A diaphragm-type single-sided small space spiral sliding composite action mold structure
By designing a single-sided small-space spiral sliding compound action mold structure for diaphragms, automatic demoulding of reinforcing ribs and connecting holes is achieved, which solves the problem of low production efficiency in the existing technology and improves the automated production efficiency of diaphragm products.
Patent Information
- Application Number
- CN202411734531.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2044-11-29
AI Technical Summary
In the prior art, it is difficult to automatically demould the reinforcing ribs and connecting buckles of diaphragm products within a limited space, resulting in low production efficiency.
A diaphragm-type single-sided small space spiral sliding compound action mold structure is designed. The straight ejector head and the ejection and retraction block form a rib groove. Combined with the stripping component and the rotating gear, the automatic demoulding of the reinforcing rib and the connecting hole is realized to avoid interference and damage.
The automatic demoulding of reinforcing ribs and connecting holes can be completed in a small space, which improves production efficiency, ensures product quality, and reduces manual intervention. It is suitable for the automated production of single-color molds and multi-color molds.
Smart Images

Figure CN119610563B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of molds, in particular to a diaphragm-type single-side small space spiral sliding composite action mold structure. Background Art
[0002] When some diaphragm-like products are injection molded through molds, in order to ensure the structural strength and connection of the products, the design of reinforcing ribs and connecting buckles are added to the sides of the products. The connecting buckles include connecting hooks or connecting hole structures. When the distance between the reinforcing ribs and the connecting buckles is small, it is difficult to design two automatic demoulding structures to demould the reinforcing ribs and the connecting buckles respectively. Manual demoulding can only be performed by designing manual inserts, which affects production efficiency and is not conducive to the automated and efficient production of products. Summary of the Invention
[0003] The technical problem to be solved by the present invention is to provide a diaphragm-type single-side small space spiral sliding composite action mold structure that can simultaneously complete the automatic demoulding of reinforcing ribs and connecting buckles in a limited space.
[0004] The technical solution adopted by the present invention to solve the above-mentioned problem is: a diaphragm-type single-sided small space spiral sliding compound action mold structure, including a main body, a straight plug and an ejection retraction block, a rib groove for local reinforcement ribs of the molded product is provided between the straight plug and the retraction block, during the demolding process, the straight plug first performs an ejection movement, and then drives the ejection retraction block to perform an ejection movement, the main body also includes a stripping assembly, the stripping assembly includes a forming rod for a connecting hole of the molded product, and the stripping direction of the forming rod is perpendicular to the ejection movement direction of the straight plug, during the demolding process, the straight plug drives the forming rod to perform a stripping movement through the stripping assembly during the ejection movement process.
[0005] Compared with the prior art, the advantages of the present invention are: the design of the rib groove formed by the straight ejector head and the ejection retraction block facilitates the successful demoulding of the local reinforcement rib without damaging the reinforcement rib; at the beginning, during the ejection movement of the straight ejector head, the ejection retraction block does not move together, thereby forming a separation of the rib groove, and then when the reinforcement rib is demoulded, the reinforcement rib is not damaged, thereby ensuring the molding quality of the reinforcement rib; and when the connecting hole is demoulded later, the straight ejector head has already moved the product out, and the ejection retraction block is separated from the reinforcement rib, eliminating the movement interference between the ejection retraction block and the reinforcement rib, and the movement of the forming rod will not be impossible due to the connection between the ejection retraction block and the reinforcement rib, and finally, in one demoulding process, and in a smaller space, the demoulding operation of the reinforcement rib and the connecting hole is completed at the same time, and this action can be fully automated without the need for manual intervention, which can greatly improve production efficiency.
[0006] As an improvement of the present invention, a movable groove for the ejection and retraction block to move is provided on the side of the straight head close to the reinforcement rib. When the straight head and the ejection and retraction block form the reinforcement rib, a gap is provided between the ejection and retraction block and the bottom of the movable groove. Through the improvement, the design of the movable groove can ensure the relative stability of the ejection and retraction block relative to the straight head, and the design of the gap can prevent the ejection and retraction block from moving synchronously with the straight head when the straight head ejects the product unless the gap is eliminated, thereby realizing the separation of the rib groove and eliminating the movement interference between the ejection and retraction block and the reinforcement rib.
[0007] As an improvement of the present invention, one end of the ejection retraction block close to the bottom of the movable groove is fixedly connected to a limiting screw, one end of the limiting screw is inserted into the movable groove from the end of the straight head away from the reinforcing rib and is fixedly connected to the ejection retraction block, a retraction spring is provided between the other end of the limiting screw and the end of the straight head away from the reinforcing rib, the retraction spring is in a compressed state, and a protrusion protruding from the movable groove is provided on the side of the ejection retraction block. When the mold is closed, the protrusion is used to limit the movement of the ejection retraction block in the direction away from the reinforcing rib. Through the improvement, The limit screw further ensures the stability of the movement between the ejector retraction block and the straight ejector head, and prevents the ejector retraction block from escaping from the moving groove. The retraction spring ensures that the ejector retraction block does not move synchronously when the straight ejector head is ejecting. The limit design of the protrusion prevents the ejector retraction block from moving toward the bottom of the moving groove under the action of the retraction spring in the mold closing state to eliminate the gap, thereby ensuring the gap between the ejector retraction block and the bottom of the moving groove, and at the same time ensuring the stability of the ejector retraction block and the straight ejector head from moving synchronously when the gap is not eliminated.
[0008] As an improvement of the present invention, the straight top head is fixedly connected to a straight top seat, the stripping assembly is also fixedly connected to the straight top seat, and the forming rod is provided with a rotating thread and a rotating gear. The forming rod is threadedly connected to the straight top seat through the rotating thread. When the forming rod rotates, the forming rod will move synchronously along the axial direction of the forming rod due to the threaded transmission connection. The rotating gear rotates during the demolding process to drive the forming rod to rotate synchronously. Through the improvement, the purpose of demolding the connecting buckle can be achieved by rotating the forming rod through the design of the rotating thread and the rotating gear.
[0009] As an improvement of the present invention, the stripping assembly also includes a gear chain connected to the rotating gear for sprocket transmission. One end of the gear chain is fixedly connected to a chain seat, and the other end of the gear chain passes around the rotating gear and is then connected to the chain seat through a tension spring. During the demolding process, the chain seat is in a relatively static state. Through the improvement, when demolding, the straight ejector is ejected through the straight ejector seat, thereby synchronously driving the stripping assembly to move. At this time, the tension spring will be stretched, causing the gear chain to undergo gear transmission on the chain seat, thereby causing the forming rod to rotate, and then the axial movement of the forming rod is achieved through the threaded transmission connection of the rotating thread to complete the demolding of the connecting hole.
[0010] As an improvement of the present invention, the straight ejector seat is fixedly connected to a straight ejector slide via a straight ejector rod, and the straight ejector slide is fixedly connected to the ejector plate. Through the improvement, the driving connection of the ejector plate to the straight ejector seat is realized.
[0011] As an improvement of the present invention, the straight ejector rod passes through the chain seat, and when the straight ejector rod moves parallel to the axial direction of the forming rod, the chain seat is driven to move synchronously. Through the improvement, when the straight ejector rod moves perpendicular to the ejection direction, the chain seat can be driven to move synchronously perpendicular to the ejection direction, which helps to better demold the connecting hole.
[0012] As an improvement of the present invention, the side of the straight top slide away from the reinforcing rib is provided with an inclined guide column with an inclined design, and the straight top slide is provided with an inclined hole arranged parallel to the inclined guide column. The inclined guide column is movably connected in the inclined hole, and a moving gap is provided between the inclined hole and the inclined guide column. During the demolding process, the straight top slide first moves along the demolding direction, and after eliminating the moving gap, the straight top slide moves along the direction of the inclined guide column. Through the improvement, a multi-stage demolding process can be formed during the demolding process. At the beginning of demolding, the straight top slide first moves along the ejection direction. At this time, the reinforcing rib is demolded and the connecting hole is preliminarily demolded. Then, when the straight top slide moves along the direction of the inclined guide column, the forming rod and the connecting hole can be fully demolded, thereby ensuring that the product can be taken out of the mold cavity smoothly.
[0013] As an improvement of the present invention, the straight top slide is provided with a multi-section limit seat on one side of the inclined direction of the inclined hole, and the multi-section limit seat includes a straight portion for ensuring that the straight top slide moves along the demoulding direction and an inclined portion for ensuring the stability of the straight top slide in the inclined movement along the inclined guide column. Through the improvement, since there is no strong connection structure between the straight top slide and the inclined guide column, the inclined guide column is not sufficient to serve as a movement limit for the straight top slide, and therefore the movement of the straight top slide is not stable in the direction perpendicular to the ejection direction, thereby adding a multi-section limit seat design, when the straight top slide moves in the ejection direction, it only moves in the ejection direction, and when moving in the direction of the inclined guide column, it can move along the direction of the inclined guide column.
[0014] As an improvement of the present invention, the end of the straight-top slide close to the multi-section limit seat includes an abutting plane and an abutting inclined surface, one end of the straight surface portion is connected to the demoulding inclined surface portion, and the end of the straight surface portion away from the demoulding inclined surface portion is provided with a closing inclined surface portion, and the closing inclined surface portion and the demoulding inclined surface portion have the same slope. In the closing state, the abutting inclined surface abuts against the closing inclined surface portion, and in the demoulding state, the abutting plane first abuts against the straight surface portion, and after eliminating the moving gap, the abutting plane is separated from the straight surface portion, and the abutting inclined surface abuts against the demoulding inclined surface portion. Through the improvement, through the design of the closing inclined surface portion, the straight-top slide in the closing state can be limited, ensuring the state of the straight-top slide in the closing state, and thus ensuring the movement accuracy and stability of the straight-top slide during the demoulding process. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the overall structure installation area of the present invention.
[0016] Figure 2 It is a schematic diagram of the overall structure of the present invention.
[0017] Figure 3 It is a schematic diagram of the product structure of the present invention.
[0018] Figure 4 It is a schematic diagram of the connection structure between the straight ejector head and the ejection and retraction block of the present invention.
[0019] Figure 5 It is a schematic diagram of the cross-sectional connection structure of the straight ejector head and the ejection and retraction block of the present invention.
[0020] Figure 6 It is a schematic diagram of the connection structure between the hole-removing component and the straight top seat of the present invention.
[0021] Figure 7 It is a schematic diagram of the connection structure between the forming rod and the rotating gear of the present invention.
[0022] Figure 8 It is a schematic diagram of the connection structure between the gear chain and the chain seat of the present invention.
[0023] Figure 9 It is a schematic diagram of the connection structure between the straight top slide and the inclined guide column of the present invention.
[0024] As shown in the figure: 1. Straight head, 1.1. Moving groove, 1.2. Gap, 2. Ejector retraction block, 2.1. Protrusion, 3. Product, 3.1. Reinforcement rib, 3.2. Connecting hole, 4. Rib groove, 5. De-hole assembly, 5.1. Forming rod, 5.1.1. Rotating thread, 5.2. Rotating gear, 5.3. Gear chain, 5.4. Chain seat, 5.5. Tension spring, 6. Limit screw, 7. Retraction spring, 8. , straight ejector seat, 9, straight ejector slide, 9.1, inclined hole, 9.2, moving gap, 9.3, abutting plane, 9.4, abutting inclined surface, 9.5, limiting moving strip, 10, straight ejector rod, 11, inclined guide column, 12, multi-section limiting seat, 12.1, straight surface, 12.2, demoulding inclined surface, 12.3, closing inclined surface, 13, front template, 13.1, limiting step, 14, ejector plate, 15, hot runner plate. DETAILED DESCRIPTION
[0025] The embodiments of the present invention will be further described below with reference to the accompanying drawings.
[0026] like Figure 1 As shown, in the diaphragm mold, it includes a front template 13 for molding one side of the diaphragm product 3, an ejector plate 14 for facilitating demoulding of the product 3, and a hot runner plate 15 for injecting material into the mold cavity and ensuring the flow of the injected material. When the mold is separated, the rear template for molding the other side of the product 3 will move away from the front template to form a sampling space, and the rear ejector plate 14 will drive the ejector mold structure to separate the product from the front template 13 to ensure the quality of product separation. The present invention belongs to an ejector mold structure.
[0027] like Figure 1-2 As shown, a diaphragm-type single-sided small space spiral sliding compound action mold structure includes a main body, a straight plug 1 and an ejection retraction block 2, a rib groove 4 for forming a local reinforcing rib 3.1 of a molded product 3 is provided between the straight plug 1 and the ejection retraction block 2, the upper end surface of the straight plug 1 and the upper end surface of the ejection retraction block 2 are used to form a local smooth area of the molded product 3, during the demolding process, the straight plug 1 first performs an ejection movement, and then drives the ejection retraction block 2 to perform an ejection movement, the main body also includes a stripping component 5, the stripping component 5 includes a molding rod 5.1 for forming a connecting hole 3.2 of the molded product 3, and the stripping direction of the molding rod 5.1 is perpendicular to the ejection movement direction of the straight plug 1, during the demolding process, the straight plug 1 drives the molding rod 5.1 to perform a stripping movement through the stripping component 5 during the ejection movement process.
[0028] like Figure 2-5As shown, the side of the straight head 1 close to the reinforcement rib 3.1 is provided with a movable groove 1.1 for the ejection retraction block 2 to move. When the straight head 1 and the ejection retraction block 2 form the reinforcement rib 3.1, a gap 1.2 is provided between the ejection retraction block 2 and the bottom of the movable groove 1.1. One end of the ejection retraction block 2 close to the bottom of the movable groove 1.1 is fixedly connected to a limiting screw 6. One end of the limiting screw 6 is inserted from the end of the straight head 1 away from the reinforcement rib 3.1 into the movable groove 1.1 and is fixed to the ejection retraction block 2. A fixed connection is provided, and a retraction spring 7 is provided between the other end of the limit screw 6 and the end of the straight head 1 away from the reinforcing rib 3.1. The retraction spring 7 is in a compressed state. The side of the ejection retraction block 2 is provided with a protrusion 2.1 protruding from the moving groove 1.1, and the front template 13 is provided with a limiting step 13.1 that is connected to the protrusion 2.1 for limiting. When the mold is closed, the protrusion 2.1 and the limiting step 13.1 are abutted against each other to limit the movement of the ejection retraction block 2 in the direction away from the reinforcing rib 3.1.
[0029] like Figure 5-8 As shown, the straight top head 1 is fixedly connected to a straight top seat 8, and the stripping assembly 5 is also fixedly connected to the straight top seat 8. The forming rod 5.1 is provided with a rotating thread 5.1.1 and a rotating gear 5.2. The forming rod 5.1 is threadedly connected to the straight top seat 8 through the rotating thread 5.1.1. In order to reduce the processing difficulty of the straight top seat 8, the area for threaded connection with the rotating thread 5.1.1 is split and then fixedly connected to the straight top seat 8. When the forming rod 5.1 rotates, the forming rod 5.1 will be The screw transmission connection is synchronously moved along the axial direction of the forming rod 5.1. The rotating gear 5.2 rotates during the demolding process to drive the forming rod 5.1 to rotate synchronously. The hole-removing component 5 also includes a gear chain 5.3 connected to the rotating gear 5.2 through a sprocket transmission. One end of the gear chain 5.3 is fixedly connected to a chain seat 5.4, and the other end of the gear chain 5.3 passes around the rotating gear 5.2 and is then connected to the chain seat 5.4 through a tension spring 5.5. During the demolding process, the chain seat 5.4 is in a relatively stationary state.
[0030] like Figure 1 、 Figure 2 、 Figure 8 、 Figure 9As shown, the straight ejector seat 8 is fixedly connected to a straight ejector slide 9 through a straight ejector rod 10. The straight ejector slide 9 is fixedly connected to an ejector plate 14. The ejector plate 14 includes two fixedly connected splints. A limit movement bar 9.5 is provided on the side of the straight ejector slide 9. A limit movement groove 1.1 for the limit movement bar 9.5 to be connected and moved is provided between the two splints. When the ejector plate 14 moves up and down, the straight ejector slide 9 can be driven to move up and down synchronously, but the limit movement bar 9.5 can also move left and right in the limit movement groove 1.1. The straight ejector rod 10 passes through the chain seat 5.4. When the straight ejector rod 10 moves axially parallel to the forming rod 5.1, it drives the chain seat 5.4 to move synchronously. The side of the straight top slide 9 away from the reinforcing rib 3.1 is provided with an inclined guide column 11 with an inclined design. The straight top slide 9 is provided with an inclined hole 9.1 arranged parallel to the inclined guide column 11. The inclined guide column 11 is movably connected in the inclined hole 9.1. A moving gap 9.2 is provided between the inclined hole 9.1 and the inclined guide column 11. During the demolding process, the straight top slide 9 first moves along the demolding direction. After the moving gap 9.2 is eliminated, the straight top slide 9 moves along the direction of the inclined guide column 11.
[0031] like Figure 2 、 Figure 9 As shown, the straight top slide 9 is provided with a multi-stage limit seat 12 on one side of the inclined direction of the inclined hole 9.1. The multi-stage limit seat 12 includes a straight surface portion 12.1 for ensuring that the straight top slide 9 moves along the demoulding direction and a demoulding inclined surface portion 12.2 for ensuring the stability of the straight top slide 9 when tilting along the inclined guide column 11. The end of the straight top slide 9 close to the multi-stage limit seat 12 includes an abutting plane 9.3 and an abutting inclined surface 9.4. One end of the straight surface portion 12.1 is aligned with the demoulding inclined surface portion 12.2. The straight surface portion 12.1 is connected to the mold stripping slope portion 12.2 at one end thereof. A mold closing slope portion 12.3 is provided. The mold closing slope portion 12.3 has the same slope as the mold stripping slope portion 12.2. In the mold closing state, the abutting slope 9.4 abuts against the mold closing slope portion 12.3. In the mold stripping state, the abutting plane 9.3 first abuts against the straight surface portion 12.1. After the moving gap 9.2 is eliminated, the abutting plane 9.3 separates from the straight surface portion 12.1, and the abutting slope 9.4 abuts against the mold stripping slope portion 12.2.
[0032] The chain seat 5.4 is movably connected to the front template 13. The lower end of the front template 13 is provided with a moving cavity for the chain seat 5.4 to move. The inclined guide pillars 11 and the multi-stage limit seats 12 are fixedly connected to the hot runner plate 15.
[0033] During the demoulding process, the steps are as follows:
[0034] S1: The ejector plate 14 moves a short distance L1 toward the straight ejector head 1, where L1 is slightly greater than the thickness of the reinforcing rib 3.1;
[0035] S2: the straight ejector slide 9 moves along the straight surface portion 12.1 toward the straight ejector head 1 by a distance L1, and the straight ejector head 1 ejects the product 3 from the front template 13 by a distance L1;
[0036] S3: The ejector retraction block 2 remains stationary under the action of the retraction spring 7, eliminating the gap 1.2. The ejector retraction block 2 is lowered from the straight ram 1, and the rib groove 4 is separated, eliminating the interference between the ejector retraction block 2 and the reinforcing rib 3.1. At the same time, the rotating gear 5.2 moves toward the straight ram 1 by a distance L1, and the tension spring 5.5 is extended by a distance 2*L1, causing the gear chain 5.3 to drive the rotating gear 5.2 to rotate.
[0037] S4: The rotating gear 5.2 drives the forming rod 5.1 to rotate. Under the threaded transmission connection of the rotating thread 5.1.1, the forming rod 5.1 moves out of the hole. The moving distance of the hole is D1.
[0038] S5: The ejector plate 14 continues to move toward the straight ejector head 1 by a distance L2, which is greater than the distance L1;
[0039] S6: The straight ejector slide 9 moves along the straight surface portion 12.1 toward the straight ejector head 1 by a distance L2. Accordingly, the straight ejector head 1 continues to eject the product 3 by a distance L2 away from the front template 13, eliminating the movement gap 9.2. The side of the inclined hole 9.1 away from the straight ejector head 1 abuts against the inclined guide post 11.
[0040] S7: The ejector retraction block 2 is synchronously ejected by a distance L2; at the same time, the rotating gear 5.2 moves toward the straight ejector head 1 by a distance L2, and the tension spring 5.5 is extended by a distance 2*L2, so that the gear chain 5.3 drives the rotating gear 5.2 to rotate;
[0041] S8: The rotating gear 5.2 drives the forming rod 5.1 to rotate. Under the threaded transmission connection of the rotating thread 5.1.1, the forming rod 5.1 moves out of the hole. The moving distance is D2, so that the forming rod 5.1 is separated from the connecting hole 3.2.
[0042] S9: The ejector plate 14 moves toward the straight ejector head 1 by a distance L3;
[0043] S10: The straight ejector slide 9 moves along the inclined guide column 11 toward the straight ejector head 1. The straight ejector slide 9 moves a distance L3 toward the straight ejector head 1 and a distance D3 toward the multi-stage limit seat 12. Accordingly, the straight ejector head 1 continues to eject the product 3 away from the front template 13 by a distance L3. The straight ejector seat 8 moves axially along the forming rod 5.1 away from the connecting hole 3.2 by a distance D3.
[0044] S11: The ejector retraction block 2 is ejected synchronously by a distance L3 and crosses the reinforcing rib 3.1; at the same time, the rotating gear 5.2 moves a distance L3 toward the straight ejector head 1, and the tension spring 5.5 is extended by a distance 2*L3, so that the gear chain 5.3 drives the rotating gear 5.2 to rotate;
[0045] S12: The rotating gear 5.2 drives the forming rod 5.1 to rotate. Under the threaded transmission connection of the rotating thread 5.1.1, the forming rod 5.1 moves away from the connecting hole 3.2 by a distance D4, ensuring that the forming rod 5.1 and the connecting hole 3.2 are fully separated, so that the product 3 can be taken out easily.
[0046] S13: Take out product 3.
[0047] In steps S4, S8, and S12, during movement distances D1, D2, and D4, the forming rod 5.1 and the rotating gear 5.2 are circumferentially limited by the connecting key. Axial relative movement occurs between the forming rod 5.1 and the rotating gear 5.2, but this does not affect the circumferential synchronous rotational connection between them. During the demolding process, the ejection distance of the straight ejector 1 is L1+L2+L3, the same as the movement distance of the ejector plate 14. The ejection distance of the forming rod 5.1 is D1+D2+D3+D4.
[0048] The reset step only requires moving the ejector plate 14 in the reverse direction. The straight ejector head 1, the ejection and retraction block 2, the stripping assembly 5, and the straight ejector slide 9 can all return to the original path and reset. However, the tilting movement of the straight ejector slide 9 during the reset stroke no longer relies on the inclined guide column 11, but relies on the demoulding inclined portion 12.2.
[0049] During the demoulding process, only the traditional ejector plate 14 ejector pin demoulding operation is relied upon, and the demoulding of the reinforcing rib 3.1 and the demoulding of the connecting hole 3.2 can be completed in a small space, while fully ensuring the demoulding quality and reducing the design of manual inlaying. It can be fully put into automated production, thereby greatly improving the production efficiency of the product 3.
[0050] In actual production, this mold structure can be applied to both single-color and multi-color molds without worrying about the impact on product quality. This mold structure is also suitable for small-space demoulding of connecting hook structures.
[0051] The above description is merely a description of the preferred embodiment of the present invention and is not to be construed as limiting the scope of the claims. The present invention is not limited to the above embodiment, and variations in the specific structure are permitted. Any variations within the scope of the independent claims of the present invention are also within the scope of protection of the present invention.
Claims
1. A diaphragm-type single-sided small space spiral sliding compound action mold structure, including a body, characterized by: The invention comprises a straight ejector head (1) and an ejection retraction block (2), wherein a rib groove (4) for forming a local reinforcement rib (3.1) of a molded product (3) is provided between the straight ejector head (1) and the ejection retraction block (2), and during the demoulding process, the straight ejector head (1) first performs an ejection movement and then drives the ejection retraction block (2) to perform an ejection movement, and the body further comprises a hole removal component (5), wherein the hole removal component (5) comprises a molding rod (5.1) for forming a connection hole (3.2) of the molded product (3), and the hole removal direction of the molding rod (5.1) is perpendicular to the ejection movement direction of the straight ejector head (1), and during the demoulding process, the straight ejector head (1) drives the molding rod (5.1) to perform a hole removal movement through the hole removal component (5) during the ejection movement process; The straight top head (1) is fixedly connected to a straight top seat (8), and the stripping assembly (5) is also fixedly connected to the straight top seat (8). The forming rod (5.1) is provided with a rotating thread (5.1.1) and a rotating gear (5.2). The forming rod (5.1) is threadedly connected to the straight top seat (8) via the rotating thread (5.1.1). When the forming rod (5.1) rotates, the forming rod (5.1) moves synchronously along the axial direction of the forming rod (5.1) due to the threaded transmission connection. The rotating gear (5.2) rotates during the demoulding process to drive the forming rod (5.1) to rotate synchronously. The stripping assembly (5) further comprises a gear chain (5.3) connected to the rotating gear (5.2) through a sprocket transmission; one end of the gear chain (5.3) is fixedly connected to a chain seat (5.4); the other end of the gear chain (5.3) passes around the rotating gear (5.2) and is then connected to the chain seat (5.4) via a tension spring (5.5); during the demoulding process, the chain seat (5.4) is in a relatively static state.
2. The diaphragm-type single-sided small space spiral sliding compound action mold structure according to claim 1, characterized in that: A movable groove (1.1) for the ejection and retraction block (2) to move is provided on a side of the straight ejector head (1) close to the reinforcing rib (3.1). When the straight ejector head (1) and the ejection and retraction block (2) form the reinforcing rib (3.1), a gap (1.2) is provided between the ejection and retraction block (2) and the bottom of the movable groove (1.1).
3. The diaphragm-type single-sided small space spiral sliding compound action mold structure according to claim 2, characterized in that: One end of the ejection retraction block (2) close to the bottom of the movable groove (1.1) is fixedly connected to a limiting screw (6), one end of the limiting screw (6) is inserted into the movable groove (1.1) from the end of the straight head (1) away from the reinforcing rib (3.1) and fixedly connected to the ejection retraction block (2), a retraction spring (7) is provided between the other end of the limiting screw (6) and the end of the straight head (1) away from the reinforcing rib (3.1), and the retraction spring (7) is in a compressed state. A protrusion (2.1) protruding from the movable groove (1.1) is provided on the side of the ejection retraction block (2), and in the mold closing state, the protrusion (2.1) is used to limit the ejection retraction block (2) from moving in a direction away from the reinforcing rib (3.1).
4. The diaphragm-type single-sided small space spiral sliding compound action mold structure according to claim 1, characterized in that: The straight ejector seat (8) is fixedly connected to a straight ejector slide seat (9) via a straight ejector rod (10), and the straight ejector slide seat (9) is fixedly connected to an ejector pin plate (14).
5. The diaphragm-type single-sided small space spiral sliding compound action mold structure according to claim 4, characterized in that: The straight push rod (10) passes through the chain seat (5.4), and when the straight push rod (10) moves axially parallel to the forming rod (5.1), it drives the chain seat (5.4) to move synchronously.
6. The diaphragm-type single-side small space spiral sliding compound action mold structure according to claim 5, characterized in that: A side of the straight top slide (9) away from the reinforcing rib (3.1) is provided with an inclined guide column (11) of inclined design, and an inclined hole (9.1) arranged parallel to the inclined guide column (11) is provided on the straight top slide (9). The inclined guide column (11) is movably connected in the inclined hole (9.1), and a moving gap (9.2) is provided between the inclined hole (9.1) and the inclined guide column (11). During the demoulding process, the straight top slide (9) first moves along the demoulding direction, and after the moving gap (9.2) is eliminated, the straight top slide (9) moves along the direction of the inclined guide column (11).
7. The diaphragm-type single-sided small space spiral sliding compound action mold structure according to claim 6, characterized in that: The straight top slide (9) is provided with a multi-segment limit seat (12) on one side of the inclined direction of the inclined hole (9.1), and the multi-segment limit seat (12) comprises a straight surface portion (12.1) for ensuring that the straight top slide (9) moves along the demoulding direction and a demoulding inclined surface portion (12.2) for ensuring the stability of the straight top slide (9) when it moves along the inclined guide column (11).
8. The diaphragm-type single-side small space spiral sliding compound action mold structure according to claim 7, characterized in that: The end of the straight top slide (9) close to the multi-stage limit seat (12) includes a contact plane (9.3) and a contact bevel (9.4); one end of the straight surface portion (12.1) is connected to the demoulding bevel portion (12.2); the end of the straight surface portion (12.1) away from the demoulding bevel portion (12.2) is provided with a mold closing bevel portion (12.3); the mold closing bevel portion (12.3) and the demoulding bevel portion (12.2) have the same slope; in the mold closing state, the contact bevel (9.4) contacts the mold closing bevel portion (12.3); in the demoulding state, the contact plane (9.3) first contacts the straight surface portion (12.1); after the moving gap (9.2) is eliminated, the contact plane (9.3) separates from the straight surface portion (12.1), and the contact bevel (9.4) contacts the demoulding bevel portion (12.2).
Citation Information
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