An automatic temperature control valve for heating pipelines

By designing a lifting mechanism in the temperature control valve of the heating pipeline, the cleaning brush and impeller is solved, and the problem of impurities attached to the valve core temperature sensing parts is achieved, the probe and water guide hole are cleaned to ensure the stable temperature control effect of the temperature control valve.

CN120100918BActive Publication Date: 2025-08-05FUJIAN YILIN ENERGY SAVING EQUIP
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Patent Information

Application Number
CN202510593185.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-09
Publication Date
2025-08-05
Estimated Expiration
2045-05-09

AI Technical Summary

Technical Problem

The surface of the valve core temperature-sensitive components of the existing heating pipeline temperature control valve is prone to impurities, resulting in a deterioration of temperature sensing accuracy or delay, affecting the temperature control effect.

Method used

An automatic temperature control valve for heating pipes is designed to clean the probe through the lifting mechanism, and the inner wall of the water guide hole is cleaned by combining the impeller and the rotating plate to prevent impurities and dirt from affecting the temperature sensing accuracy.

Benefits of technology

Effectively keep the probe and water conductor clean, prevent impurities and dirt from affecting the temperature measurement accuracy, and ensure the stable temperature control effect of the temperature control valve.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the technical field of temperature control valves, specifically a heating pipe automatic temperature control valve, comprising a valve body, a water outlet end is provided on one side of the valve body, a water inlet end is provided on the other side of the valve body, a lifting mechanism is installed on the top of the valve body, a water guide hole is provided inside the valve body, a valve core is fixed at the bottom end of the output rod of the lifting mechanism, a temperature sensor is installed on the side of the valve body close to the water outlet end, a probe is fixed at the bottom end of the temperature sensor, a connecting arm is fixed on the side of the valve core close to the water outlet end, a connecting shell is fixed on the side of the connecting arm away from the valve core, a cleaning brush is provided inside the connecting shell, the connecting shell is provided below the probe, and the connecting shell can be sleeved on the outside of the probe; the cleaning brush is driven to clean the probe during the lifting process of the valve core, so that the outside of the probe can be kept clean, and the impeller is driven to rotate by water flow, so that the impeller drives the cleaning brush to rotate horizontally to clean the outside of the probe during the cleaning process, thereby achieving further cleaning of the outside of the probe.
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Description

Technical Field

[0001] The invention belongs to the technical field of temperature control valves, in particular to an automatic temperature control valve for a heating pipe. Background Art

[0002] Heating is a common heating method used in northern winter. Heating circulates hot water through heating pipes, and the hot water releases heat to achieve heating. During the heating process, the temperature needs to be adjusted. The adjustment is made through the temperature control valve of the heating pipe. The temperature control valve can control the amount of water flowing through the heating pipe to achieve the temperature control effect.

[0003] A Chinese patent with the existing announcement number CN109681675B discloses a temperature control valve core and an automatic temperature control valve using the valve core. Through the design of double springs and valve core sliding sleeves, it can not only achieve sensitive regulation of temperature changes, but also is not easily disturbed by pressure changes and sudden fluctuations, and the temperature control is more stable.

[0004] During the use of the above-mentioned technical solution, hot water will flow inside the pipes and valve body, and the hot water will drive the impurities and dirt inside the pipes to flow. During the flow, the impurities in the water will adhere to the surface of the valve core, which will cause the impurities to adhere to the surface of the temperature-sensing components of the valve core. After a long period of accumulation, the impurities attached to the surface will affect the temperature sensing function of the valve core, resulting in poor temperature sensing accuracy or delays, affecting normal use.

[0005] To this end, the present invention provides an automatic temperature control valve for a heating pipe. Summary of the Invention

[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.

[0007] The technical solution adopted by the present invention to solve its technical problems is: the automatic regulating temperature control valve for a heating pipe described in the present invention includes a valve body, a water outlet end is provided on one side of the valve body, a water inlet end is provided on the other side of the valve body, a lifting mechanism is installed on the top of the valve body, a water guide hole is provided inside the valve body, a valve core is fixed at the bottom end of the output rod of the lifting mechanism, the valve core is inserted into the inside of the water guide hole, and the outer diameter of the valve core matches the inner diameter of the water guide hole, a temperature sensor is installed on the side of the valve body close to the water outlet end, a probe is fixed at the bottom end of the temperature sensor, a connecting arm is fixed on the side of the valve core close to the water outlet end, a connecting shell is fixed on the side of the connecting arm away from the valve core, a cleaning brush is provided inside the connecting shell, the connecting shell is arranged below the probe, and the connecting shell can be sleeved on the outside of the probe.

[0008] Preferably, the connecting shell is internally rotatably connected to a gear ring, multiple groups of cleaning brushes are evenly spaced inside the gear ring, the multiple groups of cleaning brushes are fixedly connected to the gear ring, and a rotating component is provided on the side of the gear ring close to the connecting arm.

[0009] Preferably, the rotating assembly includes a transmission gear meshingly connected to the side of the gear ring close to the connecting arm, the transmission gear is rotatably connected to the inside of the connecting shell, an impeller is provided below the connecting shell, and the bottom end of the impeller is rotatably connected to the valve body.

[0010] Preferably, a transmission rod is fixed to the top of the impeller, a transmission hole is opened inside the transmission gear, the transmission rod is slidably connected to the inside of the transmission hole, and the top of the transmission rod is rotatably connected to the valve body.

[0011] Preferably, the inclination angle of the impeller blades is consistent with the inclination angle of the cleaning brush inside the gear ring, and the inclination directions of the impeller and the cleaning brush are consistent.

[0012] Preferably, the bottom end of the valve core is rotatably connected to a connecting frame, and a plurality of scrapers are rotatably connected to the inside of the connecting frame at equal intervals. A rotating drum is provided below the connecting frame, and the bottom end of the rotating drum is rotatably connected to the valve body. A plurality of rotating plates are provided on the outside of the rotating drum, and the outer side of the scraper is tightly attached to the inner side of the water guide hole.

[0013] Preferably, a rotating column is fixed at the bottom end of the connecting frame, the bottom end of the rotating column is inserted into the inside of the rotating drum, a plurality of transmission grooves are opened at equal intervals on the outside of the rotating column, a plurality of sliders are fixed at equal intervals on the top end of the inside of the rotating drum, and the sliders are slidably connected to the inside of the transmission grooves.

[0014] Preferably, a connecting shaft is fixed to the middle of the rotating plate, and the connecting shaft is rotatably connected to the inside of the rotating drum. A rotating block is fixed to the end of the connecting shaft close to the rotating drum, and the rotating block is arranged inside the rotating drum. A second coil spring is fixed to the outside of the connecting shaft close to one end of the rotating block, and the other end of the second coil spring is fixedly connected to the rotating drum. A receiving groove is provided between two adjacent transmission grooves, and the rotating block can be slidably connected to the inside of the receiving groove. A guide groove is provided on the side of the receiving groove close to the protrusion of the rotating block.

[0015] Preferably, a plurality of groups of limit blocks matching the number of rotating plates are arranged at equal intervals on the outside of the rotating drum, and each group of limit blocks is provided with two, and each group of two limit blocks surrounds the outside of the connecting shaft.

[0016] Preferably, a rotating groove is opened inside the rotating drum, and a rotating shaft is fixed to the top and bottom ends of the scraper, and the rotating shaft is rotatably connected to the inside of the rotating groove. A first coil spring is fixed to the outside of the rotating shaft, and the other end of the first coil spring is fixedly connected to the inner side of the rotating groove.

[0017] The beneficial effects of the present invention are as follows:

[0018] 1. The automatic temperature control valve for heating pipes described in the present invention drives the cleaning brush to clean the probe during the lifting and lowering process of the valve core, so that the outside of the probe can be kept clean. The impeller is driven by water flow to rotate, so that the impeller drives the cleaning brush to rotate horizontally during the cleaning process to clean the outside of the probe, thereby achieving further cleaning of the outside of the probe.

[0019] 2. The automatic temperature control valve for heating pipes described in the present invention can remove dirt and impurities on the inner wall of the water guide hole by causing the rotating plate to be pushed by the water flow and driving the cleaning brush to scrape the inner wall of the water guide hole. At the same time, the rotating plate is controlled to remain vertical when the water flow is small to prevent the rotating plate from affecting the water flow. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present invention will be further described below with reference to the accompanying drawings.

[0021] Figure 1 is a perspective view of the present invention;

[0022] Figure 2 It is a schematic diagram of the internal structure of the present invention;

[0023] Figure 3 It is a schematic diagram of the valve core structure in the present invention;

[0024] Figure 4 Schematic diagram of the connecting arm structure of the present invention;

[0025] Figure 5 This is a schematic diagram of the internal structure of the connection shell in the present invention;

[0026] Figure 6 It is a schematic diagram of the scraper structure of the present invention;

[0027] Figure 7 It is a schematic diagram of the internal structure of the drum in the present invention;

[0028] Figure 8 yes Figure 7 A partial enlarged view of the middle A;

[0029] Figure 9 It is a schematic diagram of the rotating column structure in the present invention;

[0030] Figure 10 It is a schematic diagram of the blade structure in the present invention;

[0031] Figure 11 It is a schematic diagram of the limit block structure in the present invention.

[0032] In the figure: 1. valve body; 11. water outlet; 12. water inlet; 13. lifting mechanism; 14. valve core; 15. water guide hole; 2. temperature sensor; 21. probe; 3. connecting arm; 31. cleaning brush; 311. gear ring; 32. connecting shell; 321. transmission gear; 322. transmission hole; 33. impeller; 331. transmission rod; 4. rotating plate; 41. scraper; 411. first coil spring; 412. rotating shaft; 413. rotating groove; 42. rotating drum; 421. limiting block; 422. sliding block; 43. connecting frame; 431. rotating column; 432. transmission groove; 433. receiving groove; 434. guide groove; 44. rotating block; 441. second coil spring; 442. connecting shaft. DETAILED DESCRIPTION

[0033] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0034] like Figures 1 to 5 As shown, an automatic regulating temperature control valve for a heating pipe according to an embodiment of the present invention comprises a valve body 1, a water outlet end 11 being provided on one side of the valve body 1, a water inlet end 12 being provided on the other side of the valve body 1, a lifting mechanism 13 being installed on the top of the valve body 1, a water guide hole 15 being provided inside the valve body 1, a valve core 14 being fixed on the bottom end of the output rod of the lifting mechanism 13, the valve core 14 being inserted into the inside of the water guide hole 15, and the outer diameter of the valve core 14 matching the inner diameter of the water guide hole 15, a temperature sensor 2 being installed on the side of the valve body 1 close to the water outlet end 11, a probe 21 being fixed on the bottom end of the temperature sensor 2, a connecting arm 3 being fixed on the side of the valve core 14 close to the water outlet end 11, a connecting shell 32 being fixed on the side of the connecting arm 3 away from the valve core 14, a cleaning brush 31 being provided inside the connecting shell 32, the connecting shell 32 being arranged below the probe 21, and the connecting shell 32 being able to be sleeved on the outside of the probe 21;

[0035] When the heater is in use, the water for heating is heated and then transported through the heating pipe. The hot water is transported to the radiator through the heating pipe, and the heat can be dissipated to the outside through the radiator. At this time, hot water will continue to flow inside the heating pipe, thereby realizing real-time heating. However, after a period of heating, the temperature inside the room will reach the preset temperature. At this time, in order to maintain the temperature, the temperature needs to be adjusted by the temperature control valve. When in use, the water inlet end 12 is connected to the water outlet of the heating pipe, and the water outlet end 11 is connected to the water inlet of the heating pipe. During use, hot water enters the interior of the valve body 1 through the water inlet end 12, and then is output to the outside through the water guide hole 15. The inside of the water outlet 11 can realize the circulation of hot water inside the valve body 1. At this time, the valve core 14 and the water guide hole 15 are in a completely separated state. The hot water enters the water outlet 11 and mixes with the original water flow inside it. Since the heat of the original water flow evaporates through the radiator, the internal temperature will drop, which will cause the hot water to mix and cool down after entering the water outlet 11. During this process, the temperature sensor 2 measures the temperature of the hot water circulating inside the water outlet 11 in real time, and cooperates with the indoor thermometer to detect the current indoor temperature. When the indoor temperature reaches the preset maximum value, the lifting mechanism 13 is started to push the valve core 14 downward. At this time, the valve core 14 is inside the water guide hole 15. The water outlet of the water guide hole 15 is narrowed by the valve core 14, which can reduce the output speed of the water guide hole 15. At this time, the water flow inside the water outlet end 11 becomes smaller. At this time, the original water flow is driven to slow down, and the proportion of the original water flow is larger. At the same time, the temperature inside the water outlet end 11 will decrease accordingly. At this time, the speed at which the probe 21 of the temperature sensor 2 contacts the water flow is reduced. The probe 21 will be inserted into the interior of the water outlet end 11 during use. At this time, the outside of the probe 21 is easily wrapped by impurities and dirt. Therefore, the connecting arm 3 is fixed on one side of the valve core 14, and the connecting arm 3 will be driven when the lifting mechanism 13 drives the valve core 14 to rise and fall to adjust the water flow. The arm 3 is raised and lowered synchronously. At this time, the connecting arm 3 drives the connecting shell 32 to rise and fall on the outside of the probe 21. The connecting shell 32 synchronously drives the cleaning brush 31 to rise and fall, so that the cleaning brush 31 can brush the outside of the probe 21, and the impurities and dirt on the outside of the probe 21 can be swept off. At this time, the outside of the probe 21 can be kept clean, and the impurities and dirt can be prevented from affecting the temperature measurement of the probe 21. By controlling the water flow entering the water outlet 11, the mixing ratio of hot water and the original water flow can be controlled. The greater the hot water flow, the smaller the proportion of the original water flow, and the higher the temperature at this time. The smaller the hot water flow, the greater the proportion of the original water flow, and the temperature will decrease at this time.

[0036] like Figures 1 to 5 As shown, the connecting shell 32 is rotatably connected to a gear ring 311, and multiple groups of cleaning brushes 31 are evenly spaced inside the gear ring 311. The multiple groups of cleaning brushes 31 are fixedly connected to the gear ring 311. A rotating assembly is provided on the side of the gear ring 311 close to the connecting arm 3.

[0037] When the cleaning brush 31 is cleaning the probe 21, the rotating assembly drives the gear ring 311 to rotate, and the gear ring 311 drives the cleaning brush 31 to clean the outside of the probe 21. At this time, the cleaning brush 31 can rotate during the lifting and lowering of the connecting shell 32. The rotation can drive the cleaning brush 31 to rotate and sweep the outside of the probe 21. Multiple groups of cleaning brushes 31 are covered on the outside of the probe 21 when sweeping. The same area of the probe 21 is swept multiple times by rotation. At this time, impurities and dirt on the outside of the probe 21 are more easily cleaned and removed.

[0038] like Figures 1 to 5 As shown, the rotating assembly includes a transmission gear 321 meshingly connected to the gear ring 311 near the connecting arm 3. The transmission gear 321 is rotatably connected to the interior of the connecting shell 32. An impeller 33 is provided below the connecting shell 32. The bottom end of the impeller 33 is rotatably connected to the valve body 1.

[0039] During use, hot water enters the water outlet end 11 through the water guide hole 15. The hot water circulation process will push the impeller 33 to rotate, and the impeller 33 drives the transmission gear 321 to rotate. The transmission gear 321 can drive the gear ring 311 to rotate synchronously, so that the cleaning brush 31 can continue to rotate and clean the water outlet end 11 during the circulation of hot water inside the water outlet end 11.

[0040] like Figures 1 to 5 As shown, a transmission rod 331 is fixed to the top of the impeller 33, and a transmission hole 322 is opened inside the transmission gear 321. The transmission rod 331 is slidably connected to the inside of the transmission hole 322, and the top of the transmission rod 331 is rotatably connected to the valve body 1;

[0041] During the rotation of the impeller 33, the blades of the impeller 33 cannot rise with the connecting shell 32, and the blades of the impeller 33 will interfere with the probe 21. Therefore, the impeller 33 is set to rotate in a fixed position. When the connecting arm 3 drives the connecting shell 32 to rise, the transmission gear 321 will slide on the outside of the transmission rod 331 through the transmission hole 322. At this time, the impeller 33 can drive the transmission rod 331 to rotate. While the transmission rod 331 rotates, it drives the transmission gear 321 to rotate through the transmission hole 322. At this time, the impeller 33 can maintain its original position while driving the transmission gear 321 to rotate, which can prevent the rotation of the impeller 33 from interfering with the probe 21.

[0042] like Figures 1 to 5 As shown, the inclination angle of the impeller 33 blades is consistent with the inclination angle of the cleaning brush 31 inside the gear ring 311, and the inclination directions of the impeller 33 and the cleaning brush 31 are consistent;

[0043] When the impeller 33 is driven by the water flow to rotate, the impeller 33 rotates in the counterclockwise direction. At this time, the transmission gear 321 will drive the gear ring 311 to rotate in the clockwise direction. At this time, the cleaning brush 31 sweeps the surface of the probe 21 in a clockwise direction. During the sweeping process, since the direction of the cleaning brush 31 has an inclined angle, the dirt swept by the brush can be discharged to the bottom of the connecting shell 32. At this time, it is easier for the cleaning brush 31 to clean the dirt and impurities on the outside of the probe 21.

[0044] like Figures 1 to 7 As shown, the bottom end of the valve core 14 is rotatably connected to a connecting frame 43, and a plurality of scrapers 41 are rotatably connected to the interior of the connecting frame 43 at equal intervals. A rotating drum 42 is provided below the connecting frame 43, and the bottom end of the rotating drum 42 is rotatably connected to the valve body 1. A plurality of rotating plates 4 are provided on the outside of the rotating drum 42, and the outer sides of the scrapers 41 are in close contact with the inner sides of the water guide holes 15.

[0045] During use, hot water will flow through the water guide hole 15. However, impurities and dirt are likely to accumulate at the inlet and outlet of the water guide hole 15 during the circulation process. Since the inner wall of the pipe needs to be welded during the production and processing, metal debris is likely to splash inside the pipe during the welding process. Part of the metal debris is wrapped in the impurities and dirt, causing the valve core 14 and the water guide hole 15 to rub against the metal debris each time the valve core 14 is raised and lowered in the water guide hole 15. This can easily cause damage to the valve core 14 and the water guide hole 15, which will cause a gap between the valve core 14 and the water guide hole 15. To prevent this problem, a rotating plate 4 is provided below the water guide hole 15. When water flows into the water inlet end 12, the rotating plate 4 is driven to rotate, and the rotating plate 4 drives the rotating drum 42 to rotate, and the rotating drum 42 drives the connecting frame 43 to rotate. At this time, the connecting frame 43 can drive the scraper 41 to scrape the inner wall of the water guide hole 15. The scraper 41 can scrape off the impurities and dirt attached to the inner wall of the water guide hole 15 to prevent the metal debris contained in the dirt from damaging the valve core 14 and the water guide hole 15. At the same time, the connecting frame 43 can rise and fall synchronously with the valve core 14, so that the inside of the water guide hole 15 can be cleaned more comprehensively.

[0046] like Figures 1 to 9 As shown, a rotating column 431 is fixed to the bottom end of the connecting frame 43, and the bottom end of the rotating column 431 is inserted into the interior of the rotating drum 42. A plurality of transmission grooves 432 are evenly spaced on the outside of the rotating column 431. A plurality of sliders 422 are fixed to the top end of the interior of the rotating drum 42 at even intervals. The sliders 422 are slidably connected to the interior of the transmission grooves 432.

[0047] During the rotation of the rotating drum 42, the connecting frame 43 will be driven to rotate through the rotating column 431. When the rotating drum 42 rotates, the slider 422 will be driven to rotate. At this time, the slider 422 can drive the rotating column 431 to rotate through the transmission groove 432, and the rotating column 431 can drive the connecting frame 43 to rotate. When the valve core 14 rises and falls at the same time, it will drive the connecting frame 43, and the connecting frame 43 will pull the rotating column 431. The slider 422 can slide inside the transmission groove 432. At this time, the rotating column 431 can be driven by the rotating drum 42 during the rising and falling process.

[0048] like Figures 1 to 11 As shown, a connecting shaft 442 is fixed to the middle of the rotating plate 4, and the connecting shaft 442 is rotatably connected to the inside of the rotating drum 42. A rotating block 44 is fixed to the end of the connecting shaft 442 close to the rotating drum 42. The rotating block 44 is arranged inside the rotating drum 42. A second coil spring 441 is fixed to the outside of the connecting shaft 442 close to one end of the rotating block 44. The other end of the second coil spring 441 is fixed to the rotating drum 42. A receiving groove 433 is provided between two adjacent transmission grooves 432. The rotating block 44 can be slidably connected to the inside of the receiving groove 433. A guide groove 434 is provided on the side of the receiving groove 433 close to the protrusion of the rotating block 44.

[0049] During use, when the gap between the valve core 14 and the water guide hole 15 is small, the water flow is also small, the water flow rate is accelerated but the amount of water flowing is reduced. At this time, the water flow is not enough to drive the rotation of the rotating plate 4, and the rotating plate 4 will affect the water flow rate. Therefore, a rotating block 44 is provided. When the rotating column 431 is inserted halfway into the interior of the rotating cylinder 42, the edge of the guide groove 434 will contact the upper surface of the rotating block 44. At this time, the rotating block 44 will be pushed, and at the same time, the rotating block 44 slides into the interior of the guide groove 434 and the receiving groove 433. The second coil spring 441 is squeezed, and the rotating plate 4 at this time remains as Figure 10 State, at this time the rotating plate 4 is in a vertical state, when the water flows through the position of the rotating plate 4 and is input into the water guide hole 15, the resistance of the rotating plate 4 in this state is small, which can reduce the obstruction to the water flow;

[0050] When the valve core 14 moves upward and drives the connecting frame 43 to rise, the gap between the valve core 14 and the water guide hole 15 gradually increases. After the connecting frame 43 drives the rotating column 431 to extend halfway from the inside of the rotating drum 42, the receiving groove 433 and the guide groove 434 are disengaged from the rotating block 44. The elastic force of the second coil spring 441 will drive the connecting shaft 442 to reset, and the connecting shaft 442 drives the rotating plate 4 to reset. At this time, the rotating plate 4 is at a 30° angle. At this time, the flow of hot water flowing inside the water guide hole 15 is large. At this time, the water flow pushes the rotating plate 4 to drive the rotating drum 42 so that the scraper 41 can scrape the dirt inside the water guide hole 15. When the valve core 14 drives the connecting frame 43 to descend, the rotating plate 4 can be rotated back to the vertical state.

[0051] like Figures 1 to 11As shown, multiple groups of limit blocks 421 are evenly spaced on the outside of the rotating drum 42, matching the number of the rotating plates 4. Each group of limit blocks 421 is provided with two, and each group of two limit blocks 421 surrounds the outside of the connecting shaft 442.

[0052] When the second coil spring 441 drives the connecting shaft 442 to reset, the connecting shaft 442 can drive the rotating plate 4 to rotate 30°. At this time, the rotating plate 4 may rotate excessively, which will cause the rotating plate 4 to have too much resistance to the water flow, affecting the normal flow of hot water. Therefore, a limit block 421 is provided to limit the maximum rotation angle of the rotating plate 4, which can prevent the rotating plate 4 from rotating too much.

[0053] like Figures 1 to 8 As shown, a rotation groove 413 is formed inside the rotating drum 42, and a rotation shaft 412 is fixed to the top and bottom ends of the scraper 41. The rotation shaft 412 is rotatably connected to the inside of the rotation groove 413. A first coil spring 411 is fixed to the outside of the rotation shaft 412, and the other end of the first coil spring 411 is fixedly connected to the inner side of the rotation groove 413.

[0054] During the process of scraper 41 scraping the inner wall of water guide hole 15, the elastic force of the first coil spring 411 will drive the rotating shaft 412, and the rotating shaft 412 will drive the scraper 41 to rotate toward the inner wall of water guide hole 15. At this time, the scraper 41 can be closely attached to the inner wall of water guide hole 15. At the same time, after the rotating plate 4 is pushed by the water flow, the rotation direction of the scraper 41 is driven by the connecting frame 43 to be clockwise. At this time, the protrusion of the scraper 41 will be dragged. When the scraper 41 is in contact with the inner wall of water guide hole 15 for a long time, it will be worn due to friction. At this time, the elastic force of the first coil spring 411 can drive the scraper 41 to continue to be close to the inner wall of water guide hole 15, thereby maintaining the cleaning effect of the scraper 41.

[0055] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. A heating pipe automatic temperature control valve, characterized by: The valve body comprises a valve body, a water outlet is provided on one side of the valve body, a water inlet is provided on the other side of the valve body, a lifting mechanism is installed on the top of the valve body, a water guide hole is provided inside the valve body, a valve core is fixed to the bottom end of the output rod of the lifting mechanism, the valve core is inserted into the inside of the water guide hole, and the outer diameter of the valve core matches the inner diameter of the water guide hole, a temperature sensor is installed on the side of the valve body close to the water outlet, a probe is fixed to the bottom end of the temperature sensor, a connecting arm is fixed on the side of the valve core close to the water outlet, a connecting shell is fixed on the side of the connecting arm away from the valve core, a cleaning brush is provided inside the connecting shell, the connecting shell is arranged below the probe, and the connecting shell can be sleeved on the outside of the probe; The bottom end of the valve core is rotatably connected to a connecting frame, and a plurality of scrapers are rotatably connected to the interior of the connecting frame at equal intervals. A rotating drum is provided below the connecting frame, and the bottom end of the rotating drum is rotatably connected to the valve body. A plurality of rotating plates are provided on the outside of the rotating drum, and the outer sides of the scrapers are in close contact with the inner sides of the water guide holes. A rotating column is fixed at the bottom end of the connecting frame, and the bottom end of the rotating column is inserted into the inside of the rotating drum. A plurality of transmission grooves are opened at equal intervals on the outside of the rotating column, and a plurality of sliders are fixed at equal intervals on the top end of the rotating drum, and the sliders are slidably connected to the inside of the transmission grooves; A connecting shaft is fixed to the middle of the rotating plate, and the connecting shaft is rotatably connected to the inside of the rotating drum. A rotating block is fixed to the end of the connecting shaft near the rotating drum, and the rotating block is arranged inside the rotating drum. A second coil spring is fixed to the outside of the connecting shaft near one end of the rotating block, and the other end of the second coil spring is fixedly connected to the rotating drum. A receiving groove is provided between two adjacent transmission grooves, and the rotating block can be slidably connected to the inside of the receiving groove. A guide groove is provided on the side of the receiving groove near the protrusion of the rotating block.

2. The automatic temperature control valve for heating pipes according to claim 1, characterized in that: The connecting shell is internally rotatably connected to a gear ring, and multiple groups of cleaning brushes are evenly spaced inside the gear ring. The multiple groups of cleaning brushes are fixedly connected to the gear ring, and a rotating component is provided on the side of the gear ring close to the connecting arm.

3. The automatic temperature control valve for heating pipes according to claim 2, characterized in that: The rotating assembly includes a transmission gear meshedly connected to the side of the gear ring close to the connecting arm. The transmission gear is rotatably connected to the inside of the connecting shell. An impeller is provided below the connecting shell, and the bottom end of the impeller is rotatably connected to the valve body.

4. The automatic temperature control valve for heating pipes according to claim 3, characterized in that: A transmission rod is fixed to the top of the impeller, a transmission hole is opened inside the transmission gear, the transmission rod is slidably connected to the inside of the transmission hole, and the top of the transmission rod is rotatably connected to the valve body.

5. The automatic temperature control valve for heating pipes according to claim 4, characterized in that: The inclination angle of the impeller blades is consistent with the inclination angle of the cleaning brush inside the gear ring, and the inclination directions of the impeller and the cleaning brush are consistent.

6. The automatic temperature control valve for heating pipes according to claim 1, characterized in that: The outside of the rotating drum is provided with multiple groups of limit blocks that match the number of rotating plates at equal intervals, each group of limit blocks is provided with two, and each group of two limit blocks surrounds the outside of the connecting shaft.

7. The automatic temperature control valve for heating pipes according to claim 1, characterized in that: A rotating groove is provided inside the rotating drum, and rotating shafts are fixed to the top and bottom ends of the scraper. The rotating shafts are rotatably connected to the inside of the rotating groove. A first coil spring is fixed to the outside of the rotating shaft, and the other end of the first coil spring is fixedly connected to the inner side of the rotating groove.

Citation Information

Patent Citations

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