Rubber regenerating, cooling and shaping device
By using a cooling method that combines a spray assembly and a fan in the rubber recycling cooling and shaping device, the problem of incomplete cooling of columnar parts was solved, achieving a rapid and uniform cooling effect and improving product quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2026-04-10
AI Technical Summary
In the prior art, columnar parts are transferred to subsequent processes before they are fully cooled after forming, resulting in the continuous action of residual internal heat, which causes uneven material shrinkage, deformation or stress concentration, affecting the dimensional accuracy and mechanical properties of the product.
A spray system is used to create a water mist on the surface of the parts. The evaporation of water absorbs heat, while a fan blows air to accelerate airflow. A buffer plate extends the residence time, creating a complementary cooling method to ensure that heat is fully dissipated.
This achieved rapid and uniform cooling of the parts, improved the dimensional accuracy and mechanical properties of the products, and ensured the effectiveness of cooling and shaping.
Smart Images

Figure CN224103333U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to rubber processing equipment technical field, concretely relates to a rubber regeneration cooling and setting device. BACKGROUND
[0002] In the production process of rubber products and columnar parts, cooling and setting is the key process to ensure the product size precision and performance stability. At present, the industry generally adopts the mode of conveying belt cooperating with fan cooling to carry out material transfer and cooling.
[0003] In the traditional processing technology, the columnar part is conveyed to the next process by the conveying belt after forming, and the heat dissipation is accelerated by the fan blowing from the side or the top of the conveying belt. Since the length of the conveying belt is limited, the columnar part is transferred to the subsequent process before being completely cooled, which causes the internal residual heat to continue to act, easily causes uneven material shrinkage, deformation or stress concentration and other problems, resulting in insufficient cooling, and thus directly affects the product size precision and mechanical properties. Therefore, we propose a rubber regeneration cooling and setting device to solve the above problems. SUMMARY
[0004] The utility model discloses in order to realize the above-mentioned purpose specifically adopts the following technical scheme:
[0005] A rubber regeneration cooling and setting device, comprising:
[0006] A conveying belt, first connecting plates are fixedly arranged on both sides of the feeding end of the conveying belt, and second connecting plates are fixedly arranged on both sides of the discharging end of the conveying belt;
[0007] Slow-feeding plates are fixedly arranged at the end of the second connecting plate, both of the slow-feeding plates are in a wave shape, the columnar part to be cooled is slidingly arranged between the two slow-feeding plates, and a material guide plate is connected between the end of the slow-feeding plate away from the second connecting plate and the first connecting plate;
[0008] A mounting cover is fixedly arranged on the top of the conveying belt, both ends of the mounting cover are in an open structure, and fans are installed on the outer wall of one side of the mounting cover at equal intervals;
[0009] A spraying assembly is arranged on the top of the mounting cover close to the feeding end of the conveying belt to spray the surface of the columnar part to be cooled.
[0010] Further, the spraying assembly comprises a water storage tank fixedly arranged on the top of the mounting cover, a water pump is installed in the water storage tank, a water outlet end of the water pump is connected with a flow guide pipe, and the end of the flow guide pipe away from the water pump penetrates through the mounting cover and is provided with an atomizing nozzle.
[0011] Further, each fan is opposite to the trough of the slow-feeding plate.
[0012] Further, the outer wall of the mounting cover is configured with a rectangular through hole opposite to the fan.
[0013] Further, the material guide plate is in a fold line shape.
[0014] Further, the surface of the material buffer plate is uniformly distributed with air holes.
[0015] Further, the spacing between the bottom of the material buffer plate and the belt surface of the conveying belt is greater than 3cm.
[0016] The beneficial effects of the present application are as follows:
[0017] The present application forms water mist on the surface of the part by setting the spray assembly, absorbs heat by using the evaporation effect of water, and realizes rapid cooling by taking away heat after the evaporation of water mist, and at the same time, the fan blowing accelerates the air flow rate on the surface of the part, prolongs the residence time by cooperating with the wave path of the material buffer plate, ensures sufficient heat, and forms complementation of water mist evaporation and forced air cooling, covers the surface and internal heat conduction of the part, realizes rapid and uniform cooling and shaping, and has high practicability. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is a three-dimensional structure schematic diagram of the present application;
[0019] Figure 2 is a top view structure schematic diagram of the present application;
[0020] Figure 3 is a three-dimensional structure schematic diagram of the present application Figure 2 is a A-A direction sectional view schematic diagram of the present application;
[0021] Figure 4 is a material buffer plate structure schematic diagram of the present application.
[0022] Reference signs: 1, conveying belt; 2, first connecting plate; 3, second connecting plate; 4, material buffer plate; 401, air hole; 5, material guide plate; 6, mounting cover; 601, rectangular through hole; 7, fan; 8, spray assembly; 801, water storage tank; 802, water pump; 803, flow guide pipe; 804, atomizing nozzle. DETAILED DESCRIPTION
[0023] In order to make the purpose, technical scheme and advantages of the embodiments of the present application more clear, the technical scheme in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application.
[0024] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below Figures 1-4 The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0025] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0026] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0027] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0028] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0029] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0030] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0031] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0032] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0033] The application provides a rubber regeneration cooling and shaping device, which is mainly used for solving the problems of uneven material shrinkage, deformation or stress concentration caused by the continuous effect of internal residual heat due to the fact that the columnar part is transferred to the subsequent process before being completely cooled because the length of the conveying belt is limited in the prior art, and the insufficient cooling problem, and provides the following technical scheme, which will be described in detail below
[0034] The rubber regenerative cooling and shaping device forms water mist on the surface of the part first by setting the spray assembly 8, absorbs heat by using the evaporation of water, takes away heat after the evaporation of water mist, realizes rapid cooling, and simultaneously, the fan 7 blows air to accelerate the air flow rate on the surface of the part, cooperates with the wave path of the slow-feeding plate 4 to prolong the residence time, ensures sufficient heat, and the evaporation of water mist and forced air cooling form complementation, covers the heat conduction of the surface and the inside of the part, realizes rapid and uniform cooling and shaping.
[0035] As shown in the figure, Figure 3 In some embodiments, the spray assembly 8 includes a water storage tank 801 fixed on the top of the mounting cover 6, a water pump 802 is installed in the inside of the water storage tank 801, a flow guide pipe 803 is connected to the water outlet of the water pump 802, and a misting nozzle 804 is installed at the end of the flow guide pipe 803 away from the water pump 802 and penetrates through the mounting cover 6. More specifically, after the water storage tank 801 is filled with water, the water pump 802 is started to send pressurized water to the misting nozzle 804 through the flow guide pipe 803, the water mist forms a fan-shaped mist curtain at the outlet of the nozzle, covering the columnar parts on the conveying belt 1 below, and the fan 7 on the side of the mounting cover 6 operates synchronously to accelerate the air flow, promote the evaporation of water mist and diffuse heat.
[0036] As shown in the figure, Figure 4 In some embodiments, each fan 7 is opposite to the trough of the slow-feeding plate 4, and more specifically, the slow-feeding plate 4 is designed in a wave shape, the wave crest (protruding part) and the wave trough (recessed part) are alternately distributed, the fan 7 is installed on the side outer wall of the mounting cover 6, and the center line of the air outlet of each fan 7 is vertically aligned with the trough of the slow-feeding plate 4. This design makes the high-speed airflow blown by the fan 7 directly impact the trough area, the recessed structure of the trough is similar to the “necked” design, when the airflow passes at high speed, the flow rate increases and the pressure decreases at the trough, forming a negative pressure area, further absorbing the surrounding air, enhancing the cooling effect, at the same time, when the fan 7 is opposite to the trough, the airflow is directly vertically blown to the columnar parts on the conveying belt 1, avoiding being blocked by the wave crest of the slow-feeding plate 4, and at the same time, the surface of the slow-feeding plate 4 at the trough is usually provided with air permeable holes 401, the airflow can penetrate the holes, forming a double cooling mechanism of “blowing + suction”.
[0037] As shown in the figure, Figure 1 In some embodiments, a rectangular through hole 601 is formed on the side of the outer wall of the mounting cover 6 opposite to the fan 7, and more specifically, the rectangular through hole 601 is located on the side of the outer wall of the mounting cover 6 opposite to the fan 7, that is, the high-speed airflow blown by the fan 7 is directly aligned with the through hole position, this design makes the airflow from the inside of the mounting cover 6 (cooling area) quickly exhaust to the outside environment through the through hole, forming an efficient “intake-exhaust” circulation.
[0038] As shown in the figure, Figure 4As shown, in some embodiments, the guide plates 5 are in the shape of a fold line, more specifically, the guide plates 5 are designed in a continuous fold line shape, which can stably guide the columnar parts into the slow feeding plates 4.
[0039] As shown, in some embodiments, the slow feeding plates 4 are designed in a fold line shape, more specifically, the slow feeding plates 4 are designed in a continuous fold line shape, which can stably guide the columnar parts into the slow feeding plates 4. Figure 3 As shown, in some embodiments, the spacing between the bottom of the slow feeding plates 4 and the belt surface of the conveying belt 1 is greater than 3 cm, more specifically, the vertical spacing between the bottom of the slow feeding plates 4 and the conveying belt 1 is greater than 3 cm, so that the cooling air flow can pass through above and below the slow feeding plates 4 at the same time, forming a three-dimensional cooling system, thereby significantly improving the cooling efficiency and uniformity.
[0040] The above description of disclosed embodiments enables those skilled in the art to carry out or use the present application. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to these embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A rubber reclaiming cooling and setting device, characterized by, Include: The conveying belt (1) is provided with a first connecting plate (2) on both sides of the feeding end, and a second connecting plate (3) is provided on both sides of the discharging end of the conveying belt (1); The slow feeding plate (4) is fixedly arranged at the end of the second connecting plate (3), both of the slow feeding plates (4) are wavy, the columnar parts to be cooled are arranged between the two slow feeding plates (4), and the end of the slow feeding plate (4) away from the second connecting plate (3) is connected with the guide plate (5) between the first connecting plate (2); The mounting cover (6) is fixedly arranged on the top of the conveying belt (1), both ends of the mounting cover (6) are open structures, and the outer wall of one side of the mounting cover (6) is provided with fans (7) at equal intervals; The spray assembly (8) is used for spraying the surface of the columnar parts to be cooled, and the spray assembly (8) is arranged on the top of the mounting cover (6) near the feeding end of the conveying belt (1).
2. A rubber reclaiming, cooling and setting device according to claim 1, characterized in that The spray assembly (8) includes a water storage tank (801) fixedly arranged on the top of the mounting cover (6), a water pump (802) is arranged in the water storage tank (801), a water outlet of the water pump (802) is connected with a flow guide pipe (803), and one end of the flow guide pipe (803) away from the water pump (802) penetrates through the mounting cover (6) and is provided with an atomizing nozzle (804).
3. A rubber reclaiming, cooling and setting device according to claim 1, characterized in that Each of the fans (7) is opposite to the trough of the slow feeding plate (4).
4. A rubber reclaiming, cooling and setting device according to claim 1, characterized in that The outer wall of the mounting cover (6) opposite to the fan (7) is provided with a rectangular through hole (601).
5. A rubber reclaiming, cooling and setting device according to claim 1, characterized in that The guide plate (5) is in the shape of a broken line.
6. A rubber reclaiming, cooling and setting device according to claim 1, characterized in that The surface of the slow feeding plate (4) is uniformly provided with air holes (401).
7. A rubber reclaiming cooling and setting device according to claim 1, wherein The spacing between the bottom of the slow feeding plate (4) and the belt surface of the conveying belt (1) is greater than 3cm.