An anti-jamming casting turnover box
By designing the anti-jamming casting turnover box with movable wall and limiting mechanism, the problem of casting stuck in the turnover box is solved, and the smooth dumping and safe operation of castings are achieved.
Patent Information
- Application Number
- CN202510689737.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-05-27
AI Technical Summary
The castings are stuck in the turnover box due to irregular shapes, cannot be poured smoothly, and manual operation is dangerous.
A movable wall and limiting mechanism are designed to increase the inner cavity space of the box through the moving wall under the gravity of the casting. Combined with the material discharging mechanism to tug the castings, the castings are smoothly poured.
Effectively break the stuck state of castings, ensure the smooth dumping of castings, reduce manual operation risks, and improve transportation and processing efficiency.
Smart Images

Figure CN120191609B_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the field of conveying technology, and particularly relates to an anti-jamming casting turnover box. Background Art
[0002] After casting is completed and shakeout is carried out, the castings still need multiple post-treatment steps to obtain the final products. Usually, the post-treatment steps include removing the redundant risers, gates, and runner systems outside the main body of the casting, deburring, heat treatment, surface treatment, and inspection, etc. The transfer of castings between various process steps is mainly completed by turnover boxes.
[0003] Due to the complex shape of the castings, especially after shakeout, the risers, gates, and runner systems are still connected to the castings, and the castings have irregular shapes, resulting in inability to stack them neatly. Usually, they are randomly stacked and stored in the turnover box. After the turnover box is transported to the corresponding processing station, the castings are then dumped into the corresponding station for processing. Randomly stacking castings in the turnover box will cause the castings to be hooked to each other and firmly stuck in the turnover box, making it impossible to smoothly dump the castings out of the turnover box. Only manual intervention is required, and the castings are toggled or pulled from the dumping opening of the turnover box to make them drain smoothly. However, it is extremely easy to be dangerous when operating manually from the dumping opening of the turnover box. Summary of the Invention
[0004] To solve the technical problem in the prior art that the castings are stuck in the turnover box and cannot be smoothly dumped and discharged, this application provides an anti-jamming casting turnover box.
[0005] To solve the above technical problem, the technical solution adopted by the present invention is an anti-jamming casting turnover box, including a box body with an open upper end; one of the side walls of the box body is a movable wall;
[0006] The movable wall is configured to have at least a first state and a second state. Compared with the first state, the inner cavity space and the opening of the box body increase in the second state; a limiting mechanism for controlling the conversion of the movable wall between the first state and the second state is provided on the box body;
[0007] A material shifting mechanism that swings with the change of the state of the movable wall is arranged in the box body;
[0008] A support mechanism is further provided on the box body. The support mechanism includes a support arm and an elastic element. The support arm is fixed on the box body and extends to the outside of the movable wall. Two ends of the elastic element are respectively fixedly connected with the support arm and the movable wall. When the movable wall is in the first state, the elastic element is in a stretched state, and when the movable wall is in the second state, the elastic element is in a natural state or a compressed state.
[0009] In one embodiment, the side wall of the cabinet adjacent to the movable wall is a fixed wall, and the bottom of the movable wall is rotatably arranged at the bottom of the fixed wall; a guiding groove is arranged on the fixed wall, and the upper part of the movable wall is slidably matched with the guiding groove through a rotating shaft. The height of the movable wall is higher than that of the fixed wall, and the upper end of the movable wall inclines towards the outside of the cabinet.
[0010] In one embodiment, the limiting mechanism includes a first locking mechanism arranged on the movement track of the rotating shaft. The first locking mechanism is configured to lock the movable wall in a first state. An unlocking mechanism is arranged on the rotating shaft, and the unlocking mechanism is configured to be able to release the locking state of the first locking mechanism on the movable wall.
[0011] In one embodiment, the rotating shaft penetrates through the movable wall along the width direction of the movable wall, and the rotating shaft is rotatably connected with the movable wall. The unlocking mechanism includes unlocking protrusions and operating rods fixed at both ends of the rotating shaft. The unlocking protrusions protrude from the surface of the rotating shaft and correspond to the position of the limiting mechanism, and the operating rods are located outside the guiding groove.
[0012] In one embodiment, the first locking mechanism includes a first locking pin. A first installation groove is formed in the bottom wall of the guiding groove. The first locking pin is slidably installed in the first installation groove. A first spring is further arranged between the bottom of the first installation groove and the bottom of the first locking pin. One side of the first locking pin close to the second state of the movable wall is an inclined surface.
[0013] In one embodiment, the limiting mechanism further includes a second locking mechanism. The second locking mechanism is arranged on the path where the rotating shaft is located when the movable wall is in the second state. The second locking mechanism divides the second state of the movable wall into a transition state and a final state. Compared with the transition state in the final state, the inner cavity space and the opening of the cabinet increase. The second locking mechanism is configured to lock the movable wall in the final state, and the unlocking mechanism is configured to be able to release the locking state of the second locking mechanism on the movable wall. When the movable wall is in the final state, the elastic element is in a compressed state.
[0014] In one embodiment, the second locking mechanism includes a second locking pin. A second installation groove is formed in the bottom wall of the guiding groove. The second locking pin is slidably installed in the second installation groove. A second spring is further arranged between the bottom of the second installation groove and the bottom of the second locking pin. One side of the second locking pin close to the transition state of the movable wall is an inclined surface.
[0015] In one embodiment, the blanking mechanism includes a blanking rod, which is fixedly installed at the bottom of the movable wall and extends towards the inside of the box body, and the length of the blanking rod extending towards the inside of the box body is not greater than half of the length of the bottom plate of the box body.
[0016] In one embodiment, an operation hole is provided at the bottom of the fixed wall, and the distance between the operation hole and the movable wall is greater than the distance that the blanking rod extends from the movable wall into the box body.
[0017] In one embodiment, the inner side surface of the movable wall is inclined from the middle to both sides along its transverse direction.
[0018] Beneficial effects: In the present invention, one side wall of the turnover box is improved to be a movable wall. When the box body is tilted for discharging materials, the casting presses on the movable wall, resulting in an increase in the acting force borne by the movable wall. When the limiting mechanism's restriction on the movable wall is released, the movable wall changes from the first state to the second state under the action of the gravity of the casting, the inner cavity space and the opening of the box body increase, the stuck state of the casting in the box body can be broken, the looseness between the casting and the box body is generated, and then the casting can be smoothly poured out. At the same time, the blanking mechanism swings with the change of the state of the movable wall, and during the discharging process, it can stir the casting in the box body and prevent the casting from forming a stuck state again during the discharging process. Description of the Drawings
[0019] Figure 1 is a three-dimensional structural schematic diagram of the turnover box of the present invention;
[0020] Figure 2 is a structural schematic diagram of the turnover box of the present invention from another angle;
[0021] Figure 3 is Figure 2 a partial enlarged structural view of part A in
[0022] Figure 4 is a front view of the turnover box;
[0023] Figure 5 is a structural schematic diagram of the movable wall;
[0024] Figure 6 is a structural schematic diagram of the turnover box when the movable wall is in the first state;
[0025] Figure 7 is a structural schematic diagram of the movable wall in the transitional state;
[0026] Figure 8 is Figure 7 a partial enlarged structural view of part B in
[0027] Figure 9 is a structural schematic diagram of the movable wall in the final state;
[0028] Figure 10 For Figure 9 The enlarged view of the local structure at position C in
[0029] Figure 11 It is the schematic diagram of the movable wall structure in another embodiment.
[0030] In the figure, 11. Movable wall, 111. Rotating shaft, 112. Unlocking protrusion, 113. Operating rod, 12. Material pushing rod, 121. Reinforcing rib, 13. Support mechanism, 131. Support arm, 132. Elastic element, 14. Fixed wall, 141. Guide groove, 142. Extension plate, 15. First locking pin, 151. First spring, 16. Second locking pin, 161. Second spring, 17. Operating hole. Detailed implementation manners
[0031] The following further illustrates the present application in combination with the detailed implementation manners. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of them. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without making creative changes fall within the protection scope of the present application.
[0032] The current turnover box used is a box with an open top welded by metal plates or perforated metal plates. Due to the complex shape of the casting, it is even difficult to be separated from the riser, gate and runner system, and it is difficult to be stacked orderly in the box. After casting, the turnover box is usually directly placed at the end of the shakeout conveyor line or other processing conveyor lines, and the casting directly falls into or is placed into the box, randomly stacked. The vibration generated during stacking and transportation will cause the casting to be further arranged and compacted in the box, resulting in the casting being stuck in the box and difficult to be dumped and discharged.
[0033] As Figures 1 - 4 shown, the anti-stuck casting turnover box provided by the present invention includes a box body with an open upper end; one of the side walls of the box body is a movable wall 11;
[0034] The movable wall 11 is configured to have at least a first state and a second state. Compared with the first state in the second state, the inner cavity space and the opening of the box body are increased; a limiting mechanism for controlling the conversion of the movable wall 11 between the first state and the second state is provided on the box body;
[0035] The box body is provided with a material-dispensing mechanism that swings in response to changes in the state of the movable wall 11. The box body is also provided with a support mechanism 13, which includes a support arm 131 and an elastic element 132. The support arm 131 is fixed to the box body and extends to the outside of the movable wall 11. The ends of the elastic element 132 are respectively fixedly connected to the support arm 131 and the movable wall 11. When the movable wall 11 is in a first state, the elastic element 132 is in a stretched state. When the movable wall 11 is in a second state, the elastic element 132 is in a natural state or a compressed state.
[0036] When the castings to be processed are loaded into the turnover box, the movable wall 11 is kept in the first state. After the turnover box is filled with castings, it is transported to the corresponding processing station through the transportation mechanism, wherein the transportation mechanism can be a conveyor belt, a ground rail trolley, a gantry truck or a forklift, etc. Figure 3 As shown, during the transportation process, the movable wall 11 is still kept in the first state due to the action of the limiting mechanism. The vibration generated during the transportation process will cause the castings to be further arranged and shaken in the box. After the turnover box arrives at the corresponding station, the turnover box is turned over, as shown in FIG. Figure 6 As shown, the movable wall 11 is located at the bottom of the box. At this time, the casting is pressed on the movable wall 11, and the casting slides along the movable wall 11 and is poured out. When the casting is stuck in the box and cannot be poured out, the limit mechanism on the movable wall 11 is released, as shown in FIG. Figures 7 - 10 As shown, under the weight of the casting, the movable wall 11 changes from the first state to the second state, causing the inner cavity space and opening of the box to increase, and the castings and the castings and the box to loosen, thereby breaking the stuck state of the castings in the box, and the castings slide along the movable wall 11 and are poured out. When the movable wall 11 changes from the first state to the second state, as shown Figures 7 - 10 As shown, the material-diverting mechanism swings with the movable wall 11, and the material-diverting mechanism plays a role in diverting the castings in the box, further breaking the stuck state of the castings and promoting the castings to be poured out. Figure 1 、 Figure 2 and Figure 4 As shown, the two ends of the support arm 131 are fixed to the fixed wall 14 of the box body, and the middle part extends around the outside of the movable wall 11. A plurality of springs are set between the support arm 131 and the movable wall 11 as elastic elements 132. In the first state of the movable wall 11, the elastic elements 132 are in a stretched state. When the box body is tilted to discharge materials and the limiting mechanism is released, the elastic elements 132 can cause the movable wall 11 to switch to the second state. Figure 7 and 9As shown, when the movable wall 11 is tilted for discharging in the second state, as the casting is poured out along the movable wall 11, the elastic element 132 will vibrate, and the movable wall 11 and the material pushing mechanism will jump accordingly, achieving the effect of discharging under vibration, promoting the discharge of the castings in the box. At the same time, the jumping of the material pushing mechanism continuously stirs the castings in the box, which is beneficial to breaking the stuck state of the castings. The setting of the support arm 131 can also prevent the movable wall 11 from being supported in the case of the fracture and failure of the elastic element 132 or the rotating shaft 111, avoiding the increased safety risk caused by the sudden large-scale flipping of the movable wall 11.
[0037] Specifically, in one embodiment, as Figure 2 and 3 shown, the side wall of the box adjacent to the movable wall 11 is the fixed wall 14, and the bottom of the movable wall 11 is rotatably arranged at the bottom of the fixed wall 14; a guide groove 141 is arranged on the fixed wall 14, and the upper part of the movable wall 11 is slidably matched with the guide groove 141 through the rotating shaft 111. The height of the movable wall 11 is higher than that of the fixed wall 14, and the upper end of the movable wall 11 inclines towards the outside of the box. Through the above structure, the movable wall 11 can be turned outwards along the bottom wall of the movable wall 11 on the box, and then switch between the first state and the second state, as Figure 6 shown, where the first state is that the movable wall 11 is in a vertical state substantially perpendicular to the bottom plate of the box, as Figure 7 and 9 shown, and the second state is the state during the process of the movable wall 11 turning outwards relative to the fixed wall 14, as Figure 3 、 8 and 10 shown, where the guide groove 141 is an arc groove to match the flipping movement of the movable wall 11. At the same time, since the box needs to be flipped when discharging by pouring, as Figure 6 、 7 and 9 shown, the movable wall 11 is at the bottom of the turnover box, and the movable wall 11 is turned from the first state to the second state. The setting of the movable wall 11 is also beneficial to reducing the overall flipping angle of the turnover box to reach the required angle for discharging by pouring, that is, when the box is flipped, the movable wall 11 can further turn relative to the fixed wall 14 along the guide groove 141 by itself, as Figure 7 and 9 shown, the box is flipped by 90°, and the flipping angle of the movable wall is greater than 90°. In addition, the upper part of the movable wall 11 protrudes from the fixed wall 14 to avoid the problem that the castings on the upper part of the box fall under the action of inertia during braking or deceleration during transportation. The inclination of the upper end of the movable wall 11 towards the outside of the box further increases the inclination angle at the front end of the movable wall 11 during pouring, which is more beneficial to the discharge of the castings.
[0038] As Figure 3As shown, in order to effectively control the state of the movable wall 11, in this embodiment, the limiting mechanism includes a first locking mechanism disposed on the movement trajectory of the rotating shaft 111. The first locking mechanism is configured to lock the movable wall 11 in the first state. An unlocking mechanism is provided on the rotating shaft 111, and the unlocking mechanism is configured to be able to release the locking state of the first locking mechanism on the movable wall 11. By controlling the relative position of the rotating shaft 111 of the movable wall 11 in the guiding groove 141 through the first locking mechanism, the state of the movable wall 11 is limited. For example, Figure 3 as shown, when the rotating shaft 111 is located on the path between the starting position of the guiding groove 141 and the first locking mechanism, it corresponds to the first state of the movable wall 11. For example, Figure 8 and 10 as shown, when the rotating shaft 111 is located on the path between the first locking mechanism and the end position of the guiding groove 141, it corresponds to the second state of the movable wall 11. As Figure 3 shown, when the movable wall 11 is in the first state, due to the locking effect of the first locking mechanism and the pressure of the casting on the blanking mechanism, during the process of loading the casting into the box body and transporting the turnover box, the movable wall 11 will not be converted into the second state. Therefore, there will be no phenomenon that the casting in the box body is rearranged and compacted in the second state, gets stuck again in the box body, and cannot be dumped and discharged due to the movable wall 11 entering the second state in advance before discharging. When the box body is turned over to dump the material, the unlocking mechanism releases the locking state of the first locking mechanism on the movable wall 11. Under the pressure of the self-weight of the casting on the movable wall 11, as Figure 8 and 10 shown, the movable wall 11 is flipped from the first state to the second state, thereby being able to break the stuck state of the casting in the box body, and the casting slides down along the movable wall 11 and is poured out.
[0039] As Figure 4 shown, since the guiding grooves 141 and the limiting mechanism are provided on the fixed walls 14 on both sides of the movable wall 11, it is more beneficial to the stable movement of the movable wall 11. In order to facilitate the unlocking mechanism to simultaneously control the limiting mechanisms on both sides of the movable wall 11, in this embodiment, the rotating shaft 111 penetrates through the movable wall 11 along the width direction of the movable wall 11, and the rotating shaft 111 is rotatably connected to the movable wall 11. As Figures 3 - 5As shown, the unlocking mechanism includes unlocking protrusions 112 and operating rods 113 fixed at both ends of the rotating shaft 111. The unlocking protrusions 112 protrude from the surface of the rotating shaft 111 and correspond to the position of the limiting mechanism. The operating rods 113 are located outside the guiding grooves 141. When it is necessary to unlock the first locking mechanism, by rotating the operating rod 113, the rotating shaft 111 can rotate. Furthermore, the unlocking protrusions 112 at both ends of the rotating shaft 111 rotate simultaneously, enabling the simultaneous unlocking of the first locking mechanisms on both sides of the movable wall 11. The operation is more convenient, and the operating rod 113 is located on one side of the box turnover box, making the operation safer.
[0040] As Figure 3 , 8 and 10 show, specifically, in one embodiment, the first locking mechanism includes a first locking pin 15. A first installation groove is formed in the bottom wall of the guiding groove 141. The first locking pin 15 is slidably installed in the first installation groove. A first spring 151 is further provided between the bottom of the first installation groove and the bottom of the first locking pin 15. The side of the first locking pin 15 close to the second state of the movable wall 11 is a bevel surface. The first installation groove is in the shape of a stepped hole, and its upper end with a smaller diameter extends to the bottom wall of the guiding groove 141. The first locking pin 15 is also in a stepped shape, and its end with a smaller diameter extends into the guiding groove 141. The first locking pin 15 is limited and abutted against the stepped surface of the first installation groove through its stepped surface. The first spring 151 is installed in the cavity with a larger diameter at the lower end of the first installation groove. Furthermore, the first locking pin 15 is slidably arranged in the first installation groove under the support of the first spring 151. When the operating rod 113 is rotated, the rotating shaft 111 drives the unlocking protrusion 112 to press against the first locking pin 15, and the first locking pin 15 retracts into the first installation groove, thereby releasing the locking of the rotating shaft 111, and the movable wall 11 can freely enter the second state. Since the side of the first locking pin 15 close to the second state of the movable wall 11 is a bevel surface, when casting parts are loaded into the box, the casting parts press on the feeding mechanism, thereby driving the movable wall 11 to rotate. Even when the movable wall 11 is in the second state, its rotating shaft 111 can automatically compress the first locking pin 15 into the first installation groove and then cross the first locking mechanism to make the movable wall 11 return to the first state. After the rotating shaft 111 crosses the first locking mechanism, the first spring 151 automatically pushes up the first locking pin 15, thereby locking the movable wall 11 in the first state.
[0041] As the casting parts in the box are poured and discharged, the pressure of the casting parts on the movable wall 11 decreases. Under the restoring force of the elastic element 132, the distance between the rotating shaft 111 of the movable wall 11 and the first limiting mechanism gradually decreases in the second state, that is, the inclination angle of the movable wall 11 for discharging materials gradually decreases, resulting in the problem that the remaining casting parts in the box cannot be smoothly discharged due to the small inclination angle of the movable wall 11. To solve the above technical problems, in some embodiments, such as Figure 3 ,8 As shown in FIGS. 9 and 10, the limiting mechanism further includes a second locking mechanism, which is arranged on the path where the rotating shaft 111 is located when the movable wall 11 is in the second state. As Figures 7 - 10 shown, the second locking mechanism divides the second state of the movable wall 11 into a transition state and a final state. Compared with the transition state in the final state, the inner cavity space and the opening of the box body increase. The second locking mechanism is configured to lock the movable wall 11 in the final state, and the unlocking mechanism is configured to be able to release the locking state of the second locking mechanism on the movable wall 11. When the movable wall 11 is in the final state, the elastic element 132 is in a compressed state. When the turnover box is tilted as a whole to discharge materials, the first locking mechanism is unlocked. Under the self-weight pressure of the casting, the movable wall 11 is converted from the first state to the second state. At the beginning of discharging materials, there are more castings and the pressure on the movable wall 11 is greater. The movable wall 11 is converted from the transition state to the final state, and the elastic element 132 is compressed. As Figure 9 and 10 shown, at this time, the turning angle of the movable wall 11 relative to the box body is the largest. As the castings are discharged, the number of castings decreases, and at the same time, the pressure on the movable wall 11 also gradually decreases. Under the action of the restoring force of the elastic element 132, the turning angle of the movable wall 11 relative to the box body also gradually decreases, resulting in a gradual decrease in the tilting angle of the box body for discharging materials. The rotating shaft 111 of the movable wall 11 approaches the second locking mechanism, and finally the rotating shaft 111 abuts against the second locking mechanism. The turning angle of the movable wall 11 relative to the box body cannot continue to decrease. At this time, the movable wall is still in the final state, ensuring the tilting angle required for the box body to be tilted and discharged, and ensuring that the castings can be completely poured out. Without the second locking mechanism, when there are only a small number of castings in the box body, the elastic element 132 tends to be in a natural state. Although the movable wall 11 is still in the second state (transition state position), the remaining castings in the box body may not be completely poured out because the tilting angle of the turnover box is not enough and the friction between the castings and the movable wall 11 is large.
[0042] For the convenience of manufacturing and use, in this embodiment, the structures of the second locking mechanism and the first locking mechanism are set to be basically the same structure, such as Figure 3 、 8As shown in FIGS. 5, 6, 7 and 9, specifically, in this embodiment, the second locking mechanism includes a second locking pin 16. A second mounting groove is formed in the bottom wall of the guiding groove 141. The second locking pin 16 is slidably mounted in the second mounting groove. A second spring 161 is further disposed between the bottom of the second mounting groove and the bottom of the second locking pin 16. One side of the second locking pin 16 close to the transition state of the movable wall 11 is an inclined surface. When the box body is tilted and flipped, the first locking mechanism is unlocked. Since one side of the second locking pin 16 close to the transition state is an inclined surface, under the action of the gravity of the casting on the movable wall 11, the rotating shaft 111 can automatically compress the second locking pin 16 into the second mounting groove. Furthermore, the movable wall 11 can directly reach the final state automatically from the transition state, and the rotating shaft 111 cannot automatically cross the second locking pin 16 to switch from the final state to the transition state. After the inclined discharging is completed, the rotating shaft 111 is rotated by the operating rod 113, and then the unlocking protrusion 112 presses on the second locking pin 16, so that the second locking pin 16 can be retracted into the second mounting groove. Under the action of the elastic element 132, the rotating shaft 111 can cross the second locking pin 16, and the movable wall 11 enters the transition state. When loading the casting into the box body, the casting presses on the feeding mechanism. The feeding mechanism can drive the movable wall 11 to flip when it flips. Its rotating shaft 111 acts on the inclined surface of the first locking pin 15, so that the first locking pin 15 is retracted, and then crosses the first locking pin 15. The movable wall 11 automatically switches from the transition state to the first state; or directly before loading the casting, the movable wall 11 is switched from the transition state to the first state by an external force.
[0043] As Figure 1 , 5 As shown in FIGS. 5, 6, 7 and 9, specifically, in this embodiment, the feeding mechanism includes a feeding rod 12. The feeding rod 12 is fixedly mounted at the bottom of the movable wall 11 and extends towards the inside of the box body. The length of the feeding rod 12 extending towards the inside of the box body is not greater than half of the length of the bottom plate of the box body. As Figure 5 shown in FIG. 8, three feeding rods 12 are provided at the bottom of the movable wall 11. When loading the casting into the box body, the casting pressing on the feeding rod 12 can reset the movable wall 11 to the first state. The feeding rod 12 is attached to the bottom wall of the box body. When discharging in an inclined manner, the casting presses on the movable wall 11. The acting force of the casting on the movable wall 11 increases, and the acting force on the feeding rod 12 decreases. The first locking mechanism is released. The movable wall 11 flips to drive the feeding rod 12 to swing for a feeding action, thereby breaking the stuck state of the casting in the box body and promoting the inclined discharging of the casting. Setting the length of the feeding rod 12 to be not greater than half of the length of the bottom plate of the box body can reduce the impact of the casting on the connection between the feeding rod 12 and the movable wall 11. At the same time, in order to improve the connection strength between the feeding rod 12 and the movable wall 11, a reinforcing rib 121 can be provided at the connection between the feeding rod 12 and the movable wall 11.
[0044] In order to avoid the situation where the casting is stuck at a position that cannot be reached by the material pushing rod 12 inside the box body when the box body is flipped for inclined discharging, as Figure 1 , 2 , 6, 7, and 9 shown, further, an operation hole 17 can be opened on the fixed wall 14 of the box body. The operation hole 17 is arranged at the bottom of the fixed wall 14, and the distance between the operation hole 17 and the movable wall 11 is greater than the distance that the material pushing rod 12 extends into the box body from the movable wall 11. When the above situation occurs, the operator can insert a stirring rod into the operation hole 17 to perform a stirring operation on the corresponding stuck position.
[0045] In order to be more conducive to breaking the stuck state between the castings, as Figure 11 shown, in another embodiment, the inner side surface of the movable wall 11 is inclined from the middle to both sides along its transverse direction, and the height gradually decreases. When the casting slides down and discharges along the movable wall 11, due to the structure of the movable wall 11 with a higher middle and lower ends, the casting has a tendency to move towards both sides of the movable wall 11 while sliding down and discharging, causing the castings to loosen, which is conducive to the separation between the castings and is conducive to breaking the stuck state between the castings.
[0046] In order to avoid a gap being generated between the movable wall 11 and the fixed wall 14 after the movable wall 11 is converted from the first state to the second state, and to prevent the casting from being stuck in the gap during the dumping and discharging process, as Figure 2 shown, an extension plate 142 is provided on one side of the fixed wall 14, and the extension plate 142 extends to the position of the maximum flipping angle of the movable wall 11. One side of the extension plate 142 can be set to be inclined, and its width gradually decreases from top to bottom.
[0047] Although the present disclosure is disclosed as above, the protection scope of the present disclosure is not limited thereto. Those skilled in the art can make various changes and modifications without departing from the spirit and scope of the present disclosure, and these changes and modifications will all fall within the protection scope of this application.
Claims
1. A turnover box for anti-jamming castings, characterized in that, It includes a box body with an open upper end; one of the side walls of the box body is a movable wall (11); The movable wall (11) is configured to have at least a first state and a second state. In the second state, compared with the first state, the inner cavity space and the opening of the box body are increased; a limiting mechanism for controlling the conversion of the movable wall (11) between the first state and the second state is provided on the box body; A material distributing mechanism that swings with the change of the state of the movable wall (11) is arranged in the box body; A support mechanism (13) is further provided on the box body. The support mechanism (13) includes a support arm (131) and an elastic element (132). The support arm (131) is fixed on the box body and extends to the outside of the movable wall (11). Two ends of the elastic element (132) are respectively fixedly connected with the support arm (131) and the movable wall (11). When the movable wall (11) is in the first state, the elastic element (132) is in a stretched state. When the movable wall (11) is in the second state, the elastic element (132) is in a natural state or a compressed state; The side wall adjacent to the movable wall (11) on the box body is a fixed wall (14). The bottom of the movable wall (11) is rotatably arranged at the bottom of the fixed wall (14); a guide groove (141) is provided on the fixed wall (14). The upper part of the movable wall (11) is slidably matched with the guide groove (141) through a rotating shaft (111); the limiting mechanism includes a first locking mechanism arranged on the movement track of the rotating shaft (111). The first locking mechanism is configured to lock the movable wall (11) in the first state. An unlocking mechanism is provided on the rotating shaft (111). The unlocking mechanism is configured to be able to release the locking state of the first locking mechanism on the movable wall (11); the rotating shaft (111) penetrates through the movable wall (11) along the width direction of the movable wall (11), and the rotating shaft (111) is rotatably connected with the movable wall (11). The unlocking mechanism includes unlocking protrusions (112) and an operating rod (113) fixed at both ends of the rotating shaft (111). The unlocking protrusions (112) protrude from the surface of the rotating shaft (111) and correspond to the position of the limiting mechanism. The operating rod (113) is located outside the guide groove (141).
2. The anti-jamming casting turnover box according to claim 1, wherein The height of the movable wall (11) is higher than that of the fixed wall (14), and the upper end of the movable wall (11) inclines towards the outside of the box body.
3. The anti-jamming casting turnover box according to claim 1, characterized in that, The first locking mechanism includes a first locking pin (15). A first installation groove is opened on the bottom wall of the guide groove (141). The first locking pin (15) is slidably installed in the first installation groove. A first spring (151) is further arranged between the bottom of the first installation groove and the bottom of the first locking pin (15). One side of the first locking pin (15) close to the second state of the movable wall (11) is an inclined surface.
4. The anti-jamming casting turnover box according to claim 1, wherein, The described limiting mechanism further includes a second locking mechanism. The second locking mechanism is arranged on the path where the rotating shaft (111) is located when the movable wall (11) is in the second state. The second locking mechanism divides the second state of the movable wall (11) into a transition state and a final state. In the final state, compared with the transition state, the inner cavity space and the opening of the box body are increased. The second locking mechanism is configured to lock the movable wall (11) in the final state, and the unlocking mechanism is configured to be able to release the locking state of the second locking mechanism on the movable wall (11). When the movable wall (11) is in the final state, the elastic element (132) is in a compressed state.
5. The anti-jamming casting turnover box according to claim 4, characterized in that, The described second locking mechanism includes a second locking pin (16). A second installation groove is formed in the bottom wall of the guiding groove (141). The second locking pin (16) is slidably installed in the second installation groove. A second spring (161) is further arranged between the bottom of the second installation groove and the bottom of the second locking pin (16). One side of the second locking pin (16) close to the transition state of the movable wall (11) is an inclined surface.
6. The anti-jamming casting turnover box according to claim 1, wherein, The described material pushing mechanism includes a material pushing rod (12). The material pushing rod (12) is fixedly installed at the bottom of the movable wall (11) and extends towards the inside of the box body. The length of the material pushing rod (12) extending towards the inside of the box body is not greater than half of the length of the bottom plate of the box body.
7. The anti-jamming casting turnover box according to claim 6, characterized in that, An operation hole (17) is arranged at the bottom of the fixed wall (14). The distance between the operation hole (17) and the movable wall (11) is greater than the distance that the material pushing rod (12) extends from the movable wall (11) into the box body.
8. The anti-jamming casting turnover box according to claim 1, characterized in that, The inner side surface of the movable wall (11) is inclined from the middle to both sides along its transverse direction.
Citation Information
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