the shaft during measurement via the input unit 420. Note that this abnormal part identification system 10 does not have a sensor to detect the rotational speed of the shaft during measurement by the measuring instrument 20; therefore, it is necessary to obtain rotational speed information during measurement and input it via the input unit 420. However, if a rotational speed sensor is provided, the input unit 420 is unnecessary. Alternatively, the user may input the rotational frequency of the shaft during measurement instead of the rotational speed of the shaft during measurement via the input unit 420.

[0066] The user can input a judgment criterion value (acceleration) from the input unit 430. In this embodiment, the judgment criterion value is a uniform value regardless of the peak frequency.

[0067] The user can input the tolerance range of the feature frequency from input units 440 and 445. The user can input the lower limit of the tolerance range to input unit 440 and the upper limit of the tolerance range to input unit 445. For example, as shown in Figure 9, when "10" is input to input unit 440 and "5" is input to input unit 445, and the feature frequency of a predetermined region is "300", the processor 32 sets 270 to 315 as the tolerance range for the predetermined region and determines that the peaks included in the tolerance range are the peaks corresponding to the predetermined region.

[0068] The user can input the number of peaks displayed on the display device 34 from the input unit 450. The number of peaks to be displayed is set according to this input value. If there is no input from the input unit 440, a default value (for example, 10) is set.

[0069] The user can input whether or not the first process should be executed via the input unit 460. If "ON" is selected in the input unit 460, the first process will be executed; if "OFF" is selected, the first process will not be executed.

[0070] The user can input whether or not the second process should be executed via the input unit 470. If "ON" is selected in the input unit 470, the second process will be executed; if "OFF" is selected, the second process will not be executed.

[0071] The user can input whether or not the third process should be executed via the input unit 480. If "ON" is selected in the input unit 480, the third process will be executed; if "OFF" is selected, the third process will not be executed.

[0072] Furthermore, the user can set whether or not to execute the second process independently of the execution of the first process. If the second process is executed without executing the first process, for example, if the frequency spectrum has a peak corresponding to the second order of the outer ring but no peak corresponding to the first order of the outer ring, the control device 31 cannot obtain the peak value of the peak corresponding to the lower order of the second order of the outer ring, and therefore cannot execute the second process, and the second order of the outer ring is not excluded from the candidate parts.

[0073] [Processing flow in measuring instruments] Figure 10 is a flowchart illustrating an example of the processing procedure in the measuring instrument 20. Referring to Figure 2 along with Figure 10, when the power to the measuring instrument 20 is turned on, the microcomputer 108 performs a predetermined initialization process (step S10). The initialization process includes, for example, establishing communication between the communication module 112 and the portable information terminal 30, and clearing the data in the memory 110.

[0074] Next, the microcomputer 108 determines whether or not it has received a measurement start signal from the portable information terminal 30 (step S12). If a measurement start signal is received (YES in step S12), the microcomputer 108 reads the output of the acceleration sensor 102, which has passed through the anti-aliasing filter 104 and been digitally converted by the A / D converter 106, from the A / D converter 106 (step S14).

[0075] The microcomputer 108 transmits the acquired data to the portable information terminal 30 via the communication module 112 (step S16).

[0076] Next, the microcomputer 108 determines whether or not the user has performed a termination operation to end the measurement (step S18). The termination operation is performed on the portable information terminal 30, and for example, when a measurement termination signal is received from the portable information terminal 30, it is determined that the termination operation has been performed.

[0077] If it is determined that the termination operation has not been performed (NO in step S18), the process returns to step S10. On the other hand, if it is determined that the termination operation has been performed (YES in step S18), the process moves to the end, and the series of processes in the measuring instrument 20 is completed.

[0078] [Processing flow in mobile terminal devices] Figure 11 is a flowchart illustrating an example of the processing procedure in the portable information terminal 30. Referring to Figure 3 along with Figure 11, when the application software for performing vibration measurement using the measuring instrument 20 is launched on the portable information terminal 30 and the application software instructs the start of measurement, the processor 32 executes a predetermined initialization process (step S30). The initialization process includes, for example, establishing communication with the measuring instrument 20 and performing a predetermined reset process.

[0079] Next, based on the information received via the input device 35, the processor 32 sets the bearing model number of the rolling bearing 15 to be measured, the rotational speed (or rotational frequency) at the time of measurement, the judgment criterion value for determining the vibration state based on the measurement data, the allowable range, the number of peaks to be acquired, and whether or not to execute the first to third processes (step S32).

[0080] Next, the processor 32 reads the bearing specifications data corresponding to the set bearing model number from the memory 33, and uses the above equations (1) to (3) to calculate the characteristic frequency of the rolling bearing 15 to be measured from the specifications data and the rotational frequency calculated from the set rotational speed (step S34). The processor 32 calculates the tolerance range of each part based on the value calculated in step S34 and the tolerance range input by the user in step S32 (step S36). After that, the processor 32 causes the communication device 36 to send a measurement start signal to the measuring instrument 20 (step S38).

[0081] When a measurement start signal is sent to the measuring instrument 20, the processor 32 determines whether or not it has received measurement data from the measuring instrument 20 (step S40). If measurement data is received from the measuring instrument 20 (YES in step S40), the processor 32 saves the received measurement data to the memory 33 (step S42). If measurement data cannot be received from the measuring instrument 20 (NO in step S40), the processor 32 repeats the process in step S38.

[0082] The processor 32 reads data from the memory 33 and performs frequency analysis on the data measured by the measuring instrument 20 (step S44). Specifically, FFT processing is performed on the time-series acceleration data measured by the measuring instrument 20 to obtain the frequency spectrum of the measured acceleration data. The processor 32 extracts peaks from the acquired frequency spectrum in descending order of acceleration and obtains the peak acceleration and peak frequency of the extracted peaks (step S46). The processor 32 determines whether the number of peaks from which peak acceleration and peak frequency have been obtained has reached the set number of peaks (step S48). If the number of peaks from which peak acceleration and frequency have been obtained has not reached the set number of peaks (NO in step S48), the process in step S46 is repeated.

[0083] In step S50, if the number of peaks from which peak acceleration and peak frequency have been acquired reaches the set number of peaks (YES in step S48), the processor 32 determines the vibration state of each peak based on the judgment criterion value set in step S32 and the peak acceleration of the peaks acquired in step S46.

[0084] Next, the processor 32 identifies candidate locations corresponding to the peak frequency of each peak extracted in step S46. Specifically, for each extracted peak, the processor 32 identifies candidate locations for that peak based on whether or not the peak frequency falls within the acceptable range of each location (step S52). Candidate locations include, for example, parts of the rolling bearing 15 (inner ring, outer ring, and rolling elements), as well as rotating shafts showing abnormalities due to shaft unbalance and misalignment.

[0085] If the processor 32 identifies a candidate region for the peak extracted in step S46 (YES in step S52), it displays the candidate region on the display device 34 (step S54). If no candidate region is identified (NO in step S52), the processor 32 proceeds to step S68.

[0086] Next, in step S32, the processor 32 determines whether or not it is set to execute the first process (step S56). If it is set to execute the first process (YES in step S56), the processor 32 executes the first process (step S58). Specifically, the processor 32 excludes from the candidate regions identified in step S52 any regions where a peak of a higher-order component was detected, but no peak of a lower-order component was detected. If it is not set to execute the first process (NO in step S56), the processor 32 proceeds to step S60 without executing the first process.

[0087] In step S32, the processor 32 determines whether or not it is set to execute the second process (step S60). If it is set to execute the second process (YES in step S60), the processor 32 executes the second process (step S62). Specifically, among the candidate sites identified in step S52, the processor 32 excludes sites from the candidate sites if a peak of a lower-order component corresponding to a peak of a higher-order component is detected, and the peak value of the lower-order component peak is less than or equal to the peak value of the higher-order component peak. If it is not set to execute the second process (NO in step S60), the processor 32 proceeds to step S64 without executing the second process.

[0088] In step S32, the processor 32 determines whether or not it is set to execute the third process (step S64). If it is set to execute the third process (YES in step S64), the processor 32 executes the third process (step S66). Specifically, if there is a peak extracted in step S46 that is identified as originating from multiple sites, the processor 32 calculates the difference between the peak frequency of the peak and the characteristic frequencies of each of the multiple sites, and assigns priority to the multiple sites in order of the smallest difference. If it is not set to execute the third process (NO in step S64), the processor 32 proceeds to step S68 without executing the third process. At this point, the processor 32 designates the sites selected as candidate sites as abnormal sites.

[0089] Then, the processor 32 causes the display device 34 to display the vibration state determination result and the abnormal location for each of the top 10 peak values ​​(step S68). Furthermore, if, as a result of executing the third process, there are peaks for which a priority has been set for multiple abnormal locations, the processor 32 displays those locations on the display device 34 based on that priority.

[0090] Next, the processor 32 determines whether the user has performed a termination operation to end the measurement (step S72). If the termination operation has not been performed (NO in step S72), processing returns to step S32. On the other hand, if the termination operation has been performed (YES in step S72), the processor 32 moves processing to the end, and the series of processes in the mobile information terminal 30 is completed.

[0091] As described above, in this embodiment, the validity of areas with potential damage identified based on peaks in the frequency spectrum of the measurement data is verified by their relationship with other peaks in the frequency spectrum. Then, only the areas with a high probability of damage among the identified areas with potential damage are displayed on the display device 34. This allows the user to easily identify areas with a high probability of abnormality.

[0092] Furthermore, according to this embodiment, when multiple abnormal areas are identified from a single peak, the priority order of these abnormal areas is determined based on the frequency of the single peak and the characteristic frequencies of each of the multiple abnormal areas. The multiple abnormal areas are then displayed on the display device 34 according to this priority order. This allows the user to easily identify areas that are highly likely to be abnormal.

[0093] In this embodiment, an allowable range is set, but if the first and second processes are executed without performing the third process, the allowable range does not need to be set. In this case, a peak at a frequency matching the characteristic frequency is determined to be a peak originating from an anomaly in the region corresponding to that characteristic frequency.

[0094] Furthermore, the number of peaks displayed can be set by the user, allowing for a display tailored to the user's preferences. In addition, since the measuring instrument 20 and the portable information terminal 30 communicate wirelessly, the user can check the vibration analysis results anywhere within the range of wireless communication, as long as the measuring instrument 20 is placed on the object being measured.

[0095] In this embodiment, the control device 31 identifies the locations of the top 10 peaks and displays the abnormal locations corresponding to those peaks on the display device 34. However, the control device 31 may identify the locations of all identified peaks, or the display device 34 may display the locations corresponding to all identified peaks.

[0096] The embodiments disclosed herein should be considered in all respects to be illustrative and not restrictive. The scope of the present invention is indicated by the claims rather than by the description of the embodiments above, and all modifications within the meaning and scope equivalent to the claims are intended to be included. [Explanation of Symbols]

[0097] 10 Anomaly identification system, 15 Measurement target (rolling bearing), 20 Measuring instrument, 30 Portable information terminal, 31 Control device, 32 Processor, 33 Memory, 34 Display device, 35 Input device, 36 Communication device, 102 Accelerometer, 104 Anti-aliasing filter, 106 A / D converter, 108 Microcomputer, 110 Memory, 112 Communication module.

Claims

1. A vibration analysis device that receives measurement data from a measuring instrument that measures the vibration of a rotating body and identifies an abnormal part in the rotating body that is a part where there is a possibility of an abnormality, A control device and a display device are provided. The control device is Information regarding the aforementioned rotating body is received, Perform frequency analysis on the aforementioned measurement data, Based on the above information, each of the characteristic frequencies caused by abnormalities in each part of the rotating body is calculated. Based on each of the aforementioned characteristic frequencies, candidate regions corresponding to each of the peaks in the frequency spectrum obtained by the frequency analysis are determined. If a first peak corresponding to the characteristic frequency of a specific area is present in the frequency spectrum, and a second peak corresponding to the characteristic frequency of the specific area but of a lower order than the first peak is not present in the frequency spectrum, the specific area is excluded from the candidate areas, and the remaining candidate areas are determined to be the abnormal areas. A vibration analysis device that displays the abnormal location for each of the peaks in the frequency spectrum on the display device.

2. The control device further, A judgment criterion value for determining the vibration state of the rotating body is received, Based on the peak value of each peak in the frequency spectrum and the judgment criterion value, a judgment result is produced in which the vibration state is determined for each peak in the frequency spectrum. The vibration analysis apparatus according to claim 1, wherein the display device displays the respective peak values ​​of the peaks of the frequency spectrum and the determination result.

3. The vibration analysis apparatus according to claim 1 or claim 2, wherein the order of the second peak is first order.

4. The vibration analysis apparatus according to claim 1 or 2, wherein the control device further excludes the specific part from the candidate part when the second peak is in the frequency spectrum and the peak value of the second peak is less than or equal to the peak value of the first peak.

5. The control device further, Accepting the tolerance range for each of the aforementioned characteristic frequencies, The vibration analysis apparatus according to claim 1 or claim 2, wherein the candidate location is determined based on whether or not the frequency of each peak in the frequency spectrum falls within the allowable range.

6. The vibration analysis apparatus according to claim 5, wherein the allowable range is set by the user using the vibration analysis apparatus.

7. The control device further, If two or more regions are determined as candidate regions for a third peak included in the frequency spectrum, the difference between the characteristic frequencies of each of the two or more regions and the frequency of the third peak is calculated. The vibration analysis apparatus according to claim 6, wherein the display device displays the two or more parts of the third peak in a manner based on the difference.

8. The vibration analysis apparatus according to claim 7, wherein the control device causes the display device to display the two or more parts in order of increasing difference.

9. A vibration analysis device that receives measurement data from a measuring instrument that measures the vibration of a rotating body and identifies abnormal parts that are candidates for abnormal parts in the rotating body, A control device and a display device are provided. The control device is The system accepts information relating to the rotating body, and the tolerance range for each of the characteristic frequencies resulting from abnormalities in each part of the rotating body calculated based on the information. Perform frequency analysis on the aforementioned measurement data, Each of the aforementioned characteristic frequencies is calculated, The abnormal area is determined by whether or not each frequency of the peaks in the frequency spectrum obtained by the frequency analysis falls within the tolerance range. If two or more locations are determined to be abnormal locations for the fourth peak included in the frequency spectrum, the difference between the characteristic frequencies of each of the two or more locations and the frequency of the fourth peak is calculated. A vibration analysis device that causes the display device to display the two or more parts as abnormal parts for the fourth peak in a manner based on the difference.

10. The vibration analysis apparatus according to claim 9, wherein the control device causes the display device to display the two or more parts in order of increasing difference.

11. The vibration analysis apparatus according to claim 1 or claim 9, wherein the rotating body is a bearing.

12. The information relating to the rotating body is, The rotational speed or rotational frequency of the bearing, The vibration analysis apparatus according to claim 11, comprising the specifications of the bearing, or a coefficient of the rotation frequency used to calculate the inner ring pass frequency (Ball Pass Frequency of Inner ring: BPFI), outer ring pass frequency (Ball Pass Frequency of Outer ring: BPFO), and rolling element rotation frequency (Ball Spin Frequency: BSF) of the bearing.

13. The vibration analysis apparatus according to claim 1 or claim 9, further comprising a communication device for wireless communication with the measuring instrument.

14. A measuring instrument for measuring the vibration of a rotating body, An abnormal location identification system comprising a vibration analysis device according to claim 1 or claim 9, which receives measurement data from the aforementioned measuring instrument and performs vibration analysis.

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