CN221584428U - Continuous cooling equipment for injection molding - Google Patents

Continuous cooling equipment for injection molding Download PDF

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Publication number
CN221584428U
CN221584428U CN202322741677.8U CN202322741677U CN221584428U CN 221584428 U CN221584428 U CN 221584428U CN 202322741677 U CN202322741677 U CN 202322741677U CN 221584428 U CN221584428 U CN 221584428U
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injection molding
framework
air
cooling
frame body
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CN202322741677.8U
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Chinese (zh)
Inventor
张书卫
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Huizhou Etepson Technology Co ltd
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Huizhou Etepson Technology Co ltd
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Abstract

The utility model relates to the technical field of injection molding processing, in particular to continuous cooling equipment for injection molding, which solves the problems that in the prior art, when cooling injection molding, a natural cooling mode is adopted, so that the material cooling rate is greatly reduced, and meanwhile, the cooling integrity is not high, thereby influencing the overall production quality of the injection molding. The utility model provides a continuous cooling equipment of injection molding, includes the framework, and the top of framework is through bolt fixedly connected with driving motor, and the inboard rotation of framework is connected with the carrier bar to the top of carrier bar runs through the top of framework and driving motor output shaft transmission is connected. According to the utility model, the air is blown into the frame body through the air outlet cover by the fan, so that the material in the bearing filter frame is cooled, and meanwhile, the air inlet of the fan is used for air inlet from the lower part of the inner side of the frame body through the cooling pipe, so that air cooling can be performed again into the frame body, and further, continuous cooling of the material by cold air can be realized.

Description

Continuous cooling equipment for injection molding
Technical Field
The utility model relates to the technical field of injection molding processing, in particular to continuous cooling equipment for injection molding.
Background
Injection molded parts are widely used in various fields including the automotive industry, electronic equipment, household appliances, medical appliances, and the like. The injection molding part has the advantages of high production efficiency, relatively low cost, high complexity of the product shape, mass production and the like. In the process of manufacturing injection molded parts, the following key steps are required to be noted: and (3) material selection: suitable plastic materials are selected according to the requirements of the product, such as polypropylene (PP), polyethylene (PE), polystyrene (PS) and the like. And (3) mold design: suitable molds are designed according to the shape and size requirements of the product, including the structure of the mold, the runner design, and the like. The injection molding machine is operated: the selected plastic material is heated and melted and then injected into the mold, thereby ensuring that the cavity of the mold is fully filled, and simultaneously controlling parameters such as injection time, temperature and the like. Cooling and solidifying: the plastic material is cooled in the mould so that it solidifies and retains the desired shape.
In the process of processing the injection molding part, the cooling work is needed to be performed so as to enable the injection molding part to be rapidly molded, but in consideration of the fact that a natural cooling mode is adopted when the injection molding part is cooled, the material cooling rate is greatly reduced, meanwhile, the cooling integrity is not high, the overall production quality of the injection molding part is affected, and the injection molding part continuous cooling equipment is inconvenient to solve the problem.
Disclosure of utility model
The utility model aims to provide continuous cooling equipment for injection molding parts, which solves the problems that in the prior art, when the injection molding parts are cooled, a natural cooling mode is adopted, so that the material cooling rate is greatly reduced, and meanwhile, the cooling integrity is not high, thereby influencing the overall production quality of the injection molding parts.
In order to achieve the above purpose, the present utility model adopts the following technical scheme:
The utility model provides a continuous cooling equipment of injection molding, comprises a frame body, the top of framework is through bolt fixedly connected with driving motor, and the inboard rotation of framework is connected with the carrier bar, and the top that the top of carrier bar runs through the framework is connected with driving motor output shaft transmission, the bearing filter frame has been cup jointed on the carrier bar, inner wall one side fixedly connected with air-out cover of framework, outer wall one side of framework is through bolt fixedly connected with fan, and the air intake of fan passes through the lower part intercommunication of cooling tube and framework, the air outlet of fan communicates with the top of air-out cover.
Preferably, one side of the outer part of the bearing filter frame is rotatably connected with the door body through a hinge.
Preferably, the two sides of the bottom of the bearing filter frame are fixedly connected with convex rods, and the two convex rods are in sliding connection with the bottom of the inner side of the frame body through annular grooves.
Preferably, the bottom of the bearing rod penetrates through the top of the frame body through the bearing sleeve, and the bottom of the bearing rod is rotationally connected with the inner bottom of the frame body through the rotating shaft.
Preferably, the air outlet of the fan is communicated with an air pipe, and one end of the air pipe penetrates through the top of the frame body and is communicated with the top of the air outlet cover.
Preferably, an outer door is rotatably connected to one side of the outside of the frame body through a hinge.
The utility model has at least the following beneficial effects:
When the injection molding continuous cooling equipment is used, firstly, the frame body and the bearing filter frame are opened, the material to be cooled is placed in the bearing filter frame, the driving motor is started to drive the bearing filter frame to rotate, meanwhile, the fan is started to blow air into the frame body through the air outlet cover to cool the material in the bearing filter frame, meanwhile, the air inlet of the fan is used for air inlet from the lower part of the inner side of the frame body through the cooling pipe, so that air cooling can be carried out again into the frame body to continuously cool the material.
Drawings
In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings required for the description of the embodiments will be briefly described below, and it is obvious that the drawings in the following description are some embodiments of the present utility model, and other drawings may be obtained according to these drawings without inventive effort for a person skilled in the art.
FIG. 1 is a schematic diagram of the overall front view structure of the present utility model;
FIG. 2 is a schematic side view of the present utility model;
fig. 3 is a schematic top view of the present utility model.
In the figure: 1. a frame; 2. an outer door; 3. a blower; 4. an air duct; 5. a driving motor; 6. a carrier bar; 7. a cooling tube; 8. a protruding rod; 9. an annular groove; 10. an air outlet cover; 11. a door body; 12. carrying the filter frame.
Detailed Description
The present utility model will be described in further detail with reference to the drawings and examples, in order to make the objects, technical solutions and advantages of the present utility model more apparent. It should be understood that the specific embodiments described herein are for purposes of illustration only and are not intended to limit the scope of the utility model.
Referring to fig. 1-3, a continuous cooling device for injection molding pieces comprises a frame body 1, a driving motor 5 is fixedly connected to the top of the frame body 1 through bolts, a bearing rod 6 is rotatably connected to the inner side of the frame body 1, the top of the bearing rod 6 penetrates through the top of the frame body 1 and is in transmission connection with an output shaft of the driving motor 5, a bearing filter frame 12 is sleeved on the bearing rod 6, an air outlet cover 10 is fixedly connected to one side of the inner wall of the frame body 1, a fan 3 is fixedly connected to one side of the outer wall of the frame body 1 through bolts, an air inlet of the fan 3 is communicated with the lower portion of the frame body 1 through a cooling pipe 7, an air outlet of the fan 3 is communicated with the top of the air outlet cover 10, specifically, the fan 3 is used for blowing air into the frame body 1 through the air outlet cover 10 so as to cool materials in the bearing filter frame 12, and meanwhile, the air inlet of the fan 3 is used for air inlet from the inner side lower portion of the frame body 1 through the cooling pipe 7, so that cooling can be performed again into the frame body 1, and continuous cooling of materials can be realized.
The scheme comprises the following working processes:
When the injection molding continuous cooling equipment is used, firstly, the frame body 1 and the bearing filter frame 12 are opened, materials to be cooled are placed in the bearing filter frame 12, the driving motor 5 is started to drive the bearing filter frame 12 to rotate, meanwhile, the fan 3 is started to blow air into the frame body 1 through the air outlet cover 10 so as to cool the materials in the bearing filter frame 12, and meanwhile, the air inlet of the fan 3 is used for air inlet from the lower part of the inner side of the frame body 1 through the cooling pipe 7, so that air cooling can be carried out again into the frame body 1 so as to continuously cool the materials.
The working process can be as follows:
Through fan 3 through the exhaust hood 10 blow in to the framework 1 for cool off the material that bears in the filter frame 12, the air intake of fan 3 is through cooling tube 7 from the inboard lower part air inlet of framework 1 simultaneously, thereby can make the forced air cooling enter into in the framework 1 again, and then can realize the work of cold wind to the continuous cooling of material.
Further, the outer side of the carrying filter frame 12 is rotatably connected with the door body 11 through a hinge, and specifically, the feeding work can be performed by using the door body 11.
Further, the two sides of the bottom of the bearing filter frame 12 are fixedly connected with the convex rods 8, the two convex rods 8 are in sliding connection with the inner bottom of the frame body 1 through the annular grooves 9, and specifically, one end of each convex rod 8 is used for sliding in the annular groove 9, so that the stability of the bearing filter frame 12 can be enhanced.
Further, the bottom of the bearing rod 6 penetrates through the top of the frame body 1 through the bearing sleeve, and the bottom of the bearing rod 6 is rotationally connected with the inner bottom of the frame body 1 through the rotating shaft.
Further, the air outlet of the fan 3 is communicated with an air pipe 4, one end of the air pipe 4 penetrates through the top of the frame body 1 and is communicated with the top of the air outlet cover 10, and specifically, the air pipe 4 is utilized for air supply.
Further, an outer door 2 is rotatably connected to the outer side of the frame 1 by a hinge.
To sum up: the door body 11 is utilized to carry out feeding work, one end of the protruding rod 8 is utilized to slide in the annular groove 9, so that the stability of the bearing filter frame 12 can be enhanced, and the air pipe 4 is utilized to carry out air supply work.
The foregoing has shown and described the basic principles, principal features and advantages of the utility model. It will be understood by those skilled in the art that the present utility model is not limited to the embodiments described above, and that the above embodiments and descriptions are merely illustrative of the principles of the present utility model, and various changes and modifications may be made therein without departing from the spirit and scope of the utility model, which is defined by the appended claims. The scope of the utility model is defined by the appended claims and equivalents thereof.

Claims (6)

1. The utility model provides a continuous cooling equipment of injection molding, includes framework (1), its characterized in that, the top of framework (1) is through bolt fixedly connected with driving motor (5), and the inboard rotation of framework (1) is connected with carrier bar (6) to the top of carrier bar (6) runs through the top of framework (1) and driving motor (5) output shaft transmission is connected, cup joint on carrier bar (6) and bear filter frame (12), inner wall one side fixedly connected with air-out cover (10) of framework (1), outer wall one side of framework (1) is through bolt fixedly connected with fan (3), and the air intake of fan (3) is through cooling tube (7) and the lower part intercommunication of framework (1), the air outlet of fan (3) communicates with the top of air-out cover (10).
2. An injection-molded part continuous cooling apparatus according to claim 1, wherein the outer side of the carrying filter frame (12) is pivotally connected to the door body (11) by a hinge.
3. An injection molding continuous cooling device according to claim 2, characterized in that the two sides of the bottom of the carrying filter frame (12) are fixedly connected with convex rods (8), and the two convex rods (8) are slidably connected with the inner bottom of the frame body (1) through annular grooves (9).
4. The injection molding continuous cooling device according to claim 1, wherein the bottom end of the bearing rod (6) penetrates through the top of the frame body (1) through a bearing sleeve, and the bottom of the bearing rod (6) is rotatably connected with the inner bottom of the frame body (1) through a rotating shaft.
5. An injection molding continuous cooling device according to claim 1, characterized in that the air outlet of the fan (3) is communicated with an air pipe (4), and one end of the air pipe (4) penetrates through the top of the frame (1) and is communicated with the top of the air outlet cover (10).
6. An injection-molded part continuous cooling apparatus according to claim 1, wherein an outer door (2) is rotatably connected to an outer side of the frame (1) by a hinge.
CN202322741677.8U 2023-10-12 2023-10-12 Continuous cooling equipment for injection molding Active CN221584428U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202322741677.8U CN221584428U (en) 2023-10-12 2023-10-12 Continuous cooling equipment for injection molding

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202322741677.8U CN221584428U (en) 2023-10-12 2023-10-12 Continuous cooling equipment for injection molding

Publications (1)

Publication Number Publication Date
CN221584428U true CN221584428U (en) 2024-08-23

Family

ID=92405889

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202322741677.8U Active CN221584428U (en) 2023-10-12 2023-10-12 Continuous cooling equipment for injection molding

Country Status (1)

Country Link
CN (1) CN221584428U (en)

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