Multifunctional energy-saving air conditioner host

Through the design of mesh plates and anti-oxidation devices, combined with drying capsules and reminder devices, the problems of reduced heat exchange effect and increased energy consumption caused by external dust intrusion are solved, and efficient operation of the air-conditioning host and equipment maintenance are achieved.

CN120650813APending Publication Date: 2025-09-16XIANGSHUI DEERKANG REFRIGERATION EQUIP CO LTD
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Patent Information

Application Number
CN202511065102.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-31
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

During long-term use of existing air-conditioning main units, external dust easily invades and adheres to the surface of internal components, resulting in reduced heat exchange effect and increased energy consumption.

Method used

The system adopts a coordinated design of mesh plates, reciprocating screws, U-shaped plates, circular shovel plates, negative pressure components, friction wheels, vertical rods and telescopic brush plates. It prevents the intrusion of external dirt through horizontal movement and friction. Combined with the anti-oxidation device and the drying capsule, it monitors the humidity in real time and sprays dry gas to prevent oxidation and agglomeration. The prompt device notifies maintenance personnel in time.

Benefits of technology

It effectively prevents the intrusion of external dirt, maintains heat exchange effect, reduces energy consumption, extends equipment life, notifies maintenance in time, and prevents malfunctions and damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a multifunctional energy-saving air conditioner host, and relates to the technical field of air conditioning systems. A through groove is formed in the top of one end of the front face of the machine body, a mesh plate is fixedly installed at the bottom of the inner wall of the machine body, located on the front face of the compressor and used for shielding dirt entering the machine body, a reciprocating lead screw is rotationally installed in the machine body, and the left end of the reciprocating lead screw is fixedly connected with the conveying end of an external driving mechanism. While the indoor unit is promoted to refrigerate or heat, a condensing agent in the unit body is circulated, external dirt is prevented from invading the unit body in the heat exchange process of equipment in the unit body through a mesh plate, and the situation that the viscosity of the dirt to the unit body is increased due to temperature difference change of a condensing mechanism is avoided; energy consumption increase caused by reduction of the heat exchange effect due to increase of the thickness of surface dirt is prevented, and attachments on the surface of the mesh plate are timely shoveled by the zigzag shovel plate.
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Description

Technical Field

[0001] The present invention relates to the technical field of air-conditioning systems, and in particular to a multifunctional energy-saving air-conditioning host. Background Art

[0002] With the improvement of people's living standards, air conditioners have become one of the indispensable electrical appliances in daily life. While enjoying the convenience brought by air conditioners, people are also increasingly pursuing alternative practical functions of air conditioners. Ordinary air-cooled air conditioner hosts use the same heat exchanger for cold water and hot water, and can usually only meet the needs of single cooling or heating, and cannot achieve simultaneous cooling and heating.

[0003] The patent with patent announcement number CN107940793A discloses a multifunctional air-conditioning host, including a compressor, a four-way valve, an air-cooled heat exchanger, a liquid reservoir, a hot water side heat exchanger, and a cold water side heat exchanger. The exhaust end of the compressor is connected to the air-cooled heat exchanger and the hot water side heat exchanger, and the air-cooled heat exchanger and the hot water side heat exchanger are connected in parallel. The four-way valve is arranged between the compressor and the air-cooled heat exchanger, and the suction end of the compressor is connected to the cold water side heat exchanger. The patent realizes different switching of the refrigerant pipeline through the switching combination of the four-way valve and multiple solenoid valves, so that the refrigerant has multiple circulation modes, so that the multifunctional air-conditioning host can provide cold water or hot water separately, and can also provide cold water and hot water at the same time, and has a defrost function; in addition, the patent also installs temperature sensors and pressure sensors on the pipeline to monitor the temperature and pressure of the refrigerant pipeline in real time to ensure the normal operation of the host.

[0004] However, the device still has some shortcomings: the device uses a four-way valve and multiple solenoid valves to provide cold water and hot water separately or simultaneously, but the large air-conditioning main unit in the factory is located outdoors. During its long-term use, external dust can easily invade and adhere to the surface of components inside the air-conditioning main unit, easily increasing the thickness of dirt on its surface, thereby reducing the heat exchange effect and increasing energy consumption to a certain extent. Summary of the Invention

[0005] In view of the deficiencies in the prior art, the present invention provides a multifunctional energy-saving air-conditioning host, which solves the problems raised in the above-mentioned background technology.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a multifunctional energy-saving air-conditioning host, comprising a body, a through slot being opened at the top of one end of the front side of the body, a mesh plate being fixedly installed on the bottom of the inner wall of the body, the mesh plate being located in the front side of the compressor, and the mesh plate being used to block dirt entering the body. A reciprocating screw is rotatably installed inside the body, the left end of the reciprocating screw is fixedly connected to the delivery end of the external driving mechanism, and the outer wall of the reciprocating screw is a non-self-locking reciprocating spiral groove, the outer wall of the reciprocating screw passes through and is movably installed with a U-shaped plate, the back of the U-shaped plate is provided with an anti-oxidation device for removing moisture inside the body, and the periphery of the anti-oxidation device is provided with a prompt device for conveniently observing whether the equipment is operating normally, the left outer wall of the U-shaped plate is hinged with a circular shovel plate by a torsion spring, a negative pressure component is fixedly installed inside the through slot of the body, two friction wheels are symmetrically and rotatably installed inside the U-shaped plate, vertical rods are fixedly installed on opposite sides of the two friction wheels, and a number of retractable brush plates are equidistant and fixedly installed on the outer wall of the vertical rod.

[0007] According to the above technical solution, a compressor is provided at the bottom of the inner wall of the machine body, and the compressor compresses and heats the air entering the machine body. A four-way valve mechanism is provided above the compressor, and the interior of the four-way valve mechanism is regulated by electromagnetics. The air inlet of the four-way valve mechanism is connected to the compressor through a pipe, and the valve port of the four-way valve mechanism is connected to the valve port of the indoor unit and the machine body respectively through a pipe. A condensing mechanism is provided on the left side of the compressor, and the internal pipe of the condensing mechanism is a copper pipe. The condensing mechanism is connected to the four-way valve mechanism through a pipe. A return pipe is provided between the right side of the condensing mechanism and the left side of the compressor. An air cooling mechanism is provided on the back of the inner wall of the machine body, and the air cooling mechanism blows heat to the condensing mechanism.

[0008] The U-shaped plate is slidably mounted on the back of the mesh plate at the front, and one end of the front of the circular shovel plate contacts the back of the mesh plate. The circular shovel plate shovels away dirt on the surface of the mesh plate, and the negative pressure component extracts dirt raised on the surface of the mesh plate. The outer wall of the friction wheel contacts the back of the mesh plate, and the telescopic end of the telescopic brush plate avoids contact with the mesh plate. The telescopic brush plate is equipped with a spring, and the telescopic brush plate is telescoped and reset by the spring force. When the machine body is running, the compressor draws in the refrigerant through the pipeline for compression, and then inputs the refrigerant into the four-way valve mechanism through the pipeline. The four-way valve mechanism adjusts the flow direction of the refrigerant through the solenoid valve. The four-way valve mechanism relies on the pipeline to input the high-temperature and high-pressure refrigerant into the copper tube of the condensing mechanism for circulation and heat dissipation. In this process, the air cooling mechanism blows the condensing mechanism, i.e., performs heat exchange treatment, and then converts the liquid fluid into gas through the expansion valve and inputs it into the indoor unit, absorbing the high-temperature gas in the room. The U-shaped plate is rotated horizontally along the outer wall of the mesh plate, and the mesh plate protects the internal equipment of the machine body to prevent external dirt from drifting to the condensing mechanism and other equipment. When the U-shaped plate drives the circular shovel plate to move horizontally, the circular shovel plate shovels the surface of the mesh plate; when the reciprocating screw rotates, the negative pressure component is started, and the negative pressure component shovels the circular shovel plate and lifts up the attachments to absorb upwards. At the same time, the U-shaped plate drives the friction wheel to perform horizontal friction along the outer wall of the mesh plate to generate friction force. The friction wheel starts to rotate by friction and drives the vertical rod to rotate. The vertical rod drives the telescopic brush plate to revolve. The telescopic end of the telescopic brush plate is always close to the surface of the mesh plate by the limit of the spring elastic force, thereby enhancing the brushing effect of the telescopic brush plate on the mesh plate.

[0009] According to the above technical solution, the anti-oxidation device includes an L-shaped connecting plate, the top of one end of the front side of the L-shaped connecting plate is fixedly installed on the back side of the U-shaped plate, the bottom of the L-shaped connecting plate is symmetrical and fixedly installed with two connecting rods, the bottom of the connecting rod is fixedly installed with a humidity sensor, the bottom of the humidity sensor is in contact with the bottom of the inner wall of the machine body, the humidity sensor is located outside the compressor and the condensing mechanism, the U-shaped plate drives the L-shaped connecting plate to move horizontally and reset, the L-shaped connecting plate drives the connecting rod to move synchronously, and the connecting rod drives the humidity sensor to slide synchronously along the bottom of the inner wall of the machine body, thereby expanding the humidity monitoring range around the condensing mechanism and the compressor.

[0010] According to the above technical solution, the anti-oxidation device also includes a circular telescopic frame, the bottom of which is fixedly installed on the bottom of the inner wall of the machine body, and a number of semicircular blocks are equidistantly and fixedly installed on the top of the circular telescopic frame. The arc surface of the outer wall of the semicircular block is located on the bottom movement trajectory of one end of the back of the L-shaped connecting plate, and a drying capsule is fixedly installed inside the circular telescopic frame.

[0011] According to the above technical solution, the arched telescopic frame is located on the back of the condensing mechanism, and the arched telescopic frame is equipped with a spring. A booster component is provided inside the drying capsule, and the lower part of the outer wall on the back of the drying capsule is designed as a hard shell, and desiccant particles are provided inside the drying capsule. The drying capsule discharges the dry gas generated by the desiccant particles to the condensing mechanism. When the L-shaped connecting plate moves horizontally, it will contact and resist the outer wall of the arc surface of the semicircular block. At this time, the semicircular block generates a downward force, and the semicircular block presses the telescopic end of the arched telescopic frame to retract downward. When the semicircular block is free from the resistance of the L-shaped connecting plate, the arched telescopic frame is reset by the spring force, and this is repeated. When the telescopic end of the arched telescopic frame contracts, it will press the upper part of the drying capsule to deform. The deformed drying capsule changes its internal pressure, and relies on the built-in booster component to quickly discharge the dry gas inside itself toward the condensing mechanism, and then uses the air cooling mechanism to expand the circulation range of the dry gas.

[0012] According to the above technical solution, the prompt device includes a pressure plate, the front of which is fixedly installed on the back of the telescopic end of the circular telescopic frame, the top of the pressure plate is fixedly installed with a support frame, the top of the support frame is fixedly installed with a warning light mechanism, the left side of the warning light mechanism is fixedly installed with a resistance block, and the top of the body is installed with an identification plate through spring sliding.

[0013] According to the above technical solution, the top of the support frame moves through the top of the machine body, and the warning light mechanism facilitates the staff to judge whether the machine body is operating normally. The identification plate is used to expand the staff's observation field of view during the day. A groove is provided at the right end of the identification plate, and the identification plate groove contacts the arc surface of the outer wall of the interference block. The telescopic end of the circular telescopic frame drives the pressure plate to move downward and reset, and the pressure plate drives the support frame to perform reciprocating vertical movement. The support frame drives the warning light mechanism to move synchronously, and the warning light mechanism expands its own range of movement during the vertical movement, that is, the light emitted during the movement is more eye-catching at night. At the same time, the warning light mechanism drives the interference block to move synchronously, and the interference block interferes with the identification plate groove when moving downward. As the interference of the interference block, the identification plate generates a force for horizontal movement, and the identification plate slides horizontally along the top of the machine body. When the interference block is released from the limit, the identification plate is reset by the spring force, thereby converting the static identification plate into a dynamic one.

[0014] According to the above technical solution, a rotating rod is rotatably installed at the bottom of the inner wall of the machine body, and a non-self-locking spiral groove is opened on the outer wall of the rotating rod. The spiral groove of the rotating rod movably passes through the inside of the pressure plate, and a convex roller is fixedly installed on the outer wall of the bottom of the rotating rod. An impact plate is slidably installed on the back of the drying capsule through a spring. The impact plate is convexly designed on the side close to the rotating rod. The convex surface of the impact plate contacts the outer wall of the convex roller. A vibration block is fixedly installed on the lower back of the drying capsule. The vibration block contacts the surface of the impact plate on the side close to the convex roller. The pressure plate When it moves downward, it contacts the non-self-locking spiral groove on the outer wall of the rotating rod. The spiral groove limits the rotating rod, causing the rotating rod to generate a rotating force and start to rotate. The rotating rod drives the cam roller to revolve. When the cam roller revolves, the limit on the convex surface of the impact plate is released. The impact plate slides horizontally along the hard outer part below the drying capsule due to the elastic force of the spring. When the arc surface of the outer wall of the cam roller again hits the convex surface of the impact plate during the revolution, the impact plate will suddenly rush towards the vibration block, and the vibration block will generate a certain vibration. The transmission of force makes the bottom of the drying capsule vibrate synchronously, and the cycle repeats.

[0015] The present invention provides a multifunctional energy-saving air conditioner main unit. It has the following beneficial effects: (1) The present invention realizes the circulation of the refrigerant inside the indoor unit while completing the cooling or heating of the indoor unit through the cooperation of the compressor, condensing mechanism, return pipe, air cooling mechanism and four-way valve mechanism, and the mutual cooperation of the compressor, condensing mechanism and other equipment, and the assistance of the four-way valve mechanism; Through the cooperation of the mesh plate, reciprocating screw, U-shaped plate, circular shovel plate, negative pressure component, friction wheel, vertical rod and telescopic brush plate, the mesh plate is used to prevent external dirt from invading the internal equipment of the machine body during the heat exchange process, avoid the condensation mechanism from increasing the stickiness of dirt to itself due to temperature difference changes, prevent the thickness of dirt on its surface from increasing, thereby reducing the heat exchange effect and increasing energy consumption, and the circular shovel plate promptly removes the attachments on the surface of the mesh plate; the telescopic brush plate is used to sweep and remove the attachments shoveled by the circular shovel plate through the revolution, and then the raised attachments are absorbed in time by the negative pressure component to ensure the smooth flow of the mesh plate, prevent the mesh plate from being blocked, which makes it difficult to quickly discharge the heat inside the machine body, and increase the probability of failure caused by high temperature inside the machine body.

[0016] (2) The present invention sets an anti-oxidation device, and cooperates with a U-shaped plate, an L-shaped connecting plate, a connecting rod, a humidity sensor, a circular telescopic frame, a semicircular block and a drying capsule. The humidity sensor monitors the humidity around the condensing mechanism in real time, and the humidity sensor transmits the monitoring data to the maintenance personnel to prevent the interior of the machine from being corroded by moisture and changing the heat exchange environment, thereby affecting the operation effect of the machine; the drying capsule sprays dry gas, and the air cooling mechanism is used to enable the dry gas to be widely covered, thereby reducing the overall humidity inside the machine and preventing the mesh plate from being attached by rainwater splashed on rainy days, resulting in the caking of eroded dirt, thereby ensuring a dry environment inside the machine and preventing the internal equipment of the machine from being oxidized.

[0017] (3) The present invention sets a prompt device, cooperates with a circular telescopic frame, a pressure plate, a support frame, a warning light mechanism, a resistance block, an identification plate, a rotating rod, a cam roller, an impact plate, and a vibration block, and uses a vertically moving warning light mechanism and a horizontally moving identification plate, as well as the movement amplitude of the two, so that the staff can judge the operating status of the body in time during the day and night, which is convenient for maintenance personnel to arrive at the site for inspection and repair in time, and avoid damage to the body caused by long-term fault operation; through the revolution of the cam roller, the impact plate is prompted to continuously impact the vibration block, so that the desiccant particles deposited at the bottom of the drying capsule can remain loose, and the desiccant particles are prevented from aggregating and sticking due to the temperature difference inside the body, and the uneven loss of desiccant particles is prevented from affecting the drying effect of the drying capsule on the moisture inside the body, thereby extending the replacement cycle of the filler. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 A schematic diagram of the present invention as a whole; Figure 2 Schematic diagram of the internal structure of the present invention as a whole; Figure 3 This is a schematic diagram of the peripheral structure of the mesh plate of the present invention; Figure 4 It is a schematic cross-sectional view of the peripheral structure of the mesh plate of the present invention; Figure 5 For the present invention Figure 4 A schematic diagram of the structure at center A; Figure 6 Schematic diagram of the anti-oxidation device of the present invention; Figure 7 This is a schematic diagram of the anti-oxidation device of the present invention from the left side perspective; Figure 8 This is a schematic diagram of the back view of the prompt device of the present invention; Figure 9 This is a schematic diagram of the front left side perspective of the prompt device of the present invention.

[0019] In the figure: 1. machine body; 2. compressor; 3. condensing mechanism; 4. return pipe; 5. air cooling mechanism; 6. mesh plate; 7. reciprocating screw; 8. U-shaped plate; 9. circular shovel plate; 10. negative pressure assembly; 11. friction wheel; 12. vertical rod; 13. telescopic brush plate; 14. anti-oxidation device; 141. L-shaped connecting plate; 142. connecting rod; 143. humidity sensor; 144. circular telescopic frame; 145. semicircular block; 146. drying capsule; 15. prompt device; 151. pressure plate; 152. support frame; 153. warning light mechanism; 154. resistance block; 155. identification plate; 156. rotating rod; 157. cam roller; 158. impact plate; 159. vibration block. DETAILED DESCRIPTION

[0020] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0021] See also Figures 1-9 One embodiment of the present invention is: a multifunctional energy-saving air conditioner host, including a body 1, a through groove is opened on the top of one end of the front of the body 1, a mesh plate 6 is fixedly installed on the bottom of the inner wall of the body 1, the mesh plate 6 is located in front of the compressor 2, and the mesh plate 6 is used to block the dirt entering the inside of the body 1, a reciprocating screw 7 is rotatably installed inside the body 1, the left end of the reciprocating screw 7 is fixedly connected to the delivery end of the external drive mechanism, and the outer wall of the reciprocating screw 7 is a non-self-locking reciprocating spiral groove, and the outer wall of the reciprocating screw 7 is penetrated and movably installed. A U-shaped plate 8 is provided on the back of the U-shaped plate 8 with an anti-oxidation device 14 for removing moisture from the inside of the body 1. A prompt device 15 is provided on the periphery of the anti-oxidation device 14 for conveniently observing whether the equipment is operating normally. The left outer wall of the U-shaped plate 8 is hinged with a circular shovel plate 9 through a torsion spring. A negative pressure component 10 is fixedly installed inside the through groove of the body 1. Two friction wheels 11 are symmetrically and rotatably installed inside the U-shaped plate 8. A vertical rod 12 is fixedly installed on the opposite side of the two friction wheels 11. A plurality of telescopic brush plates 13 are equidistant and fixedly installed on the outer wall of the vertical rod 12.

[0022] A compressor 2 is provided at the bottom of the inner wall of the body 1. The compressor 2 compresses and heats the air entering the body 1. A four-way valve mechanism is provided above the compressor 2. The four-way valve mechanism is internally regulated by electromagnetics. The air inlet of the four-way valve mechanism is connected to the compressor 2 through a pipe. The valve port of the four-way valve mechanism is connected to the valve ports of the indoor unit and the body 1 respectively through a pipe. A condensing mechanism 3 is provided on the left side of the compressor 2. The internal pipe of the condensing mechanism 3 is a copper pipe. The condensing mechanism 3 is connected to the four-way valve mechanism through a pipe. A return pipe 4 is provided between the right side of the condensing mechanism 3 and the left side of the compressor 2. An air cooling mechanism 5 is provided on the back of the inner wall of the body 1. The air cooling mechanism 5 blows the condensing mechanism 3 for heat exchange.

[0023] The front of the U-shaped plate 8 is slidably installed on the back of the mesh plate 6, and one end of the front of the circular shovel plate 9 contacts the back of the mesh plate 6. The circular shovel plate 9 removes dirt on the surface of the mesh plate 6, and the negative pressure component 10 extracts dirt raised from the surface of the mesh plate 6. The outer wall of the friction wheel 11 contacts the back of the mesh plate 6, and the telescopic end of the telescopic brush plate 13 avoids contact with the mesh plate 6. The telescopic brush plate 13 has a built-in spring, and the telescopic brush plate 13 is telescopically reset by the spring force.

[0024] Through the mutual cooperation of the compressor 2 and the condensing mechanism 3 and the assistance of the four-way valve mechanism, the refrigerant inside the body 1 is circulated while the indoor machine is cooling or heating; the mesh plate 6 is used to prevent external dirt from invading the body 1 during the heat exchange process of the internal equipment of the body 1, and to avoid the condensing mechanism 3 from increasing the stickiness of the dirt to itself due to the temperature difference change, and to prevent the thickness of the dirt on its surface from increasing, thereby reducing the heat exchange effect and increasing energy consumption, and the circular shovel plate 9 promptly removes the attachments on the surface of the mesh plate 6; the telescopic brush plate 13 is used to rotate and sweep away the attachments shoveled by the circular shovel plate 9, and then the raised attachments are promptly absorbed by the negative pressure component 10 to ensure that the mesh plate 6 is unobstructed, and to prevent the mesh plate 6 from being blocked, which makes it difficult to quickly discharge the heat inside the body 1, and increases the probability of failure caused by high temperature inside the body 1.

[0025] When in use, the body 1 is running, the compressor 2 draws in the refrigerant through the pipeline for compression, and then inputs the refrigerant into the four-way valve mechanism through the pipeline. The four-way valve mechanism adjusts the flow direction of the refrigerant through the solenoid valve, and the four-way valve mechanism relies on the pipeline to input the high-temperature and high-pressure refrigerant into the copper tube of the condensing mechanism 3 for circulation and heat dissipation. In this process, the air cooling mechanism 5 blows the condensing mechanism 3 to perform heat exchange processing, and then converts the liquid fluid into gaseous state through the expansion valve and inputs it into the indoor unit. After absorbing the high-temperature indoor gas, it is input into the compressor 2 again through the condensing mechanism 3 and the return pipe 4 to complete the cycle, and repeats over and over again; the output end of the external driving mechanism drives the reciprocating screw 7 to rotate, and when the reciprocating screw 7 rotates, it drives the U-shaped plate 8 to generate a horizontal movement force through the non-self-locking reciprocating spiral groove. At this time, the U-shaped The plate 8 will move horizontally and reset along the outer wall of the mesh plate 6, and the mesh plate 6 protects the internal equipment of the body 1 to prevent external dirt from drifting to the condensing mechanism 3 and other equipment. When the U-shaped plate 8 drives the circular shovel plate 9 to move horizontally, the circular shovel plate 9 shovels the surface of the mesh plate 6; when the reciprocating screw 7 rotates, the negative pressure component 10 is started, and the negative pressure component 10 shovels the circular shovel plate 9 and absorbs the lifted attachments upward. At the same time, the U-shaped plate 8 drives the friction wheel 11 to perform horizontal friction along the outer wall of the mesh plate 6 to generate friction. The friction wheel 11 starts to rotate by relying on the friction force and drives the vertical rod 12 to rotate. The vertical rod 12 drives the telescopic brush plate 13 to revolve. The telescopic end of the telescopic brush plate 13 is always close to the surface of the mesh plate 6 through the limit of the spring elastic force, thereby enhancing the brushing effect of the telescopic brush plate 13 on the mesh plate 6.

[0026] According to the above embodiment, through the mutual cooperation of the compressor 2 and the condensing mechanism 3 and other equipment, and the assistance of the four-way valve mechanism, the refrigerant inside the body 1 is circulated while the indoor machine is cooling or heating; the mesh plate 6 is used to prevent external dirt from invading the inside of the body 1 during the heat exchange process of the internal equipment of the body 1, to avoid the condensing mechanism 3 from increasing the stickiness of the dirt to itself due to the temperature difference change, to prevent the thickness of the dirt on its surface from increasing, thereby reducing the heat exchange effect, and causing increased energy consumption, and the circular shovel plate 9 promptly removes the attachments on the surface of the mesh plate 6; the telescopic brush plate 13 is used to rotate and sweep away the attachments shoveled by the circular shovel plate 9, and then the negative pressure component 10 is used to absorb the raised attachments in time to ensure that the mesh plate 6 is unobstructed, to prevent the mesh plate 6 from being blocked, which makes it difficult to quickly discharge the heat inside the body 1, and to increase the probability of failure caused by high temperature inside the body 1.

[0027] See also Figures 1-9 , based on the above embodiment, another embodiment of the present invention further includes an anti-oxidation device 14; The anti-oxidation device 14 includes an L-shaped connecting plate 141. The top of one end of the front side of the L-shaped connecting plate 141 is fixedly mounted on the back side of the U-shaped plate 8. Two connecting rods 142 are symmetrically and fixedly mounted on the bottom of the L-shaped connecting plate 141. A humidity sensor 143 is fixedly mounted on the bottom of the connecting rod 142. The bottom of the humidity sensor 143 contacts the bottom of the inner wall of the body 1. The humidity sensor 143 is located outside the compressor 2 and the condensing mechanism 3.

[0028] The anti-oxidation device 14 also includes a circular telescopic frame 144, the bottom of which is fixedly installed on the bottom of the inner wall of the body 1, and a number of semicircular blocks 145 are equidistantly and fixedly installed on the top of the circular telescopic frame 144. The arc surface of the outer wall of the semicircular block 145 is located on the bottom movement trajectory of one end of the back of the L-shaped connecting plate 141, and a drying capsule 146 is fixedly installed inside the circular telescopic frame 144.

[0029] The circular telescopic frame 144 is located on the back of the condensing mechanism 3. The circular telescopic frame 144 has a built-in spring. A booster component is provided inside the drying capsule 146. The lower part of the outer wall on the back of the drying capsule 146 is designed as a hard shell, and desiccant particles are provided inside the drying capsule 146. The drying capsule 146 discharges the dry gas generated by the desiccant particles to the condensing mechanism 3.

[0030] The humidity around the condensing mechanism 3 is monitored in real time by the humidity sensor 143, and the humidity sensor 143 transmits the monitoring data to the maintenance personnel to prevent the interior of the body 1 from being corroded by moisture and changing the heat exchange environment, thereby affecting the operation effect of the body 1; dry gas is sprayed out by the drying capsule 146, and the air cooling mechanism 5 is used to ensure that the dry gas can be widely covered, thereby reducing the overall humidity inside the body 1 and preventing the mesh plate 6 from being adhered to by rainwater splashed on rainy days, resulting in the agglomeration of corroded dirt, thereby ensuring a dry environment inside the body 1 and preventing the internal equipment of the body 1 from being oxidized.

[0031] When in use, the U-shaped plate 8 drives the L-shaped connecting plate 141 to move horizontally and reset, the L-shaped connecting plate 141 drives the connecting rod 142 to move synchronously, and the connecting rod 142 drives the humidity sensor 143 to slide synchronously along the bottom of the inner wall of the body 1, thereby expanding the humidity monitoring range around the condensing mechanism 3 and the compressor 2; when the L-shaped connecting plate 141 moves horizontally, it will contact and resist the outer wall of the arc surface of the semicircular block 145, at this time the semicircular block 145 generates a downward movement force, and the semicircular block 145 presses the circular telescopic The telescopic end of the frame 144 contracts downward. When the semicircular block 145 is free from the interference of the L-shaped connecting plate 141, the circular telescopic frame 144 is reset by the spring force, and this is repeated repeatedly. When the telescopic end of the circular telescopic frame 144 contracts, it presses the upper part of the drying capsule 146 to deform. The deformed drying capsule 146 changes its internal pressure, and relies on the built-in booster component to quickly discharge the dry gas inside itself toward the condensing mechanism 3, and then uses the air cooling mechanism 5 to expand the circulation range of the dry gas.

[0032] According to the above embodiment, the humidity around the condensing mechanism 3 is monitored in real time by the humidity sensor 143, and the humidity sensor 143 transmits the monitoring data to the maintenance personnel to prevent the interior of the body 1 from being corroded by moisture and changing the heat exchange environment, thereby affecting the operation effect of the body 1; dry gas is sprayed out by the drying capsule 146, and the air cooling mechanism 5 is used to ensure that the dry gas can be widely covered, thereby reducing the overall humidity inside the body 1 and preventing the mesh plate 6 from being adhered to by rainwater splashed on rainy days, resulting in the caking of corroded dirt, thereby ensuring a dry environment inside the body 1 and preventing oxidation of the internal equipment of the body 1.

[0033] See also Figures 1-9 , based on the above embodiment, another embodiment of the present invention further includes a prompting device 15; The prompt device 15 includes a pressure plate 151, the front of the pressure plate 151 is fixedly installed on the back of the telescopic end of the circular telescopic frame 144, the top of the pressure plate 151 is fixedly installed with a support frame 152, the top of the support frame 152 is fixedly installed with a warning light mechanism 153, the left side of the warning light mechanism 153 is fixedly installed with a resistance block 154, and the top of the body 1 is installed with an identification plate 155 through spring sliding.

[0034] The top of the support frame 152 is movable and passes through the top of the body 1. The warning light mechanism 153 makes it easy for the staff to judge whether the body 1 is operating normally. The identification plate 155 is used to expand the staff's observation field of view during the day. A groove is provided at the right end of the identification plate 155, and the groove of the identification plate 155 contacts the arc surface of the outer wall of the resistance block 154.

[0035] A rotating rod 156 is rotatably installed at the bottom of the inner wall of the body 1, and a non-self-locking spiral groove is opened on the outer wall of the rotating rod 156. The spiral groove of the rotating rod 156 movably passes through the interior of the pressure plate 151. A convex roller 157 is fixedly installed on the outer wall of the bottom of the rotating rod 156. An impact plate 158 is slidably installed on the back of the drying capsule 146 through a spring. The side of the impact plate 158 close to the rotating rod 156 is convex. The convex surface of the impact plate 158 contacts the outer wall of the convex roller 157. A vibration block 159 is fixedly installed at the bottom of the back of the drying capsule 146. The side of the vibration block 159 close to the convex roller 157 contacts the surface of the impact plate 158.

[0036] The vertically moving warning light mechanism 153 and the horizontally moving identification plate 155, as well as the range of motion of both, allow staff to promptly determine the operating status of the housing 1 both day and night, facilitating timely on-site inspection and repair by maintenance personnel, thereby preventing damage to the housing 1 caused by prolonged malfunction. The revolution of the cam roller 157 causes the impact plate 158 to continuously impact the vibration block 159, thereby keeping the desiccant particles deposited at the bottom of the drying capsule 146 loose, preventing the desiccant particles from aggregating and sticking due to temperature differences within the housing 1. This prevents uneven desiccant particle loss from affecting the drying effect of the drying capsule 146 on the moisture within the housing 1, thereby extending the replacement cycle of the filler.

[0037] When in use, the telescopic end of the circular telescopic frame 144 drives the pressure plate 151 to move downward and reset, and the pressure plate 151 drives the support frame 152 to make a reciprocating vertical movement, and the support frame 152 drives the warning light mechanism 153 to move synchronously. The warning light mechanism 153 expands its own range of movement during the vertical movement, that is, the light emitted during the movement is more eye-catching at night. At the same time, the warning light mechanism 153 drives the contact block 154 to move synchronously. When the contact block 154 moves downward, it contacts the groove of the identification plate 155. As the contact block 154 contacts, the identification plate 155 generates a force for horizontal movement, and the identification plate 155 slides horizontally along the top of the body 1. When the contact block 154 is released from the limit, the identification plate 155 is reset by the spring force, thereby The static identification plate 155 is converted into a dynamic one; when the pressure plate 151 moves downward, it contacts the non-self-locking spiral groove on the outer wall of the rotating rod 156. The spiral groove limits the rotating rod 156, causing the rotating rod 156 to generate a rotational force and start rotating. The rotating rod 156 drives the convex roller 157 to revolve. When the convex roller 157 revolves, the limit on the convex surface of the impact plate 158 is released. The impact plate 158 slides horizontally along the hard outer part of the lower part of the drying capsule 146 by the elastic force of the spring. When the arc surface of the outer wall of the convex roller 157 again hits the convex surface of the impact plate 158 during the revolution, the impact plate 158 will suddenly rush towards the vibration block 159, and the vibration block 159 generates a certain vibration. The transmission of force causes the lower part of the drying capsule 146 to vibrate synchronously, and the cycle repeats.

[0038] According to the above embodiment, the vertically moving warning light mechanism 153 and the horizontally moving identification plate 155, as well as the movement amplitudes of both, enable staff to promptly determine the operating status of the housing 1 both day and night, facilitating timely arrival of maintenance personnel at the site for repairs and preventing damage to the housing 1 due to prolonged malfunction. The revolution of the cam roller 157 causes the impact plate 158 to continuously impact the vibration block 159, thereby keeping the desiccant particles deposited at the bottom of the drying capsule 146 loose, preventing the desiccant particles from aggregating and sticking due to temperature differences within the housing 1, and preventing uneven desiccant particle loss from affecting the drying effect of the drying capsule 146 on the moisture within the housing 1, thereby extending the replacement cycle of the filler.

[0039] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A multifunctional energy-saving air conditioner host, comprising a body (1), characterized in that: A through slot is provided at the top of one end of the front face of the machine body (1), a mesh plate (6) is fixedly installed at the bottom of the inner wall of the machine body (1), the mesh plate (6) is located at the front face of the compressor (2), and the mesh plate (6) is used to block dirt entering the interior of the machine body (1), a reciprocating screw (7) is rotatably installed inside the machine body (1), the left end of the reciprocating screw (7) is fixedly connected to the delivery end of the external drive mechanism, and the outer wall of the reciprocating screw (7) is a non-self-locking reciprocating spiral groove, and a U-shaped plate (8) is movably installed through the outer wall of the reciprocating screw (7), and the back of the U-shaped plate (8) is provided with An anti-oxidation device (14) for removing moisture from the interior of the machine body (1) is provided. A prompt device (15) is provided on the periphery of the anti-oxidation device (14) for facilitating observation of whether the equipment is operating normally. A circular shovel plate (9) is hingedly connected to the left outer wall of the U-shaped plate (8) via a torsion spring. A negative pressure assembly (10) is fixedly installed inside the through groove of the machine body (1). Two friction wheels (11) are symmetrically and rotatably installed inside the U-shaped plate (8). A vertical rod (12) is fixedly installed on the opposite side of the two friction wheels (11). A plurality of telescopic brush plates (13) are fixedly installed on the outer wall of the vertical rod (12) at equal distances.

2. The multifunctional energy-saving air conditioner host according to claim 1, characterized in that: A compressor (2) is provided at the bottom of the inner wall of the machine body (1), and the compressor (2) compresses and heats the air entering the machine body (1). A four-way valve mechanism is provided above the compressor (2), and the interior of the four-way valve mechanism is regulated by electromagnetics. The air inlet of the four-way valve mechanism is connected to the compressor (2) through a pipeline, and the valve port of the four-way valve mechanism is connected to the valve ports of the indoor unit and the machine body (1) through a pipeline. A condensing mechanism (3) is provided on the left side of the compressor (2), and the internal pipeline of the condensing mechanism (3) is a copper pipe. The condensing mechanism (3) is connected to the four-way valve mechanism through a pipeline. A return pipe (4) is provided between the right side of the condensing mechanism (3) and the left side of the compressor (2). An air cooling mechanism (5) is provided on the back of the inner wall of the machine body (1), and the air cooling mechanism (5) blows heat to the condensing mechanism (3).

3. The multifunctional energy-saving air conditioner host according to claim 2, characterized in that: The front side of the U-shaped plate (8) is slidably mounted on the back side of the mesh plate (6); one front end of the circular shovel plate (9) contacts the back side of the mesh plate (6); the circular shovel plate (9) removes dirt from the surface of the mesh plate (6); the negative pressure component (10) extracts dirt raised from the surface of the mesh plate (6); the outer wall of the friction wheel (11) contacts the back side of the mesh plate (6); the telescopic end of the telescopic brush plate (13) avoids contact with the mesh plate (6); the telescopic brush plate (13) has a built-in spring, and the telescopic brush plate (13) is telescopically reset by the elastic force of the spring.

4. The multifunctional energy-saving air conditioner host according to claim 3, characterized in that: The anti-oxidation device (14) includes an L-shaped connecting plate (141), the top of one front end of the L-shaped connecting plate (141) is fixedly mounted on the back of the U-shaped plate (8), the bottom of the L-shaped connecting plate (141) is symmetrically and fixedly mounted with two connecting rods (142), the bottom of the connecting rod (142) is fixedly mounted with a humidity sensor (143), the bottom of the humidity sensor (143) is in contact with the bottom of the inner wall of the body (1), and the humidity sensor (143) is located outside the compressor (2) and the condensing mechanism (3).

5. The multifunctional energy-saving air conditioner host according to claim 4, characterized in that: The anti-oxidation device (14) further comprises a circular telescopic frame (144), the bottom of the circular telescopic frame (144) being fixedly mounted on the bottom of the inner wall of the machine body (1), the top of the circular telescopic frame (144) being equidistantly and fixedly mounted with a plurality of semicircular blocks (145), the outer wall arc surface of the semicircular blocks (145) being located on the bottom motion track of one end of the back of the L-shaped connecting plate (141), and a drying capsule (146) being fixedly mounted inside the circular telescopic frame (144).

6. The multifunctional energy-saving air conditioner host according to claim 5, characterized in that: The circular telescopic frame (144) is located on the back of the condensing mechanism (3), and a spring is built into the circular telescopic frame (144). A booster component is provided inside the drying capsule (146), and the lower portion of the outer wall on the back of the drying capsule (146) is designed as a hard shell, and desiccant particles are provided inside the drying capsule (146). The drying capsule (146) discharges dry gas generated by the desiccant particles to the condensing mechanism (3).

7. The multifunctional energy-saving air conditioner host according to claim 6, characterized in that: The prompting device (15) comprises a pressing plate (151), the front of the pressing plate (151) being fixedly mounted on the back of the telescopic end of the circular telescopic frame (144), a supporting frame (152) being fixedly mounted on the top of the pressing plate (151), a warning light mechanism (153) being fixedly mounted on the top of the supporting frame (152), a resisting block (154) being fixedly mounted on the left side of the warning light mechanism (153), and an identification plate (155) being slidably mounted on the top of the machine body (1) via a spring.

8. The multifunctional energy-saving air conditioner host according to claim 7, characterized in that: The top of the support frame (152) is movable and passes through the top of the machine body (1). The warning light mechanism (153) facilitates the staff to judge whether the machine body (1) is operating normally. The identification plate (155) is used to expand the observation field of the staff during the day. The right end of the identification plate (155) is provided with a groove, and the groove of the identification plate (155) contacts the arc surface of the outer wall of the resistance block (154).

9. The multifunctional energy-saving air conditioner host according to claim 8, characterized in that: A rotating rod (156) is rotatably mounted on the bottom of the inner wall of the machine body (1), and a non-self-locking spiral groove is opened on the outer wall of the rotating rod (156). The spiral groove of the rotating rod (156) movably penetrates the interior of the pressure plate (151). A convex roller (157) is penetrated and fixedly mounted on the outer wall of the bottom of the rotating rod (156). An impact plate (158) is slidably mounted on the back of the drying capsule (146) through a spring. The impact plate (158) is convexly designed on the side close to the rotating rod (156). The convex surface of the impact plate (158) contacts the outer wall of the convex roller (157). A vibration block (159) is fixedly mounted on the lower back of the drying capsule (146). The vibration block (159) contacts the surface of the impact plate (158) on the side close to the convex roller (157).

Citation Information

Patent Citations

  • Multifunctional air conditioner main machine

    CN107940793A