Conveying device for hollow glass production
By designing a material transport device for production of hollow glass, using supporting boxes, transportation wheels, side plates, rolling balls, adsorption troughs, hydraulic rods and suction pumps, vertical transportation and bonding of glass is achieved, solving the problem of long and labor intensity of manpower erecting glass in the existing technology, and improving production efficiency.
Patent Information
- Application Number
- CN202421656884.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-12
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-07-12
AI Technical Summary
The existing transport racks for hollow glass production can only transport glass horizontally, resulting in the need of manpower to erect the glass during the bonding process, which takes a long time and has a high labor intensity, affecting production efficiency.
A material transport device for the production of hollow glass is designed, including transport parts and feed parts. The vertical transportation and bonding of glass is realized through components such as supporting boxes, transport wheels, side plates, rolling balls, adsorption grooves, hydraulic rods and suction pumps.
It realizes automatic transportation of glass to the bonding station in a vertical state, avoids manpower handling, reduces time and labor intensity, and improves the production efficiency of insulated glass.
Smart Images

Figure CN222860551U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of glass transportation equipment, and in particular to a material transportation device for producing hollow glass. Background Art
[0002] Coated glass is also called reflective glass. Coated glass is coated with one or more layers of metal, alloy or metal compound film on the surface of the glass to change the optical properties of the glass to meet certain specific requirements. Coated glass can be divided into the following categories according to the different characteristics of the product: heat reflective glass, low-emissivity glass, conductive film glass, etc. General insulating glass is made of two or three pieces of glass bonded by adhesive. During production, one piece of glass needs to be erected vertically first, and then the adhesive is applied on the bonding surface, and then another piece of glass is erected and transported to the glass coated with adhesive, and then bonded to form glass.
[0003] The existing announcement number is CN205023491U, and the name is a transport rack for vacuum glass production, which includes a fixed frame, a fixed arm and a movable arm. A roller is pivotally connected to the lower end of the fixed frame, the fixed arm is fixed on the fixed frame, and the movable arm is hinged on the fixed frame. A base plate is provided at the lower end of the fixed arm and the lower end of the movable arm, and a plurality of suction cups are provided on the base plate to solve the low efficiency of existing manual handling.
[0004] With respect to the above-mentioned related technologies, the inventors found that the above-mentioned use of the suction cup on the base plate in the fixed frame to horizontally adsorb the glass plate, and then push the fixed frame to move and transport the glass, but in the insulating glass bonding production process, in order to cooperate with the work station operation on the production line, the insulating glass needs to be placed vertically and tilted for transportation, but the above-mentioned fixed frame can only transport the glass horizontally. When bonding the glass, manpower is still required to erect the glass for bonding and transportation. Manual handling is time-consuming and labor-intensive, which affects the production efficiency of the insulating glass. Utility Model Content
[0005] In order to overcome the situation that the fixed frame can only transport glass horizontally, and manpower is still needed to erect the glass for bonding and transportation when bonding the glass. Manual transportation is time-consuming and labor-intensive, which affects the production efficiency of insulating glass. The present application provides a material transport device for insulating glass production.
[0006] The present application provides a material transport device for producing insulating glass using the following technical solution:
[0007] A material transport device for hollow glass production comprises a transport member and a feeding member, the transport member comprises a support box, a side plate is vertically fixed to one side of the top surface of the support box, a transport wheel is horizontally rotatably connected to the lower side of the vertical end surface of the side plate of the support box, and a plurality of transport wheels are arranged in the horizontal direction, a plurality of rolling balls are evenly fixed to the vertical end surface of the side plate of the support box, and an adsorption groove is horizontally penetrated through the vertical end surface of the side plate of the support box, a first hole frame is vertically fixed to the top surface of the support box, and a first rod frame is horizontally slidably inserted on the first hole frame, a first hydraulic rod is horizontally fixed on the first hole frame, and the output end of the first hydraulic rod is fixed on the first rod frame, a suction box is fixed on the first rod frame, and the suction box is horizontally moved and inserted into the adsorption groove, a suction pump is connected to the suction box, and a plurality of suction cups are penetrated and fixed on the vertical end surface of the suction box on one side close to the adsorption groove, and the feeding member is arranged on one side of the support box.
[0008] By adopting the above technical scheme, the glass plate is vertically set on the transport wheel of the support box during use, and the vertical glass is transported to the side plate of the support box under the support and guidance of the transport wheel. When the glass moves on the side plate, the rolling balls on the side plate avoid friction between the glass and the side plate. In order to keep the glass in a vertical state on the side plate, the first hydraulic rod on the first hole frame is started to extend, and the suction box is pushed to be inserted into the adsorption groove of the side plate of the support box, so that the suction cup on the suction box is close to the side of the glass, and the suction pump is started to generate negative pressure at the suction box and the suction cup to adsorb the glass on the suction box, thereby keeping the glass in a vertical state. When pushing the glass for bonding at a later stage, the suction pump is turned off to push the glass to the bonding station under the support of the transport wheel, so that the glass is transported to the bonding station in a vertical state, and there is no need for manpower to erect the glass for bonding and transportation, which avoids the time-consuming and labor-intensive manual handling, improves the production efficiency of insulating glass, and improves the transportation production efficiency of insulating glass.
[0009] Optionally, the feeding member includes a second rod frame, the second rod frame is vertically fixed on the side end surface of the support box, and a second hole frame is vertically slidably connected to the second rod frame.
[0010] By adopting the above technical solution, the second hole frame slides vertically on the second rod frame, which is convenient for sliding and lifting the glass to the feeding station at a later time.
[0011] Optionally, a screw rod is vertically rotatably connected to the top of the second rod bracket, and a motor is vertically fixed to the top of the second rod bracket, and an output end of the motor is fixed to the end of the screw rod.
[0012] By adopting the above technical solution, the starting motor drives the screw to rotate on the second rod frame, which is used to drive the two-hole frame to slide vertically on the second rod frame to lift the glass to the height of the feeding station.
[0013] Optionally, a screw barrel is vertically fixed on the second hole frame, and the screw barrel is threadably connected to the screw rod.
[0014] By adopting the above technical solution, the screw rod and the screw barrel on the second hole frame are threaded through, so that the vertical thread drives the glass to be lifted to the height of the feeding station.
[0015] Optionally, a sliding frame is horizontally fixed on the second hole frame, and a second hydraulic rod is horizontally fixed on one end of the sliding frame.
[0016] By adopting the above technical solution, the sliding frame on the second hole frame is used for horizontal sliding, so that the horizontally placed glass is slid to a suitable transportation position in sequence.
[0017] Optionally, a frame is horizontally arranged on the sliding frame, and the frame is horizontally slidably installed on the sliding frame, and rollers are connected to the interior of the frame for horizontal and transverse rotation.
[0018] By adopting the above technical solution, the frame slides horizontally on the sliding frame, thereby moving laterally, sliding the horizontally placed glass to the appropriate transportation position in turn, and at the same time, the glass placed vertically on the roller is used to support the glass to move laterally and be transported to the transport member.
[0019] Optionally, a plurality of baffle frames are fixed laterally and vertically on the top surface of the frame, and a plurality of arc-shaped bars are fixed laterally and vertically in the plurality of baffle frames.
[0020] By adopting the above technical solution, gaps between multiple baffle frames are fixed horizontally and vertically on the frame for vertically inserting and placing glass plates. At the same time, the arc strips support the glass plates to reduce friction between the glass plates and the arc strips, making it easier to push the glass for movement later.
[0021] Optionally, a guide frame is horizontally fixed on the end surface of one side of the frame away from the support box, and a guide block is horizontally slidably installed in the guide frame, a perforated plate is vertically fixed on the guide block, and a push plate is horizontally slidably installed in the perforated plate.
[0022] By adopting the above technical solution, when pushing the glass, the sliding guide block slides horizontally in the guide frame, and the push plate in the horizontal sliding hole plate is inserted into the gap between the baffle frames to push the glass into the transport member.
[0023] In summary, the present application includes at least one of the following beneficial technical effects: during use, the glass plate is vertically set on the transport wheels of the support box, and the vertical glass is transported to the side panels of the support box under the support and guidance of the transport wheels. When the glass moves on the side panels, the rolling balls on the side panels avoid friction between the glass and the side panels. In order to keep the glass in a vertical state on the side panels, the first hydraulic rod on the first hole frame is started to extend, and the suction box is pushed to be inserted into the adsorption groove of the side panel of the support box, so that the suction cup on the suction box is close to the side of the glass, and the suction pump is started to generate negative pressure at the suction box and the suction cup to adsorb the glass on the suction box, thereby keeping the glass in a vertical state. When pushing the glass for bonding later, the suction pump is turned off to push the glass to the bonding station under the support of the transport wheels, so that the glass is transported to the bonding station in a vertical state, and no manpower is required to erect the glass for bonding and transportation, thereby avoiding the problem of time-consuming and labor-intensive manual handling, which affects the production efficiency of insulating glass, and improves the transportation production efficiency of insulating glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.
[0025] Figure 2 It is a schematic diagram of the structure of the embodiment of the present application in an exploded state;
[0026] Figure 3 is a schematic diagram of the structure of the transport unit in the embodiment of the present application in a disassembled state;
[0027] Figure 4 is a schematic diagram of the structure of the guide member in the embodiment of the present application in a disassembled state;
[0028] Figure 5 It is a schematic diagram of the structure of the framework of the embodiment of the present application in a decomposed state.
[0029] Explanation of the reference numerals: 1. transport member; 11. support box; 12. transport wheel; 13. rolling ball; 14. adsorption groove; 15. first hole frame; 16. first hydraulic rod; 17. first rod frame; 18. suction box; 181. suction cup; 19. suction pump; 2. feeding member; 21. second rod frame; 22. second hole frame; 221. screw barrel; 23. motor; 24. screw; 25. sliding frame; 26. second hydraulic rod; 27. frame; 271. roller; 28. stop frame; 281. arc strip; 29. guide frame; 291. guide block; 292. orifice plate; 293. push plate. DETAILED DESCRIPTION
[0030] The present application is further described in detail below in conjunction with the accompanying drawings.
[0031] The present application embodiment discloses a material transport device for producing hollow glass. Figure 1 , Figure 2 and Figure 3 A material transport device for hollow glass production includes a transport member 1 and a feeding member 2. The transport member 1 includes a support box 11. A side plate is vertically fixed to one side of the top surface of the support box 11. A transport wheel 12 is horizontally rotatably connected to the lower side of the vertical end surface of the side plate of the support box 11. The transport wheel 12 is provided with a plurality of rolling balls 13 evenly fixed on the vertical end surface of the side plate of the support box 11. An adsorption groove 14 is horizontally penetrated on the vertical end surface of the side plate of the support box 11. A first hole 13 is vertically fixed on the top surface of the support box 11. A first hole frame 15 is provided, and a first rod frame 17 is horizontally slidably inserted on the first hole frame 15, a first hydraulic rod 16 is horizontally fixed on the first hole frame 15, and the output end of the first hydraulic rod 16 is fixed on the first rod frame 17, a suction box 18 is fixed on the first rod frame 17, and the suction box 18 is horizontally movable and inserted into the adsorption groove 14, a suction pump 19 is connected to the suction box 18, and a plurality of suction cups 181 are fixed on the vertical end face of the suction box 18 close to the adsorption groove 14, and the feeding piece 2 is arranged on one side of the support box 11.
[0032] By adopting the above technical solution, the glass plate is vertically set on the transport wheel 12 of the support box 11 during use. The vertical glass is transported to the side plate of the support box 11 under the support and guidance of the transport wheel 12. When the glass moves on the side plate, the rolling ball 13 on the side plate avoids the friction between the glass and the side plate. In order to keep the glass in a vertical state on the side plate, the first hydraulic rod 16 on the first hole frame 15 is started to extend, and the suction box 18 is pushed to be inserted into the adsorption groove 14 of the side plate of the support box 11, so that the suction cup 181 on the suction box 18 is close to the glass. On the side, start the suction pump 19 to generate negative pressure at the suction box 18 and the suction cup 181, and absorb the glass on the suction box 18, so as to keep the glass in a vertical state. When pushing the glass for bonding later, turn off the suction pump 19 to push the glass to the bonding station under the support of the transport wheel 12, so that the glass is transported to the bonding station in a vertical state, and there is no need for manpower to erect the glass for bonding and transportation, which avoids the problem of time-consuming and labor-intensive manual handling, which affects the production efficiency of insulating glass, and improves the transportation production efficiency of insulating glass.
[0033] Reference Figure 4The feeding member 2 includes a second rod frame 21, which is vertically fixed on the side end surface of the support box 11, and a second hole frame 22 is vertically slidably connected to the second rod frame 21. The second hole frame 22 slides vertically on the second rod frame 21, which is convenient for sliding and lifting the glass to the feeding station in the later stage. The top of the second rod frame 21 is vertically rotatably connected with a screw rod 24, and a motor 23 is vertically fixed on the top of the second rod frame 21, and the output end of the motor 23 is fixed to the end of the screw rod 24. The motor 23 is started to drive the screw rod 24 to rotate on the second rod frame 21, which is used to drive the second hole frame 22 to slide vertically on the second rod frame 21, and lift the glass to the height of the feeding station. A screw barrel 221 is vertically fixed on the second hole frame 22, and the screw barrel 221 is threadedly connected with the screw rod 24. The screw rod 24 is threadedly penetrated with the screw barrel 221 on the second hole frame 22, so that the vertical thread drives the lifting glass to the height of the feeding station.
[0034] Reference Figure 4 and Figure 5 A sliding frame 25 is horizontally fixed on the second hole frame 22, and a second hydraulic rod 26 is horizontally fixed at one end of the sliding frame 25. The sliding frame 25 on the second hole frame 22 is used for horizontal sliding, and the horizontally placed glass is slid to a suitable transportation position in sequence. A frame 27 is horizontally arranged on the sliding frame 25, and the frame 27 is horizontally slidably installed on the sliding frame 25, and the interior of the frame 27 is horizontally connected to a roller 271 for horizontal rotation. The frame 27 slides horizontally on the sliding frame 25, thereby moving horizontally, and the horizontally placed glass is slid to a suitable transportation position in sequence, and at the same time, the glass vertically placed on the roller 271 is used to support the glass to move horizontally and be transported to the transport member 1.
[0035] Reference Figure 5 , multiple baffles 28 are fixed horizontally and vertically on the top surface of the frame 27, and multiple arc strips 281 are fixed horizontally and vertically in the multiple baffles 28. The gaps between the multiple baffles 28 fixed horizontally and vertically on the frame 27 are used to vertically insert and place the glass plate. At the same time, the arc strips 281 support the glass plate to reduce the friction between the glass plate and the arc strips 281, which is convenient for pushing the glass to move later. A guide frame 29 is fixed horizontally on the end surface of the frame 27 away from the support box 11, and a guide block 291 is installed horizontally and slidably in the guide frame 29. A perforated plate 292 is fixed vertically on the guide block 291, and a push plate 293 is installed horizontally and slidably in the perforated plate 292. When pushing the glass, the sliding guide block 291 slides horizontally in the guide frame 29, and the push plate 293 in the horizontally sliding perforated plate 292 is inserted into the gap between the baffles 28 to push the glass into the transport member 1.
[0036] The implementation principle of a material transport device for producing hollow glass in an embodiment of the present application is as follows: during use, the glass plate is vertically set on the transport wheel 12 of the support box 11, and the vertical glass is transported to the side panel of the support box 11 under the support and guidance of the transport wheel 12. When the glass moves on the side panel, the rolling ball 13 on the side panel avoids the friction between the glass and the side panel. In order to keep the glass in a vertical state on the side panel, the first hydraulic rod 16 on the first hole frame 15 is started to extend, and the suction box 18 is pushed to be inserted into the adsorption groove 14 of the side panel of the support box 11, so that the suction cup 181 on the suction box 18 is close to the side of the glass, and the suction pump 19 is started to generate negative pressure at the suction box 18 and the suction cup 181 to adsorb the glass on the suction box 18, thereby keeping the glass in a vertical state. When the glass is pushed for bonding later, the suction pump 19 is turned off to push the glass to the bonding station under the support of the transport wheel 12.
[0037] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. A material transport device for producing insulating glass, characterized in that: The invention comprises a transport member (1) and a feeding member (2), wherein the transport member (1) comprises a support box (11), a side plate is vertically fixed on one side of the top surface of the support box (11), a transport wheel (12) is horizontally rotatably connected to the lower side of the vertical end surface of the side plate of the support box (11), and a plurality of transport wheels (12) are arranged in the horizontal direction, a plurality of rolling balls (13) are evenly fixed on the vertical end surface of the side plate of the support box (11), and an adsorption groove (14) is horizontally penetrated on the vertical end surface of the side plate of the support box (11), and a first hole frame (15) is vertically fixed on the top surface of the support box (11), and the first hole frame A first rod frame (17) is horizontally slidably inserted on the first hole frame (15), a first hydraulic rod (16) is horizontally fixed on the first hole frame (15), and the output end of the first hydraulic rod (16) is fixed on the first rod frame (17), a suction box (18) is fixed on the first rod frame (17), and the suction box (18) is horizontally movable and inserted into the adsorption groove (14), a suction pump (19) is connected to the suction box (18), and a plurality of suction cups (181) are fixed through the vertical end surface of the suction box (18) on one side close to the adsorption groove (14), and the feeding member (2) is arranged on one side of the support box (11).
2. A material transport device for producing hollow glass according to claim 1, characterized in that: The feeding member (2) comprises a second rod frame (21), the second rod frame (21) is vertically fixed on the side end surface of the support box (11), and a second hole frame (22) is vertically slidably connected to the second rod frame (21).
3. A material transport device for producing hollow glass according to claim 2, characterized in that: The top of the second rod frame (21) is vertically rotatably connected to a screw rod (24), and a motor (23) is vertically fixed to the top of the second rod frame (21), and the output end of the motor (23) is fixed to the end of the screw rod (24).
4. A material transport device for producing insulating glass according to claim 3, characterized in that: A screw barrel (221) is vertically fixed on the second hole frame (22), and the screw barrel (221) is threadably connected to the screw rod (24).
5. A material transport device for producing insulating glass according to claim 4, characterized in that: A sliding frame (25) is horizontally fixed on the second hole frame (22), and a second hydraulic rod (26) is horizontally fixed on one end of the sliding frame (25).
6. A material transport device for producing insulating glass according to claim 5, characterized in that: A frame (27) is horizontally arranged on the sliding frame (25), and the frame (27) is horizontally slidably mounted on the sliding frame (25), and a roller (271) is connected to the interior of the frame (27) for horizontal and horizontal rotation.
7. A material transport device for producing insulating glass according to claim 6, characterized in that: A plurality of baffle frames (28) are fixed laterally and vertically on the top surface of the frame (27), and a plurality of arc-shaped bars (281) are fixed laterally and vertically in the plurality of baffle frames (28).
8. The material transport device for producing insulating glass according to claim 7, characterized in that: A guide frame (29) is horizontally fixed on an end surface of one side of the frame (27) away from the support box (11), and a guide block (291) is horizontally slidably mounted in the guide frame (29), a perforated plate (292) is vertically fixed on the guide block (291), and a push plate (293) is horizontally slidably mounted in the perforated plate (292).
Citation Information
Patent Citations
Vacuum glass production is with transportation frame
CN205023491U