Shearing equipment for processing regenerated base cloth
By introducing a clamping component into the recycled base cloth processing equipment to automatically clamp the cut base cloth and move the conveyor frame, the problem of manual removal of the base cloth in existing equipment is solved, and efficient cutting operation is achieved.
Patent Information
- Application Number
- CN202511033949.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-25
- Publication Date
- 2025-10-17
AI Technical Summary
In existing recycled base fabric processing equipment, the base fabric needs to be manually removed after shearing for further transportation, resulting in low shearing efficiency.
A shearing device including a clamping component is designed. The clamping component automatically clamps the sheared base cloth and drives the conveyor frame to move during the loading process, so that the sheared base cloth is kept away from the shearing knife, and loading and unloading are carried out simultaneously.
The cutting interval time is shortened, the cutting efficiency of the recycled base cloth is improved, the workload of relevant personnel is reduced, and the convenience of operation is improved.
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Figure CN120791885A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of regenerated base fabric processing, in particular to a shearing device for regenerated base fabric processing. BACKGROUND
[0002] The regenerated base fabric is also called regenerated fiber base fabric or environment-friendly base fabric, is a base material made of waste plastics, textiles and the like as raw materials through chemical or physical processing, can replace raw materials to reduce resource consumption, and thus plays an important role.
[0003] In the prior art, there is a shearing device for regenerated base fabric processing, which comprises a device body, a shearing table is further arranged on the device body, a shearing mechanism is further arranged on the top of the shearing table, the shearing mechanism comprises a shearing cutter and a lifting assembly, the shearing cutter is in sliding connection with the device body and the sliding direction is the vertical direction, and the lifting assembly is used for driving the shearing cutter to slide. A plurality of conveying rollers and a driving assembly are further arranged on one side of the shearing table, the plurality of conveying rollers are in rotary connection with the device body and are located below the shearing cutter. The driving assembly is used for driving each conveying roller to rotate. In use, the base fabric to be sheared is placed on the conveying rollers, then the driving assembly drives the conveying rollers to rotate, the base fabric is transported to the position directly below the shearing cutter, then the shearing cutter moves downward under the driving of the lifting assembly, so that the shearing cutter shears the base fabric, and relevant personnel take out the sheared base fabric.
[0004] According to the related technology in the above, after the shearing cutter shears the base fabric each time, relevant personnel need to manually move the sheared base fabric away from the shearing cutter, so that the driving assembly can continue to drive the conveying rollers to rotate and transport the base fabric, which increases the workload of the relevant personnel, increases the interval time of shearing, and reduces the shearing efficiency of the regenerated base fabric, and thus needs to be improved. SUMMARY
[0005] In order to improve the shearing efficiency of the regenerated base fabric, the application provides a shearing device for regenerated base fabric processing.
[0006] The shearing device for regenerated base fabric processing provided by the application adopts the following technical scheme: A shearing device for regenerated base fabric processing, comprising a device body, a shearing mechanism and a feeding mechanism are further arranged on the device body, the shearing mechanism comprises a shearing cutter, the feeding mechanism is used for driving the regenerated base fabric to approach the shearing cutter, a conveying mechanism is further arranged on the side, away from the feeding mechanism, of the shearing cutter, the conveying mechanism comprises a conveying frame, a clamping assembly and a conveying assembly, the conveying assembly is used for driving the conveying frame to move away from the shearing cutter, and the clamping assembly is arranged on the conveying frame and is used for clamping the sheared regenerated base fabric.
[0007] Compared with the prior art, the regenerated base cloth after shearing needs to be manually taken away from the shearing knife by the relevant personnel after each shearing is completed, and then the regenerated base cloth can be continuously transported, thereby increasing the interval time of shearing. The conveying mechanism is arranged, so that after the clamping assembly clamps the regenerated base cloth after shearing, the conveying assembly can drive the conveying frame to displace during the continuous feeding of the feeding mechanism, so that the regenerated base cloth after shearing is away from the shearing knife, the feeding and discharging are simultaneously performed, the operation of the relevant personnel is effectively facilitated, the workload of the relevant personnel is reduced, the interval time of shearing is reduced, and the shearing efficiency of the regenerated base cloth is ensured.
[0008] Preferably, the clamping assembly comprises a setting frame, a rotating frame and a driving piece. The conveying frame further extends in the direction close to the regenerated base cloth and has a clamping portion. The setting frame is arranged on the conveying frame. The rotating frame is rotationally connected with the setting frame. The regenerated base cloth on the clamping portion is located on the rotating path of the rotating frame. The driving piece is used to drive the rotating frame to rotate.
[0009] The clamping assembly is arranged, so that when the regenerated base cloth needs to be clamped, the driving piece can drive the rotating frame to rotate, so that the rotating frame gradually approaches the clamping portion, and the rotating frame and the clamping portion clamp the side end of the regenerated base cloth, thereby clamping the regenerated base cloth, facilitating the operation of the relevant personnel, and reducing the probability of interference between the rotating frame and the regenerated base cloth during conveying of the regenerated base cloth.
[0010] Preferably, the clamping assembly further comprises a sliding frame and a transmission frame. The sliding frame is slidingly connected with the conveying frame. One end of the transmission frame is rotationally connected with the sliding frame, and the other end is rotationally connected with the rotating frame. The driving piece is used to drive the sliding frame to slide.
[0011] The clamping assembly is arranged, so that when the driving piece drives the sliding frame to slide, the sliding frame can drive the transmission frame to displace, so that the end of the transmission frame drives the corresponding rotating frame to rotate, thereby driving the rotating frame. The existence of the sliding frame and the transmission frame can effectively ensure the stability of the rotating frame in the current state, and further ensure the clamping effect of the rotating frame on the regenerated base cloth.
[0012] Preferably, the setting frame is slidingly connected with the conveying frame, and the sliding direction is the same as the sliding direction of the sliding frame. The conveying frame further comprises a locking mechanism. The locking mechanism is used to lock the setting frame.
[0013] By adopting the above technical scheme, the locking mechanism is arranged, so that when the rotating frame is rotated, the locking mechanism can cancel the locking of the setting frame, so that after the rotating frame abuts against the setting frame, the setting frame can slide together, so that the rotating frame can translate and gradually approach the regenerated base cloth, thereby clamping regenerated base cloths of different thicknesses, effectively improving the use range and practicality of the application.
[0014] Preferably, the locking mechanism comprises a locking frame and a linkage, the locking frame is in sliding connection with the conveying frame, and one end of the sliding path of the locking frame is inserted into the setting frame, and the transmission frame drives the locking frame to slide through the linkage.
[0015] By adopting the above technical scheme, the locking frame can be inserted into the setting frame to lock the setting frame, and when the setting frame needs to be unlocked, the linkage can drive the locking frame to slide, so that the locking frame gradually moves away from the setting frame, thereby achieving the unlocking of the setting frame, effectively ensuring the locking effect of the setting frame.
[0016] Preferably, the linkage comprises a linkage frame, one end of the linkage frame is in rotary connection with the transmission frame, and the other end is in sliding connection with the locking frame.
[0017] By adopting the above technical scheme, when the sliding frame slides under the action of the driving member, the sliding frame can drive the linkage frame to displace, so that the end of the linkage frame drives the locking frame to slide, thereby achieving the driving of the locking frame to slide, thereby achieving the linkage between the locking frame and the rotating frame, effectively facilitating the operation of the relevant personnel, and saving the driving member for sliding the locking frame.
[0018] Preferably, the locking frame is further provided with an avoiding assembly, the avoiding assembly comprises an inserting frame and an elastic member, the inserting frame is in sliding connection with the locking frame, and the sliding direction is the same as that of the locking frame, one end of the inserting frame is close to one side of the conveying frame, and a guide surface is further formed on the one end, and the elastic member is used for resetting the inserting frame.
[0019] By adopting the above technical scheme, when the sliding frame slides back, when the sliding frame passes through the transmission frame and the rotating frame, the setting frame is driven to slide, the setting frame can abut against the guide surface on the inserting frame, thereby driving the inserting frame to slide, so that the inserting frame gives way to the setting frame, and when the setting frame slides to the specified position, the inserting frame can be inserted into the setting frame under the driving of the elastic member, thereby achieving the relocking of the setting frame.
[0020] As preferred, the number of the conveying frames is set to several, and each is located at opposite sides of the equipment body along the width direction of the equipment body, the conveying mechanism further comprises two annular frames, each of which is located at opposite sides of the equipment body along the width direction of the equipment body, each of the annular frames is provided with an annular groove, one end of each of the conveying frames is embedded in the groove of the corresponding annular frame and is in sliding connection with the annular frame, and the conveying assembly is used to drive each of the conveying frames to slide.
[0021] By adopting the above technical scheme, the arrangement of the conveying frames and the annular frames enables the several conveying frames to be driven by the conveying assembly to move in a closed loop along the extension direction of the annular frames, so that the conveying frames can be used in a cycle, and the several conveying frames can be used to convey the uncut base cloth and output the cut fabric, respectively, so that the same conveying frame can be located at different positions of the conveying and output, thereby effectively improving the cutting efficiency of the regenerated base cloth.
[0022] As preferred, the conveying assembly comprises a gear ring, conveying gears and rotating members, the number of the gear rings is set to two, and each is arranged on one of the annular frames, the number of the conveying gears and the rotating members is set to several, and each corresponds to one of the conveying frames, each of the conveying gears is in rotational connection with the corresponding conveying frame and is in engagement with the corresponding gear ring, and the rotating members are used to drive the corresponding conveying gears to rotate.
[0023] By adopting the above technical scheme, the arrangement of the conveying assembly enables the rotating members to drive the conveying gears to rotate, so that the conveying gears are driven by the gear rings to move, thereby effectively achieving the driving of the sliding of the conveying frames, and each of the conveying frames can be driven individually, so that different operations can be performed by each of the conveying frames, thereby effectively improving the automation of the application and facilitating the operation of the relevant personnel.
[0024] As preferred, the conveying frames are further provided with several rollers, each of the rollers is in rotational connection with the conveying frame, and each of the rollers is embedded in the groove of the corresponding annular frame and abuts against the inner wall of the groove of the corresponding annular frame.
[0025] By adopting the above technical scheme, the arrangement of the rollers changes the sliding friction between the conveying frames and the annular frames into the rolling friction between the rollers and the annular frames, thereby effectively reducing the friction between the conveying frames and the annular frames and reducing the wear between the conveying frames and the annular frames, so as to ensure the service life of the application.
[0026] In summary, the application has at least one of the following beneficial technical effects: 1. The arrangement of the conveying mechanism is such that after the clamping assembly clamps the recycled base fabric after shearing, the conveying assembly can drive the conveying frame to move during the continuous feeding of the feeding mechanism, so that the sheared recycled base fabric moves away from the shearing knife, realizing the simultaneous feeding and discharging, effectively facilitating the operation of the relevant personnel, reducing the workload of the relevant personnel, thereby reducing the interval time of shearing, and ensuring the shearing efficiency of the recycled base fabric; 2. The arrangement of the clamping assembly is such that when the recycled base fabric needs to be clamped, the driving member can drive the rotating frame to rotate, so that the rotating frame gradually approaches the clamping part, so that the rotating frame and the clamping part clamp the side end of the recycled base fabric, realizing the clamping of the recycled base fabric, effectively facilitating the operation of the relevant personnel, and at the same time, the probability of interference between the rotating frame and the recycled base fabric during the conveying of the recycled base fabric can be reduced; 3. The arrangement of the conveying frame and the annular frame is such that a plurality of conveying frames can be driven by the conveying assembly to move in a closed loop along the extension direction of the annular frame, so that the conveying frames can be used in a cycle, and a plurality of conveying frames can convey uncut base fabric and output cut fabric, so that the same conveying frame can be located at different positions of conveying and outputting, effectively improving the shearing efficiency of the recycled base fabric. BRIEF DESCRIPTION OF DRAWINGS
[0027] Figure 1 It is a schematic diagram of the whole shearing equipment for processing recycled base fabric in the embodiment of the present application.
[0028] Figure 2 It is a structural schematic diagram of the annular frame in the embodiment of the present application.
[0029] Figure 3 It is a structural schematic diagram of the conveying assembly in the embodiment of the present application.
[0030] BRIEF DESCRIPTION OF DRAWINGS: 1, the device body; 11, the shearing table; 111, the feeding groove; 2, the shearing mechanism; 21, the shearing knife; 22, the lifting cylinder; 3, the feeding mechanism; 31, the feeding roller; 32, the conveyor belt; 4, the conveying mechanism; 41, the conveying frame; 411, the clamping part; 42, the clamping assembly; 421, the setting frame; 4211, the abutting part; 422, the rotating frame; 423, the sliding frame; 424, the transmission frame; 425, the driving member; 43, the conveying assembly; 431, the gear ring; 432, the conveying gear; 433, the rotating member; 44, the annular frame; 45, the roller; 5, the locking mechanism; 51, the locking frame; 52, the linkage member; 521, the linkage frame; 6, the avoiding assembly; 61, the inserting frame; 62, the elastic member. DETAILED DESCRIPTION
[0031] The following will be described in detail in combination with the accompanying Figures 1-3The application is further described in detail.
[0032] The application discloses a shearing device for regenerated base fabric processing. Referring to Figure 1 and Figure 2 The shearing device for regenerated base fabric processing comprises a device body 1, a shearing mechanism 2 and a feeding mechanism 3 are further arranged on the device body 1, the shearing mechanism 2 comprises a shearing cutter 21, and the feeding mechanism 3 is used for driving the regenerated base fabric to approach the shearing cutter 21. A conveying mechanism 4 is further arranged on the side, away from the feeding mechanism 3, of the shearing cutter 21, and the conveying mechanism 4 comprises a conveying frame 41, a clamping assembly 42 and a conveying assembly 43. The conveying assembly 43 is used for driving the conveying frame 41 to move away from the shearing cutter 21. The clamping assembly 42 is arranged on the conveying frame 41 and is used for clamping the sheared regenerated base fabric.
[0033] Referring to Figure 1 The feeding mechanism 3 comprises a feeding roller 31 and a conveying belt 32. The feeding roller 31 is arranged at one end of the device body 1 along the length direction of the device body 1 and is rotationally connected to the device body 1 through a bearing. In the embodiment of the application, a speed reducer motor for driving the feeding roller 31 to rotate is further arranged on the device body 1, the speed reducer motor is fixedly installed on the device body 1, and an output shaft is fixedly connected to the feeding roller 31 through a shaft coupling to drive the feeding roller 31 to rotate.
[0034] Referring to Figure 1 The conveying belt 32 is installed on the device body 1 and is located between the feeding roller 31 and the shearing mechanism 2, and the conveying direction of the conveying belt 32 is the length direction of the device body 1. A shearing table 11 is further arranged on the side, away from the feeding roller 31, of the conveying belt 32, the shearing table 11 is fixedly connected to the device body 1, and the width of the shearing table 11 is smaller than the width of the conveying belt 32. The shearing cutter 21 is located directly above the shearing table 11 and is fixedly provided with a frame at the top, the frame is slidingly connected to the device body 1, and the sliding direction is the vertical direction.
[0035] Referring to Figure 1 The shearing mechanism 2 further comprises a lifting cylinder 22, the lifting cylinder 22 is fixedly installed on the top of the device body 1, the piston rod is arranged vertically downward, and the piston rod is fixedly connected to the frame connected to the shearing cutter 21 to drive the shearing cutter 21. One end of the shearing table 11, away from the feeding roller 31, is further recessed downward to form a discharging groove 111 for placing the sheared regenerated base fabric.
[0036] Referring to Figure 1 and Figure 2The conveying mechanism 4 further comprises two annular frames 44, which are respectively located on both sides of the shearing table 11 along the width direction of the shearing table 11 and are fixedly installed on the equipment body 1. The two annular frames 44 are both provided with a groove on the side close to each other and are closed. The number of the conveying frames 41 is set to be several and is respectively located on the opposite sides of the equipment body 1 along the width direction of the equipment body 1 and corresponds to the two annular frames 44.
[0037] With reference to Figure 1 and Figure 2 In the embodiment, the number of the conveying frames 41 on each annular frame 44 is set to be three, one of which is located on the side close to the conveying belt 32 of the shearing knife 21 to pull the uncut regenerated base fabric to the other side of the shearing knife 21, one of which is located on the side away from the conveying belt 32 of the shearing knife 21 to transport the cut regenerated base fabric into the discharge chute 111, and the other one is located on the lower side of the annular frame 44 to clamp the uncut regenerated base fabric after moving. In other embodiments, the number of the conveying frames 41 on the annular frame 44 can also be set to be four or five or more.
[0038] With reference to Figure 2 and Figure 3 Each conveying frame 41 is provided with a plurality of rollers 45. In the embodiment, the number of the rollers 45 is set to be two, which are embedded in the grooves on the corresponding annular frame 44 and abut against the inner wall of the grooves. Each roller 45 is rotationally connected to the corresponding conveying frame 41 through a pin shaft.
[0039] With reference to Figure 2 and Figure 3 The conveying assembly 43 further comprises a gear ring 431, a conveying gear 432 and a rotating member 433. The number of the gear rings 431 is set to be two, which are correspondingly arranged with the annular frames 44. The shape of the gear ring 431 is matched with the shape of the annular frame 44 and is fixedly installed on the inner side of the annular frame 44. Each conveying frame 41 is provided with the conveying gear 432 and the rotating member 433.
[0040] With reference to Figure 2 and Figure 3 In the embodiment, the rotating member 433 is set to be a servo motor, and each servo motor is fixedly installed on the corresponding conveying frame 41. Each conveying gear 432 is fixedly sleeved on the output shaft of the corresponding servo motor and is engaged with the corresponding gear ring 431, so that when the servo motor drives the conveying gear 432 to rotate, the conveying gear 432 can drive the conveying frame 41 to displace.
[0041] With reference to Figure 2 and Figure 3Each of the conveying frames 41 extends a clamping portion 411 at one end close to the corresponding rotating member 433, and each of the clamping portions 411 extends away from the rotating frame 422. Each of the clamping assemblies 42 comprises a setting frame 421, a rotating frame 422, a sliding frame 423, a transmission frame 424 and a driving member 425. In the embodiment, each of the driving members 425 is a combination of a servo motor and a screw rod, each of the servo motors is fixedly installed at an end of the conveying frame 41, and the output shafts are fixedly connected with the screw rods through a shaft coupling, the screw rods are rotationally connected with the conveying frames 41, and one end of each of the screw rods penetrates through the corresponding sliding frame 423 and is threadedly connected with the corresponding sliding frame 423.
[0042] With reference to Figure 2 and Figure 3 Each of the sliding frames 423 is slidably connected with the corresponding conveying frame 41 through a slide rail, and the sliding direction is the length direction of the corresponding conveying frame 41. One end of each of the transmission frames 424 is rotationally connected with the corresponding sliding frame 423 through a pin shaft, and the other end is rotationally connected with the corresponding rotating frame 422 through a pin shaft. One end of the rotating frame 422 is rotationally connected with the setting frame 421 through a pin shaft, and the other end extends away from the setting frame 421, and a plurality of protrusions are arranged on the end and the clamping portion 411 to increase the friction with the regenerated base cloth.
[0043] With reference to Figure 2 and Figure 3 Each of the setting frames 421 is slidably connected with the corresponding conveying frame 41 through a slide rail, and the sliding direction is the length direction of the corresponding conveying frame 41. One end of each of the setting frames 421 close to the clamping portion 411 is provided with an abutting portion 4211, and the abutting portion 4211 is located on the rotating path of the corresponding rotating frame 422.
[0044] With reference to Figure 2 and Figure 3 In the initial state, the sliding frame 423 is located at one end of the sliding path away from the rotating member 433, when the driving member 425 drives the sliding frame 423 to slide towards the rotating member 433, the sliding frame 423 drives the corresponding transmission frame 424 to displace, so that the transmission frame 424 drives the corresponding rotating frame 422 to rotate. When the rotating frame 422 abuts against the abutting portion 4211 on the corresponding setting frame 421, the rotating frame 422 drives the setting frame 421 to slide together, so as to gradually approach the corresponding clamping portion 411 and clamp the regenerated base cloth.
[0045] With reference to Figure 2 and Figure 3Each conveying frame 41 is provided with a locking mechanism 5, each locking mechanism 5 comprising a locking frame 51 and a linkage member 52, and each linkage member 52 comprises a linkage frame 521. One end of each linkage frame 521 is rotatably connected to the corresponding transmission frame 424 along its longitudinal middle portion via a pin, and the other end of each linkage frame 521 is rotatably connected to the corresponding locking frame 51 via a pin.
[0046] Reference Figure 2 and Figure 3 Each locking frame 51 is slidably connected to the corresponding conveying frame 41 via a slide rail, and the sliding direction is perpendicular to the sliding direction of the corresponding setting frame 421. Each locking frame 51 is equipped with an avoidance assembly 6, each avoidance assembly 6 including an insertion frame 61 and an elastic member 62. Each insertion frame 61 is located at the end of the corresponding locking frame 51 closest to the setting frame 421 and is slidably connected to the corresponding locking frame 51, and the sliding direction is the same as the sliding direction of the locking frame 51.
[0047] Reference Figure 2 and Figure 3 Each insertion frame 61 has an arc-shaped guide surface at one end away from the locking frame 51. The arc-shaped guide surface is located on the side of the corresponding insertion frame 61 close to the rotating frame 422. The end of each insertion frame 61 away from the locking frame 51 is inserted into the corresponding setting frame 421 to lock the setting frame 421. In the embodiment of the present application, each elastic member 62 is configured as a pressure spring. Each pressure spring is sleeved on the end of the corresponding insertion frame 61 away from the setting frame 421, with one end abutting against the corresponding insertion frame 61 and the other end abutting against the corresponding locking frame 51, so that the insertion frame 61 returns to its initial position.
[0048] Reference Figure 2 and Figure 3 In the initial state, that is, when the sliding frame 423 is located at the end of its sliding path away from the rotating frame 422, the locking frame 51 is located at the end of its sliding path close to the setting frame 421. At this time, the insertion frame 61 is inserted into the corresponding setting frame 421. When the driving member 425 drives the sliding frame 423 to slide, the transmission frame 424 is displaced, thereby causing the transmission frame 424 to displace the linkage frame 521, which in turn causes the linkage frame 521 to slide the locking frame 51, causing the insertion frame 61 to gradually slide out of the setting frame 421.
[0049] Reference Figure 2 and Figure 3When the rotating frame 422 abuts against the abutting part 4211, the inserting frame 61 is completely separated from the setting frame 421, and then the rotating frame 422 drives the setting frame 421 to displace, so as to gradually approach the clamping part 411. When the sliding frame 423 slides back, the sliding frame 423 drives the rotating frame 422 to rotate through the transmission frame 424, and in this process, the transmission frame 424 drives the locking frame 51 to return to the initial position.
[0050] With reference to Figure 2 and Figure 3 Then, the rotating frame 422 drives the setting frame 421 to slide upward, and when the setting frame 421 abuts against the guide surface on the inserting frame 61, the inserting frame 61 slides, and the setting frame 421 is dislocated. When the setting frame 421 slides to the initial position, the inserting frame 61 is inserted into the setting frame 421 under the action of the elastic member 62, and the setting frame 421 is locked again.
[0051] The implementation principle of the shearing equipment for processing regenerated base fabric according to the embodiment of the application is as follows: when in use, the clamping assembly 42 on the one conveying frame 41 of each annular frame 44 clamps the regenerated base fabric on the side of the shearing cutter 21 close to the conveying belt 32, and the clamping assembly 42 on the one conveying frame 41 of each annular frame 44 clamps the regenerated base fabric on the side of the shearing cutter 21 away from the conveying belt 32.
[0052] When the shearing cutter 21 shears the regenerated base fabric, the conveying frame 41 on the side of the shearing cutter 21 away from the conveying belt 32 drives the sheared regenerated base fabric to move into the discharge groove 111, and the conveying frame 41 on the side of the shearing cutter 21 close to the conveying belt 32 drives the end of the regenerated base fabric to move to the side of the shearing cutter 21 away from the conveying belt 32. In this process, the conveying frame 41 below the annular frame 44 moves to the side of the shearing cutter 21 close to the conveying belt 32, and the clamping assembly 42 on the conveying frame 41 clamps the regenerated base fabric. In this way, the conveying and output of the regenerated base fabric are realized.
[0053] The above are the preferred embodiments of the application, and do not limit the protection scope of the application, so that: equivalent changes made according to the structure, shape, principle of the application should be covered in the protection scope of the application.
Claims
1. A shearing device for processing recycled base fabric, comprising a device body (1), wherein the device body (1) is further provided with a shearing mechanism (2) and a feeding mechanism (3), wherein the shearing mechanism (2) comprises a shearing knife (21), and the feeding mechanism (3) is used to drive the recycled base fabric close to the shearing knife (21), and is characterized in that: A conveying mechanism (4) is further provided on the side of the shearing knife (21) away from the feeding mechanism (3). The conveying mechanism (4) comprises a conveying frame (41), a clamping assembly (42) and a conveying assembly (43). The conveying assembly (43) is used to drive the conveying frame (41) away from the shearing knife (21). The clamping assembly (42) is provided on the conveying frame (41) and is used to clamp the sheared recycled base fabric.
2. The shearing device for processing recycled base fabric according to claim 1, characterized in that: The clamping assembly (42) includes a setting frame (421), a rotating frame (422) and a driving member (425). The conveying frame (41) also extends a clamping portion (411) in a direction close to the recycled base cloth. The setting frame (421) is set on the conveying frame (41). The rotating frame (422) is rotatably connected to the setting frame (421). The recycled base cloth on the clamping portion (411) is located on the rotation path of the rotating frame (422). The driving member (425) is used to drive the rotating frame (422) to rotate.
3. The shearing device for processing recycled base fabric according to claim 2, characterized in that: The clamping assembly (42) further includes a sliding frame (423) and a transmission frame (424), wherein the sliding frame (423) is slidably connected to the conveying frame (41), one end of the transmission frame (424) is rotationally connected to the sliding frame (423), and the other end is rotationally connected to the rotating frame (422), and the driving member (425) is used to drive the sliding frame (423) to slide.
4. The shearing device for processing recycled base fabric according to claim 3, characterized in that: The setting frame (421) is slidably connected to the conveying frame (41), and the sliding direction is the same as the sliding direction of the sliding frame (423). The conveying frame (41) is also provided with a locking mechanism (5), and the locking mechanism (5) is used to lock the setting frame (421).
5. The shearing device for processing recycled base fabric according to claim 4, characterized in that: The locking mechanism (5) includes a locking frame (51) and a linkage member (52). The locking frame (51) is slidably connected to the conveying frame (41), and the locking frame (51) is inserted into the setting frame (421) along one end of its own sliding path. The transmission frame (424) drives the locking frame (51) to slide through the linkage member (52).
6. The shearing device for processing recycled base fabric according to claim 5, characterized in that: The linkage member (52) comprises a linkage frame (521), one end of the linkage frame (521) is rotatably connected to the transmission frame (424), and the other end is slidably connected to the locking frame (51).
7. The shearing device for processing recycled base fabric according to claim 5, characterized in that: The locking frame (51) is also provided with an avoidance component (6), and the avoidance component (6) includes an insertion frame (61) and an elastic member (62). The insertion frame (61) is slidably connected to the locking frame (51), and the sliding direction is the same as the sliding direction of the locking frame (51). One end of the insertion frame (61) is close to the side of the conveying frame (41) and is also provided with a guide surface. The elastic member (62) is used for resetting the insertion frame (61).
8. The shearing device for processing recycled base fabric according to claim 1, characterized in that: The number of the conveying racks (41) is set to be several, and they are respectively located on opposite sides of the equipment body (1) along its own width direction. The conveying mechanism (4) also includes two annular racks (44), and the two annular racks (44) are respectively located on opposite sides of the equipment body (1) along its own width direction. Each of the annular racks (44) is provided with an annular groove. One end of each conveying rack (41) is embedded in the groove of the corresponding annular rack (44) and is slidably connected to the annular rack (44). The conveying assembly (43) is used to drive each conveying rack (41) to slide.
9. The shearing device for processing recycled base fabric according to claim 8, characterized in that: The conveying assembly (43) includes a gear ring (431), a conveying gear (432) and a rotating member (433). The number of the gear rings (431) is set to two and they are respectively arranged on the two annular frames (44). The number of the conveying gears (432) and the rotating member (433) is set to be several and they all correspond to the conveying frames (41). Each of the conveying gears (432) is rotatably connected to the corresponding conveying frame (41) and is meshed with the corresponding gear ring (431). The rotating member (433) is used to drive the corresponding conveying gear (432) to rotate.
10. The shearing device for processing recycled base fabric according to claim 8, characterized in that: The conveying frame (41) is further provided with a plurality of rollers (45), each of the rollers (45) is rotatably connected to the conveying frame (41), and each of the rollers (45) is embedded in a groove on the corresponding annular frame (44) and abuts against the inner wall of the groove on the corresponding annular frame (44).