HVAC capable of filtering air in cockpit and having self-cleaning function and working method
By introducing a reversing damper and a cleaning nozzle into the automotive air conditioning system, the self-cleaning function of the evaporator is achieved, solving the problems of low dust removal efficiency and long purification time, improving air quality and reducing after-sales maintenance costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-14
- Publication Date
- 2026-03-10
Smart Images

Figure CN121625713A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application belongs to the technical field of automobile air conditioning, and in particular, the present application relates to a HVAC that filters cabin air and has a self-cleaning function. BACKGROUND
[0002] The competition for new energy vehicle technology innovation is fierce. When continuously tapping the enabling functions of the system, it is found that the existing market air purification system does not meet the market demand. The problem of too much floating dust in the cabin due to the sealing problem of the commercial vehicle cabin, poor purification effect, and long purification time.
[0003] The current mainstream air purification system scheme only uses a PM2.5 sensor to identify the amount of floating dust in the cabin through a photosensitive sensor, and controls the compressor to start and stop continuously through a controller. The wet saturated vapor of the evaporator is attached to the condensate on the surface of the core, which adsorbs the floating dust in the air, and can only be sucked in from the co-driver air inlet, which is located inside the instrument panel and has very low filtering efficiency.
[0004] After the evaporator condensate adsorbs dust and dirt, the floating dust attached to the evaporator core is not effectively removed, and the frost and defrosting is still blown into the cabin by the blower, and the floating dust and dirt accumulate in the dead corners of the HVAC, producing an odor and a soil smell. When the HVAC is disassembled and cleaned after sale, it takes a long time, and the instrument panel body, instrument panel pipe beam, HVAC, etc. need to be disassembled, which is expensive.
[0005] The invention patent with publication number CN 111196249B discloses a cleaner using a heating, ventilation and air conditioning module on August 2, 2024. The cleaner connects the ventilation fan for the HVAC module and the suction fan for vacuum cleaning to a single motor to independently drive the ventilation fan when operating the HVAC module, and independently drive the suction fan when performing vacuum cleaning. The cleaner cannot completely solve the above-mentioned technical problems. SUMMARY
[0006] The purpose of the present application is to overcome the shortcomings of the prior art, and to provide a HVAC that effectively filters cabin air, removes floating dust attached to the evaporator core, saves post-sale costs of the HVAC, and is suitable for use in commercial vehicles or vehicles in harsh areas.
[0007] In order to achieve the above-mentioned purpose, the technical solution adopted by the present application is: The filter cabin air and have self-cleaning function's HVAC, including box, blower and evaporator, the box both ends are equipped with air inlet and air outlet respectively, characterized by: the evaporator is located between the blower and the air outlet, the evaporator side is equipped with cleaning mechanism, the blower side is equipped with reversing damper.
[0008] The reversing damper is located: the box includes air outlet channel, the air outlet channel is located between the evaporator and the blower, the reversing damper length is equal to half of the air outlet channel width, the reversing damper end is hinged in the air outlet channel middle, the reversing damper is connected with reversing damper actuator.
[0009] The air inlet is movably connected with damper, the damper includes rotating shaft, the rotating shaft is hollow structure, the cleaning mechanism includes cleaning nozzle, the cleaning nozzle communicates with the rotating shaft, the rotating shaft end close to the evaporator is equipped with cleaning nozzle hole, the cleaning nozzle is further connected with water pump.
[0010] The air outlet is further provided with PTC heater, the PTC heater includes heater shell, the cleaning nozzle passes through the heater shell.
[0011] The reversing damper actuator is arranged at the air outlet channel bottom.
[0012] The reversing damper both sides are arc surface structure.
[0013] The box is provided with inclined surface below the evaporator, the inclined surface one end is connected with drain pipe, the inclined surface bottom is equipped with reinforcing rib.
[0014] The water pump is located at one side of the box outside.
[0015] The working method of the filter cabin air and have self-cleaning function's HVAC, including the following steps: Step 1: reversing damper actuator starts to change the reversing damper position; Step 2: compressor stops, blower continues to run for 5-10 minutes; Step 3: water pump and PTC heater start, cleaning nozzle hole sprays cleaning liquid to the evaporator surface, lasts for 1-2 minutes; Step 4: reversing damper actuator starts to reset the reversing damper.
[0016] The technical effect of the present application is that the HVAC for filtering cabin air and having a self-cleaning function adopts the function of reversing the air door and using the function of the blower impeller volute positive and negative air supply structure, has the function of adjusting the air outlet of the box body to the air return port, and after filtering dust through the evaporator, part of the floating dust is discharged outside the cabin, and has the function of spraying cleaning agent to clean the evaporator and the dirt dead angle inside the HVAC; solves the problem that the user cannot effectively clean when the cabin has an earthy smell, mold smell, or the air environment of the cab is polluted and there is a lot of dust and floating dust during the use of the air conditioner, and the time and cost generated by disassembling the instrument panel, separately cleaning the HVAC box body and evaporator core during the cleaning of the HVAC by the after-sales service station; the air purification efficiency of the cab is high, the effect is remarkable, the system can be self-cleaned, the principle is simple, the structure is reliable, and the experience and effect are good in areas with poor air quality. BRIEF DESCRIPTION OF DRAWINGS
[0017] The present specification includes the following drawings, and the contents shown are as follows: Figure 1 is the HVAC for filtering cabin air and having a self-cleaning function of the present application; Figure 2 is a schematic diagram of the airflow direction of the initial position of the reversing air door of the present application; Figure 3 is a schematic diagram of the airflow direction of the position of the reversing air door after reversing of the present application; Figure 4 is a schematic diagram of the local structure of the box body of the present application; Figure 5 is a schematic diagram of the bottom structure of the box body of the present application; Figure 6 is a schematic diagram of the structure of the reversing air door of the present application.
[0018] In the figure, 1 is the box body, 11 is the air inlet, 12 is the air outlet, 13 is the air outlet channel, 14 is the inclined surface part, 15 is the drain pipe, 2 is the blower, 3 is the evaporator, 4 is the cleaning mechanism, 41 is the cleaning nozzle, 42 is the cleaning spray hole, 43 is the water pump, 5 is the reversing air door, 51 is the reversing air door actuator, 6 is the air door, 61 is the rotating shaft, 7 is the PTC heater, and 71 is the heater shell. DETAILED DESCRIPTION
[0019] The specific embodiments of the present application will be further described in detail below by comparing the embodiments with the drawings, and the purpose is to help the technicians in the field to have a more complete, accurate and in-depth understanding of the inventive concept and technical solution of the present application, and to help them to implement it.
[0020] As Figure 1As shown, this HVAC system, which filters cabin air and has a self-cleaning function, includes a housing 1, a blower 2, and an evaporator 3. The housing 1 has an air inlet 11 and an air outlet 12 at both ends. The key feature is that the evaporator 3 is located between the blower 2 and the air outlet 12. A cleaning mechanism 4 is located on one side of the evaporator 3, and a reversing damper 5 is located on one side of the blower 2. This HVAC system, which filters cabin air and has a self-cleaning function, replaces current mainstream air purification systems by using the cleaning mechanism 4 and the reversing damper 5. It has high dust filtration efficiency and is suitable for the dusty environment inside the cabin of commercial vehicles. It effectively cleans the dust attached to the evaporator 3 core, resulting in good purification effect and short purification time, saving the time required for disassembling dashboard components and cleaning the HVAC system.
[0021] like Figure 1 As shown, the housing 1 includes an air outlet duct 13 located between the evaporator 3 and the blower 2. A reversing damper 5 has a length equal to half the width of the air outlet duct 13, and its end is hinged to the middle of the air outlet duct 13. A reversing damper actuator 51 is connected to the reversing damper 5. The reversing damper 5 is located between the evaporator 3 and the blower 2, and is hinged to the housing 1 via its central axis. Its rotational power is provided by the reversing damper actuator 51. The air outlet duct 13 is the air outlet 12 of the blower 2. The reversing damper 5 covers half the area of the air outlet duct 13. Because the length of the reversing damper 5 is equal to half the width of the housing 1, when the reversing damper 5 is in its initial position, the opening area of the air outlet duct 13 corresponds to one side of the impeller of the blower 2 in the tangential direction, and the air conditioning housing 1 performs normal cooling. After the reversing damper 5 is nearly 180° repositioned, the blower 2's rotation direction remains unchanged, while the opening area of the air outlet duct 13 changes and corresponds to the tangential direction on the other side of the blower 2 impeller. The operation of the blower 2 creates negative pressure inside the housing 1, thereby drawing the floating dust in the cockpit into the housing 1, where it is then attached by the condensate water of the evaporator 3 core. Before and after the reversing damper 5 is repositioned, the airflow direction inside the housing 1 is changed. Since the blower 2's rotation direction remains unchanged, there is no need to reverse the blower 2, which can save air filtration time and improve the user experience.
[0022] like Figures 1 to 4As shown, an air damper 6 is movably connected inside the air outlet 12. The air damper 6 includes a rotating shaft 61, which is a hollow structure. The cleaning mechanism 4 includes a cleaning nozzle 41, which is connected to the rotating shaft 61. A cleaning nozzle 42 is provided at the end of the rotating shaft 61 near the evaporator 3. The cleaning nozzle 41 is also connected to a water pump 43. The rotating shaft 61 of the air damper 6 is fixed in position, and the rotating shaft 61 of the air damper 6 is used as the flow channel and nozzle of the cleaning fluid. No additional connecting parts are added, which facilitates the modification of existing products, thereby reducing development and design costs. The water pump 43, once activated, accelerates the flow rate of the cleaning fluid, spraying it along the cleaning nozzle 41, rotating shaft 61, and cleaning nozzle 42 onto the evaporator 3. This effectively removes dust adhering to the condensate on the evaporator 3, improving its cleaning efficiency. It provides rapid and effective purification of dust, particles, and odors in the driver's cab and features a self-cleaning function for the HVAC evaporator 3. This solves the problems of excessive dust and particles in the driver's cabin, odors caused by HVAC filth, and the inconvenience of disassembling the dashboard and cleaning the HVAC housing 1 and core separately. The evaporator 3 cleaning process is simple and easy to program using the controller. Users simply press the corresponding function button, and the program activates, enabling self-cleaning of the evaporator 3. The water pump 43 is mounted on the outside of the housing 1, without occupying internal space. The cleaning nozzle 42 has a straight or other suitable opening cross-section, ensuring that the cleaning also covers the surface of the evaporator 3 core.
[0023] like Figure 4 As shown, a PTC heater 7 is also provided inside the air outlet 12. The PTC heater 7 includes a heater housing 71, and the cleaning spray pipe 41 passes through the heater housing 71. Utilizing the waste heat generated by the PTC heater, the cleaning water pipe enters from its side and heats the cleaning fluid. After being heated, the cleaning fluid is more likely to clean the surface of the evaporator core 3, improving the cleaning effect and ensuring long-term reliability.
[0024] like Figure 5 As shown, the reversing damper actuator 51 is located at the bottom of the air outlet duct 13. The main functional component of the reversing damper actuator 51 is a motor, and its base is externally mounted on the housing 1 using multiple bolts, which does not occupy the internal space of the housing 1 and is beneficial for the modification and application of the existing housing 1.
[0025] like Figure 6 As shown, both sides of the reversing damper 5 have an arc-shaped structure. The arc-shaped surface of the reversing damper 5 facilitates airflow guidance, ensuring that its position before and after reversal does not obstruct airflow.
[0026] like Figure 5As shown, a sloping section 14 is provided on the casing 1 below the evaporator 3. One end of the sloping section 14 is connected to a drain pipe 15, and a reinforcing rib is provided at the bottom of the sloping section 14. The sloping section 14 can smoothly discharge the wastewater after cleaning the evaporator 3 along the drain pipe 15 in a timely manner, and the reinforcing rib of the sloping section 14 improves the structural strength.
[0027] like Figure 4 As shown, the water pump 43 is located on the outside of the housing 1. The main pipeline of the water pump 43 and the cleaning nozzle 41 is located outside the housing 1, which does not occupy the original internal space of the housing 1, and is conducive to the modification and application of the existing housing 1.
[0028] The operating method of this HVAC system, which filters cabin air and has a self-cleaning function, includes the following steps: Step 1: The reversing damper actuator 51 is activated to change the position of the reversing damper 5; Step 2: The compressor stops, but blower 2 continues to run for 5-10 minutes; Step 3: The water pump 43 and PTC heater 7 are started, and the cleaning nozzle 42 sprays the cleaning solution onto the surface of the evaporator 3 for 1-2 minutes; Step 4: Start the reversing damper actuator 51 to reset the reversing damper 5.
[0029] Existing automotive air conditioning self-cleaning methods generally control the frosting time or defrosting time of the evaporator 3 to capture dust in the air, but do not consider filtration efficiency and actual user experience. Furthermore, once the evaporator 3 is covered with a mixture of aerosols, dust particles, and other substances in the air, it is adsorbed onto the core, making it impossible to completely clean the air in the passenger compartment and achieve the self-cleaning function of the HVAC system.
[0030] The working principle of this HVAC system, which filters cockpit air and has a self-cleaning function, is as follows: Normal cooling airflow in the air conditioning unit 1 is achieved by drawing in air through the blower motor and impeller via the internal or external circulation port, which is then delivered to the evaporator 3 for heat exchange, converting the air into cold air. This cold air then passes through the air distribution mechanism, defrost duct, surface air outlet 12, and blades before being delivered to the passenger compartment. Figure 2As shown. The electric compressor is the core component of the refrigeration system. Driven by a high-voltage power supply from the battery, it compresses the low-temperature, low-pressure gaseous refrigerant into a high-temperature, high-pressure superheated gaseous refrigerant. The condenser is usually installed at the front of the vehicle, cooling the high-temperature, high-pressure gaseous refrigerant into a liquid refrigerant and releasing heat. Electronic or thermal expansion valves: precisely control the refrigerant flow according to actual needs to ensure optimal cooling effect, or release a small amount of refrigerant to continuously collect water on the surface according to cleaning function requirements. In the evaporator 3, the refrigerant evaporates and absorbs heat, lowering the temperature of the surrounding air and generating cold air. The heating system PTC heater 7 generates heat by passing current through a resistor, which can quickly raise the temperature inside the vehicle. It has a simple structure and good heating effect. The blower 2: provides the power for airflow to the HVAC system, enabling air circulation inside the vehicle. It usually uses a mixed-flow fan or a centrifugal fan. The air ducts include air inlets and outlets, used to guide airflow and deliver hot and cold air to various areas inside the vehicle.
[0031] The damper 6, by controlling its opening, closing, and angle, regulates the airflow and temperature in different areas, achieving multiple functions such as defrosting, face blowing, and foot blowing. The HVAC control module controls the high-voltage contactor, connecting or disconnecting the high-voltage battery from the BLDC motor, PTC heater 7, etc., and also includes the damper 6 motor controller, defrosting heater, communication interface, and power subsystem. The air conditioning speed control module's main function is to dynamically adjust the blower 2 speed based on control signals, thereby controlling the airflow. It receives command signals from the air conditioning panel, amplifies the signals, and drives the blower 2 to operate at different speeds to achieve airflow regulation.
[0032] Temperature sensor: Monitors the interior and exterior temperatures, as well as the temperatures of components such as the evaporator 3 and condenser, in real time, providing temperature signals to the control system for precise control of the interior temperature. HVAC control module: Controls the high-voltage contactor, connecting or disconnecting the high-voltage battery from the BLDC motor, PTC heater 7, etc., and also includes a damper motor controller, defrost heater, communication interface, and power subsystem.
[0033] When performing air filtration, press the air filter icon button on the control panel, or simultaneously press the internal / external circulation and fan speed buttons for more than 3 seconds. The system will then recognize and enter air purification mode, with the compressor shutting off and restarting every 30 seconds. Alternatively, the compressor speed can be controlled between 1000 rpm and 500 rpm (based on feedback from indoor and outdoor temperature sensors) to reduce compressor power output. This reduces the amount of refrigerant flowing through the condenser and expansion valve, thus decreasing the saturated wet vapor in the air conditioner evaporator 3. When it is necessary to activate the purification function to filter dust and polluted air in the cockpit, such as Figure 3As shown, the reversing damper 5, driven by the reversing damper actuator 51, swings to the opposite position of the air conditioning unit's movement trajectory. At this time, the rotation direction of the blower motor and the impeller of blower 2 remains unchanged, but because the reversing damper 5 blocks the airflow direction to the blower 2 volute, the airflow to the HVAC unit is reversed, and the airflow from the cab outlet 12 becomes the intake. The negative pressure generated by the rotation of the blower 2 motor and the blower 2 impeller performs suction work, drawing back the dirty and dusty air from the cab through the outlet 12 and the HVAC unit's air duct to the blower 2, and then exhausting it through the intake. When the dust flows over the surface of the evaporator 3 core, the compressor is stopped, allowing the condensate on the surface of the evaporator 3 to adsorb the dust, thus achieving the purpose of filtering the dusty and dirty air.
[0034] The second stage is the HVAC self-cleaning process. Approximately 5-10 minutes after the cockpit cleaning is completed, air conditioning cleaner (or water) is evenly sprayed onto the surface of the evaporator 3 through the cleaning nozzle 42, which extends from the hollow layer of the air conditioning unit's built-in damper shaft 61 towards the front of the evaporator 3 core. Simultaneously, the reversing damper 5 can also be a double-opening structure with inner and outer layers; when it opens inwards, it effectively prevents splashed water from entering the blower 2. Wastewater flows out of the cabin through the drain pipe 15. After the evaporator 3 core is sprayed cleaned for 1-2 minutes, the reversing damper 5 returns to its normal air supply position, completing the cleaning of the cockpit and air conditioning unit 1.
[0035] This HVAC system, which filters cabin air and has a self-cleaning function, utilizes the reversing damper and the forward and reverse air supply and suction structure of the blower 2's volute to adjust the air outlet of the housing to a return air outlet. After condensation and filtration of dust by the evaporator 3, some of the floating dust is discharged outside the cabin. It also has the function of spraying cleaning agent to clean the evaporator 3 and the dead corners of dirt inside the HVAC system. This solves the problem of users being unable to effectively clean the cabin when there is a dusty or musty smell, or when the air environment in the cabin is polluted and there is a lot of dust. After-sales service stations need to disassemble the dashboard and separately clean the HVAC housing 1 and the evaporator 3 core when cleaning the HVAC system, which incurs time and cost. The system has high cabin air purification efficiency and significant effect, and the system can clean itself. The principle is simple, the structure is reliable, and the experience and effect are good in areas with poor air quality.
[0036] The present invention has been described above by way of example with reference to the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any non-substantial improvements made using the inventive concept and technical solution; or the direct application of the inventive concept and technical solution to other situations without modification, are all within the protection scope of the present invention.
Claims
1. A kind of HVAC of filtering cockpit air and with self-cleaning function, including box (1), blower (2) and evaporator (3), the box (1) two ends are equipped with air inlet (11) and air outlet (12) respectively, it is characterized by: The evaporator (3) is located between the air blower (2) and the air outlet (12), one side of the evaporator (3) is provided with a cleaning mechanism (4), and one side of the air blower (2) is provided with a reversing damper (5).
2. The HVAC filtering cabin air with self-cleaning function according to claim 1, characterized in that: The reversing damper (5) is located: the box (1) comprises an air outlet channel (13), the air outlet channel (13) is located between the evaporator (3) and the air blower (2), the length of the reversing damper (5) is equal to half the width of the air outlet channel (13), the end of the reversing damper (5) is hinged in the middle of the air outlet channel (13), and the reversing damper (5) is connected with a reversing damper actuator (51).
3. The HVAC filtering cabin air with self-cleaning function according to claim 2, characterized in that: The air outlet (12) is movably connected with a damper (6), the damper (6) comprises a rotating shaft (61), the rotating shaft (61) is a hollow structure, the cleaning mechanism (4) comprises a cleaning nozzle (41), the cleaning nozzle (41) is communicated with the rotating shaft (61), one end of the rotating shaft (61) close to the evaporator (3) is provided with a cleaning nozzle (42), and the cleaning nozzle (41) is further connected with a water pump (43).
4. The HVAC filtering cabin air with self-cleaning function according to claim 3, characterized in that: The air outlet (12) is further provided with a PTC heater (7), the PTC heater (7) comprises a heater shell (71), and the cleaning nozzle (41) penetrates through the heater shell (71).
5. The HVAC filtering cabin air with self-cleaning function according to claim 4, characterized in that: The reversing damper actuator (51) is arranged at the bottom of the air outlet channel (13).
6. The HVAC filtering cabin air with self-cleaning function according to claim 4, characterized in that: The reversing damper (5) is arc-shaped on both sides.
7. The HVAC filtering cabin air with self-cleaning function according to claim 4, characterized in that: The box (1) is provided with a slope portion (14) below the evaporator (3), one end of the slope portion (14) is connected with a drain pipe (15), and the bottom of the slope portion (14) is provided with a reinforcing rib.
8. The HVAC filtering cabin air with self-cleaning function according to claim 4, characterized in that: The water pump (43) is located on one side outside the box (1).
9. A method of operating a HVAC filtering cabin air and having a self-cleaning function according to any one of claims 4-8, characterized in that, The method comprises the following steps: Step 1: the reversing damper actuator (51) starts to change the position of the reversing damper (5); Step 2: the compressor stops, and the air blower (2) continues to run for 5-10 minutes; Step 3: the water pump (43) and the PTC heater (7) are started, the cleaning nozzle (42) sprays cleaning liquid to the surface of the evaporator (3), and the process lasts for 1-2 minutes; Step 4: the reversing damper actuator (51) starts to reset the reversing damper (5).
Citation Information
Patent Citations
Cleaner using HVAC module
CN111196249B
Air conditioner air duct assembly, air conditioner and vehicle
CN115489274A
Air blowing and suction integrated fan and control method thereof
CN119844409A
Air conditioning system and vehicle
CN210108133U
Mechanical bidirectional air suction fan and vacuum sweeper using same
CN211259077U