Adjustable finished product taking and placing device for multi-cavity molding press
By using an adjustable finished product loading and unloading device in a multi-cavity molding press, combined with X-axis and Y-axis adjustment mechanisms and a straightening fixture, the problem of misalignment between the upper mold suction cup and the finished product loading plate was solved, ensuring the stability of the mold core and product quality, and improving production efficiency.
Patent Information
- Application Number
- CN202520542803.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-26
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-03-26
AI Technical Summary
In existing multi-cavity molding presses, the separation of the upper mold suction cup from the finished product take-up platen leads to misalignment, which can easily cause the upper mold core to collide, resulting in displacement and damage, thus affecting production efficiency and product quality.
An adjustable finished product loading and unloading device is adopted, including X-axis and Y-axis adjustment mechanisms, angle adjustment mechanisms and correction fixtures. Precise alignment is achieved through multi-stage adjustment mechanisms to ensure that the loading hole corresponds to the upper mold core, and a protective plate is used to prevent the product from falling during demolding.
It achieves precise alignment between the upper mold suction cup and the finished product take-up plate, avoiding mold core impact and displacement, and improving production efficiency and product quality stability.
Smart Images

Figure CN223890358U_ABST
Abstract
Description
[Technical Field]
[0001] This utility model relates to the field of molding equipment technology, and in particular to an adjustable finished product loading and unloading device for a multi-cavity molding machine. [Background Technology]
[0002] In the production and processing of pipe caps, multi-cavity molding machines are commonly used equipment. They achieve efficient mass production through the opening and closing of molds and the forming process. During the demolding process after product molding, a suction mechanism (such as an upper mold suction cup) is usually needed to adhere and fix the upper mold core to complete the demolding operation. However, due to the characteristics of the mold structure and materials, the molded pipe caps tend to adhere to the surface of the upper mold core, leading to demolding difficulties. To solve this problem, existing technologies typically use a finished product ejector plate combined with negative pressure suction to remove the pipe caps from the upper mold core.
[0003] However, the following problems exist in actual production. First, the upper mold suction cup and the finished product ejector plate are installed on different reference structural surfaces. This separate installation method easily leads to misalignment between the two. Once misalignment occurs, the finished product ejector plate may collide with the upper mold core during the material ejection process, causing the upper mold core to shift. This shift not only affects the normal closure of the subsequent mold but may also prevent the upper mold core from being accurately placed back into the mold core sleeve, or even cause damage to the mold core, thereby affecting production efficiency and product quality. [Utility Model Content]
[0004] The purpose of this invention is to provide an adjustable finished product loading and unloading device for a multi-cavity molding press, which aims to solve the problem of misalignment caused by the separation of the upper mold suction cup and the finished product loading plate reference in the prior art, as well as the resulting problems such as mold core damage, low production efficiency and unstable product quality.
[0005] This utility model is achieved through the following technical solution:
[0006] An adjustable finished product loading and unloading device for a multi-cavity molding press includes an upper mold suction cup, which can be connected to multiple upper mold cores. Below the upper mold suction cup is a finished product loading plate that can cooperate with it to demold products on the multiple upper mold cores. The finished product loading plate is provided with multiple loading holes that can remove products from the upper mold cores. The finished product loading plate is connected to an X-axis adjustment mechanism, and the X-axis adjustment mechanism is connected to a Y-axis adjustment mechanism, so that the multiple loading holes correspond one-to-one with the multiple upper mold cores.
[0007] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press is provided between the finished product loading plate and the X-axis adjustment mechanism, which makes the multiple loading holes correspond one by one with the multiple upper mold cores.
[0008] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press includes an angle adjustment mechanism comprising a rotating connecting plate disposed on one side of the finished product loading plate, an X-axis adjustment mechanism comprising a transverse adjustment plate, and a positioning screw between the transverse adjustment plate and the rotating connecting plate to allow the two to remain relatively fixed or movable.
[0009] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding machine includes an angle adjustment mechanism comprising an arc-shaped groove formed on the transverse adjustment plate, a limiting screw passing through the arc-shaped groove, the limiting screw being connected to the rotating connecting plate and limiting its rotation angle, and the limiting screw cooperating with the positioning screw to lock the transverse adjustment plate and the rotating connecting plate.
[0010] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press has a straightening fixture between the upper mold suction cup and the finished product loading plate to facilitate a smooth transition between the two.
[0011] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press is provided at the upper end of the straightening fixture, which has a plurality of first transition portions corresponding to each of the upper mold cores. The upper end of the first transition portion has a transition hole adapted to the lower end of the upper mold core. The lower end of the straightening fixture has a plurality of second transition portions corresponding to each of the material loading holes.
[0012] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press includes an X-axis adjustment mechanism comprising a transverse slide cylinder slidably connected to the transverse adjustment plate, the transverse slide cylinder being connected to the Y-axis adjustment mechanism, a first waist-shaped groove being uniformly provided along the length of the transverse adjustment plate, a first limiting member being provided in the first waist-shaped groove to limit the transverse displacement, and the first limiting member being fixedly connected to the transverse slide cylinder.
[0013] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press includes a Y-axis adjustment mechanism comprising a Y-axis adjustment plate fixed to the lower end of the X-axis adjustment mechanism. The Y-axis adjustment plate is slidably connected to a Y-axis slide cylinder. A second waist-shaped groove is uniformly provided along the length of the Y-axis adjustment plate. A second limiting member is provided in the second waist-shaped groove to limit the Y-axis displacement. The second limiting member is fixedly connected to the Y-axis slide cylinder.
[0014] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press has a receiving and protective plate below the finished product loading plate to prevent products from falling. One side of the receiving and protective plate is fixedly connected to the side of the X-axis adjustment mechanism near the finished product loading plate.
[0015] As described above, an adjustable finished product loading and unloading device for a multi-cavity molding press is provided with multiple negative pressure connectors communicating with the loading holes on the periphery of the finished product loading plate.
[0016] Compared with the prior art, the present invention has the following advantages:
[0017] 1. This utility model achieves precise alignment between the finished product taking plate and the upper mold suction cup through the setting of the X-axis adjustment mechanism and the Y-axis adjustment mechanism, avoiding the problem of upper mold core impact or displacement caused by alignment deviation, and ensuring production efficiency and stable product quality.
[0018] 2. By setting an angle adjustment mechanism between the finished product take-up plate and the X-axis adjustment mechanism, the angle of the finished product take-up plate can be precisely adjusted to ensure accurate matching with the upper mold core, thereby further improving the accuracy of take-up and effectively avoiding damage to the upper mold core.
[0019] 3. A straightening fixture is provided between the upper mold suction cup and the finished product take-up plate to facilitate the transition between the two. The upper end of the straightening fixture is provided with multiple first transition parts corresponding to each upper mold core. The upper end of the first transition part is provided with transition holes adapted to the lower end of the upper mold core. The lower end of the straightening fixture is provided with multiple second transition parts corresponding to each take-up hole, which play a transition and straightening role to ensure the relative positional accuracy of the upper mold suction cup and the finished product take-up plate.
[0020] 4. A protective plate is provided below the finished product receiving plate to prevent products from falling. One side of the protective plate is fixedly connected to the side of the X-axis adjustment mechanism near the finished product receiving plate to prevent products from falling and affecting the production process. [Attached Image Description]
[0021] To more clearly illustrate the technical solutions in the embodiments of the utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.
[0022] Figure 1 This is a three-dimensional structural diagram of the embodiment without the orthodontic fixture.
[0023] Figure 2 This is a side view of the structure when the corrective fixture is provided in this embodiment;
[0024] Figure 3 This is a top view of the structure when the corrective fixture is provided in this embodiment;
[0025] Figure 4 for Figure 3 A partial cross-sectional view along line AA in the middle section;
[0026] Figure 5 for Figure 4 Enlarged view of point B in the middle;
[0027] Figure 6 This is a three-dimensional structural diagram of the orthodontic fixture in this embodiment;
[0028] Figure 7 This is a schematic diagram of the planar structure of a pipe cap product that may be processed by this embodiment;
[0029] Figure 8 for Figure 7 A schematic diagram of the cross-sectional structure of the cap product.
Detailed Implementation Methods
[0030] To make the technical problems solved by this application, the technical solutions, and the beneficial effects clearer, this application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application.
[0031] Multi-cavity pipe cap molding machines are used in the production and processing of pipe cap products. During product molding and demolding, the upper mold core is typically removed from the product using an adsorption mechanism. However, due to the structural characteristics and material properties of the mold, the pipe cap product tends to adhere to the upper mold core 11. To ensure production continuity, the pipe cap product 7 is usually removed from the upper mold core 11 using the finished product ejector plate 2. However, a problem exists in actual production: the upper mold suction cup 1 and the finished product ejector plate 2 are installed on different reference structural surfaces. This separate installation method easily leads to misalignment between the two. Once misalignment occurs, the finished product ejector plate 2 may collide with the upper mold core 11 during the material removal process, causing the upper mold core 11 to shift. This shift not only affects the normal closure of the subsequent mold but may also prevent the upper mold core 11 from being accurately placed back into the mold core sleeve, or even damage the mold core, thereby affecting production efficiency and product quality.
[0032] To resolve the above issues, please refer to Figures 1 to 8 This embodiment provides an adjustable finished product loading and unloading device for a multi-cavity molding press, including an upper mold suction cup 1. The upper mold suction cup 1 can be connected to multiple upper mold cores 11. Below the upper mold suction cup 1 is a finished product loading plate 2 that can cooperate with it to demold the products on the multiple upper mold cores 11. The finished product loading plate 2 is provided with multiple loading holes 21 that can remove the products on the upper mold cores 11. The finished product loading plate 2 is connected to an X-axis adjustment mechanism 3, and the X-axis adjustment mechanism 3 is connected to a Y-axis adjustment mechanism 4, so that the multiple loading holes 21 correspond one by one with the multiple upper mold cores 11.
[0033] In this embodiment, the bottom of the upper mold suction cup 1 is provided with an adsorption hole, which fixes the upper mold core 11 by negative pressure adsorption, ensuring the stability of the mold core during the molding process. The upper mold core 11 is attached with the formed tube cap product 7. The finished product take-up plate 2 is located below the upper mold suction cup 1 and is provided with multiple take-up holes 21, which correspond one-to-one with each upper mold core 11. Multiple negative pressure connectors 22 are provided on the periphery of the finished product take-up plate 2, and these negative pressure connectors are connected to the take-up holes 21. During the take-up process, the negative pressure connectors generate negative pressure through an external vacuum system, adsorbing the tube cap product 7 on the upper mold core 11 into the take-up hole 21, thereby completing the demolding operation. In order to achieve precise alignment, the finished product take-up plate 2 is adjusted in position by an X-axis adjustment mechanism 3 and a Y-axis adjustment mechanism 4. Specifically, the X-axis adjustment mechanism 3 is used to fine adjust the position of the finished product take-up plate in the horizontal direction to ensure that the take-up holes 21 are aligned with the upper mold core 11 in the X-axis direction. The Y-axis adjustment mechanism 4 is used to fine-tune the position of the finished product ejector plate in the direction perpendicular to the X-axis, i.e., the horizontal longitudinal direction, to ensure that the ejector hole 21 and the upper mold core 11 are aligned in the Y-axis direction. Through the cooperation of the above two adjustment mechanisms, the finished product ejector plate 2 can achieve precise position adjustment in the plane, thereby effectively avoiding the problem of mold core damage caused by misalignment during demolding.
[0034] Optionally, in some embodiments, the X-axis adjustment mechanism 3 and the Y-axis adjustment mechanism 4 can be a slide rail slider adjustment structure, a lead screw drive adjustment structure, a linear adjustment module, etc.
[0035] Furthermore, as a preferred embodiment of this solution and not a limitation, an angle adjustment mechanism 31 is provided between the finished product taking plate 2 and the X-axis adjustment mechanism 3 to make the plurality of taking holes 21 correspond one by one with the plurality of upper mold cores 11.
[0036] To further improve the alignment accuracy between the finished product take-up plate 2 and the multiple upper mold cores 11, ensuring that the multiple take-up holes 21 correspond one-to-one with the multiple upper mold cores 11, this embodiment adds an angle adjustment mechanism 31 between the finished product take-up plate 2 and the X-axis adjustment mechanism 3. This angle adjustment mechanism can make minor angle adjustments to the finished product take-up plate 2, thereby eliminating angle deviations caused by installation errors or machining errors.
[0037] Specifically, the angle adjustment mechanism 31 includes a rotating connecting plate 311 disposed on one side of the finished product receiving plate 2, and the X-axis adjustment mechanism 3 includes a transverse adjustment plate 32. A positioning screw 312 is provided between the transverse adjustment plate 32 and the rotating connecting plate 311 to keep them relatively fixed or movable.
[0038] In this embodiment, the rotating connecting plate 311 extends as one side of the finished product taking plate 2, and its side is provided with a mounting hole that mates with the positioning screw 312. Correspondingly, the transverse adjusting plate 32 is also provided with a mounting hole that mates with the positioning screw 312. The head of the positioning screw 312 is provided with a locking nut or washer, which not only serves as the rotation center between the rotating connecting plate 311 and the transverse adjusting plate 32, allowing the finished product taking plate 2 to rotate around it, but also allows the relative fixed or rotatable state between the rotating connecting plate 311 and the transverse adjusting plate 32 to be achieved by tightening or loosening the locking nut. More specifically, the positioning screw 312 may include a threaded portion and a smooth rod portion, the threaded portion being used for tightening and fixing, while the smooth rod portion is used as a rotating shaft. Optionally, in some other embodiments, a bearing or bushing may also be embedded in the mounting hole of the rotating connecting plate 311 to reduce friction and improve rotational accuracy.
[0039] In actual production, operators can adjust the tightness of the positioning screws 312 to make the rotating connecting plate 311 and the transverse adjusting plate 32 rotatable. Then, by manual or other motor-driven methods, the finished product taking plate 2 is adjusted around the positioning screws 312 until the multiple taking holes 21 correspond one by one to the multiple upper mold cores 11. After adjustment, the operator tightens the positioning screws 312, and the rotating connecting plate 311 and the transverse adjusting plate 32 are fixed by the locking action of the threads to ensure that the finished product taking plate 2 remains stable during operation.
[0040] Furthermore, as a preferred embodiment of this solution and not a limitation, the angle adjustment mechanism 31 includes an arc-shaped groove 313 formed on the transverse adjustment plate 32, a limiting screw 314 passing through the arc-shaped groove 313, the limiting screw 314 being connected to the rotating connecting plate 311 and limiting its rotation angle, and the limiting screw 314 being able to cooperate with the positioning screw 312 to lock the transverse adjustment plate 32 and the rotating connecting plate 311.
[0041] In this embodiment, an arc-shaped groove 313 is formed on the transverse adjusting plate 32 to limit the rotation range of the rotating connecting plate 311. The shape and length of the arc-shaped groove are designed according to actual needs, and in general, it is an arc, with its center coinciding with the center of the positioning screw 312. A limiting screw 314 passes through the arc-shaped groove 313 and is connected to the rotating connecting plate 311. The function of the limiting screw 314 is to limit the rotation angle of the rotating connecting plate 311, and at the same time, through cooperative locking with the positioning screw 312, to ensure the stability after adjustment.
[0042] More specifically, the width of the arc-shaped groove 313 is slightly larger than the diameter of the limiting screw 314 to ensure that the limiting screw 314 can move smoothly within the groove, while also providing a certain limiting effect. The head of the limiting screw 314 is provided with a locking nut or washer to fix the position of the limiting screw 314 after the angle is adjusted. Correspondingly, the rotating connecting plate 311 is provided with mounting holes that mate with the limiting screw 314, ensuring that the limiting screw 314 can be firmly connected to the rotating connecting plate 311 and rotate with it. The engagement of the arc-shaped groove 313 with the limiting screw 314 effectively limits the rotation angle of the rotating connecting plate 311, avoiding structural damage or errors caused by excessive rotation. In addition, the double locking of the limiting screw 314 and the positioning screw 312 ensures that the adjusted finished product taking plate 2 remains stable during operation, avoiding angular deviation caused by vibration or other factors.
[0043] Furthermore, as a preferred embodiment of this solution and not a limitation, a straightening fixture 5 is provided between the upper mold suction cup 1 and the finished product taking plate 2 to facilitate a transitional fit between the two. The upper end of the straightening fixture 5 is provided with a plurality of first transition portions 51 corresponding to each of the upper mold cores 11. The upper end of the first transition portion 51 is provided with a transition hole 511 adapted to the lower end of the upper mold core 11. The lower end of the straightening fixture 5 is provided with a plurality of second transition portions 52 corresponding to each of the taking holes 21.
[0044] Specifically, in this embodiment, a first transition portion 51 is located at the upper end of the straightening fixture 5 and corresponds to a plurality of upper mold cores 11 on the upper mold suction cup 1. Each first transition portion 51 is provided with a transition hole 511, the shape and size of which are adapted to the lower end of the upper mold core 11 to ensure that the upper mold core 11 can be accurately inserted. A second transition portion 52 is located at the lower end of the straightening fixture 5 and corresponds to a plurality of material picking holes 21 on the finished product picking plate 2. The position and size of each second transition portion 52 correspond one-to-one with the material picking hole 21.
[0045] In practical use, the procedure for using orthodontic fixture 5 is as follows:
[0046] S1. Before the molding process, the straightening fixture 5 is installed between the upper mold suction cup 1 and the finished product take-up plate 2, so that the first transition part 51 corresponds to the upper mold core 11 and the second transition part 52 corresponds to the take-up hole 21. At this time, the lower end of the upper mold core 11 is inserted into the transition hole 511 in the first transition part 51 of the straightening fixture 5, ensuring that the position of the upper mold core 11 is accurately fixed.
[0047] S2. The finished product take-up plate 2 is adjusted in position by the adjustment mechanism so that the take-up holes 21 correspond one by one to the second transition part 52 of the straightening fixture 5. Since the upper and lower ends of the straightening fixture 5 are aligned, the installation reference deviation between the upper mold suction cup 1 and the finished product take-up plate 2 can be effectively compensated.
[0048] S3. Remove the straightening fixture 5 and proceed with the molding process and subsequent production demolding.
[0049] Furthermore, as a preferred embodiment of this solution and not a limitation, the X-axis adjustment mechanism 3 includes a transverse slide cylinder 33 slidably connected to the transverse adjustment plate 32. The transverse slide cylinder 33 is connected to the Y-axis adjustment mechanism 4. A first waist-shaped groove 321 is uniformly provided along the length direction of the transverse adjustment plate 32. A first limiting member 322 is provided in the first waist-shaped groove 321 to cooperate with it for limiting the transverse displacement. The first limiting member 322 is fixedly connected to the transverse slide cylinder 33.
[0050] In this embodiment, the transverse slide cylinder 33 is used to drive the transverse adjusting plate 32 to translate along the X direction. The transverse slide cylinder 33 has a high-precision linear guide and stable thrust output, enabling rapid and precise displacement adjustment. As the core component of the X-direction adjustment mechanism, the transverse adjusting plate 32 has multiple first waist-shaped grooves 321 evenly provided along its length to cooperate with the first limiting member 322 to limit the transverse displacement range. The first waist-shaped groove 321 is preferably designed as a round bar, with a width slightly larger than the diameter of the first limiting member 322, to ensure that the first limiting member 322 can move smoothly within the groove, while providing a certain limiting effect. The first limiting member 322 can be in the form of a bolt or a pin, with one end fixed to the transverse slide cylinder 33 and the other end passing through the first waist-shaped groove 321 and locked with a nut, thereby realizing the limiting function.
[0051] Furthermore, as a preferred embodiment of this solution and not a limitation, the Y-axis adjustment mechanism 4 includes a Y-axis adjustment plate 41 fixed to the lower end of the X-axis adjustment mechanism 3. The Y-axis adjustment plate 41 is slidably connected to a Y-axis slide cylinder 42. A second waist-shaped groove 411 is uniformly provided along the length direction of the Y-axis adjustment plate 41. A second limiting member 412 is provided in the second waist-shaped groove 411 to cooperate with it for limiting the Y-axis displacement. The second limiting member 412 is fixedly connected to the Y-axis slide cylinder 42.
[0052] In this embodiment, the Y-axis adjusting plate 41, as the core component of the Y-axis adjusting mechanism, has multiple second waist-shaped grooves 411 evenly provided along its length to cooperate with the second limiting member 412 to limit the Y-axis displacement range. The Y-axis slide cylinder 42 is used to drive the Y-axis adjusting plate 41 to translate along the Y direction. The Y-axis slide cylinder 42 has a high-precision linear guide and stable thrust output, enabling rapid and precise displacement adjustment. The second waist-shaped grooves 411 are formed on the Y-axis adjusting plate 41 and distributed along its length. The second waist-shaped grooves 411 allow the Y-axis slide cylinder 42 to move freely within their range while providing a certain limiting effect. More specifically, the second waist-shaped grooves 411 are preferably designed as circular bars, with a width slightly larger than the diameter of the second limiting member 412, to ensure that the second limiting member 412 can move smoothly within the groove while providing a certain limiting effect. The second limiting member 412 can be in the form of a bolt or a pin. One end of it is fixed to the Y-axis slide cylinder 42, and the other end passes through the second waist-shaped groove 411 and is locked with a nut, thereby realizing the limiting function.
[0053] Furthermore, as a preferred embodiment of this solution and not a limitation, a receiving and protective plate 6 is provided below the finished product receiving plate 2 to prevent products from falling. One side of the receiving and protective plate 6 is fixedly connected to the side of the X-axis adjustment mechanism 3 near the finished product receiving plate 2.
[0054] Specifically, in this embodiment, the size of the receiving protective plate 6 is slightly larger than that of the finished product receiving plate 2 to ensure complete coverage of all receiving holes 21. One side of the receiving protective plate 6 is fixedly connected to the side of the X-axis adjusting mechanism 3 closest to the finished product receiving plate 2 by bolts, welding, or other fixing methods. This ensures that the receiving protective plate 6 can move together with the finished product receiving plate 2, always maintaining a consistent relative position.
[0055] During product demolding, the cap product 7 is drawn into the feeding hole 21. If the product falls out of the feeding hole 21 due to negative pressure failure or other reasons, the receiving protective plate 6 can catch the falling product in time, preventing it from falling directly to the ground or into the molding machine. Furthermore, since the receiving protective plate 6 moves together with the finished product feeding plate 2, it ensures that it remains directly below the finished product feeding plate 2 throughout the entire loading and unloading process, providing continuous protection.
[0056] Working principle of this utility model:
[0057] This embodiment provides an adjustable finished product loading and unloading device for a multi-cavity molding press. Through the coordinated action of a multi-stage adjustment mechanism and an auxiliary alignment structure, it solves the alignment deviation problem caused by the separation of the upper mold suction cup and the finished product loading plate reference, ensuring accurate material loading during demolding of the cap product and preventing damage to the mold core. Its core principle is as follows: the upper mold suction cup fixes the upper mold core through negative pressure adsorption, and the finished product loading plate uses the loading hole and negative pressure connector to adsorb and remove the cap from the upper mold core. Based on this, the X and Y direction adjustment mechanisms achieve precise displacement adjustment of the loading plate in the plane, and the angle adjustment mechanism further compensates for installation reference errors or processing deviations, ensuring that the loading hole and the upper mold core correspond precisely. Simultaneously, a straightening fixture serves as a transition reference, forcibly aligning the upper and lower mold cores with the loading hole before production, effectively compensating for reference deviations; the receiving protective plate moves synchronously with the loading plate to prevent product detachment due to negative pressure failure, reducing the risk of accidental damage. This application, through a combination of dynamic adjustment and static locking, significantly reduces the risk of mold core impact displacement and damage, improving production efficiency and product quality.
[0058] The above are implementation methods provided in conjunction with specific content, and it is not intended that the specific implementation of this application is limited to these descriptions. Any methods or structures that are similar to those of this application, or any technical deductions or substitutions made based on the concept of this application, should be considered within the scope of protection of this application.
Claims
1. An adjustable finished product loading and unloading device for a multi-cavity molding press, comprising an upper mold suction cup (1), wherein the upper mold suction cup (1) can be connected to multiple upper mold cores (11), and a finished product loading plate (2) is provided below the upper mold suction cup (1) to cooperate with it to demold products on the multiple upper mold cores (11), wherein the finished product loading plate (2) is provided with multiple loading holes (21) for removing products from the upper mold cores (11), characterized in that: The finished product taking plate (2) is connected to an X-axis adjustment mechanism (3), and the X-axis adjustment mechanism (3) is connected to a Y-axis adjustment mechanism (4) so that the multiple taking holes (21) correspond one by one with the multiple upper mold cores (11).
2. The adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 1, characterized in that, An angle adjustment mechanism (31) is provided between the finished product taking plate (2) and the X-axis adjustment mechanism (3) to make the multiple taking holes (21) correspond one by one with the multiple upper mold cores (11).
3. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 2, characterized in that, The angle adjustment mechanism (31) includes a rotating connecting plate (311) located on one side of the finished product receiving plate (2), and the X-axis adjustment mechanism (3) includes a transverse adjustment plate (32). A positioning screw (312) is provided between the transverse adjustment plate (32) and the rotating connecting plate (311) to keep them relatively fixed or movable.
4. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 3, characterized in that, The angle adjustment mechanism (31) includes an arc-shaped groove (313) formed on the transverse adjustment plate (32). A limiting screw (314) is provided in the arc-shaped groove (313). The limiting screw (314) is connected to the rotating connecting plate (311) and restricts its rotation angle. The limiting screw (314) can work with the positioning screw (312) to lock the transverse adjustment plate (32) and the rotating connecting plate (311).
5. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 1, characterized in that, A straightening fixture (5) is provided between the upper mold suction cup (1) and the finished product taking plate (2) to facilitate the transition between the two.
6. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 5, characterized in that, The upper end of the correcting fixture (5) is provided with a plurality of first transition portions (51) corresponding to each of the upper mold cores (11), the upper end of the first transition portion (51) is provided with a transition hole (511) adapted to the lower end of the upper mold core (11), and the lower end of the correcting fixture (5) is provided with a plurality of second transition portions (52) corresponding to each of the material taking holes (21).
7. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 3, characterized in that, The X-axis adjustment mechanism (3) includes a transverse slide cylinder (33) that is slidably connected to the transverse adjustment plate (32). The transverse slide cylinder (33) is connected to the Y-axis adjustment mechanism (4). A first waist-shaped groove (321) is uniformly provided along the length direction of the transverse adjustment plate (32). A first limiting member (322) is provided in the first waist-shaped groove (321) to limit the transverse displacement. The first limiting member (322) is fixedly connected to the transverse slide cylinder (33).
8. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 1, characterized in that, The Y-axis adjustment mechanism (4) includes a Y-axis adjustment plate (41) fixed to the lower end of the X-axis adjustment mechanism (3). The Y-axis adjustment plate (41) is slidably connected to a Y-axis slide cylinder (42). A second waist-shaped groove (411) is uniformly provided along the length of the Y-axis adjustment plate (41). A second limiting member (412) is provided in the second waist-shaped groove (411) to limit the Y-axis displacement. The second limiting member (412) is fixedly connected to the Y-axis slide cylinder (42).
9. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 1, characterized in that, Below the finished product receiving plate (2), there is a receiving and protective plate (6) to prevent the product from falling. One side of the receiving and protective plate (6) is fixedly connected to the side of the X-axis adjustment mechanism (3) near the finished product receiving plate (2).
10. An adjustable finished product loading and unloading device for a multi-cavity molding machine according to claim 1, characterized in that, The finished product receiving plate (2) is provided with multiple negative pressure connectors (22) that communicate with the receiving hole (21) on its periphery.