A type of air-cooled radiator with anti-clogging effect

By designing anti-clogging and impurity removal devices in the air-cooled radiator, the problems of filter plates affecting oil flow and impurity accumulation are solved, achieving more efficient heat dissipation and cleaning effects, and preventing equipment blockage and damage.

CN120292907BActive Publication Date: 2025-12-02WUXI JINLIANSHUN ALUMINUM IND CO LTD
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Patent Information

Application Number
CN202510459966.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-12-02
Estimated Expiration
2045-04-14

AI Technical Summary

Technical Problem

Existing air-cooled radiators suffer from poor heat dissipation during the filtration process because the area of ​​the filter plate without filter holes affects the oil flow rate, and the filtered particulate impurities are prone to accumulate, affecting the use of the equipment.

Method used

An anti-clogging device and a debris removal device were designed, including a conical shell, an arc baffle, a scraper and a spring structure, to increase the oil flow and remove impurities. Combined with a cleaning device, the device uses a triangular sponge and a brush to clean the impurities on the surface of the heat sink.

Benefits of technology

It effectively prevents oil flow obstruction, improves heat dissipation, and promptly removes impurities, preventing equipment blockage and damage and maintaining normal equipment operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of air-cooled radiator technology, and specifically discloses an air-cooled radiator with anti-clogging effect. It includes a circular shell, with a conical shell fixedly connected to the inner wall of the circular shell. A filter hole is formed on one side of the conical shell, and a first arc hole is formed on the outer side of the circular shell. A circular through hole is formed on the inner wall of the circular shell near the conical shell. An annular electric slide rail is fixedly connected to the side of the circular shell near the first pipe. A side-mounted slide rod is rotatably connected to the inner side of the annular electric slide rail, and a strip-shaped scraper is fixedly connected to the end of the side-mounted slide rod away from the annular electric slide rail. This air-cooled radiator with anti-clogging effect increases the oil flow rate by setting a conical shell with a gradually increasing radius at the junction of the inner wall of the circular shell and the first pipe. This prevents the area without filter holes from blocking the oil flow and affecting the heat dissipation effect when using a filter plate with the same radius as the pipe.
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Description

Technical Field

[0001] This invention relates to the field of air-cooled radiator technology, specifically to an air-cooled radiator with anti-clogging effect. Background Technology

[0002] Radiators are important components of engineering vehicles. They are mainly used to control the heat generated by various moving parts in mechanical equipment within a certain appropriate range, such as the rapid cooling of lubricating oil and power hydraulic oil. Air-cooled radiators are a common type of heat dissipation equipment. When engineering vehicles are working, a large amount of heat is generated inside. This heat is conducted to the heat sink through heat pipes or directly to the heat sink. The heat sink is usually made of materials with good thermal conductivity such as aluminum or copper, which can quickly absorb and conduct heat, increase the contact area with the air, and thus improve the heat dissipation efficiency. The fan draws in external cold air and makes it pass through the surface of the heat sink, carrying away the heat on the heat sink. After the cold air flows on the heat sink, it becomes hot air and is discharged, completing the heat exchange process.

[0003] When preventing the oil entering the heat pipe from clogging, a filter plate is usually used to filter particulate impurities. However, when a filter plate with the same radius as the pipe is used for filtration, the area without filter holes will block the oil and affect the oil flow, resulting in poor heat dissipation. Therefore, we propose an air-cooled radiator with anti-clogging effect. Summary of the Invention

[0004] To solve the above-mentioned technical problems, the present invention provides an air-cooled radiator with anti-clogging effect, comprising a first pipe, a first fixed bracket sleeved and fixedly connected to the outer side of the first pipe, an anti-clogging device connected to the inlet of the first pipe, a debris removal device sleeved and fixedly connected to the outer side of the anti-clogging device, a vertical pipe connected to the outer side of the first pipe, a heat sink fixedly connected to the outer side of the vertical pipe, a second pipe connected to the top of the vertical pipe, a second fixed bracket sleeved and fixedly connected to the outer side of the second pipe, a cleaning device fixedly connected to one side of the second fixed bracket, a concave side bracket fixedly connected to the side of the second fixed bracket away from the cleaning device, and an electric fan rotatably connected to the inner side of the concave side bracket via a rotating bolt;

[0005] The anti-clogging device includes a circular shell, and a conical shell is fixedly connected to the inner wall of the circular shell. By setting a conical shell with a gradually increasing radius at the position where the inner wall of the circular shell connects with the first pipe, it is easy to increase the flow rate of the oil. This prevents the oil from being blocked by an area without filter holes when a filter plate with the same radius as the pipe is used for filtration, which would affect the flow rate of the oil and result in poor heat dissipation. A filter hole is opened on one side of the conical shell.

[0006] The part of the concave side frame near the bottom is fixedly connected to one side of the first fixed bracket, and the part of the cleaning device near the bottom is fixedly connected to one side of the first fixed bracket.

[0007] One side of the circular shell is connected to the inlet of the first pipe, the outer side of the circular shell is fixedly connected to the inner side of the impurity discharge device, and the conical shell is configured as a conical shell with a conical cavity inside.

[0008] The outer side of the circular casing has a first arc-shaped hole, and the inner wall of the circular casing has a circular through hole on the side near the conical shell. An annular electric slide rail is fixedly connected to the side of the circular casing near the first pipe. A side-mounted slide rod is rotatably connected to the inner side of the annular electric slide rail, and an arc-shaped baffle is fixedly connected to the outer side of the side-mounted slide rod. By providing an arc-shaped baffle that rotates together with the side-mounted slide rod, the annular guide groove of the annular electric slide rail is constantly covered and protected, preventing particulate matter filtered out by the filter holes from accumulating in the annular guide groove of the annular electric slide rail with the oil flow, thus affecting its use. The side-mounted slide rod is located away from the annular electric slide rail. A strip scraper is fixedly connected to the end. As the side slide rod rotates, the strip scraper constantly scrapes and cleans the side of the conical shell with the filter hole. This prevents some of the filtered particulate impurities from being pushed by the oil flow and constantly adhering to the side of the conical shell with the filter hole, thus covering it and affecting the oil flow. A triangular scraper block is fixedly connected to the side of the strip scraper near the side slide rod. When the triangular scraper block rotates, it scrapes and cleans the angle between the conical inclined surface of the conical shell and the inner wall of the circular shell. This prevents some of the filtered particulate impurities from accumulating at the angle between the conical inclined surface of the conical shell and the inner wall of the circular shell, which is difficult to handle.

[0009] There are two first arc holes, and the two first arc holes are respectively distributed on the outer surface of the circular shell at the top and bottom positions. The circular through hole is set on one side of the circular shell at a position aligned with the circular path of the annular electric slide rail. There are two side slide rods, and the two side slide rods are distributed on the inner side of the annular electric slide rail.

[0010] Furthermore, the impurity removal device includes a concave ring housing. A second arc-shaped hole is formed on the outer side of the concave ring housing. This second arc-shaped hole facilitates the discharge of particulate impurities collected inside, preventing filtered particulate impurities from accumulating inside the concave ring housing and overflowing into the area of ​​the circular housing, thus affecting the filtration effect. A first arc plate is slidably connected through and to one side of the concave ring housing near the first arc-shaped hole. The first arc plate moves into the concave ring housing to cover and seal the first arc-shaped hole, preventing the oil inside the circular housing from leaking outwards in large quantities through the first arc-shaped hole when discharging accumulated particulate impurities. A strip-shaped connecting block is fixedly connected to the inner side of the first arc plate. A second arc plate is fixedly connected to the end of the strip-shaped connecting block away from the first arc plate. The second arc plate covers and seals the second arc-shaped hole, preventing the concave ring housing and the circular housing from reconnecting when collecting filtered particulate impurities. The oil entering leaks outwards. A side block is fixedly connected to one side of the second arc plate. A tension spring is fixedly connected to the side block near the second arc plate. The tension spring constantly applies tension force to the side block, so that the second arc plate constantly applies pressure to seal the second arc hole. This prevents the second arc plate from shaking due to the thrust of the liquid flow when the oil flows into the circular sleeve and the concave ring sleeve, causing the oil to leak outwards through the second arc hole. The concave ring sleeve is fitted onto the circular sleeve and fixedly connected to the circular sleeve. The end of the tension spring away from the side block is fixedly connected to one side of the circular sleeve. There are two second arc holes, which are distributed on the outside of the concave ring sleeve at the top and bottom positions. The length of the second arc hole is longer than that of the first arc hole. There are two first arc plates, which are distributed on one side of the concave ring sleeve near the second arc hole.

[0011] Furthermore, the cleaning device includes a T-shaped connecting plate and a ring rod. An electric slide rail is slidably connected to one side of the T-shaped connecting plate, and toothed circular plates are fixedly connected to both sides of the T-shaped connecting plate. These toothed circular plates, following the triangular sponge, scrape away dust particles from the heat sink, preventing debris that the triangular sponge cannot remove from adhering to the surface of the heat sink and affecting its use. Triangular sponges are fixedly connected to the top and bottom of the toothed circular plates. As the triangular sponges move, they wipe the outer surface of the heat sink, preventing excessive dust particles and impurities from adhering to the surface of the heat sink after prolonged use and causing damage due to hard friction with the toothed circular plates. A vertical block is sleeved and fixedly connected to the outer side of the ring rod, and external... The external brushes on both sides of the vertical block rub and clean the surface of the triangular sponge when they come into contact with it. This prevents excessive dust particles from getting trapped in the small ventilation holes on the surface of the triangular sponge, which would affect the subsequent cleaning effect. An inverted V-shaped plate is fixedly connected to the bottom of the vertical block. The cleaned particles fall downward onto the inverted V-shaped plate and slide off to both sides through the inclined surface of the inverted V-shaped plate, preventing a large amount of cleaned dust particles from covering the surface of the first pipe and affecting the heat dissipation effect of the first pipe. One side of the electric slide rail is fixedly connected to one side of the first fixed bracket, and one side of the electric slide rail is fixedly connected to one side of the second fixed bracket. The top of the vertical block is fixedly connected to the bottom of the heat sink. The toothed circular plate is a circular plate with toothed holes on its surface.

[0012] This invention provides an air-cooled radiator with anti-clogging effect. It has the following beneficial effects:

[0013] 1. This air-cooled radiator with anti-clogging effect uses a tapered shell with gradually increasing radius at the junction of the inner wall of the circular casing and the first pipe to increase the flow of oil. This prevents the oil from being blocked by an area without filter holes when using a filter plate with the same radius as the pipe, which would affect the flow of oil and thus the heat dissipation effect. A second arc hole is opened on the outside of the concave ring casing to facilitate the discharge of particulate impurities collected inside, preventing the filtered particulate impurities from accumulating inside the concave ring casing and overflowing into the area of ​​the circular casing, thus affecting the filtration effect. The triangular sponge wipes the outer surface of the heat sink when it moves, preventing excessive dust particles and impurities from adhering to the surface of the heat sink after long-term use. These particles and impurities can easily cause damage due to hard friction with the toothed circular plate, affecting the use of the heat sink.

[0014] 2. This air-cooled radiator with anti-clogging effect is equipped with an anti-clogging device. A tapered shell with gradually increasing radius is installed at the junction of the inner wall of the circular casing and the first pipe to increase the oil flow. This prevents the oil from being blocked by areas without filter holes when using a filter plate with the same radius as the pipe, thus affecting the oil flow and resulting in poor heat dissipation. An arc-shaped baffle that rotates with the side slide rod constantly covers and protects the annular guide groove of the annular electric slide rail, preventing particulate matter filtered out by the filter holes from accumulating in the annular groove with the oil flow. The annular guide groove of the electric slide rail affects its use. As the side slide rail rotates, the strip scraper constantly scrapes and cleans the side of the conical shell with the filter holes. This prevents some of the filtered particles from being pushed by the oil flow and adhering to the side of the conical shell with the filter holes, thus covering them and affecting the oil flow. When the triangular scraper rotates, it scrapes and cleans the angle between the conical inclined surface of the conical shell and the inner wall of the circular sleeve. This prevents some of the filtered particles from accumulating at the angle between the conical inclined surface of the conical shell and the inner wall of the circular sleeve, which is difficult to handle.

[0015] 3. This air-cooled radiator with anti-clogging effect is equipped with a debris discharge device. A first arc plate moves into the concave ring housing to cover and seal the first arc hole, preventing a large amount of oil from leaking outwards through the first arc hole when discharged from the circular housing, thus preventing accumulated particulate impurities. A second arc hole is opened on the outside of the concave ring housing to facilitate the discharge of internally collected particulate impurities, preventing filtered particulate impurities from continuously accumulating in the concave ring housing and overflowing into the area of ​​the circular housing, affecting the filtration effect. The second arc plate covers and seals the second arc hole, preventing oil from leaking outwards when the concave ring housing and the circular housing reconnect to collect filtered particulate impurities. A stretching spring constantly applies a stretching force to the side block, causing the second arc plate to constantly pressurize and seal the second arc hole, preventing the second arc plate from shaking due to the thrust of the liquid flow when oil rushes into the circular housing and concave ring housing, thus preventing oil from leaking outwards through the second arc hole.

[0016] 4. This air-cooled radiator with anti-clogging effect is equipped with a cleaning device. When the triangular sponge moves, it wipes and cleans the outer surface of the heat sink, preventing excessive dust particles and impurities from adhering to the surface of the heat sink after long-term use. These particles and impurities can easily cause damage due to hard friction with the perforated circular plate, affecting its use. The perforated circular plate, following the triangular sponge, scrapes and cleans the heat sink after the dust particles have been removed, preventing the adhering debris that the triangular sponge cannot remove from the surface of the heat sink and affecting its use. When the external brushes on both sides of the vertical square block come into contact with the triangular sponge, they rub and sweep the surface of the triangular sponge, preventing excessive dust particles from being trapped in the small vent holes on the surface of the triangular sponge, which would affect the subsequent cleaning effect. The cleaned particles and impurities fall downward onto the inverted V-shaped plate and slide to both sides through the slope of the inverted V-shaped plate, preventing a large amount of cleaned dust particles from covering the surface of the first pipe and affecting the heat dissipation effect of the first pipe. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the air-cooled radiator structure of the present invention;

[0018] Figure 2 This is a schematic diagram of the side structure of the air-cooled radiator of the present invention;

[0019] Figure 3 This is a schematic diagram of the anti-clogging device of the present invention;

[0020] Figure 4 This is a side sectional view of the anti-clogging device of the present invention;

[0021] Figure 5 This is a side sectional view of the impurity removal device of the present invention;

[0022] Figure 6 This is a schematic diagram of the impurity removal device of the present invention;

[0023] Figure 7 This is a schematic diagram of the cleaning device of the present invention;

[0024] Figure 8 This is a schematic diagram of the second cleaning device of the present invention.

[0025] In the diagram: 1. First pipe; 2. First fixed bracket; 3. Anti-clogging device; 4. Impurity removal device; 5. Vertical pipe; 6. Heat sink; 7. Second pipe; 8. Second fixed bracket; 9. Cleaning device; 10. Concave side bracket; 11. Electric fan; 301. Circular shell; 302. Conical shell; 303. Filter hole; 304. First arc hole; 305. Circular through hole; 306. Annular electric slide rail; 307. Side-mounted slide bar; 308. Arc-shaped 309. Baffle; 310. Strip scraper; 401. Triangular scraper block; 402. Concave ring housing; 403. Second arc hole; 404. First arc plate; 405. Strip connecting block; 406. Second arc plate; 407. Side-mounted square block; 408. Extension spring; 901. T-shaped connecting plate; 902. Ring rod; 903. Electric slide rail; 904. Toothed round plate; 905. Triangular sponge; 906. Vertical square block; 907. External brush; 908. Inverted V-shaped plate. Detailed Implementation

[0026] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0027] Please see Figures 1-4 This invention provides an air-cooled radiator with anti-clogging effect, including a first pipe 1, a first fixed bracket 2 sleeved and fixedly connected to the outside of the first pipe 1, an anti-clogging device 3 connected to the inlet of the first pipe 1, a debris removal device 4 sleeved and fixedly connected to the outside of the anti-clogging device 3, a vertical pipe 5 connected to the outside of the first pipe 1, a heat sink 6 fixedly connected to the outside of the vertical pipe 5, a second pipe 7 connected to the top of the vertical pipe 5, a second fixed bracket 8 sleeved and fixedly connected to the outside of the second pipe 7, a cleaning device 9 fixedly connected to one side of the second fixed bracket 8, a concave side bracket 10 fixedly connected to the side of the second fixed bracket 8 away from the cleaning device 9, and an electric fan 11 rotatably connected to the inside of the concave side bracket 10 through a rotating bolt.

[0028] The anti-clogging device 3 includes a circular shell 301, and a conical shell 302 is fixedly connected to the inner wall of the circular shell 301. A filter hole 303 is provided on one side of the conical shell 302.

[0029] The bottom part of one side of the concave side frame 10 is fixedly connected to one side of the first fixed bracket 2, and the bottom part of one side of the cleaning device 9 is fixedly connected to one side of the first fixed bracket 2.

[0030] One side of the circular shell 301 is connected to the inlet of the first pipe 1, and the outer side of the circular shell 301 is fixedly connected to the inner side of the impurity discharge device 4. The conical shell 302 is configured as a conical shell with a conical cavity inside.

[0031] A first arc hole 304 is provided on the outer side of the circular sleeve 301. A circular through hole 305 is provided on the inner wall of the circular sleeve 301 near the conical circular shell 302. An annular electric slide rail 306 is fixedly connected to the side of the circular sleeve 301 near the first pipe 1. A side slide rod 307 is rotatably connected to the inner side of the annular electric slide rail 306. An arc-shaped baffle 308 is fixedly connected to the outer side of the side slide rod 307. A strip scraper 309 is fixedly connected to the end of the side slide rod 307 away from the annular electric slide rail 306. A triangular scraper block 310 is fixedly connected to the side of the strip scraper 309 near the side slide rod 307.

[0032] Two first arc holes 304 are provided, and the two first arc holes 304 are respectively distributed on the outer surface of the circular sleeve 301 at the top and bottom positions. The circular through hole 305 is provided on one side of the circular sleeve 301 at a position aligned with the annular path of the annular electric slide rail 306. Two side slide rods 307 are provided, and the two side slide rods 307 are distributed on the inner side of the annular electric slide rail 306.

[0033] The impurity removal device 4 includes a concave ring housing 401. A second arc hole 402 is provided on the outer side of the concave ring housing 401. A first arc plate 403 is slidably connected through and near the first arc hole 304 on one side of the concave ring housing 401. A strip-shaped connecting block 404 is fixedly connected to the inner side of the first arc plate 403. A second arc plate 405 is fixedly connected to the end of the strip-shaped connecting block 404 away from the first arc plate 403. A side-positioned square block 406 is fixedly connected to one side of the second arc plate 405. A tension spring 407 is fixedly connected to the side of the side-positioned square block 406 near the second arc plate 405. The concave ring housing 401 is sleeved on the circular housing 301 and fixedly connected to the circular housing 301. The end of the tension spring 407 away from the side-positioned square block 406 is fixedly connected to one side of the circular housing 301. Next, two second arc holes 402 are provided, and the two second arc holes 402 are distributed on the outside of the concave ring sleeve 401 at the top and bottom positions. The length of the second arc hole 402 is longer than that of the first arc hole 304. Two first arc plates 403 are provided, and the two first arc plates 403 are distributed on one side of the concave ring sleeve 401 near the second arc hole 402. In use, the oil that has absorbed heat and heated up enters the first pipe 1 after being filtered by the anti-clogging device 3. The filtered particulate impurities will accumulate in the impurity discharge device 4. After the oil fills the first pipe 1, it enters the second pipe 7 through the vertical pipe 5 and is discharged to the other end. When the oil flows through the vertical pipe 5, it transfers heat to the heat sink 6. At this time, the electric fan 11 blows air onto the heat sink 6 to make the oil in the pipe... The liquid is cooled. After prolonged use, the surface of the heat sink 6 can be cleaned of dust and debris using the cleaning device 9. Simultaneously, when excessive particulate matter accumulates in the anti-clogging device 3, it is disconnected from the anti-clogging device 3 via the discharge device 4, discharging the accumulated particulate matter. The heated oil enters the circular housing 301 and flows through the filter holes 303 into the conical housing 302, eventually flowing into the first pipe 1. The filtered particulate matter accumulates in the discharge device 4 through the first arc hole 304 on the circular housing 301. The conical housing 302, with its gradually increasing radius, is positioned at the junction of the inner wall of the circular housing 301 and the first pipe 1 to increase the oil flow rate. Simultaneously, the annular electric slide rail 306... The drive side slide bar 307 rotates, causing the arc-shaped baffle 308 and the strip scraper 309 to rotate together. The arc-shaped baffle 308, which rotates along with the side slide bar 307, constantly covers and protects the annular guide groove of the annular electric slide rail 306. As the side slide bar 307 rotates, the strip scraper 309 continuously scrapes and cleans the side of the conical shell 302 with the filter holes 303. The rotation of the strip scraper 309 also drives the triangular scraper block 310 on one side to rotate together. The triangular scraper block 310 scrapes and cleans the angle between the conical inclined surface of the conical shell 302 and the inner wall of the circular sleeve 301. The filtered particulate impurities are ultimately deposited on the first arc plate 403 on the inner wall of the concave annular sleeve 401 through the first arc hole 304.When a certain amount of filter impurities accumulate inside the concave ring housing 401, the side block 406 is pushed to move the second arc plate 405 into the concave ring housing 401 and compress the extension spring 407. As the second arc plate 405 moves into the concave ring housing 401, it gradually covers and seals the first arc hole 304. While moving, the second arc plate 405, through the strip connecting block 404, drives the first arc plate 403 to move outward from the concave ring housing 401. When the first arc plate 403 moves outward from the concave ring housing 401, it no longer covers and seals the second arc hole 402. At this time, the particulate impurities accumulated inside the concave ring housing 401 will be discharged outward through the second arc hole 402, and the first arc hole 304 will be covered by the movement of the first arc plate 403 into the concave ring housing 401. The sealing mechanism involves creating a second arc-shaped hole 402 on the outer side of the concave ring housing 401 to facilitate the discharge of internally collected particulate impurities. After the particulate impurities are completely discharged, the pressure on the side block 406 is released. At this time, the extension spring 407 pushes the side block 406 with its extension force, causing the first arc plate 403 to move outward from the circular housing 301. As the first arc plate 403 moves outward from the circular housing 301, it drives the second arc plate 405 to move inward from the concave ring housing 401 through the strip-shaped connecting block 404, thus sealing the second arc hole 402. The second arc plate 405 provides a covering seal for the second arc hole 402. The extension spring 407 continuously applies an extension force to the side block 406, causing the second arc plate 405 to continuously apply pressure to seal the second arc hole 402.

[0034] Please see Figures 1-8This invention provides an air-cooled radiator with anti-clogging effect: the cleaning device 9 includes a T-shaped connecting plate 901 and an annular rod 902. An electric slide rail 903 is slidably connected to one side of the T-shaped connecting plate 901. Perforated circular plates 904 are fixedly connected to both sides of the T-shaped connecting plate 901. Triangular sponges 905 are fixedly connected to the top and bottom of the perforated circular plates 904. A vertical block 906 is sleeved and fixedly connected to the outer side of the annular rod 902. External brushes 907 are fixedly connected to both sides of the vertical block 906. An inverted V-shaped plate 908 is fixedly connected to the bottom of the vertical block 906. One side of the electric slide rail 903 is fixedly connected to one side of the first fixed bracket 2, and another side of the electric slide rail 903 is fixedly connected to one side of the second fixed bracket 8. The top of the vertical block 906 is fixedly connected to the bottom of the heat sink 6. The perforated circular plates 904 are configured with perforations on their surface. In use, the circular plate is driven by the electric slide rail 903 to move the T-shaped connecting plate 901 and the toothed circular plates 904 on both sides. When the toothed circular plates 904 move, they also move the triangular sponges 905 at the top and bottom. When the triangular sponges 905 move, they wipe the outer surface of the heat sink 6. The toothed circular plates 904 follow the triangular sponges 905 to scrape the heat sink 6 after the dust particles have been removed. When the toothed circular plates 904 move the triangular sponges 905 downwards, they will contact the external brushes 907 on both sides of the vertical block 906 and pass through the vertical block 906. When the external brushes 907 on both sides of the vertical block 906 contact the triangular sponges 905, they will rub and sweep the surface of the triangular sponges 905. The removed particles and impurities fall downwards onto the inverted V-shaped plate 908 and slide down to both sides through the inclined surface of the inverted V-shaped plate 908.

[0035] In operation, the heated oil, after absorbing heat, enters the first pipe 1 after being filtered by the anti-clogging device 3. The filtered particulate matter accumulates in the impurity discharge device 4. After the first pipe 1 is filled with oil, it enters the second pipe 7 through the vertical pipe 5 and is discharged to the other end. As the oil flows through the vertical pipe 5, it transfers heat to the heat sink 6. At this time, the electric fan 11 blows air onto the heat sink 6 to cool the oil in the pipe. After prolonged use, the heat sink 6 can be cleaned of dust and debris using the cleaning device 9. At the same time, when too much particulate matter accumulates in the anti-clogging device 3, it is disconnected from the anti-clogging device 3 through the impurity discharge device 4, and the accumulated particulate matter in the impurity discharge device 4 is discharged. The heated oil then enters the circular casing. The oil flows into the first pipe 1 through the filter holes 303 and into the conical shell 302. The filtered particles accumulate in the discharge device 4 through the first arc hole 304 on the circular shell 301. The conical shell 302, with its gradually increasing radius, is positioned at the junction of the inner wall of the circular shell 301 and the first pipe 1 to increase the oil flow rate. Simultaneously, the annular electric slide rail 306 drives the side slide rod 307 to rotate, causing the arc-shaped baffle 308 and the strip scraper 309 to rotate together. The arc-shaped baffle 308, rotating along with the side slide rod 307, constantly covers and protects the annular guide groove of the annular electric slide rail 306. The strip scraper 309, rotating with the side slide rod 307, constantly protects the conical shell 302. The filter orifice 303 is cleaned by scraping. When the strip scraper 309 rotates, it drives the triangular scraper 310 on one side to rotate as well. When the triangular scraper 310 rotates, it scrapes the angle between the conical inclined surface of the conical shell 302 and the inner wall of the circular shell 301. The filtered particles and impurities will eventually be deposited on the first arc plate 403 on the inner wall of the concave ring shell 401 through the first arc hole 304. When a certain amount of filtered impurities accumulate in the concave ring shell 401, the side block 406 is pushed to move the second arc plate 405 into the concave ring shell 401 and compress the extension spring 407. As the second arc plate 405 moves into the concave ring shell 401, it gradually covers and seals the first arc hole 304. When the second arc plate 405 moves, it allows the first arc hole 304 to pass through. The strip-shaped connecting block 404 drives the first arc plate 403 to move outward toward the concave ring shell 401. When the first arc plate 403 moves outward toward the concave ring shell 401, it no longer covers and seals the second arc hole 402. At this time, the particulate impurities accumulated inside the concave ring shell 401 will be discharged outward through the second arc hole 402. The first arc plate 403 moves inward toward the concave ring shell 401 to cover and seal the first arc hole 304. The second arc hole 402 is opened on the outside of the concave ring shell 401 to facilitate the discharge of the particulate impurities collected inside. After the particulate impurities are completely discharged, the pressure on the side block 406 is released. At this time, the extension spring 407 pushes the side block 406 with the extension force, driving the first arc plate 403 to move outward toward the circular shell 301.When the first arc plate 403 moves outward toward the circular sleeve 301, it drives the second arc plate 405 to move inward toward the concave ring sleeve 401 via the strip connecting block 404, thus sealing the second arc hole 402. The second arc plate 405 provides a covering seal to the second arc hole 402. The extension spring 407 constantly applies an extension force to the side block 406, causing the second arc plate 405 to constantly apply pressure to seal the second arc hole 402. The electric slide rail 903 drives the T-shaped connecting plate 901, which in turn moves the toothed circular plates 904 on both sides. As the toothed circular plates 904 move, they also move the triangular sponges 905 at the top and bottom. As the sponge 905 moves, it wipes and cleans the outer surface of the heatsink 6. Following the triangular sponge 905, the perforated circular plate 904 scrapes and cleans the heatsink 6, removing dust particles. As the perforated circular plate 904 moves the triangular sponge 905 downwards, it contacts and passes through the external brushes 907 on both sides of the vertical block 906. When the external brushes 907 contact the triangular sponge 905, they rub and clean its surface. The removed particles fall onto the inverted V-shaped plate 908 and slide off to the sides along the inclined surface of the inverted V-shaped plate 908.

[0036] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.

Claims

1. A wind-cooled radiator with anti-clogging effect, comprising a first pipe (1), characterized in that: A first fixed bracket (2) is fitted and fixedly connected to the outside of the first pipe (1). An anti-blocking device (3) is connected to the inlet of the first pipe (1). A debris removal device (4) is fitted and fixedly connected to the outside of the anti-blocking device (3). A vertical pipe (5) is connected to the outside of the first pipe (1). A heat sink (6) is fixedly connected to the outside of the vertical pipe (5). A second pipe (7) is connected to the top of the vertical pipe (5). A second fixed bracket (8) is fitted and fixedly connected to the outside of the second pipe (7). A cleaning device (9) is fixedly connected to one side of the second fixed bracket (8). A concave side frame (10) is fixedly connected to the side of the second fixed bracket (8) away from the cleaning device (9). An electric fan (11) is rotatably connected to the inside of the concave side frame (10) through a rotating bolt. The anti-clogging device (3) includes a circular shell (301), and a conical shell (302) is fixedly connected to the inner wall of the circular shell (301). A filter hole (303) is opened on one side of the conical shell (302). The outer side of the circular shell (301) is provided with a first arc hole (304), and the inner wall of the circular shell (301) is provided with a circular through hole (305) on the side near the conical shell (302). The circular shell (301) is fixedly connected to the side near the first pipe (1) with an annular electric slide rail (306). The inner side of the annular electric slide rail (306) is rotatably connected with a side slide rod (307). The outer side of the side slide rod (307) is fixedly connected with an arc baffle (308). The end of the side slide rod (307) away from the annular electric slide rail (306) is fixedly connected with a strip scraper (309). The side of the strip scraper (309) near the side slide rod (307) is fixedly connected with a triangular scraper block (310). The cleaning device (9) includes a T-shaped connecting plate (901) and an annular rod (902). An electric slide rail (903) is slidably connected to one side of the T-shaped connecting plate (901). Toothed circular plates (904) are fixedly connected to both sides of the T-shaped connecting plate (901). Triangular sponges (905) are fixedly connected to the top and bottom of the toothed circular plates (904). A vertical block (906) is sleeved and fixedly connected to the outside of the annular rod (902). External brushes (907) are fixedly connected to both sides of the vertical block (906). An inverted V-shaped plate (908) is fixedly connected to the bottom of the vertical block (906).

2. The air-cooled radiator with anti-clogging effect according to claim 1, characterized in that: The concave side frame (10) is fixedly connected to one side of the first fixed bracket (2) at the bottom, and the cleaning device (9) is fixedly connected to one side of the first fixed bracket (2) at the bottom.

3. A wind-cooled radiator with anti-clogging effect according to claim 1, characterized in that: One side of the circular shell (301) is connected to the inlet of the first pipe (1), the outer side of the circular shell (301) is fixedly connected to the inner side of the impurity discharge device (4), and the conical shell (302) is configured as a conical shell with a conical cavity inside.

4. A wind-cooled radiator with anti-clogging effect according to claim 1, characterized in that: Two first arc holes (304) are provided, and the two first arc holes (304) are respectively distributed on the outer surface of the circular shell (301) at the top and bottom positions. The circular through hole (305) is provided on one side of the circular shell (301) at a position aligned with the annular path of the annular electric slide rail (306). Two side slide rods (307) are provided, and the two side slide rods (307) are distributed on the inner side of the annular electric slide rail (306).

5. A wind-cooled radiator with anti-clogging effect according to claim 1, characterized in that: The impurity removal device (4) includes a concave ring shell (401), a second arc hole (402) is provided on the outer side of the concave ring shell (401), a first arc plate (403) is slidably connected through and near the first arc hole (304) on one side of the concave ring shell (401), a strip-shaped connecting block (404) is fixedly connected to the inner side of the first arc plate (403), a second arc plate (405) is fixedly connected to the end of the strip-shaped connecting block (404) away from the first arc plate (403), a side-mounted block (406) is fixedly connected to one side of the second arc plate (405), and a stretching spring (407) is fixedly connected to the side of the side-mounted block (406) near the second arc plate (405).

6. A wind-cooled radiator with anti-clogging effect according to claim 5, characterized in that: The concave ring sleeve (401) is sleeved on the circular sleeve (301) and fixedly connected to the circular sleeve (301). The end of the extension spring (407) away from the side block (406) is fixedly connected to one side of the circular sleeve (301).

7. A wind-cooled radiator with anti-clogging effect according to claim 5, characterized in that: There are two second arc holes (402), and the two second arc holes (402) are distributed on the outside of the concave ring shell (401) at the top and bottom positions. The length of the second arc hole (402) is longer than that of the first arc hole (304). There are two first arc plates (403), and the two first arc plates (403) are distributed on one side of the concave ring shell (401) near the second arc hole (402).

8. A wind-cooled radiator with anti-clogging effect according to claim 1, characterized in that: One side of the electric slide rail (903) is fixedly connected to one side of the first fixed bracket (2), one side of the electric slide rail (903) is fixedly connected to one side of the second fixed bracket (8), the top of the vertical block (906) is fixedly connected to the bottom of the heat sink (6), and the toothed circular plate (904) is configured as a circular plate with toothed holes on its surface.

Citation Information

Patent Citations

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