Tool detection device
By designing a fixture inspection device, the problems of deformation and paint buildup in automotive fixtures during use were solved, enabling the detection and correction of the fixture's stability and flexibility, thus ensuring product quality.
Patent Information
- Application Number
- CN202520434602.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2035-03-12
AI Technical Summary
Car grippers are prone to deformation and paint buildup during repeated use, affecting their flexibility and the gripping effect of robotic arms, leading to quality problems.
A fixture inspection device was designed, comprising a deformation detection structure and a pressure detection structure, for detecting the deformation and connection position of the fixture, ensuring the stability and flexibility of the fixture.
Effective screening and correction of problematic fixtures prevents them from affecting product quality during use, thereby improving their stability and service life.
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Figure CN223756310U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of automobile clamps, in particular to a jig detection device. BACKGROUND
[0002] The automobile clamp is a fixing tool during coating of a cover plate or electrophoresis, and the demand for the clamp is large in a continuous production process. The clamp needs to be repeatedly disassembled and installed and used multiple times, which influences the consistency of the clamp and further influences the automobile production quality. Therefore, a detection device is provided to solve the technical problem of the cover. CONTENT OF THE UTILITY MODEL
[0003] The purpose of the embodiment of the application is to provide a jig detection device which can effectively screen and correct the tools with problems and avoid quality problems of products caused by the tools in use.
[0004] In a first aspect, the embodiment of the application provides a jig detection device, which is used for detecting a clamp, the clamp is provided with a clamping part and a handle part, the handle part is rotationally connected to the clamping part, the jig detection device comprises a deformation detection structure and a pressure detection structure, the deformation detection structure is provided with a detection cavity, the detection cavity is configured to accommodate the clamp and is used for detecting whether the clamping part is deformed, and the pressure detection structure is arranged on the outer side of the deformation detection structure and is matched with the handle part and used for detecting the connecting position of the handle part and the clamping part.
[0005] In the implementation process, the deformation detection structure can be used for placing the clamp, and is provided with the detection cavity which is used for deforming the clamping part of the clamp. The pressure detection structure is located on the outer side of the deformation detection structure, and can detect the hinged position of the handle part and the clamping part, so that the handle part can rotate relative to the clamping part, thereby effectively screening and correcting the clamp with problems and avoiding quality problems of products caused by the clamp in use.
[0006] In some embodiments, the deformation detection structure comprises a detection workbench and a first jacking assembly, the detection workbench is provided with an accommodating groove and an avoiding groove, the accommodating groove is configured to accommodate the clamp, the avoiding groove is configured to accommodate a limiting piece of the clamp, the first jacking assembly is arranged in the interior of the detection workbench, part of the structure of the first jacking assembly is exposed to the avoiding groove, and the first jacking assembly is configured to be in contact with the clamp.
[0007] In the implementation process, the first lifting assembly is located in the inner cavity of the detection workbench. When the clamp needs to be detected, the clamp is first placed in the accommodating groove, the limiting piece on the clamp is in the avoiding groove of the detection workbench, the bottom of the clamp is in contact with the first lifting assembly, and the first lifting assembly is automatically lifted under the action of the gravity of the clamp, so that the limiting piece is fixed, which is beneficial to the stability of the clamp during detection and effectively screens and corrects the clamp with problems.
[0008] In some embodiments, the first lifting assembly comprises a first lifting piece and a locking piece. The first lifting piece is hinged to the detection workbench. The locking piece is connected to one end of the first lifting piece, so that after the clamp is in contact with the other end of the first lifting piece, the locking piece moves to the limiting piece and is locked to the limiting piece.
[0009] In the implementation process, the locking piece is connected to the first lifting piece. The side of the first lifting piece away from the locking piece is used to contact the clamp. The first lifting piece can rotate relative to the detection workbench under the action of the clamp, thereby moving the locking piece. Finally, the locking piece automatically locks the limiting piece, ensuring the stability of the clamp during detection and effectively screening and correcting the clamp with problems.
[0010] In some embodiments, the first lifting piece is hinged to the side of the detection workbench farther away from the locking piece, so that the weight of the side of the first lifting piece in contact with the clamp is less than the weight of the side of the first lifting piece connected to the locking piece.
[0011] In the implementation process, by hinging the first lifting piece to the position of the detection workbench away from the middle position, and by making the side of the first lifting piece close to the locking piece heavier, after the locking piece is separated from the limiting piece, the locking piece is automatically restored to the original position under the driving of the first lifting piece, improving the intelligence of the device and being beneficial to the next detection.
[0012] In some embodiments, the deformation detection structure further comprises a second lifting assembly. The detection workbench is provided with a detection groove. The detection groove and the avoiding groove are located on both sides of the accommodating groove. The detection groove is configured to accommodate the connecting piece of the clamp. The second lifting assembly is configured inside the detection workbench. Part of the structure of the second lifting assembly is exposed to the detection groove, and the second lifting assembly is configured to contact the clamp.
[0013] In the implementation process, the second lifting assembly is located in the inner cavity of the detection workbench. When the clamp needs to be detected, the clamp is first placed in the accommodating groove, the connecting piece on the clamp is located in the detection groove of the detection workbench, the bottom of the clamp is in contact with the second lifting assembly, and the second lifting assembly is automatically lifted under the action of the gravity of the clamp, so that the detection of the connecting piece is realized. The detection principle is simple and convenient, and the clamp with problems can be effectively screened and corrected.
[0014] In some embodiments, the second lifting assembly comprises a second lifting piece and a detection piece. The second lifting piece is hinged to the detection workbench, and the detection piece is connected to one end of the second lifting piece, so that after the clamp is in contact with the other end of the second lifting piece, the detection piece moves to the connecting piece.
[0015] In the implementation process, the detection piece is connected to the second lifting piece, and the side of the second lifting piece away from the detection piece is used to contact the clamp. The second lifting piece can rotate relative to the detection workbench under the action of the clamp, thereby driving the detection piece to move. Finally, the detection piece automatically detects the connecting piece, and the clamp with problems can be effectively screened and corrected.
[0016] In some embodiments, the position of the second lifting piece hinged to the detection workbench is farther away from the detection piece, so that the weight of the side of the second lifting piece in contact with the clamp is less than the weight of the side of the second lifting piece connected to the detection piece.
[0017] In the implementation process, by hinging the second lifting piece to the detection workbench at a position away from the middle position, and by making the side of the second lifting piece close to the detection piece heavier, after the detection piece is separated from the connecting piece, the detection piece is automatically restored to the original position under the driving of the second lifting piece, which improves the intelligence of the device and is beneficial to the next detection use.
[0018] In some embodiments, the pressure detection structure comprises a first pressure detection assembly, and the first pressure detection assembly comprises a first support table and a first pressure piece. The first pressure piece is connected to the first support table, and the side of the first pressure piece away from the first support table is configured to be in contact with the handle part.
[0019] In the implementation process, the first pressure piece is located on one side of the first support table. After the handle part rotates relative to the clamping part, the first pressure piece is in contact with the handle part to detect the contact pressure between the handle part and the first pressure piece, so as to determine whether the rotation positions of the handle part and the clamping part are normal, thereby effectively screening the clamps with problems.
[0020] In some embodiments, the pressure detection structure further comprises a second pressure detection assembly, the second pressure detection assembly comprising a second support platform and a second pressure piece, the second pressure piece being connected to the second support platform, and a side of the second pressure piece facing away from the second support platform being configured to be in contact with the handle portion.
[0021] In the above implementation process, the second pressure piece is located on one side of the second support platform, and when the handle portion is rotated relative to the clamping portion, the second pressure piece is in contact with the handle portion to detect the contact pressure between the handle portion and the second pressure piece, so as to determine whether the rotational positions of the handle portion and the clamping portion are normal, thereby effectively screening out the clamps with problems.
[0022] In some embodiments, the first pressure detection assembly and the second pressure detection assembly are distributed on opposite sides of the deformation detection structure. This can be used to respectively detect whether the handle portion is normally rotated in different directions relative to the clamping portion, thereby effectively screening out the clamps with problems.
[0023] Other features and advantages of the present disclosure will be described in the following description, or can be inferred from the description, or can be determined without doubt, or can be known by implementing the above-mentioned technologies of the present disclosure.
[0024] In order to make the above-mentioned purposes, features and advantages of the present application more obvious and easy to understand, the following preferred embodiments are specifically described below, and the accompanying drawings are described in detail as follows. BRIEF DESCRIPTION OF DRAWINGS
[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments of the present application. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.
[0026] Fig. 1 The structure schematic diagram of the jig detection device provided by the embodiments of the present application is shown in the following figure;
[0027] Fig. 2 The structure schematic diagram of the jig detection device provided by the embodiments of the present application is shown in the following figure;
[0028] REFERENCE NUMERALS
[0029] 10, clamp; 101, handle portion; 102, clamping portion; 103, limiting piece; 104, connecting piece; 20, detection workbench; 201, accommodating groove; 202, avoiding groove; 203, detection groove; 204, detection piece; 30, first pressure detection assembly; 40, second pressure detection assembly. DETAILED DESCRIPTION
[0030] The technical solutions in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. The components of the embodiments of the present application described and shown in the drawings herein can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without creative work are within the scope of protection of the present application.
[0031] In the present application, the orientations or positional relationships indicated by the terms "upper", "lower", "left", "right", "front", "back", "top", "bottom", "inner", "outer", "middle", "vertical", "horizontal", "lateral", "longitudinal", and the like are based on the orientations or positional relationships shown in the drawings. These terms are mainly used for better describing the present application and its embodiments, and are not intended to limit the indicated devices, elements or components to have a specific orientation, or to be constructed and operated in a specific orientation.
[0032] In addition, the above-mentioned partial terms can be used to represent other meanings in addition to the orientation or positional relationship, for example, the term "upper" can also be used to represent a certain dependent relationship or connection relationship in some cases. Those skilled in the art can understand the specific meanings of these terms in the present application according to the specific circumstances.
[0033] In addition, the terms "mount", "set", "provided with", "connect", "connected" should be understood broadly. For example, it can be fixedly connected, detachably connected, or integrally constructed; it can be mechanically connected, or point connected; it can be directly connected, or indirectly connected through an intermediate medium, or the internal connection between two devices, elements or components. Those skilled in the art can understand the specific meanings of the above-mentioned terms in the present application according to the specific circumstances.
[0034] In addition, the terms "first", "second", and the like are mainly used to distinguish different devices, elements or components (the specific types and structures can be the same or different), and are not intended to indicate or imply the relative importance and quantity of the indicated devices, elements or components. Unless otherwise specified, the meaning of "multiple" is two or more.
[0035] Embodiments
[0036] In the process of automobile production, for example, the front cover of the car is sprayed, etc., the front cover of the car needs to be clamped to facilitate the robot to turn it over, and in the related propulsion work, there is no related device to detect and correct, and the clamp will be disassembled and thrown during use, and will be deformed after a long time, and the clamp will be treated by electrophoresis and sprayed in the middle, which will cause paint accumulation, resulting in the inactivity of the bolt hinge position and affecting the mechanical hand grabbing technique or not covering, resulting in a high probability of collision with the mechanical hand.
[0037] In view of this, as Figs. 1-2 shown, the first aspect, the embodiment of the application provides a jig detection device, the jig detection device is used for detecting the clamp 10, the clamp 10 is provided with a clamping part 102 and a handle part 101, the handle part 101 is rotatably connected to the clamping part 102, the jig detection device comprises a deformation detection structure and a pressure detection structure, the deformation detection structure is provided with a detection cavity, the detection cavity is configured to accommodate the clamp 10, and is used for detecting whether the clamping part 102 is deformed, the pressure detection structure is arranged on the outer side of the deformation detection structure, and the pressure detection structure is matched with the handle part 101, and is used for detecting the connection position of the handle part 101 and the clamping part 102.
[0038] For example, when the clamp 10 is applied to the front cover of the automobile, the clamping part 102 is used to clamp the U-shaped buckle of the front cover, the handle part 101 rotates relative to the clamping part 102 and is supported on the frame of the automobile, and finally the clamp 10 can be operated by the robot to realize the electrophoresis or spraying treatment of the front cover; and the jig detection device can be used for detecting the clamp 10, effectively screening and correcting the clamp 10 with problems, and deeply cleaning to ensure that the clamp 10 with problems can be used again.
[0039] It can be understood that the pressure detection structure is located on the outer side of the deformation detection structure, and the pressure detection structure can be connected with the deformation detection structure or can be distributed with the deformation detection structure, so as to realize the deformation detection and whether the handle part 101 can rotate relative to the clamping part 102.
[0040] In the above implementation process, the deformation detection structure can be used to place the clamp 10, and is provided with a detection cavity, the detection cavity is used for deforming the clamping part 102 of the clamp 10, and the pressure detection structure is located on the outer side of the deformation detection structure, the pressure detection structure can detect the hinge position of the handle part 101 and the clamping part 102, and ensure that the handle part 101 can rotate relative to the clamping part 102, so as to effectively screen and correct the clamp 10 with problems, and avoid that the clamp 10 causes quality problems to the product when used.
[0041] In some embodiments, the deformation detection structure comprises a detection workbench 20 and a first jacking assembly (not shown in the figure), the upper surface of the detection workbench 20 is provided with a receiving groove 201 and an avoiding groove 202, the receiving groove 201 is configured to accommodate the clamp 10, the avoiding groove 202 is configured to accommodate the limiting piece 103 of the clamp 10, the first jacking assembly is arranged inside the detection workbench 20, part of the structure of the first jacking assembly is exposed to the avoiding groove 202, and the first jacking assembly is configured to contact the clamp 10.
[0042] For example, the clamping part 102 comprises a first panel and a second panel, the second panel is detachably connected to the first panel, the side of the first panel away from the second panel is provided with the limiting piece 103, the limiting piece 103 includes but is not limited to a U-shaped structure, the side of the first panel close to the second panel is provided with two limiting columns, the limiting columns are used to fit the U-shaped buckle of the front cover, and then the U-shaped buckle is clamped by connecting the second panel to the first panel.
[0043] In the above implementation process, the first jacking assembly is located in the inner cavity of the detection workbench 20, when the clamp 10 needs to be detected, the clamp 10 is first placed in the receiving groove 201, the limiting piece 103 on the clamp 10 is located in the avoiding groove 202 of the detection workbench 20, the bottom of the clamp 10 contacts the first jacking assembly, and the first jacking assembly is automatically lifted under the action of the gravity of the clamp 10, so as to fix the limiting piece 103, which is conducive to the stability of the clamp 10 during the detection process, and effectively screens and corrects the clamp 10 with problems.
[0044] In some embodiments, the first jacking assembly comprises a first jacking piece and a locking piece, the first jacking piece is hinged to the detection workbench 20, the locking piece includes but is not limited to a locking buckle, one end of the locking piece is connected to the first jacking piece, so that after the clamp 10 contacts the other end of the first jacking piece, the locking piece moves to the limiting piece 103 and is locked to the limiting piece 103, and the working principle of the first jacking piece is similar to that of a lever.
[0045] In the above implementation process, the locking piece is connected to the first jacking piece, the side of the first jacking piece away from the locking piece is used to contact the clamp 10, so that the first jacking piece can rotate relative to the detection workbench 20 under the action of the clamp 10, thereby driving the locking piece to move, and finally the locking piece automatically locks the limiting piece 103, which ensures the stability of the clamp 10 during the detection process, and effectively screens and corrects the clamp 10 with problems.
[0046] In some embodiments, the first lifting member is hinged to a position of the detection workbench 20 that is further away from the locking member, so that the weight of the side of the first lifting member that is in contact with the clamp 10 is less than the weight of the side of the first lifting member that is connected to the locking member; that is, when the clamp 10 is not placed on the detection workbench 20, one end of the first lifting member is higher than the other end, wherein the higher end is used for subsequent contact with the clamp 10, and the lower end is provided with the locking member.
[0047] In the above implementation process, by hinging the first lifting member to a position of the detection workbench 20 that is further away from the middle position, and by making the side of the first lifting member that is close to the locking member heavier, after the locking member is disengaged from the limiting member 103, the locking member is automatically restored to the original position under the driving of the first lifting member, which improves the intelligence of the device and is beneficial for the next detection use.
[0048] In some embodiments, the deformation detection structure further comprises a second lifting assembly (not shown in the figure), and the detection workbench 20 is provided with a detection groove 203, which is located on both sides of the containing groove 201 and is configured to accommodate the connecting member 104 of the clamp 10. The connecting member 104 is used for dismounting and connecting the first panel and the second panel, and comprises a circular ring and a bolt. The circular ring is connected to the bolt, the side of the bolt that is away from the circular ring penetrates through the second panel, and is matched with a nut on the first panel, so as to lock the first panel and the second panel. The second lifting assembly is arranged in the interior of the detection workbench 20, part of the structure of the second lifting assembly is exposed to the detection groove 203, and the second lifting assembly is configured to be in contact with the clamp 10.
[0049] In the above implementation process, the second lifting assembly is located in the inner cavity of the detection workbench 20. When the clamp 10 needs to be detected, the clamp 10 is first placed in the containing groove 201, and the connecting member 104 on the clamp 10 is located in the detection groove 203 of the detection workbench 20. The bottom of the clamp 10 is in contact with the second lifting assembly, and the second lifting assembly is automatically lifted under the action of the gravity of the clamp 10, so as to realize the detection of the connecting member 104. The detection principle is simple and convenient, and the clamp 10 with problems can be effectively screened and corrected.
[0050] In some embodiments, the second lifting assembly comprises a second lifting piece and a detection piece 204, the working principle of the second lifting piece is consistent with the first lifting piece, the detection piece 204 comprises but is not limited to a cone, the second lifting piece is hinged to the detection workbench 20, and one end of the detection piece 204 is connected to the second lifting piece, so that after the clamp 10 contacts the other end of the second lifting piece, the detection piece 204 moves to the connecting piece 104 for adaptation with the ring of the connecting piece 104.
[0051] In the above implementation process, the detection piece 204 is connected to the second lifting piece, and the side of the second lifting piece away from the detection piece 204 is used to contact the clamp 10, so that the second lifting piece can rotate relative to the detection workbench 20 under the action of the clamp 10, thereby driving the detection piece 204 to move, and finally the detection piece 204 automatically detects the connecting piece 104, effectively screening and correcting the clamp 10 with problems.
[0052] In some embodiments, the position of the second lifting piece hinged to the detection workbench 20 is farther away from the detection piece 204, so that the weight of the side of the second lifting piece contacting the clamp 10 is less than the weight of the side of the second lifting piece connected to the detection piece 204; that is to say, when the clamp 10 is not placed on the detection workbench 20, one end of the second lifting piece is higher than the other end, wherein the higher end is used for subsequent contact with the clamp 10, and the lower end is provided with the detection piece 204.
[0053] In the above implementation process, by hinging the second lifting piece to the position of the detection workbench 20 away from the middle position, and by making the weight of the side of the second lifting piece close to the detection piece 204 heavier, after the detection piece 204 is separated from the connecting piece 104, the detection piece 204 is automatically restored to the original position under the driving of the second lifting piece, improving the intelligence of the device and being conducive to the next detection use.
[0054] As shown in Figs. 1-2 The pressure detection structure comprises a first pressure detection assembly 30, the first pressure detection assembly comprises a first support table and a first pressure piece, the first support table can be provided in a cylindrical shape, or in a square column, etc., the first pressure piece comprises but is not limited to a pressure sensor, the first pressure piece is connected to the upper end of the first support table, and the side of the first pressure piece away from the first support table is configured to contact the handle part 101.
[0055] In the implementation process, the first pressure piece is located at one side of the first support table. When the handle part 101 is rotated relative to the clamping part 102, the first pressure piece is in contact with the handle part 101 to detect the contact pressure of the handle part 101 and the first pressure piece, and then to determine whether the rotation positions of the handle part 101 and the clamping part 102 are normal, thereby effectively screening the clamp 10 with problems.
[0056] As shown in Figs. 1-2 The pressure detection structure further includes a second pressure detection assembly 40. The second pressure detection assembly 40 includes a second support table and a second pressure piece. The second support table can be in a cylindrical shape or a square column, etc. The second pressure piece includes but is not limited to a pressure sensor. The second pressure piece is connected to the upper end of the second support table, and the side of the second pressure piece away from the second support table is configured to be in contact with the handle part 101.
[0057] In the implementation process, the second pressure piece is located at one side of the second support table. When the handle part 101 is rotated relative to the clamping part 102, the second pressure piece is in contact with the handle part 101 to detect the contact pressure of the handle part 101 and the second pressure piece, and then to determine whether the rotation positions of the handle part 101 and the clamping part 102 are normal, thereby effectively screening the clamp 10 with problems.
[0058] In some embodiments, the first pressure detection assembly 30 and the second pressure detection assembly are distributed on opposite sides of the deformation detection structure. They can be used to respectively detect whether the handle part 101 is normally rotated in different directions relative to the clamping part 102, thereby effectively screening the clamp 10 with problems.
[0059] In all embodiments of the present application, "large", "small", "more", "less", "upper", "lower" are relative, and the description of such relative terms will not be described again in the embodiments of the present application.
[0060] It should be understood that the "in the present embodiment", "in the present embodiment" or "as an optional embodiment" mentioned throughout the specification means that the specific features, structures or characteristics related to the embodiments are included in at least one embodiment of the present application. Therefore, "in the present embodiment", "in the present embodiment" or "as an optional embodiment" appearing throughout the specification does not necessarily refer to the same embodiment. In addition, these specific features, structures or characteristics can be combined in any suitable manner in one or more embodiments. Those skilled in the art should also know that the embodiments described in the specification are optional embodiments, and the actions and modules involved are not necessarily required by the present application.
[0061] In various embodiments of the present application, it should be understood that the magnitude of the sequence number of the above-mentioned processes does not mean the inevitable sequence of execution order, and the execution order of the processes should be determined according to their functions and inherent logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.
[0062] The above merely provides a specific implementation of the present application, but the protection scope of the present application is not limited thereto, and any person skilled in the art can easily think of changes or replacements within the technical scope disclosed by the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A tooling inspection apparatus, comprising: a tooling inspection device; a tooling inspection fixture; and a tooling inspection fixture detection device. The jig detection device is used for detecting the jig, the jig is provided with a clamping part and a handle part, the handle part is rotationally connected to the clamping part, the jig detection device comprises a deformation detection structure and a pressure detection structure, the deformation detection structure is provided with a detection cavity, the detection cavity is configured to accommodate the jig, and is used for detecting whether the clamping part is deformed, and the pressure detection structure is arranged on the outside of the deformation detection structure and is matched with the handle part, and is used for detecting the connection position of the handle part and the clamping part.
2. The mold detection apparatus according to claim 1, wherein The deformation detection structure comprises a detection workbench and a first jacking assembly, the detection workbench is provided with an accommodating groove and an avoiding groove, the accommodating groove is configured to accommodate the jig, the avoiding groove is configured to accommodate a limiting piece of the jig, and the first jacking assembly is arranged in the inside of the detection workbench, part of the structure of the first jacking assembly is exposed to the avoiding groove, and the first jacking assembly is configured to be in contact with the jig.
3. The mold detection apparatus according to claim 2, wherein The first jacking assembly comprises a first jacking piece and a locking piece, the first jacking piece is hinged to the detection workbench, and one end of the locking piece is connected to the first jacking piece, so that after the jig is in contact with the other end of the first jacking piece, the locking piece moves to the limiting piece and is locked to the limiting piece.
4. The mold detection apparatus according to claim 3, wherein The position where the first jacking piece is hinged to the detection workbench is farther away from the side where the locking piece is connected, so that the weight of the side of the first jacking piece in contact with the jig is less than the weight of the side where the first jacking piece is connected to the locking piece.
5. The mold detection apparatus according to any one of claims 2 to 4, characterized by The deformation detection structure further comprises a second jacking assembly, the detection workbench is provided with a detection groove, the detection groove and the avoiding groove are located on both sides of the accommodating groove, the detection groove is configured to accommodate a connecting piece of the jig, and the second jacking assembly is arranged in the inside of the detection workbench, part of the structure of the second jacking assembly is exposed to the detection groove, and the second jacking assembly is configured to be in contact with the jig.
6. The mold detection apparatus according to claim 5, wherein The second jacking assembly comprises a second jacking piece and a detection piece, the second jacking piece is hinged to the detection workbench, and one end of the detection piece is connected to the second jacking piece, so that after the jig is in contact with the other end of the second jacking piece, the detection piece moves to the connecting piece.
7. The mold detection apparatus according to claim 6, wherein The position where the second jacking piece is hinged to the detection workbench is farther away from the side where the detection piece is connected, so that the weight of the side of the second jacking piece in contact with the jig is less than the weight of the side where the second jacking piece is connected to the detection piece.
8. The mold detection apparatus according to claim 1, wherein The pressure detection structure comprises a first pressure detection assembly, the first pressure detection assembly comprises a first support table and a first pressure piece, the first pressure piece is connected to the first support table, and the side of the first pressure piece away from the first support table is configured to be in contact with the handle part.
9. The mold detection apparatus according to claim 8, wherein The pressure detection structure further comprises a second pressure detection assembly, the second pressure detection assembly comprising a second support platform and a second pressure piece, the second pressure piece being connected to the second support platform, and a side of the second pressure piece facing away from the second support platform being configured to be in contact with the handle portion.
10. The mold detection apparatus according to claim 9, wherein The first pressure detection assembly and the second pressure detection assembly are distributed on opposite sides of the deformation detection structure.