Metal wire vibration detection device and method
By designing a metal wire vibration detection device and using an alignment and detection adjustment mechanism to perform metal wire centering and vibration measurement, the problem of inaccurate detection results in the existing technology is solved, and high-precision and efficient detection of metal wire quality is achieved.
Patent Information
- Application Number
- CN202310390768.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-13
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2043-04-13
AI Technical Summary
Existing metal wire detection devices cannot effectively reflect the true condition of the metal wire, especially under vibration conditions, and the detection method ignores the false connection relationship between metal atomic bonds, resulting in inaccurate detection results.
A wire vibration detection device is designed, which includes an alignment mechanism, a detection adjustment mechanism, and a detection mechanism. The wire is aligned by adjusting components in the X and Y directions. The vibration is measured by the detection mechanism driven by a servo motor. The circuit is connected by a probe touching the wire to record the vibration information.
It achieves high-precision and high-efficiency wire vibration detection, can intuitively reflect the true quality status of the wire, is applicable to wires of different materials and diameters, and provides more accurate detection results.
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Figure CN116448227B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of metal wire detection equipment, and in particular relates to a metal wire vibration detection device and method. Background Art
[0002] Metal wire is made of metal coils, coils or bars. It is processed into various specifications and models of wire (thread) products through professional equipment such as wire drawing equipment and annealing equipment after multiple drawing-annealing-redrawing-reannealing processes. This product is called metal wire. After the metal wire is formed, in order to detect the quality of the metal wire, people have proposed to use microscopic inspection technology to detect the quality of the metal wire. That is, during the production process of the metal wire, a section of metal wire is cut and observed under a microscope to evaluate the quality of the metal wire. However, this method cannot achieve continuous observation of the metal wire and can only be spot-checked. This makes it inaccurate and inconvenient to control the quality of the metal wire, and it is difficult to detect quality problems of the metal wire in a timely manner.
[0003] Later, with the advancement of detection technology, a wire detection device was disclosed, such as the utility model patent with application number 201920398050.8. When in use, the device transmits the wire from the pay-off wheel to the take-up wheel, and the wire passes through the rocker device. The digital microscope is located directly above the wire transmission path. The take-up wheel rotates to pull the wire to move, driving the rocker device to make a circular motion around the periphery of the pay-off wheel. When the take-up wheel drives the wire to move, the surface of the wire in transmission is continuously observed through the digital microscope to detect quality problems of the wire, thereby ensuring the accuracy of the wire quality control. It is more convenient to observe on the display, and the convenience is high. When the device is in use, the following problems still exist and are difficult to solve:
[0004] 1. This device primarily tests the quality of metal wires through their appearance and digital microscopy. However, because it utilizes a two-dimensional detection method, it ignores the pseudo-connectivity between metal atomic bonds. That is, while the bonds in the metal wire's molecular structure appear connected during surface observation, the bonds are actually broken. This results in significant performance variations during use, and therefore, the test results cannot effectively reflect the true condition of the wire during use.
[0005] 2. The device tests the appearance of the metal wire under static conditions, but cannot perform vibration testing on the metal wire, and thus cannot reflect the objective quality of the metal wire;
[0006] Therefore, there is an urgent need to design a new metal wire vibration detection device and detection method to solve the problems existing in the above-mentioned prior art. Summary of the Invention
[0007] In view of the defects of the above-mentioned prior art, the purpose of the present invention is to provide a metal wire vibration detection device and method. Through the setting of an alignment mechanism, a detection adjustment mechanism and a detection mechanism, the device can effectively complete the centering and detection of the metal wire to be tested, and has the characteristics of simple structure, easy use, high detection efficiency and accuracy.
[0008] In order to achieve the above object, the technical solution adopted by the present invention is as follows:
[0009] A metal wire vibration detection device and method includes an alignment mechanism, a detection adjustment mechanism and a detection mechanism that cooperate with each other.
[0010] The alignment mechanism is arranged on the lower side of the adjustment platform, and includes an X-direction adjustment component and a Y-direction adjustment component that cooperate with each other, and a plurality of positioning columns are also arranged on the adjustment platform;
[0011] The detection adjustment mechanism is arranged on the upper side of the adjustment platform through the positioning column on the adjustment platform, and includes an adjustment component and a plurality of probe moving pieces that cooperate with each other;
[0012] The detection mechanism is arranged on the probe moving piece and is used in conjunction with the metal wire to be tested.
[0013] Preferably, the Y-direction adjustment assembly is located below the X-direction adjustment assembly and includes a first base plate, a second base plate, and a Y-direction calibration micrometer.
[0014] The first bottom plate is arranged on the lower side of the second bottom plate, and a first adjustment rail is symmetrically arranged on the first bottom plate, and the first adjustment rail is used in conjunction with a first adjustment guide groove arranged on the second bottom plate;
[0015] The Y-direction calibration micrometer is fixedly connected to the second base plate, and the fine-adjustment screw of the Y-direction calibration micrometer is used in conjunction with the first base plate.
[0016] Preferably, the X-direction adjustment assembly includes an X-direction calibration micrometer, a second adjustment guide groove, and a second adjustment rail.
[0017] The X-direction calibration micrometer is fixedly connected to the adjustment platform, and the fine adjustment screw of the X-direction calibration micrometer is used in conjunction with the second base plate;
[0018] The second adjustment guide groove is symmetrically arranged on the lower side of the adjustment platform;
[0019] The second adjustment rail is arranged on the second base plate and is used in conjunction with the second adjustment guide groove.
[0020] Preferably, the adjustment assembly includes a lower support plate, an upper support plate, a movable connecting rod and a servo motor.
[0021] The lower support plate and the upper support plate are symmetrically arranged on the adjustment platform through positioning columns, and guide grooves are also provided on the lower support plate and the upper support plate;
[0022] The movable link is movably arranged between the lower support plate and the upper support plate, and one end of the movable link is connected to the positioning column, and the other end is connected to the probe moving piece through a first pin shaft;
[0023] The servo motor is arranged on the adjustment platform, and a first driving gear and a second driving gear are arranged at the driving end of the servo motor, and the first driving gear and the second driving gear are respectively engaged with the meshing teeth arranged on the lower support plate and the upper support plate.
[0024] Preferably, the meshing teeth are arranged on the outer edges of the lower support plate and the upper support plate.
[0025] Preferably, the probe moving pieces are circumferentially arranged between the lower support plate and the upper support plate, and detection center holes are formed at the front ends of the plurality of probe moving pieces for use in conjunction with the metal wire.
[0026] Preferably, the tail end connection of the probe moving piece is provided with a moving guide hole and a pin-connecting positioning hole.
[0027] The pin-jointed positioning hole is used in conjunction with the first pin shaft;
[0028] A second pin is provided in the movable guide hole;
[0029] The first pin and the second pin are both used in conjunction with the guide groove 18 .
[0030] Preferably, the detection mechanism includes a first probe contact guide wire and a second probe contact guide wire that cooperate with each other, the first probe contact guide wire and the second probe contact guide wire are both arranged in the guide wire embedding groove on the probe moving piece, and the tail ends of the first probe contact guide wire and the second probe contact guide wire are both connected to the power supply.
[0031] Preferably, an insulating protrusion is further provided in the guide wire embedding groove, and the first probe contact guide wire and the second probe contact guide wire are respectively provided on both sides of the insulating protrusion, and are used in conjunction with the positioning guide groove provided on the probe moving piece.
[0032] A method for using a metal wire vibration detection device, comprising:
[0033] Step 1: Centering adjustment
[0034] Before testing, the detection adjustment mechanism is fine-tuned in both the X and Y directions by using the X- and Y-direction adjustment components according to the position of the metal wire to be tested at the center of the detection center hole, so that the metal wire to be tested is always located at the center of the center detection hole when static;
[0035] Step 2: Inspection and adjustment of the center inspection hole diameter
[0036] At the beginning of the test, the aperture of the detection center hole is the largest. The aperture of the center detection hole is gradually adjusted through the detection adjustment mechanism. When the metal wire vibrates, the detection circuit is turned on, the two electrodes are turned on and the output signal is output. By recording the position information of the servo motor at this time, the current position of the metal wire vibration is known, and the vibration measurement of the metal wire is completed.
[0037] The beneficial effects of the present invention are as follows: the present invention discloses a metal wire vibration detection device and method. Compared with the prior art, the improvements of the present invention are:
[0038] The present invention provides a metal wire vibration detection device and method. The detection device includes an alignment mechanism, a detection adjustment mechanism, and a detection mechanism that cooperate with each other. When used:
[0039] 1. During installation, the X- and Y-axis adjustment components of the alignment mechanism ensure that the metal wire to be tested is always located at the center of the detection center hole of the device when static. This ensures that the first and second probes of each detection mechanism have the same probability of contacting the wire, effectively ensuring the detection accuracy of the wire vibration. Furthermore, the device directly measures the vibration of the wire and evaluates its quality, which is more intuitive and accurate than evaluating the wire's quality by observing its surface properties.
[0040] 2. During the test and adjustment process, the servo motor driving the detection adjustment mechanism rotates, which in turn drives the lower and upper support plates to rotate. The movable connecting rod and guide groove then drive the probe moving piece to move, thereby adjusting the size of the central detection hole of the device to make it suitable for vibration detection of metal wires of different materials or diameters.
[0041] 3. During the vibration test of metal characters, the detection circuit is turned on by the first probe of the detection mechanism touching the guide wire and the second probe touching the guide wire and the metal wire. The position information of the servo motor at this time is converted into the vibration size of the metal wire to be tested. The amplitude of the metal wire can be detected and recorded in real time and effectively. It has the advantages of simple structure, easy use, high detection efficiency and accuracy. BRIEF DESCRIPTION OF THE DRAWINGS
[0042] Figure 1 It is a structural schematic diagram of the metal wire vibration detection device of the present invention.
[0043] Figure 2 It is a bottom view of the metal wire vibration detection device of the present invention.
[0044] Figure 3 This is an installation effect diagram of the adjustment platform of the present invention.
[0045] Figure 4 It is a front view of the alignment mechanism of the present invention.
[0046] Figure 5 It is a structural schematic diagram of the alignment mechanism of the present invention.
[0047] Figure 6 This is an installation effect diagram of the detection and adjustment mechanism of the present invention.
[0048] Figure 7 It is a structural schematic diagram of the detection and adjustment mechanism of the present invention.
[0049] Figure 8 This is a diagram showing the installation effect of the probe moving piece of the present invention.
[0050] Figure 9 This is an installation effect diagram of the servo motor of the present invention.
[0051] Figure 10 This is a diagram showing the formation effect of the detection center hole of the present invention.
[0052] Figure 11 It is a structural schematic diagram of the detection mechanism of the present invention.
[0053] Figure 12 It is a structural schematic diagram of the lower support plate and the upper support plate of the present invention.
[0054] Figure 13 It is a structural schematic diagram of the adjustment platform of the present invention.
[0055] Figure 14 Schematic diagram of the structure of the connecting piece of the present invention.
[0056] Figure 15 It is a structural schematic diagram of the movable connecting rod of the present invention.
[0057] Figure 16 Schematic diagram of the structure of the positioning column of the present invention.
[0058] Figure 17 It is a structural schematic diagram of the probe moving piece of the present invention.
[0059] Wherein: 1. Metal wire, 2. First base plate, 3. Second base plate, 4. Adjustment platform, 5. Lower support plate, 6. Y-direction calibration micrometer, 7. Upper support plate, 8. Positioning column, 9. Probe moving plate, 10. X-direction calibration micrometer, 11. Movable connecting rod, 12. First pin, 13. Connecting piece, 14. First adjustment guide groove, 15. First adjustment rail, 16. Second adjustment guide groove, 17. Second adjustment rail, 18. Guide groove, 19. Engaging teeth, 20. Weight reduction observation hole, 21. Servo motor, 22. Second pin, 23. First drive gear, 24. Second drive gear, 25. First probe contact guide wire, 26. Insulation protrusion, 27. Moving guide hole, 28. Guide wire embedding groove, 29. Pinned positioning hole, 30. Second probe contact guide wire, 31. Positioning guide groove. DETAILED DESCRIPTION
[0060] In order to enable those skilled in the art to better understand the technical solution of the present invention, the technical solution of the present invention is further described below in conjunction with the accompanying drawings and embodiments.
[0061] Example 1: Refer to the attached Figure 1-17 The wire vibration detection device shown in the figure includes an alignment mechanism, a detection adjustment mechanism and a detection mechanism that cooperate with each other, wherein
[0062] The alignment mechanism is provided on the lower side of the adjustment platform 4 and includes an X-direction adjustment component and a Y-direction adjustment component that cooperate with each other. When in use, the X-direction adjustment component and the Y-direction adjustment component are used to achieve fine adjustment in both the X and Y directions. It is mainly used for position adjustment during installation of the device, with the purpose of ensuring that the metal wire 1 to be tested is always located at the center of the central detection hole of the device when static. A number of positioning posts 8 are also provided on the adjustment platform 4.
[0063] The detection adjustment mechanism is arranged on the upper side of the adjustment platform 4, and includes an adjustment component and a plurality of probe movable pieces 9. The adjustment component is used to adjust the position of the probe movable piece 9, thereby adjusting the size of the central detection hole of the detection device, making it suitable for vibration detection of the metal wire 1 to be tested with different materials or diameters;
[0064] The detection mechanism is arranged on the probe moving piece 9 and is used in conjunction with the metal wire 1 to be tested to detect the vibration of the metal wire 1 to be tested.
[0065] Preferably, in order to facilitate the Y-direction adjustment of the position of the adjustment platform 4 during installation, so that the metal wire 1 to be measured is always located at the center of the central detection hole of the device when it is static, the Y-direction adjustment component is designed to be on the lower side of the X-direction adjustment component, including a first base plate 2, a second base plate 3 and a Y-direction calibration micrometer 6, wherein
[0066] The first bottom plate 2 is arranged on the lower side of the second bottom plate 3, and a first adjustment rail 15 is symmetrically arranged on the first bottom plate 2;
[0067] The second bottom plate 3 is a horizontal adjustment plate used in conjunction with the first bottom plate 2, and a first adjustment guide groove 14 is provided on the lower side of the second bottom plate 3 for use in conjunction with the first adjustment rail 15;
[0068] The Y-direction calibration micrometer 6 is fixedly connected to the second base plate 3 through a connecting piece 13, and the fine-adjustment screw of the Y-direction calibration micrometer 6 is in contact with the side wall of the first base plate 2. When in use, the first base plate 2 is pushed to move in the Y direction by adjusting the fine-adjustment screw of the Y-direction calibration micrometer 6 to extend or retract, so that the metal wire 1 to be measured is always located at the center position of the central detection hole of the device when static.
[0069] Preferably, in order to facilitate the X-direction adjustment of the position of the adjustment platform 4 during installation, so that the metal wire 1 to be measured is always located at the center of the central detection hole of the device when static, the X-direction adjustment assembly is designed to include an X-direction calibration micrometer 10, a second adjustment guide groove 16 and a second adjustment rail 17, wherein,
[0070] The X-direction calibration micrometer 10 is fixedly mounted on the adjustment platform 4 via a connector 13, and the fine-adjustment screw of the X-direction calibration micrometer 10 contacts the side wall of the second base plate 3. When in use, the X-direction calibration micrometer 10 pushes the second base plate 3 to move.
[0071] The second adjustment guide groove 16 is symmetrically arranged on the lower side of the adjustment platform 4;
[0072] The second adjustment rail 17 is symmetrically arranged on the second base plate 3 and is used in conjunction with the second adjustment guide groove 16. When in use, the movement direction of the second base plate 3 is guided by the engagement and guiding effect of the second adjustment guide groove 16 and the second adjustment rail 17.
[0073] The use process and principle of the alignment mechanism described in this embodiment include:
[0074] After installing the device, when testing the device, the relative position relationship between the metal wire 1 and the adjustment platform 4 is adjusted by fine-tuning the Y-direction calibration micrometer 6 and the X-direction calibration micrometer 10 according to the position of the metal wire 1 at the center of the detection center hole, so that the metal wire 1 to be tested is always located at the center position of the center detection hole of the device when static, thereby ensuring the detection accuracy of the detection mechanism.
[0075] Example 2: Different from the above-mentioned Example 1, in order to facilitate the adjustment of the position of the probe moving piece 9 so that the size of the central detection hole can be suitable for vibration detection of the metal wire 1 to be tested with different materials or diameters, the design of the adjustment component includes a lower support plate 5, an upper support plate 7, a movable connecting rod 11 and a servo motor 21, wherein
[0076] The lower support plate 5 and the upper support plate 7 are symmetrically arranged on the adjustment platform 4 through the positioning column 8, wherein the lower support plate 5 is arranged on the lower side of the upper support plate 7, and meshing teeth 19 are provided on the outer edges of the lower support plate 5 and the upper support plate 7;
[0077] The movable link 11 is movably arranged between the lower support plate 5 and the upper support plate 7, and one end of the movable link 11 is rotatably connected to the positioning column 8, and the other end is rotatably connected to the probe moving piece 9 through the first pin shaft 12;
[0078] The servo motor 21 is mounted on the upper side of the adjustment platform 4 through a motor mounting seat, and a first drive gear 23 and a second drive gear 24 are provided at the driving end of the servo motor 21. The first drive gear 23 and the second drive gear 24 are respectively engaged with the meshing teeth 19 provided on the lower support plate 5 and the upper support plate 7, that is, when in use, the lower support plate 5 and the upper support plate 7 are driven to rotate by the driving action of the servo motor 21.
[0079] Preferably, the lower support plate 5 and the upper support plate 7 are both provided with a guide groove 18 and a weight-reducing observation hole 20, wherein the guide groove 18 is used in conjunction with the first pin shaft 12, and the weight-reducing observation hole 20 is used for weight reduction and observing the movement of the movable connecting rod 11 during use to prevent the movable connecting rod 11 from getting stuck during use.
[0080] Preferably, the probe moving piece 9 is arranged in a circumferential manner between the lower support plate 5 and the upper support plate 7, and two moving guide holes 27 and pin-connecting positioning holes 29 are provided at the tail end connection of the probe moving piece 9, wherein
[0081] The pin-jointed positioning hole 29 is used in conjunction with the first pin shaft 12 to rotatably mount the probe movable piece 9 on the inner end of the movable link 11 via the first pin shaft 12;
[0082] A second pin shaft 22 is fixedly installed in the movable guide hole 27 for use in conjunction with the guide groove 18; during the rotation of the lower support plate 5 and the upper support plate 7, the pushing and guiding effect of the guide groove 18 is utilized to adjust the relative position relationship between each probe movable piece 9, and adjust the size of the central detection hole formed at the front end of multiple probe movable pieces 9.
[0083] The use process and principle of the detection and adjustment mechanism described in this embodiment include: when using the detection, by driving the servo motor 21 to rotate, the driving action of the servo motor 21 drives the lower support plate 5 and the upper support plate 7 to rotate, and then the movable connecting rod 11 and the guide groove 18 drive the probe moving plate 9 to move, so as to adjust the size of the central detection hole of the device to make it suitable for vibration detection of the metal wire 1 to be tested with different materials or diameters.
[0084] Example 3: Different from the above examples, in order to facilitate the detection of the vibration of the metal wire 1 during use, the detection mechanism is designed to include a first probe contact guide wire 25 and a second probe contact guide wire 30. The first probe contact guide wire 25 and the second probe contact guide wire 30 are both arranged in the guide wire embedding groove 28 on the probe moving piece 9, and the tail ends of the first probe contact guide wire 25 and the second probe contact guide wire 30 are both connected to the power supply to form an open-circuit detection circuit, and at the same time to ensure that the detection circuit is open-circuited when it is not in contact with the metal wire 1.
[0085] Preferably, an insulating protrusion 26 is further provided in the guide wire embedding groove 28, and the first probe contact guide wire 25 is separated from the second probe contact guide wire 30 by the insulating protrusion 26. At the same time, the insulating protrusion 26 is also used in conjunction with the positioning guide groove 31 on the adjacent probe moving piece 9 to play a guiding role during adjustment.
[0086] The use process and principle of the detection mechanism described in this embodiment include:
[0087] During use, when the metal wire 1 vibrates, when the metal wire touches the first probe contact wire 25 and the second probe contact wire 30, the detection circuit is turned on, and the two electrodes are turned on to output signals. By recording the position information of the servo motor 21 at this time, the current position of the vibration of the metal wire 1 can be known, that is, the vibration measurement of the metal wire 1 is completed; at the beginning of the test, the aperture of the detection center hole is the largest. During the test, the servo motor 21 drives the probe moving piece 9 to move through the first drive gear 23 and the second drive gear 24, the lower support plate 5 and the upper support plate 7 and the movable connecting rod 11, gradually reducing the aperture of the detection center hole composed of multiple probe moving pieces 9, until the metal wire 1 to be tested contacts the first probe contact wire 25 and the second probe contact wire 30 of the probe moving piece to output signals, and the amplitude of the metal wire can be obtained by obtaining the position information of the servo motor at this time.
[0088] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A metal wire vibration detection device, characterized in that: It includes an alignment mechanism, a detection and adjustment mechanism, and a detection mechanism that cooperate with each other; The alignment mechanism is arranged on the lower side of the adjustment platform, and includes an X-direction adjustment component and a Y-direction adjustment component that cooperate with each other, and a plurality of positioning columns are also arranged on the adjustment platform; The detection adjustment mechanism is arranged on the upper side of the adjustment platform through the positioning column on the adjustment platform, and includes an adjustment component and a plurality of probe moving pieces that cooperate with each other; The detection mechanism is arranged on the probe movable piece and is used in conjunction with the metal wire to be tested; The Y-direction adjustment assembly is located below the X-direction adjustment assembly and includes a first base plate, a second base plate, and a Y-direction calibration micrometer; The first base plate is arranged on the lower side of the second base plate, and a first adjustment rail is symmetrically arranged on the first base plate, and the first adjustment rail is used in conjunction with a first adjustment guide groove provided on the second base plate; the Y-direction calibration micrometer is fixedly connected to the second base plate, and the fine adjustment screw of the Y-direction calibration micrometer is used in conjunction with the first base plate; The X-direction adjustment assembly includes an X-direction calibration micrometer, a second adjustment guide slot, and a second adjustment rail; The X-direction calibration micrometer is fixedly connected to the adjustment platform, and the fine adjustment screw of the X-direction calibration micrometer is used in conjunction with the second base plate; The second adjustment guide groove is symmetrically arranged on the lower side of the adjustment platform; The second adjustment rail is arranged on the second base plate and is used in conjunction with the second adjustment guide groove; The adjustment assembly includes a lower support plate, an upper support plate, a movable connecting rod and a servo motor; The lower support plate and the upper support plate are symmetrically arranged on the adjustment platform through positioning columns, and guide grooves are also provided on the lower support plate and the upper support plate; The movable link is movably arranged between the lower support plate and the upper support plate, and one end of the movable link is connected to the positioning column, and the other end is connected to the probe moving piece through a first pin shaft; The servo motor is arranged on the adjustment platform, and a first driving gear and a second driving gear are arranged at the driving end of the servo motor, and the first driving gear and the second driving gear are respectively engaged with the meshing teeth arranged on the lower support plate and the upper support plate; The detection mechanism includes a first probe contact guide wire and a second probe contact guide wire used in conjunction with each other, the first probe contact guide wire and the second probe contact guide wire are both arranged in the guide wire embedding groove on the probe moving piece, and the tail ends of the first probe contact guide wire and the second probe contact guide wire are both connected to the power supply; An insulating protrusion is further provided in the guide wire embedding groove, and the first probe contact guide wire and the second probe contact guide wire are respectively provided on both sides of the insulating protrusion and are used in conjunction with the positioning guide groove provided on the probe moving piece; The vibration detection device is implemented by the following method: include Step 1: Centering adjustment Before testing, the detection adjustment mechanism is fine-tuned in both the X and Y directions by using the X- and Y-direction adjustment components according to the position of the metal wire to be tested at the center of the detection center hole, so that the metal wire to be tested is always located at the center of the center detection hole when static; Step 2: Inspection and adjustment of the center inspection hole diameter At the beginning of the test, the aperture of the detection center hole is the largest. The aperture of the center detection hole is gradually adjusted through the detection adjustment mechanism. When the metal wire vibrates, the detection circuit is turned on, the two electrodes are turned on and the output signal is output. By recording the position information of the servo motor at this time, the current position of the metal wire vibration is known, and the vibration measurement of the metal wire is completed.
2. A metal wire vibration detection device according to claim 1, characterized in that: The meshing teeth are arranged on the outer edges of the lower support plate and the upper support plate.
3. A metal wire vibration detection device according to claim 2, characterized in that: The probe moving pieces are arranged in a circumferential shape between the lower support plate and the upper support plate, and detection center holes are formed at the front ends of the plurality of probe moving pieces for use in conjunction with the metal wire.
4. A metal wire vibration detection device according to claim 3, characterized in that: The tail end connection of the probe moving piece is provided with a moving guide hole and a pin-jointed positioning hole. The pin-jointed positioning hole is used in conjunction with the first pin shaft; A second pin is provided in the movable guide hole; The first pin shaft and the second pin shaft are both used in conjunction with the guide groove.
Citation Information
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Metal wire detection device
CN210136185U
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