Conveyor direction changing device
The conveyor direction-changing device addresses inefficiencies by using synchronized, reciprocating rotational movements of direction-changing rollers, driven by a single source, to enhance transport and sorting efficiency by minimizing waiting times and simplifying the control system.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-02-14
- Publication Date
- 2026-04-09
AI Technical Summary
Conventional direction-changing devices for conveyors require all direction-changing rollers to be raised or lowered sequentially, leading to inefficiencies in transport and sorting due to the need to wait for preceding objects to clear the rollers before sending subsequent objects, which reduces transport and sorting efficiency.
A conveyor direction-changing device with multiple rows of direction-changing rollers that perform synchronized, reciprocating rotational movements, initiated sequentially from the upstream row, using a rotational operation mechanism with cylindrical cams and a single drive source to rotate the rollers horizontally between the main and branch paths.
This design reduces waiting time for conveyed items, improves transport efficiency, and simplifies the control system while maintaining continuous material flow without stopping, thus enhancing overall sorting efficiency.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a direction-changing device for a conveyor configured to redirect and transfer a conveyed object sent to a main conveyance path to a branch conveyance path provided on a side portion of the main conveyance path.
Background Art
[0002] In a distribution center, a logistics center, or the like, in order to sort and store conveyed objects such as cardboard boxes according to their destinations, a direction-changing device is used to redirect and transfer the conveyed objects sent by a roller conveyor, a belt conveyor, or the like to a branch conveyance path connected to the side portion.
[0003] As a conventional direction-changing device, a plurality of rows of direction-changing rollers (delivery rollers) arranged at predetermined intervals in the width direction of the main conveyance path are provided in a plurality of rows along the conveyance direction at a branch portion between the main conveyance path and the branch conveyance path, and the conveyance object is transferred to the branch conveyance path by protruding the direction-changing rollers of each row onto the conveyance surface of the main conveyance path (see, for example, Patent Document 1).
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0005] In the direction changing device described in Patent Document 1, multiple rows of direction changing rollers are simultaneously extended and retracted on the main transport path to selectively change the transport direction of the transported object between the straight direction in the main transport and the branching inclined direction in the branching transport. Therefore, when transporting an object to a branching transport path, all direction changing rollers cannot be raised until the transported object that is traveling straight ahead on the main transport path has left the extension and retraction area of the downstream direction changing rollers. Also, when changing the direction of the subsequent transported object from the branching inclined direction to the straight direction after branching transport is complete, all direction changing rollers cannot be lowered until the preceding transported object has been completely transported to the branching transport path. As a result, it is necessary to wait for the subsequent transported object to pass all the direction changing rollers, which leads to problems in terms of transport efficiency and sorting efficiency of the transported object.
[0006] This invention addresses these problems and aims to provide a conveyor direction changing device that can shorten the waiting time for conveyed items and improve conveying efficiency and sorting efficiency. [Means for solving the problem]
[0007] To solve the above problems, the conveyor direction changing device of the present invention is A conveyor direction changing device is installed at the branching point between a main conveying path that transports transported materials and a branch conveying path provided on the side of the main conveying path, and which changes the direction of transported materials that have been transported from the upstream side in the transport direction of the main conveying path and transports them to the branch conveying path, Multiple rows of direction-changing rollers are arranged at predetermined intervals in the width direction of the main transport path, and multiple rows of direction-changing rollers are provided along the transport direction. The direction-changing rollers in the multiple rows perform a series of reciprocating rotational movements, in which they rotate horizontally from the transport direction of the main transport path to the transport direction of the branch transport path, and then rotate back to the transport direction of the main transport path from the branch transport path, in a synchronous manner for each row by a rotational operation means, and the rotational operation means is characterized in that the series of reciprocating rotational movements is started sequentially from the row of direction-changing rollers on the upstream side. According to this feature, the direction-changing rollers in each row perform a series of reciprocating rotational movements, starting from the upstream row of direction-changing rollers, by the rotational movement mechanism. These movements consist of a horizontal rotation from the main transport path direction to the branch transport path direction, and a return rotation from the branch transport path direction back to the main transport path direction. Therefore, when selectively switching the transport direction of transported items, it is not necessary to wait for the preceding transported items to pass all the direction-changing rollers in the row before sending out subsequent transported items. This reduces waiting time and improves transport and sorting efficiency.
[0008] Each of the direction-changing rollers in each row is rotatably supported by a roller bracket that can rotate horizontally around a pivot axis oriented in the vertical direction, and the rotational operation means is characterized by comprising a link plate pivotally attached to the roller bracket of each row and rotating horizontally in sync with the roller bracket together with the roller bracket, a plurality of cylindrical cams that rotate the outermost bracket of each row horizontally, and a drive source that rotationally drives the plurality of cylindrical cams. This feature ensures that the direction-changing rollers in each row are stably supported by roller brackets and rotate horizontally, resulting in a smooth series of reciprocating rotational movements of the direction-changing rollers. Furthermore, by driving multiple cylindrical cams with a drive source and rotating only the outermost roller bracket in each row, the other multiple roller brackets and all the direction-changing rollers supported by them rotate horizontally in sync via link plates, thus simplifying the configuration of the rotational movement mechanism and reducing costs.
[0009] The aforementioned drive source is characterized by being a single unit. This feature allows the direction-changing rollers in each row to be driven back and forth using only one drive source, reducing the number of parts and simplifying the drive source's control system, thus lowering costs. Furthermore, the drive source requires less installation space, allowing for a more compact direction-changing device.
[0010] The plurality of cylindrical cams have the same structure, each having a cam groove that causes the roller bracket to rotate horizontally via a follower, and are arranged in rows with their phases shifted by a predetermined angle. This feature allows for cost reduction by simply shifting the phase of multiple cylindrical cams of the same structure by a predetermined angle in each row, thereby initiating a series of reciprocating rotational movements sequentially from the row of direction-changing rollers on the upstream side.
[0011] The cam groove is formed continuously with the outer circumferential surface of the cylindrical cam, and the series of reciprocating rotational movements are completed with one rotation of the cylindrical cam. This feature allows the drive source to be rotated in only one direction, thus simplifying the control system for the drive source.
[0012] The multiple rows of direction-changing rollers are characterized in that, before the rotation of the upstream direction-changing roller from the transport direction of the main transport path to the transport direction of the branch transport path, or from the transport direction of the branch transport path to the transport direction of the main transport path, is completed, the direction-changing roller of the downstream row adjacent to the upstream row begins to rotate in the same direction as described above. This feature allows for smooth and continuous transport of materials without stopping the system. [Brief explanation of the drawing]
[0013] [Figure 1] This is a plan view of a conveyor with a direction-changing device in an embodiment of the present invention, showing the conveyed object moving in a straight line along the main conveying path. [Figure 2] This is a plan view of the transported material after it has been redirected to a branching transport path. [Figure 3] This is a perspective view of a direction-changing device according to an embodiment of the present invention. [Figure 4] This is also a plan view. [Figure 5] This is an enlarged perspective view of the support section of the direction-changing roller and the linkage section between the roller bracket and the rotating cam. [Figure 6] It is an enlarged perspective view of a rotating cam. [Figure 7] (a) to (e) are plan views for sequentially explaining the relationship between the rotation angle of the camshaft and the turning operation of the direction-changing rollers in each row.
Mode for Carrying Out the Invention
[0014] A mode for carrying out the direction-changing device of the conveyor according to the present invention will be described below based on an embodiment.
Embodiment
[0015] The direction-changing device according to the embodiment will be described with reference to FIGS. 1 to 7. In the following description, the downstream side, which is the conveyance direction of the conveyed object, will be described as the front.
[0016] <000009l>FIGS. 1 and 2 show a plan view of a conveyor to which the present invention is applied, and include a linear main conveyance path 1 composed of two belt conveyors installed at intervals in the front-rear direction, and a branch conveyance path 2 composed of a roller conveyor installed on the side thereof so as to face obliquely forward. The direction-changing device 3 of the present invention is disposed at a branch portion between the main conveyance path 1 and the branch conveyance path 2 so as to be substantially at the same height as them. In this embodiment, the inclination angle of the branch conveyance path 2 with respect to the main conveyance path 1 is 30°, but it is not limited to this. Also, the main conveyance path 1 may be a roller conveyor.
[0017] The main conveyance path 1 and the branch conveyance path 2 are supported by leg bodies (not shown) standing from the floor surface. The direction-changing device 3 selectively switches the conveyance direction from the straight-ahead direction to the branch direction or from the branch direction to the straight-ahead direction. Depending on this switching state, the conveyed object W conveyed from the upstream side of the main conveyance path 1 may be conveyed in the straight-ahead direction and conveyed to the downstream main conveyance path 1, or may be conveyed in the branch inclination direction and conveyed to the downstream branch conveyance path 2.
[0018] As shown in Figures 3 and 4, the direction-changing device 3 is equipped with a frame 4. The frame 4 has four front and rear leg rods 41 made of angle material, four lower connecting rods 42 connecting the lower parts of the front and rear and left and right opposing leg rods 41, 41, upper connecting rods 43, 43 which are inverted L-shaped in front view and connect the upper parts of the front and rear opposing leg rods 41, 41, and two front and rear lateral connecting rods 44 (only the front is shown) which connect the slightly inward opposing surfaces of the upper connecting rods 43, 43. Reinforcing members 45, 45 which are hat-shaped in front view and face the front and rear direction are bolted to the upper surfaces of the front and rear lateral connecting rods 44.
[0019] The inwardly bent pieces 5a, 5a at the lower ends of the side plates 5, 5 are bolted to the upper surfaces of the left and right upper connecting rods 43, 43. The opposing surfaces at both the front and rear ends of the side plates 5, 5 are connected by two upper and two lower connecting rods 6 that face left and right, preventing the side plates 5, 5 from wobbling in the left and right directions. For convenience, some of the connecting rods 6 are shown cut in the middle.
[0020] The ends of multiple front and rear reinforcing rods 7, which face left and right, are fixed to the upper surface of the middle portion of the inwardly bent pieces 5a, 5a of the side plates 5, 5, with their lower surfaces in contact with the upper surfaces of the reinforcing members 45, 45, thereby reinforcing the frame 4.
[0021] Four vertical rods 8 are fixed to the inner surfaces of the side plates 5, 5 at predetermined intervals (see Figure 4). On the opposing surfaces of each vertical rod 8, which face each other on the left and right, bracket support rods 9 facing left and right are fixed at regular intervals in the front-to-back direction to support the roller brackets 15 of the multiple direction-changing rollers 14, which consist of four rows, as described later. On the upper surfaces of each bracket support rod 9, as shown in an enlarged view in Figure 5, multiple support plates 10 are fixed to the left and right at predetermined intervals by bolts 11, 11. The lower end of a cylindrical case 12 facing up and down is fixed to the upper central part of each support plate 10, and a pivot shaft 17, which will be described later for rotating the direction-changing rollers 14, is fitted into this cylindrical case 12. A bearing 13 is press-fitted to the upper end of the cylindrical case 12 to rotatably support the pivot shaft 17. In this specification, the term "rotation" also includes a mode in which the rotation center of the direction-changing roller rotates horizontally without shifting during direction changes.
[0022] Next, the direction-changing rollers 14 and their support structure of the direction-changing device 3 will be described. As shown in Figure 1, the direction-changing device 3 is provided with multiple rows (four rows in this embodiment) of direction-changing rollers 14, arranged at predetermined intervals in the width direction of the main conveying path 1. The number of direction-changing rollers 14 in the width direction and the number of rows can be appropriately changed depending on the width dimensions of the main conveying path 1 and the branch conveying path 2, and the size of the conveyed objects.
[0023] As shown in Figures 3 and 5, the direction change rollers 14 in each row are rotatably supported by a U-shaped roller bracket 15 that faces upward when viewed from the front. That is, the direction change rollers 14 are pivotally supported by a horizontal rotation axis (not shown), and the angular shaft portions 16 formed at both ends of the rotation axis are non-rotatably fitted into upward-opening retaining grooves 15b formed in the upward-facing piece 15a of the roller bracket 15, thereby rotatably supporting the multiple direction change rollers 14 in each row by the roller bracket 15.
[0024] The upper end of a pivot shaft 17, which faces vertically to allow the direction-changing roller 14 to rotate horizontally, is inserted through the center of the roller bracket 15. The pivot shaft 17 is fixed in a hanging position to the center of the roller bracket 15 by fixing its enlarged diameter head 17a by welding or the like. The pivot shaft 17 is rotatably supported by a bearing 13 inside the cylindrical case 12. As a result, the roller bracket 15 and the direction-changing roller 14 supported by it can rotate horizontally around the pivot shaft 17. Alternatively, the bearing 13 can be omitted, and the pivot shaft 17 can be directly supported rotatably by the cylindrical case 12.
[0025] As shown in Figure 3, four known motor-driven rollers 18, oriented in the left-right direction, are supported on the opposing surfaces of each front and rear vertical rod 8, positioned directly below each front and rear bracket support rod 9. An endless drive belt 20 with a circular cross-section is wrapped between the drive rollers 18 and annular grooves 19 formed on the outer circumferential surface of the central part of each direction-changing roller 14. By operating the four front and rear drive rollers 18 simultaneously, the direction-changing rollers 14 in each row are rotated simultaneously in the direction of conveying the conveyed object W.
[0026] Next, the pivoting mechanism for the direction-changing rollers 14 will be described. As shown in Figures 3 and 4, the pivoting mechanism includes four link plates 21 facing left and right that rotate horizontally in sync with the roller brackets 15 for multiple direction-changing rollers 14 in each row, multiple (four) cylindrical cams 22 that rotate horizontally for the direction-changing rollers 14 in each row via the roller brackets 15, and a single stepping motor 23 which is a drive source that rotates the multiple cylindrical cams 22.
[0027] As shown in Figure 5, a forward-projecting actuation piece 24 for pivoting is bolted from below to the lower surface of each roller bracket 15, spaced apart to the side of the pivot axis 17. The link plate 21 is pivotally attached to the tip of each actuation piece 24 by a vertical pivot 21a. As a result, when the link plate 21 moves in the left-right direction, the multiple roller brackets 15 in each row and the multiple direction-changing rollers 14 supported by them rotate horizontally in sync.
[0028] The aforementioned multiple cylindrical cams 22 have the same structure, with a continuous cam groove 22a formed on their outer circumference. They are fitted to a cam shaft 25 oriented in the front-rear direction, with the upstream cylindrical cam 22 sequentially shifted by a predetermined angle (30° in this embodiment) so as to prevent relative rotation. The shape and inclination angle of the cam groove 22a are designed so that the direction-changing roller 14 rotates horizontally by 30° from the conveying direction of the main conveying path 1 to the conveying direction of the branch conveying path 2, and then rotates back to the conveying direction of the main conveying path 1, and this series of reciprocating rotational movements is completed in one rotation of the cylindrical cam 22.
[0029] Furthermore, the phases of multiple cylindrical cams 22 are sequentially shifted so that the direction change rollers 14 in the downstream row adjacent to the upstream side begin their rotation in the same direction as described above, before the rotation of the upstream direction change roller 14 from the transport direction of the main transport path 1 to the transport direction of the branch transport path 2, or from the transport direction of the branch transport path 2 to the transport direction of the main transport path 1, is completed. At the end of the inclined portion 22b of the cam groove 22a, a horizontal portion 22c is formed at the 180° opposing portion to ensure that the direction change roller 14 is reliably rotated 30° in the transport direction of the branch transport path 2 and the main transport path 1 (see Figure 6).
[0030] Both ends of the camshaft 25 are rotatably supported via bearings 27 by front and rear inward-facing pieces 26a, 26a of a bracket 26 fixed to the upper inner surface of the side plate 5 on the right side in the figure. A toothed driven pulley 28 is fitted to the front end of the camshaft 25 so as not to rotate relative to it.
[0031] The aforementioned stepping motor 23 is mounted on the upper surface of a support plate 29 (not shown in Figure 3 for convenience) whose ends are fixed to the inner surfaces of the front parts of the left and right side plates 5, 5, via a bracket 30, so as to be in close proximity to the driven pulley 28. A toothed belt 32 is wrapped between the toothed drive pulley 31 attached to the rotation shaft of the stepping motor 23 and the driven pulley 28. As a result, when the stepping motor 23 is operated to rotate in a clockwise direction when viewed from the front, the four cylindrical cams 22 are simultaneously driven to rotate in a clockwise direction when viewed from the front, together with the cam shaft 25.
[0032] As shown in Figure 5, an L-shaped drive piece 33 is screwed to the outermost (right side in the figure) roller bracket 15 of each row, specifically to the outer upward piece 15a. A cam follower 34 that rotates around a vertical axis is attached to the outward horizontal piece 33a of this drive piece 33, and the cam follower 34 is rotatably fitted into the cam groove 22a of the cylindrical cam 22. As a result, when the cylindrical cam 22 rotates, the cam follower 34 and the drive piece 33, guided and rolling in the cam groove 22a, cause the outermost roller bracket 15 and the direction-changing roller 14 supported by it to rotate horizontally around the pivot axis 17. At the same time, the multiple roller brackets 15 and direction-changing rollers 14 of each row, connected by the link plate 21, rotate horizontally in sync.
[0033] In this process, as described above, the multiple direction-changing rollers 14 in each row rotate horizontally by 30° from the conveying direction of the main conveying path 1 to the conveying direction of the branch conveying path 2, and then rotate back to the conveying direction of the main conveying path 1. This series of reciprocating rotational movements is completed in one rotation of the cylindrical cam 22. Furthermore, before the rotational movement of the upstream direction-changing rollers 14 from the conveying direction of the main conveying path 1 to the conveying direction of the branch conveying path 2, or from the conveying direction of the branch conveying path 2 to the conveying direction of the main conveying path 1, is completed, the direction-changing rollers 14 in the downstream row adjacent to the upstream side begin to rotate in the same direction as described above.
[0034] Next, with reference to Figure 7, the relationship between the rotation angle of the camshaft 25 and the rotational movement of the direction-changing rollers 14 in each row will be explained in detail. Figure 7(a) represents the starting state, and the rotation angle of the camshaft 25 is set to 0°. In this state, all the direction-changing rollers 14 from the first row on the upstream side to the fourth row on the downstream side are aligned parallel to the width direction of the main conveying path 1, and their rotational angle is 0°, so that the conveyed object can move in a straight line along the main conveying path 1.
[0035] (a) When the camshaft 25 rotates 90° from the state shown in Figure (b), as shown in Figure (b), the rotating cam 22 corresponding to the first row causes all the direction change rollers 14 in the first row to rotate horizontally up to a maximum of 30° (the same angle as the inclination angle of the branching transport path 2) toward the transport direction of the branching transport path 2. At the same time, the rotating cam 22 corresponding to the second row causes all the direction change rollers 14 in the second row to rotate horizontally up to 20° toward the transport direction of the branching transport path 2. Furthermore, the rotating cam 22 corresponding to the third row causes all the direction change rollers 14 in the third row to rotate horizontally up to 10° toward the transport direction of the branching transport path 2. At this time, the rotation of the direction change rollers 14 in the second and third rows on the downstream side toward the branching transport path 2 is performed before the rotation of the direction change rollers 14 in the first row on the upstream side toward the branching transport path 2 is completed. (b) In the state shown in the figure, when the transported material that has been transported from the upstream of the main transport path 1 enters the direction changing device 3, the first row of direction changing rollers 14 starts changing the direction toward the branch transport path 2.
[0036] When the camshaft 25 rotates 180° (half a turn), as shown in Figure (c), all the direction-changing rollers 14 in the first to fourth rows rotate horizontally up to 30° in the direction of transport in the branched transport path 2. This ensures that the transported material is reliably transferred to the branched transport path 2.
[0037] When the camshaft 25 rotates 270°, as shown in Figure (d), all the direction change rollers 14 in the first row rotate back to 30° in the transport direction of the main transport path 1, returning to the starting position of 0°. At the same time, all the direction change rollers 14 in the second and third rows, except for the fourth row, rotate horizontally to 10° and 20°, respectively, in the transport direction of the main transport path 1. At this time, the rotation of the direction change rollers 14 in the second and third rows on the downstream side towards the main transport path 1 begins before the rotation of the direction change rollers 14 in the first row on the upstream side towards the main transport path 1 is completed. In the state shown in Figure (d), when a subsequent transported object that has been transported from upstream of the main transport path 1 enters the direction change device 3, the direction change to the straight direction is initiated by the direction change rollers 14 in the first row, which have already rotated back to the transport direction of the main transport path 1. Therefore, there is no need to wait for the subsequent transported object to be sent out.
[0038] When the camshaft 25 rotates 330°, as shown in Figure (e), all the direction-changing rollers 14 in the first to third rows rotate back to 30° in the direction of transport of the main transport path 1, returning to the starting position of 0°, and all the direction-changing rollers 14 in the fourth row rotate to 10° in the direction of transport of the main transport path 1. In the state shown in Figures (d) and (e), when a subsequent transported object that has been transported from the upstream side of the main transport path 1 enters the direction-changing device 3, it is directed in the straight direction by the direction-changing rollers 14 in the first to third rows. Therefore, there is no need to wait for the subsequent transported object to be sent out until the preceding transported object has passed all the direction-changing rollers 14 in the branch transport path 2.
[0039] When the camshaft 25 rotates 360° (one full rotation), as shown in Figure (f), all the direction-changing rollers 14 in the first to fourth rows rotate back to 30° in the direction of transport of the main transport path 1, returning to the starting position of 0°. This switches the transport direction of the transported material from the branch transport path 2 to the main transport path 1.
[0040] As described above, when using the direction changing device 3 according to the embodiment, the series of reciprocating rotational movements of the direction changing rollers 14 of each row, which consist of horizontal rotation from the transport direction of the main transport path 1 to the transport direction of the branch transport path 2 and return rotation from the branch transport path 2 to the transport direction of the main transport path 1, are started sequentially from the upstream row. Therefore, when selectively switching the transport direction of transported objects, it is not necessary to wait for the subsequent transported objects to be sent out until the preceding transported objects have passed all the direction changing rollers 14 of the rows, thereby reducing waiting time and improving transport efficiency and sorting efficiency.
[0041] Furthermore, by driving multiple cylindrical cams 22 corresponding to each row with a single stepping motor 23, and only rotating the bracket supporting the outermost direction-changing roller 14 of each row, the other multiple roller brackets 15 and all the direction-changing rollers 14 supported by them can be rotated horizontally in sync via the link plate 21, thus simplifying the configuration of the rotation mechanism and reducing costs. Moreover, since the direction-changing rollers 14 of each row can be rotated back and forth with only one stepping motor 23, the number of parts is reduced, and the control system of the stepping motor 23 is also simplified, further reducing costs. In addition, the installation space for the stepping motor 23, which is the drive source, can be reduced, allowing the direction-changing device 3 to be made more compact.
[0042] Furthermore, by simply shifting the phases of multiple cylindrical cams 22, which have the same structure, by a predetermined angle for each row, a series of reciprocating rotational movements can be started sequentially from the row of direction-changing rollers 14 on the upstream side, thereby reducing costs.
[0043] Furthermore, since the series of reciprocating rotational movements of the direction-changing rollers 14 in each row are completed with one rotation of the cylindrical cam 22, the stepping motor 23 only needs to be rotated in one direction, thus simplifying the control system.
[0044] Furthermore, since the direction-changing rollers 14 in multiple rows begin to rotate in the same direction as described above before the rotation of the upstream direction-changing roller 14 from the transport direction of the main transport path 1 to the transport direction of the branch transport path 2, or from the transport direction of the branch transport path 2 to the transport direction of the main transport path 1, is completed, the transported material can be moved smoothly and continuously without stopping.
[0045] Although embodiments of the present invention have been described above with reference to the drawings, the specific configurations are not limited to these embodiments, and additions and modifications that do not depart from the spirit of the present invention are also included.
[0046] For example, in the above embodiment, a single stepping motor 23 was used to reciprocate the rotation of the direction-changing rollers 14 in each row. However, it is also possible to reciprocate the rotation of the direction-changing rollers 14 in each row by using the forward and reverse rotation of multiple stepping motors provided for each row to reciprocate multiple forward and backward moving means such as a screw feed mechanism, thereby causing the outermost roller bracket 15 of each row to reciprocate. In this case, the operating timing of the multiple stepping motors should be staggered so that the rotation of the direction-changing rollers 14 in each row is performed from the upstream row.
[0047] Furthermore, in the above embodiment, the reciprocating rotation of the direction-changing roller 14 was completed with one rotation of the cylindrical cam 22. However, if, for example, the cam groove 22a is formed on approximately half the circumference of the cylindrical cam 14, and the stepping motor 23 is controlled to rotate the cylindrical cam 22 in forward and reverse directions by half a rotation at a time, a series of reciprocating rotations of the direction-changing rollers 14 in each row can be performed in the same manner as in the embodiment.
[0048] Furthermore, in the above embodiment, a cam groove 22a is formed on the outer circumferential surface of the cylindrical cam 22, and the cam follower 34 on the roller bracket 15 side is fitted into this cam groove 22a. However, instead of a cam groove 22a, a cam projection may be formed, and a bifurcated follower provided on the roller bracket 15 side may be slidably fitted into this cam projection.
[0049] Furthermore, in the above embodiment, the drive roller 18 is used to rotate the direction-changing roller 14, but the drive roller 18 may be omitted, and all direction-changing rollers 14 may be made into freely rotatable rollers.
[0050] Furthermore, although the above embodiment describes a configuration in which the direction changing roller 14 rotates horizontally without the rotation center of the direction changing roller 14 shifting, the direction changing roller 14 may also rotate in a horizontal plane along an arc when changing direction. [Explanation of Symbols]
[0051] 1 Main transport path 2 branching transport routes 3-way turning device 4. Stand 5 Side panels 6-section rod 7 Reinforcement rod 8 vertical rod 9 Bracket support rod 10 Support plate 11 volts 12 cylindrical cases 13 Bearings 14 Directional change roller 15 Roller Bracket 16 Square shaft part 17. Swivel axis 18 drive rollers 19 Annular groove 20 Drive belt 21 Link Plate 22 Cylindrical cam 22a Cam groove 22b Slope 22c horizontal section 23 Stepping motor 24 Actuating piece 25 Camshaft 26 brackets 27 Bearings 28 Driven pulley 29 Support plate 30 brackets 31 Drive pulley 32 Toothed belt 33 Drive piece 34. Come Follower (Follower)
Claims
1. A conveyor direction changing device is installed at the branching point between a main conveying path that transports transported materials and a branch conveying path provided on the side of the main conveying path, and which changes the direction of transported materials that have been transported from the upstream side in the transport direction of the main conveying path and transports them to the branch conveying path, Multiple rows of direction-changing rollers are arranged at predetermined intervals in the width direction of the main transport path, and multiple rows are provided along the transport direction. The aforementioned multiple rows of direction-changing rollers perform a series of reciprocating rotational movements, in which they rotate horizontally from the transport direction of the main transport path to the transport direction of the branch transport path, and then rotate back to the transport direction of the main transport path, in a synchronous manner for each row by a rotational movement means. Each of the direction-changing rollers in each row is rotatably supported by a roller bracket that can rotate horizontally around a pivot axis that faces vertically. The pivoting mechanism comprises a link plate pivotally attached to the roller bracket of each row and synchronously pivoting the direction-changing rollers of each row together with the roller bracket, a plurality of cylindrical cams that horizontally pivot the outermost roller bracket of each row, and a drive source that rotationally drives the plurality of cylindrical cams. The conveyor direction changing device is characterized in that the rotational operation means sequentially initiates the series of reciprocating rotational operations from the row of direction changing rollers on the upstream side.
2. The conveyor direction changing device according to claim 1, characterized in that the aforementioned drive source is one.
3. The conveyor direction changing device according to claim 1 or 2, characterized in that the plurality of cylindrical cams have the same structure, each having a cam groove formed to rotate the roller bracket horizontally via a follower, and they are arranged in rows with their phases shifted by a predetermined angle in sequence.
4. The conveyor direction changing device according to claim 3, characterized in that the cam groove is formed continuously with the outer circumferential surface of the cylindrical cam, and the series of reciprocating rotational movements are completed with one rotation of the cylindrical cam.
5. A conveyor direction changing device according to any one of claims 1 to 4, characterized in that the multiple rows of direction changing rollers are configured such that, before the rotation of the upstream direction changing roller from the transport direction of the main transport path to the transport direction of the branch transport path, or from the transport direction of the branch transport path to the transport direction of the main transport path is completed, the direction changing roller of the downstream row adjacent to the upstream direction changing roller begins to rotate in the same direction as the rotation of the upstream direction changing roller.
Citation Information
Patent Citations
JP1975024631A
Sorting transferer
JP1997202442A