CN221174935U - Magnetic force measuring equipment - Google Patents

Magnetic force measuring equipment Download PDF

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Publication number
CN221174935U
CN221174935U CN202322766432.0U CN202322766432U CN221174935U CN 221174935 U CN221174935 U CN 221174935U CN 202322766432 U CN202322766432 U CN 202322766432U CN 221174935 U CN221174935 U CN 221174935U
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China
Prior art keywords
positioning
magnet
magnetic force
speed reducer
measuring
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CN202322766432.0U
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Chinese (zh)
Inventor
李汉达
叶冬根
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Shenzhen Ningda Automation Equipment Co ltd
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Shenzhen Ningda Automation Equipment Co ltd
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Abstract

The utility model provides a magnetic force measuring equipment, it relates to magnetic force test technical field, concretely relates to magnetic force measuring equipment of key parts in AI product production process. The automatic positioning and correcting device comprises a frame, a safety cover, a positioning and correcting mechanism, a moving mechanism, a measuring mechanism and a positioning jig, wherein the safety cover is fixedly arranged at the top end of the frame, the positioning and correcting mechanism, the moving mechanism and the measuring mechanism are arranged in the safety cover, the bottom ends of the positioning and correcting mechanism and the moving mechanism are fixedly arranged at the top end of the frame, the positioning jig is arranged at the top end of the positioning and correcting mechanism, the positioning and correcting mechanism is arranged in the moving mechanism, and the measuring mechanism is arranged at the front end of the moving mechanism. After the technical scheme is adopted, the utility model has the beneficial effects that: the magnetic force measuring device can detect the dimension of the product in the height direction, accurately position the position between the standard magnetic pole connected with the tension measuring sensor and the measured magnetic object, ensure the precision and repeatability of magnetic force measuring values, and realize the magnetic force measurement of magnetic components with different distributions in the product.

Description

Magnetic force measuring equipment
Technical Field
The utility model relates to the technical field of magnetic force testing, in particular to magnetic force measuring equipment for key components in the production process of AI products.
Background
The AI product needs to detect the self parts in the production process to ensure that the AI product meets the detection standard, wherein the measurement of the magnetic force of key parts in the AI product is included. The existing magnetic force measurement is mostly carried out on the magnet in the product through a handheld magnetic force induction device.
The existing magnetic force measuring equipment has certain defects, the measured data of the existing magnetic force measuring equipment are not accurate enough, and the product detection height is uncontrollable by a manual detection mode, so that the measured data error is larger.
Disclosure of utility model
The utility model aims to overcome the defects and shortcomings of the prior art, and provides a magnetic force measuring device which can detect the dimension in the height direction through a high-precision sensor, can measure magnetic force of magnetic parts distributed differently in an AI product, and can ensure the precision and repeatability of magnetic force measurement values.
In order to achieve the above purpose, the utility model adopts the following technical scheme: the magnetic force measuring equipment comprises a frame 1, a safety cover 2, a positioning correcting mechanism 3, a moving mechanism 4, a measuring mechanism 5 and a positioning jig 6, wherein the safety cover 2 is fixedly arranged at the top end of the frame 1, the positioning correcting mechanism 3, the moving mechanism 4 and the measuring mechanism 5 are arranged in the safety cover 2, the bottom ends of the positioning correcting mechanism 3 and the moving mechanism 4 are fixedly arranged at the top end of the frame 1, the positioning jig 6 is arranged at the top end of the positioning correcting mechanism 3, the positioning correcting mechanism 3 is arranged in the moving mechanism 4, and the measuring mechanism 5 is arranged at the front end of the moving mechanism 4; the measuring mechanism 5 comprises a servo motor 51, a tension measuring sensor 52, a magnet measuring rod 53, a magnet height detector 54, a CCD light source 55 and a magnet position detector 56, wherein the rear side of the servo motor 51 is arranged on the front side of the up-down moving assembly 45 through a motor fixing plate 451, the tension measuring sensor 52 and the magnet measuring rod 53 are arranged at the output end of the servo motor 51, the magnet measuring rod 53 is arranged at the lower end of the tension measuring sensor 52, the magnet height detector 54 is arranged below the magnet measuring rod 53, the magnet height detector 54 is arranged at the lower end of the motor fixing plate 451, the CCD light source 55 and the magnet position detector 56 are arranged on the left side of the magnet height detector 54, and the CCD light source 55 is arranged at the lower end of the magnet position detector 56.
The moving mechanism 4 comprises a front-back moving assembly 41, a sliding rail fixing plate 42, a left-right moving assembly 43, fixing blocks 44 and an up-down moving assembly 45, wherein the bottom ends of the two front-back moving assemblies 41 are respectively arranged at the top ends of the two supporting blocks 13, the bottom ends of the two supporting blocks 13 are fixedly arranged at the top ends of the frame 1, the top ends of the two front-back moving assemblies 41 are respectively connected with the left end and the right end of the sliding rail fixing plate 4, the front side of the sliding rail fixing plate 41 is fixedly provided with the left-right moving assembly 43, the front side of the left-right moving assembly 43 is slidably provided with the fixing blocks 44, and the front side of the fixing blocks 44 is fixedly provided with the up-down moving assembly 45. The moving mechanism 4 is used to move the measuring mechanism 5 to the upper end of the product to be measured.
The structure of the forward and backward moving assembly 41, the left and right moving assembly 43 and the up and down moving assembly 45 is identical, the forward and backward moving assembly 41 comprises a driving motor 411, a moving slide rail 412, a connecting screw rod 413 and a connecting slide block 414, the driving motor 411 is arranged on one side of the moving slide rail 412, the connecting screw rod 413 is arranged at the output end of the driving motor 411, the connecting screw rod 413 is arranged in the moving slide rail 412, the connecting slide block 414 is slidably arranged on the moving slide rail 412, and the lower end of the connecting slide block 414 is arranged on the connecting screw rod 413. The slide rail fixing plate 42 is connected to the slide block of the forward/backward moving unit 41, the slide block of the left/right moving unit 43 is connected to the fixing block 44, and the slide block of the up/down moving unit 45 is connected to the motor fixing plate 451.
The positioning correction mechanism 3 comprises a positioning bracket 31, a first connecting plate 32, a first speed reducer 33, a front and rear rotating motor 34, a second connecting plate 35, a third connecting plate 36, a second speed reducer 37, a left and right rotating motor 38 and a rotating motor 39, wherein the bottom ends of the two positioning brackets 31 are fixedly arranged at the top end of the frame 1, the first connecting plate 32 is rotatably arranged between the upper ends of the two positioning brackets 31, the right side of the first connecting plate 32 is connected to the output end of the first speed reducer 33, the first speed reducer 33 is fixedly arranged at the upper right side of the positioning bracket 31, the right side of the first speed reducer 33 is provided with the front and rear rotating motor 34, the front and rear sides of the first connecting plate 32 are respectively provided with the second connecting plate 35, the third connecting plate 36 is rotatably arranged between the two second connecting plates 35, the rear side of the third connecting plate 36 is connected with the output end of the second speed reducer 37, the input end of the second speed reducer 37 is connected with the left and right rotating motor 38, the rotating motor 39 is arranged at the top end of the third connecting plate 36, the rotating jig 39 is arranged at the upper end of the positioning jig 61, and the positioning jig 61 is arranged at the upper end of the positioning jig 61. The rotary motors in the positioning correction mechanism cooperate to correct the horizontal plane of the magnet in the product.
The rear sides of the CCD light source 55 and the magnet position detector 56 are respectively arranged at the upper end and the lower end of the positioning plate 561, the rear side of the positioning plate 561 is fixedly arranged on the positioning slide block 562, the positioning slide block 562 is slidably arranged on the connecting slide rail 563, the rear side of the connecting slide rail 563 is arranged at the left side of the fixed block 44, the top end of the connecting slide rail 563 is arranged at the output end of the third speed reducer 564, the input end of the third speed reducer 564 is provided with the power motor 565, and the power motor 565 is arranged at the left rear end of the fixed block 44. The output end of the third speed reducer 564 is connected with a screw rod, the screw rod is arranged in the connecting slide rail 563 and is connected with the positioning slide block 562, and when in use, the power motor drives the screw rod through the third speed reducer 564, so that the positioning slide block 562 moves up and down along with the rotation of the screw rod, and the positions of the CCD light source 55 and the magnet position detector 56 are changed.
Both ends are all provided with a safety grating 21 about the front side of safety cover 2, and the front side of safety cover 2 is provided with display screen 22, and the front side upper end of safety cover 2 is provided with several operating button 23.
The four corners of the bottom end of the frame 1 are respectively provided with supporting feet 11 and idler wheels 12.
The working principle of the utility model is as follows: when the positioning correction mechanism is used, a product to be detected is placed on the positioning jig, and the rotary motors in the positioning correction mechanism are matched with the action to correct the horizontal plane of the magnet in the product. The moving mechanism moves the magnet position detector to detect the product, confirms the position of the magnet in the product, the magnet position detector transmits the position information to the control system, the control system drives the Gaussian probe to move to the upper side of the magnet according to the information, the magnet height detector detects the height of the magnet in the magnet measuring rod and the height of the magnet in the product at the moment to obtain relevant height data, the magnet height detector transmits the detected data to the equipment control system, and the equipment system reads the height data to calculate, determine the height of the magnet which needs to be lowered and align the position of the magnet. The up-and-down moving assembly is started to drive the magnet measuring rod to slowly descend to the height to be measured, and a tension value, namely a magnetic force value of the current position, can be obtained at the moment that the tension measuring sensor stays at the current height. The tension measurement sensor transmits the measured data to the equipment control center. After the test is completed, each mechanism returns to the original position, and the product is taken out manually.
After the technical scheme is adopted, the utility model has the beneficial effects that: the magnetic force measuring device is provided with the tension measuring sensor, the magnet height detector and the magnet position detector, can detect the height direction size of a product, accurately positions and connects the direction between the standard magnetic pole of the tension measuring sensor and a measured magnetic object, ensures the precision and repeatability of magnetic force measuring values, and realizes magnetic force measurement on magnetic components with different distributions in the product.
Drawings
In order to more clearly illustrate the embodiments of the utility model or the technical solutions of the prior art, the drawings which are used in the description of the embodiments or the prior art will be briefly described, it being obvious that the drawings in the description below are only some embodiments of the utility model, and that other drawings can be obtained according to these drawings without inventive faculty for a person skilled in the art.
Figure 1 is a schematic view of the structure of the present utility model,
Figure 2 is a front view of the present utility model,
Figure 3 is a schematic view of the internal structure of the present utility model,
Figure 4 is an enlarged view of a in figure 3,
Figure 5 is a schematic view of the right side of the moving mechanism in the present utility model,
Figure 6 is an enlarged view of B in figure 5,
Figure 7 is a schematic view of the structure of the left side of the moving mechanism in the present utility model,
Figure 8 is an enlarged view of C in figure 7,
Figure 9 is a side view of figure 8,
FIG. 10 is a schematic view of a positioning correction mechanism according to the present utility model.
Reference numerals illustrate: the safety device comprises a frame 1, a safety cover 2, a positioning correcting mechanism 3, a moving mechanism 4, a measuring mechanism 5, a positioning jig 6, a supporting foot 11, a roller 12, a safety grating 21, a display screen 22, an operation button 23, a positioning bracket 31, a first connecting plate 32, a first speed reducer 33, a front-back rotating motor 34, a second connecting plate 35, a third connecting plate 36, a second speed reducer 37, a left-right rotating motor 38, a rotating motor 39, a front-back moving assembly 41, a slide rail fixing plate 42, a left-right moving assembly 43, a fixing block 44, an up-down moving assembly 45, a servo motor 51, a tension measuring sensor 52, a magnet measuring rod 53, a magnet height detector 54, a CCD light source 55, a magnet position detector 56, a jig mounting plate 61, a driving motor 411, a moving slide rail 412, a connecting screw 413, a connecting slider 414, a motor fixing plate 451, a positioning plate 561, a positioning slider 562, a connecting slide rail 563, a third speed reducer and a power motor 565.
Detailed Description
Referring to fig. 1-10, the technical scheme adopted in the specific embodiment is as follows: the magnetic force measuring equipment comprises a frame 1, a safety cover 2, a positioning correcting mechanism 3, a moving mechanism 4, a measuring mechanism 5 and a positioning jig 6, wherein the safety cover 2 is fixedly arranged at the top end of the frame 1, the positioning correcting mechanism 3, the moving mechanism 4 and the measuring mechanism 5 are arranged in the safety cover 2, the bottom ends of the positioning correcting mechanism 3 and the moving mechanism 4 are fixedly arranged at the top end of the frame 1, the positioning jig 6 is arranged at the top end of the positioning correcting mechanism 3, the positioning correcting mechanism 3 is arranged in the moving mechanism 4, and the measuring mechanism 5 is arranged at the front end of the moving mechanism 4; the positioning correction mechanism 3 comprises a positioning bracket 31, a first connecting plate 32, a first speed reducer 33, a front and rear rotating motor 34, a second connecting plate 35, a third connecting plate 36, a second speed reducer 37, a left and right rotating motor 38 and a rotating motor 39, wherein the bottom ends of the two positioning brackets 31 are fixedly arranged at the top end of the frame 1, the first connecting plate 32 is rotatably arranged between the upper ends of the two positioning brackets 31, the right side of the first connecting plate 32 is connected to the output end of the first speed reducer 33, the first speed reducer 33 is fixedly arranged at the upper right side of the positioning bracket 31, the right side of the first speed reducer 33 is provided with the front and rear rotating motor 34, the front and rear sides of the first connecting plate 32 are respectively provided with the second connecting plate 35, the third connecting plate 36 is rotatably arranged between the two second connecting plates 35, the rear side of the third connecting plate 36 is connected with the output end of the second speed reducer 37, the input end of the second speed reducer 37 is connected with the left and right rotating motor 38, the rotating motor 39 is arranged at the top end of the third connecting plate 36, the rotating jig 39 is arranged at the upper end of the positioning jig 61, and the positioning jig 61 is arranged at the upper end of the positioning jig 61.
The moving mechanism 4 comprises a front-back moving assembly 41, a sliding rail fixing plate 42, a left-right moving assembly 43, fixing blocks 44 and an up-down moving assembly 45, wherein the bottom ends of the two front-back moving assemblies 41 are respectively arranged at the top ends of the two supporting blocks 13, the bottom ends of the two supporting blocks 13 are fixedly arranged at the top ends of the frame 1, the top ends of the two front-back moving assemblies 41 are respectively connected with the left end and the right end of the sliding rail fixing plate 4, the left-right moving assembly 43 is fixedly arranged at the front side of the sliding rail fixing plate 41, the fixing blocks 44 are slidably arranged at the front side of the left-right moving assembly 43, and the up-down moving assembly 45 is fixedly arranged at the front side of the fixing blocks 44. The structure of the back-and-forth moving assembly 41, the left-and-right moving assembly 43 and the up-and-down moving assembly 45 is identical, the back-and-forth moving assembly 41 comprises a driving motor 411, a moving slide rail 412, a connecting screw rod 413 and a connecting slide block 414, the driving motor 411 is arranged on one side of the moving slide rail 412, the connecting screw rod 413 is arranged at the output end of the driving motor 411, the connecting screw rod 413 is arranged in the moving slide rail 412, the connecting slide block 414 is arranged on the moving slide rail 412 in a sliding mode, and the lower end of the connecting slide block 414 is arranged on the connecting screw rod 413. The sliders of the forward/backward movement unit 41, the left/right movement unit 43, and the up/down movement unit 45 are connected to the slide rail fixing plate 42, the fixing block 44, and the motor fixing plate 451, respectively. When the magnetic force measuring device is used, the driving motor 411 starts to work, the connecting screw rod 413 is driven to start to rotate, so that the connecting sliding block 414 moves forwards on the moving sliding rail 412, the sliding rail fixing plate 42 is driven to move forwards, the left-right moving assembly 43 moves forwards, the left-right moving assembly 43 drives the fixing block 44 to move left and right according to the same working principle, the up-down moving assembly 45 moves left and right, and the up-down moving assembly 45 drives the motor fixing plate 451 and the measuring mechanism 5 to move up and down according to the same principle, so that the position of the magnetic force measuring rod 53 is moved.
The measuring mechanism 5 comprises a servo motor 51, a tension measuring sensor 52, a magnet measuring rod 53, a magnet height detector 54, a CCD light source 55 and a magnet position detector 56, wherein the rear side of the servo motor 51 is arranged on the front side of the up-down moving assembly 45 through a motor fixing plate 451, the tension measuring sensor 52 and the magnet measuring rod 53 are arranged at the output end of the servo motor 51, the magnet measuring rod 53 is arranged at the lower end of the tension measuring sensor 52, the magnet height detector 54 is arranged below the magnet measuring rod 53, the magnet height detector 54 is arranged at the lower end of the motor fixing plate 451, the CCD light source 55 and the magnet position detector 56 are arranged on the left side of the magnet height detector 54, and the CCD light source 55 is arranged at the lower end of the magnet position detector 56. The servo motor 51 is started to drive the magnet measuring rod 53 to rotate, so that the direction of the magnet in the magnet measuring rod 53 rotates. When testing different products, if the sizes of the products are consistent with the sizes of the magnets in the magnet measuring rod 53, the magnet measuring rod 53 does not need to be replaced, otherwise, the built-in magnet measuring rod is required to be replaced. The measuring mechanism 5 is used for measuring the magnetic force of the product, and the tension measuring sensor 52 is used for measuring the tension value of the magnet measuring rod 53 at the moment of descending to a certain height, wherein the tension value is also the magnetic force value of the current position; the magnet is arranged at the lower end of the magnet measuring rod 53, and the magnet height detector 54 is used for detecting the height of the magnet, so that the height of the magnet is consistent; the magnet position detector 56 is used to detect the position of the magnetic component in the product.
The CCD light source 55 and the magnet position detector 56 are respectively mounted at the upper end and the lower end of the positioning plate 561, the rear side of the positioning plate 561 is fixedly mounted on the positioning slide block 562, the positioning slide block 562 is slidably mounted on the connecting slide rail 563, the rear side of the connecting slide rail 563 is mounted at the left side of the fixed block 44, the top end of the connecting slide rail 563 is mounted at the output end of the third speed reducer 564, the power motor 565 is mounted at the input end of the third speed reducer 564, and the power motor 565 is arranged at the left rear end of the fixed block 44.
Both ends are all provided with a safety grating 21 about the front side of safety cover 2, and the front side of safety cover 2 is provided with display screen 22, and the front side upper end of safety cover 2 is provided with several operating button 23.
The four corners of the bottom end of the frame 1 are respectively provided with supporting feet 11 and idler wheels 12. By adopting the technical scheme, the product is placed on the positioning jig 6, and the positioning correction mechanism 3 drives the positioning jig 6 to rotate so as to correct the horizontal plane of the magnet in the product. The front-back rotating motor 34 rotates to enable the first connecting plate 32 to rotate back and forth, the left-right rotating motor 34 drives the third connecting plate 36 to rotate left and right, the rotating motor directly drives the positioning jig 6 to rotate, and the first connecting plate 32, the second connecting plate 35, the third connecting plate 36, the jig mounting plate 61 and the positioning jig 6 are movably connected with each other, so that the positions of the magnets in a product can be adjusted by mutually matching the front-back rotating motor 34, the left-right rotating motor 38 and the rotating motor 39, and the horizontal plane of the magnets is corrected. After correction, the front-back moving unit 41 and the left-right moving unit 43 move the magnet position detector 56 to detect the product and determine the position of the magnet in the product. The magnet position detector transmits the position information to the control system, and the control system drives the moving mechanism according to the information to drive the Gaussian probe to move to the position above the magnet. The magnet height detector 54 measures the heights of the magnet in the magnet measuring rod 52 and the magnet in the product, respectively.
After the height of each magnet is accurately measured by the magnet height detector 54, relevant height data are obtained, the equipment control system height data are calculated, the magnet measuring rod 53 is controlled to descend, the distance between the two magnets is 1.3mm, and the testing distance can be ensured due to high module moving precision. After the magnet contours built in the magnet measuring rod 53 are aligned with the magnet contours on the surface of the product, the up-and-down moving assembly 45 drives the magnet measuring rod 53 to descend, so that when the distance between the two magnets is 1.3mm, the magnet measuring rod 53 stays at the current height to instantly obtain a tension value, and the tension value is the magnetic force value of the current position.
The foregoing is merely illustrative of the present utility model and not restrictive, and other modifications and equivalents thereof may occur to those skilled in the art without departing from the spirit and scope of the present utility model.

Claims (7)

1. Magnetic force measuring equipment, its characterized in that: the automatic positioning and correcting device comprises a frame (1), a safety cover (2), a positioning and correcting mechanism (3), a moving mechanism (4), a measuring mechanism (5) and a positioning jig (6), wherein the safety cover (2) is fixedly arranged at the top end of the frame (1), the positioning and correcting mechanism (3), the moving mechanism (4) and the measuring mechanism (5) are arranged in the safety cover (2), the bottom ends of the positioning and correcting mechanism (3) and the moving mechanism (4) are fixedly arranged at the top end of the frame (1), the positioning jig (6) is arranged at the top end of the positioning and correcting mechanism (3), the positioning and correcting mechanism (3) is arranged in the moving mechanism (4), and the measuring mechanism (5) is arranged at the front end of the moving mechanism (4); the measuring mechanism (5) comprises a servo motor (51), a tension measuring sensor (52), a magnet measuring rod (53), a magnet height detector (54), a CCD light source (55) and a magnet position detector (56), wherein the rear side of the servo motor (51) is arranged on the front side of the up-down moving assembly (45) through a motor fixing plate (451), the tension measuring sensor (52) and the magnet measuring rod (53) are arranged at the output end of the servo motor (51), the magnet measuring rod (53) is arranged at the lower end of the tension measuring sensor (52), the magnet height detector (54) is arranged below the magnet measuring rod (53), the magnet height detector (54) is arranged at the lower end of the motor fixing plate (451), the CCD light source (55) and the magnet position detector (56) are arranged on the left side of the magnet height detector (54), and the CCD light source (55) is arranged at the lower end of the magnet position detector (56).
2. The magnetic force measurement device of claim 1, wherein: the moving mechanism (4) comprises a front-back moving assembly (41), a sliding rail fixing plate (42), a left-right moving assembly (43), fixing blocks (44) and an up-down moving assembly (45), wherein the bottom ends of the two front-back moving assemblies (41) are respectively arranged at the top ends of the two supporting blocks (13), the bottom ends of the two supporting blocks (13) are fixedly arranged at the top ends of the frame (1), the top ends of the two front-back moving assemblies (41) are respectively connected with the left end and the right end of the sliding rail fixing plate (42), the left-right moving assembly (43) is fixedly arranged at the front side of the sliding rail fixing plate (42), the fixing blocks (44) are slidably arranged at the front sides of the left-right moving assemblies (43), and the up-down moving assembly (45) is fixedly arranged at the front sides of the fixing blocks (44).
3. The magnetic force measurement device of claim 2, wherein: the structure of back-and-forth movement subassembly (41), control movement subassembly (43), reciprocate subassembly (45) is the same completely, back-and-forth movement subassembly (41) are including driving motor (411), remove slide rail (412), connect lead screw (413), connect slider (414), driving motor (411) are installed in one side of removing slide rail (412), connect lead screw (413) are installed to the output of driving motor (411), connect lead screw (413) set up in the inside of removing slide rail (412), slidable mounting has connect slider (414) on removing slide rail (412), the lower extreme of connect slider (414) is installed on connect lead screw (413).
4. The magnetic force measurement device of claim 1, wherein: the positioning correction mechanism (3) comprises a positioning bracket (31), a first connecting plate (32), a first speed reducer (33), a front rotating motor (34), a second connecting plate (35), a third connecting plate (36), a second speed reducer (37), a left rotating motor (38) and a rotating motor (39), wherein the bottom ends of the two positioning brackets (31) are fixedly arranged at the top ends of a frame (1), the first connecting plate (32) is rotatably arranged between the upper ends of the two positioning brackets (31), the right side of the first connecting plate (32) is connected with the output end of the first speed reducer (33), the first speed reducer (33) is fixedly arranged at the upper end of the right side of the positioning bracket (31), the front rotating motor (34) is arranged on the right side of the first speed reducer (33), the front and rear rotating motor (34) is arranged on the right side of the first speed reducer (32), the second connecting plate (35) is rotatably arranged on the front and rear sides of the first connecting plate (32), the third connecting plate (36) is rotatably arranged between the two second connecting plates (35), the rear side of the third connecting plate (36) is connected with the output end of the second speed reducer (37), the second speed reducer (37) is fixedly arranged at the top end of the second speed reducer (37), the right rotating motor (37) is fixedly arranged at the top end of the second speed reducer (37), the upper end of the rotary motor (39) is provided with a jig mounting plate (61), the upper end of the jig mounting plate (61) is provided with a positioning jig (6), and the positioning jig (6) is mounted on an output shaft of the rotary motor (39).
5. The magnetic force measurement device of claim 1, wherein: the CCD light source (55) and the rear side of the magnet position detector (56) are respectively arranged at the upper end and the lower end of the positioning plate (561), the rear side of the positioning plate (561) is fixedly arranged on the positioning slide block (562), the positioning slide block (562) is slidably arranged on the connecting slide rail (563), the rear side of the connecting slide rail (563) is arranged at the left side of the fixed block (44), the top end of the connecting slide rail (563) is arranged at the output end of the third speed reducer (564), the input end of the third speed reducer (564) is provided with the power motor (565), and the power motor (565) is arranged at the left rear end of the fixed block (44).
6. The magnetic force measurement device of claim 1, wherein: both ends all are provided with a safety grating (21) about the front side of safety cover (2), and the front side of safety cover (2) is provided with display screen (22), and the front side upper end of safety cover (2) is provided with several operating button (23).
7. The magnetic force measurement device of claim 1, wherein: the four corners of the bottom end of the frame (1) are respectively provided with supporting feet (11) and idler wheels (12).
CN202322766432.0U 2023-10-16 2023-10-16 Magnetic force measuring equipment Active CN221174935U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202322766432.0U CN221174935U (en) 2023-10-16 2023-10-16 Magnetic force measuring equipment

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202322766432.0U CN221174935U (en) 2023-10-16 2023-10-16 Magnetic force measuring equipment

Publications (1)

Publication Number Publication Date
CN221174935U true CN221174935U (en) 2024-06-18

Family

ID=91462978

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202322766432.0U Active CN221174935U (en) 2023-10-16 2023-10-16 Magnetic force measuring equipment

Country Status (1)

Country Link
CN (1) CN221174935U (en)

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