Mold suction force adjusting structure
Patent Information
- Application Number
- CN202521472322.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-14
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-07-14
AI Technical Summary
[0004]为解决上述问题,本实用新型提供一种模具吸附力调节结构,解决了现有的冲压模具或者注塑模具中针对吸附力的调节大部分是通过调节抽气机的抽气量以实现,因抽气机可能同时控制多台模具,进而操作麻烦,且劳动成本高,效益低下的问题
相比现有的模具加工,本实用新型通过上座、调节组件、吸附组件以及下座,实现了对模具吸附力的精准调控,而调节组件的一端与吸附组件相连,并设置在上座上方,而吸附组件则位于上座与下座之间,使得吸附力可根据实际需求进行灵活调整;提高了模具吸附的稳定性和可靠性,还有效优化了生产效率,降低了因吸附力不足或过剩导致的生产问题;结构紧凑、实用性强。
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Figure CN224794451U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mold technology, specifically to a mold adsorption force adjustment structure. Background Technology
[0002] Stamping and injection molding have become important processes in modern product processing. To better support these processes, stamping dies have become increasingly sophisticated through continuous research, offering advantages such as ease of processing.
[0003] In existing stamping or injection molds, the adjustment of suction force is mostly achieved by adjusting the suction volume of a vacuum pump. Since the vacuum pump may control multiple molds simultaneously, the operation is cumbersome, labor-intensive, and inefficient. Utility Model Content
[0004] To address the aforementioned problems, this utility model provides a mold adsorption force adjustment structure, which solves the problem that in existing stamping or injection molds, the adjustment of adsorption force is mostly achieved by adjusting the air extraction volume of an air extractor. Since the air extractor may control multiple molds simultaneously, the operation is cumbersome, labor costs are high, and efficiency is low.
[0005] The technical solution adopted by this utility model is as follows: it includes an upper seat, an adjustment component, an adsorption component, and a lower seat; one end of the adjustment component is connected to the adsorption component and is disposed above the upper seat, and the adsorption component is disposed between the upper seat and the lower seat for adjusting the suction force of the upper seat and the lower seat.
[0006] A further improvement to the above scheme is that the upper seat includes a first upper seat body, a second upper seat body, and a third upper seat body; the second upper seat body and the third upper seat body are a through-hole structure, and the adjustment component and the adsorption component are disposed within the through-hole structure.
[0007] A further improvement to the above solution is that the upper surface of the first upper body is provided with a plurality of first mounting holes, and an adjustment drive groove is provided between the plurality of first mounting holes; the first mounting holes are used for mounting the end of the adsorption component, and the adjustment drive groove is used for mounting the adjustment component; so that the adjustment component can adjust the suction force on the adsorption component.
[0008] A further improvement to the above solution is that the second upper seat is a fixing block used to fix the middle part of the adsorption component and the adjustment component, and the third upper seat is provided with a second assembly hole relative to the first upper seat, the second assembly hole being used for assembling the adsorption component.
[0009] A further improvement to the above solution is that the adjustment assembly includes an adjustment head, an adjustment link, and an adjustment pump; the adjustment head is disposed in the adjustment drive groove, one end of the adjustment link is connected to the adjustment head, and the other end is connected to the adjustment pump.
[0010] A further improvement to the above solution is that the adjusting linkage includes a driving linkage and auxiliary linkages. The two ends of the driving linkage are respectively connected to the adjusting head and the adjusting pump. Multiple auxiliary linkages are provided, and the two ends of the multiple auxiliary linkages are respectively connected to the adjusting pump and the adsorption assembly. The driving linkage is used to control the power between the multiple auxiliary linkages.
[0011] A further improvement to the above scheme is that the adsorption assembly includes four sets of adsorption main rods, and adsorption secondary rods are provided on one side of each of the four sets of adsorption main rods; an adsorption sleeve is provided on the outer wall of the adsorption assembly, and one end of the adsorption sleeve is fitted onto the adsorption main rod.
[0012] A further improvement to the above scheme is that a first mounting ring is provided at the end of the adsorption shell, and a second mounting ring is provided in the middle of the adsorption shell; the first mounting ring is provided on the upper seat, and the second mounting ring is provided on the lower seat.
[0013] A further improvement to the above solution is that the lower seat includes a first lower seat plate, a lower seat frame, a lower seat block, and a second lower seat plate; the lower seat frame is used to support the first lower seat plate and the second lower seat plate to form an adjustment area, and the lower seat block is disposed below the adjustment area to fix the adsorption component.
[0014] A further improvement to the above solution is that the first lower seat plate is provided with a third mounting hole relative to the third upper seat body, and the third mounting hole is used to fix the tail of the adsorption assembly.
[0015] The beneficial effects of this utility model are: Compared to existing mold processing methods, this utility model achieves precise control of the mold's adsorption force through an upper seat, an adjustment component, an adsorption component, and a lower seat. One end of the adjustment component is connected to the adsorption component and is positioned above the upper seat, while the adsorption component is located between the upper and lower seats, allowing the adsorption force to be flexibly adjusted according to actual needs. This improves the stability and reliability of mold adsorption, effectively optimizes production efficiency, and reduces production problems caused by insufficient or excessive adsorption force. The structure is compact and highly practical. Attached Figure Description
[0016] Figure 1 This is a perspective view of the mold adsorption force adjustment structure of this utility model; Figure 2 This is a top view of the mold adsorption force adjustment structure of this utility model; Figure 3 This is a schematic diagram of the internal structure of the mold adsorption force adjustment structure of this utility model; Figure 4 This is an exploded view of the mold adsorption force adjustment structure of this utility model.
[0017] Explanation of reference numerals in the attached drawings: Upper seat 10, first upper seat body 11, first mounting hole 112, adjustment drive groove 113, second upper seat body 12, third upper seat body 13; Adjustment assembly 20, adjustment head 21, adjustment link 22, drive link 221, auxiliary link 223, adjustment pump 23; Adsorption assembly 30, adsorption main rod 31, adsorption secondary rod 32, adsorption housing 33, first mounting ring 331, second mounting ring 332; The lower seat 40, the first lower seat plate 41, the lower seat frame 42, the lower seat block 43, and the second lower seat plate 44. . Detailed Implementation
[0018] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of this utility model are shown in the drawings. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.
[0019] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component.
[0020] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.
[0021] like Figures 1-4As shown in the embodiment of this utility model, a mold adsorption force adjustment structure includes: an upper seat 10, an adjustment component 20, an adsorption component 30, and a lower seat 40. One end of the adjustment component 20 is connected to the adsorption component 30 and is disposed above the upper seat 10. The adsorption component 30 is disposed between the upper seat 10 and the lower seat 40 and is used to adjust the adsorption force of the upper seat 10 and the lower seat 40. In this embodiment, the upper seat 10, adjustment component 20, adsorption component 30, and lower seat 40 achieve precise control of the mold adsorption force. One end of the adjustment component 20 is connected to the adsorption component 30 and is disposed above the upper seat 10, while the adsorption component 30 is located between the upper seat 10 and the lower seat 40, allowing the adsorption force to be flexibly adjusted according to actual needs. This improves the stability and reliability of mold adsorption, effectively optimizes production efficiency, and reduces production problems caused by insufficient or excessive adsorption force. The structure is compact and highly practical.
[0022] like Figure 1 As shown, the upper seat 10 includes a first upper seat body 11, a second upper seat body 12, and a third upper seat body 13; the second upper seat body 12 and the third upper seat body 13 have a through-hole structure, and the adjustment component 20 and the adsorption component 30 are disposed within the through-hole structure. In this embodiment, the upper seat 10 is cleverly divided into a first upper seat body 11, a second upper seat body 12 with a through-hole structure, and a third upper seat body 13, which optimizes space utilization and allows the adjustment component 20 and the adsorption component 30 to be cleverly built into the through-hole structure of the second and third upper seat bodies 13, enhancing the compactness and integration of the structure and facilitating maintenance and operation; moreover, the through-hole structure provides sufficient installation and operating space for the adjustment component 20, ensuring accurate and flexible adjustment of the adsorption force, thereby improving the stability and working efficiency of the mold adsorption.
[0023] The upper surface of the first upper seat 11 is provided with a plurality of first mounting holes 112, and an adjustment drive groove 113 is provided between the plurality of first mounting holes 112. The first mounting holes 112 are used for mounting the end of the adsorption component 30, and the adjustment drive groove 113 is used for mounting the adjustment component 20, so that the adjustment component 20 can adjust the suction force on the adsorption component 30. In this embodiment, the plurality of first mounting holes 112 carefully designed on the upper surface of the first upper seat 11 provide a stable mounting base for the end of the adsorption component 30, ensuring that the adsorption component 30 can be accurately positioned, and the adjustment drive groove 113 cleverly provided between the first mounting holes 112 provides convenience for the installation of the adjustment component 20, and can flexibly adjust the suction force on the adsorption component 30, thereby achieving precise control of the adsorption force of the mold.
[0024] The second upper seat 12 serves as a fixing block, used to fix the middle part of the adsorption component 30 and the adjustment component 20. The third upper seat 13 is provided with a second assembly hole relative to the first upper seat 11, which is used for assembling the adsorption component 30. In this embodiment, by using the second upper seat 12 as a fixing block, the middle part of the adsorption component 30 and the adjustment component 20 are effectively and stably fixed, enhancing the overall stability of the structure. The third upper seat 13 is cleverly provided with a second assembly hole relative to the first upper seat 11, which facilitates the rapid and precise assembly of the adsorption component 30 and improves assembly efficiency.
[0025] like Figures 3 to 4 The adjustment assembly 20 shown includes an adjustment head 21, an adjustment rod 22, and an adjustment pump 23. The adjustment head 21 is disposed within the adjustment drive groove 113. One end of the adjustment rod 22 is connected to the adjustment head 21, and the other end is connected to the adjustment pump 23. In this embodiment, the adjustment head 21, the adjustment rod 22, and the adjustment pump 23 form a precise adjustment assembly 20, which effectively controls the adsorption force of the mold. The adjustment head 21 is precisely embedded in the adjustment drive groove 113, ensuring the stability and accuracy of the adjustment action. The adjustment rod 22, as the core transmission component, is tightly connected to the adjustment head 21 at one end and to the adjustment pump 23 at the other end, forming a smooth force transmission path. This simplifies the adsorption force adjustment process and significantly improves the flexibility and response speed of the adjustment, providing a solid guarantee for the stable adsorption of the mold under different working conditions and effectively enhancing the efficiency and reliability of mold operation.
[0026] The adjusting linkage 22 includes a drive linkage 221 and auxiliary linkages 223. The two ends of the drive linkage 221 are connected to the adjusting head 21 and the adjusting pump 23, respectively. Multiple auxiliary linkages 223 are provided, with their two ends connected to the adjusting pump 23 and the adsorption assembly 30, respectively. The drive linkage 221 controls the power between the multiple auxiliary linkages 223. In this embodiment, the adjusting linkage 22 structure, composed of the drive linkage 221 and multiple auxiliary linkages 223, achieves efficient adjustment of the mold adsorption force. The drive linkage 221, with its two ends connected to the adjusting head 21 and the adjusting pump 23, precisely controls the power transmission through its movement. The multiple auxiliary linkages 223, connected to the adjusting pump 23 and the adsorption assembly 30, ensure effective power distribution.
[0027] The adsorption assembly 30 includes four sets of adsorption main rods 31, with adsorption secondary rods 32 arranged on one side of each set. An adsorption sleeve 33 is provided on the outer wall of the adsorption assembly 30, with one end of the sleeve fitted onto the adsorption main rod 31. In this embodiment, the arrangement of adsorption secondary rods 32 on each side of the adsorption main rod 31 greatly enhances the overall adsorption capacity and stability. The adsorption sleeve 33 cleverly designed on the outer wall of the adsorption assembly 30, with one end tightly fitted onto the adsorption main rod 31, not only provides protection but also further improves the adsorption effect.
[0028] A first mounting ring 331 is provided at the end of the adsorption sleeve 33, and a second mounting ring 332 is provided at the middle of the adsorption sleeve 33. The first mounting ring 331 is provided on the upper seat 10, and the second mounting ring 332 is provided on the lower seat 40. In this embodiment, by providing the first mounting ring 331 and the second mounting ring 332 at the end and middle of the adsorption sleeve 33 respectively, these two mounting rings are fixed to the upper seat 10 and the lower seat 40 respectively, which enhances the stability of the structure and allows the adsorption sleeve 33 to adjust its position or posture as needed, thereby adjusting the adsorption force on the mold. By finely controlling the relative position of the first mounting ring 331 and the second mounting ring 332, the adsorption area and adsorption intensity can be precisely controlled to meet the adsorption requirements in different mold processing processes, improve the efficiency and accuracy of mold processing, and demonstrate the practicality and flexibility of this adjustment structure.
[0029] The lower seat 40 includes a first lower seat plate 41, a lower seat frame 42, a lower seat block 43, and a second lower seat plate 44. The lower seat frame 42 supports the first lower seat plate 41 and the second lower seat plate 44, forming an adjustment area. The lower seat block 43 is disposed below the adjustment area and is used to fix the adsorption assembly 30. In this embodiment, the lower seat 40, including the first lower seat plate 41, the lower seat frame 42, the lower seat block 43, and the second lower seat plate 44, has a compact structure and clear function. The lower seat frame 42, as the core support component, stably supports the first lower seat plate 41 and the second lower seat plate 44. The adjustment area formed between them provides space for flexible adjustment of the adsorption force. The lower seat block 43 is cleverly disposed below the adjustment area, and its main function is to fix the adsorption assembly 30, ensuring the stability and accuracy of the adsorption process.
[0030] The first lower seat plate 41 is provided with a third mounting hole 411 relative to the third upper seat body 13. The third mounting hole 411 is used to fix the tail of the adsorption assembly 30. In this embodiment, the third mounting hole 411 is specially provided on the first lower seat plate 41 for the third upper seat body 13. Through the third mounting hole 411, the tail of the adsorption assembly 30 can be precisely connected to the first lower seat plate 41, ensuring that the adsorption assembly 30 can maintain a stable position and appropriate adsorption force during the mold adsorption process. This improves the reliability and accuracy of mold adsorption and provides a solid foundation for the flexible adjustment of the mold adsorption force.
[0031] A mold adsorption force adjustment structure includes: an upper seat 10, an adjustment component 20, an adsorption component 30, and a lower seat 40. One end of the adjustment component 20 is connected to the adsorption component 30 and is positioned above the upper seat 10. The adsorption component 30 is positioned between the upper seat 10 and the lower seat 40 and is used to adjust the adsorption force of the upper seat 10 and the lower seat 40. In this embodiment, the upper seat 10, adjustment component 20, adsorption component 30, and lower seat 40 achieve precise control of the mold adsorption force. One end of the adjustment component 20 is connected to the adsorption component 30 and positioned above the upper seat 10, while the adsorption component 30 is located between the upper seat 10 and the lower seat 40, allowing the adsorption force to be flexibly adjusted according to actual needs. This improves the stability and reliability of mold adsorption, effectively optimizes production efficiency, and reduces production problems caused by insufficient or excessive adsorption force. The structure is compact and highly practical.
[0032] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A mold adsorption force adjustment structure, characterized in that, include: The unit comprises an upper seat, an adjustment component, an adsorption component, and a lower seat; one end of the adjustment component is connected to the adsorption component and is positioned above the upper seat, and the adsorption component is positioned between the upper seat and the lower seat for adjusting the suction force of the upper seat and the lower seat.
2. The mold adsorption force adjustment structure according to claim 1, characterized in that: The upper seat includes a first upper seat body, a second upper seat body, and a third upper seat body; the second upper seat body and the third upper seat body are a through-hole structure, and the adjustment component and the adsorption component are disposed within the through-hole structure.
3. The mold adsorption force adjustment structure according to claim 2, characterized in that: The upper surface of the first upper body is provided with a plurality of first mounting holes, and an adjustment drive groove is provided between the plurality of first mounting holes; the first mounting holes are used for mounting the end of the adsorption component, and the adjustment drive groove is used for mounting the adjustment component; so that the adjustment component can adjust the suction force on the adsorption component.
4. The mold adsorption force adjustment structure according to claim 3, characterized in that: The second upper seat is a fixing block used to fix the middle part of the adsorption component and the adjustment component. The third upper seat is provided with a second assembly hole relative to the first upper seat, and the second assembly hole is used to assemble the adsorption component.
5. The mold adsorption force adjustment structure according to claim 4, characterized in that: The adjustment assembly includes an adjustment head, an adjustment link, and an adjustment pump; the adjustment head is disposed in the adjustment drive slot, one end of the adjustment link is connected to the adjustment head, and the other end is connected to the adjustment pump.
6. The mold adsorption force adjustment structure according to claim 5, characterized in that: The adjusting linkage includes a driving linkage and auxiliary linkages. The two ends of the driving linkage are respectively connected to the adjusting head and the adjusting pump. Multiple auxiliary linkages are provided, and the two ends of the multiple auxiliary linkages are respectively connected to the adjusting pump and the adsorption assembly. The driving linkage is used to control the power between the multiple auxiliary linkages.
7. The mold adsorption force adjustment structure according to claim 6, characterized in that: The adsorption assembly includes four sets of adsorption main rods, and adsorption secondary rods are provided on one side of each set of adsorption main rods; an adsorption sleeve is provided on the outer wall of the adsorption assembly, and one end of the adsorption sleeve is fitted onto the adsorption main rod.
8. The mold adsorption force adjustment structure according to claim 7, characterized in that: The adsorption sleeve is provided with a first mounting ring at one end and a second mounting ring at the middle; the first mounting ring is provided on the upper seat and the second mounting ring is provided on the lower seat.
9. The mold adsorption force adjustment structure according to claim 8, characterized in that: The lower seat includes a first lower seat plate, a lower seat frame, a lower seat block, and a second lower seat plate; the lower seat frame is used to support the first lower seat plate and the second lower seat plate to form an adjustment area, and the lower seat block is disposed below the adjustment area to fix the adsorption component.
10. The mold adsorption force adjustment structure according to claim 9, characterized in that: The first lower seat plate is provided with a third mounting hole relative to the third upper seat body, and the third mounting hole is used to fix the tail of the adsorption assembly.