Precision casting embryo conveying device
By designing a precision casting embryo transport device with anti-sway group and lateral adjustment group, the problem of mold shell embryo tilting or falling during transportation was solved, achieving safety and ease of operation during transportation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LUOYANG TRANSPORTATION GRP IND
- Filing Date
- 2025-02-27
- Publication Date
- 2026-04-28
AI Technical Summary
During the transport of the precision casting embryo, vibration can cause the mold shell embryo to tilt or fall, resulting in damage and affecting subsequent processes.
A precision-cast embryo transport device was designed, which includes an anti-sway group and a lateral adjustment group. The anti-sway group fixes and limits the embryo hanging rod to prevent swaying, and the lateral adjustment group adjusts the height of the anti-sway plate to accommodate hanging rods of different lengths, ensuring transport safety.
It effectively prevents embryos from shaking and colliding during transportation, improves transportation safety, facilitates worker operation, and reduces the risk of embryo damage.
Smart Images

Figure CN224170974U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of precision casting embryo transportation technology, specifically a precision casting embryo transportation device. Background Technology
[0002] Precision casting is a process for manufacturing high-precision, complex-shaped metal parts through investment casting. Its products are precise, complex, and closely resemble the final shape of the part, allowing for direct use with little or no machining. During the creation of the casting blank, the wax model needs to be attached to a hanging rod so that workers can easily apply the coating by holding the rod. However, during the transportation of the wax model, vibrations caused by the sliding of the trolley can cause the casting blank to tilt or fall, damaging it and delaying subsequent processes, thus impacting the company's profitability. Therefore, this application proposes a precision casting blank transportation device to solve these problems. Summary of the Invention
[0003] The technical problem to be solved by this application is to overcome the existing defects and provide a precision-cast embryo transport device that can effectively solve the problems in the background art.
[0004] To achieve the above objectives, this application provides the following technical solution: a precision casting embryo transport device, comprising a base plate, a support frame above the base plate, the support frame consisting of two support legs and a support plate, the support legs being gate-shaped, two support plates between the two support legs, and at least two hanging slots on the support plates, an anti-sway group being provided on one side of the hanging slots, and adjacent anti-sway groups being connected by a connecting plate, the anti-sway group comprising an anti-sway plate, a slot, and an adjustment group, the anti-sway plate being located below the support plate, a slot being provided on one side of the anti-sway plate, an adjustment group being provided on the upper surface of the anti-sway plate, the adjustment group being fixed to the connecting plate, and the adjustment group being located on one side of the hanging slot, the two connecting plates being connected by a lateral adjustment group, and a linkage group being provided at the bottom of the lateral adjustment group.
[0005] Furthermore, the adjustment assembly includes a connecting seat, a guide rod, a screw, and a handwheel. The connecting seat is located on one side of the hanging groove and is fixed to the connecting plate. An opening slot is provided on the side of the connecting seat away from the connecting plate. A guide rod and a screw are vertically arranged at the opening slot of the connecting seat, and the guide rod is slidably connected to the connecting seat. The screw is threadedly connected to the connecting seat. A handwheel is provided at the top of the screw. The bottoms of the guide rod and the screw are connected to the anti-sway plate, and the screw is rotatably connected to the anti-sway plate.
[0006] Furthermore, the lateral adjustment assembly includes a housing, a rotating shaft, a gear, a rack, and a push rod. The housing is fixed to the inside of the support leg. A rotating shaft is vertically arranged inside the housing and is rotatably connected to the housing. An internal hexagonal head is provided at the top of the rotating shaft. A gear is provided on the outside of the rotating shaft. Two racks mesh with the gear on the outside. A push rod is provided at one end of the rack. The push rod extends out of the housing and is connected to the connecting plate. The push rod is slidably connected to the housing. The bottom of the rotating shaft is connected to the linkage assembly.
[0007] Furthermore, the two racks are arranged symmetrically about 180 degrees around the axis of rotation.
[0008] Furthermore, the linkage assembly includes a timing pulley, a timing belt, and a protective housing. The bottoms of the two lateral adjustment assemblies are connected by the protective housing. A timing pulley is provided at the bottom of the rotating shaft, and the two timing pulleys are connected by a timing belt.
[0009] Furthermore, the bottom of the base plate is equipped with four omnidirectional wheels.
[0010] Furthermore, the number of brackets is not less than two, and the not less than two brackets are fixedly connected vertically. The number of anti-sway groups, connecting plates and lateral adjustment groups corresponds to the number of brackets.
[0011] Compared with the prior art, this application can fix and limit the embryo hanging rod by setting the anti-sway group, which can prevent the embryo from shaking during transportation, thereby preventing the two adjacent embryos from colliding and causing damage to the embryos, thus improving transportation safety. In addition, by setting the lateral distance adjustment group, the anti-sway group can be retracted or extended, which makes it easier for workers to handle the embryos. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the structure of this application;
[0013] Figure 2 This is a front sectional view of this application;
[0014] Figure 3 for Figure 2 A magnified view of part A in the image;
[0015] Figure 4 for Figure 2 A cross-sectional view of BB.
[0016] In the diagram: 1. Base plate, 2. Bracket, 3. Support leg, 4. Support plate, 5. Hanging groove, 6. Anti-sway assembly, 7. Connecting plate, 8. Anti-sway plate, 9. Slot, 10. Adjustment assembly, 11. Connecting seat, 12. Guide rod, 13. Screw, 14. Handwheel, 15. Lateral adjustment assembly, 16. Housing, 17. Rotating shaft, 18. Gear, 19. Rack, 20. Push rod, 21. Linkage assembly, 22. Synchronous pulley, 23. Synchronous belt, 24. Protective shell, 25. Universal wheel. Detailed Implementation
[0017] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments in this application (for ease of description and understanding, hereinafter referred to as...), Figure 2 (The above is described above). All other embodiments obtained by those skilled in the art without inventive effort are within the scope of protection of this application.
[0018] Please see Figure 1-4 This application provides a technical solution for a precision casting embryo transport device: a precision casting embryo transport device includes a base plate 1, a support 2 is provided above the base plate 1, the support 2 is composed of support legs 3 and support plates 4, the number of support legs 3 is two, the support legs 3 are door-shaped, two support plates 4 are provided between the two support legs 3, and the support plates 4 are provided with not less than two hanging grooves 5.
[0019] Specifically, there are nine hanging slots 5, and the number of anti-sway groups 6 is the same as the number of hanging slots 5.
[0020] Furthermore, the bottom of the base plate 1 is equipped with four casters 25. The casters 25 make it easy for workers to push the support 2 to move, and facilitate workers to send the embryo to the next process.
[0021] Furthermore, there are no fewer than two brackets 2, and no fewer than two brackets 2 are fixedly connected vertically. The number of anti-sway groups 6, connecting plates 7 and lateral adjustment groups 15 corresponds to the number of brackets 2.
[0022] Specifically, there are two brackets 2, each bracket 2 is equipped with eighteen anti-sway groups 6, two connecting plates 7 and two lateral adjustment groups 15.
[0023] Anti-sway group 6 is provided on one side of hanging groove 5, and adjacent anti-sway groups 6 are connected by connecting plate 7.
[0024] Specifically, each support plate 4 has nine anti-sway groups 6 on one side, and the nine anti-sway groups 6 are connected to each other by connecting plates.
[0025] The anti-sway assembly 6 includes an anti-sway plate 8, a slot 9, and an adjustment assembly 10. The anti-sway plate 8 is located below the support plate 4. A slot 9 is provided on one side of the anti-sway plate 8. An adjustment assembly 10 is provided on the upper surface of the anti-sway plate 8. The adjustment assembly 10 is fixed on the connecting plate 7 and is located on one side of the hanging groove 5.
[0026] Specifically, the adjustment group 10 is fixed to the connecting plate 7 by bolts, and the slot 9 is set on the outside of the anti-sway plate 8. The slot 9 can fix the hanging rod and prevent it from swaying back and forth, thereby avoiding collisions between the embryos. The adjustment group 10 can adjust the height of the anti-sway plate 8 to accommodate hanging rods of different lengths.
[0027] Furthermore, the adjustment assembly 10 includes a connecting seat 11, a guide rod 12, a screw 13, and a handwheel 14. The connecting seat 11 is located on one side of the hanging groove 5 and is fixed on the connecting plate 7. The connecting seat 11 has an opening groove on the side facing away from the connecting plate 7. The guide rod 12 and the screw 13 are vertically arranged at the opening groove of the connecting seat 11, and the guide rod 12 is slidably connected to the connecting seat 11. The screw 13 is threadedly connected to the connecting seat 11. The top of the screw 13 is equipped with a handwheel 14. The bottom of the guide rod 12 and the screw 13 are connected to the anti-sway plate 8, and the screw 13 is rotatably connected to the anti-sway plate 8.
[0028] Specifically, the connecting seat 11 is fixed to the connecting plate 7 by bolts, and the guide rod 12 can guide the anti-sway plate 8 to improve the stability of the movement of the anti-sway plate 8.
[0029] With this configuration, by rotating the handwheel 14, the screw 13 rotates with the handwheel 14, thereby driving the anti-sway plate 8 to move up or down, thus adjusting the height of the anti-sway plate 8 to suit hanging rods of different lengths.
[0030] The two connecting plates 7 are connected by a lateral adjustment group 15, and a linkage group 21 is provided at the bottom of the lateral adjustment group 15.
[0031] Furthermore, the lateral adjustment assembly 15 includes a housing 16, a rotating shaft 17, a gear 18, a rack 19, and a push rod 20. The housing 16 is fixed inside the support leg 3. The rotating shaft 17 is vertically arranged inside the housing 16 and is rotatably connected to the housing 16. The top of the rotating shaft 17 is provided with an internal hexagonal head. The gear 18 is provided on the outside of the rotating shaft 17. Two racks 19 mesh on the outside of the gear 18. A push rod 20 is provided at one end of the rack 19. The push rod 20 extends out of the housing 16 and is connected to the connecting plate 7. The push rod 20 is slidably connected to the housing 16. The bottom of the rotating shaft 17 is connected to the linkage assembly 21.
[0032] Specifically, the housing is fixed to the inside of the support leg 3 by bolts, and the push rod 20 is connected to the connecting plate by bolts.
[0033] More specifically, the two racks 19 are arranged in a 180-degree rotational symmetry with the pivot 17 as the center.
[0034] With this setup, the Allen wrench is inserted into the Allen head, and then the wrench is rotated, causing the Allen head to drive the shaft 17 and gear 18 to rotate. This causes the two racks 19, which mesh with the gear 18, to move the push rod 20, connecting plate 7, adjusting assembly 10, and anti-sway plate 8, thereby retracting or extending the anti-sway plate 8, making it easier for workers to pick up or fix the hanging rod.
[0035] At the same time, the power is transmitted from the rotating shaft 17 to the linkage group 21, which in turn drives another lateral adjustment group 15 to work.
[0036] Furthermore, the linkage group 21 includes a synchronous pulley 22, a synchronous belt 23, and a protective shell 24. The bottoms of the two lateral adjustment groups 15 are connected through the protective shell 24. The bottom of the rotating shaft 17 is provided with a synchronous pulley 22, and the two synchronous pulleys 22 are connected by the synchronous belt 23.
[0037] With this configuration, power is transmitted to the synchronous pulley 22 via the rotating shaft 17, and the synchronous belt 23 drives another synchronous pulley 22 to rotate, thereby transmitting power to another lateral adjustment group 15, so that the two lateral adjustment groups 15 can operate synchronously.
[0038] In use: The worker hangs the embryo attached to the hanging rod on the hanging groove 5 of the support plate 4 in sequence. Then, the worker inserts an Allen wrench into the Allen head and rotates the wrench, which causes the Allen head to drive the rotating shaft 17 and gear 18 to rotate. The rotating shaft 17 transmits power to the synchronous pulley 22, which in turn drives another synchronous pulley 22 to rotate via the synchronous belt 23. This transmits power to another lateral adjustment group 15, so that the two lateral adjustment groups 15 operate synchronously. This causes the two racks 19 that mesh with the gear 18 to drive the push rod 20, connecting plate 7, adjusting group 10 and anti-sway plate 8 to move, thereby extending the anti-sway plate 8 and locking the hanging rod in the slot 9 of the anti-sway plate 8, thus fixing the hanging rod and preventing it from swaying back and forth.
[0039] When the hanging rod is too long or too short, the screw 13 can be rotated by turning the handwheel 14, thereby driving the anti-sway plate 8 to move up or down, thus adjusting the height of the anti-sway plate 8 to suit hanging rods of different lengths.
[0040] Although embodiments of this application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A precision-cast embryo transport device, characterized in that: Includes a base plate (1), above which is a support (2), the support (2) is composed of support legs (3) and support plates (4), the number of support legs (3) is two, the support legs (3) are door-shaped, and two support plates (4) are arranged between the two support legs (3), the support plates (4) are provided with no less than two hanging slots (5), and anti-sway groups (6) are provided on one side of the hanging slots (5), and adjacent anti-sway groups (6) are connected by connecting plates (7), the anti-sway groups (6) cover Includes anti-sway plate (8), slot (9) and adjustment group (10). Anti-sway plate (8) is located below support plate (4). Slot (9) is provided on one side of anti-sway plate (8). Adjustment group (10) is provided on the upper surface of anti-sway plate (8). Adjustment group (10) is fixed on connecting plate (7) and is located on one side of hanging slot (5). The two connecting plates (7) are connected by transverse adjustment group (15). Linkage group (21) is provided at the bottom of transverse adjustment group (15).
2. The precision casting embryo transport device according to claim 1, characterized in that: The adjustment group (10) includes a connecting seat (11), a guide rod (12), a screw (13), and a handwheel (14). The connecting seat (11) is located on one side of the hanging groove (5) and is fixed on the connecting plate (7). The connecting seat (11) has an opening groove on the side away from the connecting plate (7). The guide rod (12) and the screw (13) are vertically arranged at the opening groove of the connecting seat (11). The guide rod (12) is slidably connected to the connecting seat (11). The screw (13) is connected to the connecting seat (11) by a thread. The top of the screw (13) is provided with a handwheel (14). The bottom of the guide rod (12) and the screw (13) are connected to the anti-sway plate (8). The screw (13) is rotatably connected to the anti-sway plate (8).
3. The precision casting embryo transport device according to claim 1, characterized in that: The lateral adjustment group (15) includes a housing (16), a rotating shaft (17), a gear (18), a rack (19), and a push rod (20). The housing (16) is fixed inside the support leg (3). The rotating shaft (17) is vertically arranged inside the housing (16) and is rotatably connected to the housing (16). The top of the rotating shaft (17) is provided with an internal hexagonal head. The gear (18) is provided on the outside of the rotating shaft (17). Two racks (19) mesh on the outside of the gear (18). A push rod (20) is provided at one end of the rack (19). The push rod (20) extends out of the housing (16) and is connected to the connecting plate (7). The push rod (20) is slidably connected to the housing (16). The bottom of the rotating shaft (17) is connected to the linkage group (21).
4. The precision casting embryo transport device according to claim 3, characterized in that: The two racks (19) are arranged symmetrically about 180 degrees around the pivot (17).
5. The precision casting embryo transport device according to claim 3, characterized in that: The linkage group (21) includes a synchronous pulley (22), a synchronous belt (23) and a protective shell (24). The bottoms of the two lateral adjustment groups (15) are connected through the protective shell (24). The bottom of the rotating shaft (17) is provided with a synchronous pulley (22), and the two synchronous pulleys (22) are connected through the synchronous belt (23).
6. The precision casting embryo transport device according to claim 1, characterized in that: The bottom of the base plate (1) is provided with four casters (25).
7. A precision-cast embryo transport device according to any one of claims 1-6, characterized in that: The number of brackets (2) shall not be less than two, and the brackets (2) shall be fixedly connected vertically. The number of anti-sway group (6), connecting plate (7) and lateral adjustment group (15) shall correspond to the number of brackets (2).