An automatic conveying device for fruit and vegetable dry production
By adopting nylon conveyor ropes and staggered drive components, the problems of difficult cleaning and unstable conveying in the production of dried fruits and vegetables have been solved, achieving efficient and hygienic conveying of dried fruits and vegetables, and adapting to the stable conveying of various forms of dried fruits and vegetables.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-04
- Publication Date
- 2026-03-24
AI Technical Summary
Existing conveyor belts have problems in fruit and vegetable drying production, such as being difficult to clean, prone to bacterial growth, and unable to stably transport irregularly shaped dried fruits and vegetables, resulting in uneven material distribution and falling off.
Multiple parallel conveyor ropes made of nylon are used. By alternating fixed and movable drive components, combined with a drive belt and guide frame structure, the height and spacing of the conveyor ropes can be flexibly adjusted to ensure stable conveying.
It improves the hygiene level of the production line, can stably transport dried fruits and vegetables of various shapes and sizes, reduces dirt adhesion, avoids material collision and falling, and meets the needs of multi-layer three-dimensional production lines.
Smart Images

Figure CN121247306B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fruit and vegetable drying technology, and more specifically to an automated conveying device for fruit and vegetable drying production. Background Technology
[0002] With the development of the food industry and the advancement of technology, automated equipment is being used more and more widely in food production, especially in the production of dried fruits and vegetables. Dried fruits and vegetables are increasingly favored by consumers due to their convenience, long shelf life, and rich nutritional value. The production process of dried fruits and vegetables involves multiple stages, including washing, cutting, drying, cooling, and packaging, and automated conveying equipment plays a crucial role in this process. It not only effectively improves production efficiency but also plays a positive role in ensuring product quality and reducing labor costs.
[0003] Patent CN221164680U discloses a feeding mechanism for a fruit and vegetable freeze-drying production line, comprising a conveying device body. A concave frame is fixedly connected to the right side of the front and rear sides of the bottom of the conveying device body. A cleaning component is provided on the outer wall of the concave frame. A limiting hole is opened in the middle of the inner wall of the bottom of the concave frame. A chute frame is fixedly connected to the front right side of the conveying device body. A threaded rod is rotatably connected to the inner wall of the right side of the chute frame and passes through both sides. The left end of the threaded rod is rotatably connected to the inner wall of the chute frame. A slider is threadedly connected to the outer wall of the threaded rod. The outer wall of the slider is slidably connected to the inner wall of the chute frame. A transmission component is provided at the rear end of the slider. A discharge frame is fixedly connected to the right side of the bottom of the conveying device body near the concave frame. A distribution frame is fixedly connected to the rear right side of the conveying device body.
[0004] The aforementioned patents and existing technologies have the following technical problems in practical use:
[0005] 1. Currently, most factories use conveyor belts. Traditional conveyor belts often have many gaps and uneven areas, which easily accumulate dirt, residue, and dust. In the food processing industry, especially in the production of dried fruits and vegetables, strict hygiene requirements necessitate frequent cleaning of the conveyor belt surface. However, cleaning traditional conveyor belts is cumbersome and difficult, making them prone to bacterial and mold growth, thus affecting the hygienic quality of the products.
[0006] 2. Due to the wide variety of dried fruits and vegetables, their shapes and sizes vary, especially irregularly shaped ones. When transporting irregularly shaped materials, the conveyor belt is prone to slippage or misalignment, particularly when the materials are dry, fragile, or have rough surfaces. This misalignment can lead to uneven distribution of materials along the conveyor belt, affecting subsequent processing, packaging, or sorting, and may even result in materials falling or becoming stuck. Summary of the Invention
[0007] To address the above problems, the present invention provides an automated conveying device for the production of dried fruits and vegetables.
[0008] To achieve the above objectives, the present invention specifically adopts the following technical solution:
[0009] An automated conveying device for the production of dried fruits and vegetables includes a frame. Two sets of drive shafts are rotatably installed inside both ends of the frame. Several fixed drive components and several movable drive components are arranged on the drive shafts. The fixed drive components and movable drive components are arranged alternately. Conveying ropes are sleeved on the corresponding fixed drive components and movable drive components at both ends.
[0010] Both the fixed drive assembly and the movable drive assembly include a bracket. The bracket can swing up and down around the center of the drive shaft. The drive wheel and the driven wheel are rotatably installed inside the bracket. The drive wheel and the driven wheel are connected by a drive belt. The conveying rope is sleeved on the drive belt, which is arranged in an inward arc shape.
[0011] Furthermore, the driving wheel consists of two drive discs, and the drive discs on the adjacent fixed drive assembly and the movable drive assembly are pressed tightly together. The drive belt has an elastic rib inside, the driven wheel has a double-cone shape inside, the bracket has a groove inside, and two sets of slide rods are slidably connected inside the groove. A telescopic rod is slidably connected to one end of the slide rod near the drive disc. A C-shaped pressure sleeve is fixedly installed on the outside of the telescopic rod. The C-shaped pressure sleeve is fitted onto the drive disc. A limiting plate is provided on the inside of the drive disc. A limiting cavity is provided between the limiting plate and the C-shaped pressure sleeve. The edge of the drive belt is located in the limiting cavity.
[0012] The frame is provided with a sliding side plate and a fixed side plate on both sides respectively. A guide groove is provided on the outer side of the drive shaft, and a guide block is provided on the inner side of the drive wheel. The drive wheel is sleeved on the drive shaft, and the guide block is slidably connected in the guide groove.
[0013] Furthermore, a top sleeve is rotatably mounted on the inner side of both the sliding side plate and the fixed side plate, and the top sleeve is sleeved on the drive shaft.
[0014] Furthermore, two sets of guide frames are installed on both sides of the frame. The guide frames have an arc-shaped guide groove 1 and an arc-shaped guide groove 2 inside. A fixed guide rail and a movable frame are arranged between the two sets of guide frames at the same end. The fixed guide rail is slidably connected in the arc-shaped guide groove 1, and the movable frame is slidably connected in the arc-shaped guide groove 2. The movable frame is slidably connected to the movable guide rail inside. A lifting hydraulic cylinder is installed on the outside of the movable frame. The telescopic end of the lifting hydraulic cylinder is connected to the movable guide rail. The bracket on the fixed drive assembly is slidably connected in the fixed guide rail, and the bracket on the movable drive assembly is slidably connected in the movable guide rail.
[0015] Furthermore, a first driving hydraulic cylinder and a second driving hydraulic cylinder are respectively hinged to the outer sides of the guide frame on both sides of the same end. The telescopic end of the first driving hydraulic cylinder is hinged to the fixed guide rail, and the telescopic end of the second driving hydraulic cylinder is hinged to the movable frame.
[0016] Furthermore, the bracket on the active drive assembly is designed to be inclined towards the drive shaft, while the bracket on the fixed drive assembly is designed to be inclined away from the drive shaft.
[0017] Furthermore, a drive screw is installed inside the frame, which is driven by a motor. A sleeper rail is installed on the top of the frame, and a slider is slidably connected to the sleeper rail. A sliding side plate is installed on the slider, and a screw nut is installed at the bottom of the sliding side plate. The screw nut is threadedly connected to the drive screw.
[0018] Furthermore, friction grooves are formed on the outer surface of the drive belt.
[0019] Furthermore, the conveyor rope is made of nylon material.
[0020] The beneficial effects of this invention are as follows:
[0021] 1. This invention uses multiple parallel ropes as the conveyor belt, and the conveyor ropes are made of a sturdy and easy-to-clean material. The cleaning and disinfection process is relatively simple. Compared with traditional conveyor belts, especially those with many gaps and easy to accumulate dirt, the surface of the conveyor ropes is smoother and less dirt adheres, which can significantly improve the hygiene level of the production line.
[0022] 2. This invention uses multiple parallel conveyor ropes to simultaneously transport dried fruits and vegetables. During the transport process, the conveyor ropes can be precisely adjusted in terms of spacing and height difference between adjacent ropes, allowing for better adaptation to dried fruits and vegetables of different shapes and sizes. Compared to traditional conveyor belts, conveyor ropes offer greater flexibility and can handle a wider variety of dried fruits and vegetables in different shapes, especially irregularly shaped products. Simultaneously, they prevent collisions between items, thus preserving the integrity of the dried fruits and vegetables.
[0023] 3. By setting up fixed and movable drive components, the present invention can adjust the height difference between the two ends of the conveyor line. Especially in multi-layer and three-dimensional production line layouts, the height adjustment of the conveyor rope system is more flexible and can meet different production needs. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0025] Figure 2 This is an exploded view of the overall structure of the present invention;
[0026] Figure 3This is a schematic diagram of the guide frame structure of the present invention;
[0027] Figure 4 This is a schematic diagram of the fixed guide rail and movable frame structure of the present invention;
[0028] Figure 5 This is a schematic diagram of the drive shaft structure of the present invention;
[0029] Figure 6 This is a schematic diagram of the fixed drive component and the movable drive component of the present invention;
[0030] Figure 7 This is an exploded view of the active driving component of the present invention;
[0031] Figure 8 This is a schematic diagram of the drive belt structure of the present invention.
[0032] Reference numerals: 1. Frame; 11. Drive screw; 12. Sleeper rail; 13. Slider; 14. Sliding side plate; 15. Fixed side plate; 16. Top sleeve; 2. Guide frame; 21. Arc-shaped guide groove one; 22. Arc-shaped guide groove two; 23. First drive hydraulic cylinder; 24. Second drive hydraulic cylinder; 3. Conveyor rope; 4. Fixed guide rail; 5. Movable frame; 51. Lifting hydraulic cylinder; 52. Movable guide rail; 6. Fixed drive assembly; 7. Movable drive assembly; 71. Bracket; 72. Slide groove; 73. Slide rod; 74. Telescopic rod; 75. C-shaped pressure sleeve; 76. Driven wheel; 77. Drive wheel disc; 78. Drive belt; 781. Elastic rib; 8. Drive shaft. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings.
[0034] Example 1, as Figures 1-8 As shown, an automated conveying device for the production of dried fruits and vegetables includes a frame 1. Two sets of drive shafts 8 are rotatably installed inside both ends of the frame 1. Several fixed drive components 6 and several movable drive components 7 are arranged on the drive shafts 8. The fixed drive components 6 and movable drive components 7 are arranged alternately. Conveying ropes 3 are sleeved on the fixed drive components 6 and movable drive components 7 at both ends.
[0035] Both the fixed drive assembly 6 and the movable drive assembly 7 include a bracket 71. The bracket 71 can swing up and down around the center of the drive shaft 8. A driving wheel and a driven wheel 76 are rotatably mounted inside the bracket 71. The driving wheel and the driven wheel 76 are connected by a drive belt 78. The conveying rope 3 is sleeved on the drive belt 78, which is concave in shape. Friction grooves are formed on the outer surface of the drive belt 78. The conveying rope 3 is made of nylon material.
[0036] During conveying, the motor drives the drive shaft 8 to rotate, which in turn drives the drive wheel to rotate. The drive wheel then drives the driven wheel 76 and the drive belt 78 to rotate, which in turn drives the conveyor rope 3 to rotate. The parallel conveyor ropes 3 convey the dried fruits and vegetables. By controlling the bracket 71 to swing up and down around the center of the drive shaft 8, the bracket 71 drives the driven wheel 76 to swing up and down. When both the fixed drive assembly 6 and the movable drive assembly 7 at both ends swing upward simultaneously, the width of the loop formed by the conveyor rope 3 increases while its length decreases, thus keeping the conveyor rope 3 taut. At this time, the overall conveying height of the conveyor rope 3 changes, making the line suitable for installation at workstations at different heights and reducing the difficulty of connecting the line to other workstations. When one end of the fixed drive assembly 6 and the movable drive assembly 7 swings downward simultaneously, the other end swings upward simultaneously, tilting the overall conveying surface and achieving height difference conveying. In multi-layer, three-dimensional production line layouts, the height adjustment of the conveyor rope 3 system is more flexible, meeting different production needs.
[0037] When conveying irregularly shaped dried fruits and vegetables, the movable drive components 7 at both ends swing downwards simultaneously. The height of the corresponding conveyor rope 3 on the movable drive component 7 is lower than the height of the corresponding conveyor rope 3 on the fixed drive component 6. There is a set of high conveyor ropes 3 on each side of the set of low conveyor ropes 3, so that the irregularly shaped dried fruits and vegetables can be caught and conveyed more stably.
[0038] In embodiment two, based on the above embodiment, the driving wheel is composed of two driving wheel discs 77. The driving wheel discs 77 on the adjacent fixed driving assembly 6 and the movable driving assembly 7 are pressed tightly together. The driving belt 78 is provided with an elastic rib 781 inside. The driven wheel 76 is arranged in a double cone shape inside. The bracket 71 is provided with a sliding groove 72 inside. Two sets of sliding rods 73 are slidably connected inside the sliding groove 72. A telescopic rod 74 is slidably connected to one end of the sliding rod 73 near the driving wheel disc 77. A C-shaped pressing sleeve 75 is fixedly installed on the outside of the telescopic rod 74. The C-shaped pressing sleeve 75 is sleeved on the driving wheel disc 77. A limiting plate is provided on the inner side of the driving wheel disc 77. A limiting cavity is provided between the limiting plate and the C-shaped pressing sleeve 75. The edge of the driving belt 78 is located in the limiting cavity.
[0039] The frame 1 has a sliding side plate 14 and a fixed side plate 15 on its two sides respectively. The drive shaft 8 has a guide groove on its outer side and a guide block on its inner side. The drive shaft 8 is sleeved on the drive shaft 8 and the guide block is slidably connected in the guide groove.
[0040] In actual design, if the height difference between adjacent conveyor ropes 3 is large, the spacing may become too large. How to adjust the height difference of multiple conveyor ropes 3 simultaneously while also adjusting the horizontal spacing is a problem this example needs to solve. Furthermore, it is crucial that the thickness of the drive assembly itself does not affect the adjustment, and that each conveyor rope 3 maintains a stable conveying effect after adjustment, which is quite challenging. Considering that conventional conveyor wheel spacing adjustment (similar to a continuously variable transmission structure) would affect the conveying height difference adjustment, this embodiment uses a special drive structure. When conveying irregular dried fruits and vegetables, the movable drive assemblies 7 at both ends swing downwards simultaneously. The height of the corresponding conveyor rope 3 on the movable drive assembly 7 is lower than the height of the corresponding conveyor rope 3 on the fixed drive assembly 6. There is a set of higher conveyor ropes 3 on each side of the lower set. When the bracket 71 on the movable drive assembly 7 swings downwards beyond the bracket 71 on the fixed drive assembly 6, such as... Figure 6 As shown, two adjacent brackets 71 are misaligned. At this time, the sliding side plate 14 is controlled to move closer to the fixed side plate 15, and the sliding side plate 14 presses against the drive wheel 77, reducing the distance between the drive wheels 77. Due to the restriction of the C-shaped pressure sleeve 75, the two ends of the drive belt 78 will not move upward. Therefore, under the pressure of the drive wheel 77, the drive belt 78 is concave inward. At the same time, the lifting hydraulic cylinder 51 is controlled to operate, and the lifting hydraulic cylinder 51 pushes the movable guide rail 52 away from the drive shaft 8. The movable guide rail 52 drives the bracket 71 on the movable drive assembly 7 away from the drive shaft 8. 71 drives the driven wheel 76 away from the drive shaft 8. This method controls the overall length of the drive belt 78, allowing it to stably concave inwards. Simultaneously, it applies outward pressure to the conveyor rope 3, ensuring its stable embedding within the drive belt 78. In other words, the conveying radius of the drive belt 78 decreases, but the conveying length increases, guaranteeing stable conveying of the conveyor rope 3. Furthermore, the reduced spacing between the drive wheel discs 77 also reduces the spacing between adjacent conveyor ropes 3, thus maintaining a stable conveying force while adjusting the conveying spacing. It should be noted that the drive belt 78 has built-in elastic reinforcing bars 781, increasing its overall strength and support. While the conveying spacing decreases, the support 71 slides on the corresponding movable guide rail 52 and fixed guide rail 4, with adjacent supports 71 staggered, ensuring that sliding does not affect the spacing adjustment.
[0041] By setting the telescopic rod 74 and the slide rod 73, the bracket 71 can drive the C-shaped pressure sleeve 75 to swing synchronously when it swings. The opening of the C-shaped pressure sleeve 75 is always along the conveying direction of the drive belt 78, and will not affect the normal transmission of the drive belt 78.
[0042] In summary, this embodiment starts with the structure of the drive belt 78 and adopts a concave adjustment method. While adjusting, it can also increase the height difference adjustment effect. Moreover, the conveyor rope 3 can always be stably wrapped around the drive belt 78. The wrapping transmission method can effectively reduce the slippage of the conveyor and achieve high conveying stability.
[0043] In embodiment three, based on the above embodiments, a top sleeve 16 is rotatably mounted on the inner side of both the sliding side plate 14 and the fixed side plate 15, and the top sleeve 16 is sleeved on the drive shaft 8. The top sleeve 16 ensures that when the drive wheel 77 is stably pressed, the rotation of the drive wheel 77 is not affected.
[0044] Example 4, based on the above examples, further includes two sets of guide frames 2 installed on both sides of the frame 1. The guide frames 2 have an arc-shaped guide groove 1 21 and an arc-shaped guide groove 22 inside. A fixed guide rail 4 and a movable frame 5 are arranged between the two sets of guide frames 2 at the same end. The fixed guide rail 4 is slidably connected in the arc-shaped guide groove 1 21, and the movable frame 5 is slidably connected in the arc-shaped guide groove 22. The movable frame 5 has a movable guide rail 52 slidably connected inside. A lifting hydraulic cylinder 51 is installed on the outside of the movable frame 5. The telescopic end of the lifting hydraulic cylinder 51 is connected to the movable guide rail 52. The bracket 71 on the fixed drive assembly 6 is slidably connected in the fixed guide rail 4, and the bracket 71 on the movable drive assembly 7 is slidably connected in the movable guide rail 52.
[0045] A first driving hydraulic cylinder 23 and a second driving hydraulic cylinder 24 are respectively hinged to the outer sides of the guide frame 2 on both sides of the same end. The telescopic end of the first driving hydraulic cylinder 23 is hinged to the fixed guide rail 4, and the telescopic end of the second driving hydraulic cylinder 24 is hinged to the movable frame 5.
[0046] By controlling the extension and retraction of the first driving hydraulic cylinder 23, the first driving hydraulic cylinder 23 drives the fixed guide rail 4 to slide along the arc-shaped guide groove 21, and the fixed guide rail 4 drives the bracket 71 on the fixed driving assembly 6 to swing along the center of the driving shaft 8; by controlling the extension and retraction of the second driving hydraulic cylinder 24, the second driving hydraulic cylinder 24 drives the movable frame 5 to slide along the arc-shaped guide groove 22, and the movable frame 5 drives the bracket 71 on the movable driving assembly 7 to swing along the center of the driving shaft 8 through the movable guide rail 52.
[0047] Example 5, based on the above examples, further includes an inclined design of the bracket 71 on the movable drive assembly 7 towards the drive shaft 8, and an inclined design of the bracket 71 on the fixed drive assembly 6 away from the drive shaft 8. This embodiment ensures sufficient spacing between the bracket 71 on the fixed drive assembly 6 and the movable drive assembly 7, preventing misalignment between the fixed drive assembly 6 and the movable drive assembly 7 when the movable guide rail 52 slides relative to the movable frame 5. Furthermore, the inclined bracket 71 ensures that it remains below the conveying surface, thus not affecting normal loading and unloading.
[0048] Example 6, based on the above examples, further includes a drive screw 11 installed inside the frame 1, driven by a motor. A sleeper rail 12 is installed on the top of the frame 1, and a slider 13 is slidably connected to the sleeper rail 12. A sliding side plate 14 is installed on the slider 13, and a screw nut is installed at the bottom of the sliding side plate 14. The screw nut is threadedly connected to the drive screw 11. The motor drives the drive screw 11 to rotate, and the drive screw 11 drives the sliding side plate 14 to slide along the sleeper rail 12 via the screw nut, thereby adjusting the distance between the sliding side plate 14 and the fixed side plate 15.
[0049] The above description of the disclosed embodiments enables those skilled in the art to make or use the invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the invention. Therefore, the invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. An automated conveying apparatus for the production of dried fruits and vegetables, comprising a frame (1), characterized in that, The machine frame (1) is internally rotatably installed with two groups of driving shafts (8) at both ends, a plurality of fixed driving assemblies (6) and a plurality of movable driving assemblies (7) are arranged on the driving shafts (8), the fixed driving assemblies (6) and the movable driving assemblies (7) are arranged alternately, and the corresponding fixed driving assemblies (6) and movable driving assemblies (7) at both ends are sleeved with conveying ropes (3); The fixed driving assembly (6) and the movable driving assembly (7) each comprise a support (71), the support (71) can swing up and down with the center of the driving shaft (8) as the rotation center, the support (71) is rotatably installed with a driving wheel and a driven wheel (76) inside, the driving wheel and the driven wheel (76) are transmissionally connected through a driving belt (78), the conveying rope (3) is sleeved on the driving belt (78), and the driving belt (78) is arranged in a concave arc shape; During conveying, the motor drives the driving shaft (8) to rotate, the driving shaft (8) drives the driving wheel to rotate, the driving wheel drives the driven wheel (76) and the driving belt (78) to rotate, the driving belt (78) drives the conveying rope (3) to rotate, and the parallel conveying ropes (3) convey the dried fruits and vegetables, the support (71) drives the driven wheel (76) to swing up and down by controlling the support (71) to swing up and down with the center of the driving shaft (8) as the rotation center, when the fixed driving assembly (6) and the movable driving assembly (7) at both ends swing up at the same time, the width of the rope loop formed by the conveying rope (3) increases and the length decreases, the conveying rope (3) always remains straight, at this time, the overall conveying height of the conveying rope (3) changes, so that the line body can be suitable for being installed on workstations at different heights, and the connection difficulty of the line body and other workstations is reduced, when the fixed driving assembly (6) and the movable driving assembly (7) at one end are controlled to swing down at the same time, the other end swings up at the same time, so that the overall conveying surface is inclined, the height difference conveying is realized, in the multi-layer and three-dimensional production line layout, the height adjustment of the conveying rope (3) system is flexible, and different production requirements are met; When the irregular dried fruits and vegetables are conveyed, the movable driving assemblies (7) at both ends are controlled to swing down at the same time, the corresponding conveying rope (3) on the movable driving assembly (7) is lower than the corresponding conveying rope (3) on the fixed driving assembly (6) in height, there is a group of high conveying ropes (3) on both sides of a group of low conveying ropes (3), so that the irregular dried fruits and vegetables can be held and conveyed.
2. The automated conveying apparatus for the production of dried fruits and vegetables according to claim 1, characterized in that, The driving wheel is composed of two driving discs (77), the adjacent fixed driving assembly (6) and the movable driving assembly (7) are tightly pressed together, the inside of the driving belt (78) is provided with elastic bones (781), the inside of the driven wheel (76) is provided with a double taper, the inside of the bracket (71) is provided with a sliding groove (72), the sliding groove (72) is slidably connected with two groups of sliding rods (73), one end of the sliding rod (73) close to the driving disc (77) is slidably connected with a telescopic rod (74), the outside of the telescopic rod (74) is fixedly installed with a C-shaped pressing sleeve (75), the C-shaped pressing sleeve (75) is sleeved on the driving disc (77), the inside of the driving disc (77) is provided with a limiting disc, a limiting cavity is formed between the limiting disc and the C-shaped pressing sleeve (75), and the edge of the driving belt (78) is located in the limiting cavity. The both sides of the rack (1) are respectively provided with sliding side plates (14) and fixed side plates (15), the outside of the driving shaft (8) is provided with a guide groove, and the inside of the driving disc (77) is provided with a guide block.
3. The automated conveying apparatus for the production of dried fruits and vegetables according to claim 2, characterized in that, The inside of the sliding side plate (14) and the fixed side plate (15) is rotatably installed with a top sleeve (16), and the top sleeve (16) is sleeved on the driving shaft (8).
4. The automated conveying apparatus for the production of dried fruits and vegetables according to claim 3, characterized in that, The both sides of the rack (1) are provided with two groups of guide frames (2), the inside of the guide frame (2) is provided with an arc-shaped guide groove one (21) and an arc-shaped guide groove two (22), the same end two groups of guide frames (2) are provided with a fixed guide rail (4) and a movable frame (5), the fixed guide rail (4) is slidably connected in the arc-shaped guide groove one (21), the movable frame (5) is slidably connected in the arc-shaped guide groove two (22), the inside of the movable frame (5) is slidably connected with a movable guide rail (52), the outside of the movable frame (5) is provided with a jacking hydraulic cylinder (51), the telescopic end of the jacking hydraulic cylinder (51) is connected with the movable guide rail (52), the bracket (71) on the fixed driving assembly (6) is slidably connected in the fixed guide rail (4), and the bracket (71) on the movable driving assembly (7) is slidably connected in the movable guide rail (52).
5. The automated conveying apparatus for the production of dried fruits and vegetables according to claim 4, characterized in that, The outside of the guide frame (2) on the same end is respectively hinged with a first driving hydraulic cylinder (23) and a second driving hydraulic cylinder (24), the telescopic end of the first driving hydraulic cylinder (23) is hinged with the fixed guide rail (4), and the telescopic end of the second driving hydraulic cylinder (24) is hinged with the movable frame (5).
6. The automated conveying apparatus for the production of dried fruits and vegetables according to claim 5, characterized in that, The bracket (71) on the movable driving assembly (7) is designed to be inclined to the driving shaft (8), and the bracket (71) on the fixed driving assembly (6) is designed to be inclined away from the driving shaft (8).
7. An automated conveying apparatus for the production of dried fruits and vegetables according to claim 6, characterized in that, The inside of the frame (1) is internally provided with a driving screw rod (11), the driving screw rod (11) is driven by a motor, the top of the frame (1) is provided with a pillow rail (12), the pillow rail (12) is slidably connected with a sliding block (13), the sliding side plate (14) is installed on the sliding block (13), and the bottom of the sliding side plate (14) is provided with a screw rod nut which is in threaded connection with the driving screw rod (11).
8. The automated conveying apparatus for dried fruit and vegetable production according to claim 1, characterized in that The outer surface of the driving belt (78) is provided with a friction groove.
9. The automated conveying apparatus for dried fruit and vegetable production according to claim 1, characterized in that The conveying rope (3) is made of nylon material.
Citation Information
Patent Citations
Feeding mechanism for fruit and vegetable freeze-drying production line
CN221164680U
Automatic conveying system for wood processing
CN112356164A
Mud strip conveying reversing device
CN219791369U