Steel sorting equipment
By designing the branch plate and turn steel components in the steel splitting equipment, the problem of inaccurate number of steel bars in the existing steel splitting equipment is solved, and the accurate bundling of steel bars is achieved and the discharge efficiency is improved.
Patent Information
- Application Number
- CN202310148267.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-02-22
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2043-02-22
AI Technical Summary
When the existing steel splitting equipment separates the steel bars, due to small gaps and rolling steel bars, the number of steel bars on the upper and lower bundles of steel bars is inaccurate, affecting the production rate and the accuracy of the number of branches.
A steel splitting equipment is designed, including brackets, conveying components, branching plates and steel flipped components. The bifurcation plate extends out through the tip to separate the steel bars to form a spacing. The turning steel assembly pushes the steel bars up and pushes it to the end by driving the turning steel bars to separate the steel bars to facilitate bundling.
By setting up a split plate and a steel turn-over assembly, the steel bars on the conveying assembly can be accurately spaced apart according to the required quantity, preventing errors in the number of bundles and improving discharge efficiency.
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Figure CN116215949B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of bar production, and particularly relates to a steel separating device. Background Art
[0002] After the bar production line is completed, the steel bars are sorted into bundles through the finishing process for delivery to customers. Currently, most steel mills use automatic counting steel separators to determine the number of steel bars in each bundle. However, in actual use, due to reasons such as the small gap separated by the steel separator and the rolling of the steel bars, the number of steel bars in the upper and lower bundles is inaccurate, affecting the production material rate and the accuracy of the number of pieces in the workshop. Summary of the Invention
[0003] An embodiment of the present invention provides a steel separating device, aiming to solve the technical problem that the counting is inaccurate during the existing steel separation process, which affects the production material rate.
[0004] To achieve the above object, the technical solution adopted by the present invention is: to provide a steel separating device, including:
[0005] A bracket;
[0006] A conveying assembly, arranged on the bracket, and the conveying assembly is used for conveying steel bars;
[0007] A bifurcated plate, arranged on the bracket and located at the bottom of the conveying assembly. The bifurcated plate has a tip that can extend and protrude from the conveying assembly, and is used to separate the steel bars on the conveying assembly to form an interval; and
[0008] A steel turning assembly, arranged on the bracket and located below the conveying assembly. The steel turning assembly and the bifurcated plate are in position correspondence along a first preset path. The first preset path is perpendicular to the running path of the conveying assembly and the up-down direction respectively. The steel turning assembly includes a turning steel plate and a driving mechanism for driving the turning steel plate to rotate along the first preset path. The turning steel plate is used to lift one batch of steel bars and roll them towards the feeding end of the conveying assembly.
[0009] In a possible implementation manner, the bifurcated plate is a triangular plate. One side edge of the bifurcated plate is rotatably connected to the bracket through a first rotating shaft. The axial direction of the first rotating shaft is parallel to the first preset path. The bifurcated plate has a first state in which the plate surface is parallel to the horizontal direction and is hidden below the conveying assembly, and a second state in which the plate surface is perpendicular to the horizontal direction and extends out of the conveying assembly after rotation.
[0010] In a possible implementation manner, a lifting cylinder connected to the bracket is arranged at the bottom of the bifurcated plate. The piston rod of the lifting cylinder is fixedly connected to the bottom end of the bifurcated plate. The width of the bifurcated plate gradually increases in the up-down direction, and the top end forms the tip.
[0011] In a possible implementation, the conveying assembly includes:
[0012] A first motor, disposed on the bracket;
[0013] A first conveyor chain, drivingly connected to the output shaft of the first motor;
[0014] A second motor, disposed on the bracket, the second motor being disposed opposite to the first motor and having parallel axes; and
[0015] A second conveyor chain, drivingly connected to the output shaft of the second motor, the second conveyor chain being arranged in parallel with the first conveyor chain and having a flush conveying surface;
[0016] Both the bifurcation plate and the steel turning assembly are located between the first conveyor chain and the second conveyor chain.
[0017] In a possible implementation, a plurality of stoppers are respectively arranged at intervals along the running paths of the first conveyor chain and the second conveyor chain. One side surface of the stopper facing away from the discharge end of the first conveyor chain or the second conveyor chain forms a guiding sliding surface that gradually slopes upward, and one side surface of the stopper facing the discharge end of the first conveyor chain or the second conveyor chain forms a material blocking surface parallel to the up-and-down direction.
[0018] In a possible implementation, the projections of the stoppers on the first conveyor chain and the second conveyor chain along a first preset path are staggered from each other, and two adjacent stoppers in the projection are used to accommodate a single steel bar.
[0019] In a possible implementation, the projections of the stoppers on the first conveyor chain and the second conveyor chain along a first preset path coincide with each other, and two adjacent stoppers on the first conveyor chain or the second conveyor chain are used to accommodate a single steel bar.
[0020] In a possible implementation, a plurality of steel turning assemblies and a plurality of bifurcation plates are respectively arranged along the first preset path, and the plurality of steel turning assemblies and the plurality of bifurcation plates are arranged alternately.
[0021] In a possible implementation, the steel turning assembly further includes:
[0022] A base, disposed on the bracket;
[0023] A side plate, disposed on the base, the plate surface of the side plate being perpendicular to the horizontal direction;
[0024] A second rotating shaft is rotatably connected to the top of the side plate. The axial direction of the second rotating shaft is parallel to the first preset path, and one side of the steel turning plate facing the discharging end of the conveying assembly is fixedly arranged on the rotating shaft; and
[0025] A driving cylinder forms the driving mechanism. The cylinder body of the driving cylinder is rotatably connected to the base, and the piston rod of the driving cylinder is rotatably connected to the middle of the steel turning plate.
[0026] In a possible implementation manner, a reinforcing rib is arranged between the side plate and the base.
[0027] In the embodiment of the present application, compared with the prior art, in the specific use process, the conveying assembly is docked with the production process. Suppose there are 20 steel bars on the conveying assembly, and actually 10 steel bars are required to form a bundle. During the movement of the conveying assembly, when 10 steel bars pass through the bifurcation plate, at this time the conveying assembly stops running, the tip of the bifurcation plate extends out, so that the 10 steel bars on the left and the 10 steel bars on the right are separated. Then the steel turning assembly is started, and the driving mechanism drives the steel turning plate to rotate. While the steel turning plate extends out from the above interval, the bifurcation plate returns to the initial state. The steel turning plate pushes the 10 steel bars close to the discharging end of the conveying assembly to the end, so that the 10 steel bars on the left and the 10 steel bars on the right are far apart, which is convenient for subsequent bundling. The steel separating device of the present invention can separate the steel bars on the conveying assembly according to the required bundling quantity through the arrangement of the bifurcation plate and the steel turning assembly, which is convenient for automatically bundling the required quantity of steel bars in the subsequent process, and prevents the bundling quantity from being incorrect and thus affecting the discharging efficiency. Description of the Drawings
[0028] Figure 1 It is the front view structural schematic diagram of the steel separating device provided by Embodiment 1 of the present invention;
[0029] Figure 2 It is the top view structural schematic diagram of the steel separating device provided by Embodiment 1 of the present invention;
[0030] Figure 3 It is the front view structural schematic diagram of the steel separating device provided by Embodiment 2 of the present invention;
[0031] Figure 4 It is the top view structural schematic diagram of the conveying assembly adopted in Embodiment 2 of the present invention;
[0032] Figure 5 It is the front view structural schematic diagram of the steel turning assembly adopted in Embodiment 1 of the present invention;
[0033] Figure 6 It is the rear view structural schematic diagram of the steel turning assembly adopted in Embodiment 1 of the present invention;
[0034] Figure 7 It is the top view structural schematic diagram of the steel turning assembly adopted in Embodiment 1 of the present invention;
[0035] Figure 8 Schematic front view structure diagram (first state) of the bifurcation plate adopted in the second embodiment of the present invention;
[0036] Figure 9 Schematic top view structure diagram (first state) of the bifurcation plate adopted in the second embodiment of the present invention;
[0037] Figure 10 Schematic diagram of the usage state (second state) of the bifurcation plate adopted in the second embodiment of the present invention.
[0038] Explanation of reference numerals:
[0039] 10 - Bracket;
[0040] 20 - Conveying assembly; 21 - First motor; 22 - First conveyor chain; 23 - Second motor; 24 - Second conveyor chain; 25 - Stopper; 251 - Guide sliding surface; 252 - Material blocking surface;
[0041] 30 - Bifurcation plate; 31 - Tip; 32 - First rotating shaft; 33 - Lifting cylinder;
[0042] 40 - Steel turning assembly; 41 - Steel turning plate; 411 - V - shaped groove; 42 - Base; 43 - Side plate; 44 - Second rotating shaft; 45 - Driving cylinder; 46 - Reinforcing rib; 47 - Support plate; 48 - Bearing;
[0043] 50 - Steel bar. Detailed implementation manners
[0044] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0045] Please refer to Figures 1 to 10, the steel separating device provided by the present invention will be described below. The steel separating device includes a bracket 10, a conveying assembly 20, a bifurcating plate 30, and a steel turning assembly 40. The conveying assembly 20 is arranged on the bracket 10 and is used for conveying steel bars 50; the bifurcating plate 30 is arranged on the bracket 10 and is located at the bottom of the conveying assembly 20. The bifurcating plate 30 has a tip 31 that can extend and protrude beyond the conveying assembly 20, and is used to separate the steel bars 50 on the conveying assembly 20 to form an interval; the steel turning assembly 40 is arranged on the bracket 10 and is located below the conveying assembly 20. The steel turning assembly 40 and the bifurcating plate 30 are in position correspondence along a first preset path. The first preset path is perpendicular to the running path of the conveying assembly 20 and the up-down direction respectively. The steel turning assembly 40 includes a steel turning plate 41 and a driving mechanism for driving the steel turning plate 41 to rotate along the first preset path. The steel turning plate 41 is used to lift one batch of steel bars 50 and roll them towards the feeding end of the conveying assembly 20.
[0046] It should be noted that in order to ensure that the steel turning plate 41 can turn the steel smoothly after the bifurcating plate 30 separates the steel bars 50 into intervals, it is known that the steel turning plate 41 rotates around a second rotating shaft 44, and the end point of the steel turning plate 41 away from the second rotating shaft 44 is within the interval separated by the bifurcating plate 30.
[0047] In the specific use process of the steel separating device provided in this embodiment, compared with the prior art, the conveying assembly 20 is connected to the production process. Suppose there are 20 steel bars 50 on the conveying assembly 20, and actually 10 steel bars 50 are required to form a bundle. During the movement of the conveying assembly 20, when 10 steel bars 50 pass through the bifurcating plate 30, the conveying assembly 20 stops running at this time, and the bifurcating plate 30 starts to extend the tip 31, so that the 10 steel bars 50 on the left and the 10 steel bars 50 on the right are separated. Then the steel turning assembly 40 starts, and the driving mechanism drives the steel turning plate 41 to rotate. While the steel turning plate 41 extends from the above interval, the bifurcating plate 30 returns to its initial state. The steel turning plate 41 lifts and pushes the 10 steel bars 50 close to the discharging end of the conveying assembly 20 to the end, so that the 10 steel bars 50 on the left and the 10 steel bars 50 on the right are far apart, which is convenient for subsequent bundling. The steel separating device of the present invention can separate the steel bars 50 on the conveying assembly 20 according to the required bundling quantity by setting the bifurcating plate 30 and the steel turning assembly 40, which is convenient for automatically bundling the required quantity of steel bars 50 in the subsequent process, and prevents the bundling quantity from being incorrect and thus affecting the discharging efficiency.
[0048] It should be noted that the recognition of the number of steel bars 50 passing through the top by the bifurcating plate 30 can be realized by an optical counter. The optical counter transmits to the system. When the count reaches a preset value, the bifurcating plate 30 automatically starts, and after the bifurcating plate 30 starts, the steel turning assembly 40 starts with a delay (for example, the steel turning assembly 40 starts 30 s later than the bifurcating plate 30).
[0049] In some embodiments, a specific implementation of the above-mentioned bifurcation plate 30 may adopt the structure as shown in Figures 3 to 4 , Figures 8 to 10 . Referring to Figures 3 to 4 , Figures 8 to 10 , the bifurcation plate 30 is a triangular plate. One side edge of the bifurcation plate 30 is rotatably connected to the bracket 10 through a first rotating shaft 32. The axial direction of the first rotating shaft 32 is parallel to the first preset path. The bifurcation plate 30 has a first state in which the plate surface is parallel to the horizontal direction and is hidden below the conveying assembly 20, and a second state in which the plate surface is perpendicular to the horizontal direction and extends out of the conveying assembly 20 after rotation. When the conveying assembly 20 is normally conveying, the bifurcation plate 30 is in a state parallel to the horizontal direction (including two states of being approximately parallel and completely parallel), and is below the conveying assembly 20 to ensure the normal conveying of the conveying assembly 20; when a preset number of steel bars 50 pass through the tip 31 of the bifurcation plate 30, the conveying assembly 20 stops running, the bifurcation plate 30 is activated, the first rotating shaft 32 rotates, and the bifurcation plate 30 rotates around the first rotating shaft 32 and gradually stands up. During the process of the bifurcation plate 30 extending out, the tip 31 of the bifurcation plate 30 faces upward, separating the left and right batches of steel bars 50.
[0050] Optionally, the first rotating shaft 32 can be driven to rotate by a motor or the like, so as to realize the rotation of the bifurcation plate 30 around the first rotating shaft 32 and extend out of the conveying assembly 20. And it is easy to think that in order to realize the extension of the bifurcation plate 30, there is an interval on the conveying assembly 20 that allows the bifurcation plate 30 to extend.
[0051] In some embodiments, a deformed implementation of the above-mentioned bifurcation plate 30 may adopt the structure as shown in Figures 1 to 2 . Referring to Figures 1 to 2 , a lifting cylinder 33 connected to the bracket 10 is provided at the bottom of the bifurcation plate 30. The piston rod of the lifting cylinder 33 is fixedly connected to the bottom end of the bifurcation plate 30. The width of the bifurcation plate 30 gradually increases in the up and down direction, and the top end forms a tip 31. When the conveying assembly 20 is normally conveying, the piston rod of the lifting cylinder 33 is in a contracted state, and the whole bifurcation plate 30 is below the conveying assembly 20 (the plate surface is perpendicular to the horizontal direction) to ensure the normal conveying of the conveying assembly 20; when a preset number of steel bars 50 pass through the tip 31 of the bifurcation plate 30, the conveying assembly 20 stops running, the lifting cylinder 33 is activated, the piston rod extends to drive the bifurcation plate 30 to move upward, and during the process of the bifurcation plate 30 extending out, the tip 31 of the bifurcation plate 30 faces upward, separating the left and right batches of steel bars 50.
[0052] Whether the bifurcation plate 30 rotates around the first rotating shaft 32 or is controlled by the lifting cylinder 33, during the process of the bifurcation plate 30 gradually extending out, the two batches of steel bars 50 are separated, and the process is stable, so as to facilitate the subsequent steel turning of the steel turning assembly 40.
[0053] In some embodiments, a specific implementation of the above-mentioned conveying component 20 may adopt the structure as shown in Figures 1 to 4 . Refer to Figures 1 to 4 . The conveying component 20 includes a first motor 21, a first conveyor chain 22, a second motor 23 and a second conveyor chain 24. The first motor 21 is arranged on the bracket 10; the first conveyor chain 22 is in transmission connection with the output shaft of the first motor 21; the second motor 23 is arranged on the bracket 10, the second motor 23 is arranged opposite to the first motor 21 and is axially parallel; the second conveyor chain 24 is in transmission connection with the output shaft of the second motor 23, the second conveyor chain 24 is arranged in parallel with the first conveyor chain 22, and their conveying surfaces are flush; the bifurcation plate 30 and the steel turning component 40 are both located between the first conveyor chain 22 and the second conveyor chain 24. The first conveyor chain 22 and the second conveyor chain 24 are spaced apart along a first preset path, so that the two ends of the steel bar 50 can be supported respectively, improving the stability during the conveying of the steel bar 50, and the interval between the first conveyor chain 22 and the second conveyor chain 24 also facilitates the bifurcation plate 30 and the steel turning plate 41 to extend to realize steel bar bifurcation.
[0054] In some embodiments, an improved implementation of the above-mentioned conveying component 20 may adopt the structure as shown in Figures 1 to 4 . Refer to Figures 1 to 4 . A plurality of stoppers 25 are respectively arranged on the first conveyor chain 22 and the second conveyor chain 24 at intervals along their running paths. One side surface of the stopper 25 facing away from the discharging end of the first conveyor chain 22 or the second conveyor chain 24 forms a guiding sliding surface 251 that gradually slopes upward, and one side surface of the stopper 25 facing the discharging end of the first conveyor chain 22 or the second conveyor chain 24 forms a material blocking surface 252 parallel to the up-down direction. During the conveying process, one steel bar 50 is accommodated between two adjacent stoppers 25, which facilitates the orderly conveying and ensures that the number of steel bars 50 passing through the bifurcation plate 30 is fixed; when the steel turning component 40 operates, since the steel bar 50 is lifted and pushed together, the guiding sliding surface 251 on the stopper 25 facilitates the rolling of the steel bar 50, and the material blocking surface 252 can prevent the steel bar 50 from rolling back to the original position due to inertia, etc., ensuring effective separation.
[0055] In some embodiments, a specific implementation of the above-mentioned stopper 25 may adopt the structure as shown in Figures 3 to 4 . Refer to Figures 3 to 4, the projections of the stoppers 25 on the first conveyor chain 22 and the second conveyor chain 24 are staggered along the first preset path, and two adjacent stoppers 25 with adjacent projections are used to accommodate a single steel bar 50. That is, the stoppers 25 on the first conveyor chain 22 and the stoppers 25 on the second conveyor chain 24 act together on both sides of each steel bar 50 to convey the steel bar 50. There are two steel bars 50 between two adjacent stoppers 25 on the first conveyor chain 22 or the second conveyor chain 24. Since the first conveyor chain 22 and the second conveyor chain 24 are driven by different motors, by adjusting the first motor 21 or the second motor 23, the interval at which the stoppers 25 on the first conveyor chain 22 and the second conveyor chain 24 are staggered can be changed, so as to adapt to the conveyance of steel bars 50 with different diameters, and the applicability is stronger.
[0056] In some embodiments, a modified implementation manner of the above-mentioned stopper 25 can adopt, for example Figures 1 to 2 the structure shown. Refer to Figures 1 to 2 , the projections of the stoppers 25 on the first conveyor chain 22 and the second conveyor chain 24 coincide along the first preset path, and two adjacent stoppers 25 on the first conveyor chain 22 or the second conveyor chain 24 are used to accommodate a single steel bar 50. The stopper 25 on the first conveyor chain 22 acts on one end of the steel bar 50, and the stopper 25 on the second conveyor chain 24 acts on the other end of the steel bar 50, preventing the steel bar 50 from tilting, making the process of conveying the steel bar 50 more stable, and ensuring the accuracy of the quantity when dividing the steel bars.
[0057] In some embodiments, a specific implementation manner of the above-mentioned steel bar turning assembly 40 can adopt, for example Figures 5 to 7 the structure shown. Refer to Figures 5 to 7 , the steel bar turning assembly 40 further includes a base 42, a side plate 43, a second rotating shaft 44 and a driving cylinder 45. The base 42 is arranged on the bracket 10; the side plate 43 is arranged on the base 42, and the plate surface of the side plate 43 is perpendicular to the horizontal direction; the second rotating shaft 44 is rotatably connected to the top of the side plate 43, and the axial direction of the second rotating shaft 44 is parallel to the first preset path. The turning steel plate 41 is fixedly arranged on the rotating shaft on the side facing the discharge end of the conveying assembly 20; the driving cylinder 45 forms a driving mechanism, the cylinder body of the driving cylinder 45 is rotatably connected to the base 42, and the piston rod of the driving cylinder 45 is rotatably connected to the middle of the turning steel plate 41. When the turning steel plate 41 needs to be started, the driving cylinder 45 is started, and the piston rod of the driving cylinder 45 extends, driving the turning steel plate 41 to rotate, realizing steel bar turning. The driving cylinder 45 drives the rotation of the turning steel plate 41 through the telescopic movement of the piston rod, and can play a supporting role at the bottom of the turning steel plate 41, preventing the turning steel plate 41 from deforming and affecting the work, and the structure is more stable.
[0058] In some embodiments, an improved implementation manner of the above-mentioned turning steel plate 41 can adopt, for example Figures 5 to 6 the structure shown. Refer to Figures 5 to 6, the top surface of the steel plate turning plate 41 is sunken to form a V-shaped groove 411, and the V-shaped groove 411 penetrates through the thickness direction of the steel plate turning plate 41. When the steel plate turning plate 41 rotates and extends out of the conveying surface of the conveying assembly 20, the steel bar 50 falls into the V-shaped groove 411 of the steel plate turning plate 41, which can limit the position of the steel bar 50 and prevent the steel bar 50 from rolling out of the steel plate turning plate 41 and falling into another batch of steel bars 50, causing counting errors.
[0059] In some embodiments, an improved implementation manner of the above-mentioned steel plate turning assembly 40 can adopt the structure as shown in Figures 5 to 7 . Refer to Figures 5 to 7 , a reinforcing rib 46 is provided between the side plate 43 and the base 42. The side plate 43 is used to install the second rotating shaft 44. The second rotating shaft 44 needs to bear the weight of the steel plate turning plate 41. Since the weight of the steel bar 50 acts on the steel plate turning plate 41 and is transmitted to the second rotating shaft 44 during the process of turning the steel plate, by providing the reinforcing rib 46, the deformation of the side plate 43 can be prevented, and the stability of the second rotating shaft 44 can be ensured.
[0060] In some embodiments, an improved implementation manner of the above-mentioned steel plate turning assembly 40 can adopt the structure as shown in Figure 7 . Refer to Figure 7 , two side plates 43 are provided opposite to each other, and both ends of the second rotating shaft 44 are respectively rotatably connected to the two side plates 43. A support plate 47 is provided on one side surface of each side plate 43 facing the other side plate 43. The second rotating shaft 44 penetrates through the support plate 47, and a bearing 48 is provided between the second rotating shaft 44 and the support plate 47. By providing the support plate 47, the installation of the bearing 48 is facilitated, the rotation process of the second rotating shaft 44 is made smoother, and the driving cylinder 45 can drive the steel plate turning plate 41 to respond immediately.
[0061] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A steel separating device, characterized in that, it includes: a bracket; a conveying assembly, provided on the bracket, and the conveying assembly is used for conveying steel bars; a bifurcation plate, provided on the bracket and located at the bottom of the conveying assembly, and the bifurcation plate has a tip that can extend and protrude from the conveying assembly, for separating the steel bars on the conveying assembly to form an interval; and a steel turning assembly, provided on the bracket and located below the conveying assembly, the steel turning assembly and the bifurcation plate are in position correspondence along a first preset path, the first preset path is respectively perpendicular to the running path and the up-down direction of the conveying assembly, the steel turning assembly includes a turning steel plate and a driving mechanism for driving the turning steel plate to rotate along the first preset path, and the turning steel plate is used for jacking up one batch of steel bars and rolling them towards the feeding end of the conveying assembly; the bifurcation plate is a triangular plate, one side edge of the bifurcation plate is rotatably connected to the bracket through a first rotating shaft, the axial direction of the first rotating shaft is parallel to the first preset path, the bifurcation plate has a first state in which the plate surface is parallel to the horizontal direction and is hidden below the conveying assembly, and a second state in which the plate surface is perpendicular to the horizontal direction and extends out of the conveying assembly after rotation; the conveying assembly includes: a first motor, provided on the bracket; a first conveyor chain, drivingly connected to the output shaft of the first motor; a second motor, provided on the bracket, the second motor is arranged opposite to the first motor and has parallel axes; and a second conveyor chain, drivingly connected to the output shaft of the second motor, the second conveyor chain is arranged in parallel with the first conveyor chain and has a flush conveying surface; the bifurcation plate and the steel turning assembly are both between the first conveyor chain and the second conveyor chain; a plurality of stoppers are respectively arranged at intervals along the running path on the first conveyor chain and the second conveyor chain, and a guiding sliding surface that gradually slopes upward is formed on the side surface of the stopper facing away from the discharging end of the first conveyor chain or the second conveyor chain, and a material blocking surface parallel to the up-down direction is formed on the side surface of the stopper facing the discharging end of the first conveyor chain or the second conveyor chain; the steel turning assembly further includes: a base, provided on the bracket; a side plate, provided on the base, and the plate surface of the side plate is perpendicular to the horizontal direction; a second rotating shaft, rotatably connected to the top of the side plate, the axial direction of the second rotating shaft is parallel to the first preset path, and one side of the turning steel plate facing the discharging end of the conveying assembly is fixedly arranged on the second rotating shaft; and a driving cylinder, forming the driving mechanism, the cylinder body of the driving cylinder is rotatably connected to the base, and the piston rod of the driving cylinder is rotatably connected to the middle of the turning steel plate.
2. The steel separating device according to claim 1, characterized in that, a lifting cylinder connected to the bracket is provided at the bottom of the bifurcation plate, the piston rod of the lifting cylinder is fixedly connected to the bottom end of the bifurcation plate, the width of the bifurcation plate gradually increases in the up-down direction, and the tip is formed at the top end.
3. The steel separating device according to claim 1, characterized in that, The projections of the stoppers on the first conveying chain and the second conveying chain on the first preset path are staggered with each other, and two adjacent stoppers in the projection are used to accommodate a single steel bar.
4. The steel bar separating device according to claim 1, characterized in that the projections of the stoppers on the first conveying chain and the second conveying chain on the first preset path coincide with each other, and two adjacent stoppers on the first conveying chain or the second conveying chain are used to accommodate a single steel bar.
5. The steel bar separating device according to claim 1, characterized in that a plurality of the steel bar turning components and the bifurcated plates are respectively arranged along the first preset path, and the plurality of steel bar turning components and the plurality of bifurcated plates are arranged alternately.
6. The steel bar separating device according to claim 1, characterized in that reinforcing ribs are provided between the side plate and the base.
Citation Information
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Steel turning system
CN105668198A
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