Heat dissipation type prefabricated cabin
By setting relatively set vents and air conditioning components in the prefabricated cabin, the problem of poor cooling effect of the prefabricated cabin in the prior art is solved, and a more efficient heat dissipation effect is achieved, ensuring the normal operation of the SVG device.
Patent Information
- Application Number
- CN202421466893.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-25
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2034-06-25
AI Technical Summary
The prefabricated chamber in the prior art has limited cooling effect and cannot effectively reduce the heat generated by the operation of the SVG device, affecting the normal operation of the device.
A heat dissipation prefabricated cabin is designed. By setting relatively first and second vents on the prefabricated cabin body, air flow is accelerated, heat exchange efficiency is improved, and air conditioning components are installed on one side of the prefabricated cabin body to control the temperature in the prefabricated cabin in extreme weather.
It effectively improves the cooling effect of the prefabricated cabin, ensures the stable operation of the SVG device under a suitable temperature environment, and improves the cooling performance of the prefabricated cabin.
Smart Images

Figure CN223039454U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of SVG device heat dissipation, and particularly to a heat dissipation type prefabricated cabin. Background Art
[0002] A Static Var Generator (SVG) is a reactive power compensation device used in a power system. The SVG device is usually placed in a prefabricated cabin to reduce the damage to the SVG device caused by factors such as dust, rain, and humidity in the external environment. During operation, the SVG device generates a certain amount of heat, causing the temperature in the prefabricated cabin to rise. Excessive temperature will affect the normal operation of the SVG device.
[0003] In the related art, ventilation openings are provided in the prefabricated cabin, so that the air inside the cabin and the air outside the cabin exchange heat only through the ventilation openings to achieve cooling.
[0004] However, the cooling effect of the existing prefabricated cabin is limited. Utility Model Content
[0005] The embodiments of this application provide a heat dissipation type prefabricated cabin to solve the problem of limited cooling effect of the existing prefabricated cabin and improve the cooling effect.
[0006] The heat dissipation type prefabricated cabin provided by the embodiments of this application includes:
[0007] A prefabricated cabin body, the prefabricated cabin body is provided with a first ventilation opening and a second ventilation opening, the first ventilation opening and the second ventilation opening are arranged opposite to each other, the first ventilation opening is provided with a first baffle that can be opened and closed, and the second ventilation opening is provided with a second baffle that can be opened and closed.
[0008] An air conditioning component, arranged on one side of the prefabricated cabin body, the prefabricated cabin body is provided with a third ventilation opening, and the air outlet of the air conditioning component is communicated with the inside of the prefabricated cabin body through the third ventilation opening.
[0009] In some embodiments, the prefabricated cabin further includes a first driving member and a second driving member.
[0010] A first driving member, the output part of the first driving member is connected to the first baffle, and the first driving member drives the first baffle to move relative to the prefabricated cabin body to control the opening degree of the first baffle.
[0011] A second driving member, the output part of the second driving member is connected to the second baffle, and the first driving member drives the second baffle to move relative to the prefabricated cabin body to control the opening degree of the second baffle.
[0012] In some embodiments, the prefabricated cabin further includes a control component, and the control component includes:
[0013] A temperature sensor is disposed inside the prefabricated cabin body and is used to detect the temperature inside the prefabricated cabin body;
[0014] A humidity sensor is disposed inside the prefabricated cabin body and is used to detect the humidity inside the prefabricated cabin body;
[0015] A controller is electrically connected to the first driving member, the second driving member, the temperature sensor, the humidity sensor, and the air-conditioning assembly.
[0016] In some embodiments, a first track and a second track are provided on the prefabricated cabin body. The first baffle is slidably mounted on the first track, and the second baffle is slidably mounted on the second track.
[0017] In some embodiments, the air-conditioning assembly includes:
[0018] A prefabricated box is disposed outside the prefabricated cabin body, and the prefabricated box is connected to the prefabricated cabin body. The prefabricated box surrounds the periphery of the third ventilation opening;
[0019] An air-conditioning indoor unit is disposed inside the prefabricated box, and the air outlet of the air-conditioning indoor unit is disposed opposite to the third ventilation opening;
[0020] An air-conditioning outdoor unit is disposed outside the prefabricated box, and the air-conditioning outdoor unit is connected to the air-conditioning indoor unit through a pipeline.
[0021] In some embodiments, a sealing member is provided at the connection between the prefabricated box and the prefabricated cabin body.
[0022] In some embodiments, the prefabricated box is connected to the prefabricated cabin body through a connecting member.
[0023] In some embodiments, the connecting member is a stainless steel rivet, and a galvanized layer is provided on the surface of the rivet.
[0024] In some embodiments, the prefabricated cabin further includes a air supply mechanism, and the air supply mechanism includes:
[0025] A conveying main pipe is disposed at the third ventilation opening, and the inlet end of the conveying main pipe is connected to the air outlet of the air-conditioning indoor unit;
[0026] A conveying branch pipe, the inlet end of the conveying branch pipe is connected to the outlet end of the conveying main pipe, and the outlet end of the conveying branch pipe is dispersedly disposed inside the prefabricated cabin body.
[0027] In some embodiments, a first dust-proof member is provided at the first ventilation opening, and a second dust-proof member is provided at the second ventilation opening.
[0028] The heat dissipation type prefabricated cabin provided by the embodiment of the present application includes a prefabricated cabin body and an air conditioning assembly. The prefabricated cabin body is provided with a first ventilation opening and a second ventilation opening. A first baffle is provided at the first ventilation opening, and a second baffle is provided at the second ventilation opening. An air convection path is formed through the first ventilation opening and the second ventilation opening, which accelerates the air flow and improves the heat exchange efficiency. At the same time, under high temperature weather conditions, the temperature inside the prefabricated cabin can also be controlled by the air conditioning assembly, effectively improving the heat dissipation and cooling performance of the prefabricated cabin. Therefore, the heat dissipation type prefabricated cabin provided by the embodiment of the present application effectively improves the cooling effect, which is beneficial to ensuring the normal operation of the SVG device. Brief Description of the Drawings
[0029] The drawings here are incorporated into the description and form a part of this description, showing embodiments consistent with the present application, and are used together with the description to explain the principles of the present application.
[0030] Figure 1 It is a schematic structural diagram of the heat dissipation type prefabricated cabin provided by the embodiment of the present application;
[0031] Figure 2 It is Figure 1 a schematic cross-sectional structural diagram along the A-A direction;
[0032] Figure 3 It is Figure 2 an enlarged structural diagram at B in
[0033] Figure 4 a schematic structural diagram of the air supply structure in the heat dissipation type prefabricated cabin provided by the embodiment of the present application.
[0034] Description of the Reference Numerals:
[0035] 100 - prefabricated cabin body; 101 - SVG device; 102 - seal; 103 - connecting piece; 110 - first ventilation opening; 111 - first baffle; 120 - second ventilation opening; 121 - second baffle; 130 - third ventilation opening; 140 - temperature sensor; 150 - humidity sensor;
[0036] 200 - air conditioning assembly; 210 - prefabricated box; 220 - air conditioner indoor unit; 230 - air conditioner outdoor unit;
[0037] 300 - air supply mechanism; 310 - conveying main pipe; 320 - conveying branch pipe.
[0038] Through the above drawings, the specific embodiments of the present application have been shown, and there will be more detailed descriptions hereinafter. These drawings and the text description are not intended to limit the scope of the concept of the present application in any way, but to explain the concept of the present application to those skilled in the art by referring to specific embodiments. Detailed Embodiments
[0039] Exemplary embodiments will be described in detail herein, examples of which are shown in the accompanying drawings. When the following description refers to the drawings, the same numbers in different drawings represent the same or similar elements unless otherwise indicated. The implementations described in the following exemplary embodiments do not represent all implementations consistent with the present application. Instead, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims.
[0040] The terms "first", "second", "third", "fourth", etc. (if any) in the specification and claims of this application and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the numbers used in this way can be interchanged where appropriate, so that the embodiments of the present application described herein can, for example, be implemented in an order other than those illustrated or described herein.
[0041] In the embodiments of the present application, the words "exemplary" or "for example" are used to indicate examples, illustrations or descriptions. Any embodiment or design described as "exemplary" or "for example" in the present application should not be interpreted as being more preferred or more advantageous than other embodiments or designs. Specifically, the use of words such as "exemplary" or "for example" is intended to present related concepts in a specific way.
[0042] SVG devices improve the power supply environment of the power network by quickly adjusting reactive power, increasing the power factor of the power grid, and reducing power losses in power transformers and transmission lines.
[0043] Since the SVG device generates a certain amount of heat during operation, causing the ambient temperature in the prefabricated cabin to rise, excessive temperature will affect the normal operation of the SVG device and even cause damage to the SVG device, so effective heat dissipation technology is required.
[0044] The existing technology achieves the purpose of heat dissipation through air flow, which relies on the temperature difference between the internal temperature of the prefabricated cabin and the temperature outside, thereby causing the air to flow naturally to achieve heat transfer and heat dissipation. When the SVG device is running, the internal heat will increase the temperature of the radiator, thereby forming a temperature difference with the surrounding air. This temperature difference will drive the air to convect naturally on the surface of the radiator, taking the heat away from the radiator and dissipating it into the surrounding environment.
[0045] However, only using natural convection to dissipate heat in the prefabricated cabin does not achieve a good cooling effect when the temperature difference between the inside and outside of the prefabricated cabin is small. For example, when the outside temperature of the prefabricated cabin is high, due to the small temperature difference between the inside and outside of the prefabricated cabin, only using vents to cool the cabin by air convection does not have a good cooling effect. What's worse, the hot air outside the prefabricated cabin flows back into the interior of the prefabricated cabin, which in turn increases the temperature inside the prefabricated cabin.
[0046] Based on this, the present application provides a heat-dissipating prefabricated cabin. By providing a first ventilation opening and a second ventilation opening which are oppositely arranged on the prefabricated cabin body, the air flow is accelerated, the heat exchange efficiency is improved, and thus the cooling efficiency is increased. Moreover, an air-conditioning assembly is arranged on one side of the prefabricated cabin body. In extreme weather, the temperature inside the prefabricated cabin can be controlled, effectively ensuring that the SVG device operates in a suitable temperature environment. Therefore, the prefabricated cabin provided by the present application can solve the technical problem of poor cooling effect of the existing prefabricated cabin.
[0047] The following uses specific embodiments to elaborate in detail on the technical solution of the present application and how the technical solution of the present application solves the above technical problems. These several specific embodiments below can be combined with each other, and for the same or similar concepts or processes, they may not be repeated in some embodiments. The embodiments of the present application will be described below with reference to the accompanying drawings.
[0048] Please refer to Figure 1 and Figure 2 The heat-dissipating prefabricated cabin provided by the embodiment of the present application includes a prefabricated cabin body 100 and an air-conditioning assembly 200.
[0049] The prefabricated cabin body 100 is provided with a first ventilation opening 110 and a second ventilation opening 120. The first ventilation opening 110 and the second ventilation opening 120 are oppositely arranged. The first ventilation opening 110 is provided with an openable and closable first baffle 111, and the second ventilation opening 120 is provided with an openable and closable second baffle 121.
[0050] The air-conditioning assembly 200 is arranged on one side of the prefabricated cabin body 100. The prefabricated cabin body 100 is provided with a third ventilation opening 130. The air outlet of the air-conditioning assembly 200 is communicated with the inside of the prefabricated cabin body 100 through the third ventilation opening 130.
[0051] The SVG device 101 is placed inside the prefabricated cabin body 100. The prefabricated cabin body 100 can protect the SVG device 101, reducing the damage caused to the SVG device 101 by dust, rain, and moisture in the external environment. The first baffle 111 and the second baffle 121 are openable and closable, and the opening and closing degree of the baffle can be adjusted as needed to control the air flow and the heat dissipation effect. The air-conditioning assembly 200 can automatically adjust its operating state according to the temperature inside the prefabricated cabin, ensuring that the temperature inside the prefabricated cabin always remains within a suitable range.
[0052] The heat-dissipating prefabricated cabin of the embodiment of the present application can operate in the following two modes in the actual application scenario.
[0053] Under normal weather conditions, heat dissipation can be achieved by adjusting the opening and closing degrees of the first baffle 111 and the second baffle 121, and utilizing natural air convection. When the temperature difference between the inside and outside of the prefabricated cabin is large, the first baffle 111 and the second baffle 121 are opened to form a larger ventilation opening, accelerating air flow and improving the heat dissipation effect. When the temperature difference between the inside and outside of the prefabricated cabin is small, the opening degree of the ventilation opening can be appropriately reduced to reduce the entry of external dust and moisture.
[0054] Under extreme weather conditions, such as high-temperature weather, the air-conditioning assembly 200 can be activated for temperature adjustment. The air outlet of the air-conditioning assembly 200 sends cold air or hot air into the interior of the prefabricated cabin through the third ventilation opening 130, and exchanges heat with the air inside the prefabricated cabin, thereby controlling the temperature inside the prefabricated cabin. The operating state of the air-conditioning assembly 200 can be automatically adjusted according to the temperature inside the prefabricated cabin to ensure that the temperature inside the prefabricated cabin always remains within a suitable range.
[0055] In addition, when the opening degrees of the first baffle 111 and the second baffle 121 are different, air flow will be accelerated. For example, if the opening degree of the first baffle 111 is greater than that of the second baffle 121, the air outlet size at the first ventilation opening 110 is larger than that at the second ventilation opening 120, making the air flow rate at the second ventilation opening 120 greater than that at the second ventilation opening 120, thus forming a faster-flowing air current, which in turn improves the air heat exchange efficiency and is conducive to increasing the heat dissipation rate of the prefabricated cabin.
[0056] Exemplarily, the first baffle 111 and the second baffle 121 are installed at the corresponding ventilation openings by means of a sliding structure or a rotating structure, such as a chute and pulley structure, a rotating shaft and swing rod structure, etc. The main functional component of the air-conditioning assembly 200 is an air conditioner, and the air outlet of the air conditioner faces the third ventilation opening 130. In this way, the air conditioner can adjust the temperature inside the prefabricated cabin body 100 according to the actual situation.
[0057] Therefore, in the embodiment of the present application, the relatively arranged first ventilation opening 110 and second ventilation opening 120 form an air convection path, thereby accelerating air flow and improving the heat exchange efficiency. Moreover, under extreme high-temperature weather conditions, the temperature inside the prefabricated cabin can be controlled by the air-conditioning assembly 200, effectively improving the heat dissipation and cooling performance of the prefabricated cabin and ensuring the stable operation of the SVG device 101 in a suitable temperature environment.
[0058] In some embodiments, the heat-dissipating prefabricated cabin drives the closing of the first baffle 111 and the second baffle 121 in a mechanical drive manner, and the prefabricated cabin further includes a first driving member and a second driving member.
[0059] The first driving member, the output part of the first driving member is connected to the first baffle 111, and the first driving member drives the first baffle 111 to move relative to the prefabricated cabin body 100 to control the opening degree of the first baffle 111.
[0060] The second driving member, the output part of the second driving member is connected to the second baffle 121, and the first driving member drives the second baffle 121 to move relative to the prefabricated cabin body 100 to control the opening degree of the second baffle 121.
[0061] The first driving member controls the opening and closing of the first baffle 111, and the second driving member controls the opening and closing of the second baffle 121. In this way, it is avoided to control the first baffle 111 and the second baffle 121 manually, which is beneficial to reducing the labor intensity. Moreover, by controlling the opening degrees of the first baffle 111 and the second baffle 121 in a mechanical driving manner, the opening and closing degree of the ventilation opening can be accurately controlled, and the heat dissipation effect can be improved.
[0062] Exemplarily, both the first driving member and the second driving member are motor driving devices, such as stepping motors, servo motors, etc. The motor driving device drives the baffle to move along a preset track by the rotation of the motor, so as to adjust the opening degree of the first ventilation opening 110.
[0063] Furthermore, in some embodiments, the heat dissipation type prefabricated cabin further includes a control component, and the control component includes a temperature sensor 140, a humidity sensor 150 and a controller.
[0064] The temperature sensor 140 is arranged inside the prefabricated cabin body 100 and is used for detecting the temperature inside the prefabricated cabin body 100. The humidity sensor 150 is arranged inside the prefabricated cabin body 100 and is used for detecting the humidity inside the prefabricated cabin body 100. The controller is electrically connected to the first driving member, the second driving member, the temperature sensor 140, the humidity sensor 150 and the air conditioning component 200.
[0065] The temperature sensor 140 can detect the temperature inside the prefabricated cabin in real time and transmit the detected temperature data to the controller. The humidity sensor 150 can detect the humidity inside the prefabricated cabin in real time and transmit the detected humidity data to the controller. The controller receives the data from the temperature sensor 140 and the humidity sensor 150, calculates the optimal opening degree of the ventilation opening and the operating state of the air conditioner according to the preset algorithms and strategies, and issues a control signal to drive the first driving member and the second driving member to adjust the opening degrees of the first ventilation opening and the second ventilation opening, and to control the operating state of the air conditioning component 200.
[0066] The working principle of the control component is as follows: when the temperature or humidity inside the prefabricated cabin exceeds the preset threshold, the controller will receive signals from the temperature sensor 140 or the humidity sensor 150; based on the received data, the controller calculates the optimal opening degree of the ventilation opening and the operating state of the air conditioner, and sends out control signals; after receiving the control signals, the first driving member and the second driving member drive the first baffle 111 and the second baffle 121 to move to the designated positions to adjust the opening degree of the ventilation opening. At the same time, the air conditioner component 200 also adjusts its operating state or mode according to the control signal to cool, heat, dehumidify, etc. the inside of the prefabricated cabin, so as to maintain the temperature and humidity inside the prefabricated cabin within a suitable range.
[0067] Therefore, the heat dissipation type prefabricated cabin in the embodiment of the present application can maintain a stable heat dissipation effect under different environmental conditions through the air conditioner component 200, ensure the stable operation of the SVG device 101 in a suitable temperature environment, thereby realizing the intelligent control of the internal environment of the prefabricated cabin, which is beneficial to improving the energy efficiency and reliability of the prefabricated cabin and reducing the manual labor maintenance efficiency.
[0068] Exemplarily, the controller is a programmable logic controller (PLC controller).
[0069] In some embodiments, the prefabricated cabin body 100 is provided with a first track and a second track, the first baffle 111 is slidably installed on the first track, and the second baffle 121 is slidably installed on the second track.
[0070] In this way, the first baffle 111 can slide along the first track, and the second baffle 121 can slide along the second track to realize the opening degree adjustment. Exemplarily, the first baffle 111 is provided with pulleys or sliders that are slidably matched with the first track, and the second baffle 121 is provided with pulleys or sliders that are slidably matched with the second track.
[0071] In some embodiments, the air conditioner component 200 includes a prefabricated box 210, an air conditioner indoor unit 220, and an air conditioner outdoor unit 230.
[0072] The prefabricated box 210 is arranged outside the prefabricated cabin body 100, and the prefabricated box 210 is connected to the prefabricated cabin body 100. The prefabricated box 210 surrounds the periphery of the third ventilation opening 130. The prefabricated box 210 and the prefabricated cabin body 100 form a relatively enclosed space to protect the air conditioner indoor unit 220 from the influence of the external environment and can optimize the control effect of the air conditioner system on the temperature inside the prefabricated cabin.
[0073] The air conditioner indoor unit 220 is arranged inside the prefabricated box 210, and the air outlet of the air conditioner indoor unit 220 is arranged opposite to the third ventilation opening 130. The air conditioner outdoor unit 230 is arranged outside the prefabricated box 210, and the air conditioner outdoor unit 230 is connected to the air conditioner indoor unit 220 through a pipeline.
[0074] When the indoor unit 220 of the air conditioner operates, cold air or hot air can directly enter the prefabricated cabin body 100 through the third ventilation opening 130, achieving rapid adjustment of the temperature inside the prefabricated cabin. The main function of the outdoor unit 230 of the air conditioner is to provide a power source for the indoor unit 220 of the air conditioner and adjust the temperature inside the prefabricated cabin through refrigerant circulation. Since the outdoor unit 230 of the air conditioner is installed in the outdoor environment, certain shielding objects can be set to protect it to ensure its long-term stable operation.
[0075] In some embodiments, refer to Figure 3 , a seal 102 is provided at the connection between the prefabricated box 210 and the prefabricated cabin body 100.
[0076] The seal 102 is beneficial to improving the sealing performance at the connection between the prefabricated box 210 and the prefabricated cabin body 100. Exemplarily, the seal 102 is a sealing strip made of materials such as silicone rubber and ethylene propylene diene monomer. These materials have good elasticity and weather resistance, which is beneficial to preventing external dust, moisture, etc. from entering the prefabricated box 210 and the prefabricated cabin body 100 and protecting the indoor unit 220 of the air conditioner from pollution and damage. At the same time, the seal 102 can also reduce the heat exchange between the inside of the prefabricated box 210 and the external environment and improve the energy efficiency of the air conditioning system.
[0077] In some embodiments, refer to Figure 3 , the prefabricated box 210 is connected to the prefabricated cabin body 100 through a connecting member 103.
[0078] Exemplarily, the connecting member 103 is a riveting nail. The cabin wall of the prefabricated cabin body 100 close to the prefabricated box 210 and the box wall of the prefabricated box 210 close to the prefabricated cabin body 100 are provided with a plurality of riveting grooves. The plurality of riveting grooves are arranged along the edge of the joint part, and riveting nails are provided in the plurality of riveting grooves.
[0079] In order to further improve the rust prevention and corrosion prevention effects, the connecting member 103 is a stainless steel riveting nail, and the surface of the riveting nail is provided with a galvanized layer.
[0080] In some embodiments, refer to Figure 4 , the heat dissipation type prefabricated cabin further includes a air supply mechanism 300, and the air supply mechanism 300 includes a conveying main pipe 310 and conveying branch pipes 320.
[0081] The conveying main pipe 310 is arranged at the third ventilation opening 130, and the inlet end of the conveying main pipe 310 is connected to the air outlet of the indoor unit 220 of the air conditioner.
[0082] The inlet end of the conveying branch pipe 320 is connected to the outlet end of the conveying main pipe 310, and the outlet ends of the conveying branch pipes 320 are dispersedly arranged inside the prefabricated cabin body 100.
[0083] The function of the main delivery pipe 310 is to guide the cold air generated by the indoor unit 220 of the air conditioner into the interior of the prefabricated cabin body 100. The outlet ends of the branch delivery pipes 320 are dispersedly arranged inside the prefabricated cabin body 100 to ensure that the cold air or hot air can be evenly distributed to all corners of the prefabricated cabin. The number and layout of the branch delivery pipes 320 can be reasonably designed according to the size of the prefabricated cabin and the layout of the internal equipment to achieve the best air supply effect.
[0084] The heat dissipation type prefabricated cabin of the embodiment of the present application blows air through the air supply mechanism 300, so that the cold air can be evenly distributed to all corners inside the prefabricated cabin body 100, thereby improving the cooling performance of the prefabricated cabin.
[0085] In some embodiments, a first dust-proof member is provided at the first ventilation opening 110, and a second dust-proof member is provided at the second ventilation opening 120.
[0086] The first dust-proof member and the second dust-proof member can block external dust from entering the interior of the prefabricated cabin body 100.
[0087] Exemplarily, the first dust-proof member and the second dust-proof member can be made of a metal mesh, a filter screen or other materials with good filtering performance to make the dust-proof member, so as to effectively block dust from entering while not affecting the ventilation effect.
[0088] Those skilled in the art will readily conceive of other embodiments of the present application after considering the specification and practicing the embodiments disclosed herein. The present application is intended to cover any variations, uses, or adaptations of the present application, which follow the general principles of the present application and include the common general knowledge or conventional technical means in the technical field not disclosed in the present application. The specification and embodiments are only regarded as exemplary, and the true scope and spirit of the present application are pointed out by the claims.
[0089] It should be understood that the present application is not limited to the precise structures described above and shown in the drawings, and various modifications and changes can be made without departing from its scope. The scope of the present application is only limited by the appended claims.
Claims
1. A heat dissipation prefabricated cabin, characterized in that: include: A prefabricated cabin body, wherein the prefabricated cabin body is provided with a first vent and a second vent, the first vent is arranged opposite to the second vent, the first vent is provided with a first baffle that can be opened and closed, and the second vent is provided with a second baffle that can be opened and closed; An air conditioning component is arranged on one side of the prefabricated cabin body. The prefabricated cabin body is provided with a third vent. An air outlet of the air conditioning component is communicated with the interior of the prefabricated cabin body through the third vent.
2. The heat dissipation prefabricated cabin according to claim 1, characterized in that: Also includes: a first driving member, wherein an output portion of the first driving member is connected to the first baffle, and the first driving member drives the first baffle to move relative to the prefabricated cabin body to control the opening degree of the first baffle; A second driving member, wherein an output portion of the second driving member is connected to the second baffle, and the first driving member drives the second baffle to move relative to the prefabricated cabin body to control the opening degree of the second baffle.
3. The heat dissipation prefabricated cabin according to claim 2 is characterized in that: Also included is a control component, the control component comprising: A temperature sensor is disposed inside the prefabricated cabin body and is used to detect the temperature inside the prefabricated cabin body; A humidity sensor is disposed inside the prefabricated cabin body and is used to detect the humidity inside the prefabricated cabin body; A controller is electrically connected to the first driving member, the second driving member, the temperature sensor, the humidity sensor and the air conditioning component.
4. The heat dissipation prefabricated cabin according to claim 1, characterized in that: The prefabricated cabin body is provided with a first track and a second track, the first baffle is slidably mounted on the first track, and the second baffle is slidably mounted on the second track.
5. The heat dissipation prefabricated cabin according to any one of claims 1 to 4, characterized in that: The air conditioning assembly comprises: A prefabricated box is arranged outside the prefabricated cabin body, and the prefabricated box is connected to the prefabricated cabin body, and the prefabricated box is arranged around the third vent; An air conditioner indoor unit is arranged in the prefabricated box, and an air outlet of the air conditioner indoor unit is arranged opposite to the third vent; The air conditioner outdoor unit is arranged outside the prefabricated box, and the air conditioner outdoor unit is connected to the air conditioner indoor unit through a pipeline.
6. The heat dissipation prefabricated cabin according to claim 5, characterized in that: A sealing member is provided at the connection between the prefabricated box and the prefabricated cabin body.
7. The heat dissipation prefabricated cabin according to claim 5, characterized in that: The prefabricated box is connected to the prefabricated cabin body via a connecting piece.
8. The heat dissipation prefabricated cabin according to claim 7, characterized in that: The connecting piece is a stainless steel rivet nail, and the surface of the rivet nail is provided with a galvanized layer.
9. The heat dissipation prefabricated cabin according to claim 5, characterized in that: It also includes an air supply mechanism, the air supply mechanism comprising: A delivery main pipe is provided at the third vent, and the inlet end of the delivery main pipe is connected to the air outlet of the air conditioner indoor unit; The delivery branch pipe has an inlet end connected to the outlet end of the delivery main pipe, and the outlet end of the delivery branch pipe is dispersedly arranged inside the prefabricated cabin body.
10. The heat dissipation prefabricated cabin according to any one of claims 1 to 4, characterized in that: The first vent is provided with a first dustproof piece, and the second vent is provided with a second dustproof piece.