Auxiliary device for microscopic detection of wire rod

By designing an auxiliary device for the microscopic inspection of wires, which uses a bracket and clamp assembly to fix the wires and drive their rotation, the problem of positional deviation caused by manual operation is solved, thus improving the accuracy and efficiency of the inspection.

CN223910772UActive Publication Date: 2026-02-13ZHUHAI GREE ELECTRIC ENTERPRISES +5
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Patent Information

Application Number
CN202520285129.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2026-02-13
Estimated Expiration
2035-02-21

AI Technical Summary

Technical Problem

In existing technologies, the microscopic inspection of enameled wires relies on manual fixing and rotation, which leads to positional shifts, affecting the accuracy and efficiency of the inspection, and it is impossible to simultaneously adjust microscope parameters and perform zoom operations.

Method used

An auxiliary device comprising a first support, a second support, a clamping assembly, and a driving assembly is designed. The support fixes the wire, and the clamping assembly clamps and drives the wire to rotate, thereby achieving stable positioning and all-round detection of the wire.

Benefits of technology

It improves the accuracy and efficiency of wire microscopic inspection, avoids wire position deviation, realizes automatic positioning and rotation, and reduces the loss of observation points and wasted time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wire manufacturing, in particular to an auxiliary device for wire microscopic detection. The device comprises a first support and a second support, the second support and the first support are oppositely arranged, the first support and the second support are respectively provided with a through hole, and a wire rod to be detected passes through the through holes so as to penetrate through the first support and the second support. The wire rod section located between the first support and the second support is used for microscopic detection, the clamp assembly clamps the wire rod section, the drive assembly drives the clamp assembly to rotate, the clamp assembly drives the wire rod section to rotate around the axis of the wire rod, and the wire rod section is driven by the drive assembly to rotate around the axis of the wire rod. According to the auxiliary device for microscopic detection of the wire rod, the wire rod to be detected can be stably fixed under a microscope, and the microscopic detection efficiency of the wire rod is effectively improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to wire rod manufacturing technical field, concretely relates to a kind of auxiliary device for wire rod micro detection. BACKGROUND

[0002] The enameled wire is a kind of conductor wire material with copper or aluminum as core material, and the insulating paint layer is coated outside, which is widely used in power system, electronic equipment, household appliances, industrial equipment, communication equipment and automotive electronics fields.In the production process of enameled wire, appearance inspection is an important link of quality control, which can effectively judge the quality level of product, and serve as an important basis for product quality anomaly analysis.

[0003] At present, the appearance detection of enameled wire mainly relies on digital microscope observation.During detection, the slender wire rod needs to be placed on the microscope observation table, and the wire rod is fixed, rotated and moved by hand to observe the microstructure of each part.However, when the magnification of microscope is high, manual operation is easy to cause the position of wire rod to deviate, so that the field of view is lost, which affects the accuracy and stability of detection.In addition, the way of manually fixing the wire rod also limits the activities of the observer's hands, so that the observer cannot simultaneously adjust the parameters of microscope and zoom in, which reduces the detection efficiency. SUMMARY

[0004] The utility model aims at avoiding the deficiencies in the prior art and providing an auxiliary device for wire rod micro detection, which can stably fix the wire rod to be detected under microscope, effectively improving the micro detection efficiency of wire rod.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:

[0006] An auxiliary device for wire rod micro detection is provided, which comprises,

[0007] A first support,

[0008] A second support is arranged opposite to the first support,

[0009] The first support and the second support are respectively provided with through holes, and the wire rod to be detected passes through the through holes to penetrate the first support and the second support, and the wire rod segment between the first support and the second support is used for micro detection,

[0010] The first support and the second support arranged opposite to each other facilitate the through holes respectively located thereon to form a through channel, so that the wire rod can be erected on the first support and the second support, and the first support and the second support are used for supporting the wire rod, which facilitates the micro detection of microscope.When observing a wire rod segment, the next wire rod segment can be continuously observed.

[0011] a clamp assembly clamping the wire segment,

[0012] The clamp assembly clamps the wire segment between the first support and the second support, so that the wire segment can be kept in a straight state, facilitating subsequent microscopic detection.

[0013] a driving assembly, the clamp assembly being fixed on the driving assembly, the driving assembly driving the clamp assembly to rotate, the clamp assembly driving the wire segment to rotate around the wire axis.

[0014] Since the clamp assembly clamps the wire, when the driving assembly drives the clamp assembly to rotate, the clamp assembly is driven to rotate, so that the wire rotates. The driving assembly drives the wire to rotate by 360°, for example, so that the entire circumferential surface of the wire can be observed.

[0015] In some embodiments, the first support is provided as a first support plate, and the second support is provided as a second support plate,

[0016] The plate surface of the first support plate is opposite to the plate surface of the second support plate, and the bottom of the first support plate and the bottom of the second support plate are fixedly connected by a base plate.

[0017] The through holes are respectively provided on the first support plate and the second support plate.

[0018] The first support and the second support are provided as support plates, which can provide installation positions for the through holes, and the base plate is used to stably fix the first support plate and the second support plate.

[0019] The first support plate, the second support plate and the base plate are made of engineering hard plastic or hard metal.

[0020] In use, the wire can be quickly moved under the microscope for detection by moving the base plate.

[0021] In some embodiments, the through hole on the first support plate and the through hole on the second support plate are on the same horizontal line.

[0022] The through hole on the first support plate and the through hole on the second support plate are on the same horizontal line, so that the wire segment to be detected can be on a horizontal line, improving the detection efficiency.

[0023] In some embodiments, the clamp assembly includes an upper clamp plate and a lower clamp plate, the upper and lower clamp plates clamping the wire segment by approaching each other, or the upper and lower clamp plates releasing the wire segment by moving away from each other.

[0024] The wire can be clamped by driving the upper clamping plate and the lower clamping plate, and the clamping of the upper clamping plate and the lower clamping plate can ensure that wires of various sizes can be stably clamped, avoid displacement of the wire due to inadaptation of the wire and the size of the through hole, and improve the accuracy of detection.

[0025] In some embodiments, the clamp assembly further comprises a back plate,

[0026] The back plate is provided with mounting plates at both ends,

[0027] The upper clamping plate and the lower clamping plate are located between the two mounting plates,

[0028] Each mounting plate is adapted with a screw rod, and the screw rods on each mounting plate are correspondingly fixed to the upper clamping plate and the lower clamping plate, and the screw rods rotate and drive the upper clamping plate and the lower clamping plate to approach or deviate from each other.

[0029] The back plate provides mounting positions for the mounting plates, and the upper clamping plate and the lower clamping plate are positioned between the mounting plates at both ends by the screw rods, and the screw rods are rotated to drive the upper clamping plate and the lower clamping plate to approach or deviate from each other, thereby clamping or releasing the wire. This mode is simple in structure and easy to operate.

[0030] In some embodiments, the upper clamping plate and / or the lower clamping plate comprises two clamping plate units, and a buffer spring is arranged between the two clamping plate units.

[0031] Since the buffer spring is arranged between the two clamping plate units, the buffer spring can effectively avoid the connection rigidity between the mounting plates and the upper clamping plate and the lower clamping plate, and avoid damaging the wire during clamping.

[0032] In some embodiments, the outer side of the upper clamping plate is opposite to the outer side of the lower clamping plate, the inner side of the upper clamping plate is opposite to the inner side of the lower clamping plate, and the inner side of the upper clamping plate and the inner side of the lower clamping plate are respectively provided with buffer gaskets. The buffer gaskets can be made of silica gel, soft rubber, adjusting bolts, or springs, and the adjusting bolts or springs are rotated to control the movement of the upper and lower clamping plates, and the spring can adjust the clamping force of the clamp to meet the clamping and clamping force adjustment of wires of different outer diameters.

[0033] The buffer gaskets arranged on the inner side of the upper clamping plate and the inner side of the lower clamping plate can effectively buffer the clamping force of the clamping plate on the wire, and avoid the problem of damaging the wire during clamping of the clamping plate.

[0034] In some embodiments, the driving assembly comprises a gear seat, the gear seat is arranged on the first support plate through a first shaft core, the first shaft core enables the gear seat to rotate, the gear seat faces the second support plate, and the back plate is fixed on the gear seat,

[0035] The through hole penetrates the back plate and the gear seat, and the gear seat drives the clamp assembly to rotate.

[0036] Since the clamp assembly is fixed on the gear seat, when the gear seat rotates, the clamp assembly can be driven to rotate, wherein the through hole penetrates the back plate and the gear seat, so that the wire is normally fixed on the corresponding support plate.

[0037] In some embodiments, the driving assembly further comprises a transmission gear, the transmission gear is arranged on the first support plate through a second shaft core, the second shaft core enables the transmission gear to rotate, and the transmission gear is engaged with the gear seat.

[0038] The transmission gear drives the gear seat to rotate.

[0039] In some embodiments, the driving assembly further comprises a power gear and a toothed rod, the power gear is arranged on the first support plate through a third shaft core, the power gear is engaged with the transmission gear,

[0040] The third shaft core enables the power gear to rotate, and the power gear drives the gear seat to rotate.

[0041] One end of the toothed rod is connected to the power gear, and the other end of the toothed rod penetrates the second support plate and is inserted with a hand turning disc.

[0042] Since the toothed rod is connected to the power gear, preferably, the toothed rod is connected to the third shaft core of the power gear, and the toothed rod can be rotated by rotating the hand turning disc, so as to drive the power gear to rotate.

[0043] The auxiliary device for wire micro-detection has the following beneficial effects:

[0044] The auxiliary device for wire micro-detection positions the wire to be detected through the first support and the second support, and then clamps the wire through the clamp assembly. Since the clamp is fixed on the driving device, the wire can only be displaced with the clamp, thereby avoiding the problem that the wire is easily displaced on the first support and the second support to affect the detection effect. In addition, the driving assembly can drive the clamp assembly to rotate around the axis of the wire, so that the wire is rotated with the rotation of the clamp assembly driven by the driving assembly during the detection process, the entire surface of the wire is detected, and the comprehensiveness of the detection is improved. In addition, the auxiliary device can automatically position and rotate the wire, and can replace the human hand to fix, rotate and move the wire, improve the test efficiency, reduce the time waste caused by the loss of observation points due to the position deviation of the wire, and greatly improve the efficiency and accuracy of the detection. BRIEF DESCRIPTION OF DRAWINGS

[0045] Figure 1It is the first visual structure schematic view of the auxiliary device for wire micro detection of the embodiment of the utility model.

[0046] Figure 2 It is the second visual structure schematic view of the auxiliary device for wire micro detection of the embodiment of the utility model.

[0047] Figure 3 It is the first visual structure schematic view of the clamp assembly of the embodiment of the utility model.

[0048] Figure 4 It is the second visual structure schematic view of the clamp assembly of the embodiment of the utility model.

[0049] Figure 5 It is the third visual structure schematic view of the clamp assembly of the embodiment of the utility model.

[0050] Reference signs

[0051] 1, first support, 2, second support, 3, through hole, 4, base plate, 5, upper clamping plate, 6, lower clamping plate, 7, back plate, 8, mounting plate, 9, screw rod, 10, buffer spring, 11, buffer gasket, 12, gear seat, 13, transmission gear, 14, power gear, 15, rack, 16, hand wheel, 17, clamping plate unit. DETAILED DESCRIPTION

[0052] Preferred embodiments of the present application will be described in more detail with reference to the drawings. Although the preferred embodiments of the present application are shown in the drawings, it should be understood that the present application can be implemented in various forms and should not be limited by the embodiments set forth herein. Rather, these embodiments are provided so that the present application is more thoroughly and completely conveyed to those skilled in the art, and the scope of the present application is fully conveyed to those skilled in the art.

[0053] The terms used in the present application are only for the purpose of describing specific embodiments, and are not intended to limit the present application. The singular form "a", "an" and "the" used in the present application and the appended claims are also intended to include the plural form, unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used herein means and includes any or all possible combinations of one or more associated listed items.

[0054] It should be understood that although the terms "first", "second", "third", etc. can be used herein to describe various information, these information should not be limited to these terms. These terms are only used to distinguish the same type of information from each other. For example, the first information can also be referred to as the second information, and similarly, the second information can also be referred to as the first information without departing from the scope of the present application. Therefore, the features defined as "first" and "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise specifically limited.

[0055] Embodiments

[0056] The enameled wire is a conductor wire material with copper or aluminum as the core material and an insulating paint layer outside, which is widely used in power systems, electronic equipment, household appliances, industrial equipment, communication equipment and automotive electronics. In the production process of enameled wire, appearance inspection is an important link of quality control, which can effectively judge the quality level of the product and serve as an important basis for product quality anomaly analysis.

[0057] At present, the appearance detection of enameled wire mainly relies on digital microscope observation. During detection, the slender wire material is placed on the microscope observation table, and the wire material is fixed, rotated and moved by hand to observe the microstructure of each part. However, when the magnification of the microscope is high, manual operation is easy to cause the position of the wire material to deviate, so that the field of view is lost, affecting the accuracy and stability of the detection. In addition, the way of manually fixing the wire material also limits the activities of the observer's hands, so that he cannot simultaneously adjust the parameters of the microscope and zoom in, reducing the detection efficiency.

[0058] To this end, the auxiliary device for wire micro-detection disclosed in the present embodiment, please refer to Figures 1-5 , comprising,

[0059] a first support 1,

[0060] a second support 2, the second support 2 is arranged opposite to the first support 1,

[0061] The first support 1 and the second support 2 are respectively provided with through holes 3, and the wire to be detected passes through the through holes 3 so as to penetrate the first support 1 and the second support 2, and the wire segment between the first support 1 and the second support 2 is used for micro-detection,

[0062] The first support 1 and the second support 2 arranged opposite to each other facilitate the through holes 3 located thereon to form a through channel, so as to facilitate the erection of the wire on the first support 1 and the second support 2, and the first support 1 and the second support 2 are used for supporting the wire, facilitating the micro-detection of the microscope. After observing a section of wire, the next section of wire can be continuously observed.

[0063] A clamp assembly clamps the wire segment,

[0064] The clamp assembly clamps the wire segment between the first support 1 and the second support 2, so that the wire segment can be kept flat for subsequent microscopic detection.

[0065] A drive assembly drives the clamp assembly to rotate, which drives the wire segment to rotate around the wire axis.

[0066] Since the clamp assembly clamps the wire, when the drive assembly drives the clamp assembly to rotate, it will drive the clamp assembly to rotate, thereby making the wire rotate. The drive assembly drives the wire to rotate by 360°, for example, so that the entire circumferential surface of the wire can be observed.

[0067] Specifically,

[0068] The first support 1 and the second support 2 are oppositely arranged, and a stable detection area is formed between them.

[0069] The first support 1 and the second support 2 are respectively provided with through holes 3, and the diameter of the through holes 3 is slightly larger than the diameter of the wire to be detected, so as to ensure that the wire can be smoothly penetrated.

[0070] The materials of the first support 1 and the second support 2 can be aluminum alloy or high-strength plastic to ensure the structural strength and lightness.

[0071] The clamp assembly is installed on the wire segment between the first support 1 and the second support 2, and is used to clamp the wire.

[0072] The clamp assembly includes a pair of adjustable clamping jaws to ensure stable clamping and not to damage the surface of the wire.

[0073] The drive assembly is installed at the bottom or side of the clamp assembly to drive the clamp assembly to rotate.

[0074] The drive assembly can adopt a micro motor to drive the clamp assembly to rotate around the wire axis through gear transmission or belt transmission.

[0075] The rotation speed of the micro motor can be adjusted by a controller to adapt to different detection needs, such as low-speed rotation for observing details and high-speed rotation for rapid scanning.

[0076] The wire to be detected is inserted from the through hole 3 of the first support 1, passes through the clamping area of the clamp assembly, and then is taken out from the through hole 3 of the second support 2.

[0077] Adjust the clamp assembly to firmly clamp the wire and ensure that the wire remains flat during detection.

[0078] The driving assembly is started, and the rotation angle and speed are set by the controller.

[0079] When the wire needs to be comprehensively detected, the driving assembly can drive the clamp assembly and the wire to rotate 360° around the shaft, so that the microscope can observe the entire circumferential surface of the wire.

[0080] During the rotation, the microscope performs microscopic detection on the wire in sections, and the detection personnel can observe the microscopic conditions of the wire surface in real time through the display screen of the microscope.

[0081] When a section of wire is detected, the clamp assembly is loosened, the wire is moved forward or backward by a distance, and the wire is clamped and fixed again.

[0082] The above rotation driving and detection steps are repeated to detect the next section of wire until the detection of the entire wire is completed.

[0083] In this embodiment, the first support 1 is provided as a first support 1 plate, and the second support 2 is provided as a second support 2 plate,

[0084] The plate surface of the first support 1 plate is opposite to the plate surface of the second support 2 plate, and the bottom of the first support 1 plate is fixedly connected with the bottom of the second support 2 plate through a base plate 4,

[0085] The through holes 3 are respectively arranged on the first support 1 plate and the second support 2 plate.

[0086] The first support 1 and the second support 2 are provided as support plates, which can provide installation positions for the through holes 3, and the base plate 4 is used to stably fix the first support 1 plate and the second support 2 plate.

[0087] The materials of the first support 1 plate, the second support 2 plate and the base plate 4 are engineering hard plastic or hard metal.

[0088] In use, the wire can be quickly moved under the microscope for detection by moving the base plate 4.

[0089] In this embodiment, the through hole 3 on the first support 1 plate is on the same horizontal line as the through hole 3 on the second support 2 plate.

[0090] The through hole 3 on the first support 1 plate is on the same horizontal line as the through hole 3 on the second support 2 plate, so that the detected wire section is on a horizontal line, improving the detection efficiency.

[0091] In this embodiment, the clamp assembly includes an upper clamp plate 5 and a lower clamp plate 6, and the upper and lower clamp plates 6 clamp the wire section by moving close to each other, or the upper and lower clamp plates 6 loosen the wire section by moving away from each other.

[0092] The wire can be clamped by driving the upper clamping plate 5 and the lower clamping plate 6, and the clamping effect of the upper clamping plate 5 and the lower clamping plate 6 can ensure that wires of various sizes can be stably clamped, avoiding the problem of wire displacement due to the size of the wire not matching the size of the through hole 3, and improving the accuracy of detection.

[0093] In this embodiment, the clamp assembly further comprises a back plate 7,

[0094] The back plate 7 is provided with mounting plates 8 at both ends,

[0095] The upper clamping plate 5 and the lower clamping plate 6 are located between the two mounting plates 8,

[0096] Each mounting plate 8 is fitted with a screw rod 9, and the screw rod 9 on each mounting plate 8 is fixedly connected to the upper clamping plate 5 and the lower clamping plate 6, and the screw rod 9 rotates and drives the upper clamping plate 5 and the lower clamping plate 6 to approach or move away from each other.

[0097] The back plate 7 provides mounting positions for the mounting plates 8, and the upper clamping plate 5 and the lower clamping plate 6 are positioned between the mounting plates 8 at both ends by the screw rod 9, and the screw rod 9 is rotated to drive the upper clamping plate 5 and the lower clamping plate 6 to approach or move away from each other, achieving clamping or loosening of the wire. This method is simple in structure and easy to operate.

[0098] Specifically,

[0099] The clamp assembly is the core component for clamping and loosening the wire, and the upper clamping plate 5 and the lower clamping plate 6 are the main parts of the clamp assembly, which are used to directly contact and clamp the wire.

[0100] The inner surfaces of the upper clamping plate 5 and the lower clamping plate 6 are designed as arcs matching the diameter of the wire, ensuring that they can fit the surface of the wire during clamping, avoiding damage to the wire, and providing stable clamping force.

[0101] The upper clamping plate 5 and the lower clamping plate 6 can be made of high-strength aluminum alloy or engineering plastic to ensure durability and lightness.

[0102] The back plate 7 is a support structure of the clamp assembly, and is provided with mounting plates 8 at both ends for fixing the upper clamping plate 5 and the lower clamping plate 6.

[0103] The mounting plates 8 are provided with screw rod 9 holes, and the screw rod 9 is connected to the mounting plates 8 by threads and is fixedly connected to the upper clamping plate 5 and the lower clamping plate 6.

[0104] The design of the back plate 7 provides stable mounting positions for the mounting plates 8, ensuring the overall structural strength of the clamp assembly.

[0105] The screw rod 9 is the key component for clamping and releasing. By rotating the screw rod 9, the upper clamp plate 5 and the lower clamp plate 6 can be driven to move towards or away from each other.

[0106] The screw rod 9 is connected with the upper clamp plate 5 and the lower clamp plate 6 through threads or sliding grooves. When the screw rod 9 rotates, the upper clamp plate 5 and the lower clamp plate 6 will move along the axial direction of the screw rod 9, thereby realizing clamping or releasing the wire.

[0107] The rotation of the screw rod 9 can be manually operated or automatically controlled by equipping a micro motor.

[0108] By adjusting the rotation angle of the screw rod 9, the clamping force can be controlled to ensure that the wire is stably clamped while avoiding excessive clamping that may cause deformation or damage to the wire.

[0109] By reversing the rotation of the screw rod 9, the upper clamp plate 5 and the lower clamp plate 6 move away from each other, thereby releasing the wire.

[0110] After releasing the wire, the wire can be moved to the next detection section and then clamped again for detection.

[0111] In this embodiment, the upper clamp plate 5 and / or the lower clamp plate 6 includes two clamp plate units 17, and a buffer spring 10 is arranged between the two clamp plate units 17.

[0112] Since the buffer spring 10 is arranged between the two clamp plate units 17, the connection rigidity between the mounting plate 8 and the upper clamp plate 5 and the lower clamp plate 6 can be effectively avoided, and the wire can be prevented from being damaged during clamping.

[0113] In this embodiment, the outer side of the upper clamp plate 5 is opposite to the outer side of the lower clamp plate 6, the inner side of the upper clamp plate 5 is opposite to the inner side of the lower clamp plate 6, and a buffer gasket 11 is arranged on the inner side of the upper clamp plate 5 and the inner side of the lower clamp plate 6, respectively. The buffer gasket 11 can be made of silicone, soft rubber, adjusting bolts, or springs. By rotating the adjusting screw rod 9, the movement of the upper and lower clamp plates 6 can be controlled, and the clamping force of the clamp can be adjusted by the spring to meet the clamping and clamping force adjustment of wires with different outer diameters.

[0114] The buffer gasket 11 arranged on the inner side of the upper clamp plate 5 and the inner side of the lower clamp plate 6 can effectively buffer the clamping force of the clamp plate on the wire and prevent the wire from being damaged during clamping.

[0115] Specifically,

[0116] On the basis of the original clamp assembly design, the structure is further optimized, and the buffer spring 10 and the buffer gasket 11 are added to improve the flexibility and adaptability of the clamp.

[0117] The introduction of the buffer spring 10

[0118] A buffer spring 10 is sleeved on the rod body of the screw rod 9 between the mounting plate 8 and the upper clamp plate 5 and / or the lower clamp plate 6.

[0119] The buffer spring 10 provides flexible support to avoid damage to the wire during clamping due to rigid contact.

[0120] The spring constant of the buffer spring 10 can be selected according to the hardness and diameter of the wire to ensure uniform distribution of clamping force.

[0121] Setting of the buffer pad 11

[0122] A buffer pad 11 is provided on the inner side of the upper clamp plate 5 and the inner side of the lower clamp plate 6.

[0123] The buffer pad 11 can be made of silicone, soft rubber or other flexible materials to reduce the direct contact force between the clamp plate and the wire.

[0124] The thickness and material of the buffer pad 11 can be adjusted according to the diameter and surface characteristics of the wire to achieve the best protection effect.

[0125] Adjustment of the screw rod 9 and the spring

[0126] The adjustment screw rod 9 is used to drive the movement of the upper clamp plate 5 and the lower clamp plate 6, and by rotating the screw rod 9, the clamping force of the clamp plate can be controlled.

[0127] The buffer spring 10 cooperates with the adjustment screw rod 9 to provide flexible clamping force adjustment function. When the clamping force is too large, the spring can absorb the excess pressure to protect the wire from damage.

[0128] In this embodiment, the drive assembly includes a gear seat 12, which is provided on the first support plate 1 through a first shaft core, allowing the gear seat 12 to rotate, and the gear seat 12 faces the second support plate 2, and the back plate 7 is fixed on the gear seat 12,

[0129] The through hole 3 penetrates the back plate 7 and the gear seat 12, and the gear seat 12 drives the clamp assembly to rotate.

[0130] Since the clamp assembly is fixed on the gear seat 12, when the gear seat 12 rotates, it can drive the clamp assembly to rotate, and the through hole 3 penetrates the back plate 7 and the gear seat 12, so as not to affect the normal fixation of the wire on the corresponding support plate.

[0131] In this embodiment, the drive assembly further includes a transmission gear 13, which is provided on the first support plate 1 through a second shaft core, allowing the transmission gear 13 to rotate, and the transmission gear 13 is engaged with the gear seat 12.

[0132] The gear base 12 is driven to rotate by the transmission gear 13.

[0133] In this embodiment, the driving assembly further comprises a power gear 14 and a toothed rod 15, the power gear 14 is arranged on the first support 1 plate through a third shaft core, the power gear 14 is engaged with the transmission gear 13,

[0134] The third shaft core enables the power gear 14 to rotate, and the power gear 14 drives the gear base 12 to rotate.

[0135] One end of the toothed rod 15 is connected to the power gear 14, and the other end of the toothed rod 15 penetrates the second support 2 plate and is inserted with a hand wheel 16.

[0136] Since the toothed rod 15 is connected to the power gear 14, preferably, the toothed rod 15 is connected to the third shaft core of the power gear 14, by rotating the hand wheel 16, the toothed rod 15 can be rotated to drive the power gear 14 to rotate.

[0137] The relative arrangement, numerical expressions, and numerical values of the components and steps set forth in the embodiments are not limiting to the scope of the present application unless otherwise specifically stated. Meanwhile, it should be understood that the sizes of the various parts shown in the drawings are not drawn in accordance with the actual proportional relationship for the convenience of description. The techniques, methods, and devices known to those of ordinary skill in the relevant art can not be discussed in detail, but should be considered as part of the authorized description under appropriate circumstances. In all examples shown and discussed here, any specific value should be interpreted as merely exemplary, not as a limitation. Therefore, other examples of exemplary embodiments can have different values. It should be noted that similar reference numbers and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.

[0138] In the description of the present application, it should be understood that the orientation words such as "front, back, up, down, left, right", "transverse, vertical, perpendicular, horizontal", and "top, bottom" and the like indicate the orientation or positional relationship shown in the drawings, which are only for the convenience of describing the present application and simplifying the description, and do not indicate and imply that the indicated device or element must have a particular orientation or be constructed and operated in a particular orientation, therefore cannot be understood as a limitation on the scope of protection of the present application; the orientation words "inner, outer" refer to the inner and outer relative to the contour of the parts themselves.

[0139] For purposes of the description hereinafter, spatial

[0140] In addition, it should be noted that the use of the terms "first", "second", etc., to describe a component having a defined property is only intended to distinguish between that component and another component having a different defined property, and is not otherwise intended to limit the scope of the present application unless otherwise indicated. Thus, use of the term "first" to describe a component is intended to connote that the component is at least the first component to be described in the description that has the defined property and is not intended to connote that the component is necessarily the first component to be described in the description that has the defined property.

[0141] The preferred embodiments of the present application have been described above with the intent to enable those skilled in the art to make and use it. Various modifications to the embodiments described in this disclosure will be readily apparent to those skilled in the art, and the generic principles defined herein can be applied to other embodiments without departing from the spirit or scope of the application. Thus, to the extent that the present application is limited by any terms imposed by law, the specific terms are intended to be interpreted in accordance with the broadest possible interpretation consistent with the requirements of the prior art.

Claims

1. An auxiliary device for wire micro-detection, characterized in that, Comprising, a first support, a second support, which is arranged opposite to the first support, a through hole is respectively arranged on the first support and the second support, a wire to be detected passes through the through hole so as to penetrate the first support and the second support, and a wire segment between the first support and the second support is used for microscopic detection, a clamp assembly, which clamps the wire segment, a driving assembly, which is fixed on the clamp assembly, drives the clamp assembly to rotate, and drives the wire segment to rotate around the wire axis.

2. The auxiliary device for wire micro-detection according to claim 1, wherein, The first support is arranged as a first support plate, and the second support is arranged as a second support plate. The plate surface of the first support plate is opposite to the plate surface of the second support plate, and the bottom of the first support plate is fixedly connected to the bottom of the second support plate through a base plate. The through hole is respectively arranged on the first support plate and the second support plate.

3. The auxiliary device for wire micro-detection according to claim 2, wherein, The through hole arranged on the first support plate is on the same horizontal line as the through hole arranged on the second support plate.

4. The auxiliary device for wire micro-detection according to claim 2, wherein, The clamp assembly comprises an upper clamp plate and a lower clamp plate, and the upper clamp plate and the lower clamp plate clamp the wire segment by approaching each other, or the upper clamp plate and the lower clamp plate release the wire segment by moving away from each other.

5. The auxiliary device for wire micro-detection according to claim 4, wherein, The clamp assembly further comprises a back plate. Both ends of the back plate are respectively provided with mounting plates. The upper clamp plate and the lower clamp plate are located between the two mounting plates. Each mounting plate is adapted with a screw rod, and the screw rod on each mounting plate is correspondingly fixedly connected to the upper clamp plate and the lower clamp plate, and the screw rod rotates and drives the upper clamp plate and the lower clamp plate to approach or move away from each other.

6. The auxiliary device for wire micro-detection according to claim 5, wherein, The upper clamp plate and / or the lower clamp plate comprise two clamp plate units, and a buffer spring is arranged between the two clamp plate units.

7. The auxiliary device for wire micro-detection of claim 4, wherein, The outer side surface of the upper clamp plate is opposite to the outer side surface of the lower clamp plate, the inner side surface of the upper clamp plate is opposite to the inner side surface of the lower clamp plate, and the inner side surface of the upper clamp plate and the inner side surface of the lower clamp plate are respectively provided with buffer gaskets.

8. The auxiliary device for wire micro-detection of claim 5, wherein, The driving assembly comprises a gear seat, which is arranged on the first support plate through a first shaft core, faces the second support plate, and is fixed on the gear seat, the through hole penetrates the back plate and the gear seat, and the gear seat drives the clamp assembly to rotate.

9. The auxiliary device for wire micro-detection according to claim 8, wherein, The driving assembly further comprises a transmission gear, which is arranged on the first support plate through a second shaft core and engages with the gear seat.

10. The auxiliary device for wire micro-detection of claim 9, wherein, The driving assembly further comprises a power gear and a toothed rod, the power gear is arranged on the first support plate through a third shaft core and engages with the transmission gear, one end of the toothed rod is connected to the power gear, and the other end of the toothed rod penetrates the second support plate and is inserted with a hand wheel.