An assembly mold frame with a guiding mechanism
By introducing guiding and leveling components into the mold base, combined with bottom support and expansion components, the problems of high assembly cost, low precision and poor stability of the mold base are solved, realizing automatic leveling and cleaning, and improving the practicality of the mold base.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-07
- Publication Date
- 2026-04-03
AI Technical Summary
The existing mold base lacks a guiding mechanism, resulting in high assembly costs, low assembly accuracy, poor structural stability, and limited functionality, making it difficult to meet users' personalized needs.
Design an assembly mold frame with a guiding mechanism, including a bottom mold base, a guide splicing component, a leveling component, a top mold base, a bottom support component, a lifting screw, an extension component, and a lifting motor. The guide splicing component and the leveling component enable automatic leveling and precise positioning of the mold, the bottom support component improves structural stability, and the extension component enables automatic cleaning.
It reduces the assembly cost of mold bases, improves assembly accuracy and structural stability, meets users' personalized needs, and simplifies the mold cleaning process.
Smart Images

Figure CN119369783B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of mold base technology, specifically to an assembly mold base with a guiding mechanism. Background Technology
[0002] A mold base is the supporting structure for a mold. It is used to assemble and fix the various parts of the mold according to certain rules and positions, so that the mold can be stably installed on relevant equipment and operate normally. Among them, the frame-type mold base structure has high strength and rigidity, and is suitable for large stamping dies and composite dies. It is commonly used in the automotive, aerospace and energy fields. It can be seen that the mold base, as an important component of molds, plays a crucial role in industrial production. Existing mold bases can basically meet the needs of daily processing and production, but there are still some shortcomings. First, existing mold bases do not have guiding mechanisms, and on-site assembly relies on... Firstly, additional auxiliary tools increase the assembly cost of the mold base. Secondly, the assembly accuracy of the mold base is affected by its own processing, making it difficult to level later, which affects the docking accuracy of the assembled mold. Thirdly, the support structure of the entire mold base is simple, and the impact on the external structure during the mold base transportation process can easily cause the internal parts to shift, affecting the structural stability of the mold base. Fourthly, the mold base has limited functionality, and manual cleaning of the mold is required before use, which makes it difficult to meet the personalized needs of users, thus affecting the practicality of the mold base. Therefore, it is necessary to design an assembly mold base with a guiding mechanism. Summary of the Invention
[0003] The purpose of this invention is to provide an assembly mold base with a guiding mechanism to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, the present invention provides the following technical solution: an assembly mold frame with a guiding mechanism, comprising a bottom mold base, a guiding splicing assembly, a leveling assembly, a top mold base, a bottom support assembly, a lifting screw, an extension assembly, a lifting connecting block, and a lifting motor. A support platform from the guiding splicing assembly is fitted into through holes at the four corners of the top of the bottom mold base. The bottom of the support platform is fitted into a receiving sleeve, and the receiving sleeve is fixed to the top of a support column in the leveling assembly. An adjusting screw is fixedly connected to the bottom end of the support column, and the adjusting screw is threadedly connected to an adjusting sleeve. The adjusting sleeve is rotatably connected to the bottom end of the mold frame housing. A first gear is fixedly fitted onto the adjusting sleeve, and the first gear meshes with a second gear. The fixed sleeve is connected to the output end of the reducer, and the input end of the reducer is connected to the output end of the leveling motor. The bottom of the mold frame shell is symmetrically equipped with support springs in the bottom support assembly, and the bottom end of the support spring is fixed to the inner bottom end of the support base. The outer wall of the mold frame shell is symmetrically equipped with mounting plates in the expansion assembly. A lifting cylinder is fixedly connected to the mounting plate. The output end of the lifting cylinder is fixedly connected to a lifting frame. The top of the lifting frame is symmetrically rotatably connected with a screw sleeve. The screw sleeve is connected to the motor screw through an internally embedded ball nut. One end of the motor screw is fixed to the moving bracket. Cleaning motors are symmetrically arranged on both sides of the moving bracket, and the output end of the cleaning motor passes through the moving bracket and is fixedly connected to the cleaning roller.
[0005] As a further technical solution of the present invention, the guide splicing assembly consists of a support platform, a receiving sleeve, a mold frame shell, a lifting ring, a transmission component, a square block, a table frame, a main column and a top support. The main column is fixedly sleeved in the support platform, and the top end of the main column is sleeved on the top support. A top mold base is slidably connected to the main column.
[0006] As a further technical solution of the present invention, the leveling assembly consists of a support column, an adjusting screw, an adjusting sleeve, a first gear, a second gear, a reducer, a leveling motor, a detection bracket, a transverse lead screw, a transverse motor, a transverse connecting block, a transverse guide rail, a transverse cylinder, a detection cylinder, and a pressure sensor. The limiting protrusion at the bottom of the adjusting screw is slidably connected to a groove opened at the bottom of the mold frame shell. The leveling motor is fixed on one side of the reducer, and the reducer is fixed on the inner wall of the mold frame shell. A table frame is fixedly connected to the top of the mold frame shell, and lifting rings are symmetrically arranged on the outer wall of the mold frame shell.
[0007] As a further technical solution of the present invention, the top end of the lifting screw is connected to the top of the top mold base by bearing cooperation, the lifting screw is provided with a lifting connecting block, and the lifting connecting block is connected to the lifting screw by ball nuts embedded in the interior, and the lifting connecting block is fixedly connected to the grooves symmetrically opened on the top mold base by screws.
[0008] As a further technical solution of the present invention, a transmission component is fixedly connected to the bottom end of the lifting screw, and a square block is slidably connected in the square groove opened at the bottom of the transmission component. The square block is fixed on the output end of the lifting motor, and the lifting motor is symmetrically fixed at the bottom end of the mold frame shell.
[0009] As a further technical solution of the present invention, the detection bracket is fixed in the mold frame housing, and a transverse lead screw is symmetrically connected in the detection bracket through bearings. A transverse connecting block is provided on the transverse lead screw, and the transverse connecting block is connected to the transverse lead screw through an internally embedded ball nut. One end of the transverse lead screw is fixedly connected to the output end of the transverse motor, and the transverse motor is symmetrically fixed on one side of the detection bracket. A translation guide rail is provided between the transverse connecting blocks, and a translation cylinder is provided on the translation guide rail. A detection cylinder is fixedly connected to the top of the translation cylinder, and a pressure sensor is fixedly connected to the output end of the detection cylinder.
[0010] As a further technical solution of the present invention, the bottom support assembly comprises a mounting sleeve, a support spring, a damper, a pull-down hydraulic cylinder, a pull-down plate, a support base frame, a locking post, a locking cylinder, a locking block, and a locking ring. The damper is symmetrically arranged between the support base frame and the mold frame shell, and the damper is located inside the support spring. The mounting sleeve is fixedly fitted into a through hole opened at the center of the bottom of the mold frame shell, and a locking ring is fixedly welded into the mounting sleeve. The pull-down hydraulic cylinder is symmetrically arranged at the bottom of the inner part of the support base frame, and the output end of the pull-down hydraulic cylinder passes through a through slot opened at the bottom of the mold frame shell and is fixedly fitted with a pull-down plate.
[0011] As a further technical solution of the present invention, a locking post is fixedly connected to the inner bottom end of the support base, and a locking cylinder is fixedly sleeved in a through groove evenly opened on the side wall of the locking post, and a locking block is fixedly connected to the output end of the locking cylinder.
[0012] As a further technical solution of the present invention, the extended component consists of a mounting plate, a lifting cylinder, a lifting frame, a lead screw sleeve, a transmission gear ring, a transmission gear, a transmission motor, a motor lead screw, a moving bracket, a cleaning motor, and a cleaning roller, with a transmission gear ring fixedly sleeved on the lead screw sleeve.
[0013] As a further technical solution of the present invention, the transmission gear ring meshes with the transmission gear, the transmission gear is fixedly sleeved on the output end of the transmission motor, and the transmission motor is fixed on the lifting frame.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: This assembly mold frame with a guiding mechanism uses a leveling component to support the receiving sleeve, and then supports the bottom mold base between the table frame via a support platform. After support, the main column on the support platform forms a guiding mechanism between the bottom mold base and the top mold base. Then, a lifting motor drives the lifting screw to rotate, causing the top mold base connected to the lifting connecting block to move down along the main column, supporting the top mold base between the guiding mechanisms. Finally, the top bracket is fixed to the top of the main column, and the top end of the lifting screw is rotatably connected to the top bracket through a bearing to complete the assembly process of the mold frame. By adding a guiding mechanism, the assembly of the mold frame is simplified. The assembly process reduces the assembly cost of the mold frame. After assembly, the transverse motor drives the transverse lead screw to rotate. During the rotation of the transverse lead screw, the threaded engagement between the transverse connecting blocks causes the translation guide rail between the transverse connecting blocks to slide along the reverse direction of the transverse lead screw. At the same time, the translation cylinder drives the pressure sensor to slide along the translation guide rail. The detection cylinder drives the pressure sensor to move upward and press against the bottom mold base for balance detection. After the detection is completed, the leveling motor drives the reducer to run. The second gear on the output end of the reducer meshes with the first gear and the adjusting sleeve to rotate. During the rotation of the adjusting sleeve, the threaded engagement between the adjusting screws causes the support column to move up and down, automatically adjusting the position. The support position of the receiving sleeve ensures the level of the bottom mold base, allowing for automatic leveling after assembly and guaranteeing the docking accuracy of the mold after assembly. The bottom support assembly provides elastic support for the mold frame shell. Impacts during mold frame transport are buffered by the compression and tension of the support springs, while a damper dissipates the accumulated elastic potential energy of the support springs, helping the mold frame shell restore dynamic balance. Before use, a hydraulic cylinder lowers the pull plate, causing the mold frame shell to move downwards. Simultaneously, a locking cylinder moves the locking block outwards, pressing the locking block against the locking ring to fix the mold frame shell in place, preventing damage during processing. The outer casing vibrates, ensuring the stability of the mold frame during operation. An extended assembly adds an automatic cleaning function to the mold frame. After the mold is fixed but before processing, the transmission gear on the drive motor meshes with the transmission gear ring and the lead screw sleeve to rotate. The cooperation between the lead screw sleeve and the motor lead screw causes a movable bracket at one end of the motor lead screw to extend between the bottom mold base and the top mold base, moving along the axis of the motor lead screw. During this movement, the cleaning motor drives the cleaning roller to rotate, and the height of the cleaning roller is adjusted by a lifting cylinder. The cleaning roller cleans the surface of the mold without manual intervention, meeting users' personalized needs and improving the practicality of the mold frame. Attached Figure Description
[0015] Figure 1 This is a three-dimensional diagram of the overall structure of the present invention;
[0016] Figure 2 for Figure 1A magnified view of a portion of region A in the middle;
[0017] Figure 3 This is an exploded view of the overall structure of the present invention;
[0018] Figure 4 for Figure 3 A magnified view of a portion of region B in the middle;
[0019] Figure 5 for Figure 3 A magnified view of a portion of region C in the middle;
[0020] Figure 6 This is a partial structural diagram of the present invention;
[0021] In the diagram: 1. Bottom mold base; 2. Guide splicing assembly; 3. Leveling assembly; 4. Top mold base; 5. Bottom support assembly; 6. Lifting screw; 7. Extension assembly; 8. Lifting connecting block; 9. Lifting motor; 21. Support platform; 22. Receiving sleeve; 23. Mold frame shell; 24. Lifting ring; 25. Transmission component; 26. Square block; 27. Table frame; 28. Main column; 29. Top bracket; 31. Support column; 32. Adjusting screw; 33. Adjusting sleeve; 34. First gear; 35. Second gear; 36. Reducer; 37. Leveling motor; 38. Detection bracket; 39. Horizontal movement screw; 40. 41. Horizontal movement motor; 42. Horizontal movement connecting block; 43. Translation guide rail; 44. Translation cylinder; 45. Detection cylinder; 56. Pressure sensor; 57. Mounting sleeve; 58. Support spring; 59. Damper; 50. Pull-down hydraulic cylinder; 51. Pull-down plate; 52. Support base frame; 53. Locking post; 54. Locking cylinder; 55. Locking block; 56. Locking ring; 77. Mounting plate; 78. Lifting cylinder; 79. Lifting frame; 70. Screw sleeve; 71. Transmission gear ring; 72. Transmission gear; 73. Transmission motor; 74. Motor screw; 75. Moving bracket; 86. Cleaning roller. Detailed Implementation
[0022] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0023] Please see the appendix Figure 1 - Appendix Figure 6One embodiment of the present invention provides an assembled mold frame with a guiding mechanism, comprising a bottom mold base 1, a guiding splicing assembly 2, a leveling assembly 3, a top mold base 4, a bottom support assembly 5, a lifting screw 6, an extension assembly 7, a lifting connecting block 8, and a lifting motor 9. A support platform 21 from the guiding splicing assembly 2 is fitted into through holes at the four corners of the top of the bottom mold base 1. The bottom of the support platform 21 is fitted into a receiving sleeve 22, and the receiving sleeve 22 is fixed to the top of a support column 31 in the leveling assembly 3. An adjusting screw 32 is fixedly connected to the bottom end of the support column 31. The adjusting screw 32 is threadedly connected to an adjusting sleeve 33, and the adjusting sleeve 33 is rotatably connected to the inner wall of the mold frame housing 23. At the bottom end of the mold frame housing 23, a first gear 34 is fixedly sleeved on the adjusting sleeve 33. The first gear 34 meshes with a second gear 35, which is fixedly sleeved on the output end of the reducer 36. The input end of the reducer 36 is connected to the output end of the leveling motor 37. Symmetrically arranged at the bottom of the mold frame housing 23 are support springs 51 from the bottom support assembly 5, with the bottom end of the support springs 51 fixed to the inner bottom end of the support base 55. Symmetrically arranged on the outer wall of the mold frame housing 23 are mounting plates 71 from the expansion assembly 7. A lifting cylinder 72 is fixedly connected to the mounting plate 71, and a lifting frame 73 is fixedly connected to the output end of the lifting cylinder 72. A lead screw sleeve is symmetrically rotatably connected to the top of the lifting frame 73. Screw 74 and ball screw sleeve 74 are connected to motor screw 78 through an internally embedded ball nut. One end of motor screw 78 is fixed to movable bracket 79. Cleaning motors 80 are symmetrically arranged on both sides of movable bracket 79, and the output end of cleaning motor 80 passes through movable bracket 79 and is fixedly connected to cleaning roller 81. Guide splicing assembly 2 consists of support platform 21, receiving sleeve 22, mold frame shell 23, lifting ring 24, transmission component 25, square block 26, table frame 27, main column 28 and top bracket 29. The main column 28 is fixedly sleeved in support platform 21, and the top end of the main column 28 is sleeved on top bracket 29. Top mold base 4 is slidably connected to main column 28. The leveling component 3 consists of a support column 31, an adjusting screw 32, an adjusting sleeve 33, a first gear 34, a second gear 35, a reducer 36, a leveling motor 37, a detection bracket 38, a transverse lead screw 39, a transverse motor 40, a transverse connecting block 41, a transverse guide rail 42, a transverse cylinder 43, a detection cylinder 44, and a pressure sensor 45. The limiting protrusion at the bottom of the adjusting screw 32 is slidably connected to a groove at the bottom of the mold frame housing 23. The leveling motor 37 is fixed on one side of the reducer 36, and the reducer 36 is fixed on the inner wall of the mold frame housing 23. A table frame 27 is fixedly connected to the top of the mold frame housing 23, and lifting rings 24 are symmetrically arranged on the outer wall of the mold frame housing 23.The top end of the lifting screw 6 is connected to the top of the top mold base 4 via bearings. A lifting connecting block 8 is provided on the lifting screw 6, and the lifting connecting block 8 is connected to the lifting screw 6 via an internally embedded ball nut. The lifting connecting block 8 is fixedly connected to symmetrically opened grooves on the top mold base 4 by screws. A transmission component 25 is fixedly connected to the bottom end of the lifting screw 6. A square block 26 is slidably connected in a square groove at the bottom of the transmission component 25. The square block 26 is fixed to the output end of the lifting motor 9, and the lifting motor 9 is symmetrically fixed inside the bottom end of the mold frame housing 23. A detection bracket 38 is fixed in the mold frame housing 23, and a transverse screw is symmetrically connected to the detection bracket 38 via bearings. 39. A transverse connecting block 41 is provided on the transverse lead screw 39, and the transverse connecting block 41 is connected to the transverse lead screw 39 through an internally embedded ball nut. One end of the transverse lead screw 39 is fixedly connected to the output end of the transverse motor 40, and the transverse motor 40 is symmetrically fixed on one side of the detection bracket 38. A translation guide rail 42 is provided between the transverse connecting blocks 41, and a translation cylinder 43 is provided on the translation guide rail 42. A detection cylinder 44 is fixedly connected to the top of the translation cylinder 43, and a pressure sensor 45 is fixedly connected to the output end of the detection cylinder 44. The bottom support assembly 5 consists of a mounting sleeve 50, a support spring 51, a damper 52, a pull-down hydraulic cylinder 53, and a pull-down plate. 54. Support base frame 55, locking pin 56, locking cylinder 57, locking block 58, and locking ring 59. A damper 52 is symmetrically arranged between the support base frame 55 and the mold frame housing 23, and the damper 52 is located inside the support spring 51. A mounting sleeve 50 is fixedly fitted into a through hole at the center of the bottom of the mold frame housing 23, and a locking ring 59 is fixedly welded into the mounting sleeve 50. A pull-down hydraulic cylinder 53 is symmetrically arranged at the bottom of the inner part of the support base frame 55. The output end of the pull-down hydraulic cylinder 53 passes through a through slot at the bottom of the mold frame housing 23 and is fixedly fitted with a pull-down plate 54. A locking pin 56 is fixedly connected to the bottom of the inner part of the support base frame 55, and a locking pin 56 is fixedly fitted into a through slot evenly opened on the side wall of the locking pin 56. A locking cylinder 57 is fixedly fitted onto the sleeve, and a locking block 58 is fixedly connected to the output end of the locking cylinder 57. The extension assembly 7 consists of a mounting plate 71, a lifting cylinder 72, a lifting frame 73, a lead screw sleeve 74, a transmission gear ring 75, a transmission gear 76, a transmission motor 77, a motor lead screw 78, a moving bracket 79, a cleaning motor 80, and a cleaning roller 81. A transmission gear ring 75 is fixedly fitted onto the lead screw sleeve 74. The transmission gear ring 75 meshes with the transmission gear 76, which is fixedly fitted onto the output end of the transmission motor 77. The transmission motor 77 is fixed to the lifting frame 73, which provides fixed support for the transmission motor 77 and rotational support for the lead screw sleeve 74.
[0024] Working principle: The leveling component 3 supports the receiving sleeve 22, and then the support platform 21 supports the bottom mold base 1 between the table frame 27. After support, the main column 28 on the support platform 21 forms a guide mechanism between the bottom mold base 1 and the top mold base 4. Then, the lifting motor 9 drives the lifting screw 6 to rotate, so that the top mold base 4 connected to the lifting connecting block 8 moves down along the main column 28, supporting the top mold base 4 between the guide mechanisms. Then, the top bracket 29 is fixed to the top of the main column 28, and the top end of the lifting screw 6 is rotated and connected to the top bracket 29 through the bearing, thus completing the mold frame assembly process. By adding a guide mechanism, the assembly process of the mold frame is simplified and the assembly cost of the mold frame is reduced. After assembly, the transverse motor 40 drives the transverse movement. When the lead screw 39 rotates, the threaded engagement between the lead screw 39 and the transverse connecting block 41 causes the translation guide 42 between the transverse connecting blocks 41 to slide in the opposite direction of the lead screw 39. Simultaneously, the translation cylinder 43 drives the pressure sensor 45 to slide along the translation guide 42. The detection cylinder 44 then drives the pressure sensor 45 to move upwards and press against the bottom mold base 1 for balance testing. After the test is completed, the leveling motor 37 drives the reducer 36 to operate. The second gear 35 on the output end of the reducer 36 meshes with the first gear 34 and the adjusting sleeve 33 to rotate. During the rotation of the adjusting sleeve 33, the threaded engagement between the adjusting screws 32 causes the support column 31 to move up and down, automatically adjusting the support position of the receiving sleeve 22 to ensure the bottom... The mold base 1 can be automatically leveled after assembly, ensuring the alignment accuracy of the mold after assembly. The bottom support component 5 provides elastic support for the mold frame shell 23. The impact on the mold frame during transportation is buffered by the compression and tension support spring 51. At the same time, the damper 52 consumes the accumulated elastic potential energy of the support spring 51, helping the mold frame shell 23 to restore dynamic balance. Before use, the pull-down hydraulic cylinder 53 drives the pull-down plate 54 to move down. The pull-down plate 54 acts on the mold frame shell 23, causing it to move down. At the same time, the locking cylinder 57 drives the locking block 58 to move outward, pressing the locking block 58 against the locking ring 59 to fix the mold frame shell 23 and prevent it from shaking during processing. The automatic cleaning function is ensured by the dynamic operation of the mold frame. The extension component 7 adds an automatic cleaning function to the mold frame. After the mold is fixed, before processing, the transmission gear 76 on the transmission motor 77 drives the transmission gear ring 75 and the lead screw sleeve 74 to rotate. Then, by utilizing the cooperation between the lead screw sleeve 74 and the motor lead screw 78, the moving bracket 79 at one end of the motor lead screw 78 extends between the bottom mold base 1 and the top mold base 4 and moves along the axis of the motor lead screw 78. During the movement, the cleaning motor 80 drives the cleaning roller 81 to rotate. The height of the cleaning roller 81 is adjusted by the lifting cylinder 72. The cleaning roller 81 is used to clean the surface of the mold. No manual intervention is required in the cleaning process, which meets the personalized needs of users and improves the practicality of the mold frame.
[0025] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. An assembled mold frame with a guiding mechanism, comprising a bottom mold base (1), a guiding splicing assembly (2), a leveling assembly (3), a top mold base (4), a bottom support assembly (5), a lifting screw (6), an extension assembly (7), a lifting connecting block (8), and a lifting motor (9), characterized in that: The bottom mold base (1) has four through holes at its top corners, into which a support platform (21) of the guide splicing assembly (2) is fitted. The bottom of the support platform (21) is fitted into a receiving sleeve (22), and the receiving sleeve (22) is fixed to the top of the support column (31) in the leveling assembly (3). The bottom end of the support column (31) is fixedly connected to an adjusting screw (32), which is threadedly connected to an adjusting sleeve (33). The adjusting sleeve (33) is rotatably connected to the bottom end of the mold frame shell (23). A first gear (34) is fixedly fitted onto the adjusting sleeve (33), which meshes with a second gear (35). The second gear (35) is fixedly fitted onto the output end of the reducer (36). The input end is connected to the output end of the leveling motor (37); the bottom of the mold frame housing (23) is symmetrically provided with support springs (51) in the bottom support assembly (5), and the bottom end of the support springs (51) is fixed to the inner bottom end of the support base frame (55); the outer wall of the mold frame housing (23) is symmetrically provided with mounting plates (71) in the expansion assembly (7), and a lifting cylinder (72) is fixedly connected to the mounting plate (71). The output end of the lifting cylinder (72) is fixedly connected to the lifting frame (73), and the top of the lifting frame (73) is symmetrically rotatably connected with a screw sleeve (74). The screw sleeve (74) is connected to the motor screw (78) through an internally embedded ball nut. One end of the motor screw (78) is fixed to the moving bracket (79). On the movable support (79), cleaning motors (80) are symmetrically arranged on both sides, and the output end of the cleaning motor (80) passes through the movable support (79) and is fixedly connected to the cleaning roller (81). The leveling component (3) consists of a support column (31), an adjusting screw (32), an adjusting sleeve (33), a first gear (34), a second gear (35), a reducer (36), a leveling motor (37), a detection bracket (38), a transverse screw (39), a transverse motor (40), a transverse connecting block (41), a transverse guide rail (42), a transverse cylinder (43), a detection cylinder (44), and a pressure sensor (45). The limiting protrusion at the bottom of the adjusting screw (32) is slidably connected to the groove opened at the bottom of the mold frame shell (23). The leveling motor (37) is fixed on one side of the reducer (36), and the reducer (36) is fixed on the inner wall of the mold frame shell (23). The top of the mold frame shell (23) is fixedly connected to the table frame (27). The outer wall of the mold frame shell (23) is symmetrically provided with lifting rings (24). The bottom support assembly (5) is composed of mounting sleeve (50), support spring (51), damper (52), pull-down hydraulic cylinder (53), pull-down plate (54), support base frame (55), locking column (56), locking cylinder (57), locking block (58) and locking ring (59). The support base frame (55) and the mold frame shell (23) are symmetrically provided with dampers (52), and the dampers (52) are located inside the support spring (51).The mounting sleeve (50) is fixedly fitted into the through hole at the center of the bottom of the mold frame housing (23), and a locking ring (59) is fixedly welded into the mounting sleeve (50). A pull-down hydraulic cylinder (53) is symmetrically arranged at the bottom of the inner part of the support base (55). The output end of the pull-down hydraulic cylinder (53) passes through the through slot at the bottom of the mold frame housing (23) and is fixedly fitted with a pull-down plate (54).
2. The assembly mold frame with a guiding mechanism according to claim 1, characterized in that: The guide splicing assembly (2) consists of a support platform (21), a receiving sleeve (22), a mold frame shell (23), a lifting ring (24), a transmission component (25), a square block (26), a table frame (27), a main column (28), and a top support (29). The main column (28) is fixedly sleeved in the support platform (21), and the top of the main column (28) is sleeved on the top support (29). The top mold base (4) is slidably connected to the main column (28).
3. The assembly mold frame with a guiding mechanism according to claim 2, characterized in that: The top of the lifting screw (6) is connected to the top of the top mold base (4) by bearing cooperation. The lifting screw (6) is provided with a lifting connecting block (8), and the lifting connecting block (8) is connected to the lifting screw (6) by ball nuts embedded in the interior. The lifting connecting block (8) is fixedly connected to the grooves symmetrically opened on the top mold base (4) by screws.
4. The assembly mold frame with a guiding mechanism according to claim 3, characterized in that: The bottom end of the lifting screw (6) is fixedly connected to a transmission component (25). A square block (26) is slidably connected in a square groove at the bottom of the transmission component (25). The square block (26) is fixed on the output end of the lifting motor (9), and the lifting motor (9) is symmetrically fixed on the bottom end of the mold frame shell (23).
5. The assembly mold frame with a guiding mechanism according to claim 1, characterized in that: The detection bracket (38) is fixed in the mold frame shell (23), and a transverse screw (39) is symmetrically connected in the detection bracket (38) through bearings. A transverse connecting block (41) is provided on the transverse screw (39), and the transverse connecting block (41) is connected to the transverse screw (39) through an internally embedded ball nut. One end of the transverse screw (39) is fixedly connected to the output end of the transverse motor (40), and the transverse motor (40) is symmetrically fixed on one side of the detection bracket (38). A translation guide rail (42) is provided between the transverse connecting blocks (41), and a translation cylinder (43) is provided on the translation guide rail (42). A detection cylinder (44) is fixedly connected to the top of the translation cylinder (43), and a pressure sensor (45) is fixedly connected to the output end of the detection cylinder (44).
6. The assembly mold frame with a guiding mechanism according to claim 1, characterized in that: The bottom of the support frame (55) is fixedly connected to a locking post (56), and a locking cylinder (57) is fixedly sleeved in a through groove evenly opened on the side wall of the locking post (56). A locking block (58) is fixedly connected to the output end of the locking cylinder (57).
7. The assembly mold frame with a guiding mechanism according to claim 1, characterized in that: The extended component (7) consists of a mounting plate (71), a lifting cylinder (72), a lifting frame (73), a lead screw sleeve (74), a transmission gear ring (75), a transmission gear (76), a transmission motor (77), a motor lead screw (78), a moving bracket (79), a cleaning motor (80), and a cleaning roller (81). The lead screw sleeve (74) is fixedly fitted with a transmission gear ring (75).
8. The assembly mold frame with a guiding mechanism according to claim 7, characterized in that: The transmission gear ring (75) meshes with the transmission gear (76), the transmission gear (76) is fixedly sleeved on the output end of the transmission motor (77), and the transmission motor (77) is fixed on the lifting frame (73).
Citation Information
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