Granulation cooling equipment
By introducing spiral blades and a dual heat dissipation method into the cooling equipment, the problem of the vulcanizing agent particles not being able to turn over was solved, achieving efficient heat dissipation and production process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-04-07
AI Technical Summary
The existing cooling equipment cannot turn the vulcanizing agent particles over, which increases the heat dissipation time and affects production efficiency.
A granulation cooling device was designed, comprising a water-cooled chamber, a rotating shaft, spiral blades, a blower assembly, and a heat dissipation assembly. The spiral blades drive the vulcanizing agent granules forward, and the combination of blower and water cooling achieves granule flipping and efficient heat dissipation.
It shortens the heat dissipation time and improves the production efficiency of vulcanizing agent particles.
Smart Images

Figure CN224094683U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of polyurethane rubber vulcanizing agent production technology, and in particular to a granulation cooling device. Background Technology
[0002] Polyurethane rubber vulcanizing agent is an additive that uses chemical reactions to change the chemical structure of polyurethane rubber, thereby significantly improving its physical and performance properties. After the polyurethane rubber vulcanizing agent is vulcanized, it needs to be cooled to room temperature before subsequent packaging. The current cooling method is natural air cooling, which is inefficient and affects the efficiency of subsequent packaging.
[0003] Currently, heat dissipation is achieved through cooling equipment. Existing cooling equipment is generally equipped with cooling fans and a support structure for placing the vulcanizing agent. The cooling fans dissipate heat from the vulcanizing agent, which is highly efficient, controllable, and facilitates subsequent packaging.
[0004] However, using the above method, the cooling fan utilizes a DC brushless motor to blow air to dissipate heat from the vulcanizing agent. While this method is highly efficient and beneficial for subsequent packaging and storage, it prevents the vulcanizing agent granules from being turned over during the entire cooling process, increasing the time consumed in cooling and hindering the production of the vulcanizing agent granules. Utility Model Content
[0005] The purpose of this invention is to provide a granulation cooling device that solves the problem in the prior art that the vulcanizing agent granules cannot be turned over, which increases the time consumed for heat dissipation and is not conducive to the production of vulcanizing agent granules.
[0006] To achieve the above objectives, this utility model provides a granulation cooling device, including a connecting cylinder and a connecting unit. The connecting unit includes a water-cooling chamber, a rotating shaft, a spiral blade, a feeding chamber, a discharging chamber, a mounting frame, a connecting bracket, a motor, a blowing assembly, and a heat dissipation assembly. The connecting unit is connected to the connecting cylinder. The connecting cylinder is fixed to the water-cooling chamber and located on the inner wall of the water-cooling chamber. The rotating shaft is rotatably connected to the connecting cylinder and located on the inner wall of the connecting cylinder. The mounting bracket is fixedly connected to the connecting cylinder and located on one side of the connecting cylinder. The motor is fixedly connected to the mounting bracket and located on the upper part of the mounting bracket. The spiral blade is fixedly connected to the rotating shaft and located on the outer side wall of the rotating shaft. The spiral blade is adapted to the connecting cylinder. One end of the connecting frame is fixedly connected to the motor and located at the output end of the motor. The other end of the connecting frame is fixedly connected to the rotating shaft and located at one end of the rotating shaft. The connecting frame and the connecting cylinder are rotatably engaged. The feeding bin is connected to the connecting cylinder and located above the connecting cylinder. The discharging bin is connected to the connecting cylinder and located on the outer side wall of the connecting cylinder. The blowing assembly is disposed on one side of the connecting cylinder. The heat dissipation assembly is connected to the water cooling chamber.
[0007] The blower assembly includes an air inlet pipe, an air inlet chamber, and a fan. The air inlet pipe is connected to the connecting cylinder and is located on one side of the connecting cylinder. The air inlet chamber is connected to the air inlet pipe and is located at one end of the air inlet pipe. The fan is detachably connected to the air inlet chamber and is located on the inner side wall of the air inlet chamber.
[0008] The blower assembly also includes a filter network, which is connected to the air inlet chamber and located on the outer wall of the air inlet chamber.
[0009] The heat dissipation assembly includes a circulation pump, a connecting pipe, and a water distribution chamber. The water distribution chamber is fixedly connected to the water-cooling chamber and is located on the inner top wall of the water-cooling chamber. The circulation pump is fixedly connected to the water-cooling chamber and is located on the inner bottom wall of the water-cooling chamber. One end of the connecting pipe is connected to the circulation pump and is located at the output end of the circulation pump. The other end of the connecting pipe is connected to the water distribution chamber and is located on one side of the water distribution chamber.
[0010] The heat dissipation component also includes a sloping panel, which is fixedly connected to the water-cooling chamber and located above the water-cooling chamber.
[0011] This utility model discloses a granulation and cooling device. Vulcanizing agent granules are poured from the feed hopper into the connecting cylinder. The controller starts the motor, driving the connecting frame to rotate the shaft. The spiral blades propel the vulcanizing agent granules forward. A blower assembly draws outside air into the connecting cylinder for heat dissipation. Part of the heat from the vulcanizing agent granules is transferred to the connecting cylinder. The heat dissipation assembly then cools the connecting cylinder, achieving dual heat dissipation and improving efficiency. This method of turning the vulcanizing agent granules reduces the time required for heat dissipation, which is beneficial for the production of vulcanizing agent granules. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0013] Figure 1 This is a schematic diagram of the granulation cooling equipment of this utility model.
[0014] Figure 2 This is a right view of the granulation cooling device of this utility model.
[0015] Figure 3 This is the utility model Figure 2 A sectional view along line AA.
[0016] Figure 4 This is a front view of the granulation cooling device of this utility model.
[0017] 101-Connecting cylinder, 102-Water-cooled chamber, 103-Rotating shaft, 104-Helical blade, 105-Feeding hopper, 106-Discharge hopper, 107-Mounting bracket, 108-Connecting bracket, 109-Motor, 110-Air inlet pipe, 111-Air inlet chamber, 112-Fan, 113-Filter network, 114-Circulating pump, 115-Connecting pipe, 116-Water distribution chamber, 117-Sloping panel. Detailed Implementation
[0018] Please see Figures 1 to 4 ,in, Figure 1 This is a structural schematic diagram of the granulation and cooling equipment of this utility model. Figure 2 This is a right view of the granulation and cooling equipment of this utility model. Figure 3 This is the utility model Figure 2 AA-line sectional view, Figure 4 This is a front view of the granulation cooling device of this utility model.
[0019] This utility model provides a granulation cooling device, including a connecting cylinder 101 and a connecting unit. The connecting unit includes a water-cooled chamber 102, a rotating shaft 103, a spiral blade 104, a feeding chamber 105, a discharging chamber 106, a mounting frame 107, a connecting frame 108, a motor 109, a blowing assembly, and a heat dissipation assembly. The blowing assembly includes an air inlet pipe 110, an air inlet chamber 111, a fan 112, and a filter network 113. The heat dissipation assembly includes a circulating pump 114, a connecting pipe 115, a water distribution chamber 116, and an inclined plate 117.
[0020] The connecting unit is connected to the connecting cylinder 101; the connecting cylinder 101 is fixed to the water-cooling chamber 102 and located on the inner wall of the water-cooling chamber 102; the rotating shaft 103 is rotatably connected to the connecting cylinder 101 and located on the inner wall of the connecting cylinder 101; the mounting bracket 107 is fixedly connected to the connecting cylinder 101 and located on one side of the connecting cylinder 101; the motor 109 is fixedly connected to the mounting bracket 107 and located above the mounting bracket 107; the spiral blade 104 is fixedly connected to the rotating shaft 103 and located on the outer wall of the rotating shaft 103, and the spiral blade 104 is connected to the connecting cylinder 101. 01. Adaptation: One end of the connecting frame 108 is fixedly connected to the motor 109 and located at the output end of the motor 109; the other end of the connecting frame 108 is fixedly connected to the rotating shaft 103 and located at one end of the rotating shaft 103; the connecting frame 108 is rotatably engaged with the connecting cylinder 101; the feeding chamber 105 is connected to the connecting cylinder 101 and located above the connecting cylinder 101; the discharging chamber 106 is connected to the connecting cylinder 101 and located on the outer wall of the connecting cylinder 101; the blowing assembly is disposed on one side of the connecting cylinder 101; and the heat dissipation assembly is connected to the water cooling chamber 102.
[0021] In this embodiment, vulcanizing agent granules are poured from the feed hopper 105 into the connecting cylinder 101. The controller is activated to start the motor 109, which drives the connecting frame 108 to rotate the shaft 103. The spiral blades 104 propel the vulcanizing agent granules forward. The blowing assembly draws outside air into the connecting cylinder 101 for heat dissipation. A portion of the heat from the vulcanizing agent granules is transferred to the connecting cylinder 101. At this time, the heat dissipation assembly cools the connecting cylinder 101. This dual heat dissipation improves the efficiency of heat dissipation. By flipping the vulcanizing agent granules in this way, the heat dissipation time is reduced, which is beneficial to the production of vulcanizing agent granules.
[0022] Furthermore, the air inlet pipe 110 is connected to the connecting cylinder 101 and is located on one side of the connecting cylinder 101; the air inlet chamber 111 is connected to the air inlet pipe 110 and is located at one end of the air inlet pipe 110; the fan 112 is detachably connected to the air inlet chamber 111 and is located on the inner side wall of the air inlet chamber 111.
[0023] In this embodiment, the fan 112 draws outside air into the connecting cylinder 101 to dissipate heat from the vulcanizing agent particles, making it easier for staff to operate and use.
[0024] Furthermore, the filter network 113 is connected to the air inlet chamber 111 and is located on the outer wall of the air inlet chamber 111.
[0025] In this embodiment, the filter network 113 filters the air entering the air inlet chamber 111, preventing impurities from entering the connecting cylinder 101 and ensuring the production quality of the vulcanizing agent particles.
[0026] Furthermore, the water distribution chamber 116 is fixedly connected to the water cooling chamber 102 and is located on the inner top wall of the water cooling chamber 102; the circulation pump 114 is fixedly connected to the water cooling chamber 102 and is located on the inner bottom wall of the water cooling chamber 102; one end of the connecting pipe 115 is connected to the circulation pump 114 and is located at the output end of the circulation pump 114; the other end of the connecting pipe 115 is connected to the water distribution chamber 116 and is located on one side of the water distribution chamber 116.
[0027] In this embodiment, the circulating pump 114 is started to draw liquid from the water-cooled chamber 102 into the water distribution chamber 116, and then the liquid is dropped onto the outer wall of the connecting cylinder 101 through the holes on the water distribution chamber 116, so as to avoid the temperature inside the connecting cylinder 101 being too high and improve the efficiency of air cooling.
[0028] Furthermore, the inclined panel 117 is fixedly connected to the water-cooled chamber 102 and is located above the water-cooled chamber 102.
[0029] In this embodiment, the inclined panel 117 is used to collect liquid, prevent liquid leakage, and reduce cost expenditure.
[0030] The above-disclosed embodiments are merely preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art will understand that all or part of the processes for implementing the above embodiments, and equivalent variations made in accordance with the claims of this application, still fall within the scope of this application.
Claims
1. A granulation cooling device, comprising a connecting cylinder, characterized in that, It also includes a connecting unit, which is connected to the connecting cylinder; The connecting unit includes a water-cooled chamber, a rotating shaft, a spiral blade, a feed chamber, a discharge chamber, a mounting frame, a connecting frame, a motor, a blower assembly, and a heat dissipation assembly. The connecting cylinder is fixed to the water-cooled chamber and located on its inner wall. The rotating shaft is rotatably connected to the connecting cylinder and located on its inner wall. The mounting frame is fixedly connected to the connecting cylinder and located on one side of the connecting cylinder. The motor is fixedly connected to the mounting frame and located above it. The spiral blade is fixedly connected to the rotating shaft and located on the side of the rotating shaft. The outer wall of the connecting frame is provided, and the spiral blade is adapted to the connecting cylinder. One end of the connecting frame is fixedly connected to the motor and located at the output end of the motor. The other end of the connecting frame is fixedly connected to the rotating shaft and located at one end of the rotating shaft. The connecting frame and the connecting cylinder are rotatably engaged. The feeding chamber is connected to the connecting cylinder and located above the connecting cylinder. The discharging chamber is connected to the connecting cylinder and located on the outer wall of the connecting cylinder. The blowing assembly is disposed on one side of the connecting cylinder. The heat dissipation assembly is connected to the water cooling chamber.
2. The granulation cooling equipment as described in claim 1, characterized in that, The blower assembly includes an air inlet pipe, an air inlet chamber, and a fan. The air inlet pipe is connected to the connecting cylinder and is located on one side of the connecting cylinder. The air inlet chamber is connected to the air inlet pipe and is located at one end of the air inlet pipe. The fan is detachably connected to the air inlet chamber and is located on the inner side wall of the air inlet chamber.
3. The granulation cooling equipment as described in claim 2, characterized in that, The blower assembly also includes a filter network, which is connected to the air inlet chamber and located on the outer wall of the air inlet chamber.
4. The granulation cooling equipment as described in claim 3, characterized in that, The heat dissipation assembly includes a circulation pump, a connecting pipe, and a water distribution chamber. The water distribution chamber is fixedly connected to the water-cooling chamber and is located on the inner top wall of the water-cooling chamber. The circulation pump is fixedly connected to the water-cooling chamber and is located on the inner bottom wall of the water-cooling chamber. One end of the connecting pipe is connected to the circulation pump and is located at the output end of the circulation pump. The other end of the connecting pipe is connected to the water distribution chamber and is located on one side of the water distribution chamber.
5. The granulation cooling equipment as described in claim 4, characterized in that, The heat dissipation assembly also includes a sloping panel, which is fixedly connected to the water-cooling chamber and located above the water-cooling chamber.