Medical equipment processing mold capable of rapidly cooling

By introducing cooling liquid tanks, pools, and heat dissipation boxes into the mold, and combining them with conveying, heat dissipation, and return mechanisms, the problems of equipment rusting and water waste caused by existing mold cooling have been solved, achieving rapid and effective mold cooling and resource recycling.

CN223877478UActive Publication Date: 2026-02-06ZHEJIANG NABAI MEDICAL TECH CO LTD
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Patent Information

Application Number
CN202520523743.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2026-02-06
Estimated Expiration
2035-03-24

AI Technical Summary

Technical Problem

Existing rapid cooling medical equipment processing molds are prone to rusting and water waste when sprayed for cooling, and cannot be effectively recycled.

Method used

It employs a cooling liquid tank, a cooling pool, a cooling liquid heat dissipation tank, and related mechanisms to achieve rapid cooling through a conveying, heat dissipation, and return mechanism. It also utilizes L-shaped heat dissipation fins and an agitator to accelerate heat dissipation, and combines a fan and a microcontroller to control the circulation of the cooling liquid.

Benefits of technology

It achieves rapid and effective mold cooling, avoids equipment rusting and water waste, and improves cooling efficiency and resource utilization.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a medical equipment processing mould capable of quickly cooling, which relates to the technical field of mould processing and comprises an equipment body, a mould base and an upper injection mould are arranged on the equipment body, a lower forming mould is arranged on the upper injection mould, and a cooling pool is fixedly mounted outside the lower forming mould. A cooling liquid box and a cooling liquid heat dissipation box are fixedly installed on the mold base, a cooling liquid conveying mechanism used for conveying cooling liquid is arranged on the cooling liquid box, a valve body is arranged in the release pipe, a temperature sensor is arranged on the cooling liquid heat dissipation box, and a microcontroller is arranged on the equipment body. The cooling liquid heat dissipation box and the cooling liquid box are provided with cooling liquid feedback mechanisms used for feedback of cooling liquid. According to the forming machine, through the arrangement of the cooling liquid box, the cooling pool, the cooling liquid heat dissipation box, the cooling liquid heat dissipation mechanism, the cooling liquid feedback mechanism and other structures, cooling liquid can rapidly take away heat of forming raw materials, cooling forming of the forming raw materials is accelerated, and heat dissipation can be conducted on the cooling liquid after heat absorption.
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Description

TECHNICAL FIELD

[0001] The utility model relates to mould processing technical field especially, and relates to a kind of medical equipment processing mould of quick cooling. BACKGROUND

[0002] The patent with announcement number CN214814220U in prior art discloses a kind of medical equipment processing mould of quick cooling, belongs to mould processing technical field, including water tank, humidifier, fan, Z type steel sheet and main body, the water tank is fixed in the upper portion of the main body, the humidifier is arranged in the main body, the fan is connected in the upper portion of the main body, the humidifier is connected with Z type steel sheet, the medical equipment processing mould of quick cooling above solves the power of water flow by the cooperation of Z type steel sheet and humidifier

[0003] It is easy to make humidifier shake, and the problem of damage occurs.

[0004] The device sprays cooling, and the water mist after spraying is easy to cause equipment rusting by entering the gap of each part of the equipment, which affects the normal use of the equipment, and the water cannot be recycled after spraying, which causes waste of water resources, so a medical equipment processing mould of quick cooling is needed to meet the use requirement. UTILITY MODEL CONTENT

[0005] The utility model aims at providing a kind of medical equipment processing mould of quick cooling to solve the problem raised in the above background.

[0006] To achieve the above object, the utility model provides the following technical scheme: a kind of medical equipment processing mould of quick cooling, including equipment body, the equipment body is provided with mould base and upper injection mould, the upper injection mould is provided with lower forming die, the outside of the lower forming die is fixedly installed with cooling pool, the mould base is fixedly installed with cooling liquid tank and cooling liquid heat sink, the cooling liquid tank is provided with cooling liquid conveying mechanism for cooling liquid conveying, the cooling liquid heat sink is provided with cooling liquid heat dissipation mechanism for cooling liquid heat dissipation, the cooling pool and the cooling liquid heat sink are provided with release pipe, the release pipe is provided with valve body, the cooling liquid heat sink is provided with temperature sensor, the equipment body is provided with microcontroller, the cooling liquid heat sink and the cooling liquid tank are provided with cooling liquid return mechanism for cooling liquid return.

[0007] Preferably, the cooling liquid conveying mechanism includes a delivery pump fixedly installed on the cooling liquid tank, the delivery pump is fixedly installed with a first suction pipe at the liquid inlet end, the delivery pump is fixedly installed with a delivery pipe at the liquid outlet end, and the end of the delivery pipe is arranged in the cooling pool.

[0008] Preferably, the cooling liquid heat dissipation mechanism includes heat dissipation holes formed on the cooling liquid heat dissipation tank, and L-shaped heat dissipation fins are fixedly installed inside the cooling liquid heat dissipation tank.

[0009] Preferably, a stirring shaft is rotatably installed inside the cooling liquid heat dissipation tank, a stirring paddle is fixedly installed on the stirring shaft, a dual-head drive motor is fixedly installed at one end of the cooling liquid heat dissipation tank, the stirring shaft is fixedly installed at the output end of the dual-head drive motor, and a fan is provided above the cooling liquid heat dissipation tank.

[0010] Preferably, a support block is fixedly installed on the top of the cooling liquid heat dissipation tank, a reciprocating lead screw is rotatably installed inside the support block, a lead screw sleeve is sleeved on the reciprocating lead screw, a guide sleeve is fixedly installed on the lead screw sleeve, the fan is fixedly installed on the guide sleeve, a guide rod is fixedly installed on the support block, and the support block is slidably sleeved on the guide rod.

[0011] Preferably, a rotating shaft is fixedly installed at the other output end of the dual-head drive motor, and a transmission wheel is fixedly installed at the end of both the rotating shaft and the reciprocating lead screw, with a transmission belt movably sleeved inside the transmission wheel.

[0012] Preferably, the cooling liquid return mechanism includes a return pump fixedly installed on the cooling liquid heat dissipation tank, a second pumping pipe fixedly installed at the inlet end of the return pump, a return pipe fixedly installed at the outlet end of the return pump, and the other end of the return pipe fixedly installed inside the cooling liquid tank.

[0013] The beneficial effects of this utility model are:

[0014] In this invention, through the arrangement of structures such as a cooling liquid tank, a cooling pool, and a cooling liquid heat dissipation tank, a delivery pump draws cooling liquid from the cooling liquid tank into a delivery pipe via a first delivery pipe, and then injects it into the cooling pool. The cooling liquid quickly removes heat from the molding material, rapidly cooling and molding it. After absorbing heat, the temperature of the cooling liquid rises. Opening the valve allows the cooling liquid in the cooling pool to be released into the cooling liquid heat dissipation tank through a release pipe.

[0015] In this invention, through the design of cooling liquid heat dissipation mechanism and cooling liquid return mechanism, L-shaped heat dissipation fins can conduct the temperature of cooling liquid. Multiple L-shaped heat dissipation fins in contact with air can increase the contact area with air and accelerate the heat dissipation of cooling liquid. The rotating agitator will stir the cooling liquid, causing it to tumble and release heat. The lead screw sleeve moves back and forth on the reciprocating lead screw and drives the fan to move back and forth to extract the heat released by the cooling liquid. After releasing heat, the cooling liquid will be returned to the cooling pool through the return pipe to cool the molding mold again. Attached Figure Description

[0016] Figure 1 A three-dimensional structure schematic diagram of the medical equipment processing mold capable of rapid cooling is provided for the utility model.

[0017] Figure 2 A cooling liquid tank, a cooling pool, a cooling liquid heat dissipation tank and other structure schematic diagrams of the medical equipment processing mold capable of rapid cooling are provided for the utility model.

[0018] Figure 3 A stirring paddle, an L-shaped heat dissipation fin and other structure schematic diagrams of the medical equipment processing mold capable of rapid cooling are provided for the utility model.

[0019] Figure 4 A structure schematic diagram of the A part of the medical equipment processing mold capable of rapid cooling is provided for the utility model.

[0020] In the figure: 1, the equipment body; 2, the mold base; 3, the upper injection mold; 4, the lower forming mold; 5, the cooling pool; 6, the cooling liquid tank; 7, the cooling liquid conveying mechanism; 71, the conveying pump; 72, the No. 1 suction pipe; 73, the conveying pipe; 8, the cooling liquid heat dissipation tank; 9, the cooling liquid heat dissipation mechanism; 91, the heat dissipation hole; 92, the L-shaped heat dissipation fin; 93, the stirring shaft; 94, the stirring paddle; 95, the double-head driving motor; 96, the supporting block; 97, the reciprocating screw rod; 98, the screw rod sleeve; 99, the guide sleeve; 910, the fan; 911, the guide rod; 912, the rotating shaft; 913, the transmission belt; 914, the transmission wheel; 10, the release pipe; 11, the valve body; 12, the temperature sensor; 13, the microcontroller; 14, the cooling liquid return mechanism; 141, the return pump; 142, the No. 2 suction pipe; 143, the return pipe. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments.

[0022] Embodiment:

[0023] As Figures 1-4As shown, this embodiment provides a processing mold for a medical device capable of rapid cooling, including a device body 1, a mold base 2 and an upper injection mold 3 on the device body 1, a lower forming mold 4 on the upper injection mold 3, a cooling pool 5 fixedly installed on the outside of the lower forming mold 4, a cooling liquid tank 6 and a cooling liquid heat dissipation tank 8 fixedly installed on the mold base 2, a cooling liquid conveying mechanism 7 for conveying cooling liquid on the cooling liquid tank 6, a cooling liquid heat dissipation mechanism 9 for dissipating cooling liquid on the cooling liquid heat dissipation tank 8, a release pipe 10 on the cooling pool 5 and the cooling liquid heat dissipation tank 8, a valve body 11 inside the release pipe 10, a temperature sensor 12 on the cooling liquid heat dissipation tank 8, a microcontroller 13 on the device body 1, and a cooling liquid return mechanism 14 for returning cooling liquid on the cooling liquid heat dissipation tank 8 and the cooling liquid tank 6.

[0024] The upper injection mold 3 is lowered by the control unit 1 to close with the lower molding mold 4 on the mold base 2. The molding material is then injected into the gap between the upper injection mold 3 and the lower molding mold 4 after they are closed. The cooling liquid delivery mechanism 7 injects cooling liquid into the cooling pool 5. The cooling liquid quickly removes the heat from the molding material, accelerating its cooling and molding. After absorbing heat, the temperature of the cooling liquid rises. When the valve 11 is opened, the cooling liquid in the cooling pool 5 is released into the cooling liquid heat dissipation tank 8 through the release pipe 10. The cooling liquid in the cooling liquid heat dissipation tank 8 can be cooled by the cooling liquid heat dissipation mechanism 9. The temperature sensor 12 monitors the temperature of the cooling liquid. When the cooling liquid drops to a suitable temperature, the microcontroller 13 controls the cooling liquid return mechanism 14 to return the cooling liquid to the cooling pool 5 to cool the molding mold again. Repeating this process can quickly cool the molding mold.

[0025] In this embodiment of the utility model, specifically, the cooling liquid delivery mechanism 7 includes a delivery pump 71 fixedly installed on the cooling liquid tank 6, a first-order pumping pipe 72 fixedly installed at the inlet end of the delivery pump 71, a delivery pipe 73 fixedly installed at the outlet end of the delivery pump 71, and the end of the delivery pipe 73 is located in the cooling pool 5.

[0026] In order to quickly cool down the molding die, the delivery pump 71 will pump the cooling liquid in the cooling liquid tank 6 to the delivery pipe 73 through the first delivery pipe 72, and then inject it into the cooling pool 5 through the delivery pipe 73. The cooling liquid will quickly remove the heat of the molding material and accelerate the cooling and molding of the molding material.

[0027] In the embodiment of the utility model, specific, cooling liquid heat dissipation mechanism 9 including the heat dissipation hole 91 of setting up on cooling liquid heat dissipation box 8, cooling liquid heat dissipation box 8 inside fixed mounting has L type heat dissipation fin 92, cooling liquid heat dissipation box 8 inside rotationally installed has stirring shaft 93, fixed mounting has stirring paddle 94 on stirring shaft 93, cooling liquid heat dissipation box 8 one end fixed mounting has double -end drive motor 95, stirring shaft 93 fixed mounting is in the output of double -end drive motor 95, the upper portion of cooling liquid heat dissipation box 8 is provided with fan 910,

[0028] In order to cool the cooling liquid heat dissipation. Cooling liquid in cooling liquid heat dissipation box 8 can contact cooling through heat dissipation hole 91 and external space, L type heat dissipation fin 92 can conduct the temperature of cooling liquid, multiple L type heat dissipation fin 92 can improve the contact area with air and accelerate the heat dissipation of cooling liquid. Double -end drive motor 95 rotation will drive stirring shaft 93 rotation, stirring shaft 93 rotation will drive stirring paddle 94 rotation, stirring paddle 94 rotation will agitate cooling liquid, can make cooling liquid boil and release heat, fan 910 moves back and forth to extract the heat released by cooling liquid, further accelerate the cooling of cooling liquid.

[0029] In the embodiment of the utility model, more specifically, the top of cooling liquid heat dissipation box 8 is fixedly installed with a support block 96, a reciprocating screw rod 97 is rotatably installed in the support block 96, a screw rod sleeve 98 is sleeved on the reciprocating screw rod 97, a guide sleeve 99 is fixedly installed on the screw rod sleeve 98, the fan 910 is fixedly installed on the guide sleeve 99, a guide rod 911 is fixedly installed on the support block 96, and the support block 96 is slidably sleeved on the guide rod 911.

[0030] Another output end of the double-end drive motor 95 is fixedly installed with a rotating shaft 912, the rotating shaft 912 and the end portion of the reciprocating screw rod 97 are both fixedly installed with a transmission wheel 914, and the transmission wheel 914 is movably sleeved with a transmission belt 913.

[0031] In order to drive the fan 910 to move back and forth, the double-end drive motor 95 rotates at the same time to drive the rotating shaft 912 to rotate, the rotating shaft 912 rotates to drive the transmission wheel 914 to rotate, the transmission belt 913 is driven to rotate through the transmission effect, the guide sleeve 99 slides on the guide rod 911 to guide the movement of the fan 910, so that the fan 910 can only move left and right on the guide rod 911, and then the reciprocating screw rod 97 rotates to drive the screw rod sleeve 98 to reciprocate on the reciprocating screw rod 97 and drive the fan 910 to move back and forth.

[0032] In the embodiment of the utility model, specific, cooling liquid heat dissipation box 8 on fixed mounting of cooling liquid return mechanism 14 includes the return pump 141, the liquid inlet end of the return pump 141 is fixedly installed with a No. 2 suction pipe 142, the liquid outlet end of the return pump 141 is fixedly installed with a return pipe 143, and the other end of the return pipe 143 is fixedly installed in the cooling liquid tank 6.

[0033] In order to return the cooled liquid into the cooling liquid tank 6 after heat dissipation. The temperature sensor 12 can monitor the temperature of the cooling liquid, and when the cooling liquid drops to a suitable temperature, the microcontroller 13 will control the return pump 141 to open, and the return pump 141 will pump the cooling liquid in the cooling liquid heat dissipation tank 8 into the return pipe 143 through the second pumping pipe 142, and then return to the cooling liquid tank 6 through the return pipe 143.

[0034] Working principle: when in use, the upper injection mold 3 is controlled to descend and combine with the lower forming mold 4 on the mold base 2, and then the molding material is injected into the gap between the upper injection mold 3 and the lower forming mold 4 to form. The delivery pump 71 will pump the cooling liquid in the cooling liquid tank 6 into the delivery pipe 73 through the first pumping pipe 72, and then inject it into the cooling pool 5 through the delivery pipe 73. The cooling liquid will quickly take away the heat of the molding material, accelerating the cooling and molding of the molding material. After absorbing heat, the temperature of the cooling liquid will rise, the valve body 11 will open, and the cooling liquid in the cooling pool 5 will be released into the cooling liquid heat dissipation tank 8 through the release pipe 10. The cooling liquid in the cooling liquid heat dissipation tank 8 can be in contact with the outside space through the heat dissipation holes 91, and the L-shaped heat dissipation fins 92 can conduct the temperature of the cooling liquid. The contact area with the air can be increased by contacting the air with multiple L-shaped heat dissipation fins 92, and the heat dissipation of the cooling liquid can be accelerated. The rotation of the double-head drive motor 95 will drive the stirring shaft 93 to rotate, and the rotation of the stirring shaft 93 will drive the stirring paddle 94 to rotate, and the rotation of the stirring paddle 94 will stir the cooling liquid, so that the cooling liquid can be rolled and released heat. The rotation of the double-head drive motor 95 will drive the rotating shaft 912 to rotate, and the rotation of the rotating shaft 912 will drive the transmission wheel 914 to rotate. The transmission of the transmission belt 913 will drive the reciprocating screw rod 97 to rotate. The sliding of the guide sleeve 99 on the guide rod 911 will guide the movement of the fan 910, so that the fan 910 can only move left and right on the guide rod 911. The rotation of the reciprocating screw rod 97 will drive the screw rod sleeve 98 to move reciprocally on the reciprocating screw rod 97 and drive the fan 910 to move back and forth to extract the heat released by the cooling liquid, further accelerating the cooling of the cooling liquid. The temperature sensor 12 can monitor the temperature of the cooling liquid, and when the cooling liquid drops to a suitable temperature, the microcontroller 13 will control the return pump 141 to open, and the return pump 141 will pump the cooling liquid in the cooling liquid heat dissipation tank 8 into the return pipe 143 through the second pumping pipe 142, and then return to the cooling liquid tank 6 through the return pipe 143.

[0035] The above is only a preferred specific embodiment of the present application, but the protection scope of the present application is not limited to this. Any skilled person in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.

Claims

1. A rapid cooling medical device processing mold, comprising a device body (1), a mold base (2) and an upper injection mold (3) are arranged on the device body (1), and a lower forming mold (4) is arranged on the upper injection mold (3), characterized in that: The lower forming die (4) is externally fixedly installed with a cooling pool (5), the die base (2) is fixedly installed with a cooling liquid tank (6) and a cooling liquid heat dissipation tank (8), the cooling liquid tank (6) is provided with a cooling liquid conveying mechanism (7) for conveying cooling liquid, the cooling liquid heat dissipation tank (8) is provided with a cooling liquid heat dissipation mechanism (9) for heat dissipation of the cooling liquid, the cooling pool (5) and the cooling liquid heat dissipation tank (8) are provided with release pipes (10), the release pipes (10) are provided with valve bodies (11) inside, the cooling liquid heat dissipation tank (8) is provided with a temperature sensor (12), the equipment body (1) is provided with a microcontroller (13), and the cooling liquid heat dissipation tank (8) and the cooling liquid tank (6) are provided with a cooling liquid return mechanism (14) for return of the cooling liquid.

2. The rapid cooling medical device processing mold of claim 1, wherein: The cooling liquid conveying mechanism (7) comprises a conveying pump (71) fixedly installed on the cooling liquid tank (6), a No. 1 suction pipe (72) fixedly installed at the liquid inlet end of the conveying pump (71), and a conveying pipe (73) fixedly installed at the liquid outlet end of the conveying pump (71), wherein the end of the conveying pipe (73) is arranged in the cooling pool (5).

3. The rapid cooling medical device processing mold of claim 1, wherein: The cooling liquid heat dissipation mechanism (9) comprises heat dissipation holes (91) formed in the cooling liquid heat dissipation tank (8), and L-shaped heat dissipation fins (92) fixedly installed in the cooling liquid heat dissipation tank (8).

4. The rapid cooling medical device processing mold of claim 3, wherein: A stirring shaft (93) is rotatably installed in the cooling liquid heat dissipation tank (8), a stirring paddle (94) is fixedly installed on the stirring shaft (93), a double-head driving motor (95) is fixedly installed at one end of the cooling liquid heat dissipation tank (8), the stirring shaft (93) is fixedly installed at the output end of the double-head driving motor (95), and a fan (910) is arranged above the cooling liquid heat dissipation tank (8).

5. The rapid cooling medical device processing mold of claim 4, wherein: A supporting block (96) is fixedly installed at the top of the cooling liquid heat dissipation tank (8), a reciprocating screw rod (97) is rotatably installed in the supporting block (96), a screw rod sleeve (98) is sleeved on the reciprocating screw rod (97), a guide sleeve (99) is fixedly installed on the screw rod sleeve (98), the fan (910) is fixedly installed on the guide sleeve (99), a guide rod (911) is fixedly installed on the supporting block (96), and the supporting block (96) is slidably sleeved on the guide rod (911).

6. The rapid cooling medical device processing mold of claim 5, wherein: A rotating shaft (912) is fixedly installed at the other output end of the double-head driving motor (95), a transmission wheel (914) is fixedly installed at the end of the rotating shaft (912) and the reciprocating screw rod (97), and a transmission belt (913) is movably sleeved in the transmission wheel (914).

7. The rapid cooling medical device processing mold of claim 1, wherein: The cooling liquid return mechanism (14) comprises a return pump (141) fixedly installed on the cooling liquid heat dissipation tank (8), a No. 2 suction pipe (142) fixedly installed at the liquid inlet end of the return pump (141), and a return pipe (143) fixedly installed at the liquid outlet end of the return pump (141), wherein the other end of the return pipe (143) is fixedly installed in the cooling liquid tank (6).

Citation Information

Patent Citations

  • Medical equipment processing mold capable of rapidly cooling

    CN214814220U