Multi-cavity product slide cooling mold

By designing multi-cavity product line cooling molds, the problem of conflicts in cooling components of multi-cavity multi-cavity product line cooling is solved, efficient cooling and simplified maintenance are achieved, and production efficiency and product quality are improved.

CN223211808UActive Publication Date: 2025-08-12HEYUAN ZHONGQICHEN PRECISION ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202422385787.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-08-12
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

In the production process of multi-cavity and multi-line position products, cooling components are prone to conflict, resulting in complex mold structure, poor cooling effect, long production cycle, and difficult maintenance.

Method used

A multi-cavity product line cooling mold is designed, including molds, side plates, fixed blocks, pull plates and line cooling blocks. Through removable connections and chute design, it ensures that the material is fully filled and molded and improves the air cooling effect.

Benefits of technology

Shorten the production injection molding cycle, improve production efficiency, improve product quality, reduce defects caused by uneven cooling, and simplify mold maintenance and repair.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-cavity product slide cooling die, which relates to the technical field of dies and comprises a die body, a first side plate and a second side plate, the first side plate and the second side plate are vertically arranged along the central axis of the die body, and the die body is positioned between the first side plate and the second side plate. Second fixing blocks are arranged on the upper side and the lower side of the die body, and a first fixing block is arranged on the side, away from the die body, of the second fixing block located on the upper side of the die body; according to the utility model, the slide block can move along the slide block to adjust the cavity structure so as to meet the requirements of different products. And the compression block ensures sufficient filling and forming of the material. The first module and the second module make close contact with the installation template, heat can be conveniently conducted to air cooling, interference to cooling is reduced through a chute in the bottom of the slide block, cold air flows smoothly, and the air cooling effect is improved. Therefore, the production injection molding period is shortened, the production efficiency is improved, the product quality can be improved, and the defects caused by uneven cooling are reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of molds, in particular to a multi-cavity product sliding position cooling mold. Background Art

[0002] In modern manufacturing, with the continuous advancement of refined product production, the development trend of the mold industry is becoming increasingly clear. At the same time, the cooling effect of the mold is also an important factor affecting the production injection molding cycle. A fully cooled mold can complete the product molding faster, thereby shortening the production injection molding cycle. However, there are some problems with the current mold cooling method, especially in the production process of multi-cavity and multi-row products;

[0003] In the production of multi-cavity and multi-slide parts, multiple slides move in different directions. This can easily cause slide cooling components, such as hoses and connectors, to collide during movement. This conflict not only affects proper cooling but can also damage the mold and the product.

[0004] Due to the presence of cooling components and the complexity of the movement of multiple parts, the mold structure is relatively complex and bloated. The complex structure increases the difficulty and cost of mold manufacturing, and also makes mold maintenance and repair more difficult. Due to the conflict of cooling components, large space occupation, and complex and bloated mold structure, the mold cooling effect is poor and the production injection cycle is correspondingly long.

[0005] Therefore, we designed a multi-cavity product sliding cooling mold to solve the above problems. Utility Model Content

[0006] The purpose of the present invention is to provide a multi-cavity product sliding cooling mold to solve the problems raised in the above background technology.

[0007] In order to solve the above technical problems, the utility model provides a multi-cavity product sliding cooling mold, comprising a mold body, a side plate 1 and a side plate 2 respectively arranged up and down along the central axis of the mold body, wherein the mold body is located between the side plate 1 and the side plate 2;

[0008] There are two fixed blocks on both the upper and lower sides of the mold body,

[0009] A fixing block 1 is provided on the side of the fixing block 2 located on the upper side of the mold body away from the mold body, and a fixing block 3 is provided on the side of the fixing block 2 located on the lower side of the mold body away from the mold body;

[0010] There are at least four pull plates, and each two form a group. They are arranged between the side plate 1 and the side plate 2, and are used in conjunction with the side plate 1 and the side plate 2 to form a rectangular parallelepiped support structure.

[0011] Furthermore, an injection head 1 is provided at the middle position of the top of the fixed block 1, a mounting plate is provided at the middle position of the top inside the mold body, a mounting template is provided on the top of the mounting plate, module 1 is provided on one side of the top of the mounting template, module 2 is provided on the side of the top of the mounting template away from module 1, sliders are provided on both sides of the top of the mold body, clamping blocks are provided on the tops of module 1 and module 2, sliding blocks are provided on the tops of the two groups of sliding blocks, and inclined grooves are provided on one side of the bottoms of the two groups of sliding blocks.

[0012] Furthermore, a second injection head is provided at a middle position of the top inner portion of the first fixing block.

[0013] Furthermore, the second side panel is detachably connected to the mold body via a fixing rod and a second fixing block, and the first fixing block is detachably connected to the first side panel via a fixing bolt.

[0014] Furthermore, a mounting groove is provided at a middle position of the top of the mold body, and the injection head is detachably connected to the mold body through the mounting groove.

[0015] Furthermore, the bottoms of the modules 1 and 2 are provided with forming grooves, the tops of the installation templates are provided with forming blocks, and the modules 1 and 2 are detachably connected to the installation templates via the forming grooves and the forming blocks.

[0016] Furthermore, the tops of the module one and the module two are provided with protrusions, the bottom of the pressing block is provided with grooves, and the pressing block is detachably connected to the module one and the module two via the grooves and the protrusions.

[0017] Furthermore, a material injection port is provided at the top of the clamping block, the material injection head 1 is detachably connected to the clamping block through the material injection port, and the sliding block is detachably connected to the fixing block 1 through a fixing bolt.

[0018] Furthermore, both sides of the top of the mold body are provided with limiting grooves, and the positioning block is detachably connected to the mold body through the limiting grooves.

[0019] Furthermore, a mounting chamber is provided inside the second fixing block, and the second injection head is detachably connected to the second fixing block via the mounting chamber. A injection pipe is provided on the top of the second injection head and penetrates into the interior of the mounting template.

[0020] Compared with existing technologies, this utility model offers the following advantages: the slider block can be moved along the slide to adjust the cavity structure to suit different product requirements. The clamping block ensures sufficient material filling during molding. Modules one and two maintain close contact with the mounting template, facilitating heat transfer to the cooling system. The chute at the bottom of the slider block reduces interference with cooling, ensuring smooth cooling air flow and enhancing cooling effectiveness. This not only shortens the injection molding cycle and improves production efficiency, but also enhances product quality and reduces defects caused by uneven cooling. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of the external three-dimensional structure of the utility model;

[0022] Figure 2 This is a schematic diagram of the connection structure between the template body and the slider in the present utility model;

[0023] Figure 3 It is a schematic diagram of the internal structure of the utility model.

[0024] In the figure: 1. mold body; 101. fixed block 1; 102. fixed block 2; 103. fixed block 3; 2. side plate 1; 201. injection head 1; 202. mounting plate; 203. mounting template; 204. module 1; 205. module 2; 206. slider; 207. clamping block; 208. slide block; 209. chute; 3. side plate 2; 301. injection head 2; 302. conveying pipe; 401. pull plate. DETAILED DESCRIPTION

[0025] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0026] See Figure 1-3 As shown, a multi-cavity product sliding cooling mold includes a mold body 1, and side panels 1 2 and 2 3 respectively arranged up and down along the central axis of the mold body 1, wherein the mold body 1 is located between the side panels 1 2 and 2 3;

[0027] The upper and lower sides of the mold body 1 are both provided with fixed blocks 102, wherein,

[0028] A fixing block 101 is provided on the side of the fixing block 2 102 located on the upper side of the mold body 1 away from the mold body 1, and a fixing block 3 103 is provided on the side of the fixing block 2 102 located on the lower side of the mold body 1 away from the mold body 1;

[0029] There are at least four pull plates 401, and each two form a group. They are arranged between the side plate 1 2 and the side plate 2 3, and are used in conjunction with the side plate 1 2 and the side plate 2 3 to form a rectangular parallelepiped support structure.

[0030] During implementation, mold body 1 is located between side panels 1 and 2, 3, and serves to form the product. Fixed blocks 2 102 on the upper and lower sides of mold body 1 provide additional support and fixation for the mold. Fixed block 2 102 on the upper side of mold body 1 cooperates with fixed block 1 101, while fixed block 2 102 on the lower side of mold body 1 cooperates with fixed block 3 103, further enhancing the stability and structural strength of the mold. Pull plates 401 are arranged in groups of two between side panels 1 and 2, 3, and together with side panels 1 and 2, 3, form a rectangular support structure. This rectangular support structure ensures that the mold maintains a stable shape and size during operation, preventing deformation due to external forces or internal pressure.

[0031] refer to Figure 3 An injection head 201 is provided at the middle position of the top of the fixed block 101, a mounting plate 202 is provided at the middle position of the top inside the mold body 1, a mounting template 203 is provided on the top of the mounting plate 202, a module 1 204 is provided on one side of the top of the mounting template 203, a module 2 205 is provided on the side of the top of the mounting template 203 away from the module 1 204, sliders 206 are provided on both sides of the top of the mold body 1, a clamping block 207 is provided on the top of the module 1 204 and the module 2 205, a sliding block 208 is provided on the top of the two groups of sliding blocks 206, and a bevel groove 209 is provided on one side of the bottom of the two groups of sliding blocks 208.

[0032] During specific implementation, during operation, the injection head 201 is used to inject the molten material into the interior of the mold. After the material enters the mold body 1 through the injection head 201, it flows onto the mounting template 203 on the top of the mounting plate 202. The module 1 204 and the module 2 205 on the top of the mounting template 203 work together with the other parts of the mold body 1 to form a specific shape of the product. The sliders 206 on both sides of the top of the mold body 1 play a guiding and supporting role. When the mold starts working, the slider 208 moves along the slider 206 under the action of external power or mechanism, and the pressing block 207 presses the module 1 204 and the module 2 205 to ensure that the material can be fully filled inside the mold and form an accurate shape. At the same time, the movement of the slider 208 can adjust the cavity structure inside the mold to meet the needs of products of different shapes and sizes;

[0033] Simultaneously, module 1 204 and module 2 205 are pressed against mounting template 203 by compression block 207, creating close contact with the mounting template 203, allowing heat to be more effectively transferred to the cooling system. The inclined slot 209 at the bottom of the slide block 208 reduces interference from slide movement on cooling. When using high-efficiency air cooling, this allows cool air to flow more smoothly within the mold, enhancing the cooling effect.

[0034] refer to Figure 2A second injection head 301 is provided at the middle position of the top inner portion of the fixed block 101 .

[0035] Specifically, the arrangement of the second injection head 301 provides additional injection channels for the injection molding process. In the production of multi-cavity products, more injection channels can speed up the injection of molten material, reduce injection time, and thus improve overall injection efficiency.

[0036] Furthermore, a delivery pipe 302 is provided at the bottom of the installation template 203. The delivery pipe 302 can quickly deliver the molten material to the installation template 203, thereby reducing the time loss of the material during the transmission process and improving the injection molding efficiency.

[0037] See Figure 1 The side panel 2 3 is detachably connected to the mold body 1 through a fixing rod and a fixing block 2 102 , and the fixing block 101 is detachably connected to the side panel 1 2 through a fixing bolt.

[0038] Specifically, this arrangement allows for easy replacement of side panel 1 2 , side panel 2 3 , fixing block 101 or fixing block 2 102 of the mold when they are damaged or malfunction, without requiring large-scale disassembly and assembly of the entire mold.

[0039] See Figure 1 A mounting groove is provided at the middle position of the top of the mold body 1, and the injection head 201 is detachably connected to the mold body 1 through the mounting groove.

[0040] Specifically, when the injection head 201 is clogged, worn or otherwise malfunctions, it can be easily removed from the mounting slot for repair or replacement without large-scale disassembly of the entire mold. The detachable connection allows the injection head 201 to be cleaned separately.

[0041] refer to Figure 3 , the bottom of module 1 204 and module 2 205 is provided with a forming groove, and the top of the installation template 203 is provided with a forming block. Module 1 204 and module 2 205 are detachably connected to the installation template 203 through the forming groove and the forming block.

[0042] Specifically, when module 1 204 or module 2 205 is damaged, it can be removed from the mounting template 203 for repair or replacement without large-scale disassembly of the entire mold, saving repair time and cost. By replacing modules 1 204 and modules 2 205 of different shapes and sizes, the mold can be quickly adjusted to meet the production needs of different products.

[0043] refer to Figure 3, the tops of module 1 204 and module 2 205 are provided with protrusions, and the bottom of the pressing block 207 is provided with grooves, and the pressing block 207 is detachably connected to module 1 204 and module 2 205 through the grooves and protrusions.

[0044] Specifically, the combination of the groove and the protrusion enables the clamping block 207 to be accurately positioned on module one 204 and module two 205, ensuring the stable position of module one 204 and module two 205 during the injection molding process. When module one 204, module two 205 or the clamping block 207 is damaged or needs repair, the clamping block 207 can be removed from module one 204 and module two 205.

[0045] refer to Figure 3 A material injection port is provided at the top of the pressing block 207, and the injection head 201 is detachably connected to the pressing block 207 through the material injection port, and the sliding block 208 is detachably connected to the fixing block 101 through a fixing bolt.

[0046] Specifically, the detachable connection of the injection head 201 ensures a tight connection between the injection head 201 and the pressing block 207, thereby preventing material leakage and ensuring the stability of the injection molding process and product quality.

[0047] refer to Figure 3 Limiting grooves are provided on both sides of the top of the mold body 1, and the positioning block 208 is detachably connected to the mold body 1 through the limiting grooves.

[0048] Specifically, when the slide block 208 is damaged or needs to be repaired, it can be removed from the limiting grooves on both sides of the top of the mold body 1.

[0049] refer to Figure 3 The interior of the fixed block 102 is provided with an installation chamber, and the injection head 301 is detachably connected to the fixed block 102 through the installation chamber. The top of the injection head 301 is provided with an injection pipe that penetrates into the interior of the installation template 203.

[0050] Specifically, when the second injection head 301 fails, since it is detachably connected to the second fixing block 102 through the installation chamber, it can be removed from the installation chamber for repair or replacement.

[0051] Working principle: During operation, the injection head 201 is used to inject the molten material into the interior of the mold. After the material enters the mold body 1 through the injection head 201, it flows onto the mounting template 203 on the top of the mounting plate 202. The module 1 204 and the module 2 205 on the top of the mounting template 203 work together with the other parts of the mold body 1 to form a specific shape of the product. The sliders 206 on both sides of the top of the mold body 1 play a guiding and supporting role. When the mold starts working, the slider 208 moves along the slider 206 under the action of external power or mechanism, and the pressing block 207 presses the module 1 204 and the module 2 205 to ensure that the material can be fully filled inside the mold and form an accurate shape. At the same time, the movement of the slider 208 can adjust the cavity structure inside the mold to meet the needs of products of different shapes and sizes;

[0052] Simultaneously, module 1 204 and module 2 205 are pressed against mounting template 203 by compression block 207, creating close contact with the mounting template 203, allowing heat to be more effectively transferred to the cooling system. The inclined slot 209 at the bottom of the slide block 208 reduces interference from slide movement on cooling. When using high-efficiency air cooling, this allows cool air to flow more smoothly within the mold, enhancing the cooling effect.

Claims

1. A multi-cavity product slide cooling mold, characterized in that: It comprises a mold body (1), a side plate 1 (2) and a side plate 2 (3) respectively arranged up and down along the central axis of the mold body (1), wherein the mold body (1) is located between the side plate 1 (2) and the side plate 2 (3); The upper and lower sides of the mold body (1) are both provided with fixed blocks 2 (102), wherein: A fixing block 1 (101) is provided on the side of the fixing block 2 (102) located on the upper side of the mold body (1) away from the mold body (1), and a fixing block 3 (103) is provided on the side of the fixing block 2 (102) located on the lower side of the mold body (1) away from the mold body (1); There are at least four pull plates (401), and each two form a group, which are arranged between the side plate 1 (2) and the side plate 2 (3) and used in conjunction with the side plate 1 (2) and the side plate 2 (3) to form a rectangular parallelepiped support structure.

2. The multi-cavity product slide cooling mold according to claim 1, characterized in that: An injection head (201) is provided at the middle position of the top of the fixed block (101), a mounting plate (202) is provided at the middle position of the top inside the mold body (1), a mounting template (203) is provided at the top of the mounting plate (202), a module (204) is provided on one side of the top of the mounting template (203), a module (205) is provided on the side of the top of the mounting template (203) away from the module (204), sliders (206) are provided on both sides of the top of the mold body (1), a pressing block (207) is provided on the top of the module (204) and the module (205), a sliding block (208) is provided on the top of the two groups of sliding blocks (206), and a chute (209) is provided on one side of the bottom of the two groups of sliding blocks (208).

3. The multi-cavity product slide cooling mold according to claim 1, characterized in that: A second injection head (301) is provided at the middle position of the top end of the first fixed block (101).

4. The multi-cavity product slide cooling mold according to claim 1, characterized in that: The second side panel (3) is detachably connected to the mold body (1) via a fixing rod and a second fixing block (102), and the first fixing block (101) is detachably connected to the first side panel (2) via a fixing bolt.

5. The multi-cavity product slide cooling mold according to claim 2, characterized in that: A mounting groove is provided at the middle position of the top of the mold body (1), and the injection head (201) is detachably connected to the mold body (1) via the mounting groove.

6. The multi-cavity product slide cooling mold according to claim 2, characterized in that: The bottoms of the module 1 (204) and the module 2 (205) are provided with forming grooves, the top of the installation template (203) is provided with forming blocks, and the module 1 (204) and the module 2 (205) are detachably connected to the installation template (203) through the forming grooves and the forming blocks.

7. The multi-cavity product slide cooling mold according to claim 2, characterized in that: The tops of the module 1 (204) and the module 2 (205) are provided with protrusions, the bottom of the pressing block (207) is provided with grooves, and the pressing block (207) is detachably connected to the module 1 (204) and the module 2 (205) through the grooves and the protrusions.

8. The multi-cavity product slide cooling mold according to claim 2, characterized in that: The top of the clamping block (207) is provided with an injection port, the injection head (201) is detachably connected to the clamping block (207) via the injection port, and the sliding block (208) is detachably connected to the fixing block (101) via a fixing bolt.

9. The multi-cavity product slide cooling mold according to claim 2, characterized in that: Limiting grooves are provided on both sides of the top of the mold body (1), and the positioning block (208) is detachably connected to the mold body (1) via the limiting grooves.

10. The multi-cavity product slide cooling mold according to claim 3, characterized in that: The interior of the second fixed block (102) is provided with an installation chamber, and the second injection head (301) is detachably connected to the second fixed block (102) through the installation chamber. The top of the second injection head (301) is provided with an injection pipe that penetrates into the interior of the installation template (203).