Material conveying device for thermal insulation material processing equipment

By designing a material conveying device for thermal insulation material processing equipment and using a combination of an air pressure box and rollers, the problem of static electricity sticking to foam raw materials during the conveying process was solved, thus achieving efficient raw material removal and conveying.

CN119911607BActive Publication Date: 2025-09-19DEZHOU DOUSHENG BUILDING MATERIALS CO LTD
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Patent Information

Application Number
CN202510328930.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-19
Publication Date
2025-09-19
Estimated Expiration
2045-03-19

AI Technical Summary

Technical Problem

During the transportation process, foam raw materials generate static electricity due to friction, which causes stickiness and affects the feeding efficiency.

Method used

A material conveying device for thermal insulation material processing equipment is designed, which includes a bracket, a conveyor belt, an adjustment mechanism, a containing component and a control component. The displacement of the conveyor belt and the flipping of the containing box are achieved through the cooperation of the air pressure box and the roller, and high-pressure gas is used to remove sticky raw materials.

Benefits of technology

It effectively reduces the stickiness of raw materials, ensures the continuous processing efficiency of the equipment, avoids the dispersion of raw materials and air flow disturbance, and ensures the orderliness of transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of thermal insulation material transmission equipment, and discloses a material transmission device for thermal insulation material processing equipment, including a bracket, four driving rods rotatably connected to the inner wall of the bracket, a motor fixedly connected to the side wall of the bracket, and a transmission belt driving a containing box and a containing component to move through a fixed block. When the roller reaches the inclined surface position, as the thickness of the track continues to increase, the distance between the air pressure box and the roller is reduced, so that the gas in the air pressure box, the L-shaped transmission pipe and the bottom space of the load-bearing plate is converted to high pressure. When the roller reaches the protruding block position, the side wall of the fixed bracket contacts the side wall of the pressure plate, and the pressure plate drives the sliding block one to slide outward along the inner wall of the through-hole groove through the fixed block two, so that a gap is formed between the exhaust groove and the through-hole groove, and the high-pressure gas at the bottom of the load-bearing plate will be ejected outward through the above gap to clear the raw materials stuck to the inside of the containing box.
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Description

Technical Field

[0001] The present invention relates to the technical field of thermal insulation material transmission equipment, in particular to a material transmission device for thermal insulation material processing equipment. Background Art

[0002] Thermal insulation materials are materials with a thermal coefficient less than or equal to 0.12. There are many types and each has its own characteristics. The wide application of these materials in industry and construction is of great significance for improving energy utilization efficiency, reducing energy consumption and improving the living environment. There are many types of thermal insulation materials. According to their composition, they can be divided into two categories: organic thermal insulation materials and inorganic thermal insulation materials. Organic thermal insulation materials include polyurethane foam, polystyrene board and phenolic foam, etc. Inorganic thermal insulation materials include rock wool, glass wool, aluminum silicate wool, etc.

[0003] Among them, foam raw materials (EPS) often need to be transported to the inside of the extruder through transmission equipment before processing. Most of the time, a large bag of raw materials is lifted into the feeder by a crane, and then the bag is opened to complete the feeding. However, the above method is difficult to achieve long-term and effective feeding. If an auger or conveyor belt method is used, the foam raw materials (EPS) will generate static electricity due to friction, resulting in stickiness and affecting the feeding efficiency. To address the above problems, the following solutions are proposed. Summary of the Invention

[0004] To solve the above technical problems, the present invention provides a material transmission device for thermal insulation material processing equipment, comprising a bracket, four drive rods rotatably connected to the inner wall of the bracket, a motor fixedly connected to the side wall of the bracket, and a transmission belt sleeved on the outer wall of the four drive rods;

[0005] The adjusting mechanism includes a containing box, a limiting rod, a track, and a fixing block that drives the containing box to move, and discharges the containing components remaining inside the containing box;

[0006] The outer walls of several fixed blocks are fixedly connected to the outer walls of the conveyor belt, and the ends of several fixed blocks away from the conveyor belt are fixedly connected to the receiving box. The side walls of the bracket are rotatably connected to the outer walls of the limiting rod, the outer walls of the limiting rod are rotatably connected to the outer walls of the conveyor belt, and the inner walls of the bracket are fixedly connected to the outer walls of the track.

[0007] Preferably, the accommodating component includes an inclined surface provided on the side wall of the track, a protruding block is fixedly connected to one end of the track away from the motor, and a sliding groove is provided on the outer wall of the track.

[0008] Preferably, the container assembly further comprises a bearing plate fixedly connected to the inner wall of the container box, a pressure box fixedly connected to the side wall of the container box, a telescopic tube extending through the bottom of the container box, a fixed bracket fixedly connected to the inner wall of the telescopic tube away from the pressure box, a roller rotatably connected to the inner wall of the fixed bracket, the outer wall of the roller rotatably connected to the inner wall of the first chute, and a control assembly provided on the inner wall of the container box. Before use, the bracket is installed in the desired position to ensure that the external raw materials can enter the container box, and the motor is powered on. The motor forces the conveyor belt to perform the conveying process via the drive rod. During this process, the conveyor belt drives the container box and the container assembly to move via the first fixed block, and the roller rolls along the inner wall of the first chute. When the conveyor belt reaches the inclined surface, the roller rolls along the inner wall of the first chute. When the thickness of the track increases, the distance between the pressure box and the roller decreases, causing the telescopic tube to contract. At this time, the gas inside the telescopic tube is compressed, causing the gas in the pressure box, the L-shaped transmission tube, and the bottom space of the bearing plate to be converted to a high pressure. When the gas reaches the protruding block, the gas pressure reaches a maximum.

[0009] Preferably, the containing assembly also includes a one-way air inlet valve connected through the side wall of the air pressure box, a spring 1 is fixedly connected to the inner wall of the air pressure box, the end of the spring 1 away from the air pressure box is fixedly connected to the inner wall of the telescopic tube, an L-shaped transmission tube is connected through the side wall of the air pressure box, the end of the L-shaped transmission tube away from the air pressure box is connected through the side wall of the containing box, and the characteristic of the conveyor belt driving the circulatory transmission of the containing assembly and the control assembly is utilized. A one-way air inlet valve and spring 1 are arranged inside the equipment. After the equipment completes the high-pressure clearing process, the spring 1 will release the compressed force, so that the spring 1 can drive the telescopic tube to extend.

[0010] Preferably, the control component also includes a second slide groove opened on the inner wall of the containing box, a sliding baffle is slidably connected to the inner wall of the slide groove, and a pressure plate is fixedly connected to the side wall of the sliding baffle. Utilizing the characteristic that the pressure plate slides along the inner wall of the sliding baffle, a second slide groove and a sliding baffle are provided inside the equipment. When the pressure plate is restricted by the protruding block and slides up and down, the moving pressure plate will drive the synchronous displacement along the inner wall of the slide groove. During the movement of the sliding baffle, the sliding baffle can always block the through hole at the side wall of the containing box to ensure the integrity of the inner wall of the containing box during operation, and avoid the airflow being disturbed due to the incompleteness of the inner wall of the containing box when high-pressure gas is ejected outward, and the disturbed airflow will cause the scattered raw materials to spread around, affecting the efficiency of the equipment in discharging residual raw materials.

[0011] Preferably, the control component also includes a fixed block 2 fixedly connected to the side of the sliding baffle away from the pressure plate, a spring 2 is fixedly connected to the top of the sliding baffle, and the end of the spring 2 away from the sliding baffle is fixedly connected to the inner wall of the sliding groove 2.

[0012] Preferably, the control component also includes a through-hole groove provided on the top of the load-bearing plate, and a sliding block 1 is slidably connected to the inner wall of the through-hole groove, and an exhaust groove is provided on the side wall of the sliding block 1. An auxiliary component is fixedly connected to the inner wall of the pressure plate. When the roller reaches the position of the protruding block, the containing box is flipped over, so that the raw materials inside the containing box are poured out, and the roller will drive the fixed bracket to move in the direction toward the air pressure box, so that the side wall of the fixed bracket contacts the side wall of the pressure plate, and the pressure plate drives the sliding block 1 to slide outward along the inner wall of the through-hole groove through the fixed block 2, so that a gap is formed between the exhaust groove and the through-hole groove, and the high-pressure gas at the bottom of the load-bearing plate will be ejected outward through the above gap to clear the raw materials stuck to the inside of the containing box. Through the application of the above components, the stickiness of the raw materials can be reduced while the equipment achieves continuous processing.

[0013] Preferably, the auxiliary component includes a hydraulic box fixedly connected to the inner wall of the pressure plate, a sliding block 2 is slidably connected to the inner wall of the hydraulic box, a spring 3 is fixedly connected to the outer wall of the sliding block 2, one end of the spring 3 away from the sliding block 2 is fixedly connected to the inner wall of the pressure plate, and a U-shaped block is fixedly connected to the side wall of the accommodating box.

[0014] Preferably, the auxiliary component also includes a transmission tube 1 that is connected to the side wall of the hydraulic box, the top of the transmission tube 1 is connected to the transmission tube 2, the inner wall of the pressure plate is fixedly connected to a hydraulic telescopic rod, and the end of the transmission tube 2 away from the transmission tube 1 is connected to the inner wall of the hydraulic telescopic rod. The characteristic of the pressure plate driving the sliding block 1 to move upward along the inner wall of the through-hole groove is utilized, and an auxiliary component is provided inside the equipment. When high-pressure air pressure is generated at the bottom of the load-bearing plate, the thrust generated by the high-pressure gas will force the sliding block 1 to have a tendency to move outward, and in this process, the plane of the sliding block will always be in contact with the protruding block on the inner wall of the U-shaped block, thereby limiting the upward movement of the pressure plate, and the limitation of the pressure plate will also limit the upward movement of the fixed block 2 and the sliding block 1.

[0015] Preferably, the auxiliary component also includes a sliding block slidably connected in the groove of the pressure plate, and the other end of the hydraulic telescopic rod is fixedly connected to the side wall of the sliding block, and an arc block is provided on the side wall of the sliding block. When the fixed bracket moves toward the pressure plate, the outer wall of the fixed bracket will contact the side wall of the sliding block 2, forcing the sliding block 2 to slide along the inner wall of the hydraulic box, so that the solution inside the hydraulic box is transmitted to the hydraulic telescopic rod through the transmission pipe 1 and the transmission pipe 2, forcing the hydraulic telescopic rod to extend, and the extended hydraulic telescopic rod will drive the sliding block to contract along the inner wall of the pressure plate, so that the sliding block loses contact with the inner wall of the U-shaped block, and the sliding block 1 is no longer restricted, and the high-pressure gas at the bottom of the load-bearing plate is sprayed outward. Through the application of the above-mentioned components, it is avoided that during use of the equipment, the high-pressure gas forces the sliding block 1 to slide upward along the inner wall of the through-hole groove, affecting the formation of high pressure of the equipment.

[0016] The present invention has the following beneficial effects:

[0017] (1) The present invention addresses the problem of raw materials being adsorbed due to static electricity. An adjustment mechanism and a containing assembly are provided inside the device. Before use, the bracket is installed in the desired position to ensure that the external raw materials can enter the containing box. The motor is powered on, and the motor forces the conveyor belt to perform the conveying process through the driving rod. During this process, the conveyor belt drives the containing box and the containing assembly to move through the fixed block 1, and the roller rolls along the inner wall of the slide 1. When the inclined surface position is reached, as the thickness of the track continues to increase, the distance between the air pressure box and the roller is reduced, causing the telescopic tube to contract. At this time, the gas inside the telescopic tube is compressed, causing the air pressure box, the L-shaped transmission tube and the load-bearing plate to move. The gas in the bottom space is converted to high pressure, and when it reaches the position of the protruding block, the air pressure reaches the maximum; when the roller reaches the position of the protruding block, the containing box is flipped over, causing the raw materials inside the containing box to pour out, and the roller will drive the fixed bracket to move in the direction of the air pressure box, so that the side wall of the fixed bracket contacts the side wall of the pressure plate, and the pressure plate drives the sliding block 1 to slide outward along the inner wall of the through-hole groove through the fixed block 2, so that a gap is formed between the exhaust groove and the through-hole groove, and the high-pressure gas at the bottom of the load-bearing plate will be ejected outward through the above gap to clear the raw materials stuck to the inside of the containing box. Through the application of the above components, the stickiness of the raw materials can be reduced while the equipment achieves continuous processing.

[0018] (2) The present invention utilizes the characteristic that the pressure plate slides along the inner wall of the sliding baffle, and a slide groove 2 and a sliding baffle are provided inside the equipment. When the pressure plate is restricted by the protruding block and slides up and down, the moving pressure plate will drive the inner wall of the slide groove 2 to move synchronously. During the movement of the sliding baffle, the sliding baffle can always block the through holes at the side wall of the containing box, thereby ensuring the integrity of the inner wall of the containing box during operation, and avoiding the airflow being disturbed due to the incompleteness of the inner wall of the containing box when the high-pressure gas is ejected outward. The disturbed airflow will cause the scattered raw materials to spread to the surroundings, affecting the efficiency of the equipment in discharging the residual raw materials.

[0019] (3) The present invention utilizes the characteristic that the pressure plate drives the sliding block 1 to move upward along the inner wall of the through hole groove. An auxiliary component is provided inside the device. When high pressure gas is generated at the bottom of the load-bearing plate, the thrust generated by the high pressure gas will force the sliding block 1 to move outward. During this process, the plane of the sliding block will always be in contact with the protruding block on the inner wall of the U-shaped block, thereby limiting the upward movement of the pressure plate. The restriction of the pressure plate will also limit the upward movement of the fixed block 2 and the sliding block 1. When the fixed bracket moves toward the pressure plate, the outer wall of the fixed bracket will be in contact with the side wall of the sliding block 2. , forcing the sliding block 2 to slide along the inner wall of the hydraulic box, so that the solution inside the hydraulic box is transmitted to the hydraulic telescopic rod through the transmission pipe 1 and the transmission pipe 2, forcing the hydraulic telescopic rod to extend, and the extended hydraulic telescopic rod will drive the sliding block to contract along the inner wall of the pressure plate, so that the sliding block loses contact with the inner wall of the U-shaped block, and the sliding block 1 is no longer restricted, and the high-pressure gas at the bottom of the load-bearing plate is ejected outward. Through the application of the above components, it is avoided that during the use of the equipment, the high-pressure gas forces the sliding block 1 to slide upward along the inner wall of the through-hole groove, affecting the formation of high pressure of the equipment.

[0020] (4) The present invention utilizes the characteristic of the transmission belt to drive the circulatory transmission of the containing component and the control component. A one-way air inlet valve and spring 1 are provided inside the device. After the device completes the high-pressure cleaning process, spring 1 will release the compressed force, so that spring 1 can drive the telescopic tube to extend. When the telescopic tube extends outward, the fixed bracket also moves away from the sliding block 2. Spring 3 also releases mechanical power. The solution inside the hydraulic telescopic rod will be returned to the inside of the hydraulic box through the transmission tube 2 and the transmission tube 1, causing the hydraulic telescopic rod to contract and the sliding block to contact the inner wall of the U-shaped block again. As the pressure plate is reset, the plane of the arc block will contact the protruding block on the inner wall of the U-shaped block again, limiting the upward movement of the pressure plate; and the extended telescopic tube will draw external air through the one-way air inlet valve to replenish the inside of the air pressure box. Through the application of the above components, the orderliness of the equipment transmission is guaranteed. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 Schematic diagram of the adjustment mechanism of the present invention;

[0024] Figure 3 It is a schematic diagram of the state of the transmission belt of the present invention;

[0025] Figure 4 Schematic diagram of the track shape of the present invention;

[0026] Figure 5 It is a cross-sectional schematic diagram of the receiving assembly of the present invention;

[0027] Figure 6 For the present invention Figure 5 A is an enlarged schematic diagram;

[0028] Figure 7 This is a schematic diagram of the working state of the accommodation component of the present invention;

[0029] Figure 8 is a schematic cross-sectional view of the control assembly of the present invention;

[0030] Figure 9 For the present invention Figure 8 A magnified schematic diagram of middle B;

[0031] Figure 10 is a schematic cross-sectional view of an auxiliary component of the present invention;

[0032] Figure 11 For the present invention Figure 10 A magnified schematic diagram of C in the middle.

[0033] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0034] In the figure: 1. Bracket; 11. Driving rod; 12. Motor; 13. Conveyor belt; 2. Adjustment mechanism; 21. Limiting rod; 22. Track; 23. Fixed block 1; 24. Accommodation box; 3. Accommodation assembly; 31. Inclined surface; 32. Protruding block; 33. Bearing plate; 34. Air pressure box; 35. Telescopic tube; 36. Fixed bracket; 37. One-way air inlet valve; 38. Spring 1; 39. L-shaped transmission tube; 310. Roller; 311 , slide 1; 4, control component; 41, slide 2; 42, sliding baffle; 43, pressure plate; 44, fixed block 2; 45, spring 2; 46, through-hole slot; 47, sliding block 1; 48, exhaust slot; 5, auxiliary component; 51, hydraulic box; 52, sliding block 2; 53, spring 3; 54, transmission pipe 1; 55, transmission pipe 2; 56, hydraulic telescopic rod; 57, sliding block; 58, arc block, 59, U-shaped block. DETAILED DESCRIPTION

[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0036] For example 1, please refer to Figure 1 - Figure 9 The present invention is a material transmission device for heat-insulating material processing equipment, comprising a bracket 1, four driving rods 11 being rotatably connected to the inner wall of the bracket 1, a motor 12 being fixedly connected to the side wall of the bracket 1, and a transmission belt 13 being sleeved on the outer wall of the four driving rods 11;

[0037] The adjusting mechanism 2 includes a receiving box 24. The limiting rod 21, the track 22, and the fixing block 23 drive the receiving box 24 to move, so as to discharge the receiving components 3 remaining in the receiving box 24.

[0038] The outer walls of several fixed blocks 23 are fixedly connected to the outer walls of the conveyor belt 13, and the ends of several fixed blocks 23 away from the conveyor belt 13 are fixedly connected to the receiving box 24. The side walls of the bracket 1 are rotatably connected to the outer walls of the limiting rod 21, and the outer walls of the limiting rod 21 are rotatably connected to the outer walls of the conveyor belt 13. The inner wall of the bracket 1 is fixedly connected to the outer wall of the track 22.

[0039] The accommodating assembly 3 includes an inclined surface 31 formed on the side wall of the track 22 . A protruding block 32 is fixedly connected to one end of the track 22 away from the motor 12 . A sliding groove 311 is formed on the outer wall of the track 22 .

[0040] The accommodating assembly 3 also includes a load-bearing plate 33 fixedly connected to the inner wall of the accommodating box 24, a pressure box 34 fixedly connected to the side wall of the accommodating box 24, a telescopic tube 35 passing through the bottom of the pressure box 34, and a fixed bracket 36 fixedly connected to the end of the telescopic tube 35 away from the pressure box 34, and a roller 310 is rotatably connected to the inner wall of the fixed bracket 36, and the outer wall of the roller 310 is rotatably connected to the inner wall of the slide 311. A control assembly 4 is provided on the inner wall of the accommodating box 24. Before use, the bracket 1 is installed in the required position to ensure that external raw materials can enter the accommodating box 24, and the power of the motor 12 is turned on. The motor 12 forces the conveyor belt 13 to perform the conveying process through the driving rod 11. During this process, the conveyor belt 13 drives the accommodating box 24 and the accommodating assembly 3 to move through the fixed block 23, and the roller 310 will roll along the inner wall of the slide 311. When it reaches the position of the inclined surface 31, as the thickness of the track 22 continues to increase. At this time, the distance between the air pressure box 34 and the roller 310 is reduced, causing the telescopic tube 35 to contract. At this time, the gas inside the telescopic tube 35 is compressed, causing the gas in the air pressure box 34, the L-shaped transmission tube 39 and the bottom space of the load-bearing plate 33 to be converted to high pressure. When the gas reaches the position of the protruding block 32, the gas pressure reaches the maximum.

[0041] The accommodating component 3 also includes a one-way air inlet valve 37 connected to the side wall of the air pressure box 34, and a spring 38 is fixedly connected to the inner wall of the air pressure box 34. The end of the spring 38 away from the air pressure box 34 is fixedly connected to the inner wall of the telescopic tube 35. An L-shaped transmission tube 39 is connected to the side wall of the air pressure box 34, and the end of the L-shaped transmission tube 39 away from the air pressure box 34 is connected to the side wall of the accommodating box 24. The conveyor belt 13 is used to drive the accommodating component 3 and the control component 4 to circulate. A one-way air inlet valve 37 and a spring 38 are arranged inside the equipment. After the equipment completes the high-pressure clearing process, the spring 38 will release the compressed force, so that the spring 38 can drive the telescopic tube 35 to extend.

[0042] For example 2, please refer to Figure 5 - Figure 11 The present invention is a material conveying device for heat-insulating material processing equipment. On the basis of Example 1, the control component 4 also includes a second slide groove 41 opened on the inner wall of the storage box 24, and a sliding baffle 42 is slidably connected to the inner wall of the slide groove 41, and a pressure plate 43 is fixedly connected to the side wall of the sliding baffle 42. Utilizing the characteristics of the pressure plate 43 sliding along the inner wall of the sliding baffle 42, a second slide groove 41 and a sliding baffle 42 are provided inside the equipment. When the pressure plate 43 is restricted by the protruding block 32 and slides up and down, the moving pressure plate 43 will drive the 42 to synchronously move along the inner wall of the slide groove 41. During the movement of the sliding baffle 42, the sliding baffle 42 can always block the through-holes at the side wall of the storage box 24, thereby ensuring the integrity of the inner wall of the storage box 24 during operation, and avoiding the airflow being disturbed due to the imperfection of the inner wall of the storage box 24 when the high-pressure gas is ejected outward, and the disturbed airflow will cause the scattered raw materials to spread around, affecting the efficiency of the equipment in discharging residual raw materials.

[0043] The control component 4 also includes a fixed block 2 44 fixedly connected to the side of the sliding baffle 42 away from the pressure plate 43, and a spring 2 45 is fixedly connected to the top of the sliding baffle 42. The end of the spring 2 45 away from the sliding baffle 42 is fixedly connected to the inner wall of the slide groove 2 41.

[0044] The control component 4 also includes a through-hole groove 46 opened at the top of the load-bearing plate 33, and a sliding block 47 is slidably connected to the inner wall of the through-hole groove 46. An exhaust groove 48 is opened on the side wall of the sliding block 47, and an auxiliary component 5 is fixedly connected to the inner wall of the pressure plate 43. When the roller 310 reaches the position of the protruding block 32, the storage box 24 is flipped, so that the raw materials inside the storage box 24 are poured out, and the roller 310 will drive the fixed bracket 36 to move in the direction of the air pressure box 34, so that the side wall of the fixed bracket 36 contacts the side wall of the pressure plate 43. The pressure plate 43 drives the sliding block 47 to slide outward along the inner wall of the through-hole groove 46 through the fixed block 24, so that a gap is formed between the exhaust groove 48 and the through-hole groove 46, and the high-pressure gas at the bottom of the load-bearing plate 33 will be ejected outward through the above gap to clear the raw materials stuck in the storage box 24. Through the application of the above components, the stickiness of the raw materials can be reduced while the equipment is continuously processed.

[0045] The auxiliary component 5 includes a hydraulic box 51 fixedly connected to the inner wall of the pressure plate 43, a sliding block 2 52 is slidably connected to the inner wall of the hydraulic box 51, a spring 3 53 is fixedly connected to the outer wall of the sliding block 2 52, and one end of the spring 3 53 away from the sliding block 2 52 is fixedly connected to the inner wall of the pressure plate 43, and a U-shaped block 59 is fixedly connected to the side wall of the accommodating box 24.

[0046] The auxiliary component 5 also includes a transmission pipe 1 54 that is connected to the side wall of the hydraulic box 51, and a transmission pipe 2 55 is connected to the top of the transmission pipe 1 54. A hydraulic telescopic rod 56 is fixedly connected to the inner wall of the pressure plate 43, and the end of the transmission pipe 2 55 away from the transmission pipe 1 54 is connected to the inner wall of the hydraulic telescopic rod 56. The pressure plate 43 is used to drive the sliding block 1 47 to move upward along the inner wall of the through-hole groove 46. The auxiliary component 5 is provided inside the equipment. When high-pressure air pressure is generated at the bottom of the load-bearing plate 33, the thrust generated by the high-pressure gas will force the sliding block 1 47 to have a tendency to move outward. In this process, the plane of the sliding block 57 will always be in contact with the protruding block on the inner wall of the U-shaped block 59, thereby limiting the upward movement of the pressure plate 43. The limitation of the pressure plate 43 will also limit the upward movement of the fixed block 2 44 and the sliding block 1 47.

[0047] The auxiliary component 5 also includes a sliding block 57 that is slidably connected to the groove of the pressure plate 43. The other end of the hydraulic telescopic rod 56 is fixedly connected to the side wall of the sliding block 57. The side wall of the sliding block 57 is provided with an arc block 58. When the fixed bracket 36 moves toward the pressure plate 43, the outer wall of the fixed bracket 36 will contact the side wall of the sliding block 2 52, forcing the sliding block 2 52 to slide along the inner wall of the hydraulic box 51, so that the solution inside the hydraulic box 51 is transmitted through the transmission pipe 1 54 and the transmission pipe 2 55. The input is transmitted to the hydraulic telescopic rod 56, forcing the hydraulic telescopic rod 56 to extend. The extended hydraulic telescopic rod 56 will drive the sliding block 57 to contract along the inner wall of the pressure plate 43, so that the sliding block 57 loses contact with the inner wall of the U-shaped block 59, and the sliding block 1 47 is no longer restricted, and the high-pressure gas at the bottom of the load-bearing plate 33 is ejected outward. Through the application of the above components, it is avoided that during the use of the equipment, the high-pressure gas forces the sliding block 1 47 to slide upward along the inner wall of the through-hole groove 46, affecting the formation of high pressure of the equipment.

[0048] A specific application of this embodiment is as follows: before use, the bracket 1 is installed in the desired position to ensure that the external raw materials can enter the interior of the storage box 24. The motor 12 is powered on, and the motor 12 forces the conveyor belt 13 to start the conveying process via the drive rod 11. During this process, the conveyor belt 13 drives the storage box 24 and the storage assembly 3 to move through the fixed block 1 23, and the roller 310 rolls along the inner wall of the slide 1 311. When it reaches the inclined surface 31, as the thickness of the track 22 increases, the distance between the air pressure box 34 and the roller 310 decreases, causing the telescopic tube 35 to contract. At this time, the gas inside the telescopic tube 35 is compressed, causing the gas in the air pressure box 34, the L-shaped transmission tube 39, and the bottom space of the bearing plate 33 to be converted to a high pressure. The gas pressure reaches its maximum when it reaches the protrusion 32. When the roller 310 reaches the protrusion 32, the storage box 24 flips, causing the raw materials inside the storage box 24 to pour out, and the roller 310 drives the fixed bracket 36 along the inclined surface 31. It moves toward the air pressure box 34, so that the side wall of the fixed bracket 36 contacts the side wall of the pressure plate 43. The pressure plate 43 drives the sliding block 1 47 to slide outward along the inner wall of the through-hole groove 46 through the fixed block 2 44, so that a gap is formed between the exhaust groove 48 and the through-hole groove 46, and the high-pressure gas at the bottom of the load-bearing plate 33 will be ejected outward through the above gap to remove the raw materials stuck to the inside of the containing box 24. Through the application of the above components, the stickiness of the raw materials can be reduced while the equipment continues to process.

[0049] Taking advantage of the characteristic that the pressure plate 43 slides along the inner wall of the sliding baffle 42, a second slide groove 41 and a sliding baffle 42 are provided inside the equipment. When the pressure plate 43 is restricted by the protruding block 32 and slides up and down, the moving pressure plate 43 will drive 42 to synchronously move along the inner wall of the second slide groove 41. During the movement of the sliding baffle 42, the sliding baffle 42 can always block the through holes at the side wall of the containing box 24 to ensure the integrity of the inner wall of the containing box 24 during operation, and to avoid the airflow being disturbed due to the incompleteness of the inner wall of the containing box 24 when the high-pressure gas is ejected outward. The disturbed airflow will cause the scattered raw materials to spread around, affecting the efficiency of the equipment in discharging residual raw materials.

[0050] By utilizing the characteristic that the pressure plate 43 drives the sliding block 1 47 to move upward along the inner wall of the through hole groove 46, an auxiliary component 5 is provided inside the device. When high pressure gas is generated at the bottom of the load-bearing plate 33, the thrust generated by the high pressure gas will force the sliding block 1 47 to move outward. During this process, the plane of the sliding block 57 will always be in contact with the protruding block on the inner wall of the U-shaped block 59, thereby limiting the upward movement of the pressure plate 43. The restriction of the pressure plate 43 will also limit the upward movement of the fixed block 2 44 and the sliding block 1 47. When the fixed bracket 36 moves toward the pressure plate 43, the outer wall of the fixed bracket 36 will contact the side wall of the sliding block 2 52, forcing the sliding block 1 47 to move outward. The movable block 2 52 slides along the inner wall of the hydraulic box 51, so that the solution inside the hydraulic box 51 is transmitted to the hydraulic telescopic rod 56 through the transmission tube 1 54 and the transmission tube 2 55, forcing the hydraulic telescopic rod 56 to extend. The extended hydraulic telescopic rod 56 will drive the sliding block 57 to contract along the inner wall of the pressure plate 43, so that the sliding block 57 loses contact with the inner wall of the U-shaped block 59, and the sliding block 1 47 is no longer restricted, and the high-pressure gas at the bottom of the load-bearing plate 33 is ejected outward. Through the application of the above components, it is avoided that during the use of the equipment, the high-pressure gas forces the sliding block 1 47 to slide upward along the inner wall of the through-hole groove 46, affecting the formation of high pressure of the equipment.

[0051] Taking advantage of the characteristic of the conveyor belt 13 driving the accommodating component 3 and the control component 4 for cyclic transmission, a one-way air inlet valve 37 and a spring 1 38 are provided inside the device. After the device completes the high-pressure clearing process, the spring 1 38 will release the compressed force, allowing the spring 1 38 to drive the telescopic tube 35 to extend. When the telescopic tube 35 extends outward, the fixed bracket 36 also moves away from the sliding block 2 52. The spring 3 53 also releases mechanical power, and the solution inside the hydraulic telescopic rod 56 will return to the hydraulic box 51 through the transmission tube 2 55 and the transmission tube 1 54, causing the hydraulic telescopic rod 56 to contract, causing the sliding block 57 to re-contact the inner wall of the U-shaped block 59. As the pressure plate 43 returns to its original position, the plane of the arc block 58 will again contact the protruding block on the inner wall of the U-shaped block 59, limiting the upward movement of the pressure plate 43. The extended telescopic tube 35 will draw external air through the one-way air inlet valve 37 to replenish the interior of the air pressure box 34. Through the application of the above components, the orderly transmission of the equipment is guaranteed.

[0052] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A material transmission device for heat-insulating material processing equipment, comprising a bracket (1), four driving rods (11) rotatably connected to the inner wall of the bracket (1), a motor (12) fixedly connected to the side wall of the bracket (1), and a transmission belt (13) sleeved on the outer wall of the four driving rods (11), characterized in that: Also includes: An adjusting mechanism (2), the adjusting mechanism (2) comprising a containing box (24), a limiting rod (21) for driving the containing box (24) to move, a track (22), and a fixing block (23) for discharging the containing component (3) remaining inside the containing box (24); The outer walls of several of the fixing blocks (23) are fixedly connected to the outer walls of the conveyor belt (13); one end of several of the fixing blocks (23) away from the conveyor belt (13) is fixedly connected to a receiving box (24); the side wall of the bracket (1) is rotatably connected to the outer wall of the limiting rod (21); the outer wall of the limiting rod (21) is rotatably connected to the outer wall of the conveyor belt (13); and the inner wall of the bracket (1) is fixedly connected to the outer wall of the track (22); The accommodating assembly (3) includes an inclined surface (31) provided on a side wall of the track (22); a protruding block (32) is fixedly connected to an end of the track (22) away from the motor (12); and a sliding groove (311) is provided on an outer wall of the track (22); The accommodating assembly (3) further includes a load-bearing plate (33) fixedly connected to the inner wall of the accommodating box (24); a pressure box (34) is fixedly connected to the side wall of the accommodating box (24); a telescopic tube (35) is connected through the bottom of the pressure box (34); a fixed bracket (36) is fixedly connected to the end of the telescopic tube (35) away from the pressure box (34); a roller (310) is rotatably connected to the inner wall of the fixed bracket (36); an outer wall of the roller (310) is rotatably connected to the inner wall of the slide groove (311); and a control assembly (4) is provided on the inner wall of the accommodating box (24); The accommodating assembly (3) further includes a one-way air inlet valve (37) connected to the side wall of the air pressure box (34); a spring (38) is fixedly connected to the inner wall of the air pressure box (34); an end of the spring (38) away from the air pressure box (34) is fixedly connected to the inner wall of the telescopic tube (35); an L-shaped transmission tube (39) is connected to the side wall of the air pressure box (34); an end of the L-shaped transmission tube (39) away from the air pressure box (34) is connected to the side wall of the accommodating box (24); The control assembly (4) includes a second slide groove (41) provided on the inner wall of the receiving box (24), a sliding baffle (42) being slidably connected to the inner wall of the second slide groove (41), and a pressure plate (43) being fixedly connected to the side wall of the sliding baffle (42); The control assembly (4) further comprises a second fixing block (44) fixedly connected to a side of the sliding baffle (42) away from the pressure plate (43), a second spring (45) fixedly connected to the top of the sliding baffle (42), and an end of the second spring (45) away from the sliding baffle (42) fixedly connected to the inner wall of the second slide groove (41); The control component (4) further includes a through-hole groove (46) provided on the top of the load-bearing plate (33), a sliding block (47) is slidably connected to the inner wall of the through-hole groove (46), an exhaust groove (48) is provided on the side wall of the sliding block (47), and an auxiliary component (5) is fixedly connected to the inner wall of the pressure plate (43).

2. The material conveying device for thermal insulation material processing equipment according to claim 1, characterized in that: The auxiliary component (5) includes a hydraulic box (51) fixedly connected to the inner wall of the pressure plate (43), a sliding block 2 (52) is slidably connected to the inner wall of the hydraulic box (51), a spring 3 (53) is fixedly connected to the outer wall of the sliding block 2 (52), and one end of the spring 3 (53) away from the sliding block 2 (52) is fixedly connected to the inner wall of the pressure plate (43), and a U-shaped clamping block (59) is fixedly connected to the side wall of the accommodating box (24).

3. The material conveying device for thermal insulation material processing equipment according to claim 2, characterized in that: The auxiliary component (5) further includes a transmission pipe 1 (54) which is connected to the side wall of the hydraulic box (51), a transmission pipe 2 (55) which is connected to the top of the transmission pipe 1 (54), a hydraulic telescopic rod (56) which is fixedly connected to the inner wall of the pressure plate (43), and an end of the transmission pipe 2 (55) which is away from the transmission pipe 1 (54) is connected to the inner wall of the hydraulic telescopic rod (56).

4. The material conveying device for thermal insulation material processing equipment according to claim 3, characterized in that: The auxiliary component (5) further comprises a sliding block (57) slidably connected in a groove of the pressure plate (43), the other end of the hydraulic telescopic rod (56) is fixedly connected to a side wall of the sliding block (57), and an arc block (58) is provided on the side wall of the sliding block (57).

Citation Information

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