A display fabric production and shaping equipment and its usage method

CN120138891BActive Publication Date: 2026-09-18SOYANG TECH TEXTILE (ZHE JIANG) CO LTD
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Patent Information

Application Number
CN202510506957.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2026-09-18
Estimated Expiration
2045-04-22

AI Technical Summary

Technical Problem

[0003]发现存在如下问题没有得到良好的解决:1、在纤维加工前,大量物料呈团状堆积在传动带时,使得直接通过压辊挤压时,形成的纤维块可能存在部位不平整的情况,因而需要对其进行抹平,以方便装置的使用;2、由于纤维块可能存在不平整的情况时,需要根据需求添加纤维原料,以避免两种纤维之间存在较大空隙,导致热压定型失败

Benefits of technology

本发明中,通过活动板的设置,能够将堆积的团状纤维抚平,避免定量辊压时,导致空隙过大,影响热压定型的效果。

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of display fabric production, specifically to a display fabric production and shaping equipment and its usage method. The equipment includes a base, a first transmission chamber fixed to the top of the base, a second transmission chamber located above the first transmission chamber, an output belt at the front end of the first transmission chamber, and a transmission belt at the front end of the second transmission chamber. An actuating mechanism is installed inside the first transmission chamber, and the first and second transmission chambers have identical structures. This display fabric production and shaping equipment, through the arrangement of movable plates, can smooth out accumulated clumps of fibers, preventing excessive gaps during quantitative roller pressing that could affect the heat-pressing effect. Furthermore, the arrangement of several actuating wheels allows for the detection of the surface of the smoothed fiber blocks. When gaps are found, the falling actuating wheels trigger fiber release, filling the missing areas, and the brush plate quickly collects the fibers, preventing them from getting stuck in the equipment.
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Description

Technical Field

[0001] This invention relates to the field of display fabric production, specifically to a display fabric production shaping equipment and its usage method. Background Technology

[0002] Display fabric is a special fabric used for various outdoor advertising displays. It is commonly used in subways, train stations, and other similar locations. It is characterized by its simple production, convenient installation, and high durability. Display fabric is generally made using a non-woven fabric manufacturing process. In its production, plastic fibers are mixed with other fibers and then hot-pressed through high-temperature rollers to fuse the plastic fibers together and form the fabric.

[0003] The following problems were found to be unresolved: 1. Before fiber processing, when a large amount of material is piled up in clumps on the conveyor belt, the fiber blocks formed when directly squeezed by the pressure rollers may have uneven parts, so they need to be smoothed to facilitate the use of the device; 2. Since the fiber blocks may be uneven, fiber raw materials need to be added as needed to avoid large gaps between the two types of fibers, which could lead to failure of hot pressing and shaping. Summary of the Invention

[0004] The purpose of this invention is to provide a display fabric production and shaping device and its usage method to solve the problems mentioned in the background art. To achieve the above objective, this invention provides the following technical solution: a display fabric production and shaping device, comprising a base, a first transmission chamber fixed to the top of the base, a second transmission chamber disposed within the first transmission chamber, an output belt disposed at the front end of the first transmission chamber, a transmission belt disposed at the front end of the second transmission chamber, a toggle mechanism disposed inside the first transmission chamber, and the first and second transmission chambers having the same structure; The actuating mechanism includes a movable plate, which is slidably connected to the inner wall of the first transmission chamber. The inner wall of the first transmission chamber has symmetrically arranged horizontal grooves, and a V-shaped guide groove is connected between the two horizontal grooves. The two sides of the movable plate are slidably engaged with the guide groove and the horizontal groove. Two dispersion plates are symmetrically slidably arranged in the inner wall of the movable plate, and a pressing rod is fixed to the top of the dispersion plate. The top of the pressing rod is inserted into a semi-Y-shaped sliding groove. The sliding groove is opened on the top wall of the first transmission chamber, and a buffer plate is slidably connected in the inner wall of the sliding groove. The top of the buffer plate is connected to the sliding groove by a spring. The top of the first transmission chamber is provided with a filler.

[0005] Preferably, the bottom cross-section of the transverse groove is inclined, and the front and rear ends of the V-shaped guide groove are staggered.

[0006] Preferably, the dispersion plate includes a movable cavity, in which two symmetrically arranged movable blocks are slidably connected, and a brush plate is slidably connected to the inner wall of the two movable blocks. A vertical rod is fixedly connected to the top of the brush plate, and an inclined push plate is inserted into the inner wall of the vertical rod. Two inclined surfaces in different directions are respectively opened at both ends of the push plate. A sleeve is fitted on the outer wall of the vertical rod, and the outer wall of the sleeve is slidably connected to the inner wall of the movable cavity. Two symmetrically arranged guide blocks are fixed on the inner wall of the sleeve, and the inclined surfaces of the two guide blocks match the inclined surfaces at both ends of the push plate. The top of the sleeve is fixedly connected to a telescopic plate, and the top of the telescopic plate is hinged to a lower plate, and the top of the lower plate is hinged to an upper plate. The side wall of the upper plate is connected to the side wall of the lower plate by a tension spring. A protrusion is provided on the top side wall of the upper plate, and a horizontal plate is inserted into one side of the protrusion. An arc-shaped groove is provided on the side wall of the horizontal plate, and the arc-shaped groove and the protrusion are slidably connected. A connecting plate is fixedly connected to the front end of the horizontal plate, and a primary slide rod is fixedly connected to the front end of the connecting plate. A bottom column is sleeved on the outer wall of the primary slide rod, and a secondary slide rod is inserted into the top of the primary slide rod. The primary slide rod, the secondary slide rod, and the bottom column are all connected by springs. The sleeve and the vertical rod are connected by a spring.

[0007] Preferably, the dispersion plate further includes a control chamber, which is opened in the inner wall of the dispersion plate. A turning gear is rotatably connected to the inner wall of the control chamber, and a pulling plate is fixedly connected to the shaft end of the turning gear. Both the upper and lower ends of the pulling plate are hinged with hinge rods, and the ends of the two hinge rods are respectively connected to two moving blocks. A gear plate with a U-shaped structure is inserted into the outer wall of the actuating gear, and the gear plate meshes with the actuating gear. The top of the dispersion plate is fixedly connected to a telescopic rod, and the top of the telescopic rod is threadedly connected to a reciprocating screw, and the end of the reciprocating screw is fixedly connected to a servo motor.

[0008] Preferably, the secondary slide bar and the sliding groove are arranged horizontally, and the primary slide bar, the secondary slide bar and the bottom column are all inserted into the extrusion rod, and the outer diameter of the secondary slide bar is larger than the inner diameter of the sliding groove.

[0009] Preferably, the filling component includes a filling chamber, which is fixedly connected to the bottom wall of the first transmission chamber. The inner wall of the filling chamber has a feeding groove, and the bottom end of the feeding groove has an output port. The bottom end of the output port is slidably connected to a guide plate, which has a release port. An L-shaped plate is fixedly attached to the front end of the guide plate, and a push block is fixedly attached to the top end of the L-shaped plate. The surface of the push block has an inclined surface formed by machining, and a primary toothed plate is fixedly attached to the front end of the push block. An installation piece is inserted into the outer wall of the primary toothed plate, and a transmission gear is slidably connected to the installation piece. A secondary toothed plate is hinged to the bottom end of the transmission gear, and a connecting piece is hinged to the front end of the secondary toothed plate. A transmission disc is hinged to the side wall of the connecting piece. A lever is rotatably connected to the other side of the transmission disc, and both ends of the lever are fixedly connected to mounting plates, with lever wheels rotatably connected to the front ends of the two connecting plates.

[0010] Preferably, a rotating cavity is formed in the inner wall of the filling chamber, and the rotating cavity is rotatably connected to the actuating rod.

[0011] A method of using a display fabric production and shaping equipment includes the following steps: S1. With the start of the equipment, a large amount of material is conveyed through the first and second transmission belts via the transmission belt, and the servo motor drives the movable plate to slide in the transverse groove through the reciprocating screw. As the movable plate continues to move forward, the movable plate pushes the two dispersing plates forward. At this time, the brush plate on the dispersing plate moves forward and pushes the excess material forward. At this time, the extrusion rod on the dispersing plate slides along the sliding groove. At this time, the dispersing plate moves to the sides through the movement of the extrusion rod, pushing the excess material to the sides. S2. At the same time, the movable plate has moved from the horizontal groove to the guide groove. Since the front and rear ends of the guide groove are staggered, the movable plate moves upward through the V-shaped structure. At this time, the secondary slide rod is in contact with the outer wall of the guide groove, squeezing the primary slide rod and the secondary slide rod to retract. The primary slide rod moves downward and pushes the connecting plate downward. The edge of the arc groove in the horizontal plate of the connecting plate squeezes the upper plate to move to one side. At this time, since the upper plate and the lower plate are connected by a tension spring, the upper plate can be pushed to rotate to the side when the horizontal plate moves downward. At this time, the upper plate and the lower plate quickly retract through the tension spring. S3. Next, the lower plate moves up and pulls the telescopic plate. The telescopic plate drives the sleeve to rise. The guide block on the side wall of the sleeve pushes the push plate to move. Since the push plate is set at an angle, it can push the vertical rod to rise. The vertical rod drives the brush plate to rise. The brush plate is put into the moving block, which can make the brush plate quickly separate from the material. Then the movable plate moves through the reciprocating screw. The movable plate slides into the uppermost horizontal groove until it enters the lower horizontal groove through the sliding groove again for leveling. S4. Subsequently, the material is conveyed through the actuating wheel. The actuating wheel passes through the material and rotates until it passes through the material shortage area. At this time, the actuating wheel moves downward and rotates through the mounting plate. At this time, the actuating rod rotates in the filling table. The actuating rod drives the transmission plate to rotate. The transmission plate pulls the connecting piece to rotate. The connecting piece pulls the secondary toothed plate backward. The secondary toothed plate pushes the transmission gear. The transmission gear then drives the primary toothed plate to move forward. By extending the range, the movement distance of the primary toothed plate is increased. S5. The last stage toothed plate moves forward, pushing the pusher block forward. The pusher block and the guide plate move forward synchronously. The release port on the guide plate is connected to the output port. At the same time, the inclined surface on the pusher block will continuously squeeze the material, squeezing the material towards the output port to complete the material replenishment.

[0012] Compared with the prior art, the beneficial effects of the present invention are as follows: In this invention, the movable plate can smooth out the accumulated clumps of fibers, preventing excessive gaps during quantitative roller pressing that would affect the heat pressing and shaping effect.

[0013] In this invention, the retractable design of the brush plate allows for rapid retraction during smoothing, brushing out the fibers and preventing them from getting stuck in the device.

[0014] In this invention, by setting up several actuating wheels, the surface of the smoothed fiber block can be detected. When there is a gap, the actuating wheels fall to trigger the release of fibers and fill the missing parts. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention. Figure 1 ; Figure 2 This is a schematic diagram of the overall three-dimensional structure of the present invention. Figure 2 ; Figure 3 This is a partial cross-sectional view of the actuating mechanism in this invention; Figure 4 This is a schematic diagram of the sliding groove structure in this invention; Figure 5 This is a schematic diagram of the connection structure between the guide groove and the transverse groove in this invention; Figure 6 This is a schematic cross-sectional view of the filler in this invention. Figure 1 ; Figure 7 This is a schematic cross-sectional view of the filler in this invention. Figure 2 ; Figure 8 For the present invention Figure 7 Enlarged structural diagram at point A in the middle; Figure 9 This is a schematic diagram of the three-dimensional structure of the movable plate in this invention; Figure 10 This is a schematic diagram of the three-dimensional structure of the dispersion plate in this invention; Figure 11 For the present invention Figure 10 Enlarged structural diagram at point B; Figure 12 This is a schematic cross-sectional view of the dispersion plate in this invention; Figure 13 This is a schematic cross-sectional view of the sleeve structure in this invention; Figure 14 This is a cross-sectional view of the control compartment in this invention.

[0016] In the diagram: 1. Base; 2. First transmission chamber; 3. Second transmission chamber; 4. Output belt; 5. Actuating mechanism; 51. Movable plate; 52. Horizontal groove; 53. Guide groove; 54. Dispersion plate; 541. Movable cavity; 542. Moving block; 543. Brush plate; 544. Vertical rod; 545. Push plate; 546. Sleeve; 547. Guide block; 548. Telescopic plate; 549. Lower plate; 5410. Upper plate; 5411. Horizontal plate; 5412. Arc groove; 5413. Connecting plate; 5414. First-stage slide rod; 5415. Second-stage slide rod; 5416. Base column; 5417. Control compartment; 5418. Actuating gear; 5419. Pulling plate; 5420. Hinge rod; 5421. Gear plate; 55. Pressing rod; 56. Sliding groove; 57. Buffer plate; 58. Filler; 581. Filling compartment; 582. Feeding groove; 583. Guide plate; 584. Release port; 585. Push block; 586. Primary gear plate; 587. Mounting plate; 588. Transmission gear; 589. Secondary gear plate; 5810. Connecting plate; 5811. Transmission disc; 5812. Actuating rod; 5813. Mounting plate; 5814. Actuating wheel. Detailed Implementation

[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0018] Please see Figures 1 to 14 The present invention provides a technical solution: a display fabric production and shaping equipment, including a base 1, a first transmission chamber 2 fixed at the top of the base 1, a second transmission chamber 3 provided in the first transmission chamber 2, an output belt 4 provided at the front end of the first transmission chamber 2, a transmission belt provided at the front end of the second transmission chamber 3, a toggle mechanism 5 provided inside the first transmission chamber 2, and the first transmission chamber 2 and the second transmission chamber 3 have the same structure. The actuating mechanism 5 includes a movable plate 51, which is slidably connected to the inner wall of the first transmission chamber 2. The inner wall of the first transmission chamber 2 is provided with symmetrically arranged transverse grooves 52, and a V-shaped guide groove 53 is connected between the two transverse grooves 52. The two sides of the movable plate 51 are slidably engaged with the guide groove 53 and the transverse groove 52. Two dispersion plates 54 are symmetrically slidably arranged in the inner wall of the movable plate 51. A pressing rod 55 is fixed at the top of the dispersion plate 54, and a semi-Y-shaped sliding groove 56 is inserted into the top of the pressing rod 55. The sliding groove 56 is opened on the top wall of the first transmission chamber 2, and a buffer plate 57 is slidably connected in the inner wall of the sliding groove 56. The top of the buffer plate 57 is connected to the sliding groove 56 by a spring. The top of the first transmission chamber 2 is provided with a filler 58.

[0019] In this embodiment, as Figure 1 and Figure 5 As shown, the bottom cross-section of the transverse groove 52 is set with an inclined surface, and the front and rear ends of the V-shaped guide groove 53 are staggered, so that the movable plate 51 can slide in the transverse groove 52 and the guide groove 53 and move up and down, which can push the movable plate 51 to reciprocate and continuously smooth it.

[0020] In this embodiment, as Figure 9 , Figure 10 , Figure 11 and Figure 12 As shown, the dispersion plate 54 includes a movable cavity 541. Two symmetrically arranged moving blocks 542 are slidably connected to the inner wall of the movable cavity 541, and a brush plate 543 is slidably connected to the inner wall of the two moving blocks 542. A vertical rod 544 is fixedly connected to the top of the brush plate 543, and an inclined push plate 545 is inserted into the inner wall of the vertical rod 544. Two inclined surfaces in different directions are opened at both ends of the push plate 545. A sleeve 546 is sleeved on the outer wall of the vertical rod 544, and the outer wall of the sleeve 546 is slidably connected to the inner wall of the movable cavity 541. Two symmetrically arranged guide blocks 547 are fixed on the inner wall of the sleeve 546, and the inclined surfaces of the two guide blocks 547 match the inclined surfaces at both ends of the push plate 545. A telescopic plate 548 is fixedly connected to the top of the sleeve 546, and a lower plate 549 is hinged to the top of the telescopic plate 548. An upper plate 5410 is hinged to the top of the lower plate 549. The side wall of the upper plate 5410 is connected to the side wall of the lower plate 549 via a tension spring. A protrusion is provided on the top side wall of the upper plate 5410, and a horizontal plate 5411 is inserted into one side of the protrusion. An arc-shaped groove 5412 is formed on the side wall of the horizontal plate 5411. The arc groove 5412 and the protrusion are slidably connected. The front end of the horizontal plate 5411 is fixedly connected to the connecting plate 5413, and the front end of the connecting plate 5413 is fixedly connected to the first-level slide rod 5414. The outer wall of the first-level slide rod 5414 is fitted with a bottom column 5416, and the top end of the first-level slide rod 5414 is inserted with a second-level slide rod 5415. The first-level slide rod 5414, the second-level slide rod 5415 and the bottom column 5416 are all connected by springs. The sleeve 546 and the vertical rod 544 are connected by a spring. The brush plate 543, which can be slidably set, can be quickly retracted after smoothing to push out the fibers and prevent them from getting stuck in the machine.

[0021] In this embodiment, as Figure 10 , Figure 11 , Figure 12 , Figure 13 and Figure 14 As shown, the dispersion plate 54 also includes a control chamber 5417, which is opened in the inner wall of the dispersion plate 54. A toggle gear 5418 is rotatably connected in the inner wall of the control chamber 5417. A pulling plate 5419 is fixedly connected to the shaft end of the toggle gear 5418. Both the upper and lower ends of the pulling plate 5419 are hinged with hinge rods 5420, and the ends of the two hinge rods 5420 are respectively connected to two moving blocks 542. A gear plate 5421 with a U-shaped structure is inserted into the outer wall of the actuating gear 5418, and the gear plate 5421 meshes with the actuating gear 5418. A telescopic rod is fixedly connected to the top of the dispersing plate 54, and a reciprocating screw is threaded to the top of the telescopic rod. A servo motor is fixedly connected to the end of the reciprocating screw, which can quickly unfold the moving plate in the dispersing plate 54, quickly disperse excess pushed material, and facilitate smoothing.

[0022] In this embodiment, as Figure 1 and Figure 10 As shown, the secondary slide bar 5415 and the sliding groove 56 are horizontally arranged, and the primary slide bar 5414, the secondary slide bar 5415 and the bottom column 5416 are all inserted into the extrusion rod 55. The outer diameter of the secondary slide bar 5415 is larger than the inner diameter of the sliding groove 56, so the primary slide bar 5414 can be pushed by the secondary slide bar 5415. The primary slide bar 5414 can quickly trigger the retraction of the brush plate 543.

[0023] In this embodiment, as Figure 3 , Figure 6 , Figure 7 and Figure 8 As shown, the filling component 58 includes a filling chamber 581, which is fixedly connected to the bottom wall of the first transmission chamber 2. An infeeding groove 582 is provided in the inner wall of the filling chamber 581, and an output port is provided at the bottom end of the infeeding groove 582. A guide plate 583 is slidably connected to the bottom end of the output port. A release port 584 is provided on the guide plate 583. An L-shaped plate is fixedly connected to the front end of the guide plate 583, and a push block 585 is fixedly connected to the top end of the L-shaped plate. The surface of the push block 585 has an inclined surface formed by machining, and a first-stage toothed plate 586 is fixedly connected to the front end of the push block 585. An installation piece 587 is inserted into the outer wall of the first-stage toothed plate 586, and a transmission gear 588 is slidably connected to the installation piece 587. A second-stage toothed plate 589 is hinged to the bottom end of the transmission gear 588, and a connecting piece 5810 is hinged to the front end of the second-stage toothed plate 589. A transmission disc 5811 is hinged to the side wall of the connecting piece 5810. A lever 5812 is rotatably connected to the other side of the transmission disc 5811, and mounting plates 5813 are fixedly connected to both ends of the lever 5812. A lever 5814 is rotatably connected to the front end of the two connecting plates 5413. With the lever 5814, when a gap is encountered, the push block 585 is triggered to move forward and push out the material for replenishment.

[0024] In this embodiment, as Figure 6 and Figure 7 As shown, a rotating cavity is provided in the inner wall of the filling chamber 581, and the rotating cavity is rotatably connected to the actuating rod 5812, so that the rotation of the actuating rod 5812 can trigger the release of the filling component 58.

[0025] In this embodiment, as Figures 1 to 14 As shown, a method of using a display fabric production and shaping equipment includes the following steps: S1. With the start of the equipment, a large amount of material is conveyed through the transmission belt in the first and second transmission belts, and the servo motor drives the movable plate 51 to slide in the transverse groove 52 through the reciprocating screw. As the movable plate 51 continues to move forward, the movable plate 51 pushes the two dispersing plates 54 forward. At this time, the brush plate 543 on the dispersing plate 54 moves forward and pushes the excess material forward. At this time, the extrusion rod 55 on the dispersing plate 54 slides along the sliding groove 56. At this time, the movement of the extrusion rod 55 causes the two dispersing plates 54 to move to both sides, pushing the excess material to both sides. S2. Simultaneously, the movable plate 51 has moved from the transverse groove 52 to the guide groove 53. Since the front and rear ends of the guide groove 53 are staggered, the movable plate 51 moves upward through the V-shaped structure. At this time, the secondary slide rod 5415 is in contact with the outer wall of the guide groove 53, squeezing the primary slide rod 5414 and the secondary slide rod 5415 to retract. The primary slide rod 5414 moves downward and pushes the connecting plate 5413 downward. The edge of the arc groove 5412 in the transverse plate 5411 of the connecting plate 5413 squeezes the upper plate 5410 to move to one side. At this time, since the upper plate 5410 and the lower plate 549 are connected by a tension spring, when the transverse plate 5411 moves downward, it can push the upper plate 5410 to rotate to the side. At this time, the upper plate 5410 and the lower plate 549 quickly retract through the tension spring. S3. Next, the lower plate 549 moves upward and pulls the telescopic plate 548. The telescopic plate 548 drives the sleeve 546 to rise. The guide block 547 on the side wall of the sleeve 546 pushes the push plate 545 to move. Since the push plate 545 is set at an angle, it can push the vertical rod 544 to rise. The vertical rod 544 drives the brush plate 543 to rise. The brush plate 543 is put into the moving block 542, which enables the brush plate 543 to quickly separate from the material. Then the movable plate 51 moves through the reciprocating screw. The movable plate 51 slides into the uppermost horizontal groove 52 until it enters the lower horizontal groove 52 again through the sliding groove 56 for leveling again. S4. Subsequently, the material is conveyed through the actuating wheel 5814. The actuating wheel 5814 passes the material and rotates until it passes the material shortage area. At this time, the actuating wheel 5814 moves downward and rotates through the mounting plate 5813. At this time, the actuating rod 5812 rotates in the filling table. The actuating rod 5812 drives the transmission disk 5811 to rotate. The transmission disk 5811 pulls the connecting piece 5810 to rotate. The connecting piece 5810 pulls the secondary toothed plate 589 to move backward. The secondary toothed plate 589 pushes the transmission gear 588. The transmission gear 588 then drives the primary toothed plate 586 to move forward. By extending the range, the moving distance of the primary toothed plate 586 is increased. S5. The last stage toothed plate 586 moves forward, pushing the pusher block 585 forward. The pusher block 585 and the guide plate 583 move forward synchronously. The release port 584 on the guide plate 583 is connected to the output port. At the same time, the inclined surface on the pusher block 585 will continuously squeeze the material, squeezing the material towards the output port to complete the material replenishment.

[0026] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A display fabric production and shaping device, comprising a base (1), characterized in that: The base (1) has a first transmission chamber (2) fixed at its top, and a second transmission chamber (3) is provided in the first transmission chamber (2). The front end of the first transmission chamber (2) is provided with an output belt (4), and the front end of the second transmission chamber (3) is provided with a transmission belt. The first transmission chamber (2) is provided with a toggle mechanism (5), and the first transmission chamber (2) and the second transmission chamber (3) have the same structure. The actuating mechanism (5) includes a movable plate (51), which is slidably connected to the inner wall of the first transmission chamber (2). The inner wall of the first transmission chamber (2) is provided with symmetrically arranged transverse grooves (52), and a V-shaped guide groove (53) is connected between the two transverse grooves (52). The two sides of the movable plate (51) are slidably engaged with the guide groove (53) and the transverse groove (52). Two dispersing plates (54) are symmetrically slidably arranged in the inner wall of the movable plate (51), and a pressing rod (55) is fixed at the top of the dispersing plate (54). A semi-Y-shaped sliding groove (56) is inserted into the top of the pressing rod (55). The sliding groove (56) is opened on the top wall of the first transmission chamber (2), and a buffer plate (57) is slidably connected in the inner wall of the sliding groove (56). The top of the buffer plate (57) is connected to the sliding groove (56) by a spring. The top of the first transmission chamber (2) is provided with a filler (58); The dispersion plate (54) includes a movable cavity (541). Two symmetrically arranged movable blocks (542) are slidably connected to the inner wall of the movable cavity (541), and a brush plate (543) is slidably connected to the inner wall of the two movable blocks (542). A vertical rod (544) is fixedly connected to the top of the brush plate (543), and an inclined push plate (545) is inserted into the inner wall of the vertical rod (544). Two inclined surfaces in different directions are opened at both ends of the push plate (545). A sleeve (546) is sleeved on the outer wall of the vertical rod (544), and the outer wall of the sleeve (546) is slidably connected to the inner wall of the movable cavity (541). Two symmetrically arranged guide blocks (547) are fixed on the inner wall of the sleeve (546), and the inclined surfaces of the two guide blocks (547) match the inclined surfaces at both ends of the push plate (545). The top end of the sleeve (546) is fixedly connected to a telescopic plate (548), and the top end of the telescopic plate (548) is hinged to a lower plate (549), and the top end of the lower plate (549) is hinged to an upper plate (5410). The side wall of the upper plate (5410) is connected to the side wall of the lower plate (549) by a tension spring. The top side wall of the upper plate (5410) is provided with a protrusion, and a horizontal plate (5411) is inserted into one side of the protrusion. An arc groove (5412) is provided on the side wall of the horizontal plate (5411). The arc groove (5412) and the protrusion are slidably connected. The front end of the horizontal plate (5411) is fixedly connected to the connecting plate (5413), and the front end of the connecting plate (5413) is fixedly connected to the first-level slide rod (5414). The outer wall of the first-level slide rod (5414) is fitted with a bottom column (5416), and the top end of the first-level slide rod (5414) is inserted with a second-level slide rod (5415). The first-level slide rod (5414), the second-level slide rod (5415) and the bottom column (5416) are all connected by springs. The sleeve (546) and the vertical rod (544) are connected by a spring.

2. The display fabric production and shaping equipment according to claim 1, characterized in that: The bottom cross-section of the transverse groove (52) is set with an inclined surface, and the front and rear ends of the V-shaped guide groove (53) are staggered.

3. The display fabric production and shaping equipment according to claim 1, characterized in that: The dispersion plate (54) also includes a control chamber (5417), which is located in the inner wall of the dispersion plate (54). A gear (5418) is rotatably connected to the inner wall of the control chamber (5417), and a pulling plate (5419) is fixedly connected to the shaft end of the gear (5418). Both the upper and lower ends of the pulling plate (5419) are hinged with hinge rods (5420), and the ends of the two hinge rods (5420) are respectively connected to two moving blocks (542). A gear plate (5421) with a U-shaped structure is inserted into the outer wall of the actuating gear (5418), and the gear plate (5421) meshes with the actuating gear (5418). The top of the dispersion plate (54) is fixedly connected to a telescopic rod, and the top of the telescopic rod is threadedly connected to a reciprocating screw, and the end of the reciprocating screw is fixedly connected to a servo motor.

4. The display fabric production and shaping equipment according to claim 3, characterized in that: The secondary slide bar (5415) and the sliding groove (56) are horizontally arranged, and the primary slide bar (5414), the secondary slide bar (5415) and the bottom column (5416) are all inserted into the extrusion rod (55). The outer diameter of the secondary slide bar (5415) is larger than the inner diameter of the sliding groove (56).

5. The display fabric production and shaping equipment according to claim 4, characterized in that: The filling component (58) includes a filling chamber (581), which is fixedly connected to the bottom wall of the first transmission chamber (2). An infeed groove (582) is provided in the inner wall of the filling chamber (581), and an output port is provided at the bottom end of the infeed groove (582). A guide plate (583) is slidably connected to the bottom end of the output port. A release port (584) is provided on the guide plate (583), and an L-shaped plate is fixedly attached to the front end of the guide plate (583). A pusher block (585) is fixedly connected to the top end of the L-shaped plate. The surface of the block (585) has an inclined surface formed by machining, and a first-stage toothed plate (586) is fixedly connected to the front end of the push block (585). An installation piece (587) is inserted into the outer wall of the first-stage toothed plate (586), and a transmission gear (588) is slidably connected on the installation piece (587). A second-stage toothed plate (589) is hinged to the bottom end of the transmission gear (588), and a connecting piece (5810) is hinged to the front end of the second-stage toothed plate (589). A transmission disc (5811) is hinged to the side wall of the connecting piece (5810). The other side of the transmission disc (5811) is rotatably connected to a lever (5812), and both ends of the lever (5812) are fixedly connected to mounting plates (5813), and the front ends of the two connecting plates (5413) are rotatably connected to lever wheels (5814).

6. The display fabric production and shaping equipment according to claim 5, characterized in that: The inner wall of the filling chamber (581) is provided with a rotating cavity, and the rotating cavity is rotatably connected to the actuating rod (5812).

7. The method of using the display fabric production and shaping equipment according to claim 6, characterized in that: Includes the following steps: S1. With the start of the equipment, a large amount of material is conveyed through the transmission belt in the first and second transmission belts, and the servo motor drives the movable plate (51) to slide in the transverse groove (52) through the reciprocating screw. As the movable plate (51) continues to move forward, the movable plate (51) pushes the two dispersing plates (54) forward. At this time, the brush plate (543) on the dispersing plate (54) moves forward and pushes the excess material forward. At this time, the extrusion rod (55) on the dispersing plate (54) slides along the sliding groove (56). At this time, the dispersing plate (54) causes the two dispersing plates (54) to move to both sides through the movement of the extrusion rod (55), pushing the excess material to both sides. S2. Simultaneously, the movable plate (51) has moved from the transverse groove (52) to the guide groove (53). Since the front and rear ends of the guide groove (53) are staggered, the movable plate (51) moves upward through the V-shaped structure. At this time, the secondary slide rod (5415) fits against the outer wall of the guide groove (53), squeezing the primary slide rod (5414) and the secondary slide rod (5415) to contract. The primary slide rod (5414) moves downward, and the primary slide rod (5415)... When the connecting plate (5413) is pushed down, the edge of the arc groove (5412) in the horizontal plate (5411) of the connecting plate (5413) presses the upper plate (5410) to move to one side. At this time, since the upper plate (5410) and the lower plate (549) are connected by a tension spring, when the horizontal plate (5411) moves down, it can push the upper plate (5410) to rotate to the side. At this time, the upper plate (5410) and the lower plate (549) quickly close together by the tension spring. S3. Next, the lower plate (549) moves upward to pull the telescopic plate (548). The telescopic plate (548) drives the sleeve (546) to rise. The guide block (547) on the side wall of the sleeve (546) pushes the push plate (545) to move. Since the push plate (545) is set at an angle, it can push the vertical rod (544) to rise. The vertical rod (544) drives the brush plate (543) to rise. The brush plate (543) is put into the moving block (542), which enables the brush plate (543) to quickly separate from the material. Then the movable plate (51) moves through the reciprocating screw. The movable plate (51) slides into the uppermost horizontal groove (52) until it enters the lower horizontal groove (52) again through the sliding groove (56) for leveling again. S4. Subsequently, the material is transferred through the actuating wheel (5814). The actuating wheel (5814) passes through the material and rotates until it passes through the material shortage area. Then, the actuating wheel (5814) moves downward and rotates through the mounting plate (5813). At this time, the actuating rod (5812) rotates in the filling table. The actuating rod (5812) drives the transmission disc (5811) to rotate. The transmission disc (5811) pulls the connecting piece (5810) to rotate. The connecting piece (5810) pulls the secondary toothed plate (589) to move backward. The secondary toothed plate (589) pushes the transmission gear (588). The transmission gear (588) then drives the primary toothed plate (586) to move forward. By extending the range, the moving distance of the primary toothed plate (586) is increased. S5. The last toothed plate (586) moves forward to push the push block (585) forward. The push block (585) and the guide plate (583) move forward synchronously. The release port (584) on the guide plate (583) is connected to the output port. At the same time, the inclined surface on the push block (585) will continuously squeeze the material and squeeze the material toward the output port to complete the replenishment of the material.

Citation Information

Patent Citations

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