Automatic inflation equipment for hollow glass pressing production

By designing the air pipe docking device and the locking limit device, the deviation and leakage problems of the hollow glass inflation equipment during air hole docking are solved, an efficient and accurate inflation process is achieved, and the wear of dust on the glass is reduced through the cleaning device.

CN120720535APending Publication Date: 2025-09-30中建材耀华(内江)节能玻璃有限公司
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Patent Information

Application Number
CN202510931518.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-07
Publication Date
2025-09-30

AI Technical Summary

Technical Problem

Existing automatic inflation equipment is prone to misalignment when inflating the air holes of insulating glass, resulting in air leakage or low inflation efficiency.

Method used

An automatic inflation device for the production of insulating glass pressing has been designed, including an air pipe docking device, a locking limit device and a cleaning device. By combining the inner sliding air pipe, a push spring, an annular plastic pad, the locking limit device and the cleaning device, accurate air hole docking is ensured to prevent air leakage. The cleaning device removes dust and impurities, thereby improving the inflation efficiency.

Benefits of technology

It effectively prevents deviation and air leakage during air hole docking, improves inflation efficiency, and reduces wear and tear of insulating glass and dust friction loss.

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Abstract

The invention relates to the technical field of hollow glass press-fit production, and particularly discloses automatic inflation equipment for hollow glass press-fit production. Comprising an inner sliding air pipe, and a circular sleeve is arranged outside the inner sliding air pipe; and the pushing and pressing spring is used for applying downward pressure to the inner sliding air pipe and is in timely inserted connection with the air hole of the hollow glass, and the part, close to the top, of the outer side of the inner sliding air pipe is fixedly connected with a limiting clamping block. The inner sliding air pipe is quickly inserted into the air hole of the hollow glass under the influence of the pushing force of the pushing spring and is butted with the air hole, and the hollow glass is clamped and is difficult to move, so that the problems of air leakage or low inflation efficiency caused by deviation when the existing automatic inflation equipment is butted with the air hole of the hollow glass are solved; the annular plastic pad blocks the air holes formed in the hollow glass when moving downwards along with the inner sliding air pipe, and the phenomenon that air leakage occurs during inflation due to the fact that the air holes in the hollow glass are different in hole diameter during machining is prevented.
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Description

Technical Field

[0001] The invention relates to the technical field of insulating glass pressing production, in particular to automatic inflation equipment for insulating glass pressing production. Background Art

[0002] Insulating glass is a high-performance sound-insulating and heat-insulating glass made by bonding two (or three) sheets of glass to an aluminum alloy frame containing a desiccant using a high-strength, high-airtightness composite adhesive. Insulating glass is superior to ordinary double-glazed glass in many aspects and has therefore been recognized worldwide. Its main materials are glass, warm-edge spacers, corner plugs, butyl rubber, polysulfide adhesive, and desiccant. With the development of the glass deep processing industry and people's deepening understanding of the performance of insulating glass, the application of insulating glass is constantly expanding, and people's quality requirements for insulating glass are also becoming higher and higher. Insulating glass inflation refers to filling the air cavity of insulating glass with inert gas to improve the performance of insulating glass. Automatic inflation equipment is usually used to perform batch inflation processing on insulating glass. However, the existing automatic inflation equipment may have misalignment deviation when inflating the air holes of the insulating glass, resulting in inflation leakage or low efficiency. Therefore, we have proposed an automatic inflation equipment for the pressing production of insulating glass. Summary of the Invention

[0003] In order to solve the above technical problems, the present invention provides an automatic inflation device for the production of insulating glass by pressing, comprising: A square shell, wherein a high-pressure air pump is provided at the bottom of the square shell; A side connecting plate, wherein an electric push rod is provided on the top of the side connecting plate; A square ventilation shell is provided, which is a square shell with a cavity inside. An arc-shaped hose is provided on one side of the square ventilation shell; A gas storage tank, wherein the bottom of the gas storage tank is provided with a side long plate; A tracheal docking device, which is used for plug-in docking with the vents of insulating glass; A locking and limiting device, which is used to slide and limit the insulating glass inserted into the square housing; A cleaning device, which is used to clean dust particles and impurities that the insulating glass is about to come into contact with; The bottom of the square shell is fixedly connected with a bottom column; The bottom of the square shell is fixedly connected to the top of the high-pressure air pump, one side of the side connecting plate is fixedly connected to one side of the square shell, the top of the side connecting plate is fixedly connected to the bottom of the electric push rod, the drive shaft of the electric push rod is fixedly connected to the bottom of the ventilation square shell, one end of the arc hose is connected to one side of the ventilation square shell, the end of the arc hose away from the ventilation square shell is connected to the top of the gas storage tank, the bottom of the gas storage tank is fixedly connected to the top of the side long plate, the top of the trachea docking device is connected to the bottom of the ventilation square shell, one side of the locking limit device is fixedly connected to one side of the square shell, the top of the locking limit device is fixedly connected to the bottom of the side long plate, and the bottom of the cleaning device is fixedly connected to the inner wall of the square shell; Wherein, the trachea docking device comprises: An inner sliding air tube, wherein a circular sleeve is provided on the outer side of the inner sliding air tube; A push spring is used to apply downward pressure to the inner sliding air tube and connect it to the air hole of the insulating glass in time. Under the influence of the pushing force of the push spring, the inner sliding air tube is quickly inserted into the air hole of the insulating glass and docked with it, thereby locking the insulating glass and making it difficult to move. This prevents the existing automatic inflation equipment from deviating from the docking with the air hole of the insulating glass, resulting in air leakage or low inflation efficiency; The circular sleeve is sleeved on the outside of the inner sliding air tube and is slidably connected to the inner sliding air tube. The top of the inner sliding air tube is fixedly connected to the bottom of the push spring. The top of the push spring is fixedly connected to the inner wall of the circular sleeve. The top of the circular sleeve is connected to the bottom of the ventilated square shell; A square insertion hole is provided on one side of the square shell, a first long sliding hole is provided on a side of the square shell away from the square insertion hole, a top circular hole is provided on the top of the square shell, a bottom circular hole is provided on the bottom of the square shell, and second long sliding holes are provided on both sides of the square shell adjacent to the first long sliding hole; The inner wall of the first long sliding hole is slidably connected to one side of the locking and limiting device, and the inner wall of the second long sliding hole is slidably connected to one side of the cleaning device; There are three square jacks, and the three square jacks are distributed on one side of the square shell. There are three bottom-opening circular holes, and the three bottom-opening circular holes are distributed at the bottom of the square shell where they connect with the high-pressure air pump. The outer portion of the inner sliding air tube is fixedly connected to a limit block near the top, and a limit block is provided at the outer portion of the inner sliding air tube near the top to limit the position of the inner sliding air tube when resisting, so as to prevent the inner sliding air tube from being affected by the thrust of the push spring and moving downward above the top open circular hole and being difficult to reset when it disengages from the inner area of ​​the circular sleeve. The outer portion of the inner sliding air tube is fixedly connected to an annular plastic pad near the bottom, and the annular plastic pad fills the air holes opened on the insulating glass as the inner sliding air tube moves downward, so as to prevent the air holes on the insulating glass from having different aperture sizes during processing and causing air leakage during inflation. An annular plastic pad is provided at the outer portion of the inner sliding air tube near the bottom to resist and limit the upward movement of the inner sliding air tube, so as to prevent the inner sliding air tube from moving downward to contact the top of the insulating glass and being continuously moved into the circular sleeve by the thrust until it is completely located inside the circular sleeve and affects its use.

[0004] The rotatable circular plastic sleeve, the ball bearings and the built-in thin rod are arranged on both sides of the insulating glass to contact and limit the glass, thereby preventing the insulating glass from deviating when inserted into the square shell and moving, thereby making it difficult for the air hole on the top of the insulating glass to be aligned with the top open circular hole. The top of the first electric slide is fixedly connected to the bottom wall of the first electric slide, and the top of the second electric slide is fixedly connected to the bottom wall of the first electric slide.

[0005] The bottom of the long scraper is fixedly connected with an inner oblique scraper, and the inner oblique scraper pushes the bottom brush to move together with the dust cleaned by the long scraper when the long scraper moves and moves toward the raising plate. The bottom of the long scraper is fixedly connected to a bottom brush, and the bottom brush rubs and cleans the bottom of the inner wall of the square shell as the long scraper moves, preventing the dust particles and impurities cleaned by the long scraper for a long time from accumulating between the multiple raised plates on the inner wall of the square shell and being difficult to handle. The bottom of the raised plate is fixedly connected to the inner wall of the square shell, and a plurality of docking circular holes are provided, and the plurality of docking circular holes are respectively aligned with the bottom open circular holes. The outer side of the long scraper is slidably connected to the inner wall of the first long sliding hole, and the side of the second electric slide rail close to the long scraper is fixedly connected to one side of the square shell, and a plurality of inner inclined scrapers are respectively distributed on both sides of the raised plate and symmetrically arranged.

[0006] The present invention provides an automatic inflation device for the production of insulating glass by pressing. It has the following beneficial effects: 1. In the automatic inflation equipment for the hollow glass pressing production, the inner sliding air tube is quickly inserted into the air hole of the hollow glass under the pushing force of the pushing spring and docks with it, and the hollow glass is stuck and difficult to move, so as to prevent the existing automatic inflation equipment from deviating and leaking or low inflation efficiency when docking with the air hole of the hollow glass. The first electric slide rail drives the symmetrically arranged built-in sliders to drive the concave slides to perform contact-type locking and limiting from both sides of the hollow glass, so as to prevent the hollow glass from deviating when moving when inserted into the square shell, resulting in the air hole at the top of the hollow glass being difficult to align with the top-opened circular hole. The second electric slide rail drives the long scraper to move to scrape and clean the top of the raising plate, so as to prevent excessive dust particles and impurities from adhering to the surface where the top of the raising plate contacts the bottom of the hollow glass, causing friction loss to the hollow glass.

[0007] 2. The automatic inflation equipment for the production of insulating glass by pressing is provided with an air pipe docking device. The inner sliding air pipe is quickly inserted into the air hole of the insulating glass under the pushing force of the pushing spring and docks with it, and the insulating glass is stuck and difficult to move, thereby preventing the existing automatic inflation equipment from deviating from the air hole of the insulating glass and causing air leakage or low inflation efficiency. The annular plastic pad fills the air hole on the insulating glass as the inner sliding air pipe moves downward, thereby preventing the air hole on the insulating glass from having different apertures during processing and causing inflation. To prevent air leakage, a limit block is set at the top of the outer side of the inner sliding air tube to limit the position of the inner sliding air tube, so as to prevent the inner sliding air tube from being affected by the thrust of the push spring and moving downward above the top open circular hole and being separated from the inner area of ​​the circular sleeve and being difficult to reset. An annular plastic pad is set at the bottom of the outer side of the inner sliding air tube to limit the upward movement of the inner sliding air tube, so as to prevent the inner sliding air tube from moving downward to contact the top of the insulating glass and continuously moving into the circular sleeve due to the thrust until it is completely inside the circular sleeve and affecting its use.

[0008] 3. The automatic inflation equipment for the hollow glass pressing production is provided with a locking limit device, which drives the symmetrically arranged built-in sliders through the first electric slide rail to drive the concave slide rail to perform contact locking and limiting from both sides of the hollow glass, thereby preventing the hollow glass from deviating when inserted into the square shell and moving, resulting in the air hole on the top of the hollow glass being difficult to align with the top open circular hole. A circular plastic sleeve of flexible material is sleeved on the outside of the ball to flexibly contact the side of the hollow glass to prevent the ball bearings that apply a certain pressure to the side of the hollow glass from easily causing damage to the hollow glass and affecting its use. A rotatable circular plastic sleeve, ball bearings and built-in thin rods are provided on both sides of the hollow glass to contact with the ball bearings on the side of the hollow glass to reduce friction, thereby preventing the side of the hollow glass and the circular plastic sleeve from sliding relative to each other under pressure and causing continuous friction, which may easily damage the hollow glass. A supporting long plate is provided at the bottom of the concave slide rail and is limitedly connected to the T-shaped slide groove through the T-shaped slider, thereby preventing the concave slide rail from tilting downward when it is long and sliding, thereby affecting the driving effect of the first electric slide rail.

[0009] The inner oblique scraper pushes the dust cleaned by the bottom brush to move together with the long scraper as the long scraper moves and accumulates in the direction of the raising plate so as to be discharged from the square insertion hole, preventing the cleaned dust particles and impurities from continuously accumulating between the raising plates to a certain height and then contacting the bottom of the insulating glass. BRIEF DESCRIPTION OF THE DRAWINGS

[0010] Figure 1 This is a schematic diagram of the bottom structure of the automatic inflation device of the present invention; Figure 2 This is a schematic diagram of the internal structure of the automatic inflation device of the present invention; Figure 3 This is a schematic side sectional view of the square housing in the automatic inflation device of the present invention; Figure 4 This is a schematic diagram of the bottom structure of the trachea docking device of the present invention; Figure 5 This is a schematic diagram of the internal structure of the trachea docking device of the present invention; Figure 6 This is a structural diagram of the locking and limiting device of the present invention; Figure 7 This is a schematic diagram of the partial structure of the locking and limiting device of the present invention; Figure 8 It is a schematic diagram of the partial structure of the cleaning device of the present invention; Figure 9 It is a schematic structural diagram of the cleaning device of the present invention.

[0011] Figure: 1, square housing; 2, high-pressure air pump; 3, side connecting plate; 4, electric push rod; 5, ventilation square housing; 6, curved hose; 7, air tank; 8, side long plate; 9, air pipe docking device; 10, locking and limiting device; 11, cleaning device; 12, bottom column; 13, square jack; 14, first long sliding hole; 15, top circular hole; 16, bottom circular hole; 17, second long sliding hole; 901, inner sliding air pipe; 902, circular sleeve; 903, push spring; 904, limiting block; 905, annular plastic pad; 1001, built-in slider; 1002, first electric slide rail; 1003, concave slide plate; 1004, built-in thin rod; 1005, ball bearing; 1006, round plastic sleeve; 1007, supporting long board; 1008, T-shaped slide groove; 1009, T-shaped slider; 1101, heightening board; 1102, docking round hole; 1103, long scraper rod; 1104, second electric slide rail; 1105, inclined scraper block; 1106, inner inclined scraper; 1107, bottom brush. DETAILED DESCRIPTION

[0012] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0013] See also Figure 1-Figure 5 The present invention provides an automatic inflation device for the production of insulating glass by pressing, comprising: A square shell 1, at the bottom of which a high-pressure air pump 2 is provided; A side connecting plate 3, the top of which is provided with an electric push rod 4; The ventilation square shell 5 is configured as a square shell 1 with a cavity inside, and an arc-shaped hose 6 is provided on one side of the ventilation square shell 5; A gas storage tank 7, the bottom of which is provided with a side long plate 8; The air pipe docking device 9 is used for plug-in docking with the air hole of the insulating glass; A locking and limiting device 10 is used to slide and limit the insulating glass inserted into the square housing 1; A cleaning device 11 is used to clean dust particles and impurities that are about to come into contact with the insulating glass; The bottom of the square housing 1 is fixedly connected with a bottom column 12; The bottom of the square shell 1 is fixedly connected to the top of the high-pressure air pump 2, one side of the side connecting plate 3 is fixedly connected to one side of the square shell 1, the top of the side connecting plate 3 is fixedly connected to the bottom of the electric push rod 4, the drive shaft of the electric push rod 4 is fixedly connected to the bottom of the ventilation square shell 5, one end of the arc hose 6 is connected to one side of the ventilation square shell 5, the end of the arc hose 6 away from the ventilation square shell 5 is connected to the top of the gas storage tank 7, the bottom of the gas storage tank 7 is fixedly connected to the top of the side long plate 8, the top of the trachea docking device 9 is connected to the bottom of the ventilation square shell 5, one side of the clamping limit device 10 is fixedly connected to one side of the square shell 1, the top of the clamping limit device 10 is fixedly connected to the bottom of the side long plate 8, and the bottom of the cleaning device 11 is fixedly connected to the inner wall of the square shell 1; Wherein, the trachea docking device 9 includes: An inner sliding air tube 901, on the outer side of which a circular sleeve 902 is provided; A push spring 903, which is used to apply downward pressure to the inner sliding air tube 901 and timely plug it into the air hole of the insulating glass; The circular sleeve 902 is sleeved on the outside of the inner sliding air tube 901 and is slidably connected to the inner sliding air tube 901. The top of the inner sliding air tube 901 is fixedly connected to the bottom of the push spring 903, and the top of the push spring 903 is fixedly connected to the inner wall of the circular sleeve 902. The top of the circular sleeve 902 is connected to the bottom of the ventilating square shell 5; A square insertion hole 13 is formed on one side of the square housing 1, a first long sliding hole 14 is formed on the side of the square housing 1 away from the square insertion hole 13, a top circular hole 15 is formed on the top of the square housing 1, a bottom circular hole 16 is formed on the bottom of the square housing 1, and second long sliding holes 17 are formed on both sides of the square housing 1 adjacent to the first long sliding hole 14; The inner wall of the first long sliding hole 14 is slidably connected to one side of the locking limit device 10, and the inner wall of the second long sliding hole 17 is slidably connected to one side of the cleaning device 11; There are three square jacks 13, and the three square jacks 13 are distributed on one side of the square housing 1. There are three bottom-opening circular holes 16, and the three bottom-opening circular holes 16 are distributed at the bottom of the square housing 1 where it connects with the high-pressure air pump 2. The outer side of the inner sliding air tube 901 near the top is fixedly connected to a limiting block 904, and the outer side of the inner sliding air tube 901 near the bottom is fixedly connected to a ring-shaped plastic pad 905. When in use, the insulating glass is inserted into the cleaning device 11 inside the square shell 1 from the square socket 13. After the insulating glass is inserted into the square shell 1, the two sides of the insulating glass are rolled and contact-engaged and limited by the locking limit device 10. When half of the insulating glass enters the interior of the square shell 1, the ventilation square shell 5 can be driven by the electric push rod 4 to drive the bottom air tube docking device 9 to move down to the top open circular hole 15. At this time, the insulating glass is continued to be pushed into the interior of the square shell 1. When the air hole opened on the insulating glass is docked with the air tube docking device 9 at the top, the air tube docking The device 9 will be quickly inserted into the air hole and insert-limit the insulating glass. At this time, if the insulating glass is difficult to push, the high-pressure air pump 2 can be started to pass through the bottom circular hole 16 and the cleaning device 11 to exhaust the air hole opened at the bottom of the insulating glass. When the gas in the insulating glass is exhausted, the inert gas in the gas storage tank 7 will enter the ventilation square shell 5 from the arc hose 6 and then pass through the trachea docking device 9 to enter the inside of the insulating glass. When the insulating glass is filled with inert gas, the ventilation square shell 5 is driven by the electric push rod 4 to drive the trachea docking device 9 to move up to a position away from the insulating glass. At this time, the insulating glass can be pulled out of the square shell 1. After the insulating glass is pulled out of the square shell 1, the surface that contacts the top and the bottom of the insulating glass can be cleaned by the cleaning device 11 to prevent accumulation. Dust causes wear and tear on the insulating glass. When half of the insulating glass is inserted into the square shell 1, the electric push rod 4 drives the ventilation square shell 5 to drive the circular sleeve 902 and the inner sliding air tube 901 at the bottom to move downward together. When the circular sleeve 902 moves to the inner wall of the top-opened circular hole 15, the bottom of the inner sliding air tube 901 contacts the top of the insulating glass and stops. At the same time, the pushing spring 903 in the circular sleeve 902 constantly applies downward pressure to the inner sliding air tube 901, and continues to push the insulating glass inward. When the air hole opened on the top of the insulating glass moves, it gradually approaches the position of the inner sliding air tube 901. When the air tube opened on the top of the insulating glass moves below the inner sliding air tube 901, the inner sliding air tube 901 is quickly inserted into the air hole of the insulating glass under the pushing force of the pushing spring 903. When the inner sliding air tube 901 moves downward, it drives the outer annular plastic pad 905 to move downward together. As the inner sliding air tube 901 moves downward, the annular plastic pad 905 fills the air holes on the insulating glass. When the inner sliding air tube 901 moves downward, it drives the outer limiting block 904 to move downward together. After the limiting block 904 moves down to a certain distance, it will contact the bottom of the inner wall of the circular sleeve 902 to resist and limit the inner sliding air tube 901. By setting the limiting block 904 near the top of the outer side of the inner sliding air tube 901, the inner sliding air tube 901 is limited when it is blocked. By setting the annular plastic pad 905 near the bottom of the outer side of the inner sliding air tube 901, the upward movement of the inner sliding air tube 901 is resisted and limited.

[0014] See also Figures 1-9 The present invention provides an automatic inflation device for the production of insulating glass pressing: a locking limit device 10 includes a built-in slider 1001, one side of the built-in slider 1001 is slidably connected to a first electric slide rail 1002, and the side of the built-in slider 1001 away from the first electric slide rail 1002 is fixedly connected to a concave slide plate 1003, the inner wall of the concave slide plate 1003 is rotatably connected to a built-in thin rod 1004 through a rotating bolt, the outer side of the built-in thin rod 1004 is sleeved and fixedly connected with a ball 1005, the outer side of the ball 1005 is sleeved and fixedly connected with a round plastic sleeve 1006, the bottom of the concave slide plate 1003 is slidably connected to a supporting long plate 1007, and the top of the supporting long plate 1007 is provided with a T T-shaped slide groove 1008, the inner wall of the T-shaped slide groove 1008 is slidably connected with a T-shaped slider 1009, the outer side of the built-in slider 1001 is slidably connected to the inner wall of the first long slide hole 14, one side of the first electric slide rail 1002 is fixedly connected to one side of the square shell 1, the top of the first electric slide rail 1002 is fixedly connected to the bottom of the side long plate 8, and the side of the supporting long plate 1007 close to the first electric slide rail 1002 is fixedly connected to the inner wall of the square shell 1, a plurality of built-in sliders 1001 are provided, and the plurality of built-in sliders 1001 are symmetrically arranged on the inner wall of the first long slide hole 14, a plurality of built-in thin rods 1004 are provided, and the plurality of built-in thin rods 1004 are distributed on the inner wall of the concave slide plate 1003; The cleaning device 11 includes a raising plate 1101, a docking circular hole 1102 is opened on the top of the raising plate 1101, a long scraper 1103 is slidably connected to the top of the raising plate 1101, and a second electric slide rail 1104 is slidably connected to both sides of the long scraper 1103, and a bevel scraper block 1105 is fixedly connected to one side of the long scraper 1103, and an inner oblique scraper 1106 is fixedly connected to the bottom of the long scraper 1103, and a bottom brush 1107 is fixedly connected to the bottom of the long scraper 1103. The bottom of the raising plate 1101 is fixedly connected to the inner wall of the square shell 1, and a plurality of docking circular holes 1102 are provided, and the plurality of docking circular holes 1102 are respectively aligned with the bottom opening circular holes 16, and the outer side of the long scraper 1103 is slidably connected to the inner wall of the first long sliding hole 14. Then, one side of the second electric slide rail 1104 close to the long scraper rod 1103 is fixedly connected to one side of the square shell 1, and a plurality of inner inclined scrapers 1106 are provided, and the plurality of inner inclined scrapers 1106 are respectively distributed on both sides of the raising plate 1101 and symmetrically arranged. When in use, after the insulating glass is inserted into the square socket 13 and placed on the cleaning device 11, the first electric slide rail 1002 drives the symmetrically arranged built-in sliders 1001 to drive the concave slide plates 1003 to perform contact-type locking and limiting from both sides of the insulating glass. When the concave slide plate 1003 moves toward the insulating glass, it drives the inner built-in thin rod 1004, the ball 1005 and the circular plastic sleeve 1006 to move together. The circular plastic sleeve 1006 flexibly contacts the side of the insulating glass as the inner sliding concave plate moves. By arranging a circular plastic sleeve 1006 made of a flexible material on the outside of the ball 1005 to flexibly contact the side of the insulating glass, the two sides of the insulating glass are limited by the circular plastic sleeve 1006 and continue to move, which drives the circular plastic sleeves 1006, balls 1005 and built-in thin rods 1004 on both sides to rotate together. By arranging rotatable circular plastic sleeves 1006, balls 1005 and built-in thin rods 1004 on both sides of the insulating glass to contact the balls 1005 on the side of the insulating glass to reduce friction, when the concave slide 1003 moves toward the insulating glass, it drives the T-shaped slider 1009 at the bottom to move together in the T-shaped slide groove 1008. By arranging a supporting long plate 1007 at the bottom of the concave slide 1003 and connecting with the T-shaped slider 1009 through the T-shaped slider The groove 1008 is limited and connected, and the insulating glass is inserted into the square shell 1 from the square socket 13 and placed on the raising plate 1101. When the high-pressure air pump 2 is pumping air, the insulating glass on the top of the raising plate 1101 is pumped out through the docking circular hole 1102. After the insulating glass is pulled out of the square shell 1, the long scraper 1103 is driven to move by the second electric slide rail 1104 to scrape and clean the top of the raising plate 1101. When the long scraper 1103 moves, it drives the inclined scraper block 1105 on one side and the inner inclined scraper 1106 at the bottom and the bottom brush 1107 to move together. By arranging the inclined scraper block 1105 on one side of the long scraper 1103, the long scraper 1103 first covers and seals the docking circular hole 1102 when it approaches the docking circular hole 1102.As the long scraper 1103 moves, the bottom brush 1107 cleans the bottom of the inner wall of the square housing 1 by friction. As the long scraper 1103 moves, the inner inclined scraper 1106 pushes the dust cleaned by the bottom brush 1107 to move together and accumulate toward the heightened plate 1101 so that it can be discharged from the square socket 13.

[0015] When the present invention is in operation, the insulating glass is inserted into the cleaning device 11 inside the square shell 1 from the square insertion hole 13. After the insulating glass is inserted into the square shell 1, the two sides of the insulating glass are subjected to rolling contact clamping and limiting by the locking limit device 10. When half of the insulating glass enters the interior of the square shell 1, the ventilation square shell 5 can be driven by the electric push rod 4 to drive the bottom trachea docking device 9 to move down to the top open circular hole 15. At this time, the insulating glass is continued to be pushed into the interior of the square shell 1. When the air hole opened on the insulating glass is docked with the air hole docking device 9 at the top, the air hole docking device 9 will be quickly inserted into the air hole and the insulating glass will be inserted into the position. At this time, the insulating glass is difficult to push, and the high-pressure air pump 2 can be started to pass through The circular hole 16 at the bottom passes through the cleaning device 11 to evacuate the air holes opened at the bottom of the insulating glass. When the gas in the insulating glass is evacuated, the inert gas in the gas storage tank 7 will enter the ventilation square shell 5 from the arc hose 6 and pass through the trachea docking device 9 to enter the interior of the insulating glass. When the insulating glass is filled with inert gas, the ventilation square shell 5 is driven by the electric push rod 4 to drive the trachea docking device 9 to move up to a position away from the insulating glass. At this time, the insulating glass can be pulled out of the square shell 1. After the insulating glass is pulled out of the square shell 1, the surface in contact with the bottom of the insulating glass can be cleaned by the cleaning device 11 to prevent dust accumulation from causing wear to the insulating glass. When half of the area of ​​the insulating glass is inserted into the square shell 1, it is driven by the electric push rod 4. The vent square shell 5 drives the circular sleeve 902 at the bottom and the inner sliding air tube 901 to move downward together, until the circular sleeve 902 moves to the inner wall of the top-opened circular hole 15, and the bottom of the inner sliding air tube 901 contacts the top of the insulating glass and stops. At the same time, the pushing spring 903 in the circular sleeve 902 exerts downward pressure on the inner sliding air tube 901 at all times, and continues to push the insulating glass inward. When the air hole opened on the top of the insulating glass moves gradually approaches the position of the inner sliding air tube 901. When the air tube opened on the top of the insulating glass moves below the inner sliding air tube 901, the inner sliding air tube 901 is quickly inserted into the air hole of the insulating glass by the pushing force of the pushing spring 903 and docks with it, making the insulating glass stuck and difficult to move. When the inner sliding air tube 901 moves downward, it drives the outer The annular plastic pad 905 moves down together, and the annular plastic pad 905 fills the air hole opened on the insulating glass as the inner sliding air tube 901 moves down. When the inner sliding air tube 901 moves down, it drives the outer limiting block 904 to move down together. After the limiting block 904 moves down to a certain distance, it will contact the bottom of the inner wall of the circular sleeve 902 to resist and limit the inner sliding air tube 901. By setting the limiting block 904 near the top of the outer side of the inner sliding air tube 901 to limit the inner sliding air tube 901 when resisting, and by setting the annular plastic pad 905 near the bottom of the outer side of the inner sliding air tube 901 to resist and limit the distance the inner sliding air tube 901 moves up, the insulating glass is inserted from the square socket 13 and placed on the cleaning device 11.The first electric slide rail 1002 drives the symmetrically arranged built-in sliders 1001 to drive the concave slides 1003 to perform contact-type locking and limiting from both sides of the insulating glass. When the concave slide 1003 moves toward the insulating glass, it drives the built-in thin rod 1004, the ball 1005 and the circular plastic sleeve 1006 on the inner side to move together. The circular plastic sleeve 1006 flexibly contacts the side of the insulating glass as the inner sliding concave plate moves. The circular plastic sleeve 1006 of flexible material is sleeved on the outer side of the ball 1005 to flexibly contact the side of the insulating glass. Both sides of the insulating glass are covered with circular plastic sleeves. When the shaping sleeve 1006 is engaged and limited and continues to move, it drives the circular plastic sleeves 1006, balls 1005 and built-in thin rods 1004 on both sides to rotate together. By arranging rotatable circular plastic sleeves 1006, balls 1005 and built-in thin rods 1004 on both sides of the insulating glass to contact with the balls 1005 on the side of the insulating glass to reduce friction, when the concave slide 1003 moves toward the insulating glass, it drives the T-shaped slider 1009 at the bottom to move together in the T-shaped slide groove 1008. By arranging a supporting long plate 1000 at the bottom of the concave slide 1003 7 is limitedly connected with the T-shaped slide 1009 and the T-shaped slide groove 1008. The insulating glass is inserted into the square shell 1 from the square socket 13 and placed on the raising plate 1101. When the high-pressure air pump 2 is pumping air, the insulating glass on the top of the raising plate 1101 is pumped out through the docking circular hole 1102. After the insulating glass is pulled out from the square shell 1, the long scraper 1103 is driven to move by the second electric slide rail 1104 to scrape and clean the top of the raising plate 1101. When the long scraper 1103 moves, it drives the inclined scraper 1105 on one side and the bottom The inner inclined scraper 1106 moves together with the bottom brush 1107. By setting the inclined scraper block 1105 on the side of the long scraper rod 1103, the long scraper rod 1103 first covers and blocks the docking hole 1102 when it approaches. The bottom brush 1107 rubs and cleans the bottom of the inner wall of the square shell 1 as the long scraper rod 1103 moves. The inner inclined scraper 1106 pushes the dust cleaned by the bottom brush 1107 as the long scraper rod 1103 moves, and the dust is accumulated toward the heightened plate 1101 so that it can be discharged from the square socket 13.

[0016] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts 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 shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.

Claims

1. An automatic inflation device for the production of insulating glass pressing, characterized in that: include: A square shell (1), wherein a high-pressure air pump (2) is provided at the bottom of the square shell (1); A side connecting plate (3), wherein an electric push rod (4) is provided on the top of the side connecting plate (3); A ventilating square shell (5), the ventilating square shell (5) being configured as a square shell (1) having a cavity therein, and an arc-shaped hose (6) being provided on one side of the ventilating square shell (5); An air storage tank (7), wherein a side long plate (8) is provided at the bottom of the air storage tank (7); A tracheal butt joint device (9), the tracheal butt joint device (9) being used for plug-in butt joint with the pores of the insulating glass; A snap-fit ​​limiting device (10), the snap-fit ​​limiting device (10) being used to slide and limit the insulating glass inserted into the square housing (1); A cleaning device (11), the cleaning device (11) is used to clean dust particles and impurities that are about to come into contact with the insulating glass; The bottom of the square housing (1) is fixedly connected to a bottom column (12); The bottom of the square shell (1) is fixedly connected to the top of the high-pressure air pump (2), one side of the side connecting plate (3) is fixedly connected to one side of the square shell (1), the top of the side connecting plate (3) is fixedly connected to the bottom of the electric push rod (4), the drive shaft of the electric push rod (4) is fixedly connected to the bottom of the ventilation square shell (5), one end of the arc hose (6) is connected to one side of the ventilation square shell (5), and the end of the arc hose (6) away from the ventilation square shell (5) is fixedly connected to the bottom of the ventilation square shell (5). The top of the gas storage tank (7) is connected to the top of the side long plate (8), the bottom of the gas storage tank (7) is fixedly connected to the top of the side long plate (8), the top of the air pipe docking device (9) is connected to the bottom of the ventilation square shell (5), one side of the locking limit device (10) is fixedly connected to one side of the square shell (1), the top of the locking limit device (10) is fixedly connected to the bottom of the side long plate (8), and the bottom of the cleaning device (11) is fixedly connected to the inner wall of the square shell (1); Wherein, the trachea docking device (9) comprises: An inner sliding air tube (901), wherein a circular sleeve (902) is provided on the outer side of the inner sliding air tube (901); A push spring (903) is used to apply downward pressure to the inner sliding air tube (901) and timely connect it with the air hole of the insulating glass; The circular sleeve (902) is sleeved on the outside of the inner sliding air tube (901) and is slidably connected to the inner sliding air tube (901), the top of the inner sliding air tube (901) is fixedly connected to the bottom of the push spring (903), and the top of the push spring (903) is fixedly connected to the inner wall of the circular sleeve (902); The top of the circular sleeve (902) is connected to the bottom of the ventilating square shell (5).

2. The automatic inflation equipment for insulating glass pressing production according to claim 1, characterized in that: A square insertion hole (13) is provided on one side of the square shell (1), a first long sliding hole (14) is provided on a side of the square shell (1) away from the square insertion hole (13), a top-opening circular hole (15) is provided on the top of the square shell (1), a bottom-opening circular hole (16) is provided on the bottom of the square shell (1), and second long sliding holes (17) are provided on both sides of the square shell (1) adjacent to the first long sliding hole (14).

3. The automatic inflation device for insulating glass pressing production according to claim 2, characterized in that: The inner wall of the first long sliding hole (14) is slidably connected to one side of the locking limit device (10), and the inner wall of the second long sliding hole (17) is slidably connected to one side of the cleaning device (11).

4. The automatic inflation device for insulating glass pressing production according to claim 2, characterized in that: There are three square jacks (13) provided, and the three square jacks (13) are distributed on one side of the square shell (1); there are three bottom-opening circular holes (16) provided, and the three bottom-opening circular holes (16) are distributed at the bottom of the square shell (1) where they connect with the high-pressure air pump (2).

5. The automatic inflation equipment for insulating glass pressing production according to claim 1, characterized in that: A position of the outer side of the inner sliding air tube (901) near the top is fixedly connected to a limiting clamping block (904), and a position of the outer side of the inner sliding air tube (901) near the bottom is fixedly connected to an annular plastic pad (905).

6. The automatic inflation equipment for insulating glass pressing production according to claim 1, characterized in that: The engaging limiting device (10) comprises a built-in slider (1001), one side of the built-in slider (1001) is slidably connected to a first electric slide rail (1002), a side of the built-in slider (1001) away from the first electric slide rail (1002) is fixedly connected to a concave slide plate (1003), the inner wall of the concave slide plate (1003) is rotatably connected to a built-in thin rod (1004) through a rotating bolt, a ball (1005) is sleeved and fixedly connected to the outer side of the built-in thin rod (1004), a circular plastic sleeve (1006) is sleeved and fixedly connected to the outer side of the ball (1005), the bottom of the concave slide plate (1003) is slidably connected to a supporting long board (1007), a T-shaped slot (1008) is provided on the top of the supporting long board (1007), and the inner wall of the T-shaped slot (1008) is slidably connected to a T-shaped slider (1009).

7. The automatic inflation device for insulating glass pressing production according to claim 6, characterized in that: The outer side of the built-in slider (1001) is slidably connected to the inner wall of the first long sliding hole (14), one side of the first electric slide rail (1002) is fixedly connected to one side of the square shell (1), the top of the first electric slide rail (1002) is fixedly connected to the bottom of the side long plate (8), and the side of the supporting long plate (1007) close to the first electric slide rail (1002) is fixedly connected to the inner wall of the square shell (1).

8. The automatic inflation device for insulating glass pressing production according to claim 6, characterized in that: There are multiple built-in sliders (1001), and the multiple built-in sliders (1001) are symmetrically arranged on the inner wall of the first long sliding hole (14). There are multiple built-in thin rods (1004), and the multiple built-in thin rods (1004) are distributed on the inner wall of the concave sliding plate (1003).

9. The automatic inflation equipment for insulating glass pressing production according to claim 1, characterized in that: The cleaning device (11) comprises a heightened plate (1101), a docking circular hole (1102) is provided on the top of the heightened plate (1101), a long scraper (1103) is slidably connected to the top of the heightened plate (1101), a second electric slide rail (1104) is slidably connected to both sides of the long scraper (1103), a bevel scraper block (1105) is fixedly connected to one side of the long scraper (1103), an inner bevel scraper (1106) is fixedly connected to the bottom of the long scraper (1103), and a bottom brush (1107) is fixedly connected to the bottom of the long scraper (1103).

10. The automatic inflation equipment for insulating glass pressing production according to claim 9, characterized in that: The bottom of the heightening plate (1101) is fixedly connected to the inner wall of the square shell (1), a plurality of the docking circular holes (1102) are provided, and the plurality of docking circular holes (1102) are respectively aligned with the bottom opening circular holes (16), the outer side of the long scraper rod (1103) is slidably connected to the inner wall of the first long sliding hole (14), the side of the second electric slide rail (1104) close to the long scraper rod (1103) is fixedly connected to one side of the square shell (1), a plurality of the inner inclined scrapers (1106) are provided, and the plurality of the inner inclined scrapers (1106) are respectively distributed on both sides of the heightening plate (1101) and symmetrically arranged.