Flexible code carving device for steering knuckle
By designing a flexible coding device including a base and multiple positioning and adjustment elements, the problem of lack of universality of traditional knuckle coded brackets is solved, and the universality and universality of knuckle coded is realized, which simplifies operation management and reduces costs.
Patent Information
- Application Number
- CN202422265513.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-09-14
AI Technical Summary
Traditional knuckle coded braces lack versatility, resulting in waste of costs and complex management, and long replacement time.
A flexible coding device including a base, a first positioning adjustment element, a second positioning adjustment element and a third positioning adjustment element is designed. Through the combination of three major positioning adjustment elements, all-round adjustments in the left, front and rear and vertical directions are realized, and steering knuckles of different structures are adapted to the steering knuckles.
It realizes the universality and versatility of steering knuckle code, simplifies on-site operation and management, and reduces workmanship costs.
Smart Images

Figure CN223160276U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of laser engraving two-dimensional codes on steering knuckles, in particular to a flexible code engraving device for steering knuckles. Background Art
[0002] There are many kinds of steering knuckle structures. Different automobile factories have different sizes, dimensions and shapes according to the assembly structure design. In actual production, traditional coding brackets are one bracket for each product. The brackets are not universal, which is not only cost-effective, but also complicated to manage and takes a long time to change. Based on this situation, this patent provides a flexible coding device for steering knuckles. Compared with traditional tooling, the flexible coding device achieves universality, greatly simplifies on-site operation and management, saves tooling costs, and has strong practicality on-site. Summary of the invention
[0003] The purpose of the utility model is to provide a flexible coding device for steering knuckles, which can meet the coding requirements of front-turning and rear-turning steering knuckles. The device has universality and versatility, and solves the problems of high coding tooling costs, lack of flexibility and complex management.
[0004] In order to achieve the above purpose, the technical solution of the utility model is:
[0005] A steering knuckle flexible coding device comprises a base, a first positioning adjustment element, a second positioning adjustment element and a third positioning adjustment element;
[0006] The base is a square plate with a length of 350 mm, a width of 350 mm, and a thickness of 10 mm. M6 screw holes are evenly distributed on the base. The first positioning adjustment element, the second positioning adjustment element, and the third positioning adjustment element are all installed on the base.
[0007] The first positioning and adjustment element includes a first adjustment plate, a slide groove, a first locking screw, a first dot matrix positioning block, a spring telescopic rod I, and a first switch; two slide grooves are arranged on the first adjustment plate, and the first adjustment plate is mounted on the base through the first locking screw. The first adjustment plate can slide left and right along the slide groove to achieve left and right position adjustment; the first dot matrix positioning block is fixed on the first adjustment plate, and the interior of the first dot matrix positioning block is a spring structure. The upper surface of the first dot matrix positioning block is installed with a spring telescopic rod I. Under the action of external force, the spring telescopic rod I can be compressed. When the external force is removed, the spring telescopic rod I is reset under the action of the spring elastic force.
[0008] Further, the second positioning and adjusting element includes a second adjusting plate, a second dot matrix positioning block, a spring telescopic rod II, a second switch, and a second locking screw; the second adjusting plate is vertically fixed on the base, a vertical sliding groove is provided on the second adjusting plate, the second dot matrix positioning block is fixed on the second adjusting plate through the second locking screw, the second dot matrix positioning block can adjust its height along the vertical sliding groove to realize the adjustment of the second dot matrix positioning block in the height direction. The inside of the second dot matrix positioning block is of a spring structure, and the spring telescopic rod II is installed on the upper surface of the second dot matrix positioning block. Under the action of an external force, the spring telescopic rod II can be compressed, and when the external force is withdrawn, the spring telescopic rod II resets under the action of the spring elastic force.
[0009] Further, the third positioning and adjusting element includes a third adjusting plate, a third horizontal locking screw, a third dot matrix positioning block, a spring telescopic rod III, a third switch, and a third vertical locking screw; the third adjusting plate is installed on the base through the third horizontal locking screw, the third adjusting plate is L-shaped, and two sliding grooves are provided on the bottom. The third adjusting plate can adjust its position back and forth along the sliding grooves. Two vertical sliding grooves are provided on the vertical part of the third adjusting plate. The third dot matrix positioning block is installed on the vertical plate part of the third adjusting plate through the third vertical locking screw, and the third dot matrix positioning block can adjust its height along the vertical sliding groove; the inside of the third dot matrix positioning block is of a spring structure, and the spring telescopic rod III is installed on the upper surface of the third dot matrix positioning block. Under the action of an external force, the spring telescopic rod III can be compressed, and when the external force is withdrawn, the spring telescopic rod III resets under the action of the spring elastic force.
[0010] Further, the first positioning and adjusting element can realize the left-right direction adjustment of the spring telescopic rod I, the second positioning and adjusting element can realize the height direction adjustment of the spring telescopic rod II, and the third positioning and adjusting element can realize both the front-back direction adjustment and the height direction adjustment of the spring telescopic rod III.
[0011] Compared with the prior art, the flexible coding device for steering knuckles of the present invention has achieved the following beneficial technical effects:
[0012] By the combined use of the three positioning and adjusting elements, it is possible to achieve all-round adjustments in the left-right, front-back, and vertical up-down directions in space, so as to be compatible with and applicable to steering knuckles of different structures and meet the flexible coding positioning requirements. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0014] Figure 1 This is a front view of a flexible coding device for a steering knuckle according to the present invention;
[0015] Figure 2 This is a top view of a flexible coding device for a steering knuckle according to the present invention;
[0016] Figure 3 This is a left view of a flexible coding device for a steering knuckle according to the present invention;
[0017] Figure 4 This is a three-dimensional schematic diagram of a flexible coding device for a steering knuckle of the present invention;
[0018] In the figure, 1-base, 2-first adjusting plate, 3-slide, 4-first locking screw, 5-first lattice positioning block, 6-spring telescopic rod I, 7-first switch, 8-second adjusting plate, 9-second lattice positioning block, 10-spring telescopic rod II, 11-second switch, 12-second locking screw, 13-third adjusting plate, 14-third horizontal locking screw, 15-third lattice positioning block, 16-spring telescopic rod III, 17-third switch, 18-third vertical locking screw, 19-vertical slide. DETAILED DESCRIPTION
[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention.
[0020] like Figures 1-4 As shown, a steering knuckle flexible coding device according to an embodiment of the present application includes a base, a first positioning adjustment element, a second positioning adjustment element and a third positioning adjustment element;
[0021] The base (1) is a square plate with a length of 350 mm, a width of 350 mm and a thickness of 10 mm. M6 screw holes are evenly distributed on the base. The first positioning adjustment element, the second positioning adjustment element and the third positioning adjustment element are all installed on the base.
[0022] In an embodiment of the present application, a flexible knurling device for a steering knuckle includes a base 1, a first adjusting plate 2, a sliding groove 3, a first locking screw 4, a first dot matrix positioning block 5, a first spring telescopic rod 6, a first switch 7, a second adjusting plate 8, a second dot matrix positioning block 9, a second spring telescopic rod 10, a second switch 11, a second locking screw 12, a third adjusting plate 13, a third horizontal locking screw 14, a third dot matrix positioning block 15, a third spring telescopic rod 16, a third switch 17, a third vertical locking screw 18, and a vertical sliding groove 19.
[0023] A flexible knurling device for a steering knuckle mainly consists of four parts: the first part is the base, the second part is the first positioning and adjusting element, the third part is the second positioning and adjusting element, and the fourth part is the third positioning and adjusting element.
[0024] The base 1 is a square plate with a length of 350 mm, a width of 350 mm, and a thickness of 10 mm. The base is evenly distributed with M6 screw holes, and all positioning and adjusting elements are installed on the base.
[0025] The first positioning and adjusting element includes a first adjusting plate 2, a sliding groove 3, a first locking screw 4, a first dot matrix positioning block 5, a first spring telescopic rod 6, and a first switch 7. Two sliding grooves 3 are provided on the first adjusting plate 2. The first adjusting plate 2 is installed on the base 1 through the first locking screw 4. The first adjusting plate 2 can slide left and right along the sliding groove 3 to achieve left and right position adjustment. The first dot matrix positioning block 5 is fixed on the first adjusting plate 2. The inside of the first dot matrix positioning block 5 is a spring structure. The first spring telescopic rod 6 is installed on the upper surface of the first dot matrix positioning block 5. Under the action of an external force, the first spring telescopic rod 6 can be compressed. When the external force is withdrawn, the first spring telescopic rod 6 resets under the action of the spring elastic force. When the first spring telescopic rod 6 is compressed under the action of an external force, the current position of the first spring telescopic rod 6 can be locked through the first switch 7 to achieve the follow-up positioning of the fixture.
[0026] The second positioning and adjusting element includes a second adjusting plate 8, a second dot matrix positioning block 9, a second spring telescopic rod 10, a second switch 11, and a second locking screw 12. The second adjusting plate 8 is vertically fixed on the base 1. A vertical sliding groove is provided on the second adjusting plate 8. The second dot matrix positioning block 9 is fixed on the second adjusting plate 8 through the second locking screw 12. The second dot matrix positioning block 9 can adjust its height along the vertical sliding groove to achieve the adjustment of the height direction of the second dot matrix positioning block 9. The inside of the second dot matrix positioning block 9 is a spring structure. The second spring telescopic rod 10 is installed on the upper surface of the second dot matrix positioning block 9. Under the action of an external force, the second spring telescopic rod 10 can be compressed. When the external force is withdrawn, the second spring telescopic rod 10 resets under the action of the spring elastic force. When the second spring telescopic rod 10 is compressed under the action of an external force, the current position of the second spring telescopic rod 10 can be locked through the second switch 11 to achieve the follow-up positioning of the fixture.
[0027] The third positioning and adjusting element includes a third adjusting plate 13, a third horizontal locking screw 14, a third dot matrix positioning block 15, a spring telescopic rod III 16, a third switch 17, and a third vertical locking screw 18. The third adjusting plate 13 is installed on the base 1 through the third horizontal locking screw 14. The third adjusting plate 13 is L-shaped, with two chutes provided at the bottom. The third adjusting plate 13 can be adjusted forward and backward along the chutes. Two vertical chutes 19 are provided on the vertical part of the third adjusting plate 13. The third dot matrix positioning block 15 is installed on the vertical plate part of the third adjusting plate 13 through the third vertical locking screw 18. The third dot matrix positioning block 15 can adjust its height along the vertical chute 19. The inside of the third dot matrix positioning block 15 is a spring structure. The spring telescopic rod III 16 is installed on the upper surface of the third dot matrix positioning block 15. Under the action of an external force, the spring telescopic rod III 16 can be compressed. When the external force is removed, the spring telescopic rod III 16 resets under the action of the spring elastic force. When the spring telescopic rod III 16 is compressed under the action of an external force, the current position of the spring telescopic rod III 16 can be locked through the third switch 17 to achieve the follow-up positioning of the fixture.
[0028] The first positioning and adjusting element can realize the left-right direction adjustment of the spring telescopic rod I 6, the second positioning and adjusting element can realize the height direction adjustment of the spring telescopic rod II 10, and the third positioning and adjusting element can realize both the front-back direction adjustment and the height direction adjustment of the spring telescopic rod III 16. By combining and using the three major positioning and adjusting elements, it is possible to achieve all-round adjustments in the left-right, front-back, and vertical up-down directions in space, so as to be compatible with and applicable to steering knuckles of different structures and meet the requirements of flexible coding positioning.
[0029] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. A flexible coding device for steering knuckles, characterized in that: It includes a base, a first positioning and adjusting element, a second positioning and adjusting element, and a third positioning and adjusting element; The base (1) is a square plate with a length of 350 mm, a width of 350 mm, and a thickness of 10 mm. The base is evenly distributed with M6 screw holes, and the first positioning and adjusting element, the second positioning and adjusting element, and the third positioning and adjusting element are all installed on the base; The first positioning and adjusting element includes a first adjusting plate (2), a chute (3), a first locking screw (4), a first dot matrix positioning block (5), a spring telescopic rod I (6), and a first switch (7); two chutes (3) are provided on the first adjusting plate. The first adjusting plate (2) is installed on the base (1) through the first locking screw (4). The first adjusting plate (2) can slide left and right along the chute (3) to achieve left and right position adjustment; the first dot matrix positioning block (5) is fixed on the first adjusting plate (2). The first dot matrix positioning block (5) has a spring structure inside. The spring telescopic rod I (6) is installed on the upper surface of the first dot matrix positioning block (5). Under the action of an external force, the spring telescopic rod I (6) can be compressed. When the external force is removed, the spring telescopic rod I (6) resets under the action of the spring elastic force.
2. The flexible coding device for steering knuckles according to claim 1, wherein: The second positioning and adjusting element includes a second adjusting plate (8), a second dot matrix positioning block (9), a spring telescopic rod II (10), a second switch (11), and a second locking screw (12); the second adjusting plate (8) is vertically fixed on the base (1). A vertical chute is provided on the second adjusting plate (8). The second dot matrix positioning block (9) is fixed on the second adjusting plate (8) through the second locking screw (12). The second dot matrix positioning block (9) can adjust its height along the vertical chute to achieve the adjustment of the height of the second dot matrix positioning block (9) in the height direction. The second dot matrix positioning block (9) has a spring structure inside. The spring telescopic rod II (10) is installed on the upper surface of the second dot matrix positioning block (9). Under the action of an external force, the spring telescopic rod II (10) can be compressed. When the external force is removed, the spring telescopic rod II (10) resets under the action of the spring elastic force.
3. The flexible coding device for steering knuckles according to claim 1, wherein: The third positioning and adjusting element includes a third adjusting plate (13), a third horizontal locking screw (14), a third dot matrix positioning block (15), a spring telescopic rod III (16), a third switch (17), and a third vertical locking screw (18); the third adjusting plate (13) is installed on the base (1) through the third horizontal locking screw (14). The third adjusting plate (13) is L-shaped, with two chutes provided at the bottom. The third adjusting plate (13) can adjust its position back and forth along the chutes. Two vertical chutes (19) are provided on the vertical part of the third adjusting plate (13). The third dot matrix positioning block (15) is installed on the vertical plate part of the third adjusting plate (13) through the third vertical locking screw (18). The third dot matrix positioning block (15) can adjust its height along the vertical chute (19); The third dot matrix positioning block (15) has a spring structure inside. The spring telescopic rod III (16) is installed on the upper surface of the third dot matrix positioning block (15). Under the action of an external force, the spring telescopic rod III (16) can be compressed. When the external force is removed, the spring telescopic rod III (16) resets under the action of the spring elastic force.
4. A flexible knuckle coding device according to claim 1, characterized in that: The first positioning and adjusting element can achieve the left - right direction adjustment of the spring telescopic rod Ⅰ(6), the second positioning and adjusting element can achieve the height - direction adjustment of the spring telescopic rod Ⅱ(10), and the third positioning and adjusting element can achieve both the front - back direction adjustment and the height - direction adjustment of the spring telescopic rod Ⅲ(16).