Energy-saving and environment-friendly air conditioner radiator
By designing limiting components and supporting mechanisms, and combining temperature sensors and controllers, the problems of inconvenient installation and insufficient temperature monitoring of air conditioning radiators are solved, resulting in a stable and flexible radiator system that improves operating efficiency and safety.
Patent Information
- Application Number
- CN202511522580.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2045-10-23
AI Technical Summary
Existing air conditioner radiators have a relatively fixed design, which cannot be flexibly adjusted, making installation and maintenance inconvenient. Temperature monitoring lacks intelligence, and the replacement and maintenance process is complicated.
The system combines limiting components and support mechanisms, using sliding snap-fit and threaded connection designs to ensure stable support and precise positioning of the radiator; combined with temperature sensors and controllers, it enables real-time monitoring and automatic feedback.
It improves the operational stability and efficiency of the radiator, ensures smooth refrigerant flow, reduces the risk of failure, and simplifies the installation and maintenance process.
Smart Images

Figure CN120970038B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of air conditioner radiators, and in particular relates to an energy-saving and environmentally friendly air conditioner radiator. Background Technology
[0002] Existing air conditioning radiator systems typically consist of a radiator body, an inlet, an outlet, and connecting pipes. Heat exchange is achieved through the circulation of refrigerant. The radiator body is generally composed of copper pipes and aluminum fins, utilizing its extensive surface area to improve heat dissipation efficiency. The inlet and outlet are connected to the compressor and receiver-drier of the external air conditioning system, respectively. The refrigerant circulates through the pipes, absorbing and releasing heat. Existing air conditioning radiator designs usually rely on a fixed structural layout and are mostly fixed by mechanical support components, providing a certain degree of stability and durability. In addition, some systems are equipped with temperature sensors to detect temperature changes in the radiator, helping to understand the heat dissipation effect and equipment operating status.
[0003] However, existing technologies also have certain drawbacks. First, the design of traditional air conditioner radiators is relatively fixed and cannot be flexibly adjusted according to different models and sizes of air conditioning equipment, resulting in inconvenience in installation and maintenance operations under different usage environments. Second, existing temperature monitoring systems usually lack intelligent functions, cannot provide real-time feedback on the radiator's operating status, and cannot automatically remind users to clean or replace it in a timely manner, resulting in certain blind spots in usage. Furthermore, the replacement and maintenance of air conditioner radiators often require a large space and are relatively complex to operate, which makes it quite difficult for maintenance personnel to perform maintenance tasks. Summary of the Invention
[0004] The purpose of this invention is to address the shortcomings of existing technologies mentioned in the background section. Traditional air conditioner radiators have a relatively fixed design, making them unsuitable for flexible adjustments based on different models and sizes of air conditioning equipment. This results in inconvenient installation and maintenance under various usage environments. Furthermore, existing temperature monitoring systems typically lack intelligent functionality, failing to provide real-time feedback on radiator operation or automatically remind users to clean or replace them, creating blind spots in their use. Moreover, replacing and maintaining air conditioner radiators often requires significant space and involves complex operations, posing considerable difficulties for maintenance personnel. Therefore, this invention provides an energy-saving and environmentally friendly air conditioner radiator.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: an energy-saving and environmentally friendly air conditioner radiator, comprising a fixed base, a limiting component, a supporting mechanism, and an assembly component, wherein two sets of limiting components are provided and symmetrically slidably engaged with the top of the fixed base; the supporting mechanism is installed at the top center of the fixed base for bottom support of the radiator body; the assembly component comprises a sliding sleeve, a support seat, an adjusting pipe, a first connector, and a second connector; wherein the sliding sleeve is slidably engaged with the limiting component; the support seat is fixedly connected to the outer wall of the sliding sleeve; one end of the adjusting pipe is threaded through the outer wall of the support seat and fixedly connected to one end of the first connector; the other end of the adjusting pipe is connected to the second connector; the outer wall of the adjusting pipe is provided with a threaded groove; the two first connectors are respectively connected to the inlet and outlet of the radiator body; and the two second connectors are respectively connected to an external compressor and a liquid receiver dryer.
[0006] Furthermore, the limiting component includes a movable base and a supporting side plate, wherein the movable base is slidably engaged with the top of the fixed base, the supporting side plate is fixedly connected to the movable base, and a guide groove is provided on the side wall of the supporting side plate, the sliding sleeve is slidably engaged with the supporting side plate, and the adjusting pipe passes through the guide groove.
[0007] Furthermore, the support mechanism includes a support head, an adjusting screw, a support plate, and a monitoring component. The support head is fixedly connected to the top of the fixed base. One end of the adjusting screw is threaded through the top of the support head. The bottom of the support plate is fixedly connected to the other end of the adjusting screw. The top of the support plate abuts against the bottom of the radiator body. The monitoring component is installed on the outer wall of the support plate.
[0008] Furthermore, the monitoring component includes a support arm, an adjusting screw, an abutment sleeve, and a temperature sensor. One end of the support arm is fixedly connected to the outer wall of the support plate, one end of the adjusting screw is threaded through the other end of the support arm and rotatably connected to the outer wall of the abutment sleeve, and the temperature sensor is installed on the inner wall of the abutment sleeve, which abuts against the copper pipe of the radiator body.
[0009] Furthermore, a lighting lamp is installed on the inner wall of the supporting side plate, and a controller is installed on the top of the fixed base. The lighting lamp and the temperature sensor are both electrically connected to the controller, and the controller is electrically connected to an external power source.
[0010] Furthermore, the outer wall of the sliding sleeve is threadedly connected to a fastening screw, and the outer wall of the supporting side plate is provided with threaded holes at equal intervals that match the fastening screw.
[0011] Furthermore, a guide plate is fixedly connected to the top of the fixed base, the movable base is slidably engaged with the guide plate, and fastening bolts for fixing the movable base are installed on the movable base.
[0012] Furthermore, the support plate has a U-shaped structure, and the bottom inner side of the support plate is covered with a heat insulation pad.
[0013] Compared with existing technologies, the advantages of this energy-saving and environmentally friendly air conditioner radiator are:
[0014] 1. This invention achieves stable support and precise positioning of the radiator body through the combination of a limiting component and a supporting mechanism. The limiting component, through a symmetrical sliding snap-fit structure, ensures that the radiator does not tilt or become unstable during installation and disassembly, while the supporting mechanism provides bottom support to ensure that the radiator remains level during operation, avoiding swaying and uneven heat dissipation caused by an unstable center of gravity. Thus, it solves the problems of radiator instability and inconvenient installation in the prior art, and improves the overall operational stability and heat dissipation efficiency of the equipment.
[0015] 2. This invention, through the integration of regulating pipes and temperature sensors in the assembly components, ensures smooth refrigerant flow and real-time temperature monitoring in the air conditioning system. The threaded connection design of the regulating pipes guarantees a stable connection, avoiding loosening or leakage problems caused by vibration or temperature differences; the temperature sensor monitors the temperature changes of the radiator copper pipes in real time, ensuring accurate monitoring of the radiator's operating status. Thus, it solves the problems of insufficient temperature monitoring and malfunctions caused by loose connections in the prior art, improving the efficiency and safety of the air conditioning system. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of an energy-saving and environmentally friendly air conditioner radiator provided by the present invention;
[0017] Figure 2 This is a schematic diagram of the structure of an energy-saving and environmentally friendly air conditioner radiator limiting component provided by the present invention;
[0018] Figure 3 This is a schematic diagram of the structure of an energy-saving and environmentally friendly air conditioner radiator support mechanism provided by the present invention;
[0019] Figure 4 This is a schematic diagram of the structure of an energy-saving and environmentally friendly air conditioner radiator assembly provided by the present invention;
[0020] Figure 5 This is a schematic diagram of the structure of the first connector of an energy-saving and environmentally friendly air conditioner radiator provided by the present invention.
[0021] As shown in the figure:
[0022] 1. Fixed base; 2. Limiting component; 21. Movable base; 22. Supporting side plate; 221. Guide groove; 3. Supporting mechanism; 31. Support head; 32. Adjusting screw; 33. Support plate; 34. Monitoring component; 341. Support arm; 342. Adjusting rod; 343. Abutment sleeve; 344. Temperature sensor; 4. Assembly component; 41. Sliding sleeve; 411. Fastening screw; 42. Support seat; 43. Adjusting pipe; 44. First connector; 45. Second connector; 5. Lighting lamp; 6. Controller. Detailed Implementation
[0023] The following examples are for illustrative purposes only and are not intended to limit the scope of the invention.
[0024] like Figures 1-5 As shown, an energy-saving and environmentally friendly air conditioner radiator includes a fixed base 1, a limiting component 2, a supporting mechanism 3, and an assembly component 4.
[0025] The limiting components 2 are provided in two sets and are symmetrically slidably snapped onto the top of the fixed base 1. The supporting mechanism 3 is installed at the top middle of the fixed base 1 to provide bottom support for the radiator body.
[0026] It should be noted that the limiting components 2 described in this embodiment are provided in two sets, symmetrically sliding and snapping onto the top of the fixed base 1. This ensures precise positioning of the radiator body during installation and disassembly, preventing tilting or instability of the radiator due to installation errors. The sliding snapping structure of the limiting components 2 allows the radiator body to be easily adjusted on the fixed base 1, providing adequate movement space to accommodate different models or specifications of radiators. Furthermore, the support mechanism 3 is installed at the top center of the fixed base 1. The design of the support mechanism 3 provides stable support at the bottom of the radiator body, ensuring the radiator remains level during operation and preventing shaking or uneven heat dissipation caused by an unstable center of gravity. Through the rational design of the combination of the limiting components 2 and the support mechanism 3, the stability of the radiator is guaranteed, the overall operational stability of the equipment is improved, and structural damage caused by external forces or long-term use is reduced.
[0027] Assembly component 4 includes a sliding sleeve 41, a support base 42, an adjusting pipe 43, a first connector 44, and a second connector 45.
[0028] The sliding sleeve 41 is slidably sleeved on the limiting component 2, the support base 42 is fixedly connected to the outer wall of the sliding sleeve 41, one end of the adjusting pipe 43 is threaded through the outer wall of the support base 42 and fixedly connected to one end of the first connector 44, the other end of the adjusting pipe 43 is connected to the second connector 45, and the outer wall of the adjusting pipe 43 is provided with a threaded groove.
[0029] Furthermore, the outer wall of the sliding sleeve 41 is threadedly connected to a fastening screw 411, and the outer wall of the support side plate 22 is provided with threaded holes at equal intervals that match the fastening screw 411.
[0030] It should be noted that the sliding sleeve 41 described in this embodiment is slidably sleeved on the limiting component 2. The sliding sleeve structure allows the sleeve to slide smoothly under the guidance of the limiting component 2, thereby facilitating the adjustment of the position of the assembly component 4 and ensuring that the radiator can be quickly positioned and adjusted under different operating conditions. The support base 42 is fixedly connected to the outer wall of the sliding sleeve 41. The fixed design of the support base 42 ensures the stability of the assembly component 4 and effectively avoids loosening caused by vibration or external force, ensuring the precise docking of the pipe connection components. One end of the adjusting pipe 43 is threaded through the outer wall of the support base 42. The threaded connection design allows the pipe to be more firmly connected to the support base 42 during installation, preventing loosening or leakage caused by vibration or temperature difference changes. One end of the adjusting pipe 43 is connected to the first connector 44, and the other end is connected to the second connector 45, ensuring the smooth flow of refrigerant in the air conditioning system. At the same time, this connection structure achieves a stable connection between the air conditioning radiator and the external system. The outer wall of the regulating pipe 43 is provided with a threaded groove, which facilitates adjustment or replacement as needed during actual use, improves the flexibility and maintainability of the system, makes the entire assembly process simpler, and reduces the risk of failure caused by loose pipe connections during long-term use.
[0031] The two first connectors 44 are connected to the inlet and outlet of the radiator body, respectively, and the two second connectors 45 are connected to the external compressor and the liquid receiver dryer, respectively.
[0032] It should be noted that the two first connectors 44 described in this embodiment are connected to the inlet and outlet of the radiator body, respectively, to ensure that the refrigerant can circulate effectively inside the radiator. The inlet connects to the refrigerant flowing into the radiator, and the outlet connects to the refrigerant flowing out of the radiator, thereby achieving heat absorption and release and maintaining the cooling effect of the air conditioning system. The design of the first connectors 44 adopts a high-strength connection structure to ensure that no leakage or loosening occurs during the refrigerant flow, enhancing the system's sealing and safety. The two second connectors 45 are connected to the external compressor and the receiver-drier, respectively. The compressor provides high-pressure refrigerant to the radiator through the second connector 45, and the receiver-drier is connected to the radiator through the other second connector 45, ensuring that the refrigerant is fully filtered and dried before entering the radiator, thereby improving the refrigerant's working efficiency and extending the service life of the air conditioning system. The connection method of the second connectors 45 ensures a tight fit between the components, avoiding loosening or leakage caused by external vibration or temperature changes, and ensuring the efficient and stable operation of the entire air conditioning system.
[0033] Specifically, the combination of the limiting component 2, the supporting mechanism 3, and the assembly component 4 ensures the stability and flexibility of the radiator during use. The limiting component 2 precisely positions the radiator body through a symmetrical sliding snap-fit, preventing tilting or instability caused by installation errors. The supporting mechanism 3, located at the top center of the fixed base 1, provides stable support for the radiator body, ensuring it remains level during operation and preventing swaying or uneven heat dissipation due to an unstable center of gravity. The assembly component 4, connected to the limiting component 2 via a sliding sleeve 41, allows for adjustment of the assembly position, facilitating quick positioning and adjustment of the radiator according to different operating conditions. The support base 42 is fixedly connected to the outer wall of the sliding sleeve 41, ensuring stability. The adjusting pipe 43, with its threaded connection design, ensures a secure connection between the pipe and the support base 42, preventing loosening or leakage due to vibration or temperature changes, and guaranteeing smooth refrigerant flow within the radiator. Two first connectors 44 are connected to the inlet and outlet of the radiator body, respectively, ensuring that the refrigerant can circulate effectively inside the radiator to achieve heat absorption and release. Two second connectors 45 are connected to the external compressor and the liquid receiver-drier, respectively, ensuring that the refrigerant is fully filtered and dried before entering the radiator, thereby improving the system's operating efficiency. Through this design, this embodiment solves the problems of insufficient temperature monitoring, inconvenient installation and maintenance in the prior art, provides a flexible and stable air conditioning radiator system, and effectively avoids malfunctions caused by loose connections or leaks.
[0034] In one embodiment of the present invention, such as Figures 1-5 As shown, the limiting component 2 includes a movable base 21 and a supporting side plate 22. The movable base 21 is slidably engaged with the top of the fixed base 1, the supporting side plate 22 is fixedly connected to the movable base 21, and the side wall of the supporting side plate 22 is provided with a guide groove 221. The sliding sleeve 41 is slidably engaged with the supporting side plate 22, and the adjusting pipe 43 passes through the guide groove 221.
[0035] Furthermore, the support mechanism 3 includes a support head 31, an adjusting screw 32, a support plate 33, and a monitoring component 34. The support head 31 is fixedly connected to the top of the fixed base 1. One end of the adjusting screw 32 is threaded through the top of the support head 31. The bottom of the support plate 33 is fixedly connected to the other end of the adjusting screw 32. The top of the support plate 33 abuts against the bottom of the radiator body. The monitoring component 34 is installed on the outer wall of the support plate 33.
[0036] It should be noted that, as described in this embodiment, the limiting component 2 includes a movable base 21 and a supporting side plate 22. The movable base 21 is slidably engaged with the top of the fixed base 1, employing a sliding engagement structure that allows the movable base 21 to move freely on the fixed base 1, facilitating adjustment according to different needs. The supporting side plate 22 is fixedly connected to the movable base 21, and a guide groove 221 is provided on the side wall of the supporting side plate 22 to provide guiding support for the sliding sleeve 41, ensuring that the sliding sleeve 41 can slide smoothly along the supporting side plate 22. The adjusting pipe 43 passes through the guide groove 221 and is connected to the sliding sleeve 41. Through this design, the adjusting pipe 43 can change position with the movement of the sliding sleeve 41, facilitating position adjustment according to actual needs, thereby ensuring that the air conditioner radiator can maintain a suitable structure and stability under different usage environments. Furthermore, the support mechanism 3 includes a support head 31, an adjusting screw 32, a support plate 33, and a monitoring component 34. The support head 31 is fixedly connected to the top of the fixed base 1, providing a stable foundation for the support mechanism 3 and ensuring the overall stability of the support mechanism 3. One end of the adjusting screw 32 is threaded through the top of the support head 31, and the other end is connected to the support plate 33. By rotating the adjusting screw 32, the height of the support plate 33 can be precisely adjusted, allowing the top of the support plate 33 to abut against the bottom of the radiator body as needed, providing uniform support force. The bottom of the support plate 33 is fixedly connected to the other end of the adjusting screw 32, ensuring a stable and reliable connection between the adjusting screw 32 and the support plate 33. The monitoring component 34 is installed on the outer wall of the support plate 33. The monitoring component 34 monitors the working status of the radiator in real time through detection devices such as a temperature sensor 344. When abnormal temperature or other problems occur, it can promptly report the status of the radiator, facilitating subsequent maintenance and adjustment. Through reasonable layout and design, the entire system ensures the stability and operational flexibility of the radiator body, and improves the efficiency and safety of the equipment.
[0037] In one embodiment of the present invention, such as Figures 1-5 As shown, the monitoring component 34 includes a support arm 341, an adjusting rod 342, a contact sleeve 343, and a temperature sensor 344. One end of the support arm 341 is fixedly connected to the outer wall of the support plate 33. One end of the adjusting rod 342 is threaded through the other end of the support arm 341 and rotatably connected to the outer wall of the contact sleeve 343. The temperature sensor 344 is installed on the inner wall of the contact sleeve 343, and the inner wall of the contact sleeve 343 abuts against the copper pipe of the radiator body.
[0038] Furthermore, a lighting lamp 5 is installed on the inner wall of the supporting side plate 22, and a controller 6 is installed on the top of the fixed base 1. The lighting lamp 5 and the temperature sensor 344 are both electrically connected to the controller 6, and the controller 6 is electrically connected to an external power supply.
[0039] It should be noted that the support arm 341 described in this embodiment is fixed to the outer wall of the support plate 33 to ensure component stability and prevent loosening. The adjusting rod 342 is rotatably connected to the contact sleeve 343, making the position of the temperature sensor 344 adjustable to ensure accurate monitoring of the temperature of the radiator copper pipe. The inner wall of the contact sleeve 343 ensures that the temperature sensor 344 is in close contact with the copper pipe, guaranteeing accurate data. A lighting lamp 5 is installed on the inner wall of the support side plate 22 to provide a light source for maintenance. The controller 6 on the fixed base 1 is electrically connected to the temperature sensor 344 and the lighting lamp 5, automatically adjusting the lighting or issuing an alarm based on the temperature data. The controller 6 is connected to an external power supply to ensure stable system operation. This design not only improves monitoring accuracy but also optimizes the maintenance and operation experience of the radiator.
[0040] It should be understood that a guide plate is fixedly connected to the top of the fixed base 1, the movable base 21 is slidably snapped onto the guide plate, and fastening bolts for fixing the movable base 21 are installed on the movable base 21. The support plate 33 has a U-shaped structure, and the bottom inner side of the support plate 33 is covered with a heat insulation pad.
[0041] The working principle of this invention is as follows:
[0042] The radiator's stability and flexibility during use are ensured by the limiting component 2, the supporting mechanism 3, and the assembly component 4. The limiting component 2, through a symmetrical sliding snap-fit structure, precisely positions the radiator body, preventing tilting or instability caused by installation errors. The supporting mechanism 3 provides stable support, ensuring the radiator remains level and preventing swaying or uneven heat dissipation due to an unstable center of gravity. The assembly component 4, connected to the limiting component 2 via a sliding sleeve 41, allows for easy adjustment of the radiator position as needed. The adjusting pipe 43, connected by threads, ensures a stable connection, prevents leakage, and guarantees smooth refrigerant flow. A temperature sensor 344 monitors the temperature of the radiator's copper pipes in real time. An illumination lamp 5 on the inner wall of the supporting side plate 22 provides sufficient light. The controller 6 on the fixed base 1 adjusts the lighting or issues an alarm based on temperature data, ensuring stable system operation. This design, through its rational structure and intelligent monitoring system, solves the problems of insufficient temperature monitoring, inconvenient installation and maintenance in the background technology, providing a stable, efficient, and easy-to-maintain air conditioning radiator system.
[0043] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An energy-saving and environmentally friendly air conditioner radiator, comprising a radiator body, characterized in that, It also includes a fixed base (1), a limiting component (2), a supporting mechanism (3), and an assembly component (4), wherein, The limiting component (2) is provided in two sets and is symmetrically slidably snapped onto the top of the fixed base (1); The supporting mechanism (3) is installed at the top center of the fixed base (1) to provide bottom support for the radiator body; The assembly component (4) includes a sliding sleeve (41), a support base (42), an adjusting pipe (43), a first connector (44), and a second connector (45), wherein, The sliding sleeve (41) is slidably sleeved on the limiting component (2), the support base (42) is fixedly connected to the outer wall of the sliding sleeve (41), one end of the adjusting pipe (43) is threaded through the outer wall of the support base (42) and fixedly connected to one end of the first connector (44), the other end of the adjusting pipe (43) is connected to the second connector (45), and the outer wall of the adjusting pipe (43) is provided with a threaded groove; Two first connectors (44) are connected to the input port and output port of the radiator body respectively, and two second connectors (45) are connected to the external compressor and the liquid receiver dryer respectively; The limiting component (2) includes a movable base (21) and a supporting side plate (22), wherein, The movable base (21) is slidably engaged with the top of the fixed base (1), the supporting side plate (22) is fixedly connected to the movable base (21), and the side wall of the supporting side plate (22) is provided with a guide groove (221). The sliding sleeve (41) is slidably engaged with the supporting side plate (22), and the adjusting pipe (43) passes through the guide groove (221).
2. The energy-saving and environmentally friendly air conditioner radiator according to claim 1, characterized in that, The supporting mechanism (3) includes a support head (31), an adjusting screw (32), a supporting plate (33), and a monitoring component (34), wherein, The support head (31) is fixedly connected to the top of the fixed base (1), one end of the adjusting screw (32) is threaded through the top of the support head (31), the bottom of the support plate (33) is fixedly connected to the other end of the adjusting screw (32), and the top of the support plate (33) abuts against the bottom of the radiator body. The monitoring component (34) is installed on the outer wall of the support plate (33).
3. The energy-saving and environmentally friendly air conditioner radiator according to claim 2, characterized in that, The monitoring component (34) includes a support arm (341), an adjusting rod (342), a contact plate (343), and a temperature sensor (344), wherein, One end of the support arm (341) is fixedly connected to the outer wall of the support plate (33), one end of the adjusting rod (342) is threaded through the other end of the support arm (341) and rotatably connected to the outer wall of the contact sleeve (343), the temperature sensor (344) is installed on the inner wall of the contact sleeve (343), and the inner wall of the contact sleeve (343) abuts against the copper pipe of the radiator body.
4. The energy-saving and environmentally friendly air conditioner radiator according to claim 3, characterized in that, A lighting lamp (5) is installed on the inner wall of the supporting side plate (22), and a controller (6) is installed on the top of the fixed base (1). The lighting lamp (5) and the temperature sensor (344) are both electrically connected to the controller (6), and the controller (6) is electrically connected to an external power source.
5. The energy-saving and environmentally friendly air conditioner radiator according to claim 1, characterized in that, The outer wall of the sliding sleeve (41) is threaded with a fastening screw (411), and the outer wall of the supporting side plate (22) is provided with threaded holes at equal intervals that match the fastening screw (411).
6. The energy-saving and environmentally friendly air conditioner radiator according to claim 1, characterized in that, The top of the fixed base (1) is fixedly connected to a guide plate, the movable base (21) is slidably engaged with the guide plate, and the movable base (21) is equipped with fastening bolts for fixing the movable base (21).
7. The energy-saving and environmentally friendly air conditioner radiator according to claim 2, characterized in that, The support plate (33) has a U-shaped structure, and the bottom inner side of the support plate (33) is covered with a heat insulation pad.
Citation Information
Patent Citations
Engine supporting device
CN104227588A
Heat dissipation device, air conditioner as well as control method and system of heat dissipation device of air conditioner
CN112944580A
Energy-saving and environment-friendly air conditioner radiator
CN215571168U