Lamination workshop heat dissipation system
By setting up heat insulation and non-insulated areas in the lamination workshop, and using color steel plates and soft curtains to isolate them, forming a large space heat insulation area. Combined with the cooperation of the blower and the exhauster, the problem of low heat accumulation and heat dissipation efficiency in the existing laminate heat dissipation system is solved, and an efficient heat dissipation and a safe and reliable working environment is achieved.
Patent Information
- Application Number
- CN202422064022.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-26
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-08-26
AI Technical Summary
In the existing laminate heat dissipation system, the small space formed by the heat insulation cover causes heat to accumulate, the temperature is extremely high, and it cannot work internally; the exhaust fan alone has low heat dissipation efficiency and poor air flowability.
A heat dissipation system of a lamination workshop is designed. By setting up heat insulation zones and non-insulated zones in the lamination workshop, and using color steel plates and soft curtains to isolate them to form a heat insulation zone in a large space. Through the cooperation of the blower and the exhaust fan, the rapid flow of air and efficient heat dissipation are achieved.
It improves the heat dissipation efficiency of the laminate, reduces the equipment temperature, provides a safe and reliable working environment, and ensures the safety of equipment and personnel.
Smart Images

Figure CN223005086U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of ventilation and heat dissipation equipment, and more specifically, to a heat dissipation system for a lamination workshop. Background Art
[0002] A laminator is an important piece of equipment required for manufacturing solar cell modules. It is a device that presses components such as solar cells, EVA film, and glass backsheets into a rigid whole under high-temperature and vacuum conditions. During operation, a large amount of heat is generated by the laminator. If this heat cannot be dissipated in a timely manner, it will cause the equipment temperature to be too high, thereby reducing work efficiency and even damaging the equipment.
[0003] In the prior art, the heat dissipation system closest to the present application has a publication number of CN214221614U, which is an air compressor station heat dissipation system. The disclosed heat dissipation system includes a heat insulation cover arranged outside the air compressor, a roof exhaust fan arranged on the top of the air compressor station building, an air compressor heat dissipation pipe arranged between the heat insulation cover and the roof exhaust fan, and a temperature monitoring system. An air compressor heat dissipation cavity is formed between the inside of the heat insulation cover and the air compressor. The roof exhaust fan is connected to the inside of the air compressor heat dissipation cavity through the air compressor heat dissipation pipe. The heat insulation cover encloses the air compressor inside to prevent the heat generated by the air compressor from being dissipated to other areas in the air compressor station building. The heat generated by the air compressor is collected in the air compressor heat dissipation cavity. Under the suction of the roof exhaust fan, the hot air in the air compressor heat dissipation cavity is discharged outward from the roof of the air compressor station building through the air compressor heat dissipation pipe, realizing directional heat dissipation of the air compressor.
[0004] In the existing heat dissipation system, the space formed by the heat insulation cover is small, so the temperature will be extremely high after the internal heat accumulates, and personnel cannot work inside. Moreover, only relying on the exhaust fan for heat dissipation, the air fluidity in the heat dissipation cavity is poor, and the heat dissipation efficiency is low.
[0005] In view of this, the utility model proposes a heat dissipation system for a lamination workshop that is highly efficient in heat dissipation and safe in production. Summary of the Utility Model
[0006] The purpose of the utility model is to propose a heat dissipation system for a lamination workshop that is highly efficient in heat dissipation and safe in production.
[0007] A heat dissipation system for a lamination workshop, including a lamination workshop, in which there is a support column structure 1. The bottom of the support column structure 1 is connected to the ground, and the top of the support column structure 1 is connected to the roof 5 of the lamination workshop. It is characterized in that: the lamination workshop includes a heat insulation area 2 and a non-heat insulation area 3. There are multiple laminators 9 in the heat insulation area 2. The upper end between the heat insulation area 2 and the non-heat insulation area 3 is isolated by a color steel plate 4. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop, and the other end of the color steel plate 4 is fixedly connected to the side of the support column structure 1. A soft curtain 6 is arranged at the lower end between the heat insulation area 2 and the non-heat insulation area 3. The top of the soft curtain 6 is connected to the end of the color steel plate 4 away from the roof 5 of the lamination workshop, and the bottom of the soft curtain 6 is connected to the ground. There are multiple air supply ends near the ground in the heat insulation area 2, and each air supply end is connected to a blower. The blower is used to input fresh air into the heat insulation area 2 through the air supply end. There is an air outlet end near the roof 5 of the lamination workshop in the heat insulation area 2, and the air outlet end is connected to an exhaust fan.
[0008] In some embodiments, an air inlet pipe is provided at each air outlet end, and the air inlet pipe is flexibly arranged according to requirements so that the air inlet pipe is correspondingly arranged with each laminator 9, enabling the air around the laminator 9 to flow rapidly and facilitating heat dissipation.
[0009] In some embodiments, an air outlet pipe 10 is provided at the air outlet end. Multiple air inlets are spaced at the bottom of the air outlet pipe 10, and the air inlets are convenient for receiving the hot air blown upward by the blower.
[0010] In some embodiments, the soft curtain 6 is made of polyvinyl chloride.
[0011] In some embodiments, the support column structure 1 includes vertical columns 7 and an internal support assembly 8. Multiple vertical columns 7 are spaced in the lamination workshop. The top of the vertical column 7 is connected to the roof 5 of the lamination workshop, and the bottom of the vertical column 7 is connected to the ground. An internal support assembly 8 is spaced between adjacent vertical columns 7. The internal support assembly 8 is used to provide support force and provide an installation position for the color steel plate 4.
[0012] Further, the internal support assembly 8 includes a first vertical rod 81, a first cross rod 82, and a second cross rod 83. The first cross rod 82 and the second cross rod 83 are sequentially arranged from top to bottom between adjacent vertical columns 7. Both ends of the first cross rod 82 and the second cross rod 83 are perpendicularly connected to the side of the vertical column 7. Multiple first vertical rods 81 are spaced and parallelly arranged on the first cross rod 82 and the second cross rod 83. One end of each first vertical rod 81 is fixedly connected to the roof 5 of the lamination workshop, and the other end of each first vertical rod 81 is fixedly connected to the second cross rod 83. The first vertical rod 81 is perpendicularly connected to both the first cross rod 82 and the second cross rod 83. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop, and the left and right sides of the other end of the color steel plate 4 are respectively fixedly connected to the side of the vertical column 7. The lower side of the other end of the color steel plate 4 is perpendicularly connected to the first vertical rod 81 and the second cross rod 83.
[0013] In some embodiments, the inner support assembly 8 includes a first vertical rod 81, a second cross rod 83, and a diagonal support pipe 84. A second cross rod 83 is provided between adjacent columns 7. The two ends of the second cross rod 83 are perpendicularly connected to the sides of the columns 7. A plurality of first vertical rods 81 are arranged in parallel at intervals on the second cross rod 83. One end of each first vertical rod 81 is fixedly connected to the roof 5 of the lamination workshop. There are 2 diagonal support pipes 84 between one end of each first vertical rod 81 and the roof 5 of the lamination workshop. The diagonal support pipes 84 are used to play a role in shock absorption. The adjacent diagonal support pipes 84 are symmetrically arranged. The other end of each first vertical rod 81 is fixedly connected to the second cross rod 83. The first vertical rod 81 and the second cross rod 83 are perpendicularly connected. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop. The left and right sides of the other end of the color steel plate 4 are respectively fixedly connected to the sides of the columns 7. The lower side of the other end of the color steel plate 4 is perpendicularly connected to the first vertical rod 81 and the second cross rod 83.
[0014] Further, the angle formed by the first vertical rod 81 and the diagonal support pipe 84 is 30° - 45°, and preferably 30°.
[0015] In some embodiments, the column 7 is a galvanized square tube corner column 7.
[0016] In some embodiments, the first vertical rod 81, the first cross rod 82, the second cross rod 83, and the diagonal support pipe 84 are all galvanized square tubes.
[0017] The beneficial effects of the present utility model: The present utility model provides a heat dissipation system for a lamination workshop. The upper end between the heat insulation area 2 and the non - heat insulation area 3 is isolated by a color steel plate 4. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop, and the other end of the color steel plate 4 is fixedly connected to the side of the support column structure 1. A soft curtain 6 is provided at the lower end between the heat insulation area 2 and the non - heat insulation area 3. The top of the soft curtain 6 is connected to the end of the color steel plate 4 far from the roof 5 of the lamination workshop, and the bottom of the soft curtain 6 is connected to the ground. A plurality of air supply ends are provided near the ground in the heat insulation area 2, and each air supply end is connected to a blower. An air outlet end is provided near the roof 5 of the lamination workshop in the heat insulation area 2, and the air outlet end is connected to an exhaust fan. A large - space heat insulation area is formed by the color steel plate 4, the soft curtain 6 and the support column structure 1, replacing the existing small - space heat dissipation. While efficiently dissipating heat, it provides a safe and reliable working space for workers. An air inlet pipe is provided at each air outlet end. The air inlet pipe is flexibly arranged according to requirements so that the air inlet pipe is correspondingly arranged with each laminator 9, enabling the air around the laminator 9 to flow quickly and improving the heat dissipation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the overall structure of a heat dissipation system for a lamination workshop of the present application.
[0019] Figure 2It is a partially enlarged structural schematic diagram of a heat dissipation system for a lamination workshop of the present application.
[0020] Figure 3 It is a partially enlarged structural schematic diagram of a heat dissipation system for a lamination workshop of the present application.
[0021] Figure 4 It is a partially enlarged structural schematic diagram of the connection between the second cross bar and the diagonal brace pipe of a heat dissipation system for a lamination workshop of the present application.
[0022] Figure 5 It is a flow chart of air inlet and outlet of a heat dissipation system for a lamination workshop of the present application.
[0023] Description of main component symbols
[0024] Support column structure 1, heat insulation area 2, non - heat insulation area 3, color steel plate 4, roof of lamination workshop 5, soft curtain 6, column 7, inner support assembly 8, first vertical bar 81, first cross bar 82, second cross bar 83, diagonal brace pipe 84, laminator 9, air outlet pipe 10. The following specific embodiments will further illustrate the present utility model in conjunction with the above - mentioned drawings. Specific embodiments
[0025] The following embodiments are described to assist in understanding the present application, and the embodiments are not and should not in any way be construed as limiting the scope of protection of the present application.
[0026] In the following description, those skilled in the art will recognize that throughout this discussion, components may be described as separate functional units (which may include sub - units), but those skilled in the art will recognize that various components or portions thereof may be divided into separate components or integrated together (including being integrated within a single system or component).
[0027] At the same time, the connections between components or systems are not intended to be limited to direct connections. Instead, the data between these components may be modified, reformatted, or otherwise changed by intermediate components. Additionally, additional or fewer connections may be used. It should also be noted that the terms "coupled", "connected", or "input" should be understood to include direct connections, indirect connections through one or more intermediate devices, and wireless connections.
[0028] Embodiment 1:
[0029] As Figure 1 shown, it is an overall structural schematic diagram of a heat dissipation system for a lamination workshop of the present application; as Figure 2 shown, it is a partially enlarged structural schematic diagram of a heat dissipation system for a lamination workshop of the present application; as Figure 3 shown, it is a partially enlarged structural schematic diagram of a heat dissipation system for a lamination workshop of the present application; as Figure 5As shown in the figure, it is the air inlet and outlet flow chart of a heat dissipation system for a lamination workshop of the present application.
[0030] A heat dissipation system for a lamination workshop, including a lamination workshop, in which there is a support column structure 1. The bottom of the support column structure 1 is connected to the ground, and the top of the support column structure 1 is connected to the roof 5 of the lamination workshop. It is characterized in that: the lamination workshop includes a heat insulation area 2 and a non-heat insulation area 3. There are multiple laminators 9 in the heat insulation area 2. The upper end between the heat insulation area 2 and the non-heat insulation area 3 is isolated by a color steel plate 4. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop, and the other end of the color steel plate 4 is fixedly connected to the side of the support column structure 1. A soft curtain 6 is arranged at the lower end between the heat insulation area 2 and the non-heat insulation area 3. The top of the soft curtain 6 is connected to the end of the color steel plate 4 far from the roof 5 of the lamination workshop, and the bottom of the soft curtain 6 is connected to the ground. There are multiple air supply ends near the ground in the heat insulation area 2, and each air supply end is connected to a blower. The blower is used to input fresh air into the heat insulation area 2 through the air supply end. There is an air outlet end near the roof 5 of the lamination workshop in the heat insulation area 2, and the air outlet end is connected to an exhaust fan.
[0031] An air inlet pipe is provided at each air outlet end, and the air inlet pipe is arranged corresponding to each laminator 9, so that the air around the laminator 9 can flow quickly, facilitating heat dissipation.
[0032] An air outlet pipe 10 is provided at the air outlet end. Multiple air inlets are spaced at the bottom of the air outlet pipe 10, and the air inlets are convenient for receiving the hot air blown upward by the blower.
[0033] The soft curtain 6 is made of polyvinyl chloride.
[0034] The support column structure 1 includes columns 7 and an inner support assembly 8. Multiple columns 7 are spaced in the lamination workshop. The top of the column 7 is connected to the roof 5 of the lamination workshop, and the bottom of the column 7 is connected to the ground. An inner support assembly 8 is spaced between adjacent columns 7. The inner support assembly 8 is used to provide support force and provide an installation position for the color steel plate 4.
[0035] The inner support assembly 8 includes a first vertical rod 81, a first horizontal rod 82, and a second horizontal rod 83. The first horizontal rod 82 and the second horizontal rod 83 are successively arranged from top to bottom between adjacent columns 7. Both ends of the first horizontal rod 82 and the second horizontal rod 83 are perpendicularly connected to the side of the column 7. Multiple first vertical rods 81 are spaced and parallelly arranged on the first horizontal rod 82 and the second horizontal rod 83. One end of each first vertical rod 81 is fixedly connected to the roof 5 of the lamination workshop, and the other end of each first vertical rod 81 is fixedly connected to the second horizontal rod 83. The first vertical rod 81 is perpendicularly connected to both the first horizontal rod 82 and the second horizontal rod 83. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop, and the left and right sides of the other end of the color steel plate 4 are respectively fixedly connected to the side of the column 7. The lower side of the other end of the color steel plate 4 is perpendicularly connected to the first vertical rod 81 and the second horizontal rod 83.
[0036] The upright column 7 is a galvanized square tube corner upright column 7.
[0037] The first vertical rod 81, the first horizontal rod 82, and the second horizontal rod 83 are all galvanized square tubes.
[0038] Embodiment 2:
[0039] As Figure 4 shown, it is a partially enlarged structural schematic diagram of the connection between the second horizontal rod and the diagonal brace tube of a heat dissipation system for a lamination workshop of the present application; as Figure 5 shown, it is a flow chart of the air inlet and outlet of a heat dissipation system for a lamination workshop of the present application.
[0040] A heat dissipation system for a lamination workshop includes a lamination workshop, in which a support column structure 1 is provided. The bottom of the support column structure 1 is connected to the ground, and the top of the support column structure 1 is connected to the roof 5 of the lamination workshop. It is characterized in that: the lamination workshop includes a heat insulation area 2 and a non - heat insulation area 3. A plurality of laminators 9 are provided in the heat insulation area 2. The upper end between the heat insulation area 2 and the non - heat insulation area 3 is isolated by a color steel plate 4. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop, and the other end of the color steel plate 4 is fixedly connected to the side of the support column structure 1. A soft curtain 6 is provided at the lower end between the heat insulation area 2 and the non - heat insulation area 3. The top of the soft curtain 6 is connected to the end of the color steel plate 4 away from the roof 5 of the lamination workshop, and the bottom of the soft curtain 6 is connected to the ground. A plurality of air supply ends are provided near the ground in the heat insulation area 2, and each air supply end is connected to an air supply fan. The air supply fan is used to input fresh air into the heat insulation area 2 through the air supply end. An air outlet end is provided near the roof 5 of the lamination workshop in the heat insulation area 2, and the air outlet end is connected to an exhaust fan.
[0041] An air inlet pipe is provided at each air outlet end, and the air inlet pipe is correspondingly arranged with each laminator 9, so that the air around the laminator 9 can flow quickly, facilitating heat dissipation.
[0042] An air outlet pipe 10 is provided at the air outlet end. A plurality of air inlet openings are spaced at the bottom of the air outlet pipe 10, and the air inlet openings are convenient for receiving the hot air blown upward by the air supply fan.
[0043] The soft curtain 6 is made of polyvinyl chloride material.
[0044] The support column structure 1 includes an upright column 7 and an inner support assembly 8. A plurality of upright columns 7 are spaced in the lamination workshop. The top of the upright column 7 is connected to the roof 5 of the lamination workshop, and the bottom of the upright column 7 is connected to the ground. An inner support assembly 8 is spaced between adjacent upright columns 7. The inner support assembly 8 is used to provide support force and provide an installation position for the color steel plate 4.
[0045] The inner support assembly 8 includes a first vertical rod 81, a second cross rod 83, and a diagonal brace pipe 84. A second cross rod 83 is provided between adjacent columns 7. The two ends of the second cross rod 83 are perpendicularly connected to the sides of the columns 7. A plurality of first vertical rods 81 are provided on the second cross rod 83 at intervals and in parallel. One end of each first vertical rod 81 is fixedly connected to the roof 5 of the lamination workshop. There are 2 diagonal brace pipes 84 between one end of each first vertical rod 81 and the roof 5 of the lamination workshop. The diagonal brace pipes 84 are used to play a role in shock absorption. Adjacent diagonal brace pipes 84 are symmetrically arranged. The other end of each first vertical rod 81 is fixedly connected to the second cross rod 83. The first vertical rod 81 and the second cross rod 83 are perpendicularly connected. One end of the color steel plate 4 is fixedly connected to the roof 5 of the lamination workshop. The left and right sides of the other end of the color steel plate 4 are respectively fixedly connected to the sides of the columns 7. The lower side of the other end of the color steel plate 4 is perpendicularly connected to the first vertical rod 81 and the second cross rod 83.
[0046] The angle formed by the first vertical rod 81 and the diagonal brace pipe 84 is 30° - 45°, and preferably 30°.
[0047] The column 7 is a galvanized square pipe corner column 7.
[0048] The first vertical rod 81, the first cross rod 82, the second cross rod 83, and the diagonal brace pipe 84 are all galvanized square pipes.
[0049] Although the present application has disclosed multiple aspects and embodiments, other aspects and embodiments will be obvious to those skilled in the art. Without departing from the concept of the present application, several deformations and improvements can still be made, and these all fall within the protection scope of the present application. The multiple aspects and embodiments disclosed in the present application are only for illustrative purposes and are not intended to limit the present application. The actual protection scope of the present application is subject to the claims.
Claims
1. A heat dissipation system for a laminating workshop, comprising a laminating workshop, wherein a support column structure (1) is provided in the laminating workshop, wherein the bottom of the support column structure (1) is connected to the ground, and the top of the support column structure (1) is connected to the roof (5) of the laminating workshop, characterized in that: The laminating workshop comprises an insulating area (2) and a non-insulating area (3). A plurality of laminating machines (9) are arranged in the insulating area (2). The upper end between the insulating area (2) and the non-insulating area (3) is isolated by a color steel plate (4). One end of the color steel plate (4) is fixedly connected to the roof (5) of the laminating workshop, and the other end of the color steel plate (4) is fixedly connected to the side of the supporting column structure (1). A soft curtain (6) is arranged at the lower end between the insulating area (2) and the non-insulating area (3). The top of the soft curtain (6) is connected to the end of the color steel plate (4) far from the roof (5) of the laminating workshop, and the bottom of the soft curtain (6) is connected to the ground. A plurality of air supply ends are arranged near the ground in the insulating area (2), and each air supply end is connected to an air supply fan. The air supply fan is used to input fresh air into the insulating area (2) through the air supply end. An air outlet end is arranged at the end of the insulating area (2) near the roof (5) of the laminating workshop, and the air outlet end is connected to an exhaust fan.
2. The lamination workshop heat dissipation system according to claim 1, characterized in that: Each air outlet end is provided with an air inlet pipe, and the air inlet pipe is arranged corresponding to each laminator (9), so that the air around the laminator (9) can flow quickly, which is convenient for heat dissipation.
3. The lamination workshop heat dissipation system according to claim 1, characterized in that: The air outlet end is provided with an air outlet pipe (10), and a plurality of air inlets are arranged at intervals at the bottom of the air outlet pipe (10), so that the air inlets can receive the hot air blown upward by the blower.
4. The lamination workshop heat dissipation system according to claim 1, characterized in that: The soft curtain (6) is made of polyvinyl chloride.
5. The lamination workshop heat dissipation system according to claim 1, characterized in that: The support column structure (1) comprises a column (7) and an internal support assembly (8). A plurality of columns (7) are arranged at intervals in the laminating workshop. The top of the column (7) is connected to the roof (5) of the laminating workshop, and the bottom of the column (7) is connected to the ground. Internal support assemblies (8) are arranged at intervals between adjacent columns (7). The internal support assemblies (8) are used to provide support force and provide an installation position for the color steel plate (4).
6. The heat dissipation system for a lamination workshop as claimed in claim 5, characterized in that: The inner support assembly (8) comprises a first vertical rod (81), a first cross rod (82), and a second cross rod (83). The first cross rod (82) and the second cross rod (83) are arranged in sequence from top to bottom between the adjacent columns (7). Both ends of the first cross rod (82) and the second cross rod (83) are vertically connected to the side of the column (7). A plurality of first vertical rods (81) are arranged in parallel at intervals on the first cross rod (82) and the second cross rod (83). One end of each first vertical rod (81) is connected to the layer The press workshop roof (5) is fixedly connected, the other end of each first vertical rod (81) is fixedly connected to the second cross rod (83), the first vertical rod (81) is vertically connected to the first cross rod (82) and the second cross rod (83), one end of the color steel plate (4) is fixedly connected to the press workshop roof (5), the left and right sides of the other end of the color steel plate (4) are respectively fixedly connected to the side edges of the column (7), and the lower side of the other end of the color steel plate (4) is vertically connected to the first vertical rod (81) and the second cross rod (83).
7. The heat dissipation system for a lamination workshop as claimed in claim 5, characterized in that: The inner support assembly (8) comprises a first vertical rod (81), a second cross rod (83), and an oblique bracing tube (84). A second cross rod (83) is provided between adjacent columns (7). Both ends of the second cross rod (83) are vertically connected to the side of the column (7). A plurality of first vertical rods (81) are arranged in parallel and at intervals on the second cross rod (83). One end of each first vertical rod (81) is fixedly connected to the roof (5) of the laminating workshop. Two oblique bracing tubes (84) are provided between one end of each first vertical rod (81) and the roof (5) of the laminating workshop. 4), the diagonal bracing tube (84) is used to play a shock-absorbing role, and adjacent diagonal bracing tubes (84) are symmetrically arranged. The other end of each first vertical rod (81) is fixedly connected to the second cross rod (83), and the first vertical rod (81) and the second cross rod (83) are vertically connected. One end of the color steel plate (4) is fixedly connected to the roof (5) of the laminating workshop, and the left and right sides of the other end of the color steel plate (4) are respectively fixedly connected to the side edges of the column (7), and the lower side of the other end of the color steel plate (4) is vertically connected to the first vertical rod (81) and the second cross rod (83).
8. The heat dissipation system for a lamination workshop as claimed in claim 7, characterized in that: The angle formed by the first vertical rod (81) and the diagonal support tube (84) is 30°-45°.
9. The heat dissipation system for a lamination workshop as claimed in claim 5, characterized in that: The column (7) is a galvanized square tube corner column.
10. The heat dissipation system for a lamination workshop according to claim 7, characterized in that: The first vertical rod (81), the first cross rod (82), the second cross rod (83) and the diagonal bracing tube (84) are all galvanized square tubes.
Citation Information
Patent Citations
Cooling system of air compression station
CN214221614U