A rubber processing cooling conveyor for auxiliary shaping

By designing a rubber processing cooling conveyor with a movable air outlet and baffle structure, the problem of fixed cooling range was solved, achieving uniform cooling and dispersion of raw materials, and improving cooling efficiency and shaping quality.

CN120002850BActive Publication Date: 2026-04-03JIANGSU XINZHIJIE RUBBER & PLASTIC MASCH MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The cooling range of the air outlet of the existing rubber processing cooling conveyor is fixed, resulting in poor cooling effect, easy adhesion of raw materials, and affecting the subsequent cooling and shaping.

Method used

Design a rubber processing cooling conveyor to assist in shaping. By moving the air outlet and baffle structure, combined with spiral vibration and air cooling, the raw materials at different locations can be uniformly cooled and dispersed to avoid sticking.

Benefits of technology

It improves cooling efficiency and effectiveness, ensures uniform distribution of raw materials, avoids deformation, and enhances the quality and production efficiency of subsequent cooling and shaping.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of cooling and conveying technology, specifically to a rubber processing cooling conveyor for auxiliary shaping. It includes a support base for mounting a shock-absorbing support mechanism, with the upper part of the shock-absorbing support mechanism connected to a feed tray. A spiral vibrating conveyor disc is fixed to the outer side of a column, and a spiral baffle is installed on the upper outer side of the spiral vibrating conveyor disc. A vibrating motor is connected to the upper part of the column. A blower is installed on the bearing plate on the left side of the support base. The blower's exhaust port is connected to the bottom surface of the column via a connecting pipe and a flexible hose, for conveying air to the spiral vibrating conveyor disc and the spiral baffle for cooling and auxiliary shaping. This rubber processing cooling conveyor for auxiliary shaping facilitates the blowing and cooling of raw materials at different positions on the spiral vibrating conveyor disc through the air outlet at the bottom of the cooling pipe, ensuring effective cooling and shaping of the raw materials and preventing them from sticking together and deforming.
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Description

Technical Field

[0001] This invention relates to the field of cooling and conveying technology, specifically to a cooling and conveying machine for rubber processing that assists in shaping. Background Technology

[0002] When processing rubber products, the raw materials need to be heated to a high temperature. Then, a vibrating cooling conveyor is used to transport the raw materials to the next processing step to facilitate continuous processing of rubber products and improve processing efficiency.

[0003] For example, the prior art patent with publication number "CN106915599A" entitled "A Diaphragm Film Spiral Cooling Conveyor" discloses that during operation, the sliced ​​diaphragm film enters the spiral conveyor plate through the feed end. The drive device drives the central cylinder to vibrate vertically. Through the vibration of the spiral conveyor plate, the lower layer of diaphragm film is gradually conveyed to the upper layer. The diaphragm film on the bottom spiral conveyor plate is water-cooled by cooling water nozzles, while the diaphragm film on the upper spiral conveyor plate is air-cooled by a blower to dry the water on the surface of the diaphragm film. An auxiliary cooling fan provides auxiliary air cooling for the diaphragm film on the spiral conveyor plate. Similarly, the prior art patent with publication number "CN211686937U" entitled "..." A vibrating screw conveyor feeding device discloses a horizontal pressure plate with one end hinged to one hinge support and the other end fixed to another hinge support by bolts. The bottom surface of the pressure plate is pressed tightly against the upper surface of a baffle. The baffle can be freely inserted or removed to open or close its outlet. The outer walls of each layer of screw conveying trough are fixedly connected by vertical support plates, which also serve to reinforce each layer of screw conveying. An air outlet is provided on the column along the direction of the screw conveying trough. A fan is flexibly connected to the bottom of the column through a pipe, which blows air into the column and cools the high-temperature material being conveyed through the air outlet. In order to better coordinate the relationship between sufficient material cooling and discharge height, the operator should first confirm the number of layers when the material has reached the required temperature, open the baffles in the outlets of that layer and above, and close the outlets below that layer. The material will be fully cooled while minimizing the lifting time and height to improve production efficiency. Appropriately closing the already opened outlets can reduce the discharge volume.

[0004] The existing rubber processing cooling conveyor in the above-mentioned technology cools the high-temperature materials being conveyed through the air outlet. Since the position of the air outlet is fixed, the cooling range of the air discharged from the outlet is also fixed, resulting in poor cooling effect. This causes the raw materials to easily stick together during screw conveying, which in turn affects the subsequent cooling and shaping operations. At the same time, the raw materials may accumulate during screw conveying, preventing them from being evenly distributed on the screw vibrating plate for screw conveying. Therefore, this will still affect the subsequent cooling and shaping, and affect the subsequent processing operations. Therefore, we propose a rubber processing cooling conveyor with auxiliary shaping function to solve the problems mentioned above. Summary of the Invention

[0005] The purpose of this invention is to provide a rubber processing cooling conveyor for auxiliary shaping, in order to solve the problem mentioned in the background art that the cooling range of the air discharged from the air outlet of the current rubber processing cooling conveyor is fixed, resulting in poor cooling effect and causing raw materials to easily stick together during screw conveying, which in turn affects the subsequent cooling and shaping operation.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a rubber processing cooling conveyor for auxiliary shaping, comprising a support base for mounting a bearing and shock-absorbing support mechanism, wherein the upper part of the shock-absorbing support mechanism is connected to a feeding tray, a column is fixedly fixed through the inside of the feeding tray, and a spiral vibrating conveyor is fixedly fixed to the outside of the column, a spiral baffle is installed on the upper outer side of the spiral vibrating conveyor, a vibrating motor is connected to the upper part of the column, a blower is installed on the bearing base plate on the left side of the support base, the exhaust port of the blower is connected to the bottom surface of the column through a connecting pipe and a hose, for conveying air to the spiral vibrating conveyor and the spiral baffle for cooling and auxiliary shaping, a self-control rod is installed on the outside of the column, a baffle is connected to the outside of the self-control rod, and a spirally distributed cooling pipe is installed through the outer side of the column.

[0007] Preferably, a discharge pipe connected to the upper end of the spiral vibrating conveyor is installed on the upper outer side of the column. The inside of the column is provided with a first receiving groove and a second receiving groove, both of which are circular. The second receiving groove is provided on the outer side of the first receiving groove. The bottom surface of the first receiving groove is open, while the bottom surface of the second receiving groove is closed. The flexible hose above the connecting pipe is inserted into the second receiving groove. The highest point of the second receiving groove, which is used to temporarily store air, is higher than the highest point of the first receiving groove. A spiral conveying through hole is provided on the outer side of the column.

[0008] Preferably, the interiors of the spiral vibrating conveyor and the spiral baffle are both hollow and interconnected, and the air in the second receiving groove is conveyed to the spiral vibrating conveyor through the conveying through hole. Furthermore, the bottom surface of the spiral vibrating conveyor and the inner sidewall of the spiral baffle are both provided with discharge through holes.

[0009] Preferably, a fixing rod is fixed in the middle of the support base, the upper end of the fixing rod is inserted into the first receiving groove, and fixing inclined blocks are installed in a spiral pattern on the outer side of the fixing rod. The upper surface of the fixing inclined blocks is inclined, and a rack assembly is installed on the outer side of the fixing rod.

[0010] Preferably, the lower surface of the cooling pipe is provided with an air inlet and an air outlet. The air inlet is located in the second receiving groove, and the air outlet is located on the outside of the column. A return spring is nested and connected to the outside of the end of the cooling pipe near the fixed rod. A fixed inclined block is correspondingly provided below the end of the cooling pipe near the fixed rod that is spherically shaped. The cooling pipe forms a horizontal reciprocating moving structure through the fixed inclined block.

[0011] Preferably, a sliding ring is slidably connected to the outer side of the self-control rod, a blocking plate is fixed to the outer side of the sliding ring, and a transmission gear is installed on the outer side of the end of the self-control rod near the column, the transmission gear meshing with the rack assembly.

[0012] Preferably, a rake-shaped distributing assembly is installed on the bottom surface of the baffle plate.

[0013] Preferably, a fixed sleeve is installed on the outside of the self-control rod, and a slot is opened inside the fixed sleeve to place a configuration ball. A movable rod is slidably connected through one end of the fixed sleeve. A connecting spring is nested on the outside of the movable rod and set inside the fixed sleeve. Two connecting control rods are connected to the outer end of the movable rod through a movable shaft. The outer end of the connecting control rod is connected to two adjacent blocking plates through a movable shaft.

[0014] Preferably, two adjacent blocking plates are connected by a control rod to form a structure that moves in opposite directions.

[0015] Preferably, the lower outer side of the spiral vibrating conveyor is connected to the spiral base plate via a spiral rubber belt, and the upper surface of the spiral base plate is connected to the spiral vibrating conveyor via a support spring. The inner sidewall of the spiral base plate is in close contact with the outer side of the column, and a discharge through hole is also provided on the bottom surface of the spiral base plate.

[0016] Compared with the prior art, the beneficial effects of the present invention are: the auxiliary shaping rubber processing cooling conveyor facilitates the air outlet at the bottom of the cooling pipe to blow air and cool the raw materials at different positions on the spiral vibrating conveyor disc, which facilitates the cooling and shaping of the raw materials and avoids the raw materials from sticking together and deforming. The specific details are as follows:

[0017] While the column drives the spiral vibrating conveyor and the spiral baffle to vibrate up and down, the fixed inclined block can push the cooling pipe to move outward in a reciprocating manner, so that the cooling pipe slides back and forth. This makes it easier for the air outlet on the bottom of the cooling pipe to blow air to cool the raw materials at different positions on the spiral vibrating conveyor, so that the raw materials can be cooled and shaped well, and avoid the raw materials sticking together and deforming.

[0018] Furthermore, the interiors of the spiral baffle and the spiral vibrating conveyor are hollow, allowing the gas in the second accommodating groove to enter the spiral vibrating conveyor and the spiral baffle through the conveying through hole. Later, the gas is blown out through the discharge through hole on the inner wall of the spiral baffle and the discharge through hole on the bottom surface of the spiral vibrating conveyor, thus further improving the cooling efficiency and effect, facilitating the cooling and shaping of raw materials, and thereby improving the conveying efficiency.

[0019] While the column drives the spiral vibrating conveyor and the spiral baffle to vibrate up and down, the rack and pinion assembly automatically drives the self-control rod and the baffle to rotate. This can limit and block the raw materials conveyed on the spiral vibrating conveyor, and prevent the raw materials conveyed on the spiral vibrating conveyor from accumulating too high and affecting the cooling and shaping effect in the later stage.

[0020] Furthermore, the self-control rod drives the fixed sleeve to rotate together, so that the ball inside the fixed sleeve applies an outward pushing force to the moving rod. Therefore, the moving rod, in conjunction with the connecting control rod, pushes the two adjacent blocking plates to move towards each other. This allows the blocking plates to drive the bottom distributing assembly to push some of the raw materials on the spiral vibrating conveyor to both sides, thereby improving the uniformity of the raw material distribution on the spiral vibrating conveyor and avoiding affecting the subsequent cooling and shaping effect.

[0021] (3) When the spiral vibrating conveyor plate swings up and down, the support spring can further drive the spiral base plate to swing up and down, thereby adjusting the distance between the spiral base plate and the spiral vibrating conveyor plate below, so that the air in the spiral base plate can be blown to the raw material on the spiral vibrating conveyor plate through the exhaust hole on the bottom surface in a shorter distance, thereby further improving the cooling effect and efficiency, so that the rubber processing cooling conveyor can cool and shape the raw material while performing spiral conveying operation. Attached Figure Description

[0022] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0023] Figure 2 This is a schematic diagram of the main structure of the present invention;

[0024] Figure 3 This is a schematic diagram of the three-dimensional structure of the column of the present invention;

[0025] Figure 4For the present invention Figure 3 Enlarged structural diagram at point A in the middle;

[0026] Figure 5 This is a partial top sectional view of the column structure of the present invention;

[0027] Figure 6 This is a schematic diagram of a partial main sectional view of the column of the present invention;

[0028] Figure 7 This is a bottom view of the cooling pipe structure of the present invention;

[0029] Figure 8 This is a schematic diagram of the three-dimensional structure of the self-control lever of the present invention;

[0030] Figure 9 This is a schematic diagram of the top sectional view of the fixed sleeve structure of the present invention;

[0031] Figure 10 This is a schematic diagram of the separation structure of the spiral vibrating conveyor disk and the column of the present invention;

[0032] Figure 11 This is a bottom view of the spiral vibrating conveyor plate of the present invention;

[0033] Figure 12 This is a schematic cross-sectional view of the spiral vibrating conveyor disc of the present invention;

[0034] Figure 13 This is a schematic diagram of the three-dimensional structure of the spiral vibrating conveyor disk in Embodiment 2 of the present invention;

[0035] Figure 14 For the present invention Figure 13 Enlarged structural diagram at point B.

[0036] In the diagram: 1. Support base; 2. Shock-absorbing support mechanism; 3. Feeding tray; 4. Column; 41. First receiving groove; 42. Second receiving groove; 43. Conveying through hole; 5. Spiral vibrating conveyor; 6. Spiral baffle; 7. Discharge pipe; 8. Vibrating motor; 9. Bearing base plate; 10. Blower; 11. Fixed rod; 111. Rack assembly; 112. Fixed inclined block; 12. Self-control rod; 121. Transmission gear; 122. Sliding ring; 13. Cooling pipe; 131. Air inlet; 132. Air outlet; 133. Return spring; 14. Baffle plate; 15. Dividing assembly; 16. Fixed sleeve; 161. Configuration ball; 162. Moving rod; 163. Connecting spring; 17. Connecting control rod; 18. Discharge through hole; 19. Spiral rubber belt; 20. Spiral base plate; 21. Support spring; 22. Connecting pipe. Detailed Implementation

[0037] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0038] Please see Figures 1-14 The present invention provides the following technical solution:

[0039] Example 1: The rubber processing cooling conveyor in this example can blow air to different positions through the movable air outlet 132, and at the same time, it can help to evenly disperse the raw materials conveyed on the spiral vibrating conveyor disc 5, thereby improving the cooling effect of the raw materials, so as to facilitate the auxiliary shaping of the raw materials and prevent them from sticking together and deforming. For the specific structure, please refer to the attached document. Figures 1-12 As shown, the system includes a support base 1 for mounting a shock-absorbing support mechanism 2, with the upper part of the shock-absorbing support mechanism 2 connected to a feeding disc 3. A column 4 is fixedly fixed inside the feeding disc 3, and a spiral vibrating conveyor disc 5 is fixed to the outer side of the column 4. A spiral baffle 6 is installed on the upper outer side of the spiral vibrating conveyor disc 5. A vibration motor 8 is connected to the upper part of the column 4. A blower 10 is installed on the bearing base plate 9 on the left side of the support base 1. The exhaust port of the blower 10 is connected to the bottom surface of the column 4 through a connecting pipe 22 and a hose to deliver air to the spiral vibrating conveyor disc 5 and the spiral baffle 6 for cooling and auxiliary shaping. A self-control rod 12 is installed on the outer side of the column 4, and a baffle plate 14 is connected to the outer side of the self-control rod 12. A spirally distributed cooling pipe 13 is installed through the outer side of the column 4. A discharge pipe 7 connected to the upper end of the spiral vibrating conveyor disc 5 is installed on the upper outer side of the column 4. The inside of the column 4 has a first receiving groove 41 and a second receiving groove 42, both of which are circular. A second receiving groove 42 is provided on the outside of the first receiving groove 41. The bottom surface of the first receiving groove 41 is open, while the bottom surface of the second receiving groove 42 is closed. The flexible hose above the connecting pipe 22 is inserted into the second receiving groove 42. The highest point of the second receiving groove 42, which is used for temporary air storage, is higher than the highest point of the first receiving groove 41. A spiral conveying through hole 43 is opened on the outer side of the column 4. The interiors of the spiral vibrating conveying disc 5 and the spiral baffle 6 are both hollow and interconnected. The air in the trough 42 is conveyed to the spiral vibrating conveyor plate 5 through the conveying through hole 43. The bottom surface of the spiral vibrating conveyor plate 5 and the inner side wall of the spiral baffle 6 are both provided with discharge through holes 18. A fixing rod 11 is fixed in the middle of the support base 1. The upper end of the fixing rod 11 is inserted into the first receiving groove 41. Fixing inclined blocks 112 are installed in a spiral pattern on the outer side of the fixing rod 11. The upper surface of the fixing inclined blocks 112 is inclined. A rack assembly 111 is installed on the outer side of the fixing rod 11.

[0040] The lower surface of the cooling pipe 13 has an air inlet 131 and an air outlet 132. The air inlet 131 is located in the second receiving groove 42, and the air outlet 132 is located on the outside of the column 4. A return spring 133 is nested and connected to the outer side of the end of the cooling pipe 13 near the fixed rod 11. A fixed inclined block 112 is correspondingly provided below the end of the cooling pipe 13 near the fixed rod 11 and which is spherically arranged. The cooling pipe 13 forms a horizontal reciprocating movement structure through the fixed inclined block 112. A sliding ring 122 is engaged and slidably connected to the outer side of the self-control rod 12. A baffle plate 14 is fixed to the outer side of the sliding ring 122. A transmission gear 121 is installed on the outer side of the end of the self-control rod 12 near the column 4. 21 is engaged with the rack assembly 111. A rake-shaped distributing assembly 15 is installed on the bottom surface of the baffle plate 14. A fixed sleeve 16 is installed on the outside of the self-control rod 12. A slot is cut inside the fixed sleeve 16 to place a ball 161. A movable rod 162 is slidably connected through one end of the fixed sleeve 16. A connecting spring 163 is nested on the outside of the movable rod 162 and is set inside the fixed sleeve 16. Two connecting control rods 17 are connected to the outer end of the movable rod 162 through a movable shaft. The outer end of the connecting control rod 17 is connected to two adjacent baffle plates 14 through a movable shaft. The two adjacent baffle plates 14 form a counter-moving structure through the connecting control rods 17.

[0041] First, the raw materials are poured into the feeding tray 3. Then, the vibration motor 8 is started. The excitation force generated by the vibration motor 8 drives the column 4, the spiral vibrating conveyor 5, the spiral baffle 6, and the feeding tray 3 to vibrate up and down together. At this time, the vibration damping support mechanism 2 can ensure the stable up and down reciprocating vibration of the feeding tray 3, so that the raw materials in the feeding tray 3 are spirally conveyed upward through the spiral vibrating conveyor 5 and discharged through the discharge pipe 7. At the same time, the blower 10 is started. The blower 10 delivers the outside air to the second receiving tank 42 through the connecting pipe 22 and the hose. Then, the air in the second receiving tank 42 enters the spiral vibrating conveyor 5 through the spirally distributed conveying through holes 43. The air in the spiral vibrating conveyor 5 then enters the spiral baffle 6. Then, the air in the spiral vibrating conveyor 5 is blown downward through the discharge through hole 18 on the bottom surface. The air in the spiral baffle 6 is blown inward through the discharge through hole 18 on the inner wall, thus effectively cooling the raw materials on the spiral vibrating conveyor 5 to aid in shaping.

[0042] Simultaneously, when the column 4 moves the cooling pipe 13 downward, the inclined block 112 on the upper surface applies an outward pushing force to the spherical inner end of the cooling pipe 13. At this time, the cooling pipe 13 moves outward through the column 4. The return spring 133 stores energy, and then part of the air in the second receiving groove 42 enters the cooling pipe 13 through the air inlet 131 and is blown out through the air outlet 132. When the column 4 moves the cooling pipe 13 upward, the cooling pipe 13 automatically moves inward to reset due to the stored energy of the return spring 133. This operation is repeated so that when the cooling pipe 13 moves horizontally in reciprocating motion, the air can be blown to different positions through the air outlet 132. Therefore, the cooling efficiency and effect of the cooling conveyor can be further improved, which is convenient for auxiliary cooling and shaping of the conveyed raw materials.

[0043] Simultaneously, when the column 4 drives the self-control rod 12 to vibrate up and down, the transmission gear 121 on the outer side of one end of the self-control rod 12 will rotate through the rack assembly 111. The self-control rod 12 drives the blocking plate 14 to rotate and tilt through the sliding ring 122, making the distance between the end of the blocking plate 14 away from the sliding ring 122 and the corresponding spiral vibrating conveyor plate 5 below smaller. This allows the blocking plate 14 to block some of the raw materials on the spiral vibrating conveyor plate 5, preventing the raw materials on the spiral vibrating conveyor plate 5 from accumulating too much and affecting the subsequent cooling and shaping effect. At the same time, when the blocking plate 14 rotates and tilts, the fixing sleeve 16 also tilts, fixing... The ball 161 inside the sleeve 16 exerts pressure on the moving rod 162 due to its own weight, causing the moving rod 162 to move outward automatically. The moving rod 162 pushes the connecting control rod 17 connected to the movable shaft, causing the two sets of connecting control rods 17 to drive the two adjacent baffle plates 14 to move towards each other. The baffle plates 14 drive the bottom distribution assembly 15 to move, thereby further distributing the raw materials on the spiral vibrating conveyor 5 to both sides through the distribution assembly 15, so as to improve the uniformity of the distribution of raw materials on the spiral vibrating conveyor 5 and avoid affecting the subsequent cooling and shaping effect, so as to enable the rubber processing cooling conveyor to perform vibration conveying operations well.

[0044] Example 2: The auxiliary shaping rubber processing cooling conveyor in this example can shorten the blowing distance and further improve the air cooling effect and efficiency by controlling the distance between the spiral base plate 20 and the corresponding spiral vibrating conveyor plate 5 below. See attached diagram for the specific structure. Figures 13-14As shown, the lower outer side of the spiral vibrating conveyor 5 is connected to the spiral base plate 20 via a spiral rubber belt 19, and the upper surface of the spiral base plate 20 is connected to the spiral vibrating conveyor 5 via a support spring 21. The inner sidewall of the spiral base plate 20 is in close contact with the outer side of the column 4, and a discharge through hole 18 is also provided on the bottom surface of the spiral base plate 20. Since the bottom surface of the spiral vibrating conveyor 5 is connected to the spiral base plate 20 via the support spring 21 and the spiral rubber belt 19, when the spiral vibrating conveyor 5 swings up and down, the spiral base plate 20 will also swing up and down via the spiral rubber belt 19 and the support spring 21. The spiral base plate 20 moves vertically, and its vertical swaying amplitude is greater than that of the spiral vibrating conveyor disc 5. Therefore, the distance between the spiral base plate 20 and the corresponding spiral vibrating conveyor disc 5 is smaller when the spiral base plate 20 moves downward. This allows the air inside the spiral base plate 20 to blow onto the raw material on the spiral vibrating conveyor disc 5 over a shorter distance. At the same time, the reciprocating vertical swaying of the spiral base plate 20 also improves the airflow of the surrounding air. This repeated operation further improves the cooling effect and efficiency, allowing the rubber processing cooling conveyor to cool and shape the raw material while simultaneously performing spiral conveying operations, thus completing a series of tasks.

[0045] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A rubber processing cooling conveyor for auxiliary shaping, comprising a support base (1) for mounting a bearing shock-absorbing support mechanism (2), wherein the upper part of the shock-absorbing support mechanism (2) is connected to a feed pan (3), a column (4) is fixedly fixed through the inside of the feed pan (3), and a spiral vibrating conveyor (5) is fixedly fixed to the outside of the column (4), and a spiral baffle (6) is installed on the upper outer side of the spiral vibrating conveyor (5), characterized in that: A vibration motor (8) is connected to the top of the column (4). A blower (10) is installed on the bearing base plate (9) on the left side of the support base (1). The exhaust port of the blower (10) is connected to the bottom surface of the column (4) through a connecting pipe (22) and a hose to deliver air to the spiral vibration conveyor plate (5) and the spiral baffle (6) for cooling and auxiliary shaping. A self-control rod (12) is installed on the outside of the column (4). A baffle plate (14) is connected to the outside of the self-control rod (12). A spirally distributed cooling pipe (13) is installed through the outer side of the column (4). A solid is fixed in the middle of the support base (1). The upper end of the fixed rod (11) is inserted into the first receiving groove (41), and the outer side of the fixed rod (11) is equipped with a fixed inclined block (112) in a spiral shape. The upper surface of the fixed inclined block (112) is inclined, and a rack assembly (111) is installed on the outer side of the fixed rod (11). The outer side of the self-control rod (12) is engaged and slidably connected with a sliding ring (122). A blocking plate (14) is fixed on the outer side of the sliding ring (122). A transmission gear (121) is installed on the outer side of the self-control rod (12) near the column (4). The transmission gear (121) meshes with the rack assembly (111).

2. The rubber processing cooling conveyor for auxiliary shaping according to claim 1, characterized in that: The upper outer side of the column (4) is equipped with a discharge pipe (7) that communicates with the upper end of the spiral vibrating conveyor (5). The inside of the column (4) is provided with a first receiving groove (41) and a second receiving groove (42) that are both circular. The second receiving groove (42) is provided on the outer side of the first receiving groove (41). The bottom surface of the first receiving groove (41) is open, while the bottom surface of the second receiving groove (42) is closed. The flexible hose above the connecting pipe (22) is inserted into the second receiving groove (42). The highest point of the second receiving groove (42) used for temporary air storage is higher than the highest point of the first receiving groove (41). The outer side of the column (4) is provided with a spiral conveying through hole (43).

3. The rubber processing cooling conveyor for auxiliary shaping according to claim 1, characterized in that: The interiors of the spiral vibrating conveyor (5) and the spiral baffle (6) are both hollow and interconnected. The air in the second receiving groove (42) is transported to the spiral vibrating conveyor (5) through the conveying through hole (43). The bottom surface of the spiral vibrating conveyor (5) and the inner side wall of the spiral baffle (6) are both provided with discharge through holes (18).

4. The rubber processing cooling conveyor for auxiliary shaping according to claim 1, characterized in that: The lower surface of the cooling pipe (13) is provided with an air inlet (131) and an air outlet (132). The air inlet (131) is located in the second receiving groove (42), and the air outlet (132) is located on the outside of the column (4). A return spring (133) is nested on the outside of the end of the cooling pipe (13) near the fixed rod (11). A fixed inclined block (112) is correspondingly provided below the end of the cooling pipe (13) near the fixed rod (11) and arranged in a spherical shape. The cooling pipe (13) forms a horizontal reciprocating moving structure through the fixed inclined block (112).

5. A rubber processing cooling conveyor for auxiliary shaping according to claim 1, characterized in that: The bottom surface of the baffle plate (14) is equipped with a rake-shaped distributing assembly (15).

6. The rubber processing cooling conveyor for auxiliary shaping according to claim 1, characterized in that: A fixed sleeve (16) is installed on the outside of the self-control rod (12). A slot is opened inside the fixed sleeve (16) to place a configuration ball (161). A movable rod (162) is slidably connected through one end of the fixed sleeve (16). A connecting spring (163) is nested on the outside of the movable rod (162) and is set inside the fixed sleeve (16). Two connecting control rods (17) are connected to the outer end of the movable rod (162) through a movable shaft. The outer end of the connecting control rod (17) is connected to two adjacent blocking plates (14) through a movable shaft.

7. A rubber processing cooling conveyor for auxiliary shaping according to claim 6, characterized in that: The two adjacent baffles (14) are connected by a control rod (17) to form a moving structure in opposite directions.

8. A rubber processing cooling conveyor for auxiliary shaping according to claim 3, characterized in that: The lower outer side of the spiral vibrating conveyor plate (5) is connected to the spiral base plate (20) via a spiral rubber belt (19), and the upper surface of the spiral base plate (20) is connected to the spiral vibrating conveyor plate (5) via a support spring (21). The inner side wall of the spiral base plate (20) is in close contact with the outer side of the column (4), and the bottom surface of the spiral base plate (20) is also provided with a discharge through hole (18).

Citation Information

Patent Citations

  • Screw type diaphragm film cooling conveyor

    CN106915599A

  • Vibration spiral lifting feeding device

    CN211686937U

  • Heat dissipation feeding device

    CN209141249U