Heat-conducting gel conveying device capable of preventing output port from being blocked

The motor drives the spiral blades and stirring rod to rotate to prevent the thermal conductive gel material from clogging, solves the problem of damage to the feed pipe, and achieves anti-clogging and durability of the equipment.

CN223385255UActive Publication Date: 2025-09-26DONGGUAN ZHAOXIN ELECTRONICS TECH CO LTD
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Patent Information

Application Number
CN202422697185.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-09-26
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

In the existing thermal conductive gel conveying device, when preventing material blockage, the knocking block knocks the material discharge pipe for a long time, causing damage to the material discharge pipe and reducing its service life.

Method used

The first motor is used to drive the spiral blade to rotate, and the second motor is used to drive the second rotating shaft, multiple stirring rods and stirring rods to rotate to prevent material blockage, and the equipment is protected by a protective cylinder and a splash-proof shell to avoid damage.

Benefits of technology

Effectively prevent material blockage, extend the service life of the discharge pipe, improve processing progress, and enhance equipment applicability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of heat-conducting gel processing, in particular to a heat-conducting gel conveying device capable of preventing an output port from being blocked, which comprises a conveying barrel, a first rotating shaft, a first motor, a spiral blade and a discharging assembly, the discharging assembly comprises a discharging pipe, a plurality of connecting rods, a fixing plate, a second motor, a second rotating shaft, a plurality of first stirring rods and two second stirring rods. A first motor drives a first rotating shaft and a spiral blade to rotate, then materials are discharged from a discharging pipe, then a second motor is started, a second rotating shaft, a plurality of first stirring rods and two second stirring rods are driven to rotate through the output end of the second motor, the materials fall out of the discharging pipe, and the materials are prevented from blocking an outlet of the discharging pipe; according to the device, a beating block is replaced by the second motor, the second rotating shaft, the first stirring rods and the two second stirring rods, the anti-blocking effect is achieved, the discharging pipe can be prevented from being damaged, and the service life of the discharging pipe is prolonged.
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Description

Technical Field

[0001] The utility model relates to the technical field of heat-conducting gel processing, in particular to a heat-conducting gel conveying device capable of preventing an output port from being blocked. Background Art

[0002] Thermally conductive gel is a blend of organic silicone, fillers, thermally conductive materials, and other polymer materials. It exhibits excellent thermal conductivity and electrical insulation properties and is widely used in electronic components. The production of thermally conductive gel requires the use of appropriate processing equipment. The raw materials are typically conveyed and fed through a spiral feeder. Current conveying devices often lack anti-clogging capabilities, making them prone to blockage during discharge, impacting processing progress.

[0003] A prior art patent (CN215709415U) discloses a thermally conductive gel delivery device that prevents outlet clogging. The device comprises a feed barrel and a base. The feed barrel is mounted on top of the base, and a main drive motor is fixedly connected to one side of the feed barrel. The inner cavity of the feed barrel is provided with a spiral feed shaft that passes through one side of the feed barrel. The extended end of the spiral feed shaft is transmission-connected to the output shaft of the main drive motor, and the spiral feed shaft is rotationally connected to the feed barrel. The application discloses a striking block that strikes the discharge pipe back and forth, causing it to vibrate, thereby vibrating the material and discharging it, preventing the material from clogging in the discharge pipe and affecting the discharge process, thereby avoiding affecting the material processing progress.

[0004] However, in the aforementioned prior art, although the material blockage can be prevented, the knocking block continuously knocks the discharge pipe, which may cause damage to the discharge pipe after a long time, thereby reducing the service life of the discharge pipe. Utility Model Content

[0005] The purpose of the utility model is to provide a thermally conductive gel conveying device that can prevent the output port from being blocked, solving the problem in the prior art that although the device can prevent material blockage, the knocking block continuously knocks the discharge pipe, which will cause damage to the discharge pipe after a long time, thereby reducing the service life of the discharge pipe.

[0006] To achieve the above-mentioned purpose, the utility model provides a heat-conducting gel delivery device that can prevent the output port from being blocked, including a delivery barrel, a first rotating shaft, a first motor, a spiral blade and a discharge assembly, the discharge assembly including a feed pipe, a plurality of connecting rods, a fixed plate, a second motor, a second rotating shaft, a plurality of first stirring rods and two second stirring rods, the two ends of the first rotating shaft are respectively rotatably connected to the delivery barrel and are located inside the delivery barrel, the first motor is fixedly connected to the left end of the delivery barrel, the output end of the first motor passes through the left end of the delivery barrel and is fixedly connected to the first rotating shaft, the spiral blade is sleeved on the outer side of the first rotating shaft The feeding tube is connected with the feeding cylinder and is located at the lower right end of the feeding cylinder. One end of the multiple connecting rods is fixedly connected to the bottom of the feeding tube, and the other ends of the multiple connecting rods are fixedly connected to the fixed plate. The lower end of the second rotating shaft is rotatably connected to the top of the fixed plate, the second motor is fixedly connected to the bottom end of the fixed plate, and the output end of the second motor passes through the fixed plate and is fixedly connected to the second rotating shaft. The multiple first stirring rods and the two second stirring rods are respectively arranged on the second rotating shaft, and the two second stirring rods are respectively located below the multiple first stirring rods.

[0007] Wherein, the discharging assembly further includes a protective tube, which is fixedly connected to the fixing plate and located at the bottom of the fixing plate, and the protective tube is sleeved on the outside of the second motor.

[0008] Wherein, the discharge assembly also includes a splash-proof shell, and the lower end of the discharge pipe passes through the top wall of the splash-proof shell and is fixedly connected to the splash-proof shell.

[0009] The heat-conducting gel delivery device capable of preventing the output port from being blocked further comprises a feed pipe, which is communicated with the delivery cylinder and is located at the upper left end of the delivery cylinder.

[0010] Among them, the thermal conductive gel delivery device that can prevent the output port from being blocked also includes a base and two cylinders, one end of the two cylinders is fixedly connected to the base and is respectively located at the upper end of the base, and the other end of the two cylinders is fixedly connected to the bottom of the delivery barrel.

[0011] The thermally conductive gel delivery device capable of preventing the output port from being blocked further comprises a first vibration motor and a second vibration motor. The first vibration motor is arranged on the outer wall of the feed pipe, and the second vibration motor is arranged on the outer wall of the discharge pipe.

[0012] The utility model provides a thermally conductive gel conveying device that can prevent the output port from being blocked. The first motor drives the first rotating shaft and the spiral blade to rotate, so that the material moves in the conveying cylinder, and then the material is discharged from the discharge pipe. Then the second motor is started, and the second rotating shaft, multiple first stirring rods and two second stirring rods are driven to rotate through the output end of the second motor, so that the material falls out of the discharge pipe, thereby preventing the material from being blocked at the outlet of the discharge pipe and avoiding affecting the processing progress of the material. Therefore, the device replaces the knocking fast with the second motor, the second rotating shaft, multiple first stirring rods and two second stirring rods to achieve the anti-blocking effect, and can also prevent the discharge pipe from being damaged, thereby improving the service life of the discharge pipe. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art.

[0014] Figure 1 It is a schematic diagram of the overall structure of the first embodiment of the present utility model.

[0015] Figure 2 It is an overall cross-sectional view of the first embodiment of the present utility model.

[0016] Figure 3 It is a schematic diagram of the overall structure of the second embodiment of the present utility model.

[0017] Figure 4 It is an overall cross-sectional view of the second embodiment of the present utility model.

[0018] 101-feeding barrel, 102-first rotating shaft, 103-first motor, 104-spiral blade, 105-feeding pipe, 106-base, 107-cylinder, 108-discharging pipe, 109-connecting rod, 110-fixed plate, 111-second motor, 112-second rotating shaft, 113-first stirring rod, 114-second stirring rod, 115-protective barrel, 116-splashproof shell, 201-first vibration motor, 202-second vibration motor. DETAILED DESCRIPTION

[0019] The embodiments of the present invention are described in detail below, and examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present invention, but should not be understood as limiting the present invention.

[0020] First embodiment:

[0021] See also Figure 1 and Figure 2,in, Figure 1 This is a schematic diagram of the overall structure of the first embodiment of the present invention. Figure 2 It is an overall cross-sectional view of the first embodiment of the present utility model.

[0022] The utility model provides a thermally conductive gel conveying device that can prevent the output port from being blocked, including a delivery cylinder 101, a first rotating shaft 102, a first motor 103, a spiral blade 104, a discharge assembly, a feed pipe 105, a base 106 and two cylinders 107. The discharge assembly includes a discharge pipe 108, multiple connecting rods 109, a fixed plate 110, a second motor 111, a second rotating shaft 112, multiple first stirring rods 113, two second stirring rods 114, a protective cylinder 115 and a splash-proof shell 116.

[0023] According to this specific embodiment, workers pour the material to be conveyed from the feed pipe 105 into the conveying cylinder, and then use the first motor 103 to drive the first rotating shaft 102 and the spiral blade 104 to rotate, so that the material is discharged from the discharge pipe 108, and then start the second motor 111, and drive the second rotating shaft 112, multiple first stirring rods 113 and two second stirring rods 114 to rotate through the output end of the second motor 111, so that the material falls out of the discharge pipe 108, thereby preventing the material from being blocked at the outlet of the discharge pipe 108 and affecting the processing progress of the material. Therefore, the device uses the second motor 111, the second rotating shaft 112, multiple first stirring rods 113 and two second stirring rods 114 to replace the knocking fast, thereby achieving the effect of anti-blocking, and can also prevent the discharge pipe 108 from being damaged, thereby improving the service life of the discharge pipe 108.

[0024] The two ends of the first rotating shaft 102 are respectively connected to the feeding barrel 101 for rotation and are located inside the feeding barrel 101. The first motor 103 is fixedly connected to the left end of the feeding barrel 101. The output end of the first motor 103 passes through the left end of the feeding barrel 101 and is fixedly connected to the first rotating shaft 102. The spiral blade 104 is sleeved on the outside of the first rotating shaft 102. The discharge pipe 108 is connected to the feeding barrel 101 and is located at the lower right end of the feeding barrel 101. One end of each of the connecting rods 109 is fixedly connected to the bottom of the discharge pipe 108. The second rotating shaft 112 is connected to the fixed plate 110, and the lower end of the second rotating shaft 112 is rotatably connected to the top of the fixed plate 110. The second motor 111 is fixedly connected to the bottom end of the fixed plate 110. The output end of the second motor 111 passes through the fixed plate 110 and is fixedly connected to the second rotating shaft 112. The first stirring rods 113 and the two second stirring rods 114 are respectively arranged on the second rotating shaft 112, and the two second stirring rods 114 are respectively located below the first stirring rods 113. The first motor 103 drives the first rotating shaft 102 and the spiral blade 104 to rotate, so that the material is discharged from the discharge pipe 108, and then the second motor 111 is started, and the second rotating shaft 112, multiple first stirring rods 113 and two second stirring rods 114 are driven to rotate through the output end of the second motor 111, so that the material falls out of the discharge pipe 108, thereby preventing the material from being blocked at the outlet of the discharge pipe 108 and avoiding affecting the processing progress of the material. Therefore, the device replaces the knocking fast with the second motor 111, the second rotating shaft 112, multiple first stirring rods 113 and two second stirring rods 114 to achieve the effect of anti-blocking, and can also prevent the discharge pipe 108 from being damaged, thereby improving the service life of the discharge pipe 108.

[0025] Secondly, the protective tube 115 is fixedly connected to the fixing plate 110 and is located at the bottom of the fixing plate 110. The protective tube 115 is sleeved on the outside of the second motor 111. The protective tube 115 can prevent falling materials from dripping onto the second motor 111 and causing damage to the second motor 111.

[0026] At the same time, the lower end of the discharge pipe 108 passes through the top wall of the splash-proof housing 116 and is fixedly connected to the splash-proof housing 116. The splash-proof housing 116 prevents the rotation of the multiple first stirring rods 113 and the two second stirring rods 114 from throwing the material out of the outlet of the discharge pipe 108, thereby splashing around and preventing it from properly falling onto the thermal conductive gel processing and production equipment below.

[0027] In addition, the feed pipe 105 is communicated with the delivery cylinder 101 and is located at the upper left end of the delivery cylinder 101. Workers pour the materials to be transported from the feed pipe 105 into the delivery cylinder, thereby facilitating transportation.

[0028] Finally, one end of each of the two cylinders 107 is fixedly connected to the base 106 and located at the upper end of the base 106. The other end of each of the two cylinders 107 is fixedly connected to the bottom of the conveying barrel 101. The two cylinders 107 push the conveying barrel up and down, thereby facilitating the adjustment of the discharge height of the discharge pipe 108, making it suitable for different specifications of thermal conductive gel processing equipment, thereby improving applicability.

[0029] When using the heat-conducting gel conveying device of the present embodiment that can prevent the output port from being blocked, the worker pours the material to be conveyed into the conveying cylinder from the feed pipe 105, and then drives the first rotating shaft 102 and the spiral blade 104 to rotate through the first motor 103, so that the material is discharged from the discharge pipe 108, and then starts the second motor 111, and drives the second rotating shaft 112, the plurality of first stirring rods 113 and the two second stirring rods 114 to rotate through the output end of the second motor 111, so that the material falls out of the discharge pipe 108, thereby preventing the material from being blocked at the outlet of the discharge pipe 108 and avoiding affecting the processing progress of the material. The second stirring rod 114 replaces the knocking rod to achieve the effect of anti-blocking, and can also prevent the discharge pipe 108 from being damaged, thereby increasing the service life of the discharge pipe 108. The protective cylinder 115 can prevent the material from dripping onto the second motor 111 when falling, thereby damaging the second motor 111. The splash-proof shell 116 can prevent the rotation of multiple first stirring rods 113 and two second stirring rods 114, and the material from being thrown out from the outlet of the discharge pipe 108, thereby splashing around and unable to fall normally on the thermal conductive gel processing and production equipment below. In addition, the two cylinders 107 push the conveying cylinder to move up and down, thereby facilitating the adjustment of the discharge height of the discharge pipe 108, so that it can be applied to thermal conductive gel processing and production equipment of different specifications, thereby improving applicability.

[0030] Second embodiment:

[0031] Based on the first embodiment, please refer to Figure 3 and Figure 4 ,in, Figure 3 This is a schematic diagram of the overall structure of the second embodiment of the present invention. Figure 4It is an overall cross-sectional view of the second embodiment of the present utility model.

[0032] The utility model provides a heat-conducting gel delivery device capable of preventing an output port from being blocked, and further comprises a first vibration motor 201 and a second vibration motor 202 .

[0033] According to this specific embodiment, the first vibration motor 201 is used to drive the feed pipe 105 to vibrate, thereby accelerating the efficiency of material feeding and preventing the material from being blocked in the feed pipe 105, thereby improving the feeding efficiency. The second vibration motor 202 is used to drive the discharge pipe 108 to vibrate, thereby further preventing the material from being blocked in the discharge pipe 108 and shaking off the material on the inner wall of the discharge pipe 108, thereby improving the discharge efficiency.

[0034] The first vibration motor 201 is disposed on the outer wall of the feed pipe 105, and the second vibration motor 202 is disposed on the outer wall of the discharge pipe 108. The first vibration motor 201 drives the feed pipe 105 to vibrate, thereby accelerating the efficiency of material feeding and preventing material from being blocked in the feed pipe 105, thereby improving the feeding efficiency. The second vibration motor 202 drives the discharge pipe 108 to vibrate, thereby further preventing material from being blocked in the discharge pipe 108 and shaking off material on the inner wall of the discharge pipe 108, thereby improving the discharge efficiency.

[0035] When using the thermally conductive gel delivery device of this embodiment that can prevent the output port from being blocked, the first vibration motor 201 is used to drive the feed pipe 105 to vibrate, thereby accelerating the efficiency of material feeding and preventing material from being blocked in the feed pipe 105, thereby improving the feeding efficiency. The second vibration motor 202 is used to drive the discharge pipe 108 to vibrate, thereby further preventing material from being blocked in the discharge pipe 108 and shaking off material on the inner wall of the discharge pipe 108, thereby improving the discharge efficiency.

[0036] The above disclosure is merely one or more preferred embodiments of the present application and is not intended to limit the scope of the present application. A person skilled in the art will understand that all or part of the processes of the above embodiments and equivalent changes made in accordance with the claims of the present application are still within the scope of the present application.

Claims

1. A heat-conducting gel delivery device capable of preventing the delivery port from being blocked, comprising a delivery cylinder, characterized in that: It also includes a first rotating shaft, a first motor, a spiral blade and a discharging assembly; The discharging opening that stirs cage connects with the delivery chute charging aperture, and the delivery chute discharging opening is erected at cage connects the delivery chute discharging opening and the delivery chute discharging opening is erected at cage connects the delivery chute discharging opening.

2. The heat-conducting gel delivery device capable of preventing the outlet from being blocked according to claim 1, wherein: The discharging assembly further includes a protective tube, which is fixedly connected to the fixing plate and located at the bottom of the fixing plate, and the protective tube is sleeved on the outside of the second motor.

3. The heat-conducting gel delivery device capable of preventing the outlet from being blocked as claimed in claim 2, characterized in that: The discharge assembly further includes a splash-proof shell, and the lower end of the discharge pipe passes through the top wall of the splash-proof shell and is fixedly connected to the splash-proof shell.

4. The heat-conducting gel delivery device capable of preventing the outlet from being blocked as claimed in claim 3, characterized in that: The heat-conducting gel delivery device capable of preventing the delivery port from being blocked further comprises a feed pipe, which is communicated with the delivery cylinder and is located at the upper left end of the delivery cylinder.

5. The heat-conducting gel delivery device capable of preventing the outlet from being blocked as claimed in claim 4, characterized in that: The thermally conductive gel delivery device capable of preventing the output port from being blocked also includes a base and two cylinders, one end of the two cylinders being fixedly connected to the base and located at the upper end of the base, and the other end of the two cylinders being fixedly connected to the bottom of the delivery barrel.

6. The heat-conducting gel delivery device capable of preventing the outlet from being blocked as claimed in claim 5, characterized in that: The thermally conductive gel delivery device capable of preventing the output port from being blocked further includes a first vibration motor and a second vibration motor. The first vibration motor is arranged on the outer wall of the feed pipe, and the second vibration motor is arranged on the outer wall of the discharge pipe.

Citation Information

Patent Citations

  • Heat-conducting gel conveying device capable of preventing output port from being blocked

    CN215709415U