Fixing tool and machining device

Through the cooperation of the driving components and the fixtures, stable clamping of parts is achieved, which solves the low-precision problem caused by uncertainty in fixed structure positions such as vises, and improves the accuracy and stability of parts processing.

CN223265258UActive Publication Date: 2025-08-26SICHUAN JIUTIAN VACUUM TECH CO LTD
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Patent Information

Application Number
CN202422596294.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-08-26
Estimated Expiration
2034-10-25

AI Technical Summary

Technical Problem

The position uncertainty of existing fixed structures such as vises leads to low machining accuracy of parts and cannot meet a variety of high-precision machining needs.

Method used

Through the cooperation between the driving assembly and the fixing member, the driving target part moves to the target area corresponding to the fixing member, and the two opposing ends of the part are contacted by the fixing member to achieve stable clamping and improve position accuracy and stability.

Benefits of technology

It effectively improves the position accuracy and stability of parts processing, meets a variety of high-precision processing needs, and improves the processing quality of parts.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a fixing tool and a machining device, and relates to the technical field of part machining. The fixing tool comprises a fixing piece and a driving assembly. The fixing piece is arranged on a moving path of the driving assembly; the driving assembly is used for driving a target part to move to a target area corresponding to the fixing piece based on abutting contact with the first end of the to-be-machined target part. The fixing piece is used for abutting against the second end of the target part in the target area. Wherein the first end corresponds to the second end; the fixing piece and the driving assembly are used for fixing and clamping the target part in the target area. The to-be-machined target part is driven by the driving assembly to move so that the target part can be accurately and rapidly moved to the target area corresponding to the corresponding fixing piece, and therefore the target part is fixed in the target area to achieve various corresponding machining treatments by abutting the two opposite ends of the target part through the driving assembly and the fixing piece. The machining precision of parts is effectively improved, and various high-precision machining requirements are met.
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Description

Technical Field

[0001] The present application relates to the technical field of parts processing, and in particular to a fixing tool and a processing device. Background Art

[0002] Currently, parts are typically secured using a vise or other fixture for various machining processes, such as cutting, drilling, and grinding. However, the positional uncertainty of these fixtures results in low precision during machining, making them unable to meet the diverse needs of high-precision machining. Utility Model Content

[0003] In view of this, the purpose of the embodiments of the present application is to provide a fixing tool and a processing device to improve the problem of low part processing accuracy in the prior art.

[0004] In order to solve the above problems, in a first aspect, an embodiment of the present application provides a fixing tool, the tool comprising: a fixing member and a driving assembly;

[0005] The fixing member is arranged on the moving path of the driving assembly;

[0006] The driving assembly is used to drive the target part to move to the target area corresponding to the fixing member based on the abutting contact with the first end of the target part to be processed;

[0007] The fixing member is used to abut against the second end of the target part in the target area; wherein the first end corresponds to the second end;

[0008] The fixing member and the driving assembly are used to fix the target part in the target area.

[0009] In the above-described implementation process, the fixing member is disposed on the moving path of the drive assembly. The drive assembly abuts against the first end of the target part to be processed, thereby driving the target part to move, thereby accurately and quickly moving the target part to the target area corresponding to the corresponding fixing member. When the target part is in the target area, the fixing member can abut against the second end of the target part. Thus, through the abutment of the two opposing ends of the target part by the drive assembly and the fixing member, the target part is fixed and clamped in the target area for subsequent corresponding various processing operations. This effectively improves the positional accuracy and stability of the part during processing, thereby improving the processing accuracy of subsequent processing based on the fixed part, meeting various high-precision processing requirements, and improving the processing quality of the part.

[0010] Optionally, the driving assembly includes: a driving member and a propulsion member;

[0011] The driving member is connected to the first end of the propulsion member;

[0012] The second end of the pushing member abuts against the first end of the target part;

[0013] The driving member is used to provide driving force for the propulsion member;

[0014] The propulsion member is used to push the abutting target part to move along the movement path to the target area based on the driving force.

[0015] In the above-described implementation process, the drive assembly includes a driving member that provides driving force and a propulsion member that drives the target part to move. The driving member is connected to a first end of the propulsion member, and a second end of the propulsion member abuts against a first end of the target part. The driving member provides driving force to the propulsion member, and the abutting target part is pushed by the propulsion member along its movement path to the target area corresponding to the fixed member, effectively improving the efficiency of fixing the target part. The driving force exerted by the driving member and the propulsion member on the target part, combined with the restraint of the fixed member, stably fixes and clamps the target part in the target area, further improving the accuracy and stability of the target part's processing position.

[0016] Optionally, the driving assembly further comprises: a support member;

[0017] In the moving direction of the propulsion member, the support members are arranged on both sides of the propulsion member;

[0018] The support member is connected to the driving member;

[0019] The support member is used to limit the movement stroke of the propulsion member.

[0020] In the above implementation process, corresponding support members can also be set on both sides of the propulsion member in the moving direction of the propulsion member. The support members are connected to the driving member, which can limit the movement stroke of the propulsion member on the moving path to limit the driving force provided by the driving member, so that the propulsion member can provide sufficient and effective pressure for the target part, effectively reducing the adverse effects of excessive pressure on the target part.

[0021] Optionally, the driving assembly further comprises: a guide shaft;

[0022] The guide shaft is parallel to the moving path and is arranged on both sides of the propulsion member;

[0023] The support member is connected to the guide shaft;

[0024] The guide shaft is used to control the moving direction of the propulsion member.

[0025] In the above implementation process, in order to improve the effectiveness of the propulsion member during movement so that the target part can accurately enter the target area, corresponding guide shafts can also be set on both sides of the propulsion member. The guide shafts are connected to the support member, and can limit the movement direction of the propulsion member through the restriction of the support member and the guide shaft, so that the propulsion member can push the target part to move along the preset moving path in the correct moving direction, effectively reducing the adverse conditions such as misalignment caused during the positioning of the target part.

[0026] Optionally, the driving member includes a cylinder.

[0027] In the above implementation process, the driving part providing the driving force may include a device such as a cylinder, which can provide sufficient driving force to drive the target part to move or apply sufficient pressure to the target part in the direction of the fixing part, and fix and clamp the target part in combination with the fixing part.

[0028] Optionally, the fixing member is configured as a non-enclosed frame structure;

[0029] The shape parameters of the framework structure are determined based on the placement surface parameters of the target part;

[0030] When the target part is located in the target area, the inner wall of the frame structure is in shape with the second end of the target part;

[0031] Wherein, the fixed vertex in the target area corresponding to the fixing part coincides with the processing origin of the fixing tool.

[0032] In the above implementation process, the fixing part can be set as a non-closed frame structure to provide a corresponding target area for placing the target part. The shape parameters of the frame structure can be determined based on the placement surface parameters of the target part, so that when the target part is located in the target area, the inner wall of the frame structure can fit the shape of the second end of the target part to achieve position restriction of the target part, and the target part can be fixed and clamped in combination with the pressure applied by the drive component. In addition, considering the positioning requirements during processing, any fixed vertex in the target area can be coincided with the processing origin of the fixed tooling, that is, the fixed vertex is used as the processing origin during processing, which effectively improves the position accuracy during processing.

[0033] Optionally, the tool further comprises: a support structure;

[0034] The fixing member and the driving assembly are arranged on the support structure, and the support structure is used to fix the fixing member and the driving assembly.

[0035] In the above implementation process, a corresponding support structure can be set to fix the fixing member and the driving assembly to provide a stable and unified working environment for the fixing member and the driving assembly, further improving the stability when fixing the target part.

[0036] Optionally, the support structure includes a fixing plate, a first connecting structure and a second connecting structure;

[0037] The first connecting structure is provided on the first end of the fixing plate close to the driving assembly;

[0038] The second connecting structure is provided on the second end of the fixing plate close to the fixing member;

[0039] The fixing plate is used to fix the fixing member and the driving assembly;

[0040] The first connecting structure and the second connecting structure fix the fixing member and the driving assembly to an external structure.

[0041] In the above implementation process, the bracket structure may include a fixing plate for fixing the fixing parts and the driving assembly, and two connecting structures arranged at both ends of the fixing plate. The entire bracket structure and the fixing parts and driving assembly fixed thereon can be fixed to other external structures through the two connecting structures. It can realize the fixed clamping processing of the target parts in a variety of different processing scenarios, is suitable for a variety of different tooling structures, and meets a variety of different fixing and processing requirements.

[0042] Optionally, the tool further comprises: a rotary drive member and a rotary member;

[0043] The rotary driving member is connected to the rotating member, and the rotating member is connected to the first connecting structure and the second connecting structure;

[0044] The rotary driving member is used to provide a rotary driving force for the rotating member;

[0045] The rotating member is used to drive the first connecting structure and the second connecting structure connected to it, as well as the fixed plate, the fixed member fixed on the fixed plate and the driving assembly, and the target part fixed and clamped by the fixed member and the driving assembly to rotate based on the rotational driving force.

[0046] In the above implementation process, considering that some parts have the need for multi-faceted processing, corresponding rotary drive members and rotating members can also be provided to provide a rotary driving force for the connected rotating member through the rotary drive member, and the rotating member drives the two connected connecting structures, the fixed plate connected by the two connecting structures, the fixed member and the driving assembly connected to the fixed plate, and the target part fixed and clamped by the fixed member and the driving assembly to rotate synchronously based on the rotary driving force. The rotation function provided by the rotary drive member and the rotating member can realize multi-faceted processing after one fixation, without the need to disassemble and re-fix the target part for processing different surfaces, effectively reducing the processing accuracy error caused by the position accuracy difference during multiple re-fixations, and further improving the processing efficiency and processing accuracy of the parts.

[0047] In a second aspect, an embodiment of the present application provides a processing device, which includes any of the fixed tooling described above.

[0048] In summary, the embodiments of the present application provide a method of driving a target part to be processed to move by a driving component, so as to accurately and quickly move the target part to a target area corresponding to a corresponding fixing part, thereby fixing the target part in the target area through the abutment of the two opposite ends of the target part by the driving component and the fixing part to realize corresponding multiple processing, effectively improving the processing accuracy of the part, meeting multiple high-precision processing requirements, and improving the processing quality of the part. BRIEF DESCRIPTION OF THE DRAWINGS

[0049] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments of the present application. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.

[0050] Figure 1 A schematic diagram of a top view of a fixing tool provided in an embodiment of the present application;

[0051] Figure 2 A schematic diagram of the three-dimensional structure of a fixing tool provided in an embodiment of the present application.

[0052] Icons: 100-fixed part; 200-driving assembly; A-target part; 210-driving part; 211-driving fixed structure; 220-propelling part; 230-supporting part; 240-guide shaft; 310-fixed plate; 320-first connecting structure; 330-second connecting structure; 410-rotating driving part; 420-rotating part. DETAILED DESCRIPTION

[0053] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the embodiments described are only part of the embodiments of the present application, not all of them. Based on the embodiments of the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the embodiments of the present application.

[0054] To perform various machining operations on parts, such as cutting, drilling, and grinding, vises are often used to clamp and secure the parts. However, due to the uncertainty of the position of these fixtures, such as vises, they can shift during machining, resulting in low precision during machining and failing to meet various high-precision machining requirements.

[0055] In order to solve the above problems, an embodiment of the present application provides a fixing tool and a processing device. The fixing tool can be installed in the corresponding processing device to stably fix the target parts and perform subsequent processing, thereby improving the processing accuracy of the parts and improving the processing quality of the parts.

[0056] See also Figure 1 , Figure 1 This is a schematic top view of the structure of a fixing tool provided in an embodiment of the present application. The fixing tool may include: a fixing member 100 and a driving assembly 200.

[0057] Optionally, the fixing member 100 can be set to a variety of structures with position limiting functions, such as a raised block structure, a raised L-shaped structure, a three-sided structure, etc., and the driving component 200 can be set to a variety of structures with moving functions and pressure-applying functions, such as a spring device with a slide rail, a snap-fit ​​device, etc.

[0058] It should be noted that the fixture 100 is positioned along the travel path of the drive assembly 200, so that the corresponding clamping function is achieved by the corresponding positions of the two components along the travel path. The drive assembly 200, based on abutting contact with the first end of the target part A to be machined, drives the target part A to move to the target area corresponding to the fixture 100.

[0059] Optionally, the target part A can be a part to be processed of various types and shapes, such as a block part that needs to be punched. The moving path can be based on the size of the processing scene, the size and shape of the target part A, and the corresponding motion stroke size. For example, when the placement surface of the target part A is rectangular, in order to facilitate the placement of the target part A, a longer motion stroke can be set, for example, 2 cm, to reserve enough space to first place the first end of the target part A in contact with the drive assembly 200, and drive the target part A to move to the target area corresponding to the fixing part 100 through the contact. When the placement surface of the target part A is a circular structure or other structure that is convenient for placement, the target part A can be directly placed in the corresponding target area, and a shorter motion stroke can be set, for example, 10 mm, to directly fix and clamp the target part A.

[0060] It should be noted that the fixing member 100 is used to abut the second end of the target part A in the target area; the first end corresponds to the second end, and the fixing member 100 and the driving assembly 200 are used to securely clamp the target part A in the target area. When the target part A is in the target area, the fixing member 100 can abut the second end of the target part A. Therefore, the driving assembly 200 and the fixing member 100 can respectively restrict the position of the target part A from two opposing ends, achieving the fixed clamping function.

[0061] Optionally, the target area is an area surrounded by the fixing member 100 , and in the placement direction of the target part A, the height of the target area is lower than the surface height of the fixing member 100 , thereby limiting the position of the target part A by the protruding fixing member 100 .

[0062] It should be noted that Figure 1 Only the shapes of the fixing member 100 and the target part A are exemplarily described, and other shapes are not described in detail.

[0063] exist Figure 1 In the embodiment shown, the target part A can be fixed and clamped in the target area by abutting the two opposite ends of the target part A with the driving component 200 and the fixing member 100 for subsequent corresponding various processing operations, thereby effectively improving the position accuracy and stability during part processing, thereby improving the processing accuracy of subsequent processing based on part fixation, and meeting various high-precision processing requirements.

[0064] Optionally, see Figure 2 , Figure 2 This is a schematic diagram of a three-dimensional structure of a fixed tool provided in an embodiment of the present application. The driving assembly 200 may include: a driving member 210 and a propulsion member 220.

[0065] The driving member 210 is connected to the first end of the propulsion member 220, and the second end of the propulsion member 220 abuts against the first end of the target part A. The driving member 210 is used to provide a driving force for the propulsion member 220, and the propulsion member 220 is used to push the abutting target part A to move along the moving path to the target area based on the driving force. The driving member 210 can provide a driving force for the propulsion member 220, and the propulsion member 220 can push the abutting target part A to move along its moving path to the target area corresponding to the fixing member 100, effectively improving the efficiency of fixing the target part A. The driving force of the driving member 210 and the propulsion member 220 on the target part A, combined with the restriction of the fixing member 100, can stably fix and clamp the target part A in the target area, further improving the accuracy and stability of the processing position of the target part A.

[0066] Optionally, when the target part A is directly placed in the target area, or the target part A is driven to the target area by the pushing member 220, the pushing member 220 can continue to apply pressure to the target part A in the direction of the fixing member 100 based on the driving force provided by the driving member 210, so as to fix and clamp the target part A in the target area in combination with the fixing member 100.

[0067] For example, the driving member 210 can be set to various types of devices with driving functions, such as cylinders with various strokes, driving motors, springs, springs, etc., and the propulsion member 220 can be set to corresponding connecting rods, propulsion blocks, etc. The driving member 210 with a suitable stroke can be selected according to factors such as the weight of the target part A to provide sufficient driving force to drive the target part A to move or apply sufficient pressure to the target part A in the direction of the fixing member 100, and fix and clamp the target part A in combination with the fixing member 100.

[0068] Optionally, in order to improve the stability during driving, a corresponding driving fixing structure 211 may be provided at one end of the driving member 210 away from the propulsion member 220, such as a plate-shaped fixing structure, etc. The shape and size of the driving fixing structure 211 may be set according to the size of the driving member 210, and the driving fixing structure 211 and the driving member 210 may be fixedly connected by screws, nuts, etc.

[0069] It should be noted that in order to maintain the force balance of the target part A, Figure 2 As shown, the pusher 220 can be set as an L-shaped pusher block so that in the placement direction of the target part A, the second end of the pusher 220 abutting against the first end of the target part A is similar in height to the protrusion of the fixing member 100, thereby reducing adverse situations such as the target part A falling off due to different pressure heights.

[0070] Optionally, the drive assembly 200 may further include support members 230. The support members 230 are disposed on both sides of the propulsion member 220 in its moving direction. The support members 230 are connected to the drive member 210 and are configured to limit the travel of the propulsion member 220. The support members 230 can limit the travel of the propulsion member 220 along its moving path, thereby limiting the driving force provided by the drive member 210. This allows the propulsion member 220 to provide sufficient and effective pressure on the target part A, effectively reducing the adverse effects of excessive pressure on the target part A.

[0071] For example, the movement stroke is the distance that the propulsion member 220 moves on the movement path. The support member 230 may include corresponding fixed blocks and other structures to limit the movement stroke of the propulsion member 220.

[0072] Optionally, to improve the effectiveness of the movement of the propulsion member 220 and enable the target part A to accurately enter the target area, the drive assembly 200 may further include a guide shaft 240. The guide shaft 240 is arranged on both sides of the propulsion member 220 parallel to the movement path, and the support member 230 is connected to the guide shaft 240. The guide shaft 240 is used to control the movement direction of the propulsion member 220. The guide shaft 240 is connected to the support member 230, and the movement direction of the propulsion member 220 can be limited by the support member 230 and the guide shaft 240, so that the propulsion member 220 can push the target part A along the preset movement path and in the correct movement direction, effectively reducing adverse conditions such as misalignment during the positioning process of the target part A.

[0073] For example, the support member 230 can be mounted on one end of the guide shaft 240 close to the driving member 210, and the other end of the guide shaft 240 can be fixed by another block structure. The guide shaft 240 can be set to various types of shaft structures, such as a stainless steel metal shaft, etc., to limit the movement direction of the propulsion member 220.

[0074] It should be noted that the fixing member 100 can be configured as a non-enclosed frame structure to provide a corresponding target area for placing the target part A.

[0075] Optionally, the shape parameters of the framework structure are determined based on the placement surface parameters of the target part A. For example, when the placement surface parameters of the target part A are rectangular, in order to limit the position of the target part A, the framework structure can be set as a raised strip block structure to abut against the second end of the target part A, or it can be set as a raised L-shaped block structure or a three-sided block structure, which can not only abut against the second end of the target part A, but also abut against other surfaces of the target part A, so as to reduce the adverse situation of the target part A falling off from other surfaces. Figure 2Only one feasible embodiment in which the frame structure is a raised L-shaped block structure is shown, and other structures are not described in detail.

[0076] It should be noted that when the target part A is located in the target area, the inner wall of the framework structure fits the shape of the second end of the target part A. For example, when the second end of the target part A is a plane, the inner wall of the framework structure is also a plane. When the second end of the target part A is a slope, a serrated surface, or a wavy surface, the inner wall of the framework structure is set to a slope, a serrated surface, or a wavy surface of a corresponding shape, so as to achieve position restriction of the target part A through the fitting shape, and can fix and clamp the target part A in combination with the pressure applied by the drive component 200.

[0077] It should be noted that, considering the positioning requirements during machining, the fixed vertex in the target area corresponding to the fixture 100 coincides with the machining origin of the fixture. Any fixed vertex in the target area can be aligned with the machining origin of the fixture, that is, the fixed vertex is used as the machining origin during machining, effectively improving the positioning accuracy during machining.

[0078] For example, Figure 2 For example, the selected fixed vertex may be the angle vertex of the L-shaped fixing member 100 , so as to use it as the corresponding processing origin to process the target part A.

[0079] Optionally, the tooling may further include a support structure on which the fixing member 100 and the driving assembly 200 are disposed, and the support structure is used to fix the fixing member 100 and the driving assembly 200 .

[0080] For example, the support structure can be configured as a corresponding plate-like structure or a table-like structure to provide a stable processing environment for the target part A.

[0081] Optionally, see Figure 2 The support structure may include a fixing plate 310, a first connecting structure 320 and a second connecting structure 330.

[0082] The first connecting structure 320 is disposed at the first end of the fixing plate 310 near the drive assembly 200, and the second connecting structure 330 is disposed at the second end of the fixing plate 310 near the fixing member 100. The fixing plate 310 is used to secure the fixing member 100 and the drive assembly 200, while the first connecting structure 320 and the second connecting structure 330 secure the fixing member 100 and the drive assembly 200 to an external structure. The two connecting structures can be used to secure the entire support structure, including the fixing member 100 and the drive assembly 200 secured thereto, to another external structure, enabling the securement and clamping of the target part A in a variety of different processing scenarios. This is suitable for a variety of different tooling structures and meets a variety of different fixing and processing requirements.

[0083] For example, the fixed plate 310 can be set as a corresponding jig support structure. The size, shape, etc. of the fixed plate 310 can be set according to the actual processing environment and the dimensions of the drive assembly 200 and the fixing member 100. The first connecting structure 320 and the second connecting structure 330 can be set as corresponding jig bracket structures and fixedly connected to the fixed plate 310 by means of screws, nuts, snaps, etc.

[0084] Optionally, considering that some parts require multi-faceted processing, for example, some block-shaped parts require multi-faceted drilling, etc., the tooling may further include: a rotary drive member 410 and a rotary member 420. The rotary drive member 410 is connected to the rotary member 420, and the rotary member 420 is connected to the first connecting structure 320 and the second connecting structure 330. The rotary drive member 410 is used to provide a rotational driving force for the rotary member 420, and the rotary member 420 is used to drive the first connecting structure 320 and the second connecting structure 330 connected thereto, as well as the fixed plate 310, the fixed member 100 and the driving assembly 200 fixed on the fixed plate 310, and the target part A fixedly clamped by the fixed member 100 and the driving assembly 200 to rotate based on the rotational driving force. The rotary drive member 410 provides a rotational driving force to the connected rotating member 420. Based on the rotational driving force, the rotating member 420 drives the two connected connecting structures, the fixed plate 310 connected by the two connecting structures, the fixing member 100 and driving assembly 200 connected to the fixed plate 310, and the target part A fixedly clamped by the fixing member 100 and driving assembly 200 to rotate synchronously. The rotation function provided by the rotary drive member 410 and the rotating member 420 enables multi-faceted processing after a single fixation, eliminating the need to disassemble and refix the target part A for processing different surfaces. This effectively reduces processing accuracy errors caused by positional accuracy differences during multiple refixations, further improving part processing efficiency and accuracy.

[0085] For example, the rotating drive member 410 can be set as various types of rotating motors and other devices, and the rotating member 420 can be set as a corresponding rotating disk, such as a turbine and other structures. The rotating drive member 410 and the rotating member 420 can be connected by a worm and other structures, and the rotating drive member 410 provides a corresponding rotational driving force to drive the rotating member 420 to rotate.

[0086] Optionally, the rotating drive member 410 can also be set as a corresponding CNC dividing head or electric turntable, and the rotating member 420 can also be set as a dividing plate and other structures. The CNC dividing head can perform rotary indexing or continuous rotary feed motion according to the signal or instruction of the processing device. The electric turntable is used in combination with the CNC dividing head or dividing plate. The dividing plate can clamp the nail structure between the two top points on the chuck to realize the rotation and positioning of the target part A, and the target part can be rotated to multiple faces and angles.

[0087] Optionally, the rotary drive member 410 may be fixed to an external structure such as a table by means of screws, nuts, etc., so as to be rotationally driven in a stable working environment.

[0088] It should be noted that when fixing a part with multi-faceted processing requirements, the non-processing surface of the target part A can be preferentially set as the placement surface in the target area to reduce the number of times the target part A is re-fixed.

[0089] It should be noted that only one connection structure may be provided, or more connection structures may be provided. Figure 2 Only one feasible embodiment with two connection structures is shown in FIG. , and the structures with other numbers are not described in detail. In the case of having multiple connection structures, the multiple connection structures are symmetrically arranged based on the fixing plate 310, for example, Figure 2 For example, the first connecting member structure and the second connecting structure 330 are symmetrically arranged at two corresponding ends of the fixing plate 310 to drive the fixing plate 310 and the multiple devices fixed thereon to achieve synchronous movement.

[0090] Optionally, each component in the fixed tooling provided in the embodiment of the present application can select corresponding materials based on actual cost requirements and load-bearing requirements, for example, various types of metal materials can be selected to manufacture each component to provide higher load-bearing capacity and longer service life.

[0091] The present application also provides a processing device, which includes any of the fixed tooling described in the above embodiments. The processing device can include various types of mechanical parts processing devices, such as various types of lathes, milling machines, drilling machines, grinders, punching machines, or CNC processing devices.

[0092] In addition, the various parts in the various embodiments of the present application can be integrated together to form an independent part, or each part can exist separately, or two or more parts can be integrated to form an independent part.

[0093] The foregoing is merely an embodiment of the present application and is not intended to limit the scope of protection of the present application. Various modifications and variations are possible for those skilled in the art. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present application shall be included within the scope of protection of the present application. It should be noted that similar reference numerals and letters represent similar items in the following figures. Therefore, once an item is defined in one figure, it does not need to be further defined or explained in subsequent figures.

[0094] The above is only a specific implementation method of the present application, but the scope of protection of the present application is not limited thereto. Any technician familiar with this technical field can easily think of changes or replacements within the technical scope disclosed in this application, which should be covered by the scope of protection of the present application.

[0095] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprises", or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, article, or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, article, or device. In the absence of further limitations, the elements defined by the statement "includes..." do not exclude the presence of other identical elements in the process, article, or device comprising the elements.

Claims

1. A fixed tool, characterized in that: The tooling includes: a fixing member and a driving assembly; The fixing member is arranged on the moving path of the driving assembly; The driving assembly is used to drive the target part to move to the target area corresponding to the fixing member based on the abutting contact with the first end of the target part to be processed; The fixing member is used to abut against the second end of the target part in the target area; wherein the first end corresponds to the second end; The fixing member and the driving assembly are used to fix and clamp the target part in the target area.

2. The tooling according to claim 1, characterized in that: in, The driving assembly includes: a driving member and a propulsion member; The driving member is connected to the first end of the propulsion member; The second end of the pushing member abuts against the first end of the target part; The driving member is used to provide driving force for the propulsion member; The propulsion member is used to push the abutting target part to move along the movement path to the target area based on the driving force.

3. The tooling according to claim 2, characterized in that: in, The drive assembly further includes: a support member; In the moving direction of the propulsion member, the support members are arranged on both sides of the propulsion member; The support member is connected to the driving member; The support member is used to limit the movement stroke of the propulsion member.

4. The tooling according to claim 3, characterized in that: in, The drive assembly further includes: a guide shaft; The guide shaft is parallel to the moving path and is arranged on both sides of the propulsion member; The support member is connected to the guide shaft; The guide shaft is used to control the moving direction of the propulsion member.

5. The tooling according to claim 2, characterized in that: in, The driving member includes a cylinder.

6. The tooling according to claim 1, characterized in that: in, The fixing member is configured as a non-enclosed frame structure; The shape parameters of the framework structure are determined based on the placement surface parameters of the target part; When the target part is located in the target area, the inner wall of the frame structure is in shape with the second end of the target part; Wherein, the fixed vertex in the target area corresponding to the fixing part coincides with the processing origin of the fixing tool.

7. The tooling according to any one of claims 1 to 6, characterized in that: The tooling also includes: a support structure; The fixing member and the driving assembly are arranged on the support structure, and the support structure is used to fix the fixing member and the driving assembly.

8. The tooling according to claim 7, characterized in that: in, The support structure includes a fixing plate, a first connecting structure and a second connecting structure; The first connecting structure is provided on the first end of the fixing plate close to the driving assembly; The second connecting structure is provided on the second end of the fixing plate close to the fixing member; The fixing plate is used to fix the fixing member and the driving assembly; The first connecting structure and the second connecting structure fix the fixing member and the driving assembly to an external structure.

9. The tooling according to claim 8, characterized in that: The tooling also includes: a rotary drive member and a rotary member; The rotary driving member is connected to the rotating member, and the rotating member is connected to the first connecting structure and the second connecting structure; The rotary driving member is used to provide a rotary driving force for the rotating member; The rotating member is used to drive the first connecting structure and the second connecting structure connected to it, as well as the fixed plate, the fixed member fixed on the fixed plate and the driving assembly, and the target part fixed and clamped by the fixed member and the driving assembly to rotate based on the rotational driving force.

10. A processing device, characterized in that: The processing device includes the fixing tool according to any one of claims 1-9.