An energy-saving automated building control system
By using a linkage mechanism to achieve synchronous control of the air inlet and humidification mechanism, the problem of inconvenience caused by the independent setting of humidity regulation structure and air supply structure in the existing technology is solved, which improves the user experience and ventilation balance of the building control system.
Patent Information
- Application Number
- CN202410753006.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-12
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2044-06-12
AI Technical Summary
In existing energy-saving automated building control systems, the humidity control structure and the air supply structure are set up independently, which leads to inconvenience in operation and affects the user experience.
Design a linkage mechanism that combines the opening and closing of the air inlet with the use of the humidification mechanism. A servo motor drives the gears and gear rings to rotate, changing the air inlet area and simultaneously adjusting the flow rate of the humidification mechanism, thereby achieving synchronous control of the air inlet and the humidification mechanism.
It achieves the relief of air supply pressure and the automation of humidity regulation, improves the user experience, and ensures the balance of ventilation and the utilization rate of hot and cold air.
Smart Images

Figure CN118517792B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building air conditioning control technology, and in particular to an energy-saving automated building control system. Background Technology
[0002] Automated design of buildings, as a relatively advanced design technology, has been widely used in construction engineering. Through terminal control and allocation, resources are used effectively, reducing waste. A central control system allows for centralized control of building lighting, HVAC, monitoring, and electrical systems, ensuring that different hierarchical systems do not interfere with each other. In HVAC control, air outlet control devices can be installed at the air outlets.
[0003] The existing patent publication number CN 216114631 U discloses an energy-saving automated building control system that can adjust the temperature of the environment where the air supply box is located to relieve the pressure on the air supply equipment, and at the same time adjust the air humidity to provide a comfortable environment for people in the building.
[0004] However, since the air supply structure and humidity control structure are set up independently, if you want to use the humidity control structure at the same time when using the air supply structure, you need to control it separately, which is inconvenient and does not bring a better user experience. Summary of the Invention
[0005] This invention discloses an energy-saving automated building control system, which aims to solve the technical problem that if humidity regulation structures are to be used simultaneously, additional control is required, which is inconvenient to operate and does not easily bring a better user experience.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] An energy-saving automated building control system includes an air outlet box. An air inlet pipe is tightly connected to the inner wall of the top of the air outlet box and is connected to an external air conditioning ventilation duct. A linkage mechanism is installed inside the air outlet box. A humidification mechanism is installed on one side of the air outlet box, and an auxiliary cleaning mechanism is installed at the bottom of the air outlet box. The humidification mechanism includes two baffles. An air inlet is provided at the connection between the top of the air outlet box and the air inlet pipe, and the two baffles are attached to the bottom of the air inlet. Limiting sliders are fixedly connected to the outer walls of the bottom ends of the two baffles, and toothed rings are attached to the bottom ends of the two baffles. A ventilation opening is provided at the center of the toothed ring, and two arc-shaped limiting grooves are provided through the top of the toothed ring. The two limiting sliders are movably engaged in the arc-shaped limiting grooves. Gears mesh on the outer walls of the toothed ring, and a servo motor is connected to the gears via a support shaft. A circular friction block is fixedly connected to the outer wall of the bottom end. The humidification mechanism includes a flow rate adjustment knob, and the circular friction block contacts the outer wall of the flow rate adjustment knob. An inner partition is fixedly connected inside the air outlet box, and the inner partition is located below the toothed ring. Two central support plates are symmetrically attached to the bottom end of the inner partition, and elastic rubber sleeves are respectively provided on the outer wall of the opposite side of the two central support plates. The opposite side of the two elastic rubber sleeves is fixed to the inner walls of the two sides of the air outlet box. A rack and a limiting rod are respectively provided at the top of each central support plate. Multiple second limiting grooves are provided through the inner partition, and a limiting plate is fixedly connected to the top of the inner partition. The two racks pass through the second limiting grooves, and each limiting rod is movably inserted into the limiting plate. Multiple face teeth are equidistantly provided on the outer wall of the bottom end of the toothed ring, and the two racks simultaneously mesh with the face teeth.
[0008] The inner wall of the air outlet box is connected to a circular support shell, and the top and bottom ends of the toothed ring are simultaneously attached to the inner wall of the circular support shell. The outer walls of the two opposing sides of the baffles are respectively attached to the inner walls of the two sides of the air outlet box, and an air outlet grille is provided at the bottom of the air outlet box.
[0009] The system incorporates a linkage mechanism that combines the opening and closing of the air inlet with the operation of the humidification mechanism. A servo motor drives a gear to rotate, which in turn rotates a gear ring. Simultaneously, a limit slider and an arc-shaped limit groove connect to change the size of the air inlet, alleviating air supply pressure and achieving energy savings. Furthermore, as the air inlet changes, the flow rate of the humidification mechanism can be adjusted simultaneously, effectively achieving synchronous control of the air inlet and the humidification mechanism. Through automatic control and adjustment, the system provides a better user experience. When the air inlet area is large, as the gear ring rotates, it meshes with the rack to drive the two central support plates to move relative to or towards each other, thereby changing the distance between the two central support plates. Thus, when the air volume is small, by reducing the ventilation diameter between the two central support plates and reducing the air outlet, the air volume can be increased to increase the flow velocity and smoothly pass through the air box, avoiding the accumulation of weak air in the air box, and preventing cold or warm air from being discharged from the air box into the air in time. Conversely, when the air volume is large, the ventilation area is also large, thereby ensuring the balance of ventilation and ensuring the utilization rate of cold or warm air.
[0010] In a preferred embodiment, the humidification mechanism further includes a humidifier, which comprises a water storage tank and a sprayer. A side support plate is provided on one side of the humidifier, and the flow rate adjustment knob is located on the side support plate. A water outlet is also provided on the side support plate. A water pipe is tightly connected to the inner wall of the top of the water storage tank. The water pipe includes multiple bends and is arranged in a double-layer stacked configuration. One end of the water pipe includes a water inlet, which is connected to an external water pipe. The water pipe includes a heating section and a cooling section. A heat-conducting block and an electric heating tank are arranged around the outside of the water pipe. The heat-conducting block corresponds to the cooling section, and the electric heating tank corresponds to the heating section.
[0011] By incorporating a humidification mechanism, research has shown that if tap water is used directly to humidify the air, the minerals in the tap water will enter the air and subsequently the human body, affecting health. Therefore, the design of the heat-conducting block and electric heating tank allows the water to be quickly heated to boiling point, ensuring that the boiled water does not overheat before entering the storage tank. This guarantees the safety of the water quality during humidification and effectively prevents damage to the humidifier components from boiling water.
[0012] In a preferred embodiment, the auxiliary cleaning mechanism includes an air inlet guide chamber and an air outlet guide chamber. The air inlet guide chamber is located in front of the air outlet guide chamber, and the tops of the air inlet guide chamber and the air outlet guide chamber are attached to the bottom of the air outlet grille. An air inlet hose and an air outlet hose are fixedly connected to the inner walls of the same side of the air inlet guide chamber and the air outlet guide chamber, respectively. The air inlet hose is used to connect to an external blower, and the air outlet hose is used to connect to an external negative pressure device. Side connecting plates are fixedly connected to the outer walls of the opposite sides of the air inlet guide chamber and the air outlet guide chamber, and sliding sleeves are fixedly connected to the side connecting plates. Side guide rails are fixedly connected to the outer walls of the opposite sides of the air outlet box, and the sliding sleeves are movably connected to the side guide rails.
[0013] By installing an auxiliary cleaning mechanism, the air conditioning in the common areas of the building is used frequently, resulting in a high frequency of cleaning. The auxiliary cleaning mechanism allows the air inlet hose to be connected to an external blower and the air outlet hose to an external negative pressure device during the cleaning process, which reduces the difficulty of daily cleaning while ensuring the cleaning effect.
[0014] As described above, an energy-saving automated building control system includes an air outlet box. An air inlet pipe is tightly connected to the inner wall of the top of the air outlet box, and the air inlet pipe is connected to an external air conditioning ventilation duct. A linkage mechanism is installed inside the air outlet box. A humidification mechanism is installed on one side of the air outlet box, and an auxiliary cleaning mechanism is installed at the bottom of the air outlet box. The humidification mechanism includes two baffles. An air inlet is provided at the connection between the top of the air outlet box and the air inlet pipe, and the two baffles are attached to the bottom of the air inlet. Limiting sliders are fixedly connected to the outer walls of the bottom ends of the two baffles, and toothed rings are simultaneously attached to the bottom ends of the two baffles. A ventilation opening is provided at the center of the toothed ring, and two arc-shaped limiting grooves are provided through the top of the toothed ring. The two limiting sliders are movably engaged in the arc-shaped limiting grooves. Gears mesh on the outer walls of the toothed ring, and the gears are connected to a servo motor via a support shaft. A circular friction block is fixedly connected to the outer wall of the bottom end of the shaft. The humidification mechanism includes a flow adjustment knob, and the circular friction block contacts the outer wall of the flow adjustment knob. An inner partition is fixedly connected inside the air outlet box, and the inner partition is located below the gear ring. Two central support plates are symmetrically fitted at the bottom end of the inner partition, and elastic rubber sleeves are respectively provided on the outer wall of the opposite side of the two central support plates. The opposite sides of the two elastic rubber sleeves are respectively fixed to the inner walls of the two sides of the air outlet box. A rack and a limiting rod are respectively provided at the top of each central support plate. Multiple second limiting grooves are provided through the inner partition, and a limiting plate is fixedly connected to the top of the inner partition. The two racks pass through the second limiting grooves, and each limiting rod is movably inserted into the limiting plate. Multiple face teeth are equidistantly arranged on the outer wall of the bottom end of the gear ring, and the two racks simultaneously mesh with the face teeth. The energy-saving automated building control system provided by this invention has the technical effect of bringing a better user experience through the automatic control and adjustment of the equipment. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of an energy-saving automated building control system proposed in this invention.
[0016] Figure 2 This is a schematic diagram of the internal structure of the linkage mechanism of an energy-saving automated building control system proposed in this invention.
[0017] Figure 3 This is a structural breakdown diagram of the linkage mechanism of an energy-saving automated building control system proposed in this invention.
[0018] Figure 4 This is a schematic diagram of the disassembled structure of the humidification mechanism of an energy-saving automated building control system proposed in this invention.
[0019] Figure 5 This is a schematic diagram showing the disassembled structure of the auxiliary cleaning mechanism of an energy-saving automated building control system proposed in this invention.
[0020] In the diagram: 1. Air inlet duct; 2. Air outlet box; 3. Circular support housing; 4. Linkage mechanism; 5. Humidification mechanism; 6. Auxiliary cleaning mechanism; 7. Air inlet; 8. Air outlet grille; 401. Servo motor; 402. Baffle; 403. Inner partition; 404. Gear ring; 405. Circular friction block; 406. Gear; 407. Support shaft; 408. Ventilation opening; 409. Arc-shaped limiting slide groove; 410. Limiting slider; 411. Limiting insert plate; 412. Second limiting slide groove; 413. Rack; 41 4. Limiting rod; 415. Elastic rubber sleeve; 416. Central support plate; 417. Face retainer; 501. Side support plate; 502. Flow adjustment knob; 503. Water outlet; 504. Heat-conducting block; 505. Electric heating tank; 506. Water pipe; 507. Water pump; 508. Humidifier; 509. Water inlet; 601. Side guide rail; 602. Air inlet hose; 603. Air outlet hose; 604. Air inlet guide chamber; 605. Side connecting plate; 606. Sliding sleeve; 607. Air outlet guide chamber. Detailed Implementation
[0021] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0022] The energy-saving automated building control system disclosed in this invention is mainly applied to building air conditioning control scenarios.
[0023] Reference Figures 1-3An energy-saving automated building control system includes an air outlet box 2. An air inlet pipe 1 is tightly connected to the inner wall of the top of the air outlet box 2 and is connected to an external air conditioning ventilation duct. A linkage mechanism 4 is installed inside the air outlet box 2. A humidification mechanism 5 is installed on one side of the air outlet box 2, and an auxiliary cleaning mechanism 6 is installed at the bottom of the air outlet box 2. The humidification mechanism 5 includes two baffles 402. An air inlet 7 is provided at the connection between the top of the air outlet box 2 and the air inlet pipe 1, and the two baffles 402 are fitted into the air inlet 7. At the bottom, limit sliders 410 are fixedly connected to the outer walls of the bottom ends of the two baffles 402, and toothed rings 404 are also fitted onto the bottom ends of the two baffles 402. A vent 408 is provided at the center of the toothed ring 404, and two arc-shaped limit grooves 409 are provided through the top of the toothed ring 404. The two limit sliders 410 are respectively movably engaged in the arc-shaped limit grooves 409. A gear 406 meshes with the outer wall of the toothed ring 404, and the gear 406 is connected to a servo via a support shaft 407. The humidification mechanism 5 includes a flow rate adjustment knob 502, and the circular friction block 405 is in contact with the outer wall of the flow rate adjustment knob 502. An inner partition 403 is fixedly connected inside the air outlet box 2, and the inner partition 403 is located below the gear ring 404. Two central support plates 416 are symmetrically fitted at the bottom end of the inner partition 403, and elastic rubber is provided on the outer wall of each of the two central support plates 416 facing each other. The rubber sleeves 415 are fixed to the inner walls of the two sides of the air outlet box 2 on opposite sides. Each central support plate 416 is provided with a rack 413 and a limiting rod 414 at its top. Multiple second limiting grooves 412 are provided through the inner partition 403, and a limiting plate 411 is fixedly connected to the top of the inner partition 403. The two racks 413 pass through the second limiting grooves 412, and each limiting rod 414 is movably inserted into the limiting plate 411.The bottom outer wall of the gear ring 404 is provided with multiple face teeth 417 at equal intervals, and two racks 413 simultaneously mesh with the face teeth 417. The linkage mechanism 4 is used to combine the opening and closing of the air inlet 7 with the use of the humidification mechanism 5. The servo motor 401 drives the gear 406 to rotate, which in turn drives the gear ring 404 to rotate. At the same time, the connection between the limit slider 410 and the arc-shaped limit groove 409 changes the size of the air inlet 7, relieves the air supply pressure, and achieves energy saving. In addition, when the air inlet 7 is changed, the servo motor 401 synchronously drives the circular friction block 405 to rotate, which automatically drives the flow rate adjustment knob 502 to rotate, thereby adjusting the flow rate of the humidification mechanism 5. This effectively realizes the synchronous control of the air inlet 7 and the humidification mechanism 5, and can achieve air volume control. The system features a large humidification mist volume when the air volume is high and a small humidification mist volume when the air volume is low. Through automatic control and adjustment, a better user experience is achieved. Simultaneously, when the area of the air inlet 7 is changed, the rotation of the gear ring 404, through meshing with the rack 413, drives the two central support plates 416 to move relative to or towards each other, thereby changing the distance between the two central support plates 416. This allows for a smaller ventilation diameter between the two central support plates 416 and a smaller air outlet when the air volume is low, increasing the airflow velocity and ensuring smooth passage through the air box 2. This prevents air from accumulating inside the air box 2 due to low airflow, preventing cold or warm air from being discharged into the air. Conversely, when the air volume is high, the ventilation area is also large, thus ensuring ventilation balance and maximizing the utilization of cold or warm air.
[0024] Reference Figures 1-3 In a preferred embodiment, the inner wall of the air outlet box 2 is connected to a circular support shell 3, and the top and bottom ends of the toothed ring 404 are simultaneously attached to the inner wall of the circular support shell 3. The outer walls of the two opposing sides of the baffles 402 are respectively attached to the inner walls of the two sides of the air outlet box 2. An air outlet grille 8 is provided at the bottom of the air outlet box 2. The circular support shell 3 and the air outlet box 2 can respectively limit the two sides of the toothed ring 404 and the two baffles 402, so that during the rotation of the toothed ring 404, the two baffles 402 can be smoothly driven to move linearly to both sides.
[0025] Reference Figure 4 In a preferred embodiment, the humidification mechanism 5 further includes a humidifier 508, which includes a water storage tank and a sprayer. A side support plate 501 is provided on one side of the humidifier 508, a flow adjustment knob 502 is provided on the side support plate 501, and a water outlet 503 is also provided on the side support plate 501.
[0026] Reference Figure 4 In a preferred embodiment, a water pipe 506 is tightly connected to the inner wall of the top of the water storage tank. The water pipe 506 includes multiple bends and is arranged in a double-layer stacked configuration. One end of the water pipe 506 includes a water inlet 509, which is connected to an external water pipe.
[0027] Reference Figure 4 In a preferred embodiment, the water pipe 506 includes a heating section and a cooling section, and a heat-conducting block 504 and an electric heating tank 505 are arranged around the outside of the water pipe 506. The heat-conducting block 504 corresponds to the cooling section, and the electric heating tank 505 corresponds to the heating section. Studies have shown that if tap water is used directly to humidify the air, the minerals in the tap water will enter the air and then the human body, affecting the human body. Therefore, through the arrangement of the heat-conducting block 504 and the electric heating tank 505, when water enters the water pipe 506 through the water inlet 509, based on the water pipe 506... The water flows sequentially through the heat-conducting block 504, the electric heating tank 505, and the area of the heat-conducting block 504. Thus, when entering the electric heating tank 505, the water moves rapidly within the multiple bends of the water pipe 506, quickly heating it to boiling. When passing through the area of the heat-conducting block 504, the newly entered cool water undergoes rapid heat exchange through the heat-conducting block 504, preventing the boiled water from overheating when it enters the water storage tank. This ensures the safety of the water quality during humidification by the humidifier 508 and effectively prevents damage to the humidifier 508 components from boiling water.
[0028] Reference Figure 5 In a preferred embodiment, the auxiliary cleaning mechanism 6 includes an air intake guide chamber 604 and an air exhaust guide chamber 607. The air intake guide chamber 604 is located in front of the air exhaust guide chamber 607, and the tops of the air intake guide chamber 604 and the air exhaust guide chamber 607 are attached to the bottom of the air exhaust grille 8.
[0029] Reference Figure 5 In a preferred embodiment, an air inlet hose 602 and an air outlet hose 603 are fixedly connected to the inner wall of the same side of the air inlet guide chamber 604 and the air outlet guide chamber 607, respectively. The air inlet hose 602 is used to connect to an external blower, and the air outlet hose 603 is used to connect to an external negative pressure device.
[0030] Reference Figure 5In a preferred embodiment, side connecting plates 605 are fixedly connected to the outer walls of the air inlet guide chamber 604 and the air outlet guide chamber 607 on opposite sides, and sliding sleeves 606 are fixedly fixed on the side connecting plates 605. Side guide rails 601 are fixedly connected to the outer walls of the air outlet box 2 on opposite sides, and sliding sleeves 606 are movably connected to the side guide rails 601. In the auxiliary cleaning mechanism 6, the air inlet guide chamber 604 and the air outlet guide chamber 607 can be placed on one side of the air outlet grille 8 to avoid obstruction. The air conditioners in Yu's public areas are used frequently, which leads to a high frequency of cleaning. With the auxiliary cleaning mechanism 6, the air inlet hose can be connected to an external blower and the air outlet hose can be connected to an external negative pressure device during the cleaning process. The device moves along the side guide rail 601, which first blows air to blow away the stubborn dirt adhering to the air outlet grille 8, and then quickly sucks in the dirt through negative pressure to complete the cleaning of the air outlet grille 8. Thus, while ensuring the cleaning effect, the difficulty of daily cleaning is also reduced.
[0031] Working Principle: The linkage mechanism 4 combines the opening and closing of the air inlet 7 with the use of the humidification mechanism 5. The servo motor 401 drives the gear 406 to rotate, which in turn drives the gear ring 404 to rotate. Simultaneously, the connection between the limit slider 410 and the arc-shaped limit groove 409 changes the area of the air inlet 7, relieving air supply pressure and achieving energy saving. Furthermore, during the change of the air inlet 7, the servo motor 401 synchronously drives the circular friction block 405 to rotate, automatically rotating the flow rate adjustment knob 502 to adjust the flow rate of the humidification mechanism 5. This effectively achieves synchronous control of the air inlet 7 and the humidification mechanism 5, ensuring a large amount of humidified mist when the air volume is high and a small amount of humidified mist when the air volume is low. The small size, through automatic control and adjustment of the equipment, achieves a better user experience. At the same time, when changing the area of the air inlet 7, as the gear ring 404 rotates, it drives the two central support plates 416 to move relative to or towards each other through meshing with the rack 413, thereby changing the distance between the two central support plates 416. Thus, when the air volume is small, by reducing the ventilation diameter between the two central support plates 416 and reducing the air outlet, the air volume can be increased to increase the flow rate and smoothly pass through the air box 2. This avoids the accumulation of air in the air box 2 due to low air volume, preventing cold or warm air from being discharged from the air box 2 into the air in time. Conversely, when the air volume is large, the ventilation area is also large, thereby ensuring the balance of ventilation and ensuring the utilization rate of cold or warm air.
[0032] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An energy-saving automated building control system, comprising an air supply box (2), characterized in that, The top inner wall of the air outlet box (2) is tightly connected to the air inlet pipe (1), and the air inlet pipe (1) is connected to the external air conditioning ventilation pipe. The air outlet box (2) is equipped with a linkage mechanism (4), a humidification mechanism (5) is provided on one side of the air outlet box (2), and an auxiliary cleaning mechanism (6) is provided at the bottom of the air outlet box (2). The linkage mechanism (4) includes two baffles (402). An air inlet (7) is provided at the connection between the top of the air outlet box (2) and the air inlet pipe (1). The two baffles (402) are attached to the bottom of the air inlet (7). Limiting sliders (410) are fixedly connected to the bottom outer walls of the two baffles (402). A toothed ring (404) is attached to the bottom of the two baffles (402). A ventilation port (408) is provided at the center of the toothed ring (404). Two arc-shaped limiting grooves (409) are provided through the top of the toothed ring (404). The two limiting sliders (410) are movably engaged in the arc-shaped limiting grooves (409). A gear (406) is meshed on the outer wall of the toothed ring (404). A servo motor (401) is connected to the gear (406) through a support shaft (407). A circular friction block (405) is fixedly connected to the outer wall of the bottom end of the support shaft (407). The humidification mechanism (5) includes a flow adjustment knob (502), and the circular friction block (405) is in contact with the outer wall of the flow adjustment knob (502). An inner partition (403) is fixedly connected inside the air outlet box (2), and the inner partition (403) is located below the toothed ring (404). Two central support plates (416) are symmetrically attached to the bottom end of the inner partition (403), and elastic rubber sleeves (415) are respectively provided on the outer wall of the opposite side of the two central support plates (416). The opposite side of the two elastic rubber sleeves (415) is respectively fixed to the inner wall of the two sides of the air outlet box (2). Each central support plate (416) is provided with a rack (413) and a limiting rod (414) at the top. Multiple second limiting grooves (412) are provided through the inner partition (403), and a limiting plate (411) is fixedly connected to the top of the inner partition (403). The two racks (413) pass through the second limiting grooves (412), and each limiting rod (414) is movably inserted into the limiting plate (411). The bottom outer wall of the toothed ring (404) is provided with a plurality of face teeth (417) at equal intervals, and the two racks (413) mesh with the face teeth (417) at the same time.
2. The energy-saving automated building control system according to claim 1, characterized in that, The inner wall of the air outlet box (2) is connected to a circular support shell (3), and the top and bottom ends of the toothed ring (404) are simultaneously attached to the inner wall of the circular support shell (3). The outer walls of the two opposing sides of the baffles (402) are respectively attached to the inner walls of the two sides of the air outlet box (2). An air outlet grille (8) is provided at the bottom of the air outlet box (2).
3. The energy-saving automated building control system according to claim 1, characterized in that, The humidification mechanism (5) also includes a humidifier (508), and the humidifier (508) includes a water tank and a sprayer. A side support plate (501) is provided on one side of the humidifier (508), and the flow rate adjustment knob (502) is provided on the side support plate (501). A water outlet (503) is also provided on the side support plate (501).
4. The energy-saving automated building control system according to claim 3, characterized in that, The top inner wall of the water storage tank is tightly connected to a water pipe (506). The water pipe (506) includes multiple bends and is arranged in a double-layer stack. One end of the water pipe (506) includes a water inlet (509) and the water inlet (509) is connected to an external water pipe.
5. The energy-saving automated building control system according to claim 4, characterized in that, The water pipe (506) includes a heating section and a cooling section, and a heat-conducting block (504) and an electric heating tank (505) are arranged around the outside of the water pipe (506). The heat-conducting block (504) corresponds to the cooling section, and the electric heating tank (505) corresponds to the heating section.
6. The energy-saving automated building control system according to claim 2, characterized in that, The auxiliary cleaning mechanism (6) includes an air intake guide chamber (604) and an air outlet guide chamber (607). The air intake guide chamber (604) is located in front of the air outlet guide chamber (607), and the tops of the air intake guide chamber (604) and the air outlet guide chamber (607) are attached to the bottom of the air outlet grille (8).
7. The energy-saving automated building control system according to claim 6, characterized in that, The air intake guide chamber (604) and the air outlet guide chamber (607) are respectively fixedly connected to the inner wall on the same side of the air intake hose (602) and the air outlet hose (603). The air intake hose (602) is used to connect to an external blower, and the air outlet hose (603) is used to connect to an external negative pressure device.
8. The energy-saving automated building control system according to claim 7, characterized in that, The outer walls of the air inlet guide chamber (604) and the air outlet guide chamber (607) are fixedly connected to side connecting plates (605), and a sliding sleeve (606) is fixed on the side connecting plates (605). The outer walls of the air outlet box (2) are fixedly connected to side guide rails (601), and the sliding sleeve (606) is movably connected to the side guide rails (601).
Citation Information
Patent Citations
Energy-saving automatic building control system
CN216114631U
Intelligent building air conditioner ventilation system
CN114484683A
Connecting structure of air supply and return pipe and indoor unit
CN213810858U