Kelp drying heat supply device based on intelligent algorithm

By setting movable and rotating fan blades in the kelp drying device, the problem of insufficient air circulation is solved, and uniform drying and efficient drying of kelp is achieved.

CN120323664AActive Publication Date: 2025-07-18FUJIAN RED SUN BOUTIQUE CO LTD
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Patent Information

Application Number
CN202510806677.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-17
Publication Date
2025-07-18
Estimated Expiration
2045-06-17

AI Technical Summary

Technical Problem

In the existing kelp drying device, the air circulation in the drying box is not sufficient, resulting in uneven drying of the kelp, affecting the working effect of the device.

Method used

A kelp drying heating device based on intelligent algorithm is designed. By setting movable and rotating fan blades, it can move up and down and adjust the angle at the center of the drying box to ensure sufficient air circulation.

Benefits of technology

It improves the uniformity and efficiency of kelp drying, ensures sufficient drying of kelp, and improves the working effect of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of food processing, and discloses a kelp drying heat supply device based on an intelligent algorithm, the kelp drying heat supply device comprises a base, an intelligent drying box is fixedly mounted above the base, and a plurality of fan blades distributed in a circumferential array are arranged above the intelligent drying box; a working mechanism used for driving fan blades and a switching mechanism are arranged in the base, the working mechanism comprises a sleeve vertically fixed to the upper surface of the base, a first vertical groove is formed in the surface of the sleeve, the first vertical groove is located on the side close to the intelligent drying box, and a threaded rod is rotationally connected into the sleeve; and the threaded rod is sleeved with an inner threaded sleeve, the inner threaded sleeve is in threaded connection with the threaded rod, a transverse rod is vertically fixed to the surface of the inner threaded sleeve, the transverse rod penetrates through the first vertical groove to extend to the outer side of the sleeve, and the transverse rod is matched with the first vertical groove in an up-down sliding mode.
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Description

Technical Field

[0001] The present invention belongs to the technical field of food processing, and specifically relates to a kelp drying and heating device based on intelligent algorithms. Background Art

[0002] Kelp is a perennial large cold-water alga of the Laminariaceae family in the Phaeophyta phylum. Its morphology is long and flat leaf-shaped, with a brownish-green color. Its length is usually 1.5 - 3 meters, and the longest can reach 6 meters. It is widely distributed in the temperate to frigid coastal waters of the North Pacific and the Atlantic Ocean, and mostly attaches to the seabed rocks or artificial aquaculture rafts. Kelp is rich in iodine, fucoidan, mannitol, and dietary fiber, and is an important edible, medicinal, and industrial raw material, with the effects of preventing and treating thyroid diseases, antioxidation, reducing lipid and blood pressure, etc. It is also an important biological resource for ocean carbon sinks.

[0003] The subsequent processing of kelp is generally divided into two types. One is natural drying. After fresh kelp is washed, it is spread flat on the drying yard or hung for drying, and needs to be turned regularly to achieve uniform drying. Under sunny conditions, it takes 3 - 7 days to complete, and in rainy weather, it may be extended to more than 10 days;

[0004] The other is to dry kelp through an intelligent drying device. Before using the drying device to dry kelp, the fresh kelp needs to be cut and spread flat on the tray to avoid overlapping. Currently, the existing intelligent drying devices on the market can often achieve precise temperature adjustment.

[0005] Traditional drying devices often have fans installed inside. While drying kelp, the fans can make the air in the drying box flow, so that the overall temperature in the drying box is in a relatively uniform state. However, in order not to let the fans block the tray carrying kelp, the fans are generally installed on the side wall or the top of the drying box to work. It is difficult for the fans to work in the center position of the drying box. This design will cause the air circulation in the drying box to be insufficient, resulting in different degrees of drying of kelp and reducing the working effect of the device. Summary of the Invention

[0006] To solve the problem of insufficient air circulation in the drying box proposed in the above background art, the present invention provides a kelp drying and heating device based on intelligent algorithms.

[0007] To achieve the above object, the present invention provides the following technical solution: A kelp drying and heating device based on an intelligent algorithm, including a base, an intelligent drying box is fixedly installed above the base, several fan blades are arranged above the intelligent drying box in a circumferential and regular distribution, a working mechanism and a conversion mechanism for driving the fan blades are arranged in the base, the working mechanism includes a sleeve vertically fixed on the upper surface of the base, a first vertical groove is formed on the surface of the sleeve, the first vertical groove is located on the side close to the intelligent drying box, a threaded rod is rotatably connected in the sleeve, an internally threaded sleeve is sleeved on the threaded rod, the internally threaded sleeve is threadedly connected with the threaded rod, a cross bar is vertically fixed on the surface of the internally threaded sleeve, the cross bar passes through the first vertical groove and extends to the outside of the sleeve, and the cross bar is slidably adapted to the first vertical groove up and down.

[0008] Preferably, two electric doors are installed on the top surface of the intelligent drying box, and a feeding door is located on its side. Semi-circular notches are formed on both of the electric doors. A plurality of trays are slidably connected in the intelligent drying box and are equally spaced. Circular grooves are formed on each of the trays.

[0009] Preferably, a strip-shaped plate is vertically fixed at one end of the cross bar located outside the sleeve. A bearing rod is fixedly connected to the free end of the strip-shaped plate. A rotating shaft is rotatably connected to the free end of the bearing rod. A rotating seat is integrally fixed at the lower end of the rotating shaft. The fan blade is rotatably connected to the side wall of the rotating seat. The two semi-circular notches are adapted to the rotating shaft.

[0010] Preferably, the conversion mechanism includes an annular sleeve rotatably connected to the rotating seat. Two symmetrically distributed L-shaped rods are fixedly connected to the annular sleeve. The free ends of the two L-shaped rods are fixedly connected to the same double-sided toothed ring sleeved on the rotating seat, and the center position of the double-sided toothed ring and the center position of the rotating seat are on the same circle point.

[0011] Preferably, a long rod extending above the intelligent drying box is fixedly connected to the surface of the sleeve. An arc-shaped rack is fixedly connected to the free end of the long rod. The center position of the arc-shaped rack and the center position of the threaded rod are the same circle point. A horizontal groove communicating with the upper end of the first vertical groove is formed on the surface of the sleeve. The cross bar is adapted to the horizontal groove.

[0012] Preferably, a plurality of worm wheels are rotatably connected to the rotating seat. The number of the worm wheels is the same as that of the fan blades and is coaxially fixed. Side plates are fixedly connected to the side wall of the rotating seat in pairs. A worm is rotatably connected between the two side plates. The worm meshes with the worm wheel.

[0013] Preferably, a cross plate is fixed on the rotating seat, a round shaft rotatably connected to the cross plate penetrates through the cross plate, a first bevel gear is sleeved at the lower end of the round shaft, and a second bevel gear coaxially fixed with the worm and meshing with the first bevel gear is arranged outside the worm. An annular sleeve shaft is rotatably connected to the cross plate, the annular sleeve shaft is sleeved on the round shaft, and a third gear meshing with the double-sided gear ring is sleeved at the upper end of the annular sleeve shaft. A ratchet is fixedly connected to the inner wall of the annular sleeve shaft, a ratchet tooth meshing with the ratchet is rotatably connected to the upper end of the round shaft, a spring is fixedly connected to the surface of the ratchet tooth, and the free end of the spring is fixedly connected to the round shaft.

[0014] Preferably, a water storage tank is fixedly installed on the upper surface of the base, a bearing platform is placed in the water storage tank, and a processing mechanism for preprocessing kelp is arranged above the base.

[0015] Preferably, the processing mechanism includes a second vertical groove opened on the sleeve and communicating with one end of the horizontal groove, a rectangular electric telescopic rod extending into the horizontal groove is installed in the side wall of the sleeve, a soft brush is slidably connected to the surface of each fan blade, and blades are installed on one side of two opposite fan blades.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0017] By setting the working mechanism, the fan blades can be driven to move along the vertical direction, so that the fan blades located above the intelligent drying box move into the intelligent drying box and are at the central position of the intelligent drying box;

[0018] Moreover, the working mechanism can also drive the rotating fan blades to move up and down reciprocally at the central position in the intelligent drying box, thereby effectively improving the working effect of the fan blades;

[0019] By setting the conversion mechanism, the working angle of each fan blade can be adjusted. Different inclination angles of the fan blades will result in different wind forces generated during their rotation;

[0020] Since the angle of the fan blades can be adjusted, when all the fan blades are in a horizontal state, the soft brushes are installed on the fan blades, and then the kelp to be cleaned is spread on the bearing platform, sprayed with brine, and the fan blades are driven to move downward along the second vertical groove, so that the soft brushes on the lower surface of the fan blades are attached to the surface of the kelp. At this time, the fan blades are driven to rotate, and the fan blades can drive the soft brushes to rotate on the surface of the kelp to clean the kelp;

[0021] When all the fan blades are in a vertical state, the two blades can be on the same straight line. The cleaned kelp is folded and placed on the bearing platform, and the fan blades and the blades are driven to move downward, so that the blades cut the kelp. The cut kelp is placed on the tray. Description of the Drawings

[0022] Figure 1 Structural schematic diagram of the present invention;

[0023] Figure 2 Cross-sectional structural schematic diagram of the water storage tank in the present invention;

[0024] Figure 3 Structural schematic diagram of the position where the threaded rod is located in the present invention;

[0025] Figure 4 For the present invention Figure 1 Enlarged structural schematic diagram of part A in the present invention;

[0026] Figure 5 For the present invention Figure 1 Enlarged structural schematic diagram of part B in the present invention;

[0027] Figure 6 Structural schematic diagram of the position where the annular sleeve is located in the present invention;

[0028] Figure 7 For the present invention Figure 6 Enlarged structural schematic diagram of part C in the present invention;

[0029] Figure 8 Structural schematic diagram of the position where the annular sleeve shaft is located in the present invention;

[0030] Figure 9 For the present invention Figure 8 Enlarged structural schematic diagram of part D in the present invention;

[0031] Figure 10 For the present invention Figure 2 Enlarged structural schematic diagram of part E in the present invention;

[0032] Figure 11 Structural schematic diagram of the position where the soft brush is located in the present invention;

[0033] Figure 12 Structural schematic diagram of the position where the blade is located in the present invention.

[0034] In the figure: 1, base; 21, intelligent drying box; 22, electric door; 23, semi-circular notch; 24, feeding door; 25, tray; 26, circular groove; 3, fan blade; 41, sleeve; 42, threaded rod; 43, internally threaded sleeve; 44, cross bar; 45, first vertical groove; 46, strip plate; 47, bearing rod; 48, rotating shaft; 49, rotating seat; 51, annular sleeve; 52, L-shaped rod; 53, double-sided gear ring; 54, long rod; 55, arc rack; 56, horizontal groove; 57, worm gear; 58, side plate; 59, worm; 510, cross plate; 511, round shaft; 512, bevel gear one; 513, bevel gear two; 514, annular sleeve shaft; 515, third gear; 516, ratchet; 517, ratchet tooth; 518, spring; 61, second vertical groove; 62, rectangular electric telescopic rod; 63, soft brush; 64, blade; 7, reservoir; 8, bearing platform. Detailed implementation mode

[0035] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0036] As Figures 1 to 2 shown, the present invention provides a kelp drying and heating device based on an intelligent algorithm, including a base 1. An intelligent drying box 21 is fixedly installed above the base 1. Two electric doors 22 are installed on the top surface of the intelligent drying box 21, and a feeding door 24 is installed on the side surface thereof. Semi-circular notches 23 are opened on both of the two electric doors 22. A plurality of trays 25 are slidably connected in the intelligent drying box 21, and circular grooves 26 are opened on each tray 25. A plurality of fan blades 3 are arranged above the intelligent drying box 21 in a circumferential and integral arrangement. A working mechanism and a conversion mechanism for driving the fan blades 3 are arranged in the base 1.

[0037] By providing two electric doors 22, it is convenient for the fan blades 3 to enter the interior of the intelligent drying box 21 from above the intelligent drying box 21 and be located at the central position of the intelligent drying box 21. Among them, the circular grooves 26 on each tray 25 are adapted to the fan blades 3, and the fan blades 3 can move up and down at the central position of the intelligent drying box 21.

[0038] By providing a working mechanism, the fan blades 3 can be driven to move along the vertical direction, so that the fan blades 3 above the intelligent drying box 21 move into the interior of the intelligent drying box 21 and are at the central position of the intelligent drying box 21.

[0039] Moreover, the working mechanism can also drive the fan blade 3 in a rotating state to move up and down reciprocally at the central position inside the intelligent drying box 21, thereby effectively improving the working effect of the fan blade 3;

[0040] By setting the conversion mechanism, the working angle of each fan blade 3 can be adjusted. Different tilting angles of the fan blade 3 will result in different wind forces generated during its rotation.

[0041] As Figure 1 - Figure 4 As shown in the figure, the working mechanism includes a sleeve 41 vertically fixed on the upper surface of the base 1. The surface of the sleeve 41 is provided with a first vertical groove 45 on the side close to the intelligent drying box 21. A threaded rod 42 is rotatably connected inside the sleeve 41. An internally threaded sleeve 43 is sleeved on the threaded rod 42, and the internally threaded sleeve 43 is threadedly connected to the threaded rod 42. A cross bar 44 is vertically fixed on the surface of the internally threaded sleeve 43. The cross bar 44 passes through the first vertical groove 45 and extends to the outside of the sleeve 41, and the cross bar 44 is slidably adapted to the first vertical groove 45 up and down.

[0042] As Figure 1 、 Figure 4 and Figure 5 As shown in the figure, one end of the cross bar 44 located outside the sleeve 41 is vertically fixed with a strip plate 46. The free end of the strip plate 46 is fixedly connected with a bearing rod 47. The free end of the bearing rod 47 is rotatably connected with a rotating shaft 48. The lower end of the rotating shaft 48 is integrally fixed with a rotating seat 49. The fan blade 3 is rotatably connected to the side wall of the rotating seat 49. The two semi-circular notches 23 are adapted to the rotating shaft 48.

[0043] Among them, both the threaded rod 42 and the rotating shaft 48 are driven by different external motors. By opening semi-circular notches 23 on the two electric doors 22, after the rotating shaft 48 extends into the intelligent drying box 21, the two electric doors 22 can be closed, and it does not affect the rotation and up and down movement of the rotating shaft 48.

[0044] As Figure 1 、 Figure 4 and Figure 5 As shown in the figure, the conversion mechanism includes an annular sleeve 51 rotatably connected to the rotating seat 49. Two symmetrically distributed L-shaped rods 52 are fixedly connected to the annular sleeve 51. The free ends of the two L-shaped rods 52 are fixedly connected to the same double-sided gear ring 53 sleeved on the rotating seat 49, and the center position of the double-sided gear ring 53 and the center position of the rotating seat 49 are on the same dot. A long rod 54 extending above the intelligent drying box 21 is fixedly connected to the surface of the sleeve 41. The free end of the long rod 54 is fixedly connected with an arc-shaped rack 55. The center position of the arc-shaped rack 55 and the center position of the threaded rod 42 are the same dot. A horizontal groove 56 communicating with the upper end of the first vertical groove 45 is provided on the surface of the sleeve 41. The cross bar 44 is adapted to the horizontal groove 56.

[0045] Among them, the arc rack 55 can be meshed with the double-sided gear ring 53;

[0046] When the cross bar 44 is located at the upper end of the first vertical groove 45, if the threaded rod 42 rotates clockwise, the inner threaded sleeve 43 and the cross bar 44 will be restricted by the first vertical groove 45 and move downward. If the threaded rod 42 rotates counterclockwise, the threaded rod 42 can drive the inner threaded sleeve 43 and the cross bar 44 to rotate accordingly, so that the cross bar 44 enters the horizontal groove 56 and rotates along the horizontal groove 56;

[0047] At the same time, the cross bar 44 can drive the fan blade 3 to rotate through the strip plate 46, the bearing rod 47, the rotating shaft 48 and the rotating seat 49. When the annular sleeve 51, the L-shaped rod 52 and the fan blade 3 rotate with the rotating seat 49, the double-sided gear ring 53 can gradually be meshed with the arc rack 55, and the double-sided gear ring 53, the L-shaped rod 52 and the annular sleeve 51 can generate self-rotation.

[0048] Such as Figure 7 shown, a plurality of worm wheels 57 are rotatably connected to the rotating seat 49. The number of the worm wheels 57 is the same as that of the fan blades 3 and they are coaxially fixed. Two side plates 58 are fixedly connected to the side wall of the rotating seat 49 and are oppositely arranged. A worm 59 is rotatably connected between the two side plates 58, and the worm 59 is meshed with the worm wheel 57.

[0049] Adopting the above scheme, the angle of the fan blade 3 on the rotating seat 49 can be locked.

[0050] Such as Figure 7 and Figure 8 shown, a cross plate 510 is fixedly connected to the side wall of the rotating seat 49. A round shaft 511 is penetrated through the cross plate 510 and is rotatably connected to the cross plate 510. An umbrella-shaped gear one 512 is sleeved at the lower end of the round shaft 511. An umbrella-shaped gear two 513 which is coaxially fixed with the worm 59 and meshed with the umbrella-shaped gear one 512 is arranged outside the worm 59.

[0051] Such as Figure 8 and Figure 9 shown, an annular sleeve shaft 514 is rotatably connected to the cross plate 510. The annular sleeve shaft 514 is sleeved on the round shaft 511, and a third gear 515 which is meshed with the double-sided gear ring 53 is sleeved at the upper end of the annular sleeve shaft 514. A ratchet wheel 516 is fixedly connected to the inner wall of the annular sleeve shaft 514. A ratchet tooth 517 which is meshed with the ratchet wheel 516 is rotatably connected to the upper end of the round shaft 511. A spring 518 is fixedly connected to the surface of the ratchet tooth 517, and the free end of the spring 518 is fixedly connected to the round shaft 511.

[0052] Such as Figure 1 shown, a water storage tank 7 is fixedly installed on the upper surface of the base 1. A bearing platform 8 is placed in the water storage tank 7. A processing mechanism for preprocessing kelp is arranged above the base 1.

[0053] As Figure 10 , Figure 11 and Figure 12 shown, the processing mechanism includes a second vertical groove 61 formed in the sleeve 41 and communicating with one end of the horizontal groove 56. A rectangular electric telescopic rod 62 extending into the horizontal groove 56 is installed inside the side wall of the sleeve 41. A soft brush 63 is slidably connected to the surface of each fan blade 3, and a blade 64 is installed on one side of two opposite fan blades 3.

[0054] Among them, the rectangular electric telescopic rod 62 is used to close the communication state between the horizontal groove 56 and the second vertical groove 61;

[0055] Among them, the soft brush 63 can be directly detached through the chute on the surface of the fan blade 3;

[0056] Since the angle of the fan blade 3 can be adjusted, when all the fan blades 3 are in a horizontal state, the soft brush 63 is installed on the fan blade 3, and the kelp to be cleaned is spread on the carrier 8, sprayed with brine, and the fan blade 3 is driven to move downward along the second vertical groove 61, so that the soft brush 63 on the lower surface of the fan blade 3 fits on the surface of the kelp. At this time, the fan blade 3 is driven to rotate, and the fan blade 3 can drive the soft brush 63 to rotate on the surface of the kelp to clean the kelp;

[0057] When all the fan blades 3 are in a vertical state, the two blades 64 can be on the same straight line. The cleaned kelp is folded and placed on the carrier 8, and the fan blade 3 and the blade 64 are driven to move downward, so that the blade 64 cuts the kelp, and the cut kelp is placed on the tray 25.

[0058] The working principle of the present invention:

[0059] When it is necessary to dry the washed and cut kelp, first spread the processed kelp on the tray 25, then close the feeding door 24 and open the electric door 22 at the same time;

[0060] At this time, the fan blade 3 is directly above the intelligent drying box 21. The external motor drives the threaded rod 42 to rotate. The threaded rod 42 can drive the cross bar 44 to move up and down along the first vertical groove 45 through the internal thread sleeve 43. The cross bar 44 can drive the fan blade 3 to move up and down through the strip plate 46, the bearing rod 47, the rotating shaft 48 and the rotating seat 49, so that the fan blade 3 moves up and down inside the intelligent drying box 21 after entering the intelligent drying box 21;

[0061] At the same time, another motor drives the rotating shaft 48 to rotate. The rotating shaft 48 can drive the fan blade 3 to rotate through the rotating seat 49, so that the fan blade 3 can move up and down reciprocally at the center position of the intelligent drying box 21 in a rotating state;

[0062] When it is necessary to adjust the working angle of the fan blade 3, drive the cross bar 44 upward to the top of the first vertical groove 45. If the threaded rod 42 rotates clockwise, the inner threaded sleeve 43 and the cross bar 44 will be restricted by the first vertical groove 45 and move downward. If the threaded rod 42 rotates counterclockwise, the threaded rod 42 can drive the inner threaded sleeve 43 and the cross bar 44 to rotate accordingly, so that the cross bar 44 enters the horizontal groove 56 and rotates along the horizontal groove 56;

[0063] At the same time, the cross bar 44 can drive the fan blade 3 to rotate accordingly through the strip plate 46, the bearing rod 47, the rotating shaft 48 and the rotating seat 49. When the annular sleeve 51, the L-shaped rod 52 and the fan blade 3 rotate with the rotating seat 49, the double-sided gear ring 53 can gradually mesh with the arc-shaped rack 55, and cause the double-sided gear ring 53, the L-shaped rod 52 and the annular sleeve 51 to rotate self;

[0064] Then when the cross bar 44 swings back and forth in the horizontal groove 56, the cross bar 44 can drive the fan blade 3 to swing back and forth through the strip plate 46, the bearing rod 47, the rotating shaft 48 and the rotating seat 49. At this time, the double-sided gear ring 53 will always be in a meshed state with the arc-shaped rack 55, and while the double-sided gear ring 53 swings reciprocally following the rotating seat 49, it will also be restricted by the arc-shaped rack 55 and rotate self. While the double-sided gear ring 53 rotates reciprocally, it can drive the third gear 515 to rotate reciprocally accordingly. The third gear 515 can drive the ratchet wheel 516 to rotate reciprocally through the long rod 54, but the ratchet wheel 516 can only drive the round shaft 511 to rotate counterclockwise through the ratchet teeth 517. The round shaft 511 can drive the bevel gear one 512 sleeved on its lower end to rotate accordingly. The bevel gear one 512 can drive the bevel gear two 513 meshed with it to rotate accordingly. The bevel gear two 513 drives the worm 59 to rotate. The worm 59 drives the worm wheel 57 to rotate. The worm wheel 57 drives the fan blade 3 fixed coaxially with it to rotate, so that the angle of the fan blade 3 changes;

[0065] When it is necessary to clean the kelp, adjust the fan blade 3 to a horizontal state (as Figure 11 shown), and then drive the cross bar 44 to slide along the horizontal groove 56 to the upper end of the second vertical groove 61. At this time, the horizontal fan blade 3 will move to the upper part of the water storage tank 7 accordingly. When the cross bar 44 moves along the horizontal groove 56 to the upper end of the second vertical groove 61, the rectangular electric telescopic rod 62 needs to descend into the side wall of the sleeve 41 so that the cross bar 44 can smoothly reach the second vertical groove 61. Then the rectangular electric telescopic rod 62 rises to its original position to seal one end of the horizontal groove 56 close to the second vertical groove 61;

[0066] At this time, the soft brush 63 is installed on the fan blade 3. Then, the kelp to be cleaned is spread on the carrier table 8, and brine is sprayed. The fan blade 3 is driven to move downward along the second vertical groove 61, so that the soft brush 63 on the lower surface of the fan blade 3 fits on the surface of the kelp. At this time, the fan blade 3 is driven to rotate, and the fan blade 3 can drive the soft brush 63 to rotate on the surface of the kelp to clean the kelp;

[0067] When the cutting work of the kelp is required, the fan blade 3 is adjusted to a vertical state, and the two blades 64 can be on the same straight line. The cleaned kelp is folded and placed on the carrier table 8. The fan blade 3 and the blades 64 are driven to move downward, so that the blades 64 cut off the kelp. The cut kelp is placed on the tray 25.

[0068] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.

[0069] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A kelp drying and heating device based on an intelligent algorithm, characterized in that: It includes a base (1), above which an intelligent drying box (21) is fixedly installed. Above the intelligent drying box (21), there are several fan blades (3) arranged in a circumferential and regular array. Inside the base (1), there is a working mechanism and a conversion mechanism for driving the fan blades (3). The working mechanism includes a sleeve (41) vertically fixed on the upper surface of the base (1). On the surface of the sleeve (41), there is a first vertical groove (45) located on the side close to the intelligent drying box (21). Inside the sleeve (41), a threaded rod (42) is rotatably connected. An internally threaded sleeve (43) is sleeved on the threaded rod (42), and the internally threaded sleeve (43) is threadedly connected to the threaded rod (42). Vertically fixed on the surface of the internally threaded sleeve (43) is a cross bar (44). The cross bar (44) passes through the first vertical groove (45) and extends to the outside of the sleeve (41), and the cross bar (44) is slidably adapted to the first vertical groove (45) up and down.

2. The kelp drying and heating device based on an intelligent algorithm according to claim 1, wherein: On the intelligent drying box (21), there are two electric doors (22) located on its top surface, and a feeding door (24) located on its side surface. On both of the two electric doors (22), there are semicircular notches (23). Inside the intelligent drying box (21), several trays (25) are slidably connected at equal intervals. On each tray (25), there is a circular groove (26).

3. The kelp drying and heat supply device based on intelligent algorithm according to claim 2, wherein: One end of the cross bar (44) located outside the sleeve (41) is vertically fixed with a strip-shaped plate (46). The free end of the strip-shaped plate (46) is fixedly connected with a bearing rod (47). The free end of the bearing rod (47) is rotatably connected with a rotating shaft (48). The lower end of the rotating shaft (48) is integrally fixed with a rotating seat (49). The fan blade (3) is rotatably connected to the side wall of the rotating seat (49). The two semicircular notches (23) are adapted to the rotating shaft (48).

4. The kelp drying and heating device based on an intelligent algorithm according to claim 3, characterized in that: The conversion mechanism includes an annular sleeve (51) rotatably connected to the rotating seat (49). Fixedly connected to the annular sleeve (51) are two symmetrically distributed L-shaped rods (52). The free ends of the two L-shaped rods (52) are fixedly connected to the same double-sided gear ring (53) sleeved on the rotating seat (49), and the center position of the double-sided gear ring (53) and the center position of the rotating seat (49) are at the same point.

5. The kelp drying and heat supply device based on intelligent algorithm according to claim 4, wherein: Fixedly connected to the surface of the sleeve (41) is a long rod (54) extending above the intelligent drying box (21). The free end of the long rod (54) is fixedly connected with an arc-shaped rack (55). The center position of the arc-shaped rack (55) and the center position of the threaded rod (42) are at the same point. On the surface of the sleeve (41), there is a horizontal groove (56) communicating with the upper end of the first vertical groove (45). The cross bar (44) is adapted to the horizontal groove (56).

6. The kelp drying and heat supply device based on intelligent algorithm according to claim 5, characterized in that: A number of worm wheels (57) are rotatably connected to the rotating base (49). The number of the worm wheels (57) is the same as that of the fan blades (3) and they are coaxially fixed. Side plates (58) which are opposite to each other in pairs are fixedly connected to the side wall of the rotating base (49). A worm (59) is rotatably connected between the two side plates (58). The worm (59) meshes with the worm wheels (57).

7. The kelp drying and heat supply device based on intelligent algorithm according to claim 6, characterized in that: A cross plate (510) is fixed on the rotating base (49). A round shaft (511) which is rotatably connected to the cross plate (510) penetrates through the cross plate (510). An umbrella-shaped gear one (512) is sleeved on the lower end of the round shaft (511). An umbrella-shaped gear two (513) which is coaxially fixed with the worm (59) and meshes with the umbrella-shaped gear one (512) is arranged outside the worm (59). An annular sleeve shaft (514) is rotatably connected to the cross plate (510). The annular sleeve shaft (514) is sleeved on the round shaft (511). A third gear (515) which meshes with the double-sided toothed ring (53) is sleeved on the upper end of the annular sleeve shaft (514). A ratchet wheel (516) is fixedly connected to the inner wall of the annular sleeve shaft (514). A ratchet tooth (517) which meshes with the ratchet wheel (516) is rotatably connected to the upper end of the round shaft (511). A spring (518) is fixedly connected to the surface of the ratchet tooth (517). The free end of the spring (518) is fixedly connected to the round shaft (511).

8. The kelp drying and heat supply device based on an intelligent algorithm according to claim 1, wherein: A water storage tank (7) is fixedly installed on the upper surface of the base (1). A bearing platform (8) is placed in the water storage tank (7). A processing mechanism for preprocessing kelp is arranged above the base (1).

9. The kelp drying and heating device based on intelligent algorithm according to claim 8, characterized in that: The processing mechanism includes a second vertical groove (61) which is formed in the sleeve (41) and communicates with one end of the horizontal groove (56). A rectangular electric telescopic rod (62) which extends into the horizontal groove (56) is installed in the side wall of the sleeve (41). A soft brush (63) is slidably connected to the surface of each fan blade (3). Blades (64) are installed on one side of two opposite fan blades (3).

Citation Information

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