Energy-saving cooling device for glass processing

By designing a cooling device that includes cooling, cooling, cleaning and vacuuming components, the problems of waste of energy consumption and low cooling efficiency of the cooling device are solved, and energy-saving and efficient glass cooling effect is achieved.

CN120441184AInactive Publication Date: 2025-08-08JIANGSU KUNZAI NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202510585792.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2025-08-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing glass processing cooling devices have problems of waste of energy and low cooling efficiency during the cooling process, especially poor heat conduction caused by inaccurate cooling air coverage and dust accumulation on the surface of the conveying roller.

Method used

A cooling device including cooling components, cooling components, cleaning components and vacuuming components is designed to quickly dissipate heat by circulating cooling medium, accurately adjust the cooling air area, clean dust on the surface of the conveying roller, and efficiently collect dust.

Benefits of technology

Energy-saving cooling is achieved, cooling efficiency is improved, energy waste is avoided, and glass processing quality and safety is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of energy-saving glass processing, in particular to an energy-saving glass processing cooling device which comprises a cooling machine body, a cooling assembly, a cleaning assembly, a mounting assembly, a cooling assembly, an adjusting assembly and a dust collection assembly. A cooling system in the cooling assembly takes away heat absorbed by the conveying rollers, so that rapid heat dissipation is achieved, it is avoided that a large amount of heat is accumulated on the conveying rollers, and consequently the cooling effect on the glass is affected, air guide plates in the cooling assembly rotate, the air blowing area can be accurately adjusted according to the glass of different sizes, cooling air is prevented from covering invalid areas outside the glass, and the service life of the glass is prolonged. Energy waste is effectively avoided, the adjusting assembly is arranged to conveniently fix the rotated air guide plate, the stability of the air guide plate is improved, the cleaning assembly can clean dust and impurities on the surface of the conveying roller, the situation that the dust and the impurities are attached to the surface of the conveying roller to affect the heat dissipation effect is avoided, and the dust collection assembly is arranged to efficiently collect the cleaned dust; the environment pollution caused by dust drifting is avoided.
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Description

Technical Field

[0001] The present invention relates to the technical field of energy-saving glass processing, in particular to an energy-saving cooling device for glass processing. Background Art

[0002] Road glass is an amorphous inorganic non-metallic material formed by high-temperature melting and cooling. During the glass processing process, whether it is thermoforming, tempering or coating, the glass needs to be treated at high temperature. There is a large amount of thermal stress inside the glass after high-temperature treatment. If the heat is not dissipated in time, on the one hand, the thermal stress will cause the glass to deform and warp, affecting the product's dimensional accuracy and appearance quality; on the other hand, uneven thermal stress may also cause the glass to explode during subsequent processing or use, greatly reducing the safety and reliability of the product. Therefore, the glass needs to be cooled by a cooling machine after processing.

[0003] However, when the cooling machine blows air to cool the conveyed glass, the cooling air coverage area is not convenient to blow according to the size of the glass, resulting in that when cooling small-sized glass, the fan still blows air to a large area, and a large amount of cooling air acts on the ineffective area, which increases the operating energy consumption of the fan; and the conveying roller is prone to dust adhesion due to static electricity, surface roughness and other reasons in the non-operating state. After the dust accumulates on the surface of the roller, it will form an insulating layer that hinders the heat conduction between the glass and the conveying roller, and reduce the cooling efficiency of the glass; during the glass conveying process, a large amount of heat carried by the glass will continue to be conducted to the inside of the conveying roller. Although the surface of the conveying roller can dissipate heat through air cooling and other methods, due to the poor thermal conductivity of air, heat continues to accumulate inside the roller, causing the roller temperature to continue to rise, thereby affecting the cooling effect on the glass. Summary of the Invention

[0004] In view of the problems in the prior art, the present invention provides an energy-saving cooling device for glass processing.

[0005] The technical solution adopted by the present invention to solve the technical problem is: an energy-saving glass processing cooling device, comprising a cooling machine body, a cooling component mounted on the cooling machine body, a cleaning component mounted on the cooling machine body, a cooling component mounted on the cooling machine body, an adjusting component mounted on the cooling component and the cooling machine body, and a dust collection component mounted between the cleaning component and the cooling machine body;

[0006] The cooling assembly includes a plurality of mounting shafts rotatably connected to the cooling machine body and spiral blades mounted on the mounting shafts, a conveying roller is fixedly connected to the spiral blades, a through hole is provided on the mounting shaft, a rotary joint is installed at both ends of the mounting shaft, the rotary joint is installed on the cooling machine body, an elbow is installed on the rotary joint, and a connecting pipe is fixedly connected between the plurality of elbows on the same side, a heat exchanger is installed on the cooling machine body, a liquid storage tank is fixedly connected to the cooling machine body, a circulating pump is installed on the cooling machine body, and the cooling assembly includes a mounting plate and a fan;

[0007] The connecting pipe is connected to the inlet of the heat exchanger through a delivery pipe, the outlet of the heat exchanger is connected to the inlet of the liquid storage tank through a delivery pipe, the outlet of the liquid storage tank is connected to the inlet of the circulation pump through a delivery pipe, and the outlet of the circulation pump is connected to another connecting pipe through a delivery pipe.

[0008] Specifically, the cleaning assembly includes two guide rods fixedly connected to the cooler body and two mounting seats slidably connected to the guide rods. A drive shaft is rotatably connected between each two mounting seats. A positioning block is fixedly connected to the drive shaft, and a cleaning brush is detachably connected to the positioning block.

[0009] Specifically, a first bevel gear is installed on the driving shaft, wherein two of the mounting seats are fixedly connected to a connecting seat, a second bevel gear is rotatably connected to the connecting seat, the second bevel gear is meshed with the first bevel gear, an adjusting shaft is rotatably connected to the cooler body, a guide bar is fixedly connected to the adjusting shaft, the second bevel gear is slidably connected to the guide bar and the adjusting shaft, a first screw rod is rotatably connected to the cooler body, wherein the two mounting seats are threadedly connected to the first screw rod, and the thread directions at both ends of the first screw rod are opposite.

[0010] Specifically, a first driving member is installed on the cooling machine body, and the adjusting shaft is driven by the first driving member. A second driving member is installed on the cooling machine body, and the first screw rod is driven by the second driving member.

[0011] Specifically, the cleaning brush is installed through an installation assembly, which includes two slides slidably connected to the drive shaft and two mounting rods fixedly connected to the slides. The mounting rods are slidably connected to the positioning block, and the mounting rod cleaning brush is engaged. A second screw rod is rotatably connected to the drive shaft, and the slide is threadedly connected to the second screw rod, and the threads at both ends of the second screw rod have opposite directions.

[0012] Specifically, the positioning block is fixedly connected to a magnetic block, the cleaning brush is fixedly connected to an iron block, and the iron block is adsorbed on the magnetic block.

[0013] Specifically, two mounting plates are fixedly connected to the cooling machine body, multiple fans are installed on the mounting plates, two connecting shafts are rotatably connected to the mounting plates, an air guide plate is fixedly connected to the connecting shafts, a driving gear is fixedly connected to the connecting shafts, a rack is engaged with the driving gear, a guide rail is fixedly connected to the cooling machine body, the rack is slidably connected to the guide rail, and a connecting rod is fixedly connected between the two racks.

[0014] Specifically, the adjustment assembly includes an adjustment rod fixedly connected to two of the racks and a pull rod slidably connected to the adjustment rod, the adjustment rod is slidably connected to the cooler body, a guide shaft is fixedly connected to the adjustment rod, the pull rod is slidably connected to the guide shaft, a limiting column is fixedly connected to the pull rod, a plurality of limiting holes are provided on the cooler body, two of the limiting columns are respectively engaged with two of the limiting holes, a scale bar is provided on the cooler body, a fixing plate is fixedly connected to the adjustment rod, the fixing plate is slidably connected to the cooler body, and a spring is fixedly connected between the pull rod and the guide shaft.

[0015] Specifically, the dust collection assembly includes a dust collection hood fixedly connected between every two of the mounting seats and a fixed rod fixedly connected to the dust collection hood, a guide plate is fixedly connected to the fixed rod, a dust collection pipe is installed at the bottom of the dust collection hood, an installation box is fixedly connected to the cooling machine body, a collection frame is detachably connected to the installation box, a filter is installed in the installation box through the frame, a hose is installed on the dust collection pipe, and the other end of the hose is installed on the installation box.

[0016] Specifically, a vacuum pump is installed in the cooling machine body, an air intake pipe is installed at the air intake of the vacuum pump, the other end of the air intake pipe is installed on the installation box, the air intake pipe is connected to the top of the filter, and the hose is connected to the bottom of the filter.

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

[0018] (1) The energy-saving cooling device for glass processing described in the present invention has a cooling assembly on the cooling machine body. The cooling system in the cooling assembly takes away the heat absorbed by the conveyor roller, thereby achieving rapid heat dissipation and preventing a large amount of heat from accumulating on the conveyor roller and affecting the cooling effect on the glass.

[0019] (2) The present invention describes an energy-saving cooling device for glass processing, wherein a cooling assembly is provided on the cooling machine body, and an adjusting assembly is provided between the cooling assembly and the cooling machine body. The rotation of the air guide plate in the cooling assembly can accurately adjust the blowing area according to the different sizes of glass, thereby preventing the cooling air from covering the invalid area outside the glass, reducing unnecessary energy consumption of the fan, and reducing the load on the refrigeration system caused by cooling excessive air, thereby effectively avoiding energy waste. The setting of the adjusting assembly facilitates the fixation of the rotated air guide plate, thereby improving its stability.

[0020] (3) The energy-saving cooling device for glass processing described in the present invention has a cleaning assembly on the cooling machine body, and the cleaning brush is installed through the mounting assembly. The cleaning assembly can clean the dust and impurities on the surface of the conveying roller to prevent the dust and impurities from adhering to the surface of the conveying roller and affecting the heat dissipation effect, and can also prevent the harder dust particles from scratching the glass during the glass conveying process, thereby improving the processing quality of the glass. The setting of the mounting assembly facilitates the installation and disassembly between the cleaning brush and the positioning block.

[0021] (4) The energy-saving cooling device for glass processing described in the present invention has a dust collection component on the cooling machine body. The dust collection component is set to efficiently collect the cleaned dust and prevent the dust from floating and polluting the environment. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] The present invention will be further described below with reference to the accompanying drawings and examples.

[0023] Figure 1 A schematic diagram of the overall structure of a preferred embodiment of an energy-saving glass processing cooling device provided by the present invention;

[0024] Figure 2 for Figure 1 An enlarged schematic diagram of the structure of section A is shown;

[0025] Figure 3 for Figure 1 An enlarged schematic diagram of the structure of part B is shown;

[0026] Figure 4 Schematic diagram of the connection structure between the heat exchanger and the cooler body of the present invention;

[0027] Figure 5 for Figure 4 The enlarged schematic diagram of the C-section structure is shown;

[0028] Figure 6 This is a schematic diagram of the connection structure between the fan and the mounting plate of the present invention;

[0029] Figure 7 for Figure 6 The enlarged schematic diagram of the D part structure is shown;

[0030] Figure 8 This is a schematic diagram of the connection structure between the mounting shaft and the cooling machine body of the present invention;

[0031] Figure 9 for Figure 8 An enlarged schematic diagram of the E-section structure is shown;

[0032] Figure 10 for Figure 9 The enlarged schematic diagram of the F part structure is shown;

[0033] Figure 11 This is a schematic diagram of the connection structure between the collection frame and the installation box of the present invention;

[0034] Figure 12 for Figure 11 The enlarged schematic diagram of the G-section structure is shown;

[0035] Figure 13 for Figure 12 The enlarged schematic diagram of the H part structure is shown.

[0036] In the figure: 1. Cooler body; 2. Cooling assembly; 201. Mounting shaft; 202. Spiral blade; 203. Conveyor roller; 204. Through hole; 205. Rotary joint; 206. Elbow; 207. Connecting pipe; 208. Heat exchanger; 209. Liquid storage tank; 210. Circulating pump; 3. Cleaning assembly; 301. Guide rod; 302. Mounting seat; 303. Drive shaft; 304. Positioning block; 305. Cleaning brush; 306. First bevel gear; 307. Adjusting shaft; 308. Guide strip; 309. Connecting seat; 310. Second bevel gear; 311. First drive member; 312. First screw rod; 313. Second drive member; 4. Mounting assembly; 401. Slide plate; 402. Mounting rod; 403 , second screw; 404, magnetic block; 405, iron block; 5, cooling assembly; 501, mounting plate; 502, fan; 503, connecting shaft; 504, air guide plate; 505, driving gear; 506, guide rail; 507, rack; 508, connecting rod; 6, adjustment assembly; 601, adjustment rod; 602, pull rod; 603, guide shaft; 604, spring; 605, limit column; 606, limit hole; 607, scale bar; 608, fixing plate; 7, dust collection assembly; 701, dust collection hood; 702, fixing rod; 703, guide plate; 704, dust collection pipe; 705, hose; 706, mounting box; 707, collection frame; 708, filter; 709, suction pipe; 710, vacuum pump. DETAILED DESCRIPTION

[0037] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.

[0038] like Figure 1 、 Figure 2 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 、 Figure 10 、 Figure 12 and Figure 13 As shown, the energy-saving glass processing cooling device of the present invention includes a cooling machine body 1, a cooling component 2 installed on the cooling machine body 1, a cleaning component 3 installed on the cooling machine body 1, a cooling component 5 installed on the cooling machine body 1, an adjusting component 6 installed on the cooling component 5 and the cooling machine body 1, and a dust collection component 7 installed between the cleaning component 3 and the cooling machine body 1; the cooling component 2 includes a plurality of mounting shafts 201 rotatably connected to the cooling machine body 1 and spiral blades 202 installed on the mounting shafts 201, a conveying roller 203 is fixedly connected to the spiral blades 202, a through hole 204 is provided on the mounting shaft 201, and rotary joints 205 are installed at both ends of the mounting shaft 201. The rotary joint 205 is installed on the cooler body 1, and a bend pipe 206 is installed on the rotary joint 205. A connecting pipe 207 is fixedly connected between multiple bend pipes 206 on the same side. A heat exchanger 208 is installed on the cooler body 1, and a liquid storage tank 209 is fixedly connected to the cooler body 1. A circulating pump 210 is installed on the cooler body 1. The cooling assembly 5 includes a mounting plate 501 and a fan 502; the connecting pipe 207 is connected to the inlet of the heat exchanger 208 through a delivery pipe, and the outlet of the heat exchanger 208 is connected to the inlet of the liquid storage tank 209 through a delivery pipe, and the outlet of the liquid storage tank 209 is connected to the inlet of the circulating pump 210 through a delivery pipe, and the outlet of the circulating pump 210 is connected to another connecting pipe 207 through a delivery pipe.

[0039] Specifically, such as Figure 1 、 Figure 2 、 Figure 9 、 Figure 10 、 Figure 12 and Figure 13As shown, the cleaning assembly 3 includes two guide rods 301 fixedly connected to the cooler body 1 and two mounting seats 302 slidably connected to the guide rods 301. The setting of the guide rods 301 ensures the smooth sliding of the mounting seats 302. A driving shaft 303 is rotatably connected between each two mounting seats 302. A positioning block 304 is fixedly connected to the driving shaft 303. A cleaning brush 305 is detachably connected to the positioning block 304. The rotating cleaning brush 305 cooperates with the rotating conveying roller 203 to clean the dust and impurities on the surface of the conveying roller 203. Cleaning with the cleaning brush 305 can prevent dust and impurities from adhering to the surface of the conveying roller 203 and affecting the heat dissipation effect. , and can prevent harder particles and dust from scratching the glass during the glass transportation process, thereby improving the processing quality of the glass, a first bevel gear 306 is installed on the driving shaft 303, wherein two of the mounting seats 302 are fixedly connected to a connecting seat 309, and the connecting seat 309 is rotatably connected to a second bevel gear 310, and the second bevel gear 310 is meshed with the first bevel gear 306, and the cooling machine body 1 is rotatably connected to an adjusting shaft 307, and the adjusting shaft 307 is fixedly connected to a guide bar 308, and the second bevel gear 310 is slidably connected to the guide bar 308 and the adjusting shaft 307, and the cooling machine body 1 is rotatably connected to a first screw rod 312, wherein two of the mounting seats The seat 302 is threadedly connected to the first screw rod 312, and the threads at both ends of the first screw rod 312 are in opposite directions. A first driving member 311 is installed on the cooling machine body 1, and the adjusting shaft 307 is driven by the first driving member 311. A second driving member 313 is installed on the cooling machine body 1, and the first screw rod 312 is driven by the second driving member 313. The cleaning brush 305 is installed through the mounting assembly 4, and the mounting assembly 4 includes two slides 401 slidably connected to the drive shaft 303 and two mounting rods 402 fixedly connected to the slide 401. The mounting rod 402 is slidably connected to the positioning block 304, and the cleaning brush 305 is stuck on the mounting rod 402. The second screw rod 403 is rotatably connected to the driving shaft 303, and the slide plate 401 is threadedly connected to the second screw rod 403. The threads at both ends of the second screw rod 403 are in opposite directions. The second screw rod 403 can simultaneously drive the mounting rod 402 to disengage from the engagement with the cleaning brush 305, further improving the replacement efficiency. The positioning block 304 is fixedly connected to a magnetic block 404, and the cleaning brush 305 is fixedly connected to an iron block 405, which is adsorbed on the magnetic block 404. When replacing the cleaning brush 305, it is plugged into the positioning block 304. At the same time, the magnetic block 404 will adsorb the iron block 405, which is convenient for positioning and preliminary fixation, thereby improving the convenience of replacing the cleaning brush 305.

[0040] Specifically, such as Figure 1 、 Figure 3 、 Figure 4 、 Figure 5、 Figure 6 、 Figure 7 、 Figure 9 and Figure 10 As shown, two mounting plates 501 are fixedly connected to the cooling machine body 1, and a plurality of fans 502 are installed on the mounting plate 501. Two connecting shafts 503 are rotatably connected to the mounting plate 501, and an air guide plate 504 is fixedly connected to the connecting shaft 503. After the air guide plate 504 rotates, the blowing area can be accurately adjusted according to the glass of different sizes to prevent the cooling wind from covering the invalid area outside the glass, thereby reducing unnecessary energy consumption of the fan 502 and reducing the load of the refrigeration system caused by cooling excessive air, effectively avoiding energy waste. A driving gear 505 is fixedly connected to the connecting shaft 503, and a rack 507 is meshed with the driving gear 505. A guide rail 506 is fixedly connected to the cooling machine body 1, and the rack 507 is slidably connected to the guide rail 506. A connecting rod 508 is fixedly connected between the two racks 507. The adjusting assembly 6 includes an adjusting rod 601 fixedly connected to two of the racks 507 and The pull rod 602 is slidably connected to the adjusting rod 601, and the adjusting rod 601 is slidably connected to the cooling machine body 1. The adjusting rod 601 is fixedly connected to a guide shaft 603, and the pull rod 602 is slidably connected to the guide shaft 603. A limiting column 605 is fixedly connected to the pull rod 602, and a plurality of limiting holes 606 are provided on the cooling machine body 1. Two of the limiting columns 605 are respectively engaged with two of the limiting holes 606. When the adjusting rod 601 slides to the appropriate position, After positioning, release the pull rod 602, and the pull rod 602 will reset under the action of the spring 604, so that the limit column 605 and the limit hole 606 are re-engaged, which is convenient for fixing the rotated air guide plate 504 and improving its stability. A scale bar 607 is provided on the cooler body 1, and a fixed plate 608 is fixedly connected to the adjusting rod 601. The fixed plate 608 is slidably connected to the cooler body 1, and a spring 604 is fixedly connected between the pull rod 602 and the guide shaft 603.

[0041] Specifically, such as Figure 6 、 Figure 7 、 Figure 9 and Figure 10As shown, the dust collection assembly 7 includes a dust collection hood 701 fixedly connected between every two of the mounting seats 302 and a fixed rod 702 fixedly connected to the dust collection hood 701, a guide plate 703 is fixedly connected to the fixed rod 702, a dust collection pipe 704 is installed at the bottom of the dust collection hood 701, a mounting box 706 is fixedly connected to the cooling machine body 1, and a collection frame 707 is detachably connected to the mounting box 706. When the vacuum pump 710 is turned off, the dust adsorbed on the bottom of the filter 708 will fall to the collection frame 707 below, making it convenient for the operator to extract the collection frame 707 for centralized processing. A filter 708 is installed in the mounting box 706 through a frame. The filter 708 plays an intercepting role, preventing dust from entering the vacuum pump 710 from the suction pipe 709, ensuring its normal operation. Through the cooperation of the vacuum pump 710 and the filter 708 and other components, efficient dust collection is achieved to prevent dust from floating and polluting the environment. A hose 705 is installed on the suction pipe 704, and the other end of the hose 705 is installed on the installation box 706. A vacuum pump 710 is installed in the cooling machine body 1, and the suction port of the vacuum pump 710 is installed with an suction pipe 709, and the other end of the suction pipe 709 is installed on the installation box 706. The suction pipe 709 is connected to the top of the filter 708, and the hose 705 is connected to the bottom of the filter 708.

[0042] When the present invention is in use, during the glass conveying process, the circulation pump 210 can be started, and the circulation pump 210 will suck the cooling medium in the liquid storage tank 209 through the conveying pipe, and then convey the cooling medium to the connecting pipe 207 through the conveying pipe at its outlet. Subsequently, the cooling medium passes through the connecting pipe 207, the elbow 206 and the rotary joint 205 in sequence and enters the installation shaft 201. The cooling medium in the installation shaft 201 will flow through the through hole 204 into the space between the spiral blade 202 and the conveying roller 203. The heat absorbed by the conveying roller 203 will be taken away by the cooling medium, thereby achieving rapid heat dissipation and avoiding a large amount of heat accumulation on the conveying roller 203 and affecting the cooling effect on the glass. The spiral blade 202 02 can slow down the flow speed of the cooling medium, prolong its contact time with the conveying roller 203, and further improve the heat exchange efficiency. Since the end of the installation shaft 201 is connected to the elbow 206 through the rotary joint 205, it will not affect the rotation of the installation shaft 201. The cooling medium flows out from the rotary joint 205 at the other end of the installation shaft 201 and enters the elbow 206 and the connecting pipe 207. The cooling medium in the connecting pipe 207 on the other side enters the heat exchanger 208 through the conveying pipe. The heat exchanger 208 will take away the heat in the cooling medium. After that, the cooling medium flows back to the liquid storage tank 209 from the outlet of the heat exchanger 208. This cycle of cooling ensures that the conveying roller 203 is continuously cooled.

[0043] When it is necessary to adjust the blowing range according to the size of the glass, the pull rod 602 can be pulled, and the pull rod 602 will slide along the guide shaft 603. The setting of the guide shaft 603 makes the sliding of the pull rod 602 more stable. At the same time, the spring 604 contracts. When the pull rod 602 slides, it will drive the limit column 605 to disengage from the engagement state with the limit hole 606. At this time, the adjustment rod 601 can be slid up and down, and the adjustment rod 601 drives the fixed plate 608 to slide. The fixed plate 608 makes the sliding of the adjustment rod 601 more stable. At the same time, the sliding of the adjustment rod 601 will drive the rack 507 to move, and the rack 507 slides along the guide rail 506. The guide rail 506 makes the movement of the rack 507 more stable. When the rack 507 moves, it will rotate the driving gear 505. The rotation of the driving gear 505 drives the connecting shaft 503 to rotate, and the rotation of the connecting shaft 503 drives the wind deflector 5 04 rotation, after the air guide plate 504 rotates, it can accurately adjust the blowing area according to the glass of different sizes, avoid the cooling air covering the invalid area outside the glass, reduce the unnecessary energy consumption of the fan 502, and also reduce the load of the refrigeration system caused by cooling excessive air, effectively avoiding energy waste. After the blowing range adjustment is completed, the fan 502 is started to dissipate heat for the conveyed glass. During the sliding of the adjusting rod 601, the sliding distance of the rack 507 can be observed according to the scale bar 607, so as to know the rotation angle of the driving gear 505, thereby improving the flexibility of adjustment. When the adjusting rod 601 slides to the appropriate position, the pull rod 602 is released, and the pull rod 602 will be reset under the action of the spring 604, so that the limiting column 605 and the limiting hole 606 are re-engaged, which is convenient for fixing the rotated air guide plate 504 and improving its stability.

[0044] Before conveying the glass, the first driving member 311 can be started (the first driving member 311 is preferably a motor), and the motor output shaft rotates to drive the adjusting shaft 307 to rotate, and the adjusting shaft 307 then drives the second bevel gear 310 to rotate. When the second bevel gear 310 rotates, the first bevel gear 306 engaged therewith is driven to rotate, and the first bevel gear 306 drives the driving shaft 303 to rotate, and the driving shaft 303 drives the positioning block 304 to rotate, and the positioning block 304 drives the cleaning brush 305 to rotate, and the rotating cleaning brush 305 cooperates with the rotating conveying Roller 203 is used to clean dust and impurities on the surface of conveying roller 203. Cleaning with cleaning brush 305 can prevent dust and impurities from adhering to the surface of conveying roller 203 and affecting the heat dissipation effect, and can also prevent hard dust particles from scratching the glass during the glass conveying process, thereby improving the processing quality of the glass. At the same time, the second driving member 313 (the second driving member 313 is preferably a motor) can be started, and the motor output shaft rotates to drive the first screw rod 312 to rotate, and the first screw rod 312 drives the mounting seat 302 to slide toward each other along the guide rod 301. The setting of the guide rod 301 ensures the smooth sliding of the mounting seat 302. The position of the cleaning brush 305 can be adjusted by the driving shaft 303. During this process, the second bevel gear 310 moves through the connecting seat 309, and it will slide with the adjusting shaft 307 and the guide bar 308, so that the rotation of the adjusting shaft 307 can still drive the second bevel gear 310 to rotate. When the cleaning brush 305 needs to be replaced, an inner hexagonal wrench can be used to insert the hexagonal slot on the second screw rod 403, and the second screw rod 403 can be rotated. 03 will threadably drive the two slides 401 to slide toward each other, and the slide 401 drives the mounting rod 402 to disengage from the engagement with the cleaning brush 305. At this time, the cleaning brush 305 can be disassembled. When replacing the cleaning brush 305, it is plugged into the positioning block 304. At the same time, the magnetic block 404 will absorb the iron block 405, which is convenient for positioning and preliminary fixation, thereby improving the convenience of replacing the cleaning brush 305. Moreover, the second screw rod 403 can simultaneously drive the mounting rod 402 to disengage from the engagement with the cleaning brush 305, further improving the replacement efficiency.

[0045] During cleaning, the vacuum pump 710 is started. Under the suction force of the vacuum pump 710, the dust is sucked into the dust suction pipe 704 through the dust hood 701, and then enters the installation box 706 through the hose 705, and is finally adsorbed at the bottom of the filter 708. The filter 708 acts as an interception to prevent dust from entering the vacuum pump 710 from the suction pipe 709, ensuring its normal operation. Through the cooperation of the vacuum pump 710 and the filter 708 and other components, efficient dust collection is achieved to prevent dust from drifting and polluting the environment. When the vacuum pump 710 is turned off, the dust adsorbed at the bottom of the filter 708 will fall to the collection box 707 below, making it easy for the operator to pull out the collection box 707 for centralized processing. In addition, when the mounting base 302 drives the dust hood 701 to move, it simultaneously drives the fixed rod 702 and the guide plate 703 to move. By flexibly adjusting the position of the guide plate 703, the position of the glass during the cooling and conveying process can be accurately corrected, effectively avoiding deviation and ensuring smooth and smooth glass conveying.

[0046] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0047] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. An energy-saving cooling device for glass processing, characterized in that: The invention comprises a cooling machine body (1), a cooling component (2) installed on the cooling machine body (1), a cleaning component (3) installed on the cooling machine body (1), a cooling component (5) installed on the cooling machine body (1), an adjusting component (6) installed on the cooling component (5) and the cooling machine body (1), and a dust collecting component (7) installed between the cleaning component (3) and the cooling machine body (1); The cooling component (2) comprises a plurality of mounting shafts (201) rotatably connected to the cooling machine body (1) and spiral blades (202) mounted on the mounting shafts (201), a conveying roller (203) being fixedly connected to the spiral blades (202), a through hole (204) being provided on the mounting shaft (201), a rotary joint (205) being mounted on both ends of the mounting shaft (201), the rotary joint (205) being mounted on the cooling machine body (1), a curved pipe (206) being mounted on the rotary joint (205), a connecting pipe (207) being fixedly connected between the plurality of curved pipes (206) on the same side, a heat exchanger (208) being mounted on the cooling machine body (1), a liquid storage tank (209) being fixedly connected to the cooling machine body (1), a circulating pump (210) being mounted on the cooling machine body (1), and the cooling component (5) comprising a mounting plate (501) and a fan (502); The connecting pipe (207) is connected to the inlet of the heat exchanger (208) through a delivery pipe, the outlet of the heat exchanger (208) is connected to the inlet of the liquid storage tank (209) through a delivery pipe, the outlet of the liquid storage tank (209) is connected to the inlet of the circulation pump (210) through a delivery pipe, and the outlet of the circulation pump (210) is connected to another connecting pipe (207) through a delivery pipe.

2. The energy-saving glass processing cooling device according to claim 1, characterized in that: The cleaning assembly (3) comprises two guide rods (301) fixedly connected to the cooling machine body (1) and two mounting seats (302) slidably connected to the guide rods (301), a driving shaft (303) is rotatably connected between each two mounting seats (302), a positioning block (304) is fixedly connected to the driving shaft (303), and a cleaning brush (305) is detachably connected to the positioning block (304).

3. The energy-saving glass processing cooling device according to claim 2, characterized in that: A first bevel gear (306) is mounted on the driving shaft (303), wherein two of the mounting seats (302) are fixedly connected to a connecting seat (309), a second bevel gear (310) is rotatably connected to the connecting seat (309), and the second bevel gear (310) is meshed with the first bevel gear (306). An adjusting shaft (307) is rotatably connected to the cooling machine body (1), a guide bar (308) is fixedly connected to the adjusting shaft (307), and the second bevel gear (310) is slidably connected to the guide bar (308) and the adjusting shaft (307). A first screw rod (312) is rotatably connected to the cooling machine body (1), wherein the two mounting seats (302) are threadedly connected to the first screw rod (312), and the threads at both ends of the first screw rod (312) are in opposite directions.

4. The energy-saving glass processing cooling device according to claim 3, characterized in that: A first driving member (311) is installed on the cooling machine body (1), and the adjusting shaft (307) is driven by the first driving member (311). A second driving member (313) is installed on the cooling machine body (1), and the first screw rod (312) is driven by the second driving member (313).

5. The energy-saving glass processing cooling device according to claim 4, characterized in that: The cleaning brush (305) is installed through an installation assembly (4), and the installation assembly (4) includes two slides (401) slidably connected to the driving shaft (303) and two installation rods (402) fixedly connected to the slides (401), the installation rods (402) are slidably connected to the positioning blocks (304), the installation rods (402) and the cleaning brush (305) are engaged, a second screw rod (403) is rotatably connected to the driving shaft (303), the slides (401) are threadedly connected to the second screw rod (403), and the threads at both ends of the second screw rod (403) are in opposite directions.

6. The energy-saving glass processing cooling device according to claim 5, characterized in that: The positioning block (304) is fixedly connected to a magnetic block (404), the cleaning brush (305) is fixedly connected to an iron block (405), and the iron block (405) is adsorbed on the magnetic block (404).

7. The energy-saving glass processing cooling device according to claim 1, characterized in that: Two mounting plates (501) are fixedly connected to the cooling machine body (1), a plurality of fans (502) are installed on the mounting plates (501), two connecting shafts (503) are rotatably connected to the mounting plates (501), an air guide plate (504) is fixedly connected to the connecting shafts (503), a driving gear (505) is fixedly connected to the connecting shafts (503), a rack (507) is meshed with the driving gear (505), a guide rail (506) is fixedly connected to the cooling machine body (1), the rack (507) is slidably connected to the guide rail (506), and a connecting rod (508) is fixedly connected between the two racks (507).

8. The energy-saving glass processing cooling device according to claim 7, characterized in that: The adjusting assembly (6) includes an adjusting rod (601) fixedly connected to two of the racks (507) and a pull rod (602) slidably connected to the adjusting rod (601), the adjusting rod (601) is slidably connected to the cooling machine body (1), a guide shaft (603) is fixedly connected to the adjusting rod (601), the pull rod (602) is slidably connected to the guide shaft (603), and a limiting column (605) is fixedly connected to the pull rod (602). ), a plurality of limiting holes (606) are provided on the cooling machine body (1), two limiting columns (605) are respectively engaged with two of the limiting holes (606), a scale bar (607) is provided on the cooling machine body (1), a fixing plate (608) is fixedly connected to the adjusting rod (601), the fixing plate (608) is slidably connected to the cooling machine body (1), and a spring (604) is fixedly connected between the pull rod (602) and the guide shaft (603).

9. The energy-saving glass processing cooling device according to claim 2, characterized in that: The dust collection assembly (7) comprises a dust collection hood (701) fixedly connected between every two mounting seats (302) and a fixed rod (702) fixedly connected to the dust collection hood (701), a guide plate (703) fixedly connected to the fixed rod (702), a dust collection pipe (704) installed at the bottom of the dust collection hood (701), a mounting box (706) fixedly connected to the cooling machine body (1), a collection frame (707) detachably connected to the mounting box (706), a filter (708) installed in the mounting box (706) through a frame, a hose (705) installed on the dust collection pipe (704), and the other end of the hose (705) installed on the mounting box (706).

10. The energy-saving glass processing cooling device according to claim 9, characterized in that: A vacuum pump (710) is installed in the cooling machine body (1), and an air intake pipe (709) is installed at the air intake port of the vacuum pump (710). The other end of the air intake pipe (709) is installed on the installation box (706). The air intake pipe (709) is connected to the top of the filter (708), and the hose (705) is connected to the bottom of the filter (708).