Process-aided multidirectional adjustment clamp
By designing a modular combination of adjustment component one and adjustment component two for a multi-directional adjustment fixture, the problem of inaccurate positioning of existing fixtures was solved, and multi-dimensional linkage and efficient processing of workpieces were realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 新东鑫(江苏)机械科技有限公司
- Filing Date
- 2025-09-05
- Publication Date
- 2026-07-24
AI Technical Summary
Existing machining auxiliary adjustment fixtures lack multi-directional adjustment structures, resulting in inaccurate workpiece positioning. Increasing the number of reference points or frequently replacing positioning elements leads to complex machining processes and low efficiency.
Design a multi-directional adjustment fixture including adjustment component one and adjustment component two. Through modular combination and coordinated operation, it can achieve multi-dimensional linkage, flexibly adjust the position and posture of the workpiece, and meet the multi-directional processing needs of complex workpieces.
It improves workpiece positioning accuracy and processing efficiency, simplifies operation procedures, and enhances the ease of operation and adaptability of fixtures.
Smart Images

Figure CN224544363U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of clamping equipment, and specifically relates to a multi-directional adjustment clamping fixture for machining assistance. Background Technology
[0002] Machining auxiliary adjustment fixtures are auxiliary devices used in machining processes to fix and position workpieces, and to change the spatial position or posture of the workpieces through adjustment structures. Currently, some machining auxiliary adjustment fixtures have certain limitations in functionality. In the workpiece positioning stage, the lack of multi-directional adjustment structures makes it difficult to accurately adjust the workpiece position, leading to deviations between the actual and designed positions. This is because the positioning elements cannot flexibly adapt to the complex shape of the workpiece and machining requirements. To address the positioning inaccuracy problem, methods such as adding positioning reference points or frequently replacing positioning elements are often used. However, adding reference points requires additional calibration of the machining equipment, complicating the machining process and easily introducing new errors. Frequent replacement of positioning elements is time-consuming and labor-intensive, significantly reducing machining efficiency. Therefore, a new structure is needed to solve the above-mentioned technical problems. Utility Model Content
[0003] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a multi-directional adjustment fixture for machining assistance, so as to solve the problems mentioned in the background technology.
[0004] This utility model is achieved through the following technical solution: a processing auxiliary multi-directional adjustment fixture, comprising: a mounting component, an adjustment component one, and an adjustment component two. The outer surface of the adjustment component two is mounted with a mounting component for mounting the adjustment component one. The adjustment component one is mounted inside the mounting component. The lower surface of the mounting component is mounted with a clamping member for clamping. The adjustment component two includes a mounting plate one and a mounting plate two for mounting an adjustment rod. The mounting component includes a fixing plate one and a fixing plate two for mounting the adjustment component one. The adjustment component one is installed between the fixing plate one and the fixing plate two.
[0005] In a preferred embodiment, an adjusting rod is rotatably mounted on the upper surface of the mounting plate one. The outer surface of the adjusting rod is threaded. Three guide rods are mounted on the outer side of the adjusting rod via the mounting plate one. The guide rods and the end of the adjusting rod away from the mounting plate one are connected to the lower surface of the mounting plate two. A rotating motor is mounted on the upper surface of the mounting plate two, and the output shaft of the rotating motor is connected to the adjusting rod.
[0006] In a preferred embodiment, two fixing rods are respectively installed on the left and right edges of the upper surface of the fixing plate one. The end of the fixing rod away from the fixing plate one is connected to the lower surface of the fixing plate two. The fixing plate one and the fixing plate two have the same structure. The upper surface of the fixing plate two is equipped with a drive motor one for driving the adjustment component one to move. In use, the adjustment component one and the adjustment component two can be modularly combined and operate independently. The adjustment dimension and range of the fixture can be expanded by the coordinated cooperation of the adjustment component one and the adjustment component two to meet the needs of multi-directional processing of complex workpieces.
[0007] In a preferred embodiment, the surfaces of the first fixing plate and the second fixing plate are mounted on the outer surfaces of the guide rod and the adjusting rod through fixing holes. The lower surface of the second fixing plate is fitted with a coupling through the first driving motor. The adjusting assembly includes a first connecting plate, a second connecting plate, a first driving wheel, a second driving wheel, a second driving motor, and an auxiliary wheel.
[0008] In a preferred embodiment, a connecting plate 2 is mounted on the upper surface of the fixing plate 1, and a drive wheel 1 is rotatably mounted on the upper surface of the fixing plate 1 via the connecting plate. The connecting plate 2 is mounted on the upper surface of the drive wheel 1, and the output shaft of the drive motor 1 is rotatably connected to the drive wheel 1 via a coupling.
[0009] In a preferred embodiment, a square plate is mounted on the right edge of the upper surface of the first connecting plate, an auxiliary wheel is rotatably mounted on the lower surface of the square plate, and a second driving wheel is rotatably mounted on the front side between the first connecting plate and the second connecting plate, wherein the diameter of the first driving wheel is smaller than the diameter of the second driving wheel.
[0010] In a preferred embodiment, a drive belt is rotatably mounted between the first drive wheel and the second drive wheel. The outer surface of the auxiliary wheel abuts against the outer surface of the drive belt. A second drive motor is mounted on the front side of the upper surface of the first connecting plate. The output shaft of the second drive motor passes through the second drive wheel and is connected to a clamping component on the lower surface of the connecting plate. In use, the lifting movement of the first adjustment component and the function of the second adjustment component form a multi-dimensional linkage, flexibly expanding the adjustment range of the fixture and meeting the composite processing requirements of the workpiece in height and other directions. At the same time, this structural design also facilitates the quick adjustment of the relative positions of the two components according to the processing scenario, improving the ease of operation of the fixture and its adaptability to different processing conditions.
[0011] After adopting the above technical solution, the beneficial effects of this utility model are: 1. By setting adjustment component one, an installation component for installing adjustment component one is installed on the outer surface of adjustment component two, and adjustment component one is installed inside the installation component. When in use, adjustment component one and adjustment component two can achieve modular combination and independent operation. The adjustment dimension and range of the fixture can be expanded by the coordinated cooperation of adjustment component one and adjustment component two to meet the needs of multi-directional processing of complex workpieces.
[0012] 2. By setting up adjustment component two, which includes mounting plate one for mounting adjustment rod and mounting plate two, adjustment component one is installed on the outer surface of adjustment component two. In use, the lifting and lowering movement of adjustment component one and the function of adjustment component two form a multi-dimensional linkage, flexibly expanding the adjustment range of the fixture and meeting the composite processing needs of workpiece in height and other directions. At the same time, this structural design also facilitates the quick adjustment of the relative position of the two according to the processing scenario, improving the ease of operation of the fixture and its adaptability to different processing conditions. Attached Figure Description
[0013] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0014] Figure 1 This is a schematic diagram of the adjustment component one of the processing auxiliary multi-directional adjustment fixtures of this utility model.
[0015] Figure 2 This is a schematic diagram of the second adjustment component of a multi-directional adjustment fixture for machining assistance according to this utility model.
[0016] Figure 3 This is a schematic diagram of the side structure of a multi-directional adjustment fixture for machining assistance according to this utility model.
[0017] In the diagram, 100-fixed plate one, 110-fixed rod, 120-fixed plate two, 121-fixed hole, 130-drive motor one, 131-coupling;
[0018] 200-Connecting plate one, 210-Drive wheel one, 220-Drive belt, 230-Drive wheel two, 240-Square plate, 241-Auxiliary wheel;
[0019] 300 - Drive motor II; 310 - Connecting plate II; 320 - Clamping component;
[0020] 400 - Mounting plate one, 410 - Mounting plate two, 420 - Guide rod, 430 - Adjusting rod, 440 - Rotating motor. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] Please see Figures 1 to 3 As the first embodiment of this utility model: a processing auxiliary multi-directional adjustment fixture, including: a mounting component, an adjustment component one and an adjustment component two, the outer surface of the adjustment component two is mounted with a mounting component for mounting the adjustment component one, the adjustment component one is mounted inside the mounting component, the lower surface of the mounting component is mounted with a clamping member 320 for clamping, the adjustment component two includes a mounting plate one 400 and a mounting plate two 410 for mounting the adjustment rod 430, the mounting component includes a fixing plate one 100 and a fixing plate two 120 for mounting the adjustment component one, and the adjustment component one is mounted between the fixing plate one 100 and the fixing plate two 120;
[0023] An adjusting rod 430 is rotatably mounted on the upper surface of mounting plate 400. The outer surface of the adjusting rod 430 is threaded. Three guide rods 420 are mounted on the outer side of the adjusting rod 430 via mounting plate 400. The guide rods 420 and the end of the adjusting rod 430 away from mounting plate 400 are connected to the lower surface of mounting plate 410. A rotary motor 440 is mounted on the upper surface of mounting plate 410. The output shaft of the rotary motor 440 is connected to the adjusting rod 430.
[0024] Two fixing rods 110 are installed on the left and right edges of the upper surface of fixing plate 100. The end of fixing rod 110 away from fixing plate 100 is connected to the lower surface of fixing plate 120. Fixing plate 100 and fixing plate 120 have the same structure. A drive motor 130 for driving adjustment component 1 to move is installed on the upper surface of fixing plate 120.
[0025] The surfaces of fixing plate 100 and fixing plate 2120 are mounted on the outer surfaces of guide rod 420 and adjusting rod 430 through fixing holes 121. The lower surface of fixing plate 2120 is mounted with coupling 131 through drive motor 130. The adjusting assembly includes connecting plate 120, connecting plate 210, drive wheel 1210, drive wheel 230, drive motor 2200 and auxiliary wheel 241.
[0026] In use, the user can first start the rotating motor 440 on the upper surface of the mounting plate 410, which will drive the adjusting rod 430 below to rotate. When the adjusting rod 430 rotates, the mounting components installed on the outer surfaces of the adjusting rod 430 and the guide rod 420 will move up and down according to the direction of rotation of the adjusting rod 430. When the mounting components move up and down, the adjusting component 1 inside the mounting components will also move up and down accordingly. Combined with the left and right swing of the adjusting component 1, the clamping part 320 can be adjusted up, down, left, and right to meet the user's clamping needs in different positions. Because the lifting and lowering movement of the adjusting component 1 and the function of the adjusting component 2 form a multi-dimensional linkage, the adjustment range of the fixture can be flexibly expanded to meet the composite processing needs of the workpiece in height and other directions. At the same time, this structural design also makes it easy to quickly adjust the relative position of the two according to the processing scenario, improving the ease of operation of the fixture and its adaptability to different processing conditions.
[0027] Please see Figures 1 to 3 As a second embodiment of the present invention: based on the description in the above embodiments, further, a connecting plate 310 is installed on the upper surface of the fixing plate 100, a drive wheel 210 is rotatably installed on the top of the fixing plate 100 through the connecting plate, a connecting plate 310 is installed on the upper surface of the drive wheel 210, and the output shaft of the drive motor 130 is rotatably connected to the drive wheel 210 through a coupling 131.
[0028] A square plate 240 is installed on the right edge of the upper surface of the connecting plate 200. An auxiliary wheel 241 is rotatably installed on the lower surface of the square plate 240. A drive wheel 230 is rotatably installed on the front side between the connecting plate 200 and the connecting plate 310. The diameter of the drive wheel 210 is smaller than the diameter of the drive wheel 230.
[0029] A drive belt 220 is rotatably mounted between drive wheel 210 and drive wheel 230. The outer surface of the auxiliary wheel 241 is pressed against the outer surface of the drive belt 220. A drive motor 300 is mounted on the front side of the upper surface of the connecting plate 200. The output shaft of the drive motor 300 passes through the drive wheel 230 and is connected to the clamping member 320 on the lower surface of the connecting plate 200.
[0030] In use, when adjusting the position of the mounting component (i.e., the position of the adjusting component one) through the operation steps of the first embodiment, the user can activate the drive motor 130 on the upper surface of the fixing plate 2 120. The drive motor 130 drives the drive wheel 210 to rotate via the coupling 131, which in turn drives the drive belt 220 to rotate. Subsequently, the drive belt 220 drives the drive wheel 230 to rotate, causing the connecting plate 200 and connecting plate 310 connected to the drive wheel 210 to rotate, thus rotating the connecting plate... The clamping component 320 on the lower surface of the second 310 swings left and right, thereby achieving up-down and left-right movement in conjunction with the operation steps of the first embodiment. After adjustment, the user can clamp the workpiece using the clamping component 320 (the clamping component 320 is prior art, and its specific working principle and structure can be known from common sense, so it will not be described in detail here). Since the adjustment component one and the adjustment component two are modularly combined and operate independently during use, the adjustment dimensions and range of the fixture can be expanded through the coordinated cooperation of the adjustment component one and the adjustment component two to meet the needs of multi-directional processing of complex workpieces.
[0031] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A machining-aided multi-directional adjustment fixture, comprising: The mounting assembly, adjustment assembly one, and adjustment assembly two are characterized in that an mounting assembly for mounting adjustment assembly one is mounted on the outer surface of adjustment assembly two, adjustment assembly one is mounted inside the mounting assembly, and a clamping member (320) for clamping is mounted on the lower surface of the mounting assembly. Adjustment assembly two includes a mounting plate one (400) and a mounting plate two (410) for mounting an adjustment rod. The mounting assembly includes a fixing plate one (100) and a fixing plate two (120) for mounting adjustment assembly one. Adjustment assembly one is mounted between fixing plate one (100) and fixing plate two (120).
2. The machining auxiliary multi-directional adjustment fixture as described in claim 1, characterized in that: An adjusting rod is rotatably mounted on the upper surface of the mounting plate one (400). The outer surface of the adjusting rod is threaded. Three guide rods (420) are mounted on the outer side of the adjusting rod via the mounting plate one (400). The guide rods (420) and the end of the adjusting rod away from the mounting plate one (400) are connected to the lower surface of the mounting plate two (410). A rotary motor (440) is mounted on the upper surface of the mounting plate two (410). The output shaft of the rotary motor (440) is connected to the adjusting rod (430).
3. The machining auxiliary multi-directional adjustment fixture as described in claim 2, characterized in that: Two fixing rods (110) are respectively installed on the left and right edges of the upper surface of the fixing plate one (100). The end of the fixing rod (110) away from the fixing plate one (100) is connected to the lower surface of the fixing plate two (120). The fixing plate one (100) and the fixing plate two (120) have the same structure. The upper surface of the fixing plate two (120) is equipped with a drive motor one (130) for driving the adjustment component one to move.
4. The machining auxiliary multi-directional adjustment fixture as described in claim 3, characterized in that: The surfaces of the first fixing plate (100) and the second fixing plate (120) are mounted on the outer surfaces of the guide rod (420) and the adjusting rod (430) through fixing holes (121). The lower surface of the second fixing plate (120) is fitted with a coupling (131) through the first drive motor (130). The adjusting assembly includes a first connecting plate (200), a second connecting plate (310), a first drive wheel (210), a second drive wheel (230), a second drive motor (300), and an auxiliary wheel (241).
5. The machining auxiliary multi-directional adjustment fixture as described in claim 4, characterized in that: A connecting plate 2 (310) is installed on the upper surface of the fixing plate 1 (100). A drive wheel 1 (210) is rotatably installed above the fixing plate 1 (100) via the connecting plate. A connecting plate 2 (310) is installed on the upper surface of the drive wheel 1 (210). The output shaft of the drive motor 1 (130) is rotatably connected to the drive wheel 1 (210) via a coupling (131).
6. The machining auxiliary multi-directional adjustment fixture as described in claim 5, characterized in that: A square plate (240) is installed on the right edge of the upper surface of the first connecting plate (200). An auxiliary wheel (241) is rotatably installed on the lower surface of the square plate (240). A second driving wheel (230) is rotatably installed on the front side between the first connecting plate (200) and the second connecting plate (310). The diameter of the first driving wheel (210) is smaller than the diameter of the second driving wheel (230).
7. A machining auxiliary multi-directional adjustment fixture as described in claim 6, characterized in that: A drive belt (220) is rotatably mounted between the first drive wheel (210) and the second drive wheel (230). The outer surface of the auxiliary wheel (241) is pressed against the outer surface of the drive belt (220). A second drive motor (300) is mounted on the front side of the upper surface of the first connecting plate (200). The output shaft of the second drive motor (300) passes through the second drive wheel (230) and is connected to the clamping member (320) on the lower surface of the first connecting plate (200).