Solid-state die forging device for conductor spacer
Through the innovative design of the injection mechanism and the mold mechanism, the problem of inconvenience in the installation and disassembly process of the solid-state die forging device of the conductor spacer rod is solved, and rapid installation and disassembly are achieved, which improves production efficiency and equipment adaptability and ensures product quality.
Patent Information
- Application Number
- CN202422487358.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-15
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-10-15
AI Technical Summary
The existing solid-state die forging device for conductor spacers is inconvenient in the installation and disassembly process, resulting in low production efficiency. In addition, the traditional device design lacks flexibility and is difficult to adapt to production requirements of different shapes and sizes.
The design of injection mechanism, clamping mechanism and mold mechanism includes pillars, mounting base, injection hopper, sliding base, pressure rod, push rod, injection head, clamping tube, clamping sleeve, limit block, transmission sleeve and other components. Through precise transmission and limit control, the injection head can be quickly installed and disassembled, and the configuration of static mold, dynamic mold and molding groove provides a flexible molding environment.
It improves the installation and disassembly efficiency of the injection head, reduces equipment downtime, enhances the flexibility and adaptability of the equipment, simplifies the operation process, and improves production efficiency and product quality.
Smart Images

Figure CN223407326U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of conductor spacer bars, and more particularly to a solid-state die forging device for conductor spacer bars. Background Art
[0002] In existing technologies, the injection die forging of wire spacers faces certain difficulties. Conventional solid-state die forging equipment often fails to provide sufficient design flexibility to accommodate the production requirements of wire spacers of varying shapes and sizes. This means that during injection die forging operations, the equipment may not be able to effectively adapt to complex product designs, resulting in low production efficiency and even impacting the quality of the final product.
[0003] The installation and disassembly process of the injection molding head in the existing technology is also not convenient enough. During the production process, the replacement or maintenance of the injection molding head is inevitable. However, the design of traditional devices often makes this process cumbersome and time-consuming. The lack of a mechanism for rapid installation and disassembly not only increases the downtime of the equipment, but also may increase the labor intensity of the operator, affecting the overall efficiency of the production line. Utility Model Content
[0004] (1) Technical problems solved
[0005] In view of the problems existing in the prior art, the utility model provides a solid-state die forging device for a conductor spacer to solve the technical problem of inconvenient installation and disassembly processes mentioned in the background art.
[0006] (2) Technical solution
[0007] In order to achieve the above-mentioned purpose, the present invention provides the following technical solutions: a solid die forging device for a conductor spacer, comprising a base, an injection mechanism provided on the base, the injection mechanism comprising a pillar, a mounting seat, an injection hopper, a sliding seat, a pressure rod, a push rod, a mounting rod, a pressure block and an injection head, the pillar being mounted on the base, the mounting seat being fixed on the pillar, the injection hopper being mounted on the mounting seat, the sliding seat being slidably mounted on the pillar, the pressure rod being rotatably mounted on the top end of the pillar, the two ends of the push rod being rotatably connected to the pressure rod and the sliding seat, the mounting rod being mounted on the sliding seat The cam is mounted on the seat, the pressure block is mounted on the bottom end of the mounting rod, the injection head is mounted on the bottom end of the injection hopper by means of a clamping mechanism, the clamping mechanism includes a clamping tube, a clamping sleeve, a top groove, a limit block, a clamping block, a push spring and a transmission sleeve, the clamping tube is mounted on the injection head, the clamping sleeve is mounted on the bottom end of the injection hopper, the top groove is arranged on the top end of the clamping sleeve, the limit block is mounted on the top end of the clamping tube, the clamping block is arranged on the clamping sleeve, the push spring is arranged on the clamping block, the transmission sleeve is arranged on the outer wall of the clamping sleeve, and the clamping sleeve is provided with a transmission assembly and a limit assembly.
[0008] The present invention is further configured as follows: the transmission assembly includes a control sleeve, an articulated block, a rack, a screw and a gear; the control sleeve is rotatably mounted on the clamping sleeve; the articulated block is provided with multiple groups mounted on the bottom surface of the control sleeve; the rack is provided with multiple groups, all of which are rotatably mounted on the articulated block; the screw is provided with multiple groups, all of which are rotatably mounted on the clamping sleeve and threadedly connected to the transmission sleeve; the gear is provided with multiple groups, all of which are fixedly mounted on the top ends of multiple groups of screws and mesh with multiple groups of racks to achieve precise transmission and control; the multiple groups increase the flexibility and adaptability of the equipment and can meet different work requirements.
[0009] The present invention is further configured as follows: the limit assembly includes a rotating sleeve, a limit rod, a limit plate and a clearance groove; the rotating sleeve is rotatably mounted on the top of the clamping sleeve; the limit rods are provided with multiple groups mounted on the rotating sleeve; the limit plates are provided with multiple groups mounted on multiple groups of the limit rods; the clearance grooves are provided with multiple groups distributed on the outside of the transmission sleeve, thereby preventing damage to the equipment caused by excessive rotation; the setting of the clearance grooves enables the transmission sleeve to smoothly contact with other components during the rotation process, thereby improving the operational convenience and stability of the equipment.
[0010] The present invention is further configured as follows: the clamping blocks are provided with multiple groups and are all slidably mounted on the clamping sleeves; the push springs are provided with multiple groups and both ends are respectively connected to the clamping blocks and the clamping sleeves; both ends of the multiple groups of clamping blocks are configured as arc shapes; the inner wall of the transmission sleeve is provided with abutment grooves; the abutment grooves are provided with multiple groups and their positions are adapted to the multiple groups of clamping blocks; the configuration of the push springs provides a restoring force, so that the clamping blocks can remain stable during the sliding process, thereby improving the operational convenience and safety of the equipment.
[0011] The utility model is further configured such that tension springs are connected between multiple groups of the racks and the clamping sleeves, and tension springs are connected between the transmission sleeve and the clamping sleeve. Multiple groups of tension springs are provided, thereby improving the operating convenience and safety of the equipment.
[0012] The utility model is further configured such that a limiting groove is provided on the inner side of the clamping sleeve, the limiting groove is adapted to the limiting block, and a sealing strip is provided on the top of the clamping tube to prevent leakage of liquid or gas and improve the safety and stability of the equipment.
[0013] The utility model is further configured as follows: a molding mechanism is provided on the base, and the molding mechanism includes a static mold, a movable mold, a molding groove and a screw rod; the static mold is fixedly mounted on the base, the movable mold is movably arranged on the base, the molding groove is arranged on the opposite surface of the static mold and the movable mold, and the screw rod is threadedly mounted on the base and one end is rotatably connected to the movable mold. This design improves the flexibility and accuracy of the molding process, enables the equipment to adapt to the production of a variety of products, and at the same time simplifies the operation process and improves production efficiency.
[0014] The utility model is further configured such that a knob is fixedly mounted on the outer end of the screw rod, a clamping groove is clamped on the clamping tube, and multiple groups of clamping grooves are provided. This design improves the operating convenience and safety of the device, and also increases the reliability of the device.
[0015] (3) Beneficial effects
[0016] Compared with the prior art, the present invention provides a solid die forging device for conductor spacers, which has the following beneficial effects:
[0017] 1. The design of the injection mechanism realizes effective pressurization and transportation of raw materials through the coordinated work of the support, mounting seat, injection hopper, sliding seat, pressure rod, push rod, mounting rod, pressure block and injection head. The configuration of the sliding seat and pressure rod enables the raw materials to be evenly pressurized before the injection head injects them into the mold mechanism, ensuring the fluidity of the raw materials and the molding quality. In addition, the design of the push rod and pressure block allows the operator to control the pressurization process through simple mechanical operations, improving the convenience and efficiency of operation.
[0018] 2. The clamping mechanism realizes the rapid installation and disassembly of the injection head through the configuration of the clamping tube, clamping sleeve, top groove, limit block, clamping block, push spring, transmission sleeve, control sleeve, hinge block, rack, screw, gear, rotating sleeve, limit rod, limit plate and give way groove. The rotation of the control sleeve can drive a series of mechanical transmissions, thereby realizing precise control of the clamping block, so that the injection head can be firmly installed on the injection hopper. In addition, the setting of the limit assembly ensures alignment and stability during the installation process, and the design of the push spring makes the disassembly process faster and easier. This design greatly reduces the downtime of the equipment and improves production efficiency and equipment utilization.
[0019] 3. The molding mechanism provides a precise and adjustable molding environment through the configuration of the static mold, movable mold, molding groove and screw. The relative movement of the static mold and movable mold and the setting of the molding groove provide a precise molding space for the raw material, ensuring that the shape and size of the product meet the design requirements. The configuration of the screw and knob makes the position of the movable mold easy to adjust to meet the molding requirements of different products. This design improves the flexibility and accuracy of the molding process, enables the equipment to adapt to the production of a variety of products, and simplifies the operation process and improves production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 This is a schematic diagram of the overall structure of a solid-state die forging device for a conductor spacer in the present utility model;
[0021] Figure 2 This is a structural diagram of the present invention in which the clamping mechanism and the injection molding head are separated;
[0022] Figure 3 This is a schematic cross-sectional view of the clamping mechanism in the present invention;
[0023] Figure 4 This is a schematic diagram of the structure of the transmission component and the limit component in the utility model;
[0024] Figure 5 This is a schematic structural diagram of the mold mechanism in the present utility model;
[0025] Figure 6 It is a bottom view of the structure of the clamping pipe and the clamping sleeve in the utility model.
[0026] In the figure: 1. Base; 2. Pillar; 3. Mounting seat; 4. Injection hopper; 5. Sliding seat; 6. Pressure rod; 7. Push rod; 8. Mounting rod; 9. Pressure block; 10. Injection head; 11. Snap tube; 12. Snap sleeve; 13. Top groove; 14. Limit block; 15. Snap block; 16. Push spring; 17. Transmission sleeve; 18. Control sleeve; 19. Hinge block; 20. Rack; 21. Screw; 22. Gear; 23. Rotating sleeve; 24. Limit rod; 25. Limit plate; 26. Give way groove; 27. Retaining groove; 28. Tension spring; 29. Tension spring; 30. Limit groove; 31. Sealing strip; 32. Static mold; 33. Moving mold; 34. Molding groove; 35. Screw; 36. Knob; 37. Snap groove. DETAILED DESCRIPTION
[0027] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0028] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by ordinary technicians in the technical field to which this application belongs.
[0029] In the present invention, unless otherwise specified, directions such as "up" and "down" are usually relative to the directions shown in the drawings, or relative to the vertical, perpendicular or gravity direction; similarly, for ease of understanding and description, "left" and "right" are usually relative to the left and right shown in the drawings; "inside" and "outside" refer to the inside and outside relative to the outline of each component itself, but the above-mentioned direction words are not used to limit the present invention.
[0030] See also Figure 1-5A solid die forging device for a conductor spacer comprises a base 1, on which an injection mechanism is arranged, the injection mechanism comprising a pillar 2, a mounting seat 3, an injection hopper 4, a sliding seat 5, a pressure rod 6, a push rod 7, a mounting rod 8, a pressure block 9 and an injection head 10. The pillar 2 is mounted on the base 1, the mounting seat 3 is fixed on the pillar 2, the injection hopper 4 is mounted on the mounting seat 3, the sliding seat 5 is slidably mounted on the pillar 2, the pressure rod 6 is rotatably mounted on the top of the pillar 2, the two ends of the push rod 7 are rotatably connected to the pressure rod 6 and the sliding seat 5, the mounting rod 8 is mounted on the sliding seat 5, the pressure block 9 is mounted on the bottom end of the mounting rod 8, and the injection head 10 is installed at the bottom of the injection hopper 4 by being provided with a clamping mechanism, the clamping mechanism includes a clamping tube 11, a clamping sleeve 12, a top groove 13, a limit block 14, a clamping block 15, a push spring 16 and a transmission sleeve 17, the clamping tube 11 is installed on the injection head 10, the clamping sleeve 12 is installed at the bottom of the injection hopper 4, the top groove 13 is set at the top of the clamping sleeve 12, the limit block 14 is installed at the top of the clamping tube 11, the clamping block 15 is set on the clamping sleeve 12, the push spring 16 is set on the clamping block 15, the transmission sleeve 17 is set on the outer wall of the clamping sleeve 12, and the clamping sleeve 12 is provided with a transmission component and a limit component.
[0031] The transmission assembly includes a control sleeve 18, an articulated block 19, a rack 20, a screw 21 and a gear 22. The control sleeve 18 is rotatably mounted on the clamping sleeve 12. The articulated block 19 is provided with multiple groups installed on the bottom surface of the control sleeve 18. The rack 20 is provided with multiple groups and is rotatably mounted on the articulated block 19. The screw 21 is provided with multiple groups and is rotatably mounted on the clamping sleeve 12 and is threadedly connected to the transmission sleeve 17. The gear 22 is provided with multiple groups and is fixedly mounted on the top of multiple groups of screws 21 and is meshed with multiple groups of racks 20. The design of this transmission assembly enables the screw 21 to be driven to rotate by the rotation of the control sleeve 18, and then power is transmitted through the meshing of the gear 22 and the rack to achieve precise transmission and control. The multiple groups of settings increase the flexibility and adaptability of the equipment and can meet different work requirements.
[0032] The limiting assembly includes a rotating sleeve 23, a limiting rod 24, a limiting plate 25 and a giving groove 26. The rotating sleeve 23 is rotatably installed on the top of the clamping sleeve 12. The limiting rod 24 is provided with multiple groups installed on the rotating sleeve 23. The limiting plates 25 are provided with multiple groups installed on multiple groups of limiting rods 24. The giving groove 26 is provided with multiple groups distributed on the outside of the transmission sleeve 17. The design of the limiting assembly limits the rotation range of the transmission sleeve 17 and prevents damage to the equipment caused by excessive rotation. The setting of the giving groove 26 enables the transmission sleeve 17 to smoothly contact other components during rotation, thereby improving the operating convenience and stability of the equipment.
[0033] Multiple sets of clamping blocks 15 are provided, each slidably mounted on the clamping sleeve 12. Multiple sets of push springs 16 are provided, with their ends connecting the clamping blocks 15 and the clamping sleeve 12, respectively. Both ends of the multiple sets of clamping blocks 15 are configured in an arc shape. The inner wall of the transmission sleeve 17 is provided with abutment grooves 27. Multiple sets of abutment grooves 27 are provided and are positioned to match the multiple sets of clamping blocks 15. The arc shape of the clamping blocks 15 reduces friction and wear between the clamping blocks 15 and the transmission sleeve 17, thereby extending the service life of the device. The provision of push springs 16 provides a restoring force, allowing the clamping blocks 15 to remain stable during the sliding process, thereby improving the operational convenience and safety of the device.
[0034] Tension springs 28 are connected between multiple groups of racks 20 and the snap-fit sleeves 12, and tension springs 29 are connected between the transmission sleeve 17 and the snap-fit sleeve 12. Multiple groups of tension springs 29 are provided. The setting of the tension springs 28 provides a stable restoring force, ensuring the stability of the rack 20 during the transmission process. The setting of the tension springs 29 makes the connection between the transmission sleeve 17 and the snap-fit sleeve 12 more secure, thereby improving the operating convenience and safety of the equipment.
[0035] A limiting groove 30 is provided on the inner side of the snap sleeve 12, which is adapted to the limiting block 14. A sealing strip 31 is provided on the top of the snap sleeve 11. The design of the limiting groove 30 limits the range of motion of the snap sleeve 12, preventing damage to the equipment caused by excessive movement. The setting of the sealing strip 31 improves the sealing performance of the snap sleeve 11, prevents liquid or gas leakage, and improves the safety and stability of the equipment.
[0036] In this embodiment, when the injection head 10 is installed on the injection hopper 4, the clamping tube 11 is plugged into the clamping sleeve 12, and the rotating control sleeve 18 drives the multiple groups of limit rods 24 to move to the position of the give way groove 26 set on the outer wall of the transmission sleeve 17. The rotating control sleeve 18 drives the multiple groups of racks 20 to rotate through the multiple groups of hinge blocks 19, and the multiple groups of racks 20 engage the gears 22 to rotate. The multiple groups of gears 22 drive the multiple groups of screws 21 to rotate, so that the multiple groups of screws 21 are threadedly matched with the transmission sleeve 17 to drive the transmission sleeve 17 to move along the screws 21. While the transmission sleeve 17 moves, the multiple groups of tension springs 29 are stretched, thereby releasing the transmission sleeve 17. The abutment grooves 27 provided on the inner wall abut against the multiple groups of clamping blocks 15, so that the multiple groups of clamping blocks 15 push the top ends of the clamping blocks 15 outward through the push springs 16, and then the rotating sleeve 23 is rotated to drive the multiple groups of limit rods 24 to rotate, so that the multiple groups of limit plates 25 abut against the upper and lower sides of the transmission sleeve 17, so that the multiple groups of tension springs 29 cannot pull the transmission sleeve 17 to move. At this time, the bottom ends of the multiple groups of clamping blocks 15 extend outward into the clamping sleeve 12, and the limit blocks 14 provided on the clamping tube 11 are aligned and plugged into the limit grooves 30 provided on the clamping sleeve 12, so that the limit blocks 14 are plugged into the top grooves 13, and then the clamping tube 11 is rotated to limit The bottom surface of the block 14 abuts against the bottom surface of the top groove 13, and then the rotating sleeve 23 is rotated to drive the limit rod 24 to rotate to the position of the giving groove 26 to release the control of the transmission sleeve 17, so that the multiple sets of tension springs 29 pull the transmission sleeve 17 to slide, so that the multiple sets of abutment grooves 27 set on the inner wall of the transmission sleeve 17 abut against the top of the multiple sets of clamping blocks 15, and downward pressure is applied to the multiple sets of clamping blocks 15 so that the bottom ends of the multiple sets of clamping blocks 15 are clamped in the clamping grooves 37, and the clamping tube 11 is clamped and fixed, and the installation of the injection head 10 is completed. The raw material is injected into the injection hopper 4, and then the pressure rod 6 is pressed to make the push rod 7 push the sliding seat 5 along the support 2 The sliding seat 5 drives the pressure block 9 provided at the bottom end of the mounting rod 8 to pressurize the raw material in the injection hopper 4, so that the raw material is injected into the mold mechanism through the injection head 10 for subsequent molding operations. When the injection head 10 needs to be disassembled, the rotating control sleeve 18 drives the screw 21 to rotate through the rack 20 meshing gear 22, and the screw 21 drives the transmission sleeve 17 to release the abutment against the clamping block 15, so that the multiple groups of clamping blocks 15 release the restriction on the clamping tube 11, and then rotate the clamping tube 11 to make the limit block 14 move into the limit groove 30, and then the clamping tube 11 can be pulled out of the clamping sleeve 12 to complete the disassembly of the injection head 10.
[0037] See also Figure 5As an embodiment of the molding mechanism: a molding mechanism is provided on the base 1, and the molding mechanism includes a static mold 32, a movable mold 33, a molding groove 34 and a screw rod 35. The static mold 32 is fixedly mounted on the base 1, and the movable mold 33 is movably arranged on the base 1. The molding groove 34 is arranged on the opposite surface of the static mold 32 and the movable mold 33. The screw rod 35 is threadedly mounted on the base 1 and one end is rotatably connected to the movable mold 33. The screw rod 35 is threadedly engaged with the base 1, so that the screw rod 21 pushes the movable mold 33 to move, and the movable mold 33 moves to the inner side of the static mold 32 to abut, so that the static mold 32 is docked with the molding groove 34 set inside the movable mold 33, and then the subsequent raw material injection and molding operations can be carried out.
[0038] A knob 36 is fixedly installed on the outer end of the screw rod 35, and a clamping groove 37 is clamped on the clamping tube 11. There are multiple groups of clamping grooves 37. The rotation of the knob 36 can drive the screw rod 35 to rotate, and then drive the movable mold 33 to move, realizing the opening and closing action of the molding groove 34. This design improves the operating convenience and safety of the equipment, and also increases the reliability of the equipment.
[0039] More specifically, turning the knob 36 drives the screw 35 to rotate, and the screw 35 is threadedly engaged with the base 1, so that the screw 21 pushes the movable mold 33 to move, and the movable mold 33 moves to the inside of the static mold 32 to abut against it, so that the static mold 32 and the molding groove 34 set on the inside of the movable mold 33 are docked, and then the subsequent raw material injection and molding operations can be carried out.
[0040] In summary, when the overall equipment is in use or running: when the injection head 10 is installed on the injection hopper 4, the clamping tube 11 is plugged into the clamping sleeve 12, and the rotating control sleeve 18 drives the multiple groups of limit rods 24 to move to the position of the give way groove 26 set on the outer wall of the transmission sleeve 17. The rotating control sleeve 18 drives the multiple groups of racks 20 to rotate through the multiple groups of hinge blocks 19, and the multiple groups of racks 20 engage the gears 22 to rotate. The multiple groups of gears 22 drive the multiple groups of screws 21 to rotate, so that the multiple groups of screws 21 are threadedly matched with the transmission sleeve 17 to drive the transmission sleeve 17 to move along the screw 21. While the transmission sleeve 17 moves, the multiple groups of tension springs 29 are stretched, thereby The contact of the abutment groove 27 provided on the inner wall of the transmission sleeve 17 with the multiple sets of clamping blocks 15 is released, so that the multiple sets of clamping blocks 15 push the top of the clamping blocks 15 outward through the push spring 16, and then the rotating sleeve 23 is rotated to drive the multiple sets of limit rods 24 to rotate, so that the multiple sets of limit plates 25 abut against the upper and lower sides of the transmission sleeve 17, so that the multiple sets of tension springs 29 cannot pull the transmission sleeve 17 to move. At this time, the bottom ends of the multiple sets of clamping blocks 15 extend outward into the clamping sleeve 12, and the limit blocks 14 provided on the clamping tube 11 are aligned with the limit grooves 30 provided on the clamping sleeve 12 and plugged in, so that the limit blocks 14 are plugged into the top groove 13, and then the clamping tube 1 is rotated. 1 so that the bottom surface of the limit block 14 and the bottom surface of the top groove 13 abut against each other, and then the rotating sleeve 23 is rotated to drive the limit rod 24 to rotate to the position of the giving groove 26 to release the control of the transmission sleeve 17, so that the multiple sets of tension springs 29 pull the transmission sleeve 17 to slide, so that the multiple sets of abutment grooves 27 set on the inner wall of the transmission sleeve 17 abut against the top ends of the multiple sets of clamping blocks 15, and downward pressure is applied to the multiple sets of clamping blocks 15 so that the bottom ends of the multiple sets of clamping blocks 15 are clamped in the clamping grooves 37, and the clamping tube 11 is clamped and fixed, and the installation of the injection head 10 is completed. The raw material is injected into the injection hopper 4, and then the pressure rod 6 is pressed to make the push rod 7 push the sliding seat 5 along the support The column 2 slides, and the sliding seat 5 drives the pressure block 9 set at the bottom end of the mounting rod 8 to pressurize the raw material in the injection hopper 4, so that the raw material is injected into the mold mechanism through the injection head 10 for subsequent molding operations. When the injection head 10 needs to be disassembled, the rotating control sleeve 18 drives the screw 21 to rotate through the rack 20 meshing gear 22, and the screw 21 drives the transmission sleeve 17 to release the abutment against the clamping block 15, so that the multiple groups of clamping blocks 15 release the restriction on the clamping tube 11, and then rotate the clamping tube 11 to make the limit block 14 move into the limit groove 30, and then the clamping tube 11 can be pulled out of the clamping sleeve 12 to complete the disassembly of the injection head 10.
[0041] Turning the knob 36 drives the screw rod 35 to rotate, and the screw rod 35 is threadedly engaged with the base 1, so that the screw rod 21 pushes the movable mold 33 to move, and the movable mold 33 moves to the inner side of the static mold 32 to abut against it, so that the static mold 32 and the molding groove 34 set on the inner side of the movable mold 33 are docked, and then the subsequent raw material injection and molding operations can be carried out.
[0042] In all the schemes mentioned above, the connection between the two components can be selected according to actual conditions by welding, bolt and nut connection, bolt or screw connection or other well-known connection methods, which will not be listed here one by one. In the above, all fixed connections are preferably welded. Although the embodiments of the present invention have been shown and described, it can be understood by ordinary technicians in this field that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the attached claims and their equivalents.
Claims
1. A solid die forging device for a conductor spacer, comprising a base (1), characterized in that: The base (1) is provided with an injection mechanism, which comprises a pillar (2), a mounting seat (3), an injection hopper (4), a sliding seat (5), a pressure rod (6), a push rod (7), a mounting rod (8), a pressure block (9) and an injection head (10). The pillar (2) is mounted on the base (1), the mounting seat (3) is fixed on the pillar (2), the injection hopper (4) is mounted on the mounting seat (3), the sliding seat (5) is slidably mounted on the pillar (2), the pressure rod (6) is rotatably mounted on the top of the pillar (2), the two ends of the push rod (7) are rotatably connected to the pressure rod (6) and the sliding seat (5), the mounting rod (8) is mounted on the sliding seat (5), the pressure block (9) is mounted on the bottom end of the mounting rod (8), and the injection head (10) is connected to the injection head (10). A clamping mechanism is provided and installed at the bottom end of the injection hopper (4), the clamping mechanism comprising a clamping tube (11), a clamping sleeve (12), a top groove (13), a limit block (14), a clamping block (15), a push spring (16) and a transmission sleeve (17); the clamping tube (11) is installed on the injection head (10); the clamping sleeve (12) is installed at the bottom end of the injection hopper (4); the top groove (13) is arranged at the top end of the clamping sleeve (12); the limit block (14) is installed at the top end of the clamping tube (11); the clamping block (15) is arranged on the clamping sleeve (12); the push spring (16) is arranged on the clamping block (15); the transmission sleeve (17) is arranged on the outer wall of the clamping sleeve (12); and the clamping sleeve (12) is provided with a transmission component and a limit component.
2. A solid die forging device for conductor spacers according to claim 1, characterized in that: The transmission assembly includes a control sleeve (18), an articulated block (19), a rack (20), a screw (21) and a gear (22); the control sleeve (18) is rotatably mounted on the clamping sleeve (12); the articulated block (19) is provided with multiple groups mounted on the bottom surface of the control sleeve (18); the rack (20) is provided with multiple groups and is rotatably mounted on the articulated block (19); the screw (21) is provided with multiple groups and is rotatably mounted on the clamping sleeve (12) and is threadedly connected to the transmission sleeve (17); the gear (22) is provided with multiple groups and is fixedly mounted on the top of multiple groups of the screw (21) and is meshed with multiple groups of the rack (20).
3. A solid die forging device for conductor spacers according to claim 2, characterized in that: The limiting assembly comprises a rotating sleeve (23), a limiting rod (24), a limiting plate (25) and a clearance groove (26); the rotating sleeve (23) is rotatably mounted on the top of the clamping sleeve (12); the limiting rod (24) is provided with multiple groups mounted on the rotating sleeve (23); the limiting plates (25) are provided with multiple groups mounted on multiple groups of the limiting rods (24); and the clearance grooves (26) are provided with multiple groups distributed on the outside of the transmission sleeve (17).
4. A solid die forging device for conductor spacers according to claim 3, characterized in that: The clamping blocks (15) are provided in multiple groups and are all slidably mounted on the clamping sleeve (12); the push springs (16) are provided in multiple groups and their two ends are respectively connected to the clamping blocks (15) and the clamping sleeve (12); both ends of the multiple groups of clamping blocks (15) are arranged in an arc shape; the inner wall of the transmission sleeve (17) is provided with abutment grooves (27); the abutment grooves (27) are provided in multiple groups and their positions are adapted to the multiple groups of clamping blocks (15).
5. A solid die forging device for conductor spacers according to claim 4, characterized in that: multiple groups A tension spring (28) is connected between the rack (20) and the clamping sleeve (12), and a tension spring (29) is connected between the transmission sleeve (17) and the clamping sleeve (12). Multiple groups of tension springs (29) are provided.
6. A solid die forging device for conductor spacers according to claim 5, characterized in that: A limiting groove (30) is provided on the inner side of the clamping sleeve (12), the limiting groove (30) is adapted to the limiting block (14), and a sealing strip (31) is provided on the top end of the clamping tube (11).
7. The solid die forging device for conductor spacers according to claim 1, characterized in that: The base (1) is provided with a molding mechanism, which comprises a static mold (32), a movable mold (33), a molding groove (34) and a screw rod (35). The static mold (32) is fixedly mounted on the base (1), the movable mold (33) is movably mounted on the base (1), the molding groove (34) is arranged on the opposite surface of the static mold (32) and the movable mold (33), and the screw rod (35) is threadedly mounted on the base (1) and one end is rotatably connected to the movable mold (33).
8. The solid die forging device for conductor spacers according to claim 7, characterized in that: The outer end of the screw rod (35) is fixedly mounted with a knob (36), and the clamping pipe (11) is clamped with a clamping groove (37), and the clamping groove (37) is provided in multiple groups.