A hanging conveying system for feeding glass processing materials
Through the clamping glass and airbag lubrication system, friction and noise problems in glass transportation are solved, and glass protection and system efficiency are improved.
Patent Information
- Application Number
- CN202510158732.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-13
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2045-02-13
AI Technical Summary
When the existing suspension conveyor system transports glass, the surface of the glass is easily rubbed by the transport frame to cause scratches, causing noise, and uneven wear of the chain and guide rail components, which affects the service life and working environment.
The lubrication system of the glass is used to clamp the sides of the glass, combining the airbag and the hollow wheel to reduce friction noise, and buffer vibration through the shock absorption components to extend the system life.
Effectively protect the glass surface, reduce noise, improve transportation efficiency, extend the service life of the system, and improve the working environment.
Smart Images

Figure CN119683327B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass processing, in particular to a suspension conveying system for feeding glass processing materials. Background Art
[0002] Before further processing such as glass cutting, edging, and coating, the original glass sheets need to be transported to the corresponding processing equipment. The glass can be transported from the warehouse or temporary storage area to the processing workshop through the hanging conveyor system.
[0003] In the prior art, the glass is usually placed on a transport frame in a suspended conveying system, and then the transport frame is driven to move with the cooperation of the chain and the guide rail to achieve the effect of transporting the glass. However, when the links of the chain enter and leave the sprocket tooth grooves one by one, due to the flexibility of the chain and the gaps between the links, a periodic impact force is generated, causing the transport frame to vibrate. When the transport frame continues to vibrate, the glass will produce relative movement with the contact point of the transport frame, resulting in scratches caused by friction between the glass surface and the transport frame, which affects the quality of the finished glass and also generates noise. In addition, due to the friction between the chain and the sprocket, the guide rail and the roller, frequent lubrication is required. Since the suspended conveying system is far from the ground and has a large volume, it is difficult to keep the chain, guide rail and other components lubricated while making the lubricating oil evenly applied, resulting in uneven wear of components such as the chain and guide rail, which affects the service life of the suspended conveying system and further generates noise, affecting the working environment.
[0004] In order to solve the above problems, the inventors proposed a hanging conveying system for glass processing feeding. Summary of the Invention
[0005] In order to solve the above technical problems, a hanging conveying system for feeding glass processing is provided.
[0006] To achieve the above objectives, the present invention can be implemented by adopting the following technical solutions:
[0007] The present invention provides a hanging conveying system for feeding glass processing materials, comprising: a chain, a track is provided directly above the chain, a plurality of connecting shafts are fixedly connected to the chain, and a glass placement assembly is provided at the bottom of the connecting shaft;
[0008] The glass placement assembly includes a cross bar located directly below the connecting axis, and oblique bars are fixedly connected to both sides of the cross bar, and a plurality of oblique bars are provided. The bottoms of the oblique bars are commonly fixedly connected to a base, and the bottom of the base is symmetrically fixedly connected to a fixing seat, and the inner bottom of the fixing seat is fixedly connected to a round bar, and a return spring is wound around the round bar. The tops of the two round bars are slidably connected to a lifting frame, and an oblique slot is provided on the lifting frame, and the oblique slots form a group of two, and a group of the oblique slots is symmetrically arranged on the lifting frame, and the bottom of the base is fixedly connected to four fixing frames, and the fixing frames form a group of two, and a group of the fixing frames is symmetrically arranged on both sides of the lifting frame. The gears are mounted on a pair of axis holes, each of which is connected to a pair of axis axes. The axis holes are located on the upper and lower sides of the axis axes, and the axis axes are connected to the axis of the base. The gears are mounted on a pair of axis axes. The gears are located on the upper and lower sides of the axis axes. The axis axes are connected to the axis of the base.
[0009] Preferably, the oblique rods are L-shaped, the oblique rods are equidistantly arranged on the cross rods, and the oblique rods are obliquely arranged on the cross rods.
[0010] Preferably, limiting grooves are provided on both sides of the four slot plates, the four fixing frames respectively form limiting cooperation with the four slot plates through limiting blocks and limiting grooves, and the four slot plates respectively form limiting cooperation with the four oblique slots through four pin shafts.
[0011] Preferably, the four racks are engaged with the four gears respectively, and there are no less than eight rotating rods, two of which form a group, one group of rotating rods is coaxially fixed to the gear, and one end of the group of rotating rods away from the gear is jointly connected to the splint for rotation.
[0012] Preferably, a shock-absorbing assembly is provided between the connecting shaft and the cross bar, and the shock-absorbing assembly includes a fixed box fixedly connected to the top of the cross bar, the fixed box is located in the middle of the top of the cross bar, a sliding cavity is provided on the fixed box, and a slide groove is provided on the top of the fixed box, and the bottom of the connecting shaft forms a limit fit with the slide groove, and the internal rotation of the slide groove is connected to a rotating seat 1, and the bottom of the rotating seat 1 is rotatably connected to four double-link rods, and the bottom ends of the four double-link rods are rotatably connected to a rotating seat 2, and the bottom of the rotating seat 2 is fixedly connected to the inner bottom of the sliding cavity, and two push plates are slidably connected in the sliding cavity, and the two push plates are symmetrically arranged on both sides of the four double-link rods, and a return spring 2 is provided between the push plate and the side wall of the sliding cavity.
[0013] Preferably, the double connecting rods form a group of two, and the bending parts of the two groups of double connecting rods respectively form an extrusion fit with the two push plates.
[0014] Preferably, a self-lubricating component is provided on the top of the connecting shaft, and the self-lubricating component includes a connecting frame fixedly connected to the top of the connecting shaft, a bearing is rotatably connected to the side of the top of the connecting frame close to the track, and a hollow wheel 1 is fixedly connected to the side of the bearing away from the connecting frame, and the hollow wheel set is provided with a hollow wheel 2, a circular hole 1 is opened on the hollow wheel 2, and a plurality of circular holes 2 are opened on the hollow wheel 1, and nozzles are fixedly connected to both sides of the hollow wheel 1, and the circular hole 2 is communicated with the nozzle, and an oil pipeline is fixedly connected to the inside of the bearing, One end of the oil pipe passes through the bearing and hollow wheel 1, and the end of the oil pipe passing through hollow wheel 1 is fixedly connected to hollow wheel 2. A one-way valve is fixedly connected to the outer arc surface of the oil pipe, and the end of the oil pipe away from hollow wheel 1 is fixedly connected to an air cylinder, a piston is slidably connected in the air cylinder, and a return spring 3 is provided between the piston and the inner wall of the air cylinder. A sealing baffle is fixedly connected to the end of the inner arc surface of the oil pipe close to the air cylinder, the middle part of the sealing baffle is fixedly connected to the air pipe, and the end of the air pipe away from the sealing baffle is fixedly connected to an airbag.
[0015] Preferably, the circular hole 1 and the circular hole 2 are through holes, and there are no less than four circular holes 1, and the four circular holes 1 are equidistantly arranged on the hollow wheel 2. There are no less than four circular holes 2, and the four circular holes 2 are equidistantly arranged on the hollow wheel 1, and the diameters of the circular holes 1 and the circular holes 2 are the same.
[0016] Preferably, one end of the air supply pipe is connected to the air cylinder, and one end of the air supply pipe away from the air cylinder leads to the interior of the airbag.
[0017] Preferably, the internal volume of the air cylinder is the same as that of the hollow wheel 2.
[0018] As described above, the characteristics and advantages of the glass processing material feeding suspension conveying system of the present invention are:
[0019] Through the cooperation of the clamping plate, the glass to be transported is placed on the base and tilted against the base, driving the rack to synchronously move away from the lifting frame, driving the gear to rotate clockwise, thereby driving the rotating rod to rotate upward, so that the bottom of the clamping plate rises under the action of the rotating rod, driving the connecting rod to make a circular motion synchronous with the rotating rod, so that the clamping plate gradually approaches the base while the upper half remains vertical, thereby clamping both sides of the glass. Compared with placing the glass directly on the transport rack, due to the inevitable self-vibration of the chain structure, clamping the glass from both sides can avoid friction between the glass and the placement, thereby protecting the glass and reducing the noise generated by the suspension transport system;
[0020] Through the cooperation of the air bag and the hollow wheel 2, when the circular hole 1 and the circular hole 2 are aligned, the air bag squeezes the lubricating oil in the hollow wheel 2 into the circular hole 2 through the circular hole 1, and then the lubricating oil is sprayed onto the guide rail from the nozzle on the hollow wheel 1 side close to the guide rail, lubricating the hollow wheel 1 and the rail, so that the hollow wheel 1 and the rail are kept in a lubricated state, reducing the friction coefficient between the hollow wheel 1 and the rail, reducing the wear of the hollow wheel 1 and the rail, and reducing the noise of the hollow wheel 1 and the rail. The nozzle on the side of the hollow wheel 1 away from the rail simultaneously sprays the lubricating oil onto the chain, reducing the friction between the chain and the sprocket, reducing the noise when the chain rubs against the chain, thereby further reducing the noise generated in the suspension conveying system and improving the transportation efficiency of the suspension conveying system;
[0021] Through the cooperation of the hollow wheel 1 and the hollow wheel 2, after the nozzle sprays the lubricating oil under the squeezing action of the air bag, the hollow wheel 1 continues to rotate, and the circular hole 1 is no longer aligned with the circular hole 2, so that the circular hole 1 is blocked by the inner wall of the hollow wheel 1 again, and the interior of the hollow wheel 2 is in a closed state until the hollow wheel 1 rotates again to align the circular hole 2 with the circular hole 1, so that the nozzle can intermittently and in small amounts lubricate the track and chain during the operation of the suspension conveying system, reducing the amount of lubricating oil used, and at the same time allowing the chain and track to be kept in a state of appropriate lubrication, thereby extending the service life of the suspension conveying system and making the conveying work more efficient;
[0022] Through the setting of the shock-absorbing assembly, when the connecting shaft, cross bar, diagonal bar and base vibrate under the action of the chain, the distance between the rotating seat 1 and the rotating seat 2 is reduced, and the double-link pushes the push plate to slide to both sides of the sliding cavity, thereby squeezing the reset spring 2. After being squeezed, the reset spring 2 quickly rebounds and pushes the push plate to reset, so that the push plate pushes the bending part of the double-link to reset it, thereby buffering the up and down movement caused by the vibration of the cross bar, reducing the vibration of the cross bar, diagonal bar and base, and avoiding the glass on the diagonal bar from rubbing against the diagonal bar during vibration, thereby achieving the effect of protecting the glass and reducing the friction noise caused by vibration, which is beneficial to improving the working environment. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a three-dimensional schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is an enlarged view of the crossbar and base structure shown in the present invention;
[0025] Figure 3 The present invention shows Figure 2 Enlarged view of point A in the middle;
[0026] Figure 4 This is an enlarged view of the lifting frame structure shown in the present invention;
[0027] Figure 5 The present invention shows Figure 2Enlarged view of point B in the middle;
[0028] Figure 6 This is an enlarged view of the chain and connecting frame structure shown in the present invention;
[0029] Figure 7 This is an enlarged view of the structure of the connecting frame and the hollow wheel shown in the present invention;
[0030] Figure 8 It is a three-dimensional schematic diagram of the hollow wheel and the nozzle structure shown in the present invention;
[0031] Figure 9 It is a schematic sectional perspective view of the internal structure of the hollow wheel 1 and the cylinder shown in the present invention;
[0032] Figure 10 This is a schematic sectional perspective view of the internal structure of the oil pipeline shown in the present invention.
[0033] The reference numerals in the present invention are: 1, chain; 2, track; 3, connecting shaft;
[0034] Glass placement components: 401, crossbar; 402, inclined bar; 403, base; 404, fixed seat; 405, round bar; 406, return spring 1; 407, lifting frame; 408, inclined slot; 409, fixed frame; 410, limit block; 411, slot plate; 412, rack; 413, pin; 414, gear; 415, rotating rod; 416, clamping plate; 417, connecting rod; 418, pressure plate;
[0035] Shock absorber assembly: 501, fixed box; 502, sliding chamber; 503, slide groove; 504, rotating seat 1; 505, double connecting rod; 506, rotating seat 2; 507, push plate; 508, return spring 2;
[0036] Self-lubricating components: 601, connecting frame; 602, bearing; 603, hollow wheel one; 604, hollow wheel two; 605, circular hole one; 606, circular hole two; 607, nozzle; 608, oil pipeline; 609, one-way valve; 610, air cylinder; 611, piston; 612, return spring three; 613, sealing partition; 614, air pipeline; 615, air bag. DETAILED DESCRIPTION
[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0038] The embodiments provided by the present invention will be described in detail below:
[0039] A hanging conveying system for glass processing feeding, such as Figures 1 to 4 As shown, it includes: a chain 1, which is driven by a motor and a sprocket. It is a prior art and will not be described in detail. A track 2 is set just above the chain 1. Several connecting shafts 3 are fixedly connected to the chain 1. A glass placement component is set at the bottom of the connecting shaft 3.
[0040] The glass placement assembly includes a crossbar 401 located just below the connecting shaft 3, with oblique rods 402 fixedly connected to both sides of the crossbar 401. There are multiple oblique rods 402, and the bottoms of the multiple oblique rods 402 are fixedly connected to a base 403. The bottom of the base 403 is symmetrically fixedly connected to a fixed seat 404. The fixed seat 404 is L-shaped, and the inner bottom of the fixed seat 404 is fixedly connected to a round rod 405. A return spring 406 is wound around the round rod 405. The tops of the two round rods 405 are slidably connected to a lifting frame 407. The two ends of the return spring 406 are fixedly connected to the fixed seat 404 and the lifting frame 407 respectively. There is an inclined slot 408, the top of the inclined slot 408 is away from the fixed seat 404, and gradually approaches the fixed seat 404 from the top downward. The inclined slots 408 are two in a group, and a group of inclined slots 408 are symmetrically arranged on the lifting frame 407. The bottom of the base 403 is fixedly connected to four fixing frames 409, and the fixing frames 409 are two in a group. A group of fixing frames 409 is symmetrically arranged on both sides of the lifting frame 407. The four fixing frames 409 are fixedly connected to the limiting blocks 410. The four fixing frames 409 are respectively slidably connected to the slot plates 411. The tops of the four slot plates 411 are fixedly connected to the racks 412. The four slot plates 411 are fixed to one end of the lifting frame 407. A pin 413 is fixedly connected, and four pins 413 are respectively inserted into four inclined slots 408. The bottom of the base 403 is rotatably connected to four gears 414. The four gears 414 are respectively located directly above the four racks 412. The four gears 414 are fixedly connected to a rotating rod 415. The end of the rotating rod 415 away from the gear 414 is rotatably connected to a splint 416. The middle of the splint 416 is rotatably connected to a connecting rod 417. The end of the connecting rod 417 away from the splint 416 is rotatably connected to the base 403. The top of the lifting frame 407 is fixedly connected to a pressure plate 418. The inclined rod 402 is L-shaped, and multiple inclined rods 402 are equidistantly arranged on the cross bar. On 401, multiple inclined rods 402 are obliquely arranged on the cross bar 401, and limiting grooves are opened on both sides of the four slot plates 411. The four fixing frames 409 form limiting cooperation with the four slot plates 411 through limiting blocks 410 and limiting grooves respectively. The four slot plates 411 form limiting cooperation with the four inclined slots 408 through four pin shafts 413 respectively. The four racks 412 form meshing cooperation with the four gears 414 respectively. There are no less than eight rotating rods 415, and the rotating rods 415 form a group of two. One group of rotating rods 415 is coaxially fixedly connected to the gear 414, and one end of a group of rotating rods 415 away from the gear 414 is jointly rotatably connected to the splint 416.
[0041] Further, such as Figure 2 、 Figure 5As shown, a shock-absorbing assembly is provided between the connecting shaft 3 and the cross bar 401. The shock-absorbing assembly includes a fixed box 501 fixedly connected to the top of the cross bar 401. The fixed box 501 is located in the middle of the top of the cross bar 401. A sliding cavity 502 is provided on the fixed box 501. A slide groove 503 is provided on the top of the fixed box 501. The bottom of the connecting shaft 3 forms a limit fit with the slide groove 503, so that the bottom of the connecting shaft 3 can only slide vertically in the slide groove 503. The interior of the slide groove 503 is rotatably connected to a rotating seat 504. The bottom of the rotating seat 504 is rotatably connected to four double connecting rods 505. The bottom ends of the four double-links 505 are rotatably connected to a rotating seat 2 506, and the bottom of the rotating seat 2 506 is fixedly connected to the inner bottom of the sliding cavity 502. Two push plates 507 are slidably connected in the sliding cavity 502. The two push plates 507 are symmetrically arranged on both sides of the four double-links 505. A return spring 2 508 is arranged between the push plate 507 and the side wall of the sliding cavity 502. The two ends of the return spring 2 508 are respectively fixedly connected to the push plate 507 and the inner wall of the sliding cavity 502. The double-links 505 are two in a group, and the bending parts of the two groups of double-links 505 form an extrusion fit with the two push plates 507 respectively.
[0042] Further, such as Figure 2 、 Figures 6 to 10As shown, a self-lubricating component is provided on the top of the connecting shaft 3, and the self-lubricating component includes a connecting frame 601 fixedly connected to the top of the connecting shaft 3, a bearing 602 is rotatably connected to the side of the top of the connecting frame 601 close to the track 2, and a hollow wheel 1 603 is fixedly connected to the side of the bearing 602 away from the connecting frame 601, and the hollow wheel 1 603 forms a rolling fit with the track 2, and the hollow wheel 1 603 is sleeved with a hollow wheel 2 604, and the hollow wheel 2 604 is provided with a circular hole 1 605. A plurality of circular holes 606 are provided on the wheel 1 603. Sprinklers 607 are fixedly connected to both sides of the hollow wheel 1 603. The circular holes 606 are connected to the sprinkler 607. An oil pipe 608 is fixedly connected to the bearing 602. One end of the oil pipe 608 passes through the bearing 602 and the hollow wheel 1 603. The oil pipe 608 passes through one end of the hollow wheel 1 603 and is fixedly connected to the hollow wheel 2 604. A one-way valve 609 is fixedly connected to the outer arc surface of the oil pipe 608. The oil pipe 608 is away from the outer arc surface of the oil pipe 608. One end of the hollow wheel 603 is fixedly connected to the air cylinder 610, and a piston 611 is slidably connected to the air cylinder 610. A return spring 612 is provided between the piston 611 and the inner wall of the air cylinder 610. The end of the inner arc surface of the oil delivery pipe 608 close to the air cylinder 610 is fixedly connected to a sealing partition 613. The middle of the sealing partition 613 is fixedly connected to the air delivery pipe 614. The end of the air delivery pipe 614 away from the sealing partition 613 is fixedly connected to an air bag 615. The circular hole 1 605 and the circular hole 2 606 is a through hole, and there are four circular holes 605, which are equidistantly arranged on the hollow wheel 2 604. There are four circular holes 606, which are equidistantly arranged on the hollow wheel 1 603. The diameters of circular holes 1 605 and circular holes 2 606 are the same. One end of the air pipe 614 is connected to the air cylinder 610, and the end of the air pipe 614 away from the air cylinder 610 leads to the interior of the airbag 615. The internal volume of the air cylinder 610 is the same as that of the hollow wheel 2 604.
[0043] In combination with the above embodiments, the entire working process and working principle of the above embodiments are as follows:
[0044] The initial state is:
[0045] No glass is placed on the inclined rod 402, the lifting frame 407 is located at the top of the round rod 405, the pin 413 is located at the bottom end of the inclined groove 408, the groove plate 411 is close to the middle of the lifting frame 407, the gear 414 is not rotating, the rotating rod 415 is parallel to the groove plate 411, the connecting rod 417 is parallel to the rotating rod 415, the bottom end of the connecting shaft 3 is located at the top in the sliding groove 503, the double connecting rod 505 is not squeezed, and the push plate 507 contacts the bend of the double connecting rod 505 under the action of the return spring 2 508. No lubricating oil is added to the hollow wheel 2 604, the piston 611 is located on the side of the air cylinder 610 close to the sealing partition 613, the airbag 615 is inflated, and the airbag 615 is inflated to fill the hollow wheel 2 604.
[0046] The working status is:
[0047] Place the glass:
[0048] The glass to be transported is placed on the base 403 and tilted against the inclined rod 402. During the placement process, the bottom of the glass presses the pressure plate 418, so that the pressure plate 418 presses the lifting frame 407 downward, and the lifting frame 407 slides downward on the round rod 405, while squeezing the return spring 406. During the downward movement of the lifting frame 407, the pin shaft 413 moves toward the two ends of the lifting frame 407 under the action of the inclined groove 408, thereby pushing the groove plate 411, so that it slides in the direction away from the lifting frame 407 in cooperation with the fixing frame 409 and the limit block 410, thereby driving the rack 412 to synchronously move away from the lifting frame 407, driving the gear 414 to Figure 3 The middle state rotates clockwise, thereby driving the rotating rod 415 to rotate upward, so that the bottom of the clamping plate 416 rises under the action of the rotating rod 415, driving the connecting rod 417 to make a circular motion synchronous with the rotating rod 415 at the rotating connection with the base 403, so that the clamping plate 416 gradually approaches the base 403 while the upper half remains vertical, thereby clamping both sides of the glass. Compared with placing the glass directly on the transport rack, it can avoid friction between the glass and the placement, thereby protecting the glass while reducing the noise generated by the suspension transport system.
[0049] Add lubricant:
[0050] When the circular hole 1 605 and the circular hole 2 606 are not aligned, lubricating oil is added to the oil pipe 608 through the one-way valve 609, and the lubricating oil enters the hollow wheel 2 604 through the oil pipe 608, and squeezes the airbag 615 which is now full of the hollow wheel 2 604, so that the airbag 615 continuously squeezes the air into the air cylinder 610 through the air pipe 614, thereby causing the gas to push the piston 611 to slide toward the side of the air cylinder 610 away from the sealing partition 613, and at the same time squeeze the return spring 3 612 until the piston 611 approaches the side of the air cylinder 610 away from the sealing partition 613, thereby completing the addition of lubricating oil.
[0051] Lubricate the guide rails while moving:
[0052] When the motor in the suspension conveying system is started, the chain 1 is driven to rotate through the sprocket, and the connecting shaft 3 on the chain 1 is driven to move. The hollow wheel 1 603 rotates under the rolling cooperation with the track 2. Since the oil pipeline 608 is fixedly connected to the connecting frame 601, the hollow wheel 2 604 fixedly connected to the oil pipeline 608 is in a fixed state inside the hollow wheel 1 603. When the hollow wheel 1 603 rotates continuously until the circular hole 1 605 is aligned with the circular hole 2 606, the circular hole 1 605 and the circular hole 2 606 are connected to the nozzle 607, and the interior of the hollow wheel 2 604 is no longer in a closed state, so that the return spring 3 612 in the squeezed state pushes the piston 611 to approach the seal under the action of the elastic force. The sealing plate 613 slides in the direction of the air cylinder 610, thereby pushing the gas in the air cylinder 610 into the air bag 615 through the air pipe 614, and then the air bag 615 squeezes the lubricating oil in the hollow wheel 2 604 into the circular hole 2 606 through the circular hole 1 605. Then the lubricating oil is sprayed onto the guide rail by the nozzle 607 on the hollow wheel 1 603 close to the side of the track 2, and lubricates the hollow wheel 1 603 and the track 2, so that the hollow wheel 1 603 and the track 2 are kept in a lubricated state, reducing the friction coefficient between the hollow wheel 1 603 and the track 2, reducing the wear of the hollow wheel 1 603 and the track 2, and reducing the noise of the hollow wheel 1 603 and the track 2, thereby improving the operating efficiency of the suspension conveying system.
[0053] Lubricate the chain while moving:
[0054] When circular hole 1 605 is aligned with circular hole 2 606, circular hole 1 605 and circular hole 2 606 are connected to nozzle 607, and return spring 3 612 pushes piston 611 to squeeze out lubricating oil through airbag 615, nozzle 607 on the side of hollow wheel 1 603 away from track 2 will simultaneously spray lubricating oil onto chain 1, reducing friction between chain 1 and sprocket, and reducing noise caused by friction between chain 1 and sprocket, thereby further reducing noise generated in the suspension conveying system and improving transportation efficiency of the suspension conveying system.
[0055] Intermittent lubrication:
[0056] After the circular hole 1 605 is aligned with the circular hole 2 606, and the nozzle 607 sprays the lubricating oil under the squeezing action of the airbag 615, the hollow wheel 1 603 continues to rotate, and the circular hole 1 605 is no longer aligned with the circular hole 2 606, so that the circular hole 1 605 is blocked by the inner wall of the hollow wheel 1 603 again, and the interior of the hollow wheel 2 604 is in a closed state. The return spring 3 612 can no longer push the piston 611 until the hollow wheel 1 603 rotates again to align the circular hole 2 606 with the circular hole 1 605, so that the nozzle 607 intermittently and in small quantities lubricates the track 2 and the chain 1 during the operation of the suspension conveying system, reducing the amount of lubricating oil used, and at the same time allowing the chain 1 and the track 2 to be kept in a state of proper lubrication, thereby extending the service life of the suspension conveying system and making the conveying work more efficient.
[0057] Reduce vibration:
[0058] When the links of the chain 1 enter and leave the sprocket tooth grooves one by one, due to the flexibility of the chain 1 and the gaps between the links, periodic impact forces are generated, causing the connecting shaft 3 to inevitably vibrate. When the connecting shaft 3, the cross bar 401, the inclined bar 402 and the base 403 vibrate under the action of the chain 1, the cross bar 401 moves up and down, causing the cross bar 401 to push the fixed box 501 to slide on the connecting shaft 3, thereby reducing the distance between the rotating seat 1 504 and the rotating seat 2 506, and then the double connecting rod 505 is squeezed and the bent part extends toward the push plate 507, pushing the push plate 507 to slide toward both sides of the sliding cavity 502. When the lever 401 is in the upright position, the second pivot pin 506 is engaged with the second pivot pin 504 and the second pivot pin 505 is engaged.
[0059] The above descriptions are merely embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A hanging conveying system for glass processing feeding, characterized in that: include: A chain (1), a track (2) is provided directly above the chain (1), a plurality of connecting shafts (3) are fixedly connected to the chain (1), and a glass placement assembly is provided at the bottom of the connecting shaft (3); The glass placement assembly includes a crossbar (401) located directly below the connecting shaft (3), with inclined bars (402) fixedly connected to both sides of the crossbar (401), a plurality of inclined bars (402) being provided, the bottoms of the inclined bars (402) being fixedly connected to a base (403), the bottoms of the base (403) being symmetrically fixedly connected to a fixing seat (404), the inner bottom of the fixing seat (404) being fixedly connected to a round bar (405), a return spring ( 406), the tops of the two round rods (405) are slidably connected to a lifting frame (407), and the lifting frame (407) is provided with an inclined slot (408), and two inclined slots (408) form a group, and a group of inclined slots (408) are symmetrically arranged on the lifting frame (407), and the bottom of the base (403) is fixedly connected to four fixing frames (409), and two fixed frames (409) form a group, and a group of fixing frames (409) are symmetrically arranged on both sides of the lifting frame (407), and the four A limited block (410) is fixedly connected in the fixed frame (409), and a slot plate (411) is slidably connected in the four fixed frames (409). The tops of the four slot plates (411) are fixedly connected with racks (412). One end of the four slot plates (411) close to the lifting frame (407) is fixedly connected with a pin shaft (413). The four pin shafts (413) are respectively inserted in the four inclined slots (408). The bottom of the base (403) is rotatably connected with four gears (414). The four The gears (414) are respectively located directly above the four racks (412). The four gears (414) are fixedly connected with a rotating rod (415). The end of the rotating rod (415) away from the gear (414) is rotatably connected to a clamping plate (416). The middle of the clamping plate (416) is rotatably connected to a connecting rod (417). The end of the connecting rod (417) away from the clamping plate (416) is rotatably connected to the base (403). The top of the lifting frame (407) is fixedly connected with a pressing plate (418). A self-lubricating assembly is provided at the top of the connecting shaft (3), and the self-lubricating assembly includes a connecting frame (601) fixedly connected to the top of the connecting shaft (3), a bearing (602) is rotatably connected to the side of the top of the connecting frame (601) close to the track (2), and a hollow wheel (603) is fixedly connected to the side of the bearing (602) away from the connecting frame (601), and the hollow wheel (603) is sleeved with a hollow wheel (604), and a circular hole (605) is provided on the hollow wheel (604), and a plurality of circular holes (606) are provided on the hollow wheel (603), and nozzles (607) are fixedly connected to both sides of the hollow wheel (603), and the circular holes (606) are communicated with the nozzles (607), and an oil pipe (608) is fixedly connected to the inside of the bearing (602), and one end of the oil pipe (608) passes through The bearing (602) and the hollow wheel (603) are connected. One end of the oil delivery pipe (608) passes through the hollow wheel (603) and is fixedly connected to the hollow wheel (604). A one-way valve (609) is fixedly connected to the outer arc surface of the oil delivery pipe (608). The end of the oil delivery pipe (608) away from the hollow wheel (603) is fixedly connected to the air cylinder (610). A piston (611) is slidably connected in the air cylinder (610). A return spring (612) is provided between the piston (611) and the inner wall of the air cylinder (610). The end of the inner arc surface of the oil delivery pipe (608) close to the air cylinder (610) is fixedly connected to the sealing partition (613). The middle part of the sealing partition (613) is fixedly connected to the air delivery pipe (614). The end of the air delivery pipe (614) away from the sealing partition (613) is fixedly connected to the air bag (615).
2. A glass processing material feeding suspension conveying system according to claim 1, characterized in that: The oblique rods (402) are L-shaped, and the oblique rods (402) are equidistantly arranged on the cross rod (401). The oblique rods (402) are obliquely arranged on the cross rod (401).
3. A hanging conveying system for glass processing feeding according to claim 2, characterized in that: Limiting grooves are provided on both sides of the four slot plates (411); the four fixing frames (409) respectively form limiting cooperation with the four slot plates (411) through limiting blocks (410) and limiting grooves; and the four slot plates (411) respectively form limiting cooperation with the four oblique slots (408) through four pin shafts (413).
4. A hanging conveying system for glass processing feeding according to claim 3, characterized in that: The four racks (412) are respectively meshed with the four gears (414), the number of the rotating rods (415) is no less than eight, and the rotating rods (415) form a group of two. The rotating rods (415) of one group are coaxially fixedly connected to the gear (414), and the ends of the rotating rods (415) of the group away from the gear (414) are rotatably connected to the clamping plate (416).
5. The glass processing material feeding suspension conveying system according to claim 1, characterized in that: A shock absorbing assembly is provided between the connecting shaft (3) and the cross bar (401), and the shock absorbing assembly includes a fixed box (501) fixedly connected to the top of the cross bar (401), the fixed box (501) is located in the middle of the top of the cross bar (401), a sliding cavity (502) is provided on the fixed box (501), a sliding groove (503) is provided on the top of the fixed box (501), the bottom of the connecting shaft (3) forms a limited fit with the sliding groove (503), and the interior of the sliding groove (503) is rotatably connected to a rotating seat (504), The bottom of the rotating seat 1 (504) is rotatably connected to four double connecting rods (505), and the bottom ends of the four double connecting rods (505) are rotatably connected to the rotating seat 2 (506). The bottom of the rotating seat 2 (506) is fixedly connected to the inner bottom of the sliding cavity (502), and two push plates (507) are slidably connected in the sliding cavity (502). The two push plates (507) are symmetrically arranged on both sides of the four double connecting rods (505), and a reset spring 2 (508) is arranged between the push plate (507) and the side wall of the sliding cavity (502).
6. A hanging conveying system for glass processing feeding according to claim 5, characterized in that: The double connecting rods (505) are grouped into two, and the bending parts of the two groups of double connecting rods (505) respectively form an extrusion fit with the two push plates (507).
7. The glass processing material feeding suspension conveying system according to claim 1, characterized in that: The circular hole 1 (605) and the circular hole 2 (606) are through holes. There are four circular holes 1 (605), and the four circular holes 1 (605) are equidistantly arranged on the hollow wheel 2 (604). There are four circular holes 2 (606), and the four circular holes 2 (606) are equidistantly arranged on the hollow wheel 1 (603). The diameters of the circular holes 1 (605) and the circular holes 2 (606) are the same.
8. A hanging conveying system for glass processing feeding according to claim 7, characterized in that: One end of the air delivery pipe (614) is connected to the air cylinder (610), and one end of the air delivery pipe (614) away from the air cylinder (610) leads to the interior of the air bag (615).
9. A hanging conveying system for glass processing feeding according to claim 8, characterized in that: The internal volume of the air cylinder (610) is the same as that of the hollow wheel 2 (604).
Citation Information
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