Steel part overturning and conveying table
By setting a central flipping component on the steel parts flipping conveyor, the automatic flipping of steel parts is achieved using a transfer box, a rotating shaft, and a forward and reverse motor, which solves the problem of steel parts being difficult to flip during the conveying process and improves processing efficiency.
Patent Information
- Application Number
- CN202423017535.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Steel parts are not easy to rotate during transportation, resulting in low processing efficiency.
A steel component flipping conveyor was designed, including a central flipping assembly between the infeed conveyor and the outfeed conveyor. By utilizing the cooperation of a transfer box, a rotating shaft, gears, and a forward and reverse motor, the steel components can be automatically flipped and transferred.
The automatic flipping function improves the processing efficiency of steel parts, simplifies the surface treatment process of steel parts, and increases production efficiency.
Smart Images

Figure CN223547133U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of steel component conveying technology, specifically a steel component tilting conveyor. Background Technology
[0002] Steel parts generally refer to components made of steel. During the processing of steel parts, steps such as grinding, cleaning, and polishing are required. Typically, steel parts are conveyed on a conveyor system. When the steel parts move to the processing station, the processing station captures and fixes them, then processes their upper surface. After the steel parts are collected, they are flipped and put back into the conveyor system for further processing of the other side. However, the following defects still exist:
[0003] During the movement of steel parts, it is not easy to directly flip the steel parts, resulting in low processing efficiency. Utility Model Content
[0004] In order to overcome the shortcomings of the prior art, this utility model provides a steel parts flipping conveyor, which effectively solves the problem of the difficulty in flipping steel parts during the conveying process and the low processing efficiency.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a steel component tilting conveyor, comprising a feeding conveyor frame and a discharging conveyor frame, wherein a central tilting assembly is provided between the feeding conveyor frame and the discharging conveyor frame;
[0006] The central tilting component includes a base, which is located between the infeed conveyor and the outfeed conveyor. Two mounting frames are symmetrically installed between the bases, and a material tilting unit is provided between the two mounting frames.
[0007] The material flipping unit includes a transfer box with a transfer cavity inside. The transfer cavity extends to one end of the transfer box, and the transfer box moves between the infeed conveyor and the outfeed conveyor to facilitate the flipping and transfer of steel parts.
[0008] Preferably, the transfer box has symmetrically mounted rotating shafts on both sides, with gears coaxially mounted on the rotating shafts, and an end connection unit is installed between the rotating shafts and the mounting bracket on the corresponding side.
[0009] Preferably, the mounting frame includes a crossbeam located above the base. Guide rods are symmetrically installed between the crossbeam and the base. A screw is rotatably installed between the crossbeam and the base. The screw is fixedly connected to the output shaft of the forward and reverse motor. The forward and reverse motor is fixedly installed at the top of the crossbeam, and two forward and reverse motors are connected in series.
[0010] Preferably, the end connection unit includes longitudinal moving blocks, and each of the two longitudinal moving blocks has a rotating groove on one side that is close to each other, and the rotating shaft is rotatably installed inside the rotating groove.
[0011] Preferably, the longitudinal moving block is symmetrically provided with guide grooves, and the longitudinal moving block is slidably connected to the guide rod through the guide grooves. The longitudinal moving block is provided with screw grooves, and the longitudinal moving block and the screw are threadedly connected through the screw grooves. A meshing component is installed on the guide rod near the discharge conveyor frame.
[0012] Preferably, the meshing component includes a longitudinal toothed plate disposed on the side of the gear near the discharge conveyor frame, the longitudinal toothed plate meshing with the gear, and an upper limit plate and a lower limit plate respectively installed at the upper and lower ends of the longitudinal toothed plate, the upper limit plate and the lower limit plate being fixedly connected to a guide rod on the side near the discharge conveyor frame, and the upper limit plate and the lower limit plate being disposed on the upper and lower sides of the longitudinal moving block respectively.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] During operation, the transfer box is positioned between the feeding conveyor and the discharging conveyor. When the longitudinal block contacts the lower limit plate, the end of the transfer box near the opening of the transfer cavity tilts upward and toward the feeding conveyor, facilitating the entry of the steel parts from the feeding conveyor into the transfer cavity. When the longitudinal block contacts the lower limit plate, the end of the transfer box near the opening of the transfer cavity tilts downward and toward the discharging conveyor, thereby flipping the steel parts and transferring them onto the discharging conveyor, facilitating the flipping process.
[0015] During operation, the transfer box moves upward under the drive of a forward and reverse motor. Under the action of gears and longitudinal toothed plates, the transfer box flips during its upward movement. As the transfer box moves upward, when it is feeding material, the end of the transfer cavity is lower than the top wall of the feed conveyor belt, while when it is discharging material, the end of the transfer cavity is higher than the top wall of the discharge conveyor belt, thus facilitating feeding and discharging. Attached Figure Description
[0016] The accompanying drawings are provided to further understand the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention and do not constitute a limitation thereof.
[0017] In the attached diagram:
[0018] Figure 1 This is a schematic diagram of a steel component tilting conveyor structure according to the present invention;
[0019] Figure 2 This is a schematic diagram of the middle flipping component structure of this utility model;
[0020] Figure 3This is a schematic diagram of the material flipping unit structure of this utility model;
[0021] Figure 4 This is a schematic diagram of the end connection unit structure of this utility model;
[0022] Figure 5 This is a schematic diagram of the longitudinal toothed plate structure of this utility model.
[0023] In the diagram: 1. Feeding conveyor frame; 2. Discharging conveyor frame; 3. Middle tilting assembly; 301. Base; 302. Crossbeam; 303. Guide rod; 304. Screw; 305. Forward and reverse motor; 306. Material tilting unit; 3061. Transfer box; 3062. Transfer cavity; 3063. Rotating shaft; 3064. Gear; 307. End connection unit; 3071. Longitudinal moving block; 3072. Rotating groove; 3073. Guide groove; 3074. Screw groove; 308. Longitudinal toothed plate; 309. Upper limit plate; 310. Lower limit plate. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.
[0025] Depend on Figure 1-5 The present invention relates to a steel component tilting conveyor, comprising a feeding conveyor frame 1 and a discharging conveyor frame 2, wherein a central tilting component 3 is provided between the feeding conveyor frame 1 and the discharging conveyor frame 2.
[0026] The middle flipping component 3 includes a base 301, which is disposed between the feeding conveyor frame 1 and the discharging conveyor frame 2. Two mounting frames are symmetrically installed between the bases 301, and a material flipping unit 306 is disposed between the two mounting frames.
[0027] The material flipping unit 306 includes a transfer box 3061, with a transfer cavity 3062 inside the transfer box 3061. The transfer cavity 3062 extends to one end of the transfer box 3061. The transfer box 3061 moves between the infeed conveyor frame 1 and the discharge conveyor frame 2 to facilitate the flipping and transfer of steel parts. Rotating shafts 3063 are symmetrically installed on both sides of the transfer box 3061. Gears 3064 are coaxially installed on the rotating shafts 3063. End caps are installed between the rotating shafts 3063 and the mounting brackets on the corresponding sides. The connecting unit 307 and the transfer box 3061 are located between the feeding conveyor 1 and the discharging conveyor 2. When the end of the transfer box 3061 near the opening of the transfer cavity 3062 is tilted upward and towards the feeding conveyor 1, it facilitates the steel parts to enter the transfer cavity 3062 from the feeding conveyor 1. When the end of the transfer box 3061 near the opening of the transfer cavity 3062 is tilted downward and towards the discharging conveyor 2, the steel parts are flipped and transferred to the discharging conveyor 2, which facilitates flipping.
[0028] The mounting bracket includes a crossbeam 302, which is located above the base 301. Guide rods 303 are symmetrically installed between the crossbeam 302 and the base 301. A screw 304 is rotatably installed between the crossbeam 302 and the base 301. The screw 304 is fixedly connected to the output shaft of a forward and reverse motor 305. The forward and reverse motor 305 is fixedly installed on the top of the crossbeam 302, and two forward and reverse motors 305 are connected in series.
[0029] The end connection unit 307 includes longitudinal moving blocks 3071. Two longitudinal moving blocks 3071 are provided with rotating grooves 3072 on their sides that are close to each other. A rotating shaft 3063 is rotatably installed inside the rotating grooves 3072. Guide grooves 3073 are symmetrically provided on the longitudinal moving blocks 3071. The longitudinal moving blocks 3071 are slidably connected to the guide rods 303 through the guide grooves 3073. Threaded grooves 3074 are provided on the longitudinal moving blocks 3071. The longitudinal moving blocks 3071 and the screw 304 are threadedly connected through the threaded grooves 3074. Engaging parts are installed on the guide rods 303 on the side close to the discharge conveyor frame 2.
[0030] The meshing component includes a longitudinal toothed plate 308 disposed on the side of gear 3064 near the discharge conveyor frame 2. The longitudinal toothed plate 308 meshes with gear 3064. An upper limit plate 309 and a lower limit plate 310 are respectively installed at the upper and lower ends of the longitudinal toothed plate 308. Both the upper limit plate 309 and the lower limit plate 310 are fixedly connected to a guide rod 303 on the side near the discharge conveyor frame 2. The upper limit plate 309 and the lower limit plate 310 are respectively disposed on the upper and lower sides of the longitudinal moving block 3071. The transfer box 30 Driven by the forward and reverse motor 305, 61 moves upward. Under the action of gear 3064 and longitudinal toothed plate 308, the transfer box 3061 flips during its upward movement. As the transfer box 3061 moves upward, when the transfer box 3061 is feeding, the end of the transfer cavity 3062 is lower than the top wall of the conveyor belt of the feeding conveyor frame 1, while when the transfer box 3061 is discharging, the end of the transfer cavity 3062 is higher than the top wall of the conveyor belt of the discharging conveyor frame 2, thus facilitating feeding and discharging.
[0031] Working principle: In the original state, the end of the transfer box 3061 with the transfer cavity 3062 is tilted towards the side of the feeding conveyor frame 1, and the end of the transfer box 3061 is in contact with the outer wall of the end of the conveyor belt on the feeding conveyor frame 1. The steel parts enter the transfer cavity 3062 for storage along with the conveyor belt. At this time, the bottom end of the longitudinal moving block 3071 is in contact with the lower limit plate 310.
[0032] Then, the forward and reverse motor 305 is turned on, causing the screw 304 to rotate. Since the screw 304 is threadedly connected to the longitudinal moving block 3071, it drives the transfer box 3061 to move upward. At the same time, the rotating shaft 3063 on the transfer box 3061 is rotatably connected to the longitudinal moving block 3071. A gear 3064 is coaxially mounted on the rotating shaft 3063. The side of the gear 3064 closest to the discharge conveyor frame 2 is meshed with a longitudinal toothed plate 308. During the upward movement of the transfer box 3061, under the action of the longitudinal toothed plate 308, the transfer box 3061 rotates counterclockwise. The transfer box 3061 rotates until one end with the transfer cavity 3062 is tilted downwards and toward the discharge conveyor 2. As the transfer box 3061 rotates, the steel parts are flipped. At this time, the steel parts slide down onto the conveyor belt on the discharge conveyor 2 under the action of gravity, which facilitates the transfer of the steel parts from the feed conveyor 1 to the discharge conveyor 2. At this time, the top wall of the longitudinal moving block 3071 contacts the upper limit plate 309. Then, the forward and reverse motor 305 is supplied with reverse current, so that the transfer box 3061 returns to its original state and performs subsequent flipping and transfer of steel parts.
Claims
1. A steel component tilting conveyor, comprising an infeed conveyor (1) and an outfeed conveyor (2), characterized in that: A central tilting assembly (3) is provided between the feeding conveyor (1) and the discharging conveyor (2); The middle flipping component (3) includes a base (301), which is located between the feeding conveyor (1) and the discharging conveyor (2). Two mounting frames are symmetrically installed between the bases (301), and a material flipping unit (306) is provided between the two mounting frames. The material flipping unit (306) includes a transfer box (3061), and a transfer cavity (3062) is provided inside the transfer box (3061). The transfer cavity (3062) extends through to one end of the transfer box (3061). The transfer box (3061) moves between the feeding conveyor (1) and the discharging conveyor (2) to facilitate the flipping and transfer of steel parts.
2. The steel component tilting conveyor table according to claim 1, characterized in that: The transfer box (3061) has symmetrically mounted rotating shafts (3063) on both sides, and gears (3064) are coaxially mounted on the rotating shafts (3063). An end connection unit (307) is installed between the rotating shaft (3063) and the mounting bracket on the corresponding side.
3. The steel component tilting conveyor table according to claim 1, characterized in that: The mounting frame includes a crossbeam (302) located above the base (301). Guide rods (303) are symmetrically installed between the crossbeam (302) and the base (301). A screw (304) is rotatably installed between the crossbeam (302) and the base (301). The screw (304) is fixedly connected to the output shaft of a forward and reverse motor (305). The forward and reverse motor (305) is fixedly installed on the top of the crossbeam (302), and the two forward and reverse motors (305) are connected in series.
4. A steel component tilting conveyor table according to claim 2, characterized in that: The end connection unit (307) includes longitudinal moving blocks (3071), and each of the two longitudinal moving blocks (3071) has a rotating groove (3072) on one side that is close to each other. The rotating shaft (3063) is rotatably installed inside the rotating groove (3072).
5. A steel component tilting conveyor table according to claim 4, characterized in that: The longitudinal moving block (3071) is symmetrically provided with guide grooves (3073), and the longitudinal moving block (3071) is slidably connected to the guide rod (303) through the guide grooves (3073). The longitudinal moving block (3071) is provided with a screw groove (3074), and the longitudinal moving block (3071) and the screw (304) are threadedly connected through the screw groove (3074). A meshing part is installed on the guide rod (303) near the discharge conveyor frame (2).
6. A steel component tilting conveyor table according to claim 5, characterized in that: The meshing component includes a longitudinal toothed plate (308) disposed on the side of the gear (3064) near the discharge conveyor frame (2). The longitudinal toothed plate (308) meshes with the gear (3064). An upper limit plate (309) and a lower limit plate (310) are respectively installed at the upper and lower ends of the longitudinal toothed plate (308). The upper limit plate (309) and the lower limit plate (310) are both fixedly connected to the guide rod (303) on the side near the discharge conveyor frame (2). The upper limit plate (309) and the lower limit plate (310) are respectively disposed on the upper and lower sides of the longitudinal moving block (3071).