A can material storage device

By combining slitting, rotating, cutting, and drying components, the problem of raw material settling and clumping in canned food storage devices is solved, enabling dynamic storage and efficient discharge of raw materials, preventing adhesion and clumping, extending storage time, and reducing the risk of spoilage.

CN120717075BActive Publication Date: 2026-01-06FUJIAN QUANZHOU XIDUODUO FOOD
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Patent Information

Application Number
CN202511211399.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-28
Publication Date
2026-01-06
Estimated Expiration
2045-08-28

AI Technical Summary

Technical Problem

In existing canned food raw material storage devices, the raw materials settle and accumulate under gravity, causing viscous materials to harden and clump, affecting the smoothness of material handling and conveying, and easily leading to material waste.

Method used

Design a canned food raw material storage device including a slitting mechanism, a rotary drive mechanism, a cutting mechanism, a flipping drive mechanism, and a drying component. The slitting mechanism cuts the raw material, the rotary drive mechanism promotes the flow of raw materials, the cutting mechanism divides sticky materials, the flipping drive mechanism facilitates material discharge, and the drying component prevents agglomeration. Combined with an inclined soft bottom and a power mechanism, dynamic storage of raw materials is achieved.

Benefits of technology

It effectively prevents raw materials from sticking together and clumping, promotes material flowability, ensures raw material quality, extends storage time, reduces the risk of spoilage, and improves discharge efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the field of storage tanks, and provides a can raw material storage device, which comprises a bottom plate, two vertical plates fixedly connected to the bottom plate, an outer cylinder installed between the two vertical plates through a fixing rod, a storage tank installed in the inner part of the outer cylinder, a soft bottom connected to the bottom of the storage tank, and a feeding and discharging pipe installed on the top of the storage tank; the inner part of the outer cylinder is further installed with a slitting mechanism, the slitting mechanism is located below the storage tank, and the slitting mechanism is provided with a plurality of output ends. The top of the plurality of output ends of the slitting mechanism forms an inclined plane, and a gap is left between the plurality of output ends, so that the output end can lift the soft bottom, and other parts of the soft bottom can fall into the gap, so that the adjacent raw materials are dislocated with each other, the adhered raw materials are separated under the shearing force, and thus the problem of raw material adhesion can be solved.
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Description

Technical Field

[0001] This invention belongs to the field of storage tanks, and particularly relates to a storage device for canned food raw materials. Background Technology

[0002] In the canned food processing industry, the storage of raw materials (especially materials with a certain degree of stickiness or prone to settling and clumping, such as fruit pulp, grains, and beans) is a crucial part of the production process. Traditional large storage tanks or silos are usually simple in structure and are mainly used for static storage.

[0003] However, in practical applications, these storage devices often suffer from sedimentation and clumping problems: raw materials naturally settle and accumulate at the bottom of the tank under gravity. For viscous materials or materials containing sugar or starch, prolonged standing can easily lead to the bottom material hardening and forming hard lumps that are difficult to handle. This not only wastes raw materials but also seriously affects the smoothness of subsequent material handling, conveying, and filling processes.

[0004] To solve the above problems, especially to effectively prevent the sedimentation and clumping of raw materials at the bottom of the can, it is urgent to design a new type of canned food raw material storage device. Summary of the Invention

[0005] The purpose of this invention is to provide a canned food raw material storage device, which aims to solve the technical problem of raw material settling and sticking together in the prior art.

[0006] This invention is implemented as follows: a canned food raw material storage device includes a base plate, two vertical plates fixedly connected to the base plate, an outer cylinder installed between the two vertical plates via a fixing rod, a storage tank installed inside the outer cylinder, the storage tank being a bottomless tank, a soft bottom connected to the bottom of the storage tank, the soft bottom being made of a breathable soft material, such as cloth, breathable plastic, etc., the soft bottom can also be made of an elastic material, and an inlet and outlet pipe installed on the top of the storage tank, with valves installed on the inlet and outlet pipes;

[0007] The outer cylinder is also equipped with a cutting mechanism located below the storage tank. The cutting mechanism has several output ends with gaps between them, and all output ends abut against the bottom of the soft base. The tops of the output ends can form an inclined plane. The cutting mechanism can lift the raw materials in the storage tank to different heights. Under the action of vertical shearing force, the horizontally adhered raw materials will be separated, thus preventing the raw materials from adhering horizontally.

[0008] Further technical solution: The slitting mechanism includes a fixed cylinder, which is fixedly installed inside the outer cylinder. A transverse partition is fixedly connected inside the fixed cylinder, which divides the inside of the fixed cylinder into an installation cavity and an output cavity. Several push rods are slidably connected through the transverse partition, and the push rods are the output ends of the slitting mechanism. The top ends of the several push rods abut against the bottom of the soft bottom.

[0009] The bottom of the mounting cavity is provided with a conical bottom, and a ball head is rotatably installed on the top of the conical bottom. One end of the ball head is fixedly connected to an inclined rocking plate. The bottom ends of several top rods are in contact with the surface of the rocking plate. A central rod is fixedly connected to the center of the top of the ball head. The axis of the central rod is perpendicular to the surface of the rocking plate.

[0010] The slitting mechanism also includes a power mechanism, which is mounted on the transverse partition. The output end of the power mechanism is connected to the central rod. The power mechanism is used to drive the central rod to rotate around the axis of the fixed cylinder. The central rod then drives the rocking plate to sway around the axis of the fixed cylinder. After the central rod has rotated once, the rocking plate will drive the top rod at the same position to complete a lifting process. The top rod then drives the raw material above the top rod to rise and fall through the soft bottom, so that the raw material moves alternately with the adjacent raw materials to complete the shearing operation between them and avoid the raw materials from sticking together laterally.

[0011] Further technical solution: The power mechanism includes a first motor fixedly mounted on the transverse partition, the output shaft of the first motor is fixedly connected to a rotating sleeve, a spherical joint is rotatably mounted on the rotating sleeve, one end of the central rod is inserted into the spherical joint, and the included angle between the axis of the central rod and the axis of the rotating sleeve is an acute angle.

[0012] A further technical solution: The storage tank is rotatably mounted on the outer cylinder, and a rotary drive mechanism is also installed on the fixed rod. The output end of the rotary drive mechanism is connected to the storage tank for transmission, and the rotary drive mechanism is used to drive the storage tank to rotate.

[0013] A further technical solution: The rotary drive mechanism includes a second motor fixedly mounted on a fixed rod, the output shaft of the second motor is fixedly connected to a drive gear, and a gear ring is fixedly connected to the storage tank, the gear ring and the drive gear being meshed together.

[0014] Further technical solution: The feed pipe is rotatably mounted on the storage tank. A cutting mechanism is installed at one end of the feed pipe that extends into the storage tank. The cutting mechanism includes a fixed frame fixedly connected to the feed pipe. A cutting rod is fixedly connected to the fixed frame. The axis of the cutting rod coincides with the axis of the feed pipe. Several cutting plates are fixedly connected to the cutting rod. The cutting plates are thin plate structures to reduce the resistance between the cutting plates and the raw materials.

[0015] A linkage mechanism is also connected between the toothed ring and the upper and lower material tubes. When the storage tank rotates, the linkage mechanism is used to drive the upper and lower material tubes and the cutting mechanism to rotate.

[0016] A further technical solution: The linkage mechanism includes a rotating rod rotatably mounted on a fixed rod, a transmission gear fixedly connected to the rotating rod, the transmission gear meshing with a gear ring, and a second transmission pair drivingly connecting the rotating rod and the upper and lower material tubes.

[0017] A further technical solution: The fixed rod is rotatably mounted on the upright plate, one end of the fixed rod is fixedly connected to the storage tank, and a flipping drive mechanism is also installed on the upright plate. The flipping drive mechanism includes a servo motor fixedly mounted on the upright plate, and a first transmission pair is connected between the output shaft of the servo motor and the fixed rod.

[0018] Further technical solution: A drying assembly is also installed on the fixed cylinder. The drying assembly includes a hot air blower fixedly installed on the side of the fixed cylinder. The air outlet of the hot air blower is connected to an air outlet pipe. One end of the air outlet pipe is connected to the mounting cavity. Each of the several push rods has an air chamber inside. The top of the push rod has an air injection hole connected to the air chamber. The bottom side of the push rod has several air inlet holes connected to the air chamber. The top of the storage tank is equipped with multiple one-way valves.

[0019] A further technical solution: the diameter of the air injection hole is smaller than the diameter of the air chamber.

[0020] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0021] 1. This invention, by setting a slitting mechanism, forms an inclined plane at the top of several output ends of the slitting mechanism, with gaps between the output ends. This causes the output ends to lift the soft bottom, while the other parts of the soft bottom fall into the gaps, causing adjacent raw materials to be misaligned. Under shearing force, the sticky raw materials are separated, thereby solving the problem of raw material adhesion. This device can gently disturb the bottom material during storage, actively break up potential clumps, promote material flowability, and ensure the quality of the raw materials.

[0022] 2. In this invention, by setting a rotary drive mechanism, when several top rods lift the soft bottom to different heights, the rotary drive mechanism drives the raw material to rotate, so that the raw material can move horizontally. When the raw material moves from a high place to a low place, due to the different heights on the same vertical plane, the pressure on the raw material is also different. When the raw material moves horizontally, it will be subject to horizontal resistance. Under radial shear force, the vertically adhered raw material will be separated, thus improving the anti-adhesion effect.

[0023] 3. In this invention, by setting a cutting mechanism, when the slitting mechanism breaks up the horizontally adhered raw materials, the cutting plate will cut the raw materials horizontally. When the top rod lifts the raw materials, the raw materials will move to the side of the cutting plate, and then the cutting plate will cut the vertically adhered raw materials, thus avoiding the raw materials from being unable to be separated horizontally due to being stationary. The slitting mechanism and the cutting mechanism work together to greatly improve the anti-adhesion effect of this invention.

[0024] 4. In this invention, by rotating the fixed rod on the upright plate and setting a flipping drive mechanism, the servo motor is started when discharging the material. The servo motor drives the fixed rod to rotate 180° through the first transmission pair. The fixed rod drives the storage tank to flip 180°, so that the upper and lower material pipes face downwards. Then the valve can be opened to allow the raw material in the storage tank to flow out, making the discharge more convenient.

[0025] 5. In this invention, by setting up a drying component, outside air enters the storage tank each time material is discharged, and the drying component dries the humid air in the raw material. This invention uses bottom-up air supply, which can penetrate the raw material from the bottom, accelerate the evaporation of moisture at the bottom of the tank, prevent the raw material from clumping and growing microorganisms, reduce the risk of raw material spoilage, and extend the storage time of the raw material.

[0026] 6. In this invention, by making the diameter of the air injection hole smaller than the diameter of the air chamber, the flow rate of the hot air suddenly increases during the process of the hot air in the air chamber being blown into the storage tank through the air injection hole. The hot air can then impact the raw material with greater force, which can assist the cutting mechanism in separating the sticky raw materials and improve the anti-sticking effect. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0028] Figure 2 This is a schematic diagram of the overall internal structure of the present invention.

[0029] Figure 3 This is a schematic diagram of the installation cross-section of the cutting mechanism in this invention.

[0030] Figure 4 This is a schematic diagram of the cross-sectional structure of the cutting mechanism in this invention.

[0031] Figure 5 This is a schematic diagram of the slitting mechanism in this invention.

[0032] Figure 6 In this invention Figure 2 Enlarged diagram of point A in the middle.

[0033] Figure 7 In this invention Figure 2 Enlarged diagram of point B in the middle.

[0034] In the attached diagram: 1. Base plate; 2. Vertical plate; 3. Cutting mechanism; 31. Fixed cylinder; 32. Horizontal partition; 33. Conical bottom; 34. Shaking plate; 35. Top rod; 36. Ball head; 37. Center rod; 38. Spherical joint; 39. Rotating sleeve; 310. First motor; 4. Outer cylinder; 5. Tilting drive mechanism; 51. First transmission pair; 52. Servo motor; 6. Fixed rod; 7. Linkage mechanism; 71. Second transmission pair; 72. Rotating rod; 7 3. Transmission gear; 8. Storage tank; 9. Loading and unloading pipes; 10. Check valve; 11. Rotary drive mechanism; 111. Gear ring; 112. Drive gear; 113. Second motor; 12. Drying assembly; 121. Air injection port; 122. Air chamber; 123. Air inlet; 124. Hot air blower; 125. Air outlet pipe; 13. Cutting mechanism; 131. Cutting rod; 132. Cutting plate; 133. Fixing frame; 14. Soft bottom; 15. Valve. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.

[0036] The specific implementation of the present invention will be described in detail below with reference to specific embodiments.

[0037] like Figures 1-7 As shown, this invention provides a canned food raw material storage device, including a base plate 1, two upright plates 2 fixedly connected to the base plate 1, an outer cylinder 4 installed between the two upright plates 2 by a fixing rod 6, a storage tank 8 installed inside the outer cylinder 4, the storage tank 8 being a bottomless tank, a soft bottom 14 connected to the bottom of the storage tank 8, the soft bottom 14 being made of a breathable soft material, such as cloth, breathable plastic, etc., the soft bottom 14 can also be made of an elastic material, and an inlet / outlet pipe 9 is installed on the top of the storage tank 8, with a valve 15 installed on the inlet / outlet pipe 9;

[0038] The outer cylinder 4 is also equipped with a cutting mechanism 3, which is located below the storage tank 8. The cutting mechanism 3 has several output ends with gaps between them, and all of the output ends abut against the bottom of the soft bottom 14. The tops of the output ends can form an inclined plane. The cutting mechanism 3 can lift the raw materials in the storage tank 8 to different heights. Under the action of vertical shearing force, the horizontally adhered raw materials will be separated, thus preventing the raw materials from adhering horizontally.

[0039] Since the tops of several output ends form an inclined plane, the plane of the soft base 14 is also inclined. Furthermore, since the soft base 14 is made of soft material, gaps are left between several output ends, causing the output ends to lift the soft base 14, while other parts of the soft base 14 fall into the gaps, causing adjacent materials to be misaligned. Under shear force, the adhered materials are separated, thereby solving the problem of material adhesion and clumping.

[0040] like Figures 1-5 As shown, this invention provides a canned food raw material storage device. In this embodiment, the cutting mechanism 3 includes a fixed cylinder 31, which is fixedly installed inside the outer cylinder 4. A horizontal partition 32 is fixedly connected inside the fixed cylinder 31, which divides the inside of the fixed cylinder 31 into an installation cavity and an output cavity. Several push rods 35 are slidably connected through the horizontal partition 32. The push rods 35 are the output ends of the cutting mechanism 3, and the top ends of the push rods 35 abut against the bottom of the soft bottom 14.

[0041] The bottom of the mounting cavity is provided with a conical bottom 33, and a ball head 36 is rotatably mounted on the top of the conical bottom 33. One end of the ball head 36 is fixedly connected to an inclined rocking plate 34. The bottom ends of several top rods 35 are in contact with the surface of the rocking plate 34. A central rod 37 is fixedly connected to the center of the top of the ball head 36. The axis of the central rod 37 is perpendicular to the surface of the rocking plate 34.

[0042] The cutting mechanism 3 also includes a power mechanism, which is mounted on the transverse partition 32. The output end of the power mechanism is connected to the central rod 37. The power mechanism is used to drive the central rod 37 to rotate around the axis of the fixed cylinder 31. The central rod 37 drives the rocking plate 34 to sway around the axis of the fixed cylinder 31. After the central rod 37 moves one revolution, the rocking plate 34 will drive the top rod 35 at the same position to complete a lifting process. The top rod 35 drives the raw material above the top rod 35 to rise and fall through the soft bottom 14, so that the raw material moves alternately with the adjacent raw material to complete the shearing operation between them and avoid the raw materials sticking together.

[0043] like Figures 2-5 As shown, this invention provides a canned food raw material storage device. In this embodiment, the power mechanism includes a first motor 310 fixedly installed on a horizontal partition 32. The output shaft of the first motor 310 is fixedly connected to a rotating sleeve 39. A spherical joint 38 is rotatably installed on the rotating sleeve 39. One end of the central rod 37 is inserted into the spherical joint 38. The angle between the axis of the central rod 37 and the axis of the rotating sleeve 39 is an acute angle.

[0044] The first motor 310 drives the rotating sleeve 39 to rotate, and the rotating sleeve 39 drives the central rod 37 to rotate around the axis of the rotating sleeve 39 through the spherical joint 38, thereby causing the central rod 37 to drive the rocker plate 34 to sway.

[0045] like Figures 1-2 and Figure 7 As shown, this invention provides a canned food raw material storage device. In order to improve the anti-sticking effect, in this embodiment, the storage tank 8 is rotatably mounted on the outer cylinder 4, and a rotary drive mechanism 11 is also installed on the fixing rod 6. The output end of the rotary drive mechanism 11 is connected to the storage tank 8 in a transmission manner, and the rotary drive mechanism 11 is used to drive the storage tank 8 to rotate.

[0046] When several push rods 35 lift the soft bottom 14 to different heights, the rotary drive mechanism 11 drives the storage tank 8 to rotate. The storage tank 8 drives the raw material to rotate through the soft bottom 14, so that the raw material can move horizontally. When the raw material moves from a high place (above the push rods 35) to a low place (the gap between the push rods 35), the pressure on the raw material is different due to the different heights on the same vertical plane. When the raw material moves horizontally, it will be subject to horizontal resistance. Under radial shear force, the vertically adhered raw material will be separated, improving the anti-adhesion effect.

[0047] like Figure 7 As shown, this invention provides a canned food raw material storage device. In this embodiment, the rotary drive mechanism 11 includes a second motor 113 fixedly mounted on a fixed rod 6. The output shaft of the second motor 113 is fixedly connected to a drive gear 112. A gear ring 111 is fixedly connected to the storage tank 8. The gear ring 111 and the drive gear 112 are meshed together.

[0048] like Figure 2 and Figures 6-7 As shown, this invention provides a canned food raw material storage device. When the rotary drive mechanism 11 drives the storage tank 8 to rotate, because the inner wall of the storage tank 8 is smooth, under a large inertia, the storage tank 8 and the soft bottom 14 may only move the raw material in contact with it, while the raw material in the center of the storage tank 8 remains stationary, reducing the anti-sticking effect. In this embodiment, the upper and lower feeding pipes 9 are rotatably installed on the storage tank 8. A cutting mechanism 13 is installed at one end of the upper and lower feeding pipes 9 that extends into the storage tank 8. The cutting mechanism 13 includes a fixed frame 133 fixedly connected to the upper and lower feeding pipes 9. A cutting rod 131 is fixedly connected to the fixed frame 133. The axis of the cutting rod 131 coincides with the axis of the upper and lower feeding pipes 9. Several cutting plates 132 are fixedly connected to the cutting rod 131. The cutting plates 132 are thin plate structures to reduce the resistance between the cutting plates 132 and the raw material.

[0049] A linkage mechanism 7 is also connected between the toothed ring 111 and the feed tube 9. When the storage tank 8 rotates, the linkage mechanism 7 is used to drive the feed tube 9 and the cutting mechanism 13 to rotate.

[0050] The upper and lower feed tubes 9 drive the cutting rod 131 and the cutting plate 132 to rotate through the fixed frame 133. The cutting plate 132 will cut the raw material horizontally. When the top rod 35 lifts the raw material, the raw material will move to the side of the cutting plate 132. Then the cutting plate 132 will cut the vertically stuck raw material, avoiding the raw material from being unable to be separated laterally due to being stationary. The slitting mechanism 3 and the cutting mechanism 13 cooperate to greatly improve the anti-sticking effect of the present invention.

[0051] like Figure 2 and Figure 6 As shown, this invention provides a canned food raw material storage device. In this embodiment, the linkage mechanism 7 includes a rotating rod 72 rotatably mounted on a fixed rod 6. A transmission gear 73 is fixedly connected to the rotating rod 72. The transmission gear 73 meshes with a gear ring 111. A second transmission pair 71 is connected between the rotating rod 72 and the upper and lower material pipes 9.

[0052] like Figure 2 and Figure 7 As shown, this invention provides a canned food raw material storage device. Conventional storage tank bottom structures (such as flat bottoms or conical bottoms) always leave some material residue during unloading, especially raw materials adhering to the tank walls and bottoms, causing material loss and cleaning difficulties. In this embodiment, the fixing rod 6 is rotatably mounted on the vertical plate 2, and one end of the fixing rod 6 is fixedly connected to the storage tank 8. The vertical plate 2 is also equipped with a flipping drive mechanism 5, which includes a servo motor 52 fixedly mounted on the vertical plate 2. The output shaft of the servo motor 52 and the fixing rod 6 are connected by a first transmission pair 51.

[0053] During feeding, the feed pipes 9 are oriented upwards, and the raw materials can be added into the storage tank 8 through the feed pipes 9. During discharging, the servo motor 52 is started. The servo motor 52 drives the fixed rod 6 to rotate 180° through the first transmission pair 51. The fixed rod 6 drives the storage tank 8 to rotate 180°, so that the feed pipes 9 are oriented downwards. Then the valve 15 can be opened to allow the raw materials in the storage tank 8 to flow out, making discharging more convenient. At the same time, the inner wall of the storage tank 8 can be tapped. Under the action of gravity, the raw materials adhering to the tank wall and bottom will fall off, thereby avoiding raw material loss and solving the problem of difficult tank cleaning.

[0054] like Figures 1-5As shown, this invention provides a canned food raw material storage device. During storage, moisture released by the material itself or ambient humidity easily accumulates at the bottom of the tank, especially in areas where materials are tightly packed. This humid environment not only accelerates clumping but may also breed microorganisms, increasing the risk of raw material spoilage. Existing drying methods for storage tanks (such as top air supply) often have difficulty effectively penetrating into the dense material at the bottom. Therefore, in this embodiment, a drying assembly 12 is also installed on the fixed cylinder 31. The drying assembly 12 includes a hot air blower 124 fixedly installed on the side of the fixed cylinder 31. The outlet of the hot air blower 124 is connected to an outlet pipe 125. One end of the outlet pipe 125 is connected to the mounting cavity. Each of the several top rods 35 has an air chamber 122 inside. The top of the top rod 35 has an injection hole 121 communicating with the air chamber 122. The bottom side of the top rod 35 has several inlet holes 123 communicating with the air chamber 122. The top of the storage tank 8 is provided with multiple one-way valves 10.

[0055] When the raw materials are damp, the hot air blower 124 is started, and the hot air blows out hot air through the air outlet pipe 125 into the installation cavity. Since the installation cavity is sealed, the hot air can only enter the air chamber 122 through the air inlet 123 and be blown into the storage tank 8 through the air ejection port 121. Without affecting the movement of the cutting mechanism 3, the drying component 12 can dry the damp raw materials. In this invention, the air is blown from bottom to top, which can penetrate the raw materials from the bottom, accelerate the evaporation of water vapor at the bottom of the tank, prevent the raw materials from clumping and growing microorganisms, reduce the risk of spoilage and deterioration of the raw materials, and extend the storage time of the raw materials.

[0056] like Figure 3 As shown, this is a canned food raw material storage device provided by the present invention. In this embodiment, the diameter of the air injection hole 121 is smaller than the diameter of the air chamber 122.

[0057] As the hot air in the air chamber 122 is blown into the storage tank 8 through the air injection hole 121, the diameter of the air injection hole 121 narrows. According to Bernoulli's principle, the flow velocity is high where the cross-section is small, which causes the flow velocity of the hot air to suddenly increase. As a result, the hot air can hit the raw material with greater force, which can assist the cutting mechanism 3 in separating the horizontally adhered raw materials and improve the anti-adhesion effect.

[0058] Working principle:

[0059] Open valve 15 and pour the raw material into storage tank 8 through feed pipe 9. Then start hot air blower 124 to dry the raw material in storage tank 8 to prevent the raw material from getting damp due to high humidity in the outside air.

[0060] Then, the first motor 310 is started periodically. The first motor 310 drives the rocking plate 34 to shake through the rotating sleeve 39 and the central rod 37. The rocking plate 34 pushes several top rods 35 to rise and fall. The several top rods 35 lift the soft bottom 14 and the raw material, so that the raw material is staggered and avoids the raw material from sticking together laterally.

[0061] Simultaneously, the second motor 113 is started, which drives the gear ring 111 and the storage tank 8 to rotate. The storage tank 8 and the soft bottom 14 drive the raw material to rotate. At the same time, the gear ring 111 drives the transmission gear 73 to rotate, and the transmission gear 73 drives the rotating rod 72 to rotate. The rotating rod 72 drives the upper and lower material pipes 9 to rotate through the second transmission pair 71. The upper and lower material pipes 9 drive the cutting plate 132 and the cutting rod 131 to rotate through the fixed frame 133. The cutting rod 131 performs horizontal cutting on the raw material in the storage tank 8 to prevent the raw material from sticking vertically.

[0062] When discharging, start the servo motor 52. The servo motor 52 drives the fixed rod 6 and the storage tank 8 to rotate through the first transmission pair 51, so that the storage tank 8 rotates 180°. Then open the valve 15 to pour the raw material out of the storage tank 8, making the discharge more convenient.

[0063] While discharging the material, the second motor 113 can also be started. The second motor 113 will drive the upper and lower material pipes 9 and the fixed frame 133 to rotate. The fixed frame 133 will break up the raw materials flowing from the upper and lower material pipes 9, separate them from each other, and break up the sticky raw materials again. At the same time, it will prevent the raw materials from being blocked when discharged, which will facilitate subsequent processing.

[0064] After each discharge, if there is still raw material remaining in the storage tank 8, the hot air blower 124 can be started to dry the raw material and extend the storage time of the raw material.

[0065] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

[0066] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A can stock storage device comprising a floor, characterized in that, The bottom plate is fixedly connected with two vertical plates, and an outer cylinder is installed between the two vertical plates through a fixed rod. The inside of the outer cylinder is also installed with a slitting mechanism, which is below the storage tank. The slitting mechanism is provided with a plurality of top rods, and a gap is left between the plurality of top rods. The top of the plurality of top rods can form an inclined plane. The slitting mechanism includes a fixed cylinder, which is fixedly installed inside the outer cylinder.

2. The can stock storage apparatus according to claim 1, characterized by The inside of the fixed cylinder is fixedly connected with a transverse partition plate, which divides the inside of the fixed cylinder into an installation cavity and an output cavity.

3. The can body stock storage apparatus according to claim 1, characterized by The transverse partition plate is penetrated and slidably connected with a plurality of top rods.

4. The can body stock storage apparatus according to claim 3, characterized by The top end of the plurality of top rods is in abutment with the bottom of the soft bottom.

5. The can body stock storage apparatus according to claim 4, characterized by The bottom of the installation cavity is provided with a conical bottom, and the top of the conical bottom is rotatably installed with a ball head. One end of the ball head is fixedly connected with an obliquely arranged rocking plate.

6. The can body stock storage apparatus according to claim 5, characterized by The bottom end of the plurality of top rods is in contact with the surface of the rocking plate. The top center of the ball head is fixedly connected with a center rod, and the axis of the center rod is perpendicular to the surface of the rocking plate. The slitting mechanism also includes a power mechanism, which is installed on the transverse partition plate. The output end of the power mechanism is connected with the center rod. The power mechanism is used to drive the center rod to rotate around the axis of the fixed cylinder. The power mechanism includes a first electric motor fixedly installed on the transverse partition plate. The output shaft of the first electric motor is fixedly connected with a rotating sleeve. The rotating sleeve is rotatably installed with a spherical joint. One end of the center rod is inserted into the inside of the spherical joint. The included angle between the axis of the center rod and the axis of the rotating sleeve is an acute angle. The storage tank is rotatably installed on the outer cylinder. The fixed rod is also installed with a rotary drive mechanism. The output end of the rotary drive mechanism is in transmission connection with the storage tank. The rotary drive mechanism is used to drive the storage tank to rotate. The rotary drive mechanism includes a second electric motor fixedly installed on the fixed rod. The output shaft of the second electric motor is fixedly connected with a drive gear. The storage tank is fixedly connected with a tooth ring. The tooth ring and the drive gear are in meshing connection. The upper and lower feeding pipes are rotatably installed on the storage tank. One end of the upper and lower feeding pipes that extends into the inside of the storage tank is installed with a cutting mechanism. The cutting mechanism includes a fixing frame fixedly connected with the upper and lower feeding pipes. The fixing frame is fixedly connected with a cutting rod. The axis of the cutting rod coincides with the axis of the upper and lower feeding pipes. The cutting rod is fixedly connected with a plurality of cutting plates. The tooth ring and the upper and lower feeding pipes are also connected with a linkage mechanism. When the storage tank rotates, the linkage mechanism is used to drive the upper and lower feeding pipes and the cutting mechanism to rotate. The linkage mechanism includes a rotating rod rotatably installed on the fixed rod. The rotating rod is fixedly connected with a transmission gear. The transmission gear and the tooth ring are in meshing connection. A second transmission pair is in transmission connection between the rotating rod and the upper and lower feeding pipes.

7. The can body stock storage apparatus of claim 1 wherein, The fixed rod is rotatably installed on the vertical plate, one end of the fixed rod is fixedly connected with the storage tank, a turnover driving mechanism is further installed on the vertical plate, the turnover driving mechanism comprises a servo motor fixedly installed on the vertical plate, and a first transmission pair is in transmission connection between an output shaft of the servo motor and the fixed rod.

8. The can body stock storage apparatus of claim 1 wherein, A drying assembly is further installed on the fixed cylinder, the drying assembly comprises a hot air fan fixedly installed on the side surface of the fixed cylinder, an air outlet of the hot air fan is communicated with an air outlet pipe, one end of the air outlet pipe is communicated with the installation cavity, the inside of each of the plurality of jacks is provided with an air cavity, a gas injection hole communicated with the air cavity is formed in the top of the jack, a plurality of air inlet holes communicated with the air cavity are formed in the bottom end side surface of the jack, and a plurality of one-way valves are arranged on the top of the storage tank. The soft bottom is made of a breathable material.

9. The can body stock storage apparatus according to claim 8, characterized by The diameter of the gas injection hole is smaller than the diameter of the air cavity.

Citation Information

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