Aluminum profile machining water cooling device
By introducing anti-adhesion, anti-surge, and anti-dilution devices into the water cooling system for aluminum profile processing, the problem of particulate matter adhesion caused by water source impurities was solved, thereby improving the uniformity and efficiency of water cooling and ensuring the quality of finished products and the lifespan of the equipment.
Patent Information
- Application Number
- CN202511129423.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-11-07
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing water-cooling equipment for aluminum profile processing, the water source can easily carry impurities, causing particulate matter to adhere to the outer wall of the material, which affects the quality of the finished product.
It employs anti-adhesion, anti-surging, anti-stagnation, and anti-dilution devices. Through components such as filter plates, flow plates, electric telescopic columns, rotating rods, and adsorption bladders, it achieves primary filtration, dynamic agitation, and uniform cooling of the water source, avoiding impurity adhesion and uneven water temperature.
It effectively prevents particulate matter from adhering, improves water cooling uniformity and efficiency, ensures finished product quality, and extends the service life of the equipment.
Smart Images

Figure CN120905476A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of water cooling, in particular to a water cooling device for aluminum profile machining. BACKGROUND
[0002] The aluminum profile titanium plating process belongs to the film coating technology, which is based on the conventional titanium plating process and increases the pre-plating and electroplating process steps. The aluminum profile process is to place the activated plated parts in a water solution of salt and hydrochloric acid for chemical treatment.
[0003] The patent with the patent announcement number CN114293115B discloses an aluminum profile machining water cooling device based on the Internet, which comprises a water cooling pool, a control unit, a lifting unit and a clamping unit. The water cooling pool is installed with the clamping unit through the lifting unit. The control unit comprises a connecting assembly, a control module, a double-way centrifugal pump, a temperature sensor one, a water level sensor and a water tank. The left side of the water cooling pool is installed with the control module. The inside left side of the water cooling pool is provided with the temperature sensor one. The bottom side of the water cooling pool is provided with the water level sensor. The bottom side of the water cooling pool is provided with the double-way centrifugal pump at the front and rear ends. The water outlet end of the double-way centrifugal pump is communicated with the inside of the water cooling pool. The double-way centrifugal pump is connected with the water tank through the connecting assembly. The inside of the water tank is divided into two independent water storage tanks. The data end of the temperature sensor one and the water level sensor is connected with the receiving end of the control module. The cold water is replaced quickly, the water cooling effect is high, and the cooling temperature of the aluminum can be detected.
[0004] However, the device still has some shortcomings. The device can quickly replace the cold water to perform water cooling treatment on the material, but the input water source is easy to carry impurities, thereby increasing the particulate matter in the water, causing the particulate matter to adhere to the outer wall of the material subjected to water cooling treatment, increasing the concave-convex feeling of the outer wall of the material, and indirectly causing the quality of the finished material to decrease. SUMMARY
[0005] In view of the shortcomings of the prior art, the present application provides a water cooling device for aluminum profile machining, which solves the problem of the input water source being easy to carry impurities, thereby increasing the particulate matter in the water, causing the particulate matter to adhere to the outer wall of the material subjected to water cooling treatment, and increasing the concave-convex feeling of the outer wall of the material.
[0006] In order to achieve the above object, the present application is realized by the following technical scheme: an aluminum profile processing water cooling device, comprising a device main body, the front of the device main body is provided with a temperature sensor, the right side of the device main body is provided with a pump, when the temperature sensor senses that the water temperature in the device main body is too high, the pump is started to pump the water source, so as to facilitate the processing process, the device further comprises an anti-adhesion device, a surge device, a static prevention device and a dilution prevention device, the anti-adhesion device is arranged on the left side of the device main body, the surge device is arranged in the device main body, the static prevention device is arranged below the surge device, and the dilution prevention device is arranged in the anti-adhesion device.
[0007] According to the above technical scheme, the anti-adhesion device further comprises a beam plate, a spring piece, a U-shaped frame and a scraping block, the top of the beam plate is hinged to the inner wall of the conveying pipe, and the beam plate is swung away from the center of the filter plate by the water flow impact force, the spring piece is deformed synchronously by the beam plate extrusion, the spring piece is fixedly installed between the inclined surface of the beam plate and the top of the inner wall of the conveying pipe, and the U-shaped frame moves left and right when the spring piece deforms and restores, the top of the U-shaped frame penetrates and is hinged in the spring piece, the U-shaped frame drives the scraping block to slide synchronously along the inclined surface of the beam plate, the left side of the scraping block is fixedly installed on the left side of the inner wall of the U-shaped frame, and the top of the scraping block is in contact with the inclined surface of the beam plate, so that the solid particles adhered to the inclined surface of the beam plate are scraped off, and the dirt is prevented from being adhered and solidified for a long time.
[0008] According to the above technical scheme, the surge device comprises an electric telescopic column, a vertical plate, a rotating rod and an elliptical hollow piece, the bottom of the electric telescopic column is fixedly installed at the bottom edge of the inner wall of the device main body, the electric telescopic column is started, and the telescopic end of the electric telescopic column drives the vertical plate to move up and down, the bottom of the vertical plate is fixedly installed at the top of the telescopic end of the electric telescopic column, and the vertical plate drives the rotating rod to move synchronously, the back of the rotating rod is rotatably installed on the front of the vertical plate, and when the rotating rod drives the elliptical hollow piece to move synchronously, the elliptical hollow piece generates rotary force by the water flow resistance, the bottom of the elliptical hollow piece is fixedly installed on the outer wall surface of the rotating rod, and the elliptical hollow piece stirs the water source through the arc surface of the elliptical hollow piece, so as to make the water source surge to the center of the device main body.
[0009] According to the technical scheme, the surge device further comprises a receiving plate, an expansion ball, an exciting sheet and a transmission sliding block, the receiving plate is fixedly installed on the left side of the outer wall of the telescopic end of the electric telescopic column, the telescopic end of the electric telescopic column drives the receiving plate to move up and down, the receiving plate drives the expansion ball to move synchronously, the expansion ball is fixedly installed on the top of the receiving plate, the arc surface of the top of the expansion ball is located on the movement track of the arc surface of the elliptical hollow sheet, the expansion ball is impacted to shrink downward when the arc surface of the expansion ball contacts the elliptical hollow sheet, the elliptical hollow sheet generates a vibration force through the impact and enhances the vibration effect by virtue of the hollow design, the exciting sheet is fixedly installed at the arc surface of the elliptical hollow sheet, the elliptical hollow sheet drives the exciting sheet to move synchronously, the exciting sheet deforms downward to shield the hot particles, the transmission sliding block is hingedly connected to the right side of the exciting sheet, the bottom of the transmission sliding block contacts the outer wall of the rotating rod, the transmission sliding block slides forward and backward along the interval of the elliptical hollow sheet when the exciting sheet deforms, and the overall cleanliness of the rotating rod and the elliptical hollow sheet is further improved on the basis of the original.
[0010] According to the technical scheme, the static placement device comprises a transmission plate, a sliding groove plate and a rotating wheel, the transmission plate is hingedly connected to the bottom of the receiving plate, the receiving plate drives the transmission plate to slide left and right when the receiving plate moves up and down, the sliding groove plate is hingedly connected to the bottom of the transmission plate, the bottom of the sliding groove plate contacts the inner wall of the device body, the transmission plate drives the sliding groove plate to move synchronously, the sliding groove plate shovels the material that is caused to sink to the bottom of the device body due to gravity, and the rotating wheel is rotatably installed on the back of the sliding groove plate, the outer wall of the rotating wheel contacts the inner wall of the device body, the sliding groove plate drives the rotating wheel to move synchronously, and the rotating wheel reduces the friction between the sliding groove plate and the water flow when the rotating wheel rotates.
[0011] According to the technical scheme, the static placement device further comprises a reset sheet, a U-shaped plate, a vibration plate and an F-shaped plate, the reset sheet is fixedly installed on the front of the sliding groove plate, the sliding groove plate drives the reset sheet to deform and reset towards the edge of the device body, the reset sheet limits the material through the arc surface, the U-shaped plate is fixedly installed on the arc surface of the front of the reset sheet, the reset sheet drives the U-shaped plate to move forward and backward, the U-shaped plate drives the vibration plate to move synchronously, the vibration plate is fixedly installed on the right side of the U-shaped plate, the vibration plate reciprocatingly contacts the F-shaped plate to generate vibration, the F-shaped plate is fixedly installed on the front of the sliding groove plate, the left side of the F-shaped plate is located on the movement track of the vibration plate, the reset sheet carries the vibration force when the reset sheet lifts the material, and the lifting effect of the sliding groove plate on the material and the quality of the water cooling treatment are improved.
[0012] According to the above technical solution, the anti-dilution device includes an electric rotating column, a connecting rod, and a water-cooling assembly. The electric rotating column is rotatably installed on the left side at the center of the right side of the filter plate, and an arc-shaped groove is opened on the outer wall of the electric rotating column. The electric rotating column restricts the connecting rod through the arc-shaped groove. When the electric rotating column rotates, it drives the connecting rod to slide left and right. The back of the connecting rod is slidably installed inside the arc-shaped groove of the electric rotating column. The connecting rod drives the water-cooling assembly to slide synchronously along the inner wall of the conveying pipe. The front of the inner wall of the water-cooling assembly is fixedly installed on the front of the connecting rod, and the outer wall of the water-cooling assembly is slidably connected to the inner wall of the conveying pipe, thereby expanding the cooling range of the water-cooling assembly inside the conveying pipe and ensuring that the water flows into the main body of the device at a relatively constant low temperature, thus improving the water-cooling effect on the material.
[0013] According to the above technical solution, the anti-dilution device further includes an adsorption bladder, a lead screw, a vertical rod ring, and a convex ball stirring rod. The top arc surface of the adsorption bladder is fixedly installed on the concave surface of the inner wall of the delivery pipe, and the left side of the adsorption bladder is in contact with the right side of the water-cooling component. When the water-cooling component moves, it squeezes the adsorption bladder to deform synchronously and generate spray force. The adsorption bladder sprays the adsorbent into the delivery pipe. The left side of the lead screw is rotatably installed on the left side of the inner wall of the adsorption bladder. When the adsorption bladder deforms, it drives the lead screw to slide left and right along the inside of the vertical rod ring. The top of the vertical rod ring is fixedly installed on the top of the inner wall of the adsorption bladder, and the lead screw is located inside the vertical rod ring. The spiral groove on the surface of the lead screw causes the lead screw to generate rotational force and start to rotate. The lead screw drives the convex ball stirring rod to rotate. The back of the convex ball stirring rod is fixedly installed on the outer wall surface of the lead screw. The convex ball stirring rod agitates the adsorbent and avoids the adsorbent from solidifying and agglomerating due to long-term static placement at low temperatures.
[0014] This invention provides a water-cooling device for aluminum profile processing. It has the following beneficial effects: (1) The present invention, through the setting of the anti-adhesion device, through the cooperation of the conveying component, the conveying pipe and the filter plate, the conveying component delivers water to the inside of the device through the conveying pipe to perform water cooling treatment on the material, ensuring the toughness and durability of the material; the filter plate initially blocks the impurities in the water source, preventing particles from adhering to the outer wall of the material and reducing the quality of the finished product; through the cooperation of the beam plate, the spring, the U-shaped frame and the scraper, the beam plate swings back and forth, reducing the flow orifice of the conveying pipe and increasing the pressure, accelerating the water flow rate and indirectly increasing the water flow rate; at the same time, the spring drives the U-shaped frame to move left and right, and the U-shaped frame drives the scraper to scrape off the solid particles adhering to the inclined surface of the beam plate, preventing dirt from adhering and solidifying for a long time and carrying corrosive substances, increasing the oxidation rate of the beam plate and thus increasing the possibility of beam plate damage.
[0015] (2), the present application is through the setting of the surge device, through the electric telescopic column, the vertical plate, the rotating rod and the elliptical hollow piece cooperation, so that the rotating rod drives the elliptical hollow piece to produce rotating force through water flow resistance, the elliptical hollow piece promotes the rotating rod rotation drives itself rotation to agitate the water source, promote the water source to surge to the device main body center, through dynamic water cooling improves the uniformity of material water cooling, and accelerates the material water cooling efficiency, improves the processing rate;Through the cooperation of the receiving plate, the telescopic ball, the urging piece and the transmission slider, the arc surface of the telescopic ball is contacted with the elliptical hollow piece and is impacted, the elliptical hollow piece generates vibration force through the impact, and the vibration effect is enhanced by relying on the hollow design, the microvibration effect of the water source is improved, and the material avoids the adhesion and erosion of the impurities on the outer wall;At the same time, the urging piece deforms downward to shield the hot particles, preventing the particles from adhering to the interval of the elliptical hollow piece;The urging piece also drives the transmission slider to slide back and forth along the interval of the elliptical hollow piece, further improving the overall cleanliness of the rotating rod and the elliptical hollow piece.
[0016] (3), the present application is through the setting of the anti-static device, through the cooperation of the receiving plate, the transmission plate, the sliding groove plate and the rotating wheel, so that the sliding groove plate shovels the material on the bottom, increases the friction between the sliding groove and the material, and promotes the material to reciprocatingly turn over, through the material turning over to carry out dynamic water cooling, avoids the local water cooling of the material uneven, thereby causing the overall quality of the material to have defects;At the same time, when the sliding groove plate drives the rotating wheel to rotate, the friction between the sliding groove plate and the water flow is reduced, and the sliding smoothness of the sliding groove plate is improved;Through the cooperation of the reset piece, the U-shaped plate, the vibration plate and the F-shaped plate, the reset piece limits the material through the arc surface, avoiding the material from leaving the disturbance range of the sliding groove plate when turning over;At the same time, the reset piece drives the U-shaped plate to move back and forth, the U-shaped plate drives the vibration plate to contact the F-shaped plate to generate vibration, improves the turning effect of the sliding groove plate on the material and the quality of water cooling treatment;At the same time, the F-shaped plate promotes the sliding groove plate to slide with vibration force, to a certain extent, improves the up and down constant change of the water flow, avoids the temperature of the bottom to be too high to change the temperature difference.
[0017] (4), the present application is through the setting of the anti-dilution device, through the electric rotating column, connecting rod and water cooling assembly cooperation, so that the electric rotating column drives the connecting rod left and right sliding, connecting rod drive water cooling assembly expands the cooling range inside the conveying pipe, ensure that the water flow into the device main body with relatively constant low temperature, avoid water temperature does not meet the standard to promote the deformation of material water cooling; through the setting of the adsorption capsule, so that the water cooling assembly extrusion adsorption capsule spray force, adsorption capsule will be adsorbent spray to small impurity particles are aggregated, on the basis of filter plate shielding further improve the purification effect of water source, avoid material outer wall uneven; through the screw, vertical rod ring and convex ball stirring rod cooperation, so that the screw along the vertical rod ring inside left and right slide rotation force begins to rotate, screw drive convex ball stirring rod rotation, convex ball stirring rod stirring adsorbent, avoid in low temperature adsorbent long-term standing solidification aggregation phenomenon, keep the adsorbent loose, make the adsorbent can be evenly distributed in the conveying pipe and water flow mixing. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 is the schematic diagram of the whole application; Figure 2 is the sectional view of the whole application; Figure 3 is the schematic diagram of the anti-attachment device; Figure 4 is the schematic diagram of the anti-attachment device from the right side; Figure 5 is the schematic diagram of the surging device; Figure 6 is the enlarged schematic diagram of structure A in the surging device; Figure 7 is the schematic diagram of the anti-static device; Figure 8 is the enlarged schematic diagram of structure B in the anti-static device; Figure 9 is the schematic diagram of the anti-dilution device; Figure 10 is the enlarged schematic diagram of structure C in the anti-dilution device.
[0019] In the figure: 1, device main body; 2, temperature sensor; 3, pump; 4, anti-adhesion device; 41, conveying assembly; 42, conveying pipe; 43, filter plate; 44, beam plate; 45, elastic sheet; 46, U-shaped frame; 47, scraping block; 5, surge device; 51, electric telescopic column; 52, vertical plate; 53, rotating rod; 54, elliptical hollow piece; 55, receiving plate; 56, telescopic ball; 57, driving piece; 58, transmission slider; 6, anti-static device; 61, transmission plate; 62, sliding groove plate; 63, rotating wheel; 64, reset piece; 65, U-shaped plate; 66, vibrating plate; 67, F-shaped plate; 7, anti-dilution device; 71, electric rotating column; 72, connecting rod; 73, water cooling assembly; 74, adsorption capsule; 75, lead screw; 76, vertical rod ring; 77, convex ball stirring rod. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments.
[0021] Please refer to Figures 1-10 An embodiment of the present application is: an aluminum profile processing water cooling device, comprising a device main body 1, the front of the device main body 1 is provided with a temperature sensor 2, the right side of the device main body 1 is provided with a pump 3, further comprising an anti-adhesion device 4 and a surge device 5, the anti-adhesion device 4 is arranged on the left side of the device main body 1, and the surge device 5 is arranged inside the device main body 1, the anti-adhesion device 4 comprises a conveying assembly 41, a conveying pipe 42 and a filter plate 43, the conveying assembly 41 is fixedly installed on the left side of the device main body 1, the conveying pipe 42 penetrates through and is fixedly installed on the left side of the conveying assembly 41, and the outer wall of the filter plate 43 is fixedly installed inside the conveying pipe 42, when the temperature sensor 2 senses that the water temperature inside the device main body 1 is too high, the pump 3 is started to pump the water source, so that the processing process is convenient and fast, the left side of the conveying pipe 42 is connected with an external water pipe, the conveying assembly 41 is started to convey the water source to the inside of the device main body 1 through the conveying pipe 42 to perform water cooling treatment on the material, and through the arrangement of the filter plate 43, the impurities in the water source are initially shielded, so that particulate matter is prevented from entering the inside of the device main body 1 and adhering to the outer wall of the material to reduce the quality of the finished product.
[0022] The anti-attachment device 4 further comprises a beam plate 44, a spring sheet 45, a U-shaped frame 46 and a scraping block 47. The top of the beam plate 44 is hinged to the inner wall of the conveying pipe 42. The spring sheet 45 is fixedly installed between the inclined surface of the beam plate 44 and the top of the inner wall of the conveying pipe 42. The top of the U-shaped frame 46 penetrates and is hinged inside the spring sheet 45. The left side of the scraping block 47 is fixedly installed on the left inner wall of the U-shaped frame 46. The top of the scraping block 47 is in contact with the inclined surface of the beam plate 44. The beam plate 44 is swung away from the center of the filter plate 43 under the impact of water flow. The beam plate 44 extrudes the spring sheet 45 to deform synchronously. The spring sheet 45 drives the U-shaped frame 46 to move left and right when it restores. The U-shaped frame 46 drives the scraping block 47 to slide along the inclined surface of the beam plate 44 synchronously. The solid particles attached to the inclined surface of the beam plate 44 are scraped off to avoid long-term attachment and solidification of dirt.
[0023] The surging device 5 comprises an electric telescopic column 51, a vertical plate 52, a rotating rod 53 and an elliptical hollow piece 54. The bottom of the electric telescopic column 51 is fixedly installed on the inner wall of the device body 1. The bottom of the vertical plate 52 is fixedly installed on the top of the telescopic end of the electric telescopic column 51. The back of the rotating rod 53 is rotatably installed on the front of the vertical plate 52. The bottom of the elliptical hollow piece 54 is fixedly installed on the outer wall surface of the rotating rod 53. The electric telescopic column 51 is started. The telescopic end of the electric telescopic column 51 drives the vertical plate 52 to move up and down. The vertical plate 52 drives the rotating rod 53 to move synchronously. The rotating rod 53 drives the elliptical hollow piece 54 to move synchronously. The elliptical hollow piece 54 generates a rotating force under the resistance of water flow. The elliptical hollow piece 54 stirs the water source through its arc surface to make the water source surge to the center of the device body 1.
[0024] The surging device 5 further comprises a receiving plate 55, a telescopic ball 56, a stimulating piece 57 and a transmission sliding block 58. The right side of the receiving plate 55 is fixedly installed on the left side of the outer wall of the telescopic end of the electric telescopic column 51. The bottom of the telescopic ball 56 is fixedly installed on the top of the receiving plate 55. The top arc surface of the telescopic ball 56 is located on the movement track of the arc surface of the elliptical hollow piece 54. The bottom of the stimulating piece 57 is fixedly installed on the arc surface of the elliptical hollow piece 54. The top of the transmission sliding block 58 is hinged to the right side of the stimulating piece 57. The bottom of the transmission sliding block 58 is in contact with the outer wall of the rotating rod 53. The telescopic end of the electric telescopic column 51 drives the receiving plate 55 to move up and down. The receiving plate 55 drives the telescopic ball 56 to move synchronously. The arc surface of the telescopic ball 56 collides with the elliptical hollow piece 54 to contract downward. The elliptical hollow piece 54 generates a vibrating force through the collision and enhances the vibrating effect by the hollow design. The elliptical hollow piece 54 drives the stimulating piece 57 to move synchronously. The stimulating piece 57 deforms downward to shield the hot particles. The stimulating piece 57 drives the transmission sliding block 58 to slide forward and backward along the interval of the elliptical hollow piece 54 when it deforms. The overall cleanliness of the rotating rod 53 and the elliptical hollow piece 54 is further improved on the basis of the original.
[0025] When the temperature sensor 2 senses that the water temperature inside the device body 1 is too high, the pump 3 is started to pump water, facilitating the processing process. The left side of the delivery pipe 42 is connected to an external water pipe. When the delivery assembly 41 is started, it delivers water to the inside of the device body 1 through the delivery pipe 42 to cool the material, ensuring the material's toughness and durability. The filter plate 43 is arranged to initially block impurities in the water, preventing particles from entering the device body 1 and adhering to the outer wall of the material, thereby reducing the quality of the finished product. The water flow impact force causes the beam plate 44 to swing away from the center of the filter plate 43. The beam plate 44 deforms the spring plate 45 synchronously. Since the impact force of the water flow delivered by the delivery assembly 41 is not constant, the beam plate 44 is reset by the spring plate 45. When the beam plate 44 swings back and forth, it narrows the flow aperture inside the delivery pipe 42, increases the pressure, and accelerates the water flow speed, indirectly increasing the water flow rate. When the spring plate 45 deforms and recovers, it moves the U-shaped frame 46 left and right. The U-shaped frame 46 moves the scraper 47 along the inclined surface of the beam plate 44 synchronously, scraping off the solid particles adhering to the inclined surface of the beam plate 44, preventing dirt from adhering and solidifying for a long time, and preventing solid particles from carrying corrosive substances to increase the oxidation rate of the beam plate 44, thereby increasing the likelihood of beam plate 44 damage.
[0026] When the material enters the device body 1 for water cooling, the electric telescopic column 51 is started. The telescopic end of the electric telescopic column 51 moves the vertical plate 52 up and down, which moves the rotating rod 53 synchronously. The rotating rod 53 moves the elliptical hollow piece 54 synchronously. The elliptical hollow piece 54 generates rotational force through water flow resistance when it moves synchronously with the rotating rod 53. The elliptical hollow piece 54 rotates with the rotating rod 53. The elliptical hollow piece 54 stirs the water through its arc surface, causing the water to surge towards the center of the device body 1. This improves the uniformity and efficiency of water cooling for the material, and increases the processing rate. The telescopic end of the electric telescopic column 51 moves the receiving plate 55 up and down, which moves the telescopic ball 56 synchronously. When the arc surface of the telescopic ball 56 contacts the elliptical hollow piece 54, it is impacted and shrinks downward. Then it is reset by the spring. The elliptical hollow piece 54 generates vibration force through the impact and relies on the hollow design to enhance the vibration effect. The elliptical hollow piece 54 vibrates to improve the micro-vibration effect on the water, which prevents the material from being eroded by impurities adhering to its outer wall and improves the water cooling effect on the material. The elliptical hollow piece 54 moves the driving piece 57 synchronously. When the driving piece 57 rotates and contacts the telescopic ball 56, it generates a resistance force. The driving piece 57 deforms downward to block hot particles, preventing them from adhering to the gaps between the elliptical hollow pieces 54. Then the driving piece 57 is synchronously reset. When the driving piece 57 deforms, it moves the transmission slider 58 along the gaps between the elliptical hollow pieces 54. This further improves the overall cleanliness of the rotating rod 53 and the elliptical hollow piece 54.
[0027] Please refer to Figures 1-10On the basis of the above-mentioned embodiments, another embodiment of the present application further comprises a static prevention device 6 and a dilution prevention device 7, the static prevention device 6 is arranged below the surge device 5, and the dilution prevention device 7 is arranged inside the anti-adhesion device 4; The static prevention device 6 comprises a transmission plate 61, a chute plate 62 and a rotating wheel 63, the top of the transmission plate 61 is hingedly connected to the bottom of the receiving plate 55, the top of the chute plate 62 is hingedly connected to the bottom of the transmission plate 61, and the bottom of the chute plate 62 is in contact with the bottom of the inner wall of the device main body 1, the rotating wheel 63 is rotationally arranged on the back of the chute plate 62, and the outer wall of the rotating wheel 63 is in contact with the bottom of the inner wall of the device main body 1, the receiving plate 55 moves up and down to drive the transmission plate 61 to slide left and right, the transmission plate 61 drives the chute plate 62 to move synchronously, the chute plate 62 shovels the material that is caused to sink to the bottom of the device main body 1 due to gravity, and the chute plate 62 drives the rotating wheel 63 to move synchronously, and the rotating wheel 63 reduces the friction between the chute plate 62 and the water flow when rotating.
[0028] The static prevention device 6 further comprises a reset piece 64, a U-shaped plate 65, a vibrating plate 66 and an F-shaped plate 67, the back of the reset piece 64 is fixedly arranged on the front of the chute plate 62, the back of the left side of the U-shaped plate 65 is fixedly arranged on the front of the arc surface of the reset piece 64, the left side of the vibrating plate 66 is fixedly arranged on the right side of the U-shaped plate 65, the back of the F-shaped plate 67 is fixedly arranged on the front of the chute plate 62, and the left side of the F-shaped plate 67 is located on the movement track of the vibrating plate 66, the chute plate 62 drives the reset piece 64 to deform and reset towards the edge of the device main body 1, the reset piece 64 limits the material through the arc surface, the reset piece 64 drives the U-shaped plate 65 to move forward and backward, the U-shaped plate 65 drives the vibrating plate 66 to move synchronously, the vibrating plate 66 vibrates by reciprocating the F-shaped plate 67, and the reset piece 64 carries the vibration force when lifting the material, thereby improving the turning effect of the chute plate 62 on the material and the quality of the water cooling treatment.
[0029] The dilution prevention device 7 comprises an electric rotating column 71, a connecting rod 72 and a water cooling assembly 73, the left side of the electric rotating column 71 is rotationally arranged at the center of the right side of the filter plate 43, and an arc-shaped groove is formed in the outer wall of the electric rotating column 71, the back of the connecting rod 72 is slidingly arranged in the arc-shaped groove of the electric rotating column 71, the inner wall of the front of the water cooling assembly 73 is fixedly arranged on the front of the connecting rod 72, and the outer wall of the water cooling assembly 73 is slidingly connected to the inner wall of the conveying pipe 42, the electric rotating column 71 limits the connecting rod 72 through the arc-shaped groove, the electric rotating column 71 drives the connecting rod 72 to slide left and right when rotating, the connecting rod 72 drives the water cooling assembly 73 to slide synchronously along the inner wall of the conveying pipe 42, thereby expanding the cooling range of the water cooling assembly 73 on the inside of the conveying pipe 42, ensuring that the water flow enters the inside of the device main body 1 at a relatively constant low temperature, and improving the water cooling effect on the material.
[0030] The anti-dilution device 7 further comprises an adsorption capsule 74, a screw rod 75, a vertical rod ring 76 and a convex ball stirring rod 77. The top arc surface of the adsorption capsule 74 is fixedly installed at the concave surface of the inner wall of the conveying pipe 42, and the left side of the adsorption capsule 74 is in contact with the right side of the water cooling assembly 73. The left side of the screw rod 75 is rotatably installed at the left side of the inner wall of the adsorption capsule 74. The top of the vertical rod ring 76 is fixedly installed at the top of the inner wall of the adsorption capsule 74, and the screw rod 75 is located inside the vertical rod ring 76. The convex ball stirring rod 77 is fixedly installed at the outer wall surface of the screw rod 75. When the water cooling assembly 73 moves, it extrudes the adsorption capsule 74 to generate a jet force. The adsorption capsule 74 sprays the adsorbent into the inside of the conveying pipe 42. When the adsorption capsule 74 deforms, it drives the screw rod 75 to slide left and right along the inside of the vertical rod ring 76. The screw rod 75 is restricted by the spiral groove on the surface of the screw rod 75 to generate a rotating force to start rotating. The screw rod 75 drives the convex ball stirring rod 77 to rotate, which stirs the adsorbent to avoid solidification and aggregation of the adsorbent due to long-term static placement at low temperature.
[0031] In use, when the receiving plate 55 moves up and down, it drives the transmission plate 61 to slide left and right. The transmission plate 61 drives the chute plate 62 to move synchronously. The chute plate 62 shovels the material that sinks to the bottom of the device body 1 due to gravity. The chute increases the friction between the material and the chute plate 62, so that the material can be repeatedly turned over. Unlike traditional static water cooling treatment, dynamic water cooling is achieved by turning over the material, which avoids uneven water cooling of the material in some parts, thereby causing defects in the overall quality of the material. The chute plate 62 drives the rotating wheel 63 to move synchronously. The rotating wheel 63 starts to rotate by contacting the inner wall bottom of the device body 1 to generate friction. When the rotating wheel 63 rotates, it reduces the friction between the chute plate 62 and the water flow, thereby improving the smoothness of the sliding of the chute plate 62. The chute plate 62 drives the reset piece 64 to deform and reset towards the edge of the device body 1. The reset piece 64 limits the material by the arc surface, avoiding the material from moving out of the disturbance range of the chute plate 62 when it is turned over. The reset piece 64 drives the U-shaped plate 65 to move forward and backward. The U-shaped plate 65 drives the vibration plate 66 to move synchronously. The vibration plate 66 repeatedly contacts the F-shaped plate 67 to generate vibration. At this time, the reset piece 64 carries vibration force when it lifts the material, thereby improving the turning effect of the chute plate 62 on the material and the quality of the water cooling treatment. At the same time, the F-shaped plate 67 transmits force to the chute plate 62 to make it slide with vibration force, which improves the constant change of the water flow up and down to some extent, thereby avoiding excessive temperature at the bottom and temperature difference.
[0032] The electric rotating column 71 is started, and the electric rotating column 71 drives the connecting rod 72 to slide left and right through the limitation of the arc-shaped groove, the connecting rod 72 drives the water cooling assembly 73 to slide along the inner wall of the conveying pipe 42 synchronously, expands the cooling range of the water cooling assembly 73 to the inside of the conveying pipe 42, ensures that the water flow enters the inside of the device main body 1 at a relatively constant low temperature, improves the water cooling effect on the material, avoids the deformation of the material caused by the substandard water temperature when the material is water cooled; the adsorption capsule 74 is deformed to generate jet power when the water cooling assembly 73 moves, and then the adsorption capsule 74 is automatically reset through its elasticity, the adsorption capsule 74 sprays the adsorbent into the inside of the conveying pipe 42, and the small impurity particles in the water source are aggregated through the adsorbent, further improves the purification effect on the water source on the basis of the shielding of the filter plate 43, ensures the cleanliness of the water source, and avoids the uneven outer wall of the material; the screw rod 75 slides along the inside of the vertical rod ring 76 left and right when the adsorption capsule 74 is deformed, and the screw rod 75 generates rotary force to start rotating through the limitation of the spiral groove on the surface of the screw rod 75, the screw rod 75 drives the convex ball stirring rod 77 to rotate synchronously, the convex ball stirring rod 77 stirs the adsorbent, avoids the solidification and aggregation phenomenon of the adsorbent caused by long-term standing at low temperature, keeps the adsorbent loose through the rotation and stirring of the convex ball stirring rod 77, and makes the adsorbent evenly distributed in the inside of the conveying pipe 42 and mixed with the water flow.
[0033] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited to this, any person skilled in the art can make equivalent replacement or change according to the technical scheme and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered in the protection scope of the present application.
Claims
1. A water-cooling device for aluminum profile processing, comprising a device body (1), wherein a temperature sensor (2) is provided on the front side of the device body (1), and a pump (3) is provided on the right side of the device body (1), characterized in that: Prevent adhesion device (4), surge device (5), prevent static device (6) and prevent dilution device (7) are further included, the prevent adhesion device (4) is arranged on the left side of device main body (1), the surge device (5) is arranged inside device main body (1), the prevent static device (6) is arranged below surge device (5), the prevent dilution device (7) is arranged inside prevent adhesion device (4), the prevent adhesion device (4) includes conveying assembly (41), conveying pipe (42) and filter plate (43), the conveying assembly (41) right side fixed mounting is installed on the left side of device main body (1), the conveying pipe (42) right side penetrates and fixedly installed in the left side of conveying assembly (41), the filter plate (43) outer wall fixedly installed in the inside of conveying pipe (42); The prevent adhesion device (4) further includes beam plate (44), elastic sheet (45), U-shaped frame (46) and scraping block (47), the beam plate (44) top is hinged at the inner wall of conveying pipe (42), the elastic sheet (45) is fixedly installed between the inclined surface of beam plate (44) and the top of the inner wall of conveying pipe (42), the U-shaped frame (46) top penetrates and is hinged in the inside of elastic sheet (45), the scraping block (47) left side fixedly installed in the inner wall left side of U-shaped frame (46), and the top of scraping block (47) is in contact with the inclined surface of beam plate (44); The surge device (5) includes electric telescopic column (51), vertical plate (52), rotating rod (53) and oval hollow piece (54), the electric telescopic column (51) bottom is fixedly installed at the inner wall bottom edge of device main body (1), the vertical plate (52) bottom is fixedly installed at the top of telescopic end of electric telescopic column (51), the rotating rod (53) back surface rotationally installed in the front surface of vertical plate (52), the oval hollow piece (54) bottom is fixedly installed at the outer wall surface of rotating rod (53); The prevent static device (6) includes transmission plate (61), sliding groove plate (62) and rotating wheel (63), the transmission plate (61) top is hinged in the bottom of receiving plate (55), the sliding groove plate (62) top is hinged in the bottom of transmission plate (61), and the bottom of sliding groove plate (62) is in contact with the bottom of the inner wall of device main body (1), the rotating wheel (63) front surface rotationally installed in the back surface of sliding groove plate (62), and the outer wall of rotating wheel (63) is in contact with the bottom of the inner wall of device main body (1); The prevent dilution device (7) includes electric rotating column (71), connecting rod (72) and water cooling assembly (73), the electric rotating column (71) left side rotationally installed in the right side center of filter plate (43), and the outer wall of electric rotating column (71) is provided with arc slot, the connecting rod (72) back surface slidingly installed in the arc slot of electric rotating column (71), the water cooling assembly (73) inner wall front surface fixedly installed in the front surface of connecting rod (72), and the outer wall of water cooling assembly (73) is slidingly connected at the inner wall of conveying pipe (42); The anti-dilution device (7) further includes an adsorption capsule (74), a lead screw (75), a vertical rod ring (76) and a convex ball stirring rod (77), the top arc surface of the adsorption capsule (74) is fixedly installed at the concave surface of the inner wall of the conveying pipe (42), and the left side of the adsorption capsule (74) is in contact with the right side of the water cooling assembly (73), the left side of the lead screw (75) is rotatably installed at the left side of the inner wall of the adsorption capsule (74), the top of the vertical rod ring (76) is fixedly installed at the top of the inner wall of the adsorption capsule (74), and the lead screw (75) is located inside the vertical rod ring (76), and the back of the convex ball stirring rod (77) is fixedly installed on the outer wall surface of the lead screw (75).
2. The water cooling device for aluminum profile machining according to claim 1, characterized in that: The surge device (5) further includes a receiving plate (55), a telescopic ball (56), a driving piece (57) and a transmission sliding block (58), the right side of the receiving plate (55) is fixedly installed on the left side of the outer wall of the telescopic end of the electric telescopic column (51), the bottom of the telescopic ball (56) is fixedly installed on the top of the receiving plate (55), the top arc surface of the telescopic ball (56) is located on the arc movement track of the elliptical hollow piece (54), the bottom of the driving piece (57) is fixedly installed at the arc surface of the elliptical hollow piece (54), the top of the transmission sliding block (58) is hingedly connected to the right side of the driving piece (57), and the bottom of the transmission sliding block (58) is in contact with the outer wall of the rotating rod (53).
3. The water cooling device for aluminum profile machining according to claim 1, characterized in that: The anti-static device (6) further includes a reset piece (64), a U-shaped plate (65), a vibrating plate (66) and an F-shaped plate (67), the back of the reset piece (64) is fixedly installed on the front of the chute plate (62), the back of the left side of the U-shaped plate (65) is fixedly installed on the front arc surface of the reset piece (64), the left side of the vibrating plate (66) is fixedly installed on the right side of the U-shaped plate (65), the back of the F-shaped plate (67) is fixedly installed on the front of the chute plate (62), and the left side of the F-shaped plate (67) is located on the movement track of the vibrating plate (66).
Citation Information
Patent Citations
A water-cooling device for aluminum profile processing based on the Internet
CN114293115B