A conveying device for the preparation of self-priming float glass
By designing a self-priming float glass preparation conveyor device, the robotic arm module and detachable material extraction components can achieve simultaneous absorption and stacking of multiple glasses, solving the problems of low efficiency and high cost in the prior art, and achieving efficient glass palletization and conveying of efficient glass palletization.
Patent Information
- Application Number
- CN202510168272.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2045-02-17
AI Technical Summary
The existing conveyor for float glass preparation is inefficient when palletizing and conveying multiple glasses, and increasing the number of conveyor devices to increase efficiency will increase costs.
A self-priming float glass preparation conveyor device is designed, including a base plate, a conveying unit and a material collection unit. Using a robotic arm module and a detachable material collection component, a simultaneous absorption and stacking of multiple glasses are achieved through multiple adsorption components and communication components.
The efficiency of glass palletizing conveying is improved, the number of conveying devices is reduced, and the cost of glass palletizing is reduced.
Smart Images

Figure CN119637517B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass conveying, and particularly relates to a conveying device for self - suction type float glass preparation. Background Art
[0002] Float glass is a widely used flat glass manufacturing process; the main feature of the float glass preparation process is to form a uniform glass ribbon on the surface of molten metal tin, and utilize the action of gravity and surface tension to make the glass surface very flat and smooth.
[0003] The float glass process mainly includes steps such as raw material preparation, mixing and melting, float forming, annealing, cutting and processing, palletizing and blanking, etc. Among them, in the palletizing and blanking step, a conveying device with adsorption columns is usually used to adsorb and palletize multiple produced glasses. When the existing conveying device adsorbs and conveys glass, it can usually only adsorb a single piece of glass, resulting in low efficiency of palletizing and conveying multiple glasses. In order to improve the efficiency of palletizing and conveying in the prior art, the number of conveying devices is also increased, thus increasing the cost of glass palletizing and conveying. Summary of the Invention
[0004] Based on this, it is necessary to provide a conveying device for self - suction type float glass preparation, aiming to solve the problems generated when the existing conveying device palletizes and conveys glass.
[0005] In order to achieve the above - mentioned purpose, the present invention adopts the following technical solutions: A conveying device for self - suction type float glass preparation, comprising: a base plate, and a conveying unit and a material - taking unit are respectively installed at the upper end of the base plate.
[0006] The conveying unit includes two support frames symmetrically distributed front and back and installed at the upper end of the base plate. A plurality of evenly distributed conveying rollers are rotatably connected between the two support frames, and a partition member located below the plurality of conveying rollers is also connected between the support frames.
[0007] The material - taking unit includes a robotic arm module installed at the upper end of the base plate. A connecting frame is installed at the working end of the robotic arm module. Two guide rail components are symmetrically connected to the connecting frame. A plurality of evenly distributed material - taking components are connected between the two guide rail components, and adjacent two of the material - taking components are detachably connected.
[0008] The material - taking component includes a rectangular frame detachably connected between the two guide rail components. An adsorption assembly is installed in the middle of the rectangular frame. A communication component is connected to the right frame wall of the rectangular frame, and a sealing component is connected to the left frame wall of the rectangular frame.
[0009] A plurality of the rectangular frames are spliced with each other. During the splicing process, two adjacent rectangular frames approach each other, and a communication component on one rectangular frame is inserted and matched with a sealing component on the other rectangular frame. Two adsorption components in the middle of two adjacent rectangular frames are communicated through the mutually matched communication component and sealing component.
[0010] Preferably, the partition member includes a sliding frame arranged between the two support frames. Both the front and rear ends of the sliding frame are fixedly connected to the two support frames through connecting plates. An electric slider is slidably connected in the sliding frame. The right end of the electric slider is fixedly connected to a top block slidably connected to the sliding frame through a traction rope. An inclined surface is arranged at the upper left corner of the top block, and a plurality of uniformly distributed partition components are arranged above the sliding frame.
[0011] Preferably, the partition component includes a limiting frame arranged above the sliding frame. Both the front and rear ends of the limiting frame are fixedly connected to the two support frames through support bars. A partition board with rectangular protrusions at both front and rear ends is slidably connected in the limiting frame. The two rectangular protrusions of the partition board are located above the limiting frame, and the partition board is located between two adjacent conveying rollers.
[0012] Preferably, the guide rail component includes a plurality of guide rail frames evenly distributed from left to right and closely attached to each other. A splicing board is arranged at the closely attached part of two adjacent guide rail frames. A plurality of connecting bolts are threadedly connected to the splicing board, and the plurality of connecting bolts are respectively threadedly connected to two adjacent guide rail frames.
[0013] Preferably, the material taking component further includes a clamping component connected to the left frame wall of the rectangular frame. A clamping groove is opened at the upper end of the right frame wall of the rectangular frame. Plugging rods are symmetrically installed at the left end of the rectangular frame, and plugging counterbores are symmetrically opened at the right end of the rectangular frame.
[0014] Preferably, the adsorption component includes a cross plate installed in the middle of the rectangular frame. An air inlet cavity is opened inside the cross plate, and a plurality of adsorption heads communicated with the air inlet cavity are installed at the lower end of the cross plate.
[0015] Preferably, the communication component includes a first cylindrical hole opened on the right frame wall of the rectangular frame. The first cylindrical hole is communicated with the air inlet cavity. A communication pipe is installed in the first cylindrical hole. A sealing ring is sleeved on the outer surface of the communication pipe, and a pushing plate is installed at the end of the communication pipe away from the air inlet cavity.
[0016] Preferably, the sealing assembly includes a second cylindrical hole formed in the left frame wall of the rectangular frame. The second cylindrical hole communicates with the intake cavity. An intake ring is installed in the second cylindrical hole. A strip-shaped plate is installed in the middle of the intake ring. A T-shaped cylindrical rod is slidably and penetratingly connected through the middle of the strip-shaped plate. A connecting spring is installed between the vertical section of the T-shaped cylindrical rod and the strip-shaped plate. A sealing ball that closely abuts against the right end of the intake ring is installed at the right end of the T-shaped cylindrical rod.
[0017] Preferably, the clamping assembly includes a rectangular plate installed at the upper end of the left frame wall of the rectangular frame. A moving rod with a T-shaped structure is slidably and penetratingly connected through the middle of the rectangular plate. A reset spring is installed between the right end of the moving rod and the rectangular plate. A sealing plate is rotatably connected to the left end of the moving rod.
[0018] Preferably, strip-shaped protrusions are integrally formed at both the front and rear ends of the rectangular frame. The strip-shaped protrusions are slidably engaged with the guide rail frame. The middle of the strip-shaped protrusions is connected to the guide rail frame through locking bolts.
[0019] In summary, the present invention includes the following beneficial technical effects: 1. The guide rail components and the material taking components adopted in the present invention can both be spliced according to actual requirements to meet the requirements of the number of palletizing and conveying, effectively improving the flexibility and applicability of the conveying device.
[0020] 2. The multiple material taking components adopted in the present invention cooperate with the conveying unit, and can palletize and convey multiple glasses simultaneously, thus effectively improving the efficiency of glass palletizing and conveying. And only one conveying device is needed to complete this step, effectively reducing the number of conveying devices used, and further reducing the cost of glass palletizing and conveying. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained according to the provided drawings without creative efforts.
[0022] Figure 1 Shows the first perspective three-dimensional structure diagram of the present invention.
[0023] Figure 2 Shows the front view of the present invention.
[0024] Figure 3 Shows the left view of the present invention.
[0025] Figure 4 Shows Figure 2 The cross-sectional view taken along A-A in
[0026] Figure 5 shows Figure 3 A cross-sectional view taken along B-B in
[0027] Figure 6 shows Figure 5 An enlarged view of the N region in
[0028] Figure 7 shows a schematic structural diagram of the conveying unit of the present invention with the conveying rollers removed.
[0029] Figure 8 shows a schematic structural diagram of the material taking component of the present invention.
[0030] Among them, the above-mentioned drawings include the following reference numerals: 1, base plate; 2, conveying unit; 21, support frame; 22, conveying roller; 23, partition member; 231, sliding frame; 232, electric slider; 233, top block; 234, partition assembly; 2341, limiting frame; 2342, partition board; 3, material taking unit; 31, robotic arm module; 32, connecting frame; 33, guide rail component; 331, guide rail frame; 332, splicing plate; 333, connecting bolt; 34, material taking component; 341, rectangular frame; 342, adsorption assembly; 3421, cross plate; 3422, intake cavity; 3423, adsorption head; 343, communication component; 3431, first cylindrical hole; 3432, communication pipe; 3433, pushing plate; 344, sealing component; 3441, second cylindrical hole; 3442, intake ring; 3443, strip plate; 3444, T-shaped cylindrical rod; 3445, connecting spring; 3446, sealing ball; 345, clamping component; 3451, rectangular plate; 3452, moving rod; 3453, return spring; 3454, sealing plate; 346, clamping groove; 347, inserting rod; 348, inserting counterbore. Detailed Embodiments
[0031] In order to make the above objects, features and advantages of the present invention more obvious and understandable, the following detailed description of the specific embodiments of the present invention will be made with reference to the accompanying drawings. Many specific details are set forth in the following description in order to fully understand the present invention. However, the present invention can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.
[0032] Refer to Figures 1-3 , a conveying device for self-priming float glass production, including a base plate 1, and a conveying unit 2 and a material taking unit 3 are respectively installed on the upper end of the base plate 1.
[0033] Refer to Figure 1 and Figure 5, the conveying unit 2 includes two support frames 21 symmetrically distributed front and back and installed at the upper end of the base plate 1, and a plurality of evenly distributed conveying rollers 22 are rotatably connected between the two support frames 21.
[0034] During specific operation, initially, the base plate 1 is fixed at the working position. The base plate 1 fixes a plurality of conveying rollers 22 at the rear end of the glass cutting area through two support frames 21, and then connects the plurality of conveying rollers 22 to an existing chain drive device. The glass prepared by the float process moves to the upper end of the conveying rollers 22 after passing through the cutting area.
[0035] Refer to Figure 1 、 Figure 2 and Figure 4 , the material taking unit 3 includes a robotic arm module 31 installed at the upper end of the base plate 1. A connecting frame 32 is installed at the working end of the robotic arm module 31. Two guide rail components 33 are symmetrically connected to the connecting frame 32. The guide rail component 33 includes a plurality of guide rail frames 331 evenly distributed from left to right and closely attached to each other. A splicing plate 332 is provided at the close contact of two adjacent guide rail frames 331. A plurality of connecting bolts 333 are threadedly connected to the splicing plate 332, and the plurality of connecting bolts 333 are respectively threadedly connected to two adjacent guide rail frames 331.
[0036] During specific operation, the robotic arm module 31 is an existing robotic arm extraction device. Before the cut glass is conveyed, according to the actual palletizing requirements, the unmounted guide rail frames 331 are sequentially spliced from both ends of the guide rail frames 331 fixedly connected to the connecting frame 32. After two adjacent guide rail frames 331 are closely attached, the splicing plate 332 is placed at the close contact of the two guide rail frames 331, and then a plurality of connecting bolts 333 are respectively threadedly connected to the two guide rail frames 331 to realize the function of splicing two adjacent guide rail frames 331. Repeat this step until the number of spliced guide rail frames 331 on both sides reaches the required number.
[0037] Refer to Figure 1 、 Figure 5 、 Figure 6 and Figure 8, a plurality of evenly distributed material taking components 34 are connected between the two guide rail components 33, and adjacent two of the material taking components 34 are detachably connected. The material taking component 34 includes a rectangular frame 341 detachably connected between the two guide rail components 33. An adsorption component 342 is installed in the middle of the rectangular frame 341. A communication component 343 is connected to the right frame wall of the rectangular frame 341. A sealing component 344 is connected to the left frame wall of the rectangular frame 341. The plurality of rectangular frames 341 are spliced with each other. During the splicing process, adjacent two rectangular frames 341 approach each other, and the communication component 343 on one rectangular frame 341 is inserted and matched with the sealing component 344 on the other rectangular frame 341. The two adsorption components 342 in the middle of adjacent two rectangular frames 341 are communicated through the mutually matched communication component 343 and sealing component 344.
[0038] Refer to Figure 1 and Figure 8 , the material taking component 34 further includes a clamping component 345 connected to the left frame wall of the rectangular frame 341. A clamping groove 346 is opened at the upper end of the right frame wall of the rectangular frame 341. Insertion rods 347 are symmetrically installed at the left end of the rectangular frame 341. Insertion counterbores 348 are symmetrically opened at the right end of the rectangular frame 341.
[0039] During specific operation, after the splicing of the plurality of guide rail frames 331 on both sides is completed, the plurality of rectangular frames 341 are spliced. When adjacent two rectangular frames 341 are spliced, the two insertion rods 347 on one rectangular frame 341 are inserted and matched with the two insertion counterbores 348 on the other rectangular frame 341, so as to realize the splicing function of the two rectangular frames 341. Repeat this step until the splicing of the corresponding number of rectangular frames 341 is completed.
[0040] Refer to Figure 1 , Figure 4 , Figure 6 and Figure 8 , the adsorption component 342 includes a cross plate 3421 installed in the middle of the rectangular frame 341. An air inlet cavity 3422 is opened inside the cross plate 3421. A plurality of adsorption heads 3423 communicated with the air inlet cavity 3422 are installed at the lower end of the cross plate 3421.
[0041] Refer to Figure 5 , Figure 6 and Figure 8 , the communication component 343 includes a first cylindrical hole 3431 opened on the right frame wall of the rectangular frame 341. The first cylindrical hole 3431 is communicated with the air inlet cavity 3422. A communication pipe 3432 is installed in the first cylindrical hole 3431. A sealing ring is sleeved on the outer surface of the communication pipe 3432. A push plate 3433 is installed at one end of the communication pipe 3432 away from the air inlet cavity 3422.
[0042] Refer to Figure 1 、 Figure 5 and Figure 6 As shown in Figure 1 , Figure 5 and Figure 6 , the sealing assembly 344 includes a second cylindrical hole 3441 formed in the left frame wall of the rectangular frame 341. The second cylindrical hole 3441 communicates with the intake cavity 3422. An intake ring 3442 is installed in the second cylindrical hole 3441. A strip plate 3443 is installed in the middle of the intake ring 3442. A T-shaped cylindrical rod 3444 is slidably and penetratingly connected through the middle of the strip plate 3443. A connecting spring 3445 is installed between the vertical section of the T-shaped cylindrical rod 3444 and the strip plate 3443. A sealing ball 3446 that is in close contact with the right end of the intake ring 3442 is installed at the right end of the T-shaped cylindrical rod 3444.
[0043] During specific operation, initially, the sealing ball 3446 that is in close contact with the right end of the intake ring 3442 can seal the second cylindrical hole 3441. During the splicing process of the two rectangular frames 341, the communicating pipes 3432 on the adjacent two rectangular frames 341 are inserted and matched with the corresponding second cylindrical holes 3441. The pushing plate 3433 on the communicating pipe 3432 pushes the T-shaped cylindrical rod 3444. The T-shaped cylindrical rod 3444 drives the sealing ball 3446 to move and pushes the connecting spring 3445. The sealing ball 3446 gradually separates from the intake ring 3442, thereby opening the sealed second cylindrical hole 3441 and realizing the function of connecting the second cylindrical hole 3441 with the first cylindrical hole 3431, and further realizing the function of connecting the intake cavities 3422 between the two cross plates 3421. After the two rectangular frames 341 are in close contact, the sealing ring on the communicating pipe 3432 is in close contact with the second cylindrical hole 3441, improving the sealing strength after the connection of the two intake cavities 3422.
[0044] Refer to Figure 1 、 Figure 5 、 Figure 6 and Figure 8 As shown in Figure 1 , Figure 5 , Figure 6 and Figure 8 , the clamping assembly 345 includes a rectangular plate 3451 installed at the upper end of the left frame wall of the rectangular frame 341. A moving rod 3452 with a T-shaped structure is slidably and penetratingly connected through the middle of the rectangular plate 3451. A return spring 3453 is installed between the right end of the moving rod 3452 and the rectangular plate 3451. A sealing plate 3454 is rotatably connected to the left end of the moving rod 3452.
[0045] During specific operation, initially, the reset spring 3453 in a stretched state on the rectangular frame 341 drives the sealing plate 3454 to closely adhere to the outer end of the second cylindrical hole 3441 through the moving rod 3452, realizing the function of further sealing the second cylindrical hole 3441. Before splicing the two rectangular frames 341, first rotate the sealing plate 3454 at the splicing position to open the second cylindrical hole 3441. Subsequently, the connecting pipe 3432 is inserted and matched with the second cylindrical hole 3441. After splicing multiple rectangular frames 341, the sealing plates 3454 not at the splicing position closely adhere to the outer ends of the corresponding second cylindrical holes 3441, preventing the sealing balls 3446 in the second cylindrical holes 3441 not connected to the connecting pipe 3432 from separating from the corresponding air inlet rings 3442 in a negative pressure environment and avoiding damage to the negative pressure environment during the working process.
[0046] Refer to Figure 4 and Figure 8 Both the front and rear ends of the rectangular frame 341 are integrally formed with strip-shaped protrusions, and the strip-shaped protrusions are slidably matched with the guide rail frame 331. A locking bolt is used to connect the middle of the strip-shaped protrusion and the guide rail frame 331.
[0047] During specific operation, after splicing multiple rectangular frames 341, insert the multiple rectangular frames 341 into multiple guide rail frames 331 on both sides. The strip-shaped protrusions on the multiple rectangular frames 341 cooperate with the multiple guide rail frames 331 to realize the function of the multiple guide rail frames 331 supporting the multiple rectangular frames 341. Then connect the multiple strip-shaped protrusions to the corresponding guide rail frames 331 through locking bolts to realize the function of limiting the multiple rectangular frames 341. Then connect the connecting pipe 3432 not inserted and matched with the second cylindrical hole 3441 to an existing air pump through an existing connecting pipe.
[0048] Refer to Figure 1 、 Figure 5 and Figure 7 Refer to
[0049] Refer to Figure 1 、 Figure 5 and Figure 7, the partition assembly 234 includes a limit frame 2341 disposed above the sliding frame 231. Both the front and rear ends of the limit frame 2341 are fixedly connected to the two support frames 21 through support bars. A partition board 2342 with rectangular protrusions at both front and rear ends is slidably connected within the limit frame 2341. The two rectangular protrusions of the partition board 2342 are located above the limit frame 2341. The partition board 2342 is located between two adjacent conveying rollers 22.
[0050] During specific operation, start the chain drive device. The chain drive device drives multiple conveying rollers 22 to rotate. Start the electric slider 232. The electric slider 232 drives the top block 233 to slide within the sliding frame 231 through a traction rope. The inclined surface on the top block 233 first pushes against the lower end of the rightmost partition board 2342. The partition board 2342 rises within the limit frame 2341 under the force and moves to between the corresponding two conveying rollers 22. The glass prepared by the float process moves to the upper end of the conveying rollers 22 after passing through the cutting area. The multiple rotating conveying rollers 22 convey the glass until the glass is conveyed to the left end of the partition board 2342. The partition board 2342 blocks the glass. Subsequently, continue to start the electric slider 232. The moving top block 233 pushes against the next partition board 2342 from right to left, repeating the step of the partition board 2342 rising. The multiple rotating conveying rollers 22 continuously convey the glass, and multiple partition boards 2342 respectively block multiple glasses. The top end of the partition board 2342 is not higher than the upper end of the glass.
[0051] When the number of blocked glasses corresponds to the number of spliced rectangular frames 341, the robotic arm module 31 is activated. The robotic arm module 31 drives the multiple guide rail components 33 on both sides to move downward through the connecting frame 32. The multiple guide rail components 33 drive the multiple rectangular frames 341 to move downward. The rectangular frames 341 drive the multiple suction heads 3423 to move downward through the cross plates 3421 and closely adhere to the upper ends of the corresponding glasses. Subsequently, the air pump is activated. The air pump evacuates the air intake cavities 3422 in the multiple cross plates 3421, making the multiple air intake cavities 3422 in a negative pressure state. The external air pressure presses the glasses onto the multiple suction heads 3423, realizing the function of the multiple suction heads 3423 sucking the glasses. The robotic arm module 31 then drives the multiple guide rail components 33 on both sides to rise through the connecting frame 32 and move to the glass palletizing position. The multiple guide rail components 33 drive the multiple cross plates 3421 through the multiple rectangular frames 341. The multiple cross plates 3421 simultaneously suck the multiple glasses through the multiple suction heads 3423 and move them to the palletizing position. When the multiple glasses move simultaneously, the efficiency of glass palletizing is effectively improved, and it can be achieved without multiple conveying devices, effectively reducing the cost of palletizing multiple glasses. When the multiple glasses move to the palletizing position, the robotic arm module 31 drives the material taking component 34 to palletize the glasses through the connecting frame 32 and the multiple guide rail components 33 on both sides. The air pump is turned off, and the glasses are separated from the material taking component 34. The multiple glasses sucked by the multiple material taking components 34 are palletized simultaneously, thus forming multiple groups of glass stacks. At the same time, the electric slider 232 drives the top block 233 to reset, and the partition plate 2342 releases the blocking of the glasses. Then, repeat the previous steps of glass palletizing until all the produced multiple glasses are palletized, and the glass conveying ends.
[0052] In the description of the embodiments of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "top", "bottom", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the embodiments of the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the embodiments of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance. In addition, in the description of the present invention, unless otherwise specified, the meaning of "multiple" is two or more.
[0053] In the description of the present invention, it should also be noted that, unless otherwise clearly defined and limited, the terms "set", "installed", and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0054] The embodiments of the specific implementation manners are all preferred embodiments of the present invention, and do not limit the protection scope of the present invention accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of the present invention should be covered within the protection scope of the present invention.
Claims
1. A conveying device for the preparation of self-priming float glass, comprising a base plate, characterized in that: The upper end of the base plate is respectively provided with a conveying unit and a material taking unit; The conveying unit includes two support frames which are symmetrically distributed front and back and installed on the upper end of the base plate. A plurality of evenly distributed conveying rollers are rotatably connected between the two support frames. A partition component located below the plurality of conveying rollers is also connected between the support frames; The material taking unit includes a robotic arm module installed on the upper end of the base plate. A connecting frame is installed at the working end of the robotic arm module. Two guide rail components are symmetrically connected to the connecting frame. A plurality of evenly distributed material taking components are connected between the two guide rail components. Adjacent two material taking components are detachably connected; The material taking component includes a rectangular frame detachably connected between two guide rail components. An adsorption component is installed in the middle of the rectangular frame. A communication component is connected to the right frame wall of the rectangular frame. A sealing component is connected to the left frame wall of the rectangular frame; A plurality of rectangular frames are spliced together. During the splicing process, adjacent two rectangular frames approach each other, and the communication component on one rectangular frame is inserted and matched with the sealing component on the other rectangular frame. Two adsorption components in the middle of adjacent two rectangular frames are communicated through the mutually cooperating communication component and sealing component; The material taking component further includes a clamping component connected to the left frame wall of the rectangular frame. A clamping groove is opened at the upper end of the right frame wall of the rectangular frame; The adsorption component includes a cross plate installed in the middle of the rectangular frame. An air inlet cavity is opened inside the cross plate; The communication component includes a first cylindrical hole opened on the right frame wall of the rectangular frame. The first cylindrical hole is communicated with the air inlet cavity. A communication pipe is installed in the first cylindrical hole; The sealing component includes a second cylindrical hole opened on the left frame wall of the rectangular frame. The second cylindrical hole is communicated with the air inlet cavity. An air inlet ring is installed in the second cylindrical hole. A strip plate is installed in the middle of the air inlet ring. A T-shaped cylindrical rod is slidably penetrated through the middle of the strip plate. A connecting spring is installed between the vertical section of the T-shaped cylindrical rod and the strip plate. A sealing ball which is closely attached to the right end of the air inlet ring is installed at the right end of the T-shaped cylindrical rod; The clamping component includes a rectangular plate installed at the upper end of the left frame wall of the rectangular frame. A moving rod with a T-shaped structure is slidably penetrated through the middle of the rectangular plate. A return spring is installed between the right end of the moving rod and the rectangular plate. A sealing plate is rotatably connected to the left end of the moving rod; The sealing plate not in the splicing position is closely attached to the outer end of the corresponding second cylindrical hole, so as to prevent the sealing ball in the second cylindrical hole not connected to the communication pipe from separating from the corresponding air inlet ring in a negative pressure environment. The adjacent sealing plates in the splicing position are matched with the clamping groove.
2. The conveying device for preparing self-priming float glass according to claim 1, wherein: The partition component includes a sliding frame arranged between the two support frames. The front and rear ends of the sliding frame are fixedly connected to the two support frames through connecting plates. An electric slider is slidably connected in the sliding frame. The right end of the electric slider is fixedly connected to a top block which is slidably connected to the sliding frame through a traction rope. An inclined surface is arranged at the upper left corner of the top block. A plurality of evenly distributed partition components are arranged above the sliding frame.
3. The conveying device for the preparation of self-priming float glass according to claim 2, wherein: The partition assembly includes a limit frame disposed above the sliding frame. Both the front and rear ends of the limit frame are fixedly connected to two support frames through support bars. A partition board with rectangular protrusions at both the front and rear ends is slidably connected within the limit frame. The two rectangular protrusions of the partition board are located above the limit frame, and the partition board is located between two adjacent conveying rollers.
4. The conveying device for the preparation of self-priming float glass according to claim 1, characterized in that: The guide rail component includes a plurality of guide rail frames evenly distributed from left to right and closely attached to each other. A splicing board is provided at the attachment part of two adjacent guide rail frames. A plurality of connecting bolts are threadedly connected to the splicing board, and the plurality of connecting bolts are respectively threadedly connected to two adjacent guide rail frames.
5. The conveying device for self-priming float glass preparation according to claim 1, wherein: Plug rods are symmetrically installed at the left end of the rectangular frame, and plugging counterbores are symmetrically formed at the right end of the rectangular frame.
6. The conveying device for the preparation of self-priming float glass according to claim 1, characterized in that: A plurality of suction heads communicating with the intake cavity are installed at the lower end of the cross plate.
7. The conveying device for the preparation of self-priming float glass according to claim 6, wherein: A sealing ring is sleeved on the outer surface of the connecting pipe, and a pushing plate is installed at one end of the connecting pipe away from the intake cavity.
8. The conveying device for the preparation of self-priming float glass according to claim 4, characterized in that: Strip-shaped protrusions are integrally formed at both the front and rear ends of the rectangular frame. The strip-shaped protrusions are slidably engaged with the guide rail frame, and the middle part of the strip-shaped protrusion is connected to the guide rail frame through a locking bolt.