Staggered transportation device for cat cans
By designing a misaligned transportation device for cat cans, and using misaligned units and control parts to adjust the transportation status of cans, the problem of jamming and blocking between different transportation modes is solved, and the smooth and efficient can transportation is achieved.
Patent Information
- Application Number
- CN202510401538.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-01
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the production process, canned foods are easily stuck and blocked when they are converted from double or multi-row transportation modes to single-row transportation modes, which affects the smooth progress of the production process.
A misaligned transportation device for cat cans is designed to adjust the transportation status of the cans through the misaligned unit, including conveyor belts, guide plates, rotating rings, blocking parts, control parts and resetting parts, ensuring that the cans are distributed staggered during transportation, avoiding flush parallelism, and controlling the rotation rings alternately with sliding bolts and return springs to achieve smooth passage of the cans.
It effectively avoids the situation of canned foods being stuck and blocked during transportation, improves transportation efficiency and space utilization, and ensures the continuity and efficiency of the production process.
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Figure CN120288484A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of canned food transportation, and particularly relates to a dislocation transportation device for cat canned food. Background Art
[0002] In recent years, the pet industry has developed rapidly. As an important food source for pet cats, the market demand for cat canned food has been continuously rising. The production process of cat canned food involves multiple links, from filling, sealing to sterilization, labeling, etc. Each link requires efficient and precise transportation connection. At present, the transportation devices in cat canned food production have played a certain role in ensuring the continuity and efficiency of the production line.
[0003] In the patent with the publication number CN220949814U, a dislocation transportation device for canned food is disclosed, including a conveying device. There are several canned foods on the conveying device. A limiting frame is fixedly installed in the middle of the top of the conveying device. Feeding ports and discharging ports are provided on both sides of the outer wall of the limiting frame corresponding to the canned foods. A motor is fixedly installed at the top of the limiting frame. The output end of the motor is fixedly connected with a rotating shaft. A semi-gear is fixedly connected to the end of the rotating shaft. The semi-gear meshes with a main gear. The main gear is fixedly connected with a rotating rod. The top of the conveying rotating rod is rotatably connected to the inner top of the limiting frame. A turntable is provided on the lower side of the outer wall of the rotating rod. A limiting groove is provided on the turntable corresponding to the canned foods, which solves the problem that when the existing canned foods are stuck during transportation, manual intervention is usually required, which is time-consuming, laborious and has low efficiency, and the applicable range is small, and it cannot be used for the dislocation transportation of canned foods of different sizes.
[0004] The prior art has the following defects: During canned food production, processes such as disinfection, preheating, and heating will adopt a double-row or multi-row transportation method to gather the canned foods together to improve processing efficiency, while processes such as canning, sealing, and packaging will adopt a single-row transportation method to facilitate precise positioning of the equipment. Since the above-mentioned processes will be carried out alternately during production, when transporting canned foods, they often change continuously between the double-row or multi-row transportation method and the single-row transportation method. When the canned foods enter the single-row conveying channel from the double-row or multi-row conveying channel, if the canned foods are neatly arranged, they are easily stuck and blocked with each other, affecting the smooth progress of the production process. Summary of the Invention
[0005] In view of the problem that canned foods are stuck and blocked with each other in the prior art, a dislocation transportation device for cat canned food is proposed.
[0006] The present application provides a dislocation transportation device for cat canned food, and its purpose is to ensure smooth transportation of canned foods.
[0007] The technical solution of the present invention is as follows: A dislocation transportation device for cat cans, which is used to adjust the transportation state of the cans, includes a bench, a conveyor belt arranged on the top of the bench, extension frames arranged on both sides of the bench, two guiding plates arranged above the conveyor belt, and further includes a dislocation unit. The dislocation unit has a mounting member arranged above the conveyor belt, two rotating rings arranged outside the mounting member, a blocking member arranged outside the rotating ring for controlling the movement of the cans, a control member arranged between the mounting member and the rotating ring for controlling the alternating rotation of the two rotating rings, a reset member arranged between the mounting member and the rotating ring for controlling the reset of the rotating ring, and a mounting frame and a connecting member arranged between the mounting member and the bench.
[0008] Further, the guiding plates are fixed to the bench through the extension frames. Two symmetric guiding plates form a circulation channel, which is divided into a multi-row area, a transition area, and a single-row area.
[0009] Further, the width of the single-row area in the circulation channel formed by the guiding plates is greater than the diameter of the can and less than the sum of the diameters of two cans.
[0010] Further, the connecting member specifically includes a connecting rod penetrating through the surface of the mounting frame, a fixing plate arranged outside the connecting rod, and a locking sleeve arranged at one end of the connecting rod penetrating through the mounting frame; The connecting rod is fixed to the mounting member, the fixing plate and the locking sleeve are respectively attached to both sides of the connecting member, and the mounting frame is fixed to the bench.
[0011] Further, the mounting member successively includes a bottom platform, a middle platform, and a top platform from top to bottom, connecting slots respectively opened on the tops of the bottom platform and the middle platform, and connecting blocks arranged at the bottoms of the top platform and the middle platform; The vertical cross-sections of the bottom platform and the middle platform are both in a "convex" shape, the horizontal cross-sections of the connecting blocks and the connecting slots are both hexagonal, and the connecting blocks are inserted into the connecting slots.
[0012] Further, the control member specifically includes a sliding slot opened on the surface of the middle platform, a sliding bolt arranged inside the sliding slot, and locking slots opened on the surfaces of the two rotating rings; The sliding slot vertically penetrates the middle platform, the two locking slots are respectively docked with the openings at both ends of the sliding slot, one end of the sliding slot is inserted into the lower locking slot, and the other end extends to the opening above the sliding slot.
[0013] Further, the control member further includes a limiting slot opened on the surface of the sliding bolt, a limiting jack opened outside the middle platform, and a limiting bolt arranged inside the limiting jack; The limiting slot is docked with the limiting jack, the limiting bolt is inserted into the limiting slot, and the length of the limiting slot is greater than the diameter of the limiting bolt.
[0014] Further, the reset member specifically includes offset sliding grooves formed on the surfaces of the bottom platform and the middle platform, a reset spring disposed inside the offset sliding grooves, and offset sliders disposed on the surface of the rotating ring; The offset slider is inserted into the offset sliding groove and abuts against the reset spring.
[0015] Further, the blocking member specifically includes mounting jacks penetratingly formed on the outer side of the rotating ring, joint pipes disposed inside the mounting jacks, and intercepting rods disposed at one end of the joint pipes extending out of the mounting jacks.
[0016] Further, a flow dividing plate is fixedly mounted on the outer side of the mounting member. The flow dividing plate is in an isosceles triangle shape, and the vertex of the triangle faces the direction from which the cans are conveyed.
[0017] Advantages of the present invention: 1. By providing the dislocation unit, when the can is conveyed from the front to near the dislocation unit, a can on one side of the mounting member contacts the blocking member and pushes it to deflect. At this time, the control member locks the blocking member on the other side. When the can is conveyed to the rear of the mounting member, the corresponding blocking member resets, and the blocking member on the other side is unlocked and deflected by the pushing of the can. In this way, only one can can move from the front of the mounting member to the rear at the same time, avoiding the situation where the cans are aligned side by side and ensuring the smoothness of the can transportation process.
[0018] 2. By providing the control member and making only one end of the sliding bolt extend out of the sliding slot, the rotating rings on both sides of the sliding bolt can work alternately. At the same time, when the cans are side by side and close, and contact the blocking members on both sides at the same time, the rotational resistance of the rotating ring inserted by the sliding bolt is greater than that of the rotating ring not inserted by the sliding bolt. The rotating ring not inserted by the sliding bolt rotates first, and the corresponding can is preferentially released to pass through. In this way, the situation where the blocking members on both sides are stressed simultaneously and the can transportation is blocked is avoided.
[0019] 3. By controlling the length of the blocking member, after the can moves more than half to the rear of the mounting member, the blocking member can be reset under the action of the reset member. In this way, the blocking member on the other side is unlocked, and the intercepted can is released to pass through. In this way, the passing frequency of the cans is increased, and the situation where the cans continuously pass through from one side is also avoided.
[0020] 4. By increasing the width of the single-row area, when the dislocation unit misplaces the cans into the single-row area, the cans slide along the surface of one side guide plate. After the cans enter the single-row area, they will also be in contact with one side guide plate. In this way, the cans entering from both sides of the dislocation unit will be in contact with the corresponding guide plates on both sides respectively. This makes the cans stagger and distribute, enabling the single-row area to accommodate more cans, improving the space utilization rate, and at the same time, it can also play a certain buffering role. Description of the Drawings
[0021] Figure 1Stereogram of the dislocation transportation device for cat cans in the present invention; Figure 2 Exploded view of the extension frame and the guide plate in the present invention; Figure 3 Schematic diagram of the dislocation unit in the present invention; Figure 4 Schematic diagram of the mounting part in the present invention; Figure 5 Exploded view of the mounting part in the present invention; Figure 6 For the present invention Figure 5 Schematic diagram of the second perspective; Figure 7 Schematic diagram of the blocking part in the present invention; Figure 8 Exploded view of the control part in the present invention; Figure 9 Schematic diagram of the reset part in the present invention; Figure 10 Schematic diagram below the rotating ring in the present invention; Figure 11 Top view of the present invention; Figure 12 For the present invention Figure 11 Cross-sectional view taken along line A-A in the present invention; Figure 13 For the present invention Figure 11 Cross-sectional view taken along line B-B in the present invention; Figure 14 For the present invention Figure 12 Enlarged view at position A in the present invention; Figure 15 For the present invention Figure 13 Enlarged view at position B in the present invention; Figure 16 For the present invention Figure 14 Enlarged view at position C in the present invention.
[0022] In the figure: 1. Bench; 2. Conveyor belt; 3. Extension frame; 4. Guide plate; 41. Multi-row area; 42. Transition area; 43. Single-row area; 5. Dislocation unit; 51. Mounting frame; 52. Connecting piece; 521. Connecting rod; 522. Fixed plate; 523. Locking sleeve; 53. Mounting part; 531. Bottom platform; 532. Middle platform; 533. Top platform; 534. Connection slot; 535. Connection plug; 54. Rotating ring; 55. Blocking part; 551. Mounting socket; 552. Joint pipe; 553. Intercepting rod; 56. Control part; 561. Sliding slot; 562. Sliding bolt; 563. Locking groove; 564. Limiting groove; 565. Limiting socket; 566. Limiting bolt; 57. Reset part; 571. Offset chute; 572. Reset spring; 573. Offset slider; 58. Diverting plate. Detailed implementation method
[0023] To make the above objects, features, and advantages of the present invention more apparent and understandable, the following provides a detailed description of the specific embodiments of the present invention with reference to the accompanying drawings of the specification.
[0024] Example 1, referring to Figure 1-16 , which is the first embodiment of the present invention, provides a dislocation transportation device for cat food cans, used to adjust the transportation state of the cans, including a bench 1, a conveyor belt 2 arranged on the top of the bench 1, extension frames 3 arranged on both sides of the bench 1, two guiding plates 4 arranged above the conveyor belt 2, and further including a dislocation unit 5. The dislocation unit 5 includes a mounting member 53 arranged above the conveyor belt 2, two rotating rings 54 arranged outside the mounting member 53, a blocking member 55 arranged outside the rotating ring 54 for controlling the movement of the can, a control member 56 arranged between the mounting member 53 and the rotating ring 54 for controlling the alternating rotation of the two rotating rings 54, a reset member 57 arranged between the mounting member 53 and the rotating ring 54 for controlling the reset of the rotating ring 54, and a mounting frame 51 and a connecting member 52 arranged between the mounting member 53 and the bench 1.
[0025] The directions pointed by the two blocking members 55 are opposite, the direction pointed by the blocking member 55 is perpendicular to the conveying direction of the conveyor belt 2, and the distance between the blocking member 55 and the guiding plate 4 is less than the diameter of the can, so that the blocking member 55 can intercept the can.
[0026] By setting the dislocation unit 5, when the can is conveyed from the front to near the dislocation unit 5, a can on one side of the mounting member 53 contacts the blocking member 55 and pushes it to deflect. At this time, the control member 56 locks the other blocking member 55. When the can is conveyed to the rear of the mounting member 53, the corresponding blocking member 55 resets, and the other blocking member 55 is unlocked and pushed to deflect by the can. In this way, only one can can move from the front of the mounting member 53 to the rear at the same time, avoiding the situation of the cans being aligned side by side, and ensuring the smoothness of the can transportation process.
[0027] The mounting member 53 successively includes a bottom platform 531, a middle platform 532, and a top platform 533 from top to bottom, connecting slots 534 respectively opened on the tops of the bottom platform 531 and the middle platform 532, and connecting blocks 535 arranged at the bottoms of the top platform 533 and the middle platform 532.
[0028] Specifically, the vertical cross-sections of the bottom platform 531 and the middle platform 532 are both in a "convex" shape. The horizontal cross-sections of the connecting plug 535 and the connecting slot 534 are both hexagonal. The connecting plug 535 is inserted into the connecting slot 534. The middle platform 532 is attached to the top of the bottom platform 531, and the top platform 533 is attached to the top of the middle platform 532. The rotating ring 54 is rotatably sleeved on the outside of the protruding parts at the tops of the bottom platform 531 and the middle platform 532. In this way, through the assembly of the bottom platform 531, the middle platform 532, and the top platform 533, the installation of the rotating ring 54, the control member 56, and the reset member 57 is facilitated.
[0029] The control member 56 specifically includes a sliding slot 561 opened on the surface of the middle platform 532, a sliding bolt 562 arranged inside the sliding slot 561, and locking slots 563 opened on the surfaces of the two rotating rings 54. The control member 56 further includes a limiting slot 564 opened on the surface of the sliding bolt 562, a limiting jack 565 opened outside the middle platform 532, and a limiting bolt 566 arranged inside the limiting jack 565.
[0030] Specifically, the sliding slot 561 vertically penetrates the middle platform 532. The sliding bolt 562 is slidably installed in the sliding slot 561. The two locking slots 563 are respectively docked with the openings at both ends of the sliding slot 561. One end of the sliding slot 561 is inserted into the lower locking slot 563, and the other end extends to the upper opening of the sliding slot 561. Both ends of the sliding bolt 562 and the locking slots 563 are designed to be hemispherical. The limiting jack 565 vertically penetrates into the sliding slot 561. The limiting slot 564 is docked with the limiting jack 565. The limiting bolt 566 is inserted into the limiting slot 564. The length of the limiting slot 564 is greater than the diameter of the limiting bolt 566, and the difference between the two is the same as the depth of the sliding slot 561. The sliding bolt 562 is locked in the sliding slot 561 through the limiting bolt 566. In this way, the installation of the sliding bolt 562 is facilitated, and the operation of the sliding bolt 562 is also more stable.
[0031] By setting the control member 56 and making only one end of the sliding bolt 562 extend out of the sliding slot 561, the rotating rings 54 on both sides of the sliding bolt 562 can work staggeredly. At the same time, when the cans are juxtaposed and close to each other and contact the blocking members 55 on both sides at the same time, at this time, the rotational resistance of the rotating ring 54 inserted by the sliding bolt 562 is greater than the rotational resistance of the rotating ring 54 not inserted by the sliding bolt 562. The rotating ring 54 not inserted by the sliding bolt 562 rotates first, and the corresponding can is preferentially released to pass through. In this way, the situation where the blocking members 55 on both sides are stressed simultaneously and the can transportation is blocked is avoided.
[0032] The reset member 57 specifically includes offset sliding grooves 571 opened on the surfaces of the bottom platform 531 and the middle platform 532, reset springs 572 arranged inside the offset sliding grooves 571, and offset sliding blocks 573 arranged on the surfaces of the rotating rings 54.
[0033] The offset slider 573 is inserted into the offset chute 571. One end of the return spring 572 is in contact with the inner wall of the offset chute 571, and the other end is in contact with the offset slider 573. The span at both ends of the offset chute 571 is not less than 45 degrees, and the length of the blocking member 55 is less than the radius of the can.
[0034] By controlling the length of the blocking member 55, after the can moves more than half and reaches the rear of the mounting member 53, the blocking member 55 can be reset under the action of the reset member 57, so that the blocking member 55 on the other side is unlocked, allowing the intercepted can to pass through. This improves the passing frequency of the can and also prevents the can from continuously passing through from one side.
[0035] The blocking member 55 specifically includes a mounting jack 551 formed through the outer side of the rotating ring 54, a joint pipe 552 disposed inside the mounting jack 551, and an intercepting rod 553 disposed at one end of the joint pipe 552 extending out of the mounting jack 551.
[0036] The intercepting rod 553 is made of rubber and is hollow-designed. The intercepting rod 553 is communicated with the mounting jack 551 through the joint pipe 552. The mounting jack 551 penetrates through the bottom platform 531 or the middle platform 532 and enters the connection slot 534. The mounting jack 551 on the bottom platform 531 or the middle platform 532 is arranged in a dislocation manner with the mounting jack 551 on the rotating ring 54. After the rotating ring 54 deflects to the limit, the two mounting jacks 551 will be docked.
[0037] Specifically, a flow dividing plate 58 is fixedly installed on the outer side of the mounting member 53. The flow dividing plate 58 is in an isosceles triangle shape, and the vertex of the triangle faces the direction from which the can is transported. In this way, the flow dividing plate 58 can divert the cans that are continuously approaching the mounting member 53, making them flow to both sides of the mounting member 53, further ensuring the smooth transportation of the cans. At the same time, the flow dividing plate 58 is fixed to the bottom platform 531 and the top platform 533 by bolts, thus ensuring the stability of the assembly of the bottom platform 531, the middle platform 532, and the top platform 533.
[0038] The connecting member 52 specifically includes a connecting rod 521 penetrating through the surface of the mounting frame 51, a fixing plate 522 disposed on the outer side of the connecting rod 521, and a locking sleeve 523 disposed at one end of the connecting rod 521 penetrating through the mounting frame 51.
[0039] Specifically, the connecting rod 521 is fixed to the mounting member 53. The fixing plate 522 and the locking sleeve 523 are respectively attached to both sides of the connecting member 52. The locking sleeve 523 is fixed to the outer side of the connecting rod 521 by threads. The mounting frame 51 is fixed to the bench 1 by bolts. The mounting frame 51 can be displaced inside the bench 1 or can be located above the guide plate 4.
[0040] When the mounting bracket 51 is located inside the bench 1, the conveyor belt 2 is divided into two. The connecting rod 521 passes through the gap between the two conveyor belts 2 from bottom to top, so that there is no obstruction above the mounting member 53 and the cans, facilitating the observation of the working process. When the mounting bracket 51 straddles above the guide plate 4, the connecting rod 521 extends downward from top to above the conveyor belt 2, so that there is no obstruction around the dislocation unit 5, facilitating the disassembly and assembly of the dislocation unit 5.
[0041] Embodiment 2, referring to Figure 11 , which is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is that the guide plate 4 is fixed to the bench 1 through the extension frame 3. Two symmetrical guide plates 4 form a circulation channel, which is divided into multiple row areas 41, a transition area 42, and a single-row area 43. The width of the single-row area 43 is greater than the diameter of the can and less than the sum of the diameters of two cans.
[0042] By increasing the width of the single-row area 43, when the dislocation unit 5 dislocates the cans into the single-row area 43, the cans slide along the surface of one side of the guide plate 4. After the cans enter the single-row area 43, they will also be in contact with one side of the guide plate 4. In this way, the cans entering from both sides of the dislocation unit 5 will be in contact with the corresponding guide plates 4 on both sides respectively, which makes the cans staggered, allowing more cans to be accommodated in the single-row area 43, improving the space utilization rate, and at the same time, it can also play a certain buffering role.
[0043] Combining Embodiments 1-2, the working principle of a dislocation transportation device for cat cans of the present invention is as follows: During installation, first place the return spring 572 into the offset chute 571, then respectively sleeve the two rotating rings 54 above the bottom platform 531 and the middle platform 532, and insert the offset slider 573 into the offset chute 571 to fit with one end of the return spring 572; insert the sliding bolt 562 into the sliding slot 561, align the limiting groove 564 with the limiting jack 565, then insert the limiting bolt 566 through the limiting jack 565 into the limiting groove 564, and then splice the bottom platform 531, the middle platform 532, and the top platform 533 together through the connecting slot 534 and the connecting block 535. Finally, fix the flow dividing plate 58 to the outside of the bottom platform 531 and the top platform 533.
[0044] Sheathe the intercepting rod 553 outside the joint pipe 552, then insert the joint pipe 552 into the installation jack 551, then fix the mounting bracket 51 to the bench 1, pass one end of the connecting rod 521 through the mounting bracket 51, make the fixing plate 522 fit with the mounting bracket 51, adjust the mounting member 53 by using the connecting rod 521 to make the mounting member 53 located above the conveyor belt 2, the two blocking members 55 point to two directions respectively, and finally install the locking sleeve 523 at one end of the connecting rod 521 passing through the mounting bracket 51.
[0045] In use, the cans move along the circulation channel through the conveyor belt 2. After the cans enter the transition area 42 from the multi-row area 41, they encounter the dislocation unit 5. The cans are first shunted by the shunt plate 58 and move along the outer wall of the shunt plate 58 to both sides of the mounting member 53. When a can contacts one side of the intercepting rod 553, the intercepting rod 553 at this point is stressed and drives the rotating ring 54 to deflect towards the single-row area 43. When the rotating ring 54 deflects, it drives the offset slider 573 to slide in the offset chute 571 and compresses the return spring 572. At the same time, the locking groove 563 and the sliding slot 561 are misaligned. The outer wall of the rotating ring 54 will push the sliding bolt 562 to slide in the sliding slot 561 and enter the locking groove 563 on the other side. The rotating ring 54 corresponding to this locking groove 563 is locked, and the intercepting rod 553 cannot deflect.
[0046] As the intercepting rod 553 and the rotating ring 54 rotate, when the distance between the intercepting rod 553 and the guide plate 4 is greater than the diameter of the can, the can can then pass through from one side of the mounting member 53. After the can passes through, the compressed return spring 572 drives the rotating ring 54 and the intercepting rod 553 to reset by pushing the offset slider 573. After the rotating ring 54 resets, the intercepting rod 553 on the other side unlocks the can and pushes the intercepting rod 553 to move towards the single-row area 43.
[0047] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.
Claims
1. A dislocation transportation device for cat food cans, which is used to adjust the transportation state of the cans, comprising a bench (1), a conveyor belt (2) arranged on the top of the bench (1), extension frames (3) arranged on both sides of the bench (1), and two guide plates (4) arranged above the conveyor belt (2), characterized in that: It further includes a dislocation unit (5). The dislocation unit (5) has a mounting member (53) disposed above the conveyor belt (2), two rotating rings (54) disposed outside the mounting member (53), a blocking member (55) disposed outside the rotating rings (54) for controlling the movement of the cans, a control member (56) disposed between the mounting member (53) and the rotating rings (54) for controlling the alternating rotation of the two rotating rings (54), a reset member (57) disposed between the mounting member (53) and the rotating rings (54) for controlling the reset of the rotating rings (54), a mounting frame (51) and a connecting member (52) disposed between the mounting member (53) and the bench (1).
2. The misaligned transportation device for cat canned food according to claim 1, wherein: The guide plate (4) is fixed to the bench (1) through an extension frame (3). Two symmetric guide plates (4) form a circulation channel, which is divided into a multi-row area (41), a transition area (42) and a single-row area (43).
3. The misaligned transportation device for cat food cans according to claim 2, wherein: The width of the single-row area (43) in the circulation channel formed by the guide plate (4) is greater than the diameter of a can and less than the sum of the diameters of two cans.
4. The misaligned transportation device for cat canned food according to claim 1, characterized in that: The connecting member (52) specifically includes a connecting rod (521) penetrating through the surface of the mounting frame (51), a fixing plate (522) disposed outside the connecting rod (521), and a locking sleeve (523) disposed at one end of the connecting rod (521) penetrating through the mounting frame (51); The connecting rod (521) is fixed to the mounting member (53). The fixing plate (522) and the locking sleeve (523) are respectively attached to both sides of the connecting member (52), and the mounting frame (51) is fixed to the bench (1).
5. The misaligned transportation device for cat food cans according to claim 1, characterized in that: The mounting member (53) sequentially includes a bottom platform (531), a middle platform (532) and a top platform (533) from top to bottom, connecting slots (534) respectively opened at the tops of the bottom platform (531) and the middle platform (532), and connecting blocks (535) disposed at the bottoms of the top platform (533) and the middle platform (532); The vertical cross-sections of the bottom platform (531) and the middle platform (532) are both in a "convex" shape. The horizontal cross-sections of the connecting blocks (535) and the connecting slots (534) are both hexagonal, and the connecting blocks (535) are inserted into the connecting slots (534).
6. The misaligned transportation device for cat food cans according to claim 5, characterized in that: The control member (56) specifically includes a sliding slot (561) opened on the surface of the middle platform (532), a sliding bolt (562) disposed inside the sliding slot (561), and locking slots (563) opened on the surfaces of the two rotating rings (54); The sliding slot (561) vertically penetrates the middle platform (532). The two locking slots (563) are respectively docked with the openings at both ends of the sliding slot (561). One end of the sliding slot (561) is inserted into the lower locking slot (563), and the other end extends to the opening above the sliding slot (561).
7. The misaligned transportation device for cat canned food according to claim 6, characterized in that: The control member (56) further includes a limiting slot (564) opened on the surface of the sliding bolt (562), a limiting jack (565) opened outside the middle platform (532), and a limiting bolt (566) disposed inside the limiting jack (565); The limiting groove (564) is docked with the limiting jack (565), the limiting bolt (566) is inserted into the limiting groove (564), and the length of the limiting groove (564) is greater than the diameter of the limiting bolt (566).
8. The misaligned transportation device for cat food cans according to claim 5, characterized in that: The reset member (57) specifically includes an offset chute (571) formed on the surfaces of the bottom table (531) and the middle table (532), a reset spring (572) disposed inside the offset chute (571), and an offset slider (573) disposed on the surface of the rotating ring (54); The offset slider (573) is inserted into the offset chute (571) and is in contact with the reset spring (572).
9. The misaligned transportation device for cat canned food according to claim 5, wherein: The blocking member (55) specifically includes a mounting jack (551) penetrating through the outside of the rotating ring (54), a connecting pipe (552) disposed inside the mounting jack (551), and an intercepting rod (553) disposed at one end of the connecting pipe (552) extending out of the mounting jack (551).
10. The misaligned transportation device for cat canned food according to claim 1, characterized in that: A diverter plate (58) is fixedly installed on the outside of the mounting member (53). The diverter plate (58) is in an isosceles triangle shape, and the vertex of the triangle faces the direction in which the cans are transported.
Citation Information
Patent Citations
A device for transporting canned food
CN220949814U