A conveyor line device convenient for diversion
Through the design of the main body of the shunt rack and the pushing component, the automatic shunt of the conveying line device is realized, solving the problems of high cost of intelligent robot arms and unstable manual shunt, reducing operating costs and improving shunt efficiency.
Patent Information
- Application Number
- CN202211724188.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-30
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2042-12-30
AI Technical Summary
In the existing conveying line devices, the cost of intelligent robotic arm shunt products is high and manual shunt is easily affected by external factors, resulting in unstable shunt efficiency.
The main body of the shunt rack is adopted, including the first shunt plate, the second shunt plate and the third shunt plate, and the automatic shunt of the product is realized through the cutting assembly and the pushing assembly. The size limitations of the cutting frame and the fixed engaging rod are used, and the threaded screw and pushing rack are combined with the motor-driven threaded screw and pushing rack to achieve automatic shunt of the product.
It reduces the cost of shunting, improves shunting efficiency, reduces the impact of external factors on the shunting process, and ensures the stability and efficiency of product shunting.
Smart Images

Figure CN115973739B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of transmission lines, in particular to a transmission line device which is convenient for diversion. Background Art
[0002] Conveyor lines, also known as transmission lines, are primarily used to transport materials. Surrounding warehouses, production workshops, and packaging plants, conveyor chains consisting of numerous belt conveyors, roller conveyors, and other equipment are connected end-to-end to form a continuous conveyor line.
[0003] In the existing technology, the conveyor line is mainly composed of a mainstream conveyor line, a diversion conveyor line and an intelligent robotic arm. The intelligent robotic arm is installed between the mainstream conveyor line and the diversion conveyor line. After the product is transmitted from the outlet of the production line, it is transmitted to the top of the diversion conveyor line via the mainstream conveyor line. At this time, the intelligent robotic arm analyzes the appearance of the product through a camera. After the analysis is completed, the intelligent module inside it generates instructions through analysis, and the robotic arm diverts the product to different diversion conveyor lines to achieve the purpose of diversion and transmission of the product.
[0004] However, in the existing technology, the cost of using an intelligent robotic arm that can identify information about the product appearance and perform intelligent analysis to achieve a diversion effect is relatively high, which in turn leads to a direct increase in the operating cost of the diversion conveyor line when using this method. Manual diversion can replace robotic arm diversion, but this method will increase the impact of external factors on product diversion and cannot guarantee the diversion efficiency of the product; therefore, in response to the above problem, a conveyor line device that is convenient for diversion is proposed. Summary of the Invention
[0005] In order to make up for the shortcomings of the prior art, the problems of transmission line diversion efficiency and cost, the present invention proposes a transmission line device that is convenient for diversion.
[0006] The technical solution adopted by the present invention to solve its technical problems is: the present invention describes a conveyor line device that is convenient for diversion, including a diversion rack body, the diversion rack body including a first diversion plate, a second diversion plate and a third diversion plate, and a blanking assembly is provided above the first diversion plate, the second diversion plate and the third diversion plate, the blanking assembly includes a blanking frame, the side wall of the blanking frame is installed with a fixed clamping rod, the side wall of the fixed clamping rod is respectively engaged with the inner wall of the top groove of the first diversion plate, the second diversion plate and the third diversion plate, and an adjustment sleeve is fixed on one side above the first diversion plate, the second diversion plate and the third diversion plate, and the top and bottom surfaces of the inner wall of the adjustment sleeve are provided with matching grooves.
[0007] Preferably, the outer wall of the first diverter plate is installed with a first fixed angle ear near the corner, the top of one of the fixed angle ears is installed with a first threaded sleeve, the inner wall of the first threaded sleeve is threadedly installed with a first threaded screw, one end of the first threaded screw is installed with a lower circular plate through a bearing, the other end of the first threaded screw is installed with an upper square frame through a bearing, and an adjustment bracket is installed on one side of the upper square frame, the outer wall of the second diverter plate is installed with a second fixed angle ear near the corner, the top of one of the second fixed angle ears is installed with a second threaded sleeve, the inner wall of the second threaded sleeve A second threaded screw is threadedly installed between the walls, one end of the second threaded screw is connected to the top of the lower circular plate through a bearing, and the other end of the second threaded screw is connected to the bottom of the upper square frame through a bearing. The outer wall of the third diverter plate is installed with a third fixed angle ear near the corner, and a third threaded sleeve is installed on the top of one of the third fixed angle ears. A third threaded screw is threadedly installed between the inside of the third threaded sleeve, one end of the third threaded screw is connected to the top of the lower circular plate through a bearing, and the other end of the third threaded screw is connected to the bottom of the upper square frame through a bearing.
[0008] Preferably, a main flow transmission line body is installed on the upper side of the upper frame, and a branch flow transmission line body is installed on the upper side of the first diverter plate, the second diverter plate and the third diverter plate.
[0009] Preferably, the bottom of the lower circular plate is fixedly mounted with a first motor, a second motor and a third motor, and the output shafts of the first motor, the second motor and the third motor all pass through the lower circular plate and are connected to the axes of the first threaded screw, the second threaded screw and the third threaded screw respectively.
[0010] Preferably, a pushing assembly is provided on the upper side of the diversion rack body, and the pushing assembly includes a central shaft, one end of the central shaft is connected to the top of the lower circular plate through a bearing, and the other end of the central shaft is connected to the bottom of the adjustment bracket through a bearing, and a long sliding groove is provided on the outer wall of the central shaft, and a circular ring sleeve is slidably installed on the outer wall of the central shaft, and a plurality of the circular ring sleeves are provided, and the plurality of circular ring sleeves are arranged in an array along the axial direction of the central shaft.
[0011] Preferably, a fitting block is fixed on the inner wall of the circular ring sleeve, and the outer wall of the fitting block slides with the inner wall of the long slide groove. The outer wall of the circular ring sleeve is provided with meshing teeth, and limiting rings are fixed on the top and bottom of the circular ring sleeve. A pushing rack is installed between the adjacent side walls of the two limiting rings, and the pushing rack and the meshing teeth mesh with each other.
[0012] Preferably, the outer walls of the push rack slide with the inner walls of multiple adjustment sleeves respectively, and the top and bottom of the push rack are installed with limit strips, and the outer walls of the two limit strips respectively fit with the inner walls of the two fitting grooves.
[0013] Preferably, a push plate is installed at one end of the push rack, a fourth motor is installed at the bottom of the lower circular plate, and the output shaft of the fourth motor passes through the lower circular plate and is connected to the axis of the central shaft.
[0014] The present invention is beneficial in that:
[0015] 1. The diverter rack body of the present invention is installed between the main flow conveyor line body and the branch conveyor line body to replace the role of the intelligent robotic arm, wherein the diverter rack body achieves the purpose of product diversion by limiting the size between the unloading components and the products respectively arranged on the first diverter plate, the second diverter plate and the third diverter plate. It can be intuitively seen from the accompanying drawings that the opening size of the unloading frame respectively arranged on the first diverter plate, the second diverter plate and the third diverter plate gradually increases from bottom to top, so that when the product falls through the opening on the upper square frame under the movement of the main flow conveyor line body, the size of the product that can pass through the third diverter plate and the second diverter plate gradually decreases. Under the action of gravity, larger-sized products are diverted away by the upper branch conveyor line body, and smaller-sized products are diverted away by the lower branch conveyor line body, so that the diverter rack body can replace the robotic arm to divert the products, and the way in which the diverter rack body structures cooperate with each other to divert the products makes the cost of product diversion lower, and the way of diversion by non-staff reduces the possibility of the product diversion process being affected by external factors, thereby achieving the purpose of ensuring diversion efficiency and reducing separation costs.
[0016] 2. The present invention sets a pushing assembly to push the products that fall on the first diverter plate, the second diverter plate and the third diverter plate respectively, so as to prevent larger products from blocking the falling opening so that smaller products cannot fall to the next diverter plate. The central shaft and the pushing rack are respectively engaged with each other so that the pushing rack can always be linked with the central shaft and move synchronously with the rotation of the central shaft during the process of following the up and down movement of the first diverter plate, the second diverter plate and the third diverter plate. The synchronous pushing method can increase the pushing efficiency of the pushing assembly for the product. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0019] Figure 2 This is a schematic diagram of the main structure of the diverter rack of the present invention;
[0020] Figure 3 This is a bottom view of the main body of the diverter rack of the present invention;
[0021] Figure 4 This is a structural diagram of the main body of the diverter rack of the present invention;
[0022] Figure 5 It is a schematic structural diagram of the pusher assembly of the present invention.
[0023] In the figure: 1. Manifold frame body; 11. First manifold plate; 12. Second manifold plate; 13. Third manifold plate; 2. Blanking assembly; 21. Blanking frame; 22. Fixed locking rod; 3. Adjusting sleeve; 31. Fitting groove; 111. First fixed angle ear; 112. First threaded sleeve; 113. First threaded screw; 14. Lower circular plate; 15. Upper square frame; 16. Adjusting bracket; 121. Second fixed angle ear; 122. Second threaded sleeve; 123. Second threaded screw; 13 1. Third fixed angle ear; 132. Third threaded sleeve; 133. Third threaded screw; 4. Main stream transmission line body; 5. Branch transmission line body; 114. First motor; 124. Second motor; 134. Third motor; 6. Pusher assembly; 61. Center shaft; 611. Long slide; 62. Ring sleeve; 621. Fitting block; 63. Engaging teeth; 631. Limiting ring; 64. Pusher rack; 641. Limiting strip; 642. Pusher plate; 65. Fourth motor. DETAILED DESCRIPTION
[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0025] See also Figure 1-Figure 5As shown, a conveyor line device that is convenient for diversion includes a diverter frame body 1, the diverter frame body 1 includes a first diverter plate 11, a second diverter plate 12 and a third diverter plate 13, and a blanking component 2 is provided above the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13. The diverter frame body 1 achieves the purpose of diverting the product by limiting the size between the blanking component 2 and the product respectively provided on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13. The blanking component 2 includes a blanking frame 21, and a fixed engaging rod 22 is installed on the side wall of the blanking frame 21, wherein the opening size of the blanking frame 21 respectively provided on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13 gradually increases from bottom to top, and the fixed engaging rod 22 is installed on the side wall of the blanking frame 21. The side walls of the fixed engaging rod 22 are respectively engaged with the inner walls of the top grooves of the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13, and the blanking frame 21 fixes the blanking assembly 2 of the diverter frame body 1 to the diverter plate 11, the second diverter plate 12 and the third diverter plate 13 by fixing the engaging rod 22 and the grooves on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13. An adjusting sleeve 3 is fixed on one side above the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13. The adjusting sleeve 3 is a structure that is arranged on the diverter plate and cooperates with the structure on the pushing assembly 6. The top and bottom surfaces of the inner wall of the adjusting sleeve 3 are provided with matching grooves 31. The matching grooves 31 are provided on the adjusting sleeve 3 and cooperate with the structure belonging to the pushing assembly 6 to limit the position.
[0026] The outer wall of the first diverter plate 11 is installed with a first fixed angle ear 111 near the corner. The first fixed angle ear 111 is a structure installed on the first diverter plate 11 to fix the position of the first diverter plate 11. A first threaded sleeve 112 is installed on the top of one of the fixed angle ears. A first threaded screw rod 113 is threadedly installed between the inner walls of the first threaded sleeve 112. The first fixed angle ear 111 is installed on the first diverter plate 11 through the threaded connection between the first threaded sleeve 112 and the first threaded screw rod 113, so that the relative position of the first threaded sleeve 112 relative to the first threaded screw rod 113 can be adjusted by rotating the first threaded screw rod 113, so as to achieve the purpose of adjusting the relative position of the first diverter plate 11. One end of the screw rod 113 is installed with a lower circular plate 14 through a bearing, and the other end of the first threaded screw rod 113 is installed with an upper frame 15 through a bearing, wherein the lower circular plate 14 and the upper frame 15 are respectively connected to the two ends of the first threaded screw rod 113 through bearings, without affecting the rotation of the first threaded screw rod 113 but also fixing the first threaded screw rod 113, and an adjustment bracket 16 is installed on one side of the upper frame 15, and the adjustment bracket 16 is a structure arranged on the upper frame 15 to cooperate with the pusher assembly 6 and fix the pusher assembly 6, and the outer wall of the second diverter plate 12 is installed with a second fixed angle ear 121 near the corner, and the second fixed angle ear 121 is installed on the second diverter plate 12 to fix the second diverter The plate 12 is fixed with a structure, wherein a second threaded sleeve 122 is installed on the top of one of the second fixed angle ears 121, and a second threaded screw rod 123 is threadedly installed between the inner walls of the second threaded sleeve 122. The second fixed angle ear 121 is connected by the thread between the second threaded sleeve 122 and the second threaded screw rod 123 so that the relative position between the second threaded sleeve 122 and the second threaded screw rod 123 can be adjusted by rotating the second threaded screw rod 123 to achieve the purpose of position adjustment of the second diverter plate 12. One end of the second threaded screw rod 123 is connected to the top of the lower circular plate 14 through a bearing, and the other end of the second threaded screw rod 123 is connected to the bottom of the upper frame 15 through a bearing. The second threaded screw rod 123 is installed Installed between the lower circular plate 14 and the upper frame 15, the outer wall of the third diverter plate 13 is installed with a third fixed angle ear 131 near the corner. The third fixed angle ear 131 is a structure installed on the third diverter plate 13 to fix the third diverter plate 13. A third threaded sleeve 132 is installed on the top of one of the third fixed angle ears 131. A third threaded screw rod 133 is threadedly installed between the inner part of the third threaded sleeve 132. The third fixed angle ear 131 is threadedly connected with the third threaded sleeve 132 and the third threaded screw rod 133 so that the relative position between the third threaded sleeve 132 and the third threaded screw rod 133 can be adjusted by rotating the third threaded screw rod 133, so as to achieve the purpose of adjusting the third diverter plate 13.One end of the third threaded screw 133 is connected to the top of the lower circular plate 14 through a bearing, and the other end of the third threaded screw 133 is connected to the bottom of the upper frame 15 through a bearing. The third threaded screw 133 is installed between the lower circular plate 14 and the upper frame 15;
[0027] A main flow conveyor line body 4 is installed on one side above the upper block 15. The main flow conveyor line body 4 receives the products output from the production line and transmits them to the branch conveyor line body 5 through the diversion structure on the diversion frame body 1. A branch conveyor line body 5 is installed on one side above the first diversion plate 11, the second diversion plate 12 and the third diversion plate 13. The branch conveyor line body 5 receives and transmits the diverted products.
[0028] The bottom of the lower circular plate 14 is fixedly installed with a first motor 114, a second motor 124 and a third motor 134, and the first motor 114, the second motor 124 and the third motor 134 can respectively be connected to the axial center of the first threaded screw 113, the second threaded screw 123 and the third threaded screw 133. Their rotation respectively provides output force, and the output shafts of the first motor 114, the second motor 124 and the third motor 134 all pass through the lower circular plate 14 and are respectively connected to the axial center of the first threaded screw 113, the second threaded screw 123 and the third threaded screw 133, and the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13 can be lifted and lowered without affecting each other through the rotation of the output shafts of the first motor 114, the second motor 124 and the third motor 134, so as to cooperate with the blanking component 2 to perform blanking work;
[0029] The upper side of the diverter rack body 1 is provided with a pushing assembly 6, which pushes out the products that fall on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13 respectively. The pushing assembly 6 includes a central shaft 61, one end of the central shaft 61 is connected to the top of the lower circular plate 14 through a bearing, and the other end of the central shaft 61 is connected to the bottom of the adjusting bracket 16 through a bearing. The central shaft 61 is installed between the lower circular plate 14 and the adjusting bracket 16 through a bearing. The outer wall of the central shaft 61 is provided with a long slide groove 611, and the outer wall of the central shaft 61 is slidably installed with a circular sleeve 62, and the long slide groove 611 is a limiting structure installed on the central shaft 61. The number of the circular sleeves 62 is provided in total, and the plurality of circular sleeves 62 are arranged in an array along the axial direction of the central shaft 61, and the circular sleeve 62 can realize the linkage between the central shaft 61 and the pushing rack 64;
[0030] The inner wall of the annular sleeve 62 is fixed with a fitting block 621, and the outer wall of the fitting block 621 slides with the inner wall of the long chute 611. The annular sleeve 62 is engaged with the fitting block 621 and the long chute 611, so that the annular sleeve 62 can rotate with the rotation of the central shaft 61 under the limited effect. The limiting ring 631 is provided on the annular sleeve 62 and cooperates with the push rack 64 to limit the structure, so that different annular sleeves 62 can follow the first division. The flow plate 11, the second diverter plate 12 and the third diverter plate 13 move up and down, and the outer wall of the annular sleeve 62 is provided with meshing teeth 63. The top and bottom of the annular sleeve 62 are fixed with limiting rings 631. A pusher rack 64 is installed between the adjacent side walls of the two limiting rings 631. The pusher rack 64 and the meshing teeth 63 are meshed with each other. The mutual meshing between the meshing teeth 63 and the pusher rack 64 enables different pusher racks 64 to perform the pushing work;
[0031] The outer walls of the push rack 64 slide against the inner walls of the plurality of adjustment sleeves 3, and the top and bottom of the push rack 64 are both provided with limit bars 641. The outer walls of the two limit bars 641 respectively fit with the inner walls of the two fitting grooves 31. The push rack 64 slides against the limit bars 641 and the fitting grooves 31, thereby increasing the stability of the reciprocating motion of the push rack 64 between the inner walls of the adjustment sleeve 3 and improving the rationality of the structure.
[0032] A push plate 642 is installed at one end of the push rack 64, and the push rack 64 pushes the product through the contact between the push plate 642 and the product. A fourth motor 65 is installed at the bottom of the lower circular plate 14. The output shaft of the fourth motor 65 passes through the lower circular plate 14 and is connected to the axis of the central shaft 61. The fourth motor 65 is installed below the lower circular plate 14 to provide output force for the rotation of the central shaft 61.
[0033] Working principle: The main body 1 of the diverter rack achieves the purpose of product diversion by limiting the size between the blanking component 2 and the product respectively arranged on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13. The blanking frame 21 fixes the main body 1 of the diverter rack to the blanking component 2 by the mutual engagement between the fixed snap-fit rod 22 and the slots on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13. The first fixed angle ear 111 is installed on the first diverter plate 11 through the threaded connection between the first threaded sleeve 112 and the first threaded screw 113, so that the first threaded sleeve 112 can be rotated relative to the first threaded screw 113 to adjust the size of the blanking component 2. The relative position of the screw rod 113 is adjusted, and the second fixed angle ear 121 is connected by the thread between the second threaded sleeve 122 and the second threaded screw rod 123 so that the relative position between the second threaded sleeve 122 and the second threaded screw rod 123 can be adjusted by rotating the second threaded screw rod 123. The second threaded screw rod 123 is installed between the lower circular plate 14 and the upper square frame 15. The third fixed angle ear 131 is connected by the thread between the third threaded sleeve 132 and the third threaded screw rod 133 so that the relative position between the third threaded sleeve 132 and the third threaded screw rod 133 can be adjusted by rotating the third threaded screw rod 133. The main transmission line body 4 is connected to the second threaded sleeve 122 and the second threaded screw rod 123. The products output by the production line are received and transmitted to the branch transmission line main body 5 through the diversion structure on the diversion frame main body 1. The branch transmission line main body 5 receives and transmits the diverted products. The first motor 114, the second motor 124 and the third motor 134 can respectively connect with the axial center of the first threaded screw 113, the second threaded screw 123 and the third threaded screw 133. Their rotation provides output force respectively. The pushing assembly 6 pushes out the products that fall on the first diverter plate 11, the second diverter plate 12 and the third diverter plate 13 respectively. The central shaft 61 is installed between the lower circular plate 14 and the adjustment bracket 16 through the bearing, and the annular sleeve 6 The engaging block 621 and the long chute 611 engage with each other, and the limiting ring 631 and the adjusting sleeve 3 cooperate to limit the position of the push rack 64, so that different annular sleeves 62 can move up and down along with the first diverter plate 11, the second diverter plate 12, and the third diverter plate 13. The engaging teeth 63 and the push rack 64 engage with each other, so that different push racks 64 can push the product. The push rack 64 pushes the product through the contact between the push plate 642 and the product by sliding between the limiting strip 641 and the engaging groove 31. The fourth motor 65 provides output force for the rotation of the central shaft 61.
[0034] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and modifications fall within the scope of the invention as claimed.
Claims
1. A conveyor line device for facilitating diversion, comprising a diversion frame body (1), wherein the diversion frame body (1) comprises a first diversion plate (11), a second diversion plate (12) and a third diversion plate (13), wherein a blanking assembly (2) is provided above each of the first diversion plate (11), the second diversion plate (12) and the third diversion plate (13), and wherein: The blanking assembly (2) includes a blanking frame (21), and a fixed engaging rod (22) is installed on the side wall of the blanking frame (21). The side wall of the fixed engaging rod (22) is respectively engaged with the inner wall of the top groove of the first diverter plate (11), the second diverter plate (12) and the third diverter plate (13). An adjusting sleeve (3) is fixed on the upper side of the first diverter plate (11), the second diverter plate (12) and the third diverter plate (13). The top surface and bottom surface of the inner wall of the adjusting sleeve (3) are both provided with a fitting groove (31); the upper side of the diverter frame body (1) is provided with a fixing groove (31). A pusher assembly (6) is provided, the pusher assembly (6) includes a central shaft (61), one end of the central shaft (61) is connected to the top of the lower circular plate (14) through a bearing, the other end of the central shaft (61) is connected to the bottom of the adjustment bracket (16) through a bearing, a long sliding groove (611) is provided on the outer wall of the central shaft (61), and a circular ring (62) is slidably installed on the outer wall of the central shaft (61), and a plurality of the circular rings (62) are provided, and the plurality of circular rings (62) are arranged in an array along the axial direction of the central shaft (61); The inner wall of the annular sleeve (62) is fixed with a fitting block (621), the outer wall of the fitting block (621) slides with the inner wall of the long chute (611), the outer wall of the annular sleeve (62) is provided with meshing teeth (63), the top and bottom of the annular sleeve (62) are fixed with limiting rings (631), and a push rack (64) is installed between the adjacent side walls of the two limiting rings (631), and the push rack (64) and the meshing teeth (63) are meshed with each other; The outer walls of the push rack (64) slide with the inner walls of the plurality of adjustment sleeves (3), and the top and bottom of the push rack (64) are both installed with limit strips (641), and the outer walls of the two limit strips (641) respectively fit with the inner walls of the two fitting grooves (31); A push plate (642) is installed at one end of the push rack (64), and a fourth motor (65) is installed at the bottom of the lower circular plate (14). The output shaft of the fourth motor (65) passes through the lower circular plate (14) and is connected to the axis of the central shaft (61).
2. A conveyor line device for facilitating diversion according to claim 1, characterized in that: The outer wall of the first diverter plate (11) is provided with a first fixed angle ear (111) near the corner, a first threaded sleeve (112) is provided on the top of one of the fixed angle ears, a first threaded screw rod (113) is threadedly provided between the inner walls of the first threaded sleeve (112), one end of the first threaded screw rod (113) is provided with a lower circular plate (14) via a bearing, the other end of the first threaded screw rod (113) is provided with an upper square frame (15) via a bearing, an adjustment bracket (16) is provided on one side of the upper square frame (15), and the outer wall of the second diverter plate (12) is provided with a second fixed angle ear (121) near the corner, a second threaded sleeve (122) is provided on the top of one of the second fixed angle ears (121), the inner wall of the second threaded sleeve (122) is provided with a second threaded sleeve (122). A second threaded screw (123) is threadedly installed between the walls, one end of the second threaded screw (123) is connected to the top of the lower circular plate (14) through a bearing, and the other end of the second threaded screw (123) is connected to the bottom of the upper square frame (15) through a bearing. The outer wall of the third diverter plate (13) is installed with a third fixed angle ear (131) near the corner, and a third threaded sleeve (132) is installed on the top of one of the third fixed angle ears (131). A third threaded screw (133) is threadedly installed between the inside of the third threaded sleeve (132), one end of the third threaded screw (133) is connected to the top of the lower circular plate (14) through a bearing, and the other end of the third threaded screw (133) is connected to the bottom of the upper square frame (15) through a bearing.
3. A conveyor line device for facilitating diversion according to claim 2, characterized in that: A main flow transmission line body (4) is installed on one side above the upper block (15), and a branch flow transmission line body (5) is installed on one side above the first diverter plate (11), the second diverter plate (12), and the third diverter plate (13).
4. A conveyor line device for facilitating diversion according to claim 3, characterized in that: A first motor (114), a second motor (124) and a third motor (134) are fixedly mounted on the bottom of the lower circular plate (14); the output shafts of the first motor (114), the second motor (124) and the third motor (134) all pass through the lower circular plate (14) and are connected to the axes of the first threaded screw (113), the second threaded screw (123) and the third threaded screw (133) respectively.
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