Agricultural product processing device

By introducing a combination of a adjustable mixing mechanism and a pneumatic assembly into the agricultural product processing and treatment device, the problems of insufficient mixing uniformity and low degree of automation are solved, and efficient and accurate agricultural product processing are achieved.

CN120094471BActive Publication Date: 2025-08-01HUAIAN FUSHIYUAN FOOD CO LTD
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Patent Information

Application Number
CN202510481232.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2025-08-01
Estimated Expiration
2045-04-17

AI Technical Summary

Technical Problem

The existing agricultural product processing and processing devices have insufficient mixing uniformity, low degree of automation, single stirring method, and cannot accurately mix and dissolve according to the solution type, and the internal components are low, resulting in insufficient operating efficiency.

Method used

A processing and processing device for agricultural products is designed, including a processing chamber, a gas chamber and a power mechanism chamber. The adjustable stirring mechanism is combined with a pneumatic assembly. The adjustable stirring mechanism is driven by a servo motor to rotate and swing in multiple angles, and combined with gas input, to achieve efficient mixing and dissolution.

Benefits of technology

It realizes high-precision and full mixing, stirring and dissolving of agricultural product raw materials, improves the degree of automation and operating efficiency, enhances mechanical performance, and realizes an energy-saving and efficient operating mode.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of agricultural product processing, specifically an agricultural product processing device, which includes an agricultural product processing box. Inside the agricultural product processing box, a processing chamber, an air chamber, and a power mechanism chamber are sequentially separated from top to bottom. In the middle of the processing chamber, an adjustable stirring mechanism is arranged. The adjustable stirring mechanism is arranged in a lifting and swinging manner inside the processing chamber. The bottom of the adjustable stirring mechanism movably passes through the inside of the air chamber and extends into the power mechanism chamber. A power mechanism is arranged inside the power mechanism chamber. The bottom end of the adjustable stirring mechanism is connected to the power mechanism. An air-driven component is arranged inside the air chamber. The middle part of the air-driven component is rotatably connected to a part of the adjustable stirring mechanism that movably passes through the inside of the air chamber. This device has flexible adjustment, can perform various types of high-efficiency stirring, mixing, and dissolving, and operates automatically.
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Description

Technical Field

[0001] The present invention relates to the technical field of agricultural product processing, specifically an agricultural product processing device. Background Art

[0002] In the processing of agricultural products, mixing, dissolving, and stirring are key processes throughout multiple links. Specific application scenarios include:

[0003] Pretreatment stage of raw materials: cleaning and mixing of raw materials, mixing different raw materials (such as grains, fruits, and vegetables) in proportion (example: mixed grain powder); removing impurities through mechanical stirring (example: removing sediment by a drum washing machine); dissolving: extracting active ingredients with solvents (water, ethanol) (example: extraction of tea polyphenols from tea); stirring: accelerating the dissolution rate (example: stirring to promote dissolution during soybean protein extraction);

[0004] Intermediate processing stage: blending and homogenization

[0005] Dissolving: adding auxiliary materials such as sugar, salt, and preservatives (example: syrup blending in fruit juice beverages).

[0006] Mixing: emulsifying the oil - water system (example: high - speed stirring is required for mayonnaise production).

[0007] Stirring: homogenization treatment (example: preventing fat stratification in dairy products).

[0008] Fermentation and reaction

[0009] Stirring: promoting the contact between strains and substrates (example: constant stirring during yogurt fermentation).

[0010] Dissolving: dissolving fermentation substrates (example: preparation of enzyme hydrolysate during starch saccharification).

[0011] Post - treatment stage: concentration and drying

[0012] Stirring: preventing material coking (example: continuous stirring during jam concentration).

[0013] Dissolving: adjusting the concentration of the concentrated solution (example: moisture control during honey processing).

[0014] Forming and packaging

[0015] Mixing: adding stabilizers or pigments (example: mixing colloids before jelly forming).

[0016] Stirring: uniformly dispersing before filling (example: preventing stratification of condiments).

[0017] As can be seen from the above, during the processing of agricultural products, dissolution, mixing, and stirring run through the entire processing process. Therefore, a highly efficient mixing and processing device plays an extremely important role in the production and processing of agricultural products. However, after analyzing some existing such agricultural product processing devices, it can be found that during their operation and use, there are problems such as insufficient mixing uniformity and low automation. When most stirring mechanisms are operating, the stirring method is single, and it is impossible to perform precise mixing, dissolution, and other reactions according to the types of stirring solutions and solvents. Moreover, the linkage degree between the internal components of the stirring mechanism is low, and the operating efficiency of the entire mechanism cannot be fully exerted.

[0018] Therefore, in view of the above existing problems, this technical solution proposes an agricultural product processing device. Summary of the Invention

[0019] The purpose of the present invention is to provide an agricultural product processing device to solve the problems raised in the above background technology.

[0020] To achieve the above purpose, the present invention provides the following technical solutions:

[0021] An agricultural product processing device includes an agricultural product processing box for processing processes such as mixing, stirring, and dissolving agricultural product processing raw materials; a raw material inlet is provided on the top wall of the agricultural product processing box for inputting agricultural product raw materials to be processed.

[0022] Inside the agricultural product processing box, a processing chamber, an air chamber, and a power mechanism chamber are sequentially separated from top to bottom; the processing chamber is connected to the raw material inlet to form a processing space for mixing, stirring, and dissolving agricultural products. In the middle of the processing chamber, an adjustable stirring mechanism is provided. The adjustable stirring mechanism is arranged in a lifting and swinging manner inside the processing chamber for fully and flexibly stirring and mixing the agricultural product raw materials inside the processing chamber in multiple directions and at multiple angles. The bottom of the adjustable stirring mechanism passes through the inside of the air chamber and extends into the power mechanism chamber. A power mechanism is provided inside the power mechanism chamber. The bottom end of the adjustable stirring mechanism is connected to the power mechanism. The power mechanism is used to drive the adjustable stirring mechanism to rotate, swing, and adjust the swinging angle for stirring, etc. The power mechanism includes a servo motor fixedly installed on one side of the bottom of the power mechanism chamber. The vertical output end of the servo motor is connected to a rotating assembly. One side of the rotating assembly is rotationally connected to the adjustable stirring mechanism for driving the adjustable stirring mechanism to rotate. The other side of the rotating assembly is rotationally connected to a lifting assembly through a control member. The end of the lifting assembly is slidably connected to the bottom end of the adjustable stirring mechanism. The lifting assembly is used to controllably drive the adjustable stirring mechanism to swing up and down for stirring, thereby realizing multi-directional and multi-angle high-efficiency processing of the agricultural product raw materials inside the processing chamber.

[0023] Inside the air chamber, a pneumatic component is provided. The middle part of the pneumatic component is rotatably connected to a part of an adjustable stirring mechanism that moves through the inside of the air chamber. While the adjustable stirring mechanism operates in a cyclic lifting motion, it controls the operation of the pneumatic component to continuously input gas into the processing chamber along the inside of the processing chamber for gas dispersion and stirring. The agricultural product raw materials inside the processing chamber are efficiently processed under the dual cooperation of the adjustable stirring mechanism and the pneumatic component.

[0024] Compared with the prior art, the beneficial effects of the present invention are as follows: By sequentially arranging the inside of the agricultural product processing box from top to bottom as a processing chamber, an air chamber, and a power mechanism chamber, and accurately separating them, it ensures the safe operation of each component structure in the corresponding space. At the same time, with the help of the power mechanism inside the power mechanism chamber, it controls the adjustable stirring mechanism in the processing chamber to perform multi-angle rotational stirring, and automatically intakes and inputs gas to the pneumatic component in the air chamber, combining mechanical stirring and pneumatic dissolution to ensure high-precision and sufficient mixing, stirring, and dissolution of the agricultural products inside the processing chamber.

[0025] Through the transmission connection between the power mechanism inside the power mechanism chamber, the pneumatic component in the air chamber, and the adjustable stirring component in the processing chamber, it maintains full linkage between each component. While controlling the smooth operation, it can effectively convert the kinetic energy of the servo motor to achieve an energy-saving and efficient operation mode.

[0026] By setting the upper spherical pendulum and the lower spherical pendulum to be rotationally connected and coordinated, the lifting motion is converted into a swinging motion of angle adjustment. This connection structure is simple and the automation transformation is accurate, which improves the mechanical performance of the device to a certain extent. Description of the Drawings

[0027] Figure 1 It is a schematic diagram of the structure of the first three-dimensional perspective of the partially cut-open agricultural product processing device.

[0028] Figure 2 It is a schematic diagram of the structure of the second three-dimensional perspective of the partially cut-open agricultural product processing device.

[0029] Figure 3 It is a schematic diagram of the front view of the partially cut-open agricultural product processing device.

[0030] Figure 4 It is a schematic diagram of the top view of the partially cut-open agricultural product processing device.

[0031] Figure 5 It is a schematic diagram of the partial structure of the power mechanism in the agricultural product processing device.

[0032] Figure 6 For Figure 1 The enlarged schematic diagram of A in

[0033] Figure 7 is Figure 1 The enlarged structural schematic diagram of B in

[0034] Figure 8 is Figure 1 The enlarged structural schematic diagram of C in

[0035] Figure 9 The distribution structural schematic diagram of the elastic sealing baffle placed in the air inlet channel in the agricultural product processing device.

[0036] Figure 10 The distribution structural schematic diagram of the incomplete bevel gear Ⅳ in the agricultural product processing device.

[0037] Wherein: the agricultural product processing box 10, the raw material inlet 11, the finished product outlet 12, the control panel 13, the processing chamber 14, the air chamber 15, the power mechanism chamber 16, the base 17, the servo motor 18, the bevel gear Ⅰ 19, the bevel gear Ⅱ 20, the bevel gear Ⅲ 21, the incomplete bevel gear Ⅳ 22, the movable bevel gear Ⅴ 23, the connecting shaft 24, the fixed block 25, the lifting swing rod 26, the U-shaped connecting frame 27, the positioning slide rod 28, the sliding limit disk 29, the support rod 30, the driving spur gear disk 31, the driven spur gear disk 32, the transmission belt 33, the stepped groove 34, the stepped piston disk 35, the one-way air inlet hole 36, the limit rotating disk 37, the limit rotating groove 38, the fixed seat 39, the limit cylinder 40, the positioning key 41, the top plate 42, the external air inlet ring 43, the filter screen 44, the air inlet channel 45, the elastic sealing baffle 46, the connecting support rod Ⅰ 47, the L-shaped base block 48, the connecting rod 49, the swing blade 50, the rolling ball 51, the lower connecting plate 52, the arc-shaped chute 53, the lower arc-shaped sliding plate 54, the upper arc-shaped sliding plate 55, the connecting column 56, the communicating cylinder 57, the rotating column 58, the connecting support rod Ⅱ 59, the one-way air outlet hole 60, the main shaft 61. Specific embodiments

[0038] It should be noted that, without conflict, the embodiments in the present invention and the features in the embodiments can be combined with each other.

[0039] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention. In addition, the terms "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first", "second", etc. may explicitly or implicitly include one or more of such features. In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more than two.

[0040] In the description of the present invention, it should be noted that unless otherwise clearly defined and limited, the terms "installed", "connected", "connected to" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood through specific circumstances.

[0041] The present invention will be described in detail below with reference to the drawings and in conjunction with embodiments.

[0042] Please refer to Figures 1 - 4 , an agricultural product processing device, including an agricultural product processing box 10, which is used for processing processes such as mixing, stirring, and dissolving among agricultural product processing raw materials; a raw material inlet 11 is provided on the top wall of the agricultural product processing box 10 for inputting agricultural product raw materials to be processed.

[0043] Inside the agricultural product processing box 10, a processing chamber 14, an air chamber 15, and a power mechanism chamber 16 are sequentially separated from top to bottom; the processing chamber 14 is communicated with the raw material inlet 11 to form a processing space for mixing, stirring, and dissolving agricultural products. In the middle of the processing chamber 14, a regulated stirring mechanism is arranged. The regulated stirring mechanism is arranged in the processing chamber 14 in a lifting and swinging manner, and is used for fully and flexibly stirring and mixing the agricultural product raw materials in the processing chamber 14 in multiple directions and at multiple angles. The bottom of the regulated stirring mechanism movably passes through the inside of the air chamber 15 and extends into the power mechanism chamber 16. A power mechanism is arranged inside the power mechanism chamber 16. The bottom end of the regulated stirring mechanism is connected to the power mechanism. The power mechanism is used to drive the regulated stirring mechanism to rotate, swing, and adjust the swinging angle for stirring, etc. The power mechanism includes a servo motor 18 fixedly installed on one side of the bottom of the power mechanism chamber 16. The vertical output end of the servo motor 18 is connected to a rotating assembly. One side of the rotating assembly is rotationally connected to the regulated stirring mechanism and is used to drive the regulated stirring mechanism to rotate. The other side of the rotating assembly is rotationally connected to a lifting assembly through a control member. The end of the lifting assembly is slidably connected to the bottom end of the regulated stirring mechanism. The lifting assembly is used to controllably drive the regulated stirring mechanism to swing up and down for stirring, thereby realizing the multi-directional and multi-angle high-efficiency processing of the agricultural product raw materials in the processing chamber 14;

[0044] An air-powered assembly is arranged inside the air chamber 15. The middle part of the air-powered assembly is rotationally connected to a part of the regulated stirring mechanism that movably passes through the inside of the air chamber 15. While the regulated stirring mechanism operates in a cyclic lifting motion, the air-powered assembly is controlled to operate, continuously inputting gas into the processing chamber 14 along the inside of the processing chamber 14 for gas dispersion and stirring. The agricultural product raw materials in the processing chamber 14 are efficiently processed under the double cooperation of the regulated stirring mechanism and the air-powered assembly.

[0045] In the embodiment of the present invention, a base 17 for increasing the placement stability of the agricultural product processing box 10 is fixedly installed at the bottom of the agricultural product processing box 10. A finished product outlet 12 is arranged at one place on the side wall of the agricultural product processing box 10;

[0046] At the same time, a control panel 13 is installed on one side of the outer wall of the agricultural product processing box 10. The control panel 13 is electrically connected to the electrical components inside and outside the agricultural product processing box 10 in a wireless or wired manner to ensure that each electrical component can be started and stopped under the control of the control panel 13;

[0047] Refer to Figure 9, a plurality of one-way air outlet holes 60 are evenly formed in the inner bottom wall of the processing chamber 14. The one-way air outlet holes 60 are used to keep the gas inside the air chamber 15 flowing into the processing chamber 14 unidirectionally, while preventing the liquid in the processing chamber 14 from flowing back into the air chamber 15. At the same time, an external intake ring 43 is installed on the upper side of the outer wall of the air chamber 15. A layer of filter screen 44 is arranged inside the external intake ring 43. The filter screen 44 is used to filter the input gas. A plurality of intake channels 45 are connected in a circular and equally spaced manner inside the filter screen 44. The inner ends of the intake channels 45 are connected to one-way intake holes 36 formed in the inner wall of the air chamber 15. The gas filtered by the filter screen 44 is input into the air chamber 15 along the intake channels 45 through the one-way intake holes 36;

[0048] To keep the gas in the one-way intake hole 36 flowing unidirectionally, an elastic sealing baffle 46 is swingably arranged inside the one-way intake hole 36. The elastic sealing baffle 46 in the one-way intake hole 36 opens towards the inside of the air chamber 15. In the free state, the one-way intake hole 36 is in a sealed state;

[0049] It should be noted that since the outside of the external intake ring 43 is directly in contact with the external air, in most cases, the gas input into the air chamber 15 is mostly air. At the same time, to be able to input gas of a certain type, an external intake ring pipe can be installed outside the external intake ring 43, that is, the intake ring pipe is sleeved on the external intake ring 43 to input corresponding special gas. For the structure and specific installation form here, conventional structures can be adopted and will not be elaborated in detail here.

[0050] Among them, for the gas introduced into the processing chamber 14, air, oxygen, carbon dioxide, etc. can generally be selected. By using the small bubbles formed by their dispersion, the contact area between gas and liquid is expanded. Also, according to the type of raw materials for agricultural product processing, appropriate gas can be introduced to ensure gas-liquid mixing and stirring, and at the same time, using the dissolution rate of the gas in the liquid to promote chemical reactions or biological reactions between agricultural product raw materials. That is, the specific gas introduced depends on the actual situation and will not be elaborated here.

[0051] In an example of the present invention, the rotating assembly includes a transmission shaft installed at the output end of the servo motor 18. One side of the transmission shaft is rotationally connected to a group of vertical support rods 30 through a transmission belt 33. The bottom end of the support rod 30 is rotatably connected to the inner wall of the power mechanism chamber 16. The top end of the support rod 30 is installed with a driving spur gear 31. A group of driven spur gears 32 are engaged on one side of the driving spur gear 31. The middle of the driven spur gear 32 is connected to the bottom of the adjustable stirring mechanism. That is, when the servo motor 18 operates, it drives the transmission shaft to rotate. Under the connection of the transmission belt 33, it controls the driving spur gear 31 to rotate, and then drives the driven spur gear 32 to rotate, thereby directly driving the adjustable stirring mechanism to rotate;

[0052] Refer toFigure 5 and Figure 10 , the lifting assembly includes a bevel gear Ⅰ 19 mounted on the transmission shaft. One side of the bevel gear Ⅰ 19 meshes with a bevel gear Ⅱ 20. On the side of the bevel gear Ⅱ 20 away from the bevel gear Ⅰ 19 in the middle, a bevel gear Ⅲ 21 is connected by a coupling. On one side of the bottom of the bevel gear Ⅲ 21, a set of mobile bevel gears Ⅴ 23 designed for lifting are vertically meshed. The bottom of the mobile bevel gear Ⅴ 23 is rotatably connected to a support rod, and the bottom of the support rod is fixed on the inner wall of the power mechanism chamber 16. On the other side of the mobile bevel gear Ⅴ 23, a set of incomplete bevel gears Ⅳ 22 are vertically meshed. When the mobile bevel gear Ⅴ 23 rises to mesh with the bevel gears Ⅲ 21 and the incomplete bevel gears Ⅳ 22 on both sides at the same time, when the transmission shaft rotates, under the transmission of the bevel gear Ⅰ 19, bevel gear Ⅱ 20, coupling, bevel gear Ⅲ 21, and mobile bevel gear Ⅴ 23, the incomplete bevel gear Ⅳ 22 is controlled to rotate. In the middle of the side of the incomplete bevel gear Ⅳ 22 away from the bevel gear Ⅲ 21, there is a connecting shaft 24. The middle of the connecting shaft 24 is fixed by a support sleeve rod. At the end of the connecting shaft 24, there is a fixed block 25. In the middle of the fixed block 25, there is a lifting swing rod 26. At the bottom of the lifting swing rod 26 facing the adjustable stirring mechanism, there is a U-shaped connecting frame 27. The U-shaped connecting frame 27 is longitudinally and limitably slidably connected to the bottom of the adjustable stirring mechanism. When the incomplete bevel gear Ⅳ 22 rotates, it directly controls the rotation of the connecting shaft 24, and then drives the lifting swing rod 26 on the fixed block 25 to swing. Since the incomplete bevel gear Ⅳ 22 adopts a non-full-tooth structure, when the mobile bevel gear Ⅴ 23 contacts the non-tooth area of the incomplete bevel gear Ⅳ 22, the incomplete bevel gear Ⅳ 22 loses the rotational driving force of the mobile bevel gear Ⅴ 23. At this time, under the gravity of the adjustable stirring mechanism, it automatically falls until the mobile bevel gear Ⅴ 23 meshes with the tooth groove area of the incomplete bevel gear Ⅳ 22 again, and then controls the adjustable stirring mechanism to rise again. Thus, the adjustable stirring mechanism is cyclically lifted to perform a swinging stirring up and down;

[0053] Specifically, the middle of the coupling is also supported and positioned by a support sleeve rod. On the inner sides of the two parts at the opening of the U-shaped connecting frame 27, positioning slide rods 28 are symmetrically installed.

[0054] As a preferred embodiment of the present invention, the adjustable stirring mechanism includes a main shaft 61 that passes through the center of the processing chamber 14, air chamber 15, and power mechanism chamber 16 in a lifting and rotating manner. At the bottom of the main shaft 61, there is a sliding limit disk 29. The positioning slide rod 28 is limitably slidably connected in the sliding limit disk 29 to keep the sliding limit disk 29 lifted synchronously when the lifting swing rod 26 swings, and at the same time, it does not affect the normal rotation of the sliding limit disk 29. The middle of the driven spur gear 32 is also fixedly installed on the main shaft 61. That is, when the driving spur gear 31 drives the driven spur gear 32 to rotate, the main shaft 61 is driven to rotate synchronously;

[0055] A fixed seat 39 is sleeved outside the main shaft 61 located on the lower side of the middle part inside the processing chamber 14. The bottom of the fixed seat 39 is fixed on the inner wall of the processing chamber 14. The top of the fixed seat 39 is rotatably connected with a limiting cylinder 40. A plurality of positioning sliding rails are arranged on the inner wall of the limiting cylinder 40 parallel to the axis. A positioning key 41 is installed on the outer wall of the main shaft 61 corresponding to the positioning sliding rails. The positioning key 41 slides along the positioning sliding rails. That is, while the main shaft 61 rotates, it drives the limiting cylinder 40 to rotate synchronously. A top plate 42 is installed at the top of the main shaft 61. A plurality of swing stirring members are arranged at equal intervals in a ring between the limiting cylinder 40 and the top plate 42. The swing stirring members rotate following the rotation of the limiting cylinder 40 and swing at an angle following the lifting and lowering of the main shaft 61, thereby rotating and stirring the agricultural product raw materials in the processing chamber 14 from multiple angles and in multiple directions;

[0056] Refer to Figure 6 , Figure 8 , the swing stirring member includes a connecting rod I 47 and a connecting rod II 59 radially installed outward from the limiting cylinder 40 and the top plate 42. The end of the connecting rod I 47 far from the limiting cylinder 40 is rotatably connected with an L-shaped base block 48. A swing blade 50 is installed on one side of the L-shaped base block 48 far from the connecting rod I 47 through a connecting rod 49. A rotating hole is opened on one side of the top of the L-shaped base block 48. A rotating rod is installed in the rotating hole in a limited rotation manner. A lower connecting plate 52 is installed at the top of the rotating rod. A lower spherical pendulum is connected to the top of the lower connecting plate 52. A connecting column 56 is installed at the top of the lower spherical pendulum through an upper connecting plate. An upper spherical pendulum is installed at the top of the connecting column 56 through the lower connecting plate 52. A communicating cylinder 57 is connected to the top of the upper spherical pendulum through an upper connecting plate. A rotating column 58 is installed on the outer side of the communicating cylinder 57 in a limited rotation manner. One side of the rotating column 58 is fixedly connected with the connecting rod II 59. The upper spherical pendulum and the lower spherical pendulum have the same size and structure and can swing and rotate at multiple angles. That is, when the main shaft 61 lifts and lowers, it drives the top plate 42 to lift and lower synchronously. Then, under the connection of the connecting rod II 59, a downward pressure is applied to the upper spherical pendulum. At this time, under the connection of the connecting column 56 and the swinging and rotating of the upper spherical pendulum and the lower spherical pendulum, a swinging pressure is applied to the L-shaped base block 48. At the same time, in cooperation with the rotational connection between the connecting rod I 47 and the L-shaped base block 48 and the fixed connection between the L-shaped base block 48 and the swing blade 50, the swinging angle of the swing blade 50 is adjusted, so as to control its operating state of angle swing. In cooperation with the rotation around the main shaft 61, the agricultural product raw materials inside the agricultural product processing box 10 are mixed, stirred, and dissolved;

[0057] The upper spherical ornament and the lower spherical ornament have the same size and structure. Here, the lower spherical ornament will be introduced. The lower spherical ornament includes a rolling ball 51 arranged between the lower connecting plate 52 and the upper connecting plate. Four groups of arc-shaped chutes 53 are annularly and equally spaced on the outer wall of the rolling ball 51. On both sides of the top edge of the lower connecting plate 52, two lower arc-shaped sliding plates 54 are symmetrically installed. On both sides of the bottom edge of the upper connecting plate, two upper arc-shaped sliding plates 55 are symmetrically installed. The upper arc-shaped sliding plates 55 and the lower arc-shaped sliding plates 54 are arranged in a relatively staggered manner and are both limitedly slidably connected in the corresponding arc-shaped chutes 53, thereby maintaining the free swing of the rolling ball 51 and further controlling the angle change between the upper and lower sides. Here, by using the sliding connection between the rolling ball 51 and the lower arc-shaped sliding plates 54 and the upper arc-shaped sliding plates 55, the vertical lifting movement of the main shaft 61 can be converted into the swinging movement of the swinging blade 50, so as to make full use of the operating kinetic energy of lifting, swinging, and rotating, and convert it into the efficient processing of agricultural products inside the processing chamber 14.

[0058] As a preferred embodiment of the present invention, refer to Figure 7 , the pneumatic component includes a stepped groove 34 opened at the inner bottom of the air chamber 15. A stepped piston disk 35 is arranged to lift and lower inside the stepped groove 34. The bottom of the stepped piston disk 35 is designed to cooperate with the stepped groove 34. The stepped piston disk 35 is limitedly rotatably sleeved on the main shaft 61. A circumferential limiting rotation groove 38 is opened at the center of the stepped piston disk 35. A limiting rotation disk 37 is installed on the outer wall of the main shaft 61 corresponding to the limiting rotation groove 38. The limiting rotation disk 37 is placed inside the limiting rotation groove 38 to rotate and is in a limiting state in the vertical direction. That is, when the main shaft 61 lifts and lowers, the stepped piston disk 35 is synchronously controlled to move up and down inside the stepped groove 34. At this time, it cooperates with the one-way air inlet hole 36 on the side wall of the air chamber 15 and the one-way air outlet hole 60 on the top wall. When the stepped piston disk 35 descends, the external gas is controlled to enter the air chamber 15. When the stepped piston disk 35 rises, the entered gas is transferred to the processing chamber 14 along the one-way air outlet hole 60, so as to use the lifting of the main shaft 61 to introduce gas into the processing chamber 14 for gas-liquid mixing and stirring;

[0059] The edge of the stepped piston disk 35 is in sliding contact with the inside of the air chamber 15, maintaining the blocking and separation between the upper and lower sides of the stepped piston disk 35. At the same time, the one-way air inlet hole 36 is arranged at a position above the middle inside the air chamber 15, so as to ensure that when the stepped piston disk 35 moves up and down, it can have a sufficient moving stroke to control the input and output of gas.

[0060] The working principle of the present invention is as follows: At the idle part of the device, all the above-mentioned driving components, which refer to power components, electrical components and the adapted power supply, are connected by wires. The electrical connection is completed for the sequential working order among the electrical components. The detailed connection means are well-known techniques in the art. The following mainly introduces the working principle and process, and will not explain the electrical control. During operation, the agricultural product raw materials to be processed are input into the interior of the processing chamber 14 along the raw material inlet 11, and then the servo motor 18 is controlled to start by operating the control panel 13. At this time, under the cooperation of the transmission shaft and the transmission belt 33, the main shaft 61 is controlled to rotate, and then the swing blades 50 inside the processing chamber 14 are driven to rotate, so as to perform operations such as mixing, stirring, and dissolving on the agricultural product raw materials inside the processing chamber 14. At the same time, when the transmission shaft rotates, under the connection of bevel gear I 19, bevel gear II 20, bevel gear III 21, incomplete bevel gear IV 22, movable bevel gear V 23, etc., the lifting swing rod 26 is controlled to swing intermittently. At this time, the positioning slide rod 28 at the end of the lifting swing rod 26 is controlled to drive the sliding limit disc 29 to move up and down cyclically, so as to control the connecting column 56 between the limiting cylinder 40 and the top plate 42 to swing. Then, under the action of the upper ball fitting and the lower ball fitting, the swing blade 50 is driven to swing cyclically, and its angle is adjusted to be in a moving state. Then, with the rotation of the main shaft 61, the raw materials in the processing chamber 14 are stirred by swinging and rotating at multiple angles. At the same time, according to the type of the agricultural product raw materials processed in the processing chamber 14, a suitable gas is selected to communicate with the stepped groove 34. Then, when the main shaft 61 moves up and down, the stepped piston disc 35 is driven to move up and down in the air chamber 15. Then, under the one-way communication structure of the one-way air inlet hole 36 and the one-way air outlet hole 60, the gas is automatically input into the processing chamber 14 to perform gas-liquid mixing processing on the agricultural product raw materials in the processing chamber 14, so as to realize the efficient processing of mixing, stirring, and dissolving the agricultural product raw materials in the processing chamber 14.

[0061] The above has described the preferred embodiments of the present invention in detail, but the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those of ordinary skill in the art, various changes can be made without departing from the gist of the present invention.

Claims

1. An agricultural product processing device, characterized in that, It includes an agricultural product processing box (10) for performing mixing, stirring, and dissolving process treatments on agricultural product processing raw materials; a raw material inlet (11) is provided on the top wall of the agricultural product processing box (10); Inside the agricultural product processing box (10), a processing chamber (14), an air chamber (15), and a power mechanism chamber (16) are sequentially separated from top to bottom; the processing chamber (14) is communicated with the raw material inlet (11) to form a processing space for mixing, stirring, and dissolving agricultural products. An adjustable stirring mechanism is arranged in the middle of the processing chamber (14). The adjustable stirring mechanism is arranged in the processing chamber (14) in a lifting and swinging manner for stirring and mixing the agricultural product raw materials inside the processing chamber (14) in multiple directions and at multiple angles. The bottom of the adjustable stirring mechanism movably passes through the inside of the air chamber (15) and extends into the power mechanism chamber (16). A power mechanism is arranged inside the power mechanism chamber (16). The bottom end of the adjustable stirring mechanism is connected to the power mechanism. The power mechanism is used to drive the adjustable stirring mechanism to rotate, swing, and adjust the swinging angle for stirring. The power mechanism includes a servo motor (18) fixedly installed on one side of the bottom of the power mechanism chamber (16). The vertical output end of the servo motor (18) is connected to a rotating component. One side of the rotating component is rotationally connected to the adjustable stirring mechanism for driving the adjustable stirring mechanism to rotate. The other side of the rotating component is rotationally connected to a lifting component through a control component. The end of the lifting component is slidably connected to the bottom end of the adjustable stirring mechanism; The lifting component includes a bevel gear I (19) installed on a transmission shaft. One side of the bevel gear I (19) meshes with a bevel gear II (20). The middle of the bevel gear II (20) on the side away from the bevel gear I (19) is connected to a bevel gear III (21) through a connecting shaft. One side of the bottom of the bevel gear III (21) is vertically meshed with a set of vertically designed movable bevel gears V (23). The bottom of the movable bevel gear V (23) is rotatably connected to a support rod, and the bottom of the support rod is fixed on the inner wall of the power mechanism chamber (16). The other side of the movable bevel gear V (23) is vertically meshed with a set of incomplete bevel gears IV (22). The middle of the side of the incomplete bevel gear IV (22) away from the bevel gear III (21) is connected to a connecting shaft (24). The middle of the connecting shaft (24) is fixed through a support sleeve rod. A fixed block (25) is installed at the end of the connecting shaft (24). A lifting and swinging rod (26) is installed in the middle of the fixed block (25). A U-shaped connecting frame (27) is installed at the end of the lifting and swinging rod (26) facing the bottom end of the adjustable stirring mechanism. The U-shaped connecting frame (27) is longitudinally limited and slidably connected to the bottom end of the adjustable stirring mechanism; A fixing base (39) is sleeved outside the main shaft (61) located at the lower side of the middle part inside the processing chamber (14). The bottom of the fixing base (39) is fixed on the inner wall of the processing chamber (14). A limiting cylinder (40) is rotatably connected to the top of the fixing base (39). A plurality of positioning slide rails are arranged on the inner wall of the limiting cylinder (40) parallel to the axis. A positioning key (41) is installed on the outer wall of the corresponding main shaft (61). The positioning key (41) slides along the positioning slide rail. A top plate (42) is installed at the top end of the main shaft (61). A plurality of swing stirring members are arranged at equal intervals in a ring between the limiting cylinder (40) and the top plate (42); The swing stirring member includes a connecting support rod I (47) and a connecting support rod II (59) radially installed outward from the limiting cylinder (40) and the top plate (42). The end of the connecting support rod I (47) far from the limiting cylinder (40) is rotatably connected to an L-shaped base block (48). A swing blade (50) is installed on one side of the L-shaped base block (48) far from the connecting support rod I (47) through a connecting rod (49). A rotating hole is formed on one side of the top of the L-shaped base block (48). A rotating rod is limited and rotatably connected inside the rotating hole. A lower connecting plate (52) is installed at the top end of the rotating rod. A lower spherical pendulum is connected to the top of the lower connecting plate (52). A connecting column (56) is installed at the top of the lower spherical pendulum through an upper connecting plate. An upper spherical pendulum is installed at the top of the connecting column (56) through the lower connecting plate (52). A communicating cylinder (57) is connected to the top of the upper spherical pendulum through an upper connecting plate. A rotating column (58) is limited and rotatably connected to the outside of the communicating cylinder (57). One side of the rotating column (58) is fixedly connected to the connecting support rod II (59). The upper spherical pendulum and the lower spherical pendulum have the same size and structure; Among them, the lower spherical pendulum is introduced. The lower spherical pendulum includes a rolling ball (51) arranged between the lower connecting plate (52) and the upper connecting plate. Four groups of arc-shaped chutes (53) are arranged at equal intervals on the circumferential outer wall of the rolling ball (51). Two lower arc-shaped sliding plates (54) are symmetrically installed on both sides of the top edge of the lower connecting plate (52). Two upper arc-shaped sliding plates (55) are symmetrically installed on both sides of the bottom edge of the upper connecting plate. The upper arc-shaped sliding plates (55) and the lower arc-shaped sliding plates (54) are relatively staggered and are all limited and slidably connected in the corresponding arc-shaped chutes (53); A pneumatic component is arranged inside the air chamber (15). The middle part of the pneumatic component is rotatably connected to a part of the adjustable stirring mechanism that movably passes through the inside of the air chamber (15). The adjustable stirring mechanism controls the operation of the pneumatic component while circulating and lifting; The pneumatic component includes a stepped groove (34) formed at the inner bottom of the air chamber (15). A stepped piston disk (35) is arranged to be lifted and lowered inside the stepped groove (34). The bottom of the stepped piston disk (35) is designed to cooperate with the stepped groove (34). The stepped piston disk (35) is sleeved on the main shaft (61) in a limited rotation manner. A circular limit rotation groove (38) is formed at the center of the stepped piston disk (35). A limit rotation disk (37) is installed on the circumferential outer wall of the main shaft (61) corresponding to the limit rotation groove (38). The limit rotation disk (37) is placed inside the limit rotation groove (38) to rotate and is in a limited state in the vertical direction. A plurality of one-way air outlet holes (60) are evenly formed in the inner bottom wall of the processing chamber (14).

2. The agricultural product processing device according to claim 1, characterized in that, A base (17) for increasing the placement stability of the agricultural product processing box (10) is fixedly installed at the bottom of the agricultural product processing box (10). A finished product outlet (12) is arranged at one side of the side wall of the agricultural product processing box (10). A control panel (13) is installed on one side of the outer wall of the agricultural product processing box (10). The control panel (13) is electrically connected to the electrical components inside and outside the agricultural product processing box (10) in a wireless or wired manner.

3. The agricultural product processing device according to claim 2, wherein, An external intake ring (43) is installed on the upper side of the outer wall of the air chamber (15). A filter screen (44) is arranged inside the external intake ring (43). A plurality of intake channels (45) are connected in a ring-shaped and equally spaced manner inside the filter screen (44). The inner ends of the intake channels (45) are connected to one-way intake holes (36) formed on the inner wall of the air chamber (15). An elastic sealing baffle (46) is arranged to swing inside the one-way intake hole (36). The elastic sealing baffle (46) in the one-way intake hole (36) opens towards the inside of the air chamber (15). When in the free state, the one-way intake hole (36) is in a sealed state.

4. The agricultural product processing device according to claim 3, characterized in that, The rotating component includes a transmission shaft installed at the output end of the servo motor (18). One side of the transmission shaft is rotationally connected to a group of vertical support rods (30) through a transmission belt (33). The bottom end of the support rod (30) is rotationally connected to the inner wall of the power mechanism chamber (16). A driving straight gear disk (31) is installed at the top end of the support rod (30). A group of driven straight gear disks (32) are meshed with one side of the driving straight gear disk (31). The middle part of the driven straight gear disk (32) is connected to the bottom of the adjustable stirring mechanism.

5. The agricultural product processing device according to claim 4, characterized in that, The adjustable stirring mechanism includes a main shaft (61) that passes through the centers of the processing chamber (14), the air chamber (15), and the power mechanism chamber (16) in a lifting and rotating manner. A sliding limit disk (29) is installed at the bottom end of the main shaft (61). The positioning slide rod (28) is connected to slide inside the sliding limit disk (29) in a limited manner. The middle part of the driven straight gear disk (32) is also fixedly installed on the main shaft (61).

Citation Information

Patent Citations

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