Thermal equipment for preparing maple leaf mold composite material

By designing the thermal equipment for the preparation of maple leaf mold composite materials, the maintenance and replacement problems caused by the fixation of the heating module are solved, convenient maintenance and replacement are achieved, heating efficiency is improved, and the raw materials are mixed evenly.

CN223085180UActive Publication Date: 2025-07-11HENGSHUI CONGHUI TRANSPORTATION EQUIP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422246896.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-13
Publication Date
2025-07-11
Estimated Expiration
2034-09-13

AI Technical Summary

Technical Problem

The heating modules of existing thermal equipment for mold composite preparation are usually fixed under or inside the raw material storage device, resulting in difficulty in repairing and replacing and difficulty in daily maintenance.

Method used

A thermal equipment for the preparation of maple leaf mold composite materials is designed. By setting up a mounting box, support bracket and height adjustment component, the installation and disassembly of the heater is facilitated, combined with heat insulation plates and thermal conduction blocks to improve the efficiency of thermal energy utilization, and equipped with stirring and conveying components to ensure uniform mixing of raw materials.

Benefits of technology

It realizes convenient maintenance and replacement of heating modules, improves equipment flexibility and heat energy utilization efficiency, and ensures that the raw materials are fully mixed and heated evenly.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223085180U_ABST
    Figure CN223085180U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of composite material preparation, in particular to thermal equipment for preparing a maple leaf mold composite material. The thermal equipment comprises a bottom plate, a heater, a tank body, a supporting assembly, a height adjusting assembly, a stirring assembly, a conveying assembly and a fixed bracket, compared with the existing heating equipment for preparing the mold composite material, the heating module is usually fixed below or inside the raw material storage device, so that the heating module is difficult to maintain and replace after being damaged, and the heating module is also difficult to maintain when the heating module is usually used; according to the utility model, the heater is mounted by arranging the mounting box, and the mounting box is mounted by arranging the supporting bracket, so that the mounting box can be conveniently and freely fed into or pulled out of the lower part of the tank body, the heater mounted above the mounting box can be conveniently and daily maintained, and the heater can be conveniently replaced after being damaged; the flexibility of the whole device is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of composite material preparation, in particular to a thermal device for preparing maple leaf mold composite materials. Background Art

[0002] The thermal devices for preparing mold composite materials play a crucial role in the process of composite material forming. They can ensure that the materials reach the required temperature conditions during the forming process, thereby improving the product quality and production efficiency.

[0003] In the current thermal devices for preparing mold composite materials, the heating modules are usually fixed below or inside the raw material storage device. When the heating modules are damaged, it is difficult to repair and replace them, and it is also difficult to maintain them during normal use.

[0004] Therefore, aiming at the above-mentioned current thermal devices for preparing mold composite materials, where the heating modules are usually fixed below or inside the raw material storage device, and it is difficult to repair and replace the heating modules when they are damaged, and it is also difficult to maintain them during normal use, a thermal device for preparing maple leaf mold composite materials can be designed. Summary of the Utility Model

[0005] In order to overcome the problem that in the current thermal devices for preparing mold composite materials, the heating modules are usually fixed below or inside the raw material storage device, and it is difficult to repair and replace the heating modules when they are damaged, and it is also difficult to maintain them during normal use.

[0006] The technical solution of the utility model is as follows: A thermal device for preparing maple leaf mold composite materials includes a bottom plate, a heater, a tank body, a support assembly, a height adjustment assembly, a stirring assembly, a conveying assembly, and a fixing bracket. Two support brackets are fixedly installed above the bottom plate. A chute is provided on one side of the support bracket. An installation box is arranged between the two support brackets. The installation box is slidably connected to the support bracket through the chute. The installation box is located above the bottom plate. The heater is arranged above the installation box. The support assembly is arranged above the installation box. The height adjustment assembly is arranged inside the installation box. The stirring assembly is arranged inside the through hole. The conveying assembly is arranged on the periphery of the tank body. The fixing bracket is arranged on the periphery of the tank body. The fixing bracket is located above the bottom plate.

[0007] Preferably, the mounting box is mounted by setting up a support bracket, and is slidably connected to the mounting box through a chute. The mounting box is provided to support and mount the support assembly and the heater mounted thereon, facilitating the removal of the heater from below the tank body for replacement and maintenance. The support assembly is provided to support and mount the heater. The height of the heater can be adjusted by setting up a height adjustment assembly, so that the heater can heat the tank body better. The stirring assembly is provided to stir the interior of the tank body, so that the raw materials inside are heated and mixed sufficiently. The conveying assembly is provided to add raw materials to the interior of the tank body and discharge the composite material that has been heated and mixed. The tank body is fixed by setting up a fixing bracket.

[0008] Preferably, a heat insulation plate is fixedly installed above the support bracket, and a heat conduction block is fixedly installed inside the heat insulation plate. The tank body is located above the heat conduction block. The heat insulation plate is provided to install the heat conduction block and can prevent the heat generated by the heater from being dissipated due to the heat bridge effect, improving the heating efficiency. The heat conduction block is provided to conduct the heat energy generated by the heater to the tank body.

[0009] Preferably, the support assembly includes a notch, a support block, a mounting plate, and a first wedge block. A notch is opened above the mounting box. The support block passes through the mounting box through the notch, and the support block is slidably connected to the mounting box. The mounting plate is fixedly installed above the support block. The heater is located above the mounting plate. The first wedge block is fixedly installed below the support block, and the first wedge block is located inside the mounting box. The support block is provided to install the mounting plate and the first wedge block. The mounting plate is provided to install the heater. By setting the first wedge block, it can cooperate with the height adjustment assembly to push the support block to lift and lower, thereby adjusting the height of the heater.

[0010] Preferably, the height adjustment assembly includes a second wedge block, a bearing, an internally threaded mounting block, a threaded rod, a handle, and a slide rail. The second wedge block is arranged inside the mounting box and is slidably connected to the mounting box through the slide rail. The second wedge block is located below the first wedge block. The bearing is fixedly installed on one side of the second wedge block. The internally threaded mounting block is fixedly installed on one side of the mounting box. The threaded rod passes through the internally threaded mounting block and the mounting box, and the threaded rod is threadedly connected to the internally threaded mounting block. One end of the threaded rod is rotatably connected to the second wedge block through the bearing. The handle is fixedly installed on the other end of the threaded rod. By setting the handle, the threaded rod can be rotated, thereby driving the second wedge block to slide through the slide rail, and then cooperating with the first wedge block to drive the support block to lift and lower to adjust the height of the heater.

[0011] Preferably, a heat preservation layer is arranged inside the tank body, and an inner tank is fixedly installed inside the heat preservation layer. The heat preservation layer is provided to have a certain heat preservation effect on the side wall of the tank body, reducing the heat loss inside the tank body. The inner tank is provided to hold the raw materials.

[0012] Preferably, the stirring assembly includes a motor, a stirring shaft, and spiral stirring blades. The motor is fixedly installed above the tank body. The stirring shaft penetrates the tank body. One end of the stirring shaft is fixedly connected to the output end of the motor. The spiral stirring blades are fixedly installed on the periphery of the stirring shaft, and the spiral stirring blades are located inside the tank body. By setting the motor to drive the stirring shaft to rotate, the spiral stirring blades are driven to rotate, and the raw materials inside the tank body are stirred and mixed, so that they can be heated and mixed evenly.

[0013] Preferably, the conveying assembly includes a feeding port, a feeding hopper, and a discharging pipe. The feeding port is arranged above the tank body, and the feeding port is connected to the tank body in a penetrating manner. The feeding hopper is arranged above the tank body, and the feeding hopper is connected to the tank body in a penetrating manner. The discharging pipe is arranged on one side of the tank body, and the discharging pipe is connected to the tank body in a penetrating manner. By setting the feeding port, fluid raw materials can be added to the inside of the tank body. By setting the feeding hopper, solid raw materials can be added to the inside of the tank body. By setting the discharging pipe, the composite material after heating and mixing can be discharged from the tank body.

[0014] Advantages of the present utility model:

[0015] 1. Compared with the current thermal equipment for preparing mold composite materials, the heating module is usually fixed below or inside the raw material storage device. When the heating module is damaged, it is difficult to repair and replace the heating module. During normal use, it is also difficult to maintain the heating module. In the present utility model, the heater is installed through the installation box, and the installation box is installed through the support bracket, so that the installation box can be conveniently sent into or pulled out from below the tank body, facilitating the daily maintenance of the heater installed above the installation box. When the heater is damaged, it is also convenient to replace the heater, improving the flexibility of the overall device;

[0016] 2. By turning the threaded rod through the handle, the second wedge block is pushed to move. Through the second wedge block, the first wedge block can be pushed to lift and lower, thereby driving the heater to lift and lower, so that the output end of the heater contacts the heat conduction block. Conversely, the heater can be separated from the heat conduction block, facilitating the extraction of the installation box from the support bracket;

[0017] 3. The heat conduction block is installed through the heat insulation board to support the tank body and prevent the heat generated by the heater from being dissipated due to the heat bridge effect, improving the heating efficiency. The heat energy generated by the heater is conducted to the tank body through the heat conduction block. Description of the drawings

[0018] Figure 1 Shown is the first three-dimensional structural schematic diagram of the thermal equipment for preparing maple leaf mold composite materials of the present utility model;

[0019] Figure 2The figure shows a three-dimensional structural schematic diagram of the disassembly state of the thermal equipment installation box for preparing maple leaf mold composite materials of the present utility model;

[0020] Figure 3 The figure shows a three-dimensional structural schematic diagram of the internal section of the thermal equipment installation box for preparing maple leaf mold composite materials of the present utility model;

[0021] Figure 4 The figure shows a three-dimensional exploded structural schematic diagram of the support assembly of the thermal equipment for preparing maple leaf mold composite materials of the present utility model;

[0022] Figure 5 The figure shows a three-dimensional structural schematic diagram of the section of the thermal equipment for preparing maple leaf mold composite materials of the present utility model;

[0023] Figure 6 The figure shows a second three-dimensional structural schematic diagram of the thermal equipment for preparing maple leaf mold composite materials of the present utility model;

[0024] Explanation of reference numerals: 1, bottom plate; 2, heater; 3, tank body; 10, fixing bracket; 101, support bracket; 102, chute; 103, installation box; 401, heat insulation board; 402, heat conduction block; 501, notch; 502, support block; 503, mounting plate; 504, first wedge block; 601, second wedge block; 602, bearing; 603, internally threaded mounting block; 604, threaded rod; 605, handle; 606, slide rail; 701, heat preservation layer; 702, inner tank; 801, motor; 802, stirring shaft; 803, spiral stirring blade; 901, feeding port; 902, feeding hopper; 903, discharge pipe. Detailed implementation manners

[0025] The present utility model will be further described below with reference to the accompanying drawings and embodiments.

[0026] Please refer to Figures 1 - 6, the present utility model provides an embodiment: a thermal device for preparing maple leaf mold composite materials, comprising a bottom plate 1, a heater 2, a tank body 3, a support assembly, a height adjustment assembly, a stirring assembly, a conveying assembly and a fixing bracket 10; two groups of support brackets 101 are fixedly installed above the bottom plate 1, a chute 102 is provided on one side of the support bracket 101, an installation box 103 is arranged between the two groups of support brackets 101, the installation box 103 is slidably connected with the support bracket 101 through the chute 102, and the installation box 103 is located above the bottom plate 1; the installation box 103 is installed by setting the support bracket 101 and is slidably connected with the installation box 103 through the chute 102. By setting the installation box 103, the support assembly and the heater 2 installed thereon are supported and installed, which facilitates taking out the heater 2 from below the tank body 3, facilitating replacement and maintenance. By setting the support assembly, the heater 2 is supported and installed. By setting the height adjustment assembly, the height of the heater 2 can be adjusted, so that the heater 2 can better heat the tank body 3. By setting the stirring assembly, the inside of the tank body 3 can be stirred, so that the internal raw materials are heated and mixed sufficiently. By setting the conveying assembly, raw materials can be added to the inside of the tank body 3 and the composite materials that have been heated and mixed can be discharged. By setting the fixing bracket 10, the tank body 3 is fixed.

[0027] Please refer to Figures 1 - 4, in this embodiment, a heat insulation plate 401 is fixedly installed above the support bracket 101. A heat conduction block 402 is fixedly installed inside the heat insulation plate 401, and the tank body 3 is located above the heat conduction block 402. By providing the heat insulation plate 401 to install the heat conduction block 402, the heat generated by the heater 2 can be prevented from being dissipated due to the heat bridge effect, improving the heating efficiency. By providing the heat conduction block 402, the heat energy generated by the heater 2 is conducted to the tank body 3. The support assembly includes a notch 501, a support block 502, a mounting plate 503, and a first wedge block 504. A notch 501 is provided above the mounting box 103. The support block 502 passes through the mounting box 103 through the notch 501. The support block 502 is slidably connected to the mounting box 103. The mounting plate 503 is fixedly installed above the support block 502. The heater 2 is located above the mounting plate 503. The first wedge block 504 is fixedly installed below the support block 502. The first wedge block 504 is located inside the mounting box 103. By providing the support block 502 to install the mounting plate 503 and the first wedge block 504, and by providing the mounting plate 503 to install the heater 2, the first wedge block 504 can cooperate with the height adjustment assembly to push the support block 502 to rise and fall, thereby adjusting the height of the heater 2. The height adjustment assembly includes a second wedge block 601, a bearing 602, an internally threaded mounting block 603, a threaded rod 604, a handle 605, and a slide rail 606. The second wedge block 601 is arranged inside the mounting box 103. The second wedge block 601 is slidably connected to the mounting box 103 through the slide rail 606. The second wedge block 601 is located below the first wedge block 504. The bearing 602 is fixedly installed on one side of the second wedge block 601. The internally threaded mounting block 603 is fixedly installed on one side of the mounting box 103. The threaded rod 604 passes through the internally threaded mounting block 603 and the mounting box 103. The threaded rod 604 is threadedly connected to the internally threaded mounting block 603. One end of the threaded rod 604 is rotatably connected to the second wedge block 601 through the bearing 602. The handle 605 is fixedly installed on the other end of the threaded rod 604. By providing the handle 605, the threaded rod 604 can be rotated, thereby driving the second wedge block 601 to slide through the slide rail 606, and then cooperating with the first wedge block 504 to drive the support block 502 to rise and fall, adjusting the height of the heater 2.

[0028] Please refer to Figures 5 - 6, in this embodiment, a thermal insulation layer 701 is provided inside the tank body 3, and an inner tank 702 is fixedly installed inside the thermal insulation layer 701; by providing the thermal insulation layer 701, a certain heat preservation effect can be achieved on the side wall of the tank body 3, reducing the heat loss inside the tank body 3, and by providing the inner tank 702, raw materials can be contained; the stirring assembly includes a motor 801, a stirring shaft 802 and a spiral stirring blade 803. The motor 801 is fixedly installed above the tank body 3, the stirring shaft 802 penetrates the tank body 3, one end of the stirring shaft 802 is fixedly connected to the output end of the motor 801, and the spiral stirring blade 803 is fixedly installed on the periphery of the stirring shaft 802. The spiral stirring blade 803 is located inside the tank body 3; by providing the motor 801 to drive the stirring shaft 802 to rotate, the spiral stirring blade 803 is driven to rotate, stirring and mixing the raw materials inside the tank body 3, so that they can be heated and mixed evenly; the conveying assembly includes a feeding port 901, a feeding hopper 902 and a discharging pipe 903. The feeding port 901 is provided above the tank body 3, and the feeding port 901 is connected to the tank body 3 in a penetrating manner. The feeding hopper 902 is provided above the tank body 3, and the feeding hopper 902 is connected to the tank body 3 in a penetrating manner. The discharging pipe 903 is provided on one side of the tank body 3, and the discharging pipe 903 is connected to the tank body 3 in a penetrating manner; by providing the feeding port 901, fluid raw materials can be added to the inside of the tank body 3, by providing the feeding hopper 902, solid raw materials can be added to the inside of the tank body 3, and by providing the discharging pipe 903, the composite material that has been heated and mixed can be discharged from the tank body 3.

[0029] During operation, the installation box 103 is pushed below the heat insulation plate 401 and the heat conducting block 402 by using the sliding groove 102, so that the heater 2 installed above the mounting plate 503 is sent directly below the heat conducting block 402;

[0030] Turn the threaded rod 604 by using the handle 605, thereby pushing the second wedge-shaped block 601 to move. The second wedge-shaped block 601 can be used to push the first wedge-shaped block 504 to rise and fall, thereby driving the heater 2 to rise and fall, so that the output end of the heater 2 contacts the heat conducting block 402, and the heat is transferred to the tank body 3 through the heat conducting block 402 to heat the raw materials inside the tank body 3;

[0031] The heat insulation plate 401 can be used to support the tank body 3, and the heat generated by the heater 2 will not be dissipated due to the heat bridge effect, and will only be transferred to the tank body 3 through the heat conducting block 402, improving the heat utilization efficiency;

[0032] The feeding port 901 can be used to add fluid raw materials to the inside of the tank body 3, the feeding hopper 902 can be used to add solid raw materials to the inside of the tank body 3, the motor 801 is used to drive the stirring shaft 802 to rotate, thereby driving the spiral stirring blade 803 to mix and stir the added raw materials, so that they are heated and mixed evenly, and the discharging pipe 903 can be used to discharge the composite material that has been heated and mixed from the tank body 3;

[0033] When the heater 2 needs to be maintained or replaced, the threaded rod 604 is rotated by the handle 605 to drive the second wedge block 601 to move, so that the first wedge block 504 descends, driving the heater 2 to descend;

[0034] The installation box 103 is pulled out of the support bracket 101, which facilitates the maintenance or replacement of the heater 2 installed above the installation box 103, improving the flexibility of the overall equipment.

[0035] Through the above steps, the heater 2 is installed by setting the installation box 103, and the installation box 103 is installed by setting the support bracket 101, so that the installation box 103 can be freely inserted into or pulled out from below the tank body 3, facilitating the daily maintenance of the heater 2 installed above the installation box 103. When the heater 2 is damaged, it is also convenient to replace the heater 2, improving the flexibility of the overall device, so as to solve the problem that for the current thermal equipment used in the preparation of mold composite materials, the heating module is usually fixed below or inside the raw material storage device. When the heating module is damaged, it is difficult to repair and replace the heating module, and it is also difficult to maintain the heating module during normal use.

[0036] The above has described the embodiments of the present invention in detail with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the gist of the present invention.

Claims

1. A thermal device for preparing a maple leaf mold composite material, comprising a bottom plate (1), a heater (2) and a tank body (3); characterized in that: It also includes a support assembly, a height adjustment assembly, a stirring assembly, a conveying assembly and a fixing bracket (10); two support brackets (101) are fixedly installed above the bottom plate (1), a chute (102) is provided on one side of the support bracket (101), an installation box (103) is arranged between the two support brackets (101), the installation box (103) is slidably connected to the support bracket (101) through the chute (102), the installation box (103) is located above the bottom plate (1), a heater (2) is provided above the installation box (103), the support assembly is arranged above the installation box (103), the height adjustment assembly is arranged inside the installation box (103), the stirring assembly is arranged through the inside, the conveying assembly is arranged on the periphery of the tank body (3), and the fixing bracket (10) is arranged on the periphery of the tank body (3), and the fixing bracket (10) is located above the bottom plate (1).

2. The thermal equipment for preparing the maple leaf mold composite material according to claim 1, characterized in that: A heat insulation plate (401) is fixedly installed above the support bracket (101), a heat conduction block (402) is fixedly installed inside the heat insulation plate (401), and the tank body (3) is located above the heat conduction block (402).

3. The thermal equipment for preparing the maple leaf mold composite material according to claim 1, characterized in that: The support assembly includes a notch (501), a support block (502), a mounting plate (503) and a first wedge block (504). A notch (501) is provided above the installation box (103), the support block (502) penetrates through the installation box (103) through the notch (501), the support block (502) is slidably connected to the installation box (103), the mounting plate (503) is fixedly installed above the support block (502), the heater (2) is located above the mounting plate (503), and the first wedge block (504) is fixedly installed below the support block (502), and the first wedge block (504) is located inside the installation box (103).

4. The thermal equipment for preparing the maple leaf mold composite material according to claim 3, characterized in that: The height adjustment assembly includes a second wedge block (601), a bearing (602), an internally threaded mounting block (603), a threaded rod (604), a handle (605) and a slide rail (606). The second wedge block (601) is arranged inside the installation box (103), the second wedge block (601) is slidably connected to the installation box (103) through the slide rail (606), the second wedge block (601) is located below the first wedge block (504), the bearing (602) is fixedly installed on one side of the second wedge block (601), the internally threaded mounting block (603) is fixedly installed on one side of the installation box (103), the threaded rod (604) penetrates through the internally threaded mounting block (603) and the installation box (103), the threaded rod (604) is threadedly connected to the internally threaded mounting block (603), one end of the threaded rod (604) is rotatably connected to the second wedge block (601) through the bearing (602), and the handle (605) is fixedly installed at the other end of the threaded rod (604).

5. The thermal equipment for preparing the maple leaf mold composite material according to claim 1, characterized in that: A heat preservation layer (701) is arranged inside the tank body (3), and an inner tank (702) is fixedly installed inside the heat preservation layer (701).

6. The thermal equipment for preparing the maple leaf mold composite material according to claim 1, characterized in that: The stirring assembly includes a motor (801), a stirring shaft (802) and a spiral stirring blade (803). The motor (801) is fixedly installed above the tank body (3). The stirring shaft (802) penetrates through the tank body (3). One end of the stirring shaft (802) is fixedly connected to the output end of the motor (801). The spiral stirring blade (803) is fixedly installed on the periphery of the stirring shaft (802), and the spiral stirring blade (803) is located inside the tank body (3).

7. A thermal device for preparing a maple leaf mold composite material according to claim 1, characterized in that: The conveying assembly includes a feeding port (901), a feeding hopper (902) and a discharging pipe (903). The feeding port (901) is arranged above the tank body (3), and the feeding port (901) is connected to the tank body (3) in a through manner. The feeding hopper (902) is arranged above the tank body (3), and the feeding hopper (902) is connected to the tank body (3) in a through manner. The discharging pipe (903) is arranged on one side of the tank body (3), and the discharging pipe (903) is connected to the tank body (3) in a through manner.