Digital food processing device for processing plant

By designing a digital food processing device with bump and air-drying mechanism, the problem of uneven drying of grains is solved, uniform air-drying and efficient air-drying are achieved, and the digital transformation needs of food processing plants are met.

CN120488656AInactive Publication Date: 2025-08-15NILEK COUNTY JIAWO AGRI TECH CO LTD
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Patent Information

Application Number
CN202510675314.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, uneven drying of grains leads to inconsistent drying and wetness, and it is prone to mold and rot for a long time.

Method used

A digital food processing device including a bump mechanism and an air-drying mechanism is designed to allow the grain to dry evenly through the bump mechanism, and the air-drying mechanism is used to accelerate the air-drying process to ensure the consistency of dryness and wetness.

Benefits of technology

It achieves uniform air-drying of grains, improves air-drying efficiency, avoids mold and rot, and meets the needs of digital food processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a digital food processing device for a processing plant, and relates to the field of food processing digitization, and the digital food processing device is characterized in that on a mounting box, a jolting mechanism comprises a support frame, a fixed bin is mounted in the mounting box, a crank is rotatably mounted in the fixed bin, and the crank penetrates through the fixed bin and the mounting box; a pair of connecting rods is installed between the cranks, knocking columns are installed on the connecting rods and matched with the supporting frame, and a plurality of first springs are installed on the fixing bin. The grain air-drying device has the advantages that by arranging corresponding mechanisms, grains can be conveniently placed in the supporting frame, so that other mechanisms can conveniently knock the supporting frame, the grains can be conveniently juggled up, the grains can be conveniently air-dried through the air-drying mechanism while being juggled up, the situation that the grains are air-dried unevenly in the air-drying process is avoided, and the grain air-drying efficiency is improved. And meanwhile, the grain air-drying efficiency can be improved, and air-drying in a natural state is not needed.
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Description

Technical Field

[0001] The present invention relates to the field of digital food processing, and in particular to a digital food processing device in a processing plant. Background Art

[0002] The digital transformation of food processing plants is a key trend in the current development of the food industry. It aims to optimize production processes, improve production efficiency, ensure food safety, and achieve more efficient resource management and decision support through digital technologies and tools.

[0003] The food industry faces growing consumer demand, strict food safety regulations, and fierce market competition. Traditional food processing plants rely on manual operations and experience-based decision-making and find it difficult to cope with these challenges. Digital transformation helps companies achieve more efficient, flexible, and safer production operations by introducing advanced technologies and systems.

[0004] At present, in order to preserve agricultural grains for a longer period of time, the grains are usually air-dried. However, the conventional method of drying grains is to lay the grains on a rack for drying. Therefore, during the drying process, only the grains exposed to the air surface can be dried, while the grains covered underneath cannot be fully air-dried. As a result, the dryness and wetness of the grains are inconsistent, which affects the drying of the grains. Over time, the grains will become moldy and rotten. Summary of the Invention

[0005] The purpose of the present invention is to provide a digital food processing device for a processing plant, which solves the problem in the prior art that grains cannot be fully and evenly dried during drying, resulting in inconsistent dryness and wetness of the grains, which will cause mold and rot over a long period of time.

[0006] In order to achieve the above-mentioned object of the invention, the technical solution adopted by the present invention is:

[0007] On the installation box, the bump mechanism includes a support frame, a fixed bin is installed in the installation box, a crank is rotatably installed in the fixed bin, the crank passes through the fixed bin and the installation box, a pair of connecting rods are installed between the cranks, and a knocking column is installed on the connecting rod.

[0008] The installation of the support frame facilitates the placement of grains and the extraction of the support frame from the installation box. The installation of the fixed bin facilitates the installation of corresponding mechanisms therein, thereby facilitating the support. The installation of the crank facilitates the rotation, thereby facilitating the rising or falling of the connecting rod. The installation of the connecting rod facilitates the up and down movement according to the rotation of the crank, thereby facilitating the rising of the knocking column. The installation of the knocking column facilitates the knocking of the support frame, thereby facilitating the shaking of the support frame, which can shake the grains in the support frame.

[0009] As an improvement, the knocking column matches the support frame, and a plurality of first springs are installed on the fixed bin, and the first springs are arranged under the support frame.

[0010] The installation of the first spring facilitates the benefit of buffering, so that when the knocking column knocks the support frame, the buffering knocking force of the first spring will become gentle.

[0011] As an improvement, a pair of sliders are provided in the installation box, a square groove matching the sliders is bored on the installation box, and a slide rod is installed in the square groove.

[0012] The installation of the slider facilitates ensuring the stability of the support frame installation and facilitates matching with the support frame. The installation of the slide bar has a supporting effect, so that the slider can be slidably installed on the slide bar, thereby making the slider more stable when sliding.

[0013] As an improvement, the outer sleeve of the sliding rod is provided with a second spring, the sliding block is slidably mounted on the sliding rod, and a sliding groove matching the support frame is bored on the sliding block.

[0014] The installation of the second spring has the benefit of buffering, which makes it easier to control the force with which the support frame drives the slider to slide on the slide rod, and makes it easier to make the up and down bumping force uniform.

[0015] As an improvement, a first motor is installed on one side of the installation box, and the first motor is connected to the crank.

[0016] The installation of the first motor facilitates the conversion of electrical energy into mechanical energy, and the rotation of the first motor drives the rotation of the crank.

[0017] As an improvement, a drying mechanism is installed on the installation box, and the drying mechanism includes a connecting bin, which is arranged through the installation box, and is provided with a pair of ventilation grooves. A heating wire is installed in the connecting bin, and a pair of rotating rods are rotatably installed on the connecting bin.

[0018] The installation of the connecting bin facilitates support, thereby facilitating the closing of the installation box and the installation of a mechanism for air-drying the grains. The installation of the heating wire facilitates heat dissipation, thereby enabling the stability of the installation box to be elevated. The installation of the rotating rod facilitates rotation, thereby driving the fan blades to rotate through the rotation of the rotating rod.

[0019] As an improvement, a fan blade is installed at one end of the rotating rod, and a second motor is fixedly installed in the connecting compartment.

[0020] The installation of the fan blades facilitates the blowing of air, thereby blowing heat into the support frame to dry the grains. The installation of the second motor facilitates the conversion of electrical energy into mechanical energy, thereby driving the rotation of the synchronous wheel thereon.

[0021] As an improvement, synchronous wheels are respectively installed on the second motor and the rotating rod, and a synchronous belt is installed between the pair of synchronous wheels.

[0022] The installation of the synchronous wheel facilitates the rotation of the synchronous belt, thereby facilitating the synchronous movement of a pair of rotating rods through the transmission of force by the synchronous belt.

[0023] The beneficial effects of the present invention are as follows: the arrangement of the corresponding mechanism makes it easy to place the grains in the support frame, so that other mechanisms facilitate the knocking effect on the support frame, thereby facilitating the lifting of the grains, and at the same time, the drying mechanism facilitates the drying of the grains, so that the grains will not be unevenly dried during the drying process, and at the same time, the efficiency of the grain drying can be improved, and there is no need to dry the grains in a natural state. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a front cross-sectional view of a digital food processing device for a processing plant according to the present invention.

[0025] Figure 2 for Figure 1 Schematic diagram of the structure at point A in the middle.

[0026] In the figure: 1. Installation box; 101. Feeding port; 2. Bumping mechanism; 201. Support frame; 202. Fixed bin; 203. Crank; 204. Connecting rod; 205. Knocking column; 206. First spring; 207. Slider; 208. Sliding rod; 209. Second spring; 210. First motor; 3. Air-drying mechanism; 301. Connecting bin; 302. Heating wire; 303. Rotating rod; 304. Fan blade; 305. Second motor; 306. Synchronous wheel; 307. Synchronous belt. DETAILED DESCRIPTION

[0027] To make the contents of the present invention more clearly understood, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Identical parts are denoted by the same reference numerals. It should be noted that the terms "front," "rear," "left," "right," "up," and "down" used in the following description refer to directions in the accompanying drawings, and the terms "inward" and "outward" refer to directions toward or away from the geometric center of a particular component, respectively.

[0028] like Figure 1 and Figure 2 As shown, on the installation box 1, the shaking mechanism 2 includes a support frame 201, a fixed bin 202 is installed in the installation box 1, a crank 203 is rotatably installed in the fixed bin 202, the crank 203 passes through the fixed bin 202 and the installation box 1, a pair of connecting rods 204 are installed between the cranks 203, and a knocking column 205 is installed on the connecting rod 204.

[0029] The installation of the support frame 201 facilitates the placement of grains and the extraction of the support frame 201 from the installation box 1. The installation of the fixed bin 202 facilitates the installation of the corresponding mechanism therein, thereby facilitating the support. The installation of the crank 203 facilitates the rotation, thereby facilitating the rise or fall of the connecting rod 204. The installation of the connecting rod 204 facilitates the up and down movement according to the rotation of the crank 203, thereby facilitating the rise of the knocking column 205. The installation of the knocking column 205 facilitates the knocking of the support frame 201, thereby facilitating the shaking of the support frame 201, and thus shaking the grains in the support frame 201.

[0030] The knocking column 205 matches the support frame 201 , and a plurality of first springs 206 are installed on the fixed compartment 202 , and the first springs 206 are arranged under the support frame 201 .

[0031] The installation of the first spring 206 facilitates buffering, so that when the knocking column 205 knocks the support frame 201, the buffering knocking force of the first spring 206 becomes gentle.

[0032] A pair of sliders 207 are provided in the installation box 1 . A square groove matching the sliders 207 is bored on the installation box 1 , and a slide rod 208 is installed in the square groove.

[0033] The installation of the slider 207 facilitates the stability of the installation of the support frame 201 and facilitates matching with the support frame 201. The installation of the slide bar 208 has a supporting effect, so that the slider 207 can be slidably installed on the slide bar 208, thereby making the slider 207 more stable when sliding.

[0034] The sliding rod 208 is provided with a second spring 209 on its outer sleeve. The slider 207 is slidably mounted on the sliding rod 208 . The slider 207 is provided with a sliding groove that matches the support frame 201 .

[0035] The installation of the second spring 209 has the benefit of buffering, which makes it easier to control the force with which the support frame 201 drives the slider 207 to slide on the slide rod 208, and makes the up and down bumping force uniform.

[0036] A first motor 210 is installed on one side of the installation box 1 , and the first motor 210 is connected to the crank 203 .

[0037] The installation of the first motor 210 facilitates the conversion of electrical energy into mechanical energy, and the rotation of the first motor 210 drives the rotation of the crank 203 .

[0038] like Figure 1 and Figure 2 As shown, a drying mechanism 3 is installed on the installation box 1, and the drying mechanism 3 includes a connecting chamber 301. The connecting chamber 301 is set through the installation box 1, and a pair of ventilation grooves are provided on the connecting chamber 301. A heating wire 302 is installed in the connecting chamber 301, and a pair of rotating rods 303 are rotatably installed on the connecting chamber 301.

[0039] The installation of the connecting bin 301 facilitates support, thereby facilitating the closing of the installation box 1 and the installation of a mechanism for air-drying the grains. The installation of the heating wire 302 facilitates heat dissipation, thereby enabling the stability of the installation box 1 to be elevated. The installation of the rotating rod 303 facilitates rotation, thereby driving the fan blades 304 to rotate through the rotation of the rotating rod 303.

[0040] A fan blade 304 is installed at one end of the rotating rod 303, and a second motor 305 is fixedly installed in the connecting compartment 301.

[0041] The installation of the fan blades 304 facilitates the blowing of air, thereby blowing heat into the support frame 201 to dry the grains. The installation of the second motor 305 facilitates the conversion of electrical energy into mechanical energy, thereby driving the rotation of the synchronous wheel 306 thereon.

[0042] Synchronous wheels 306 are respectively installed on the second motor 305 and the rotating rod 303 , and a synchronous belt 307 is installed between the pair of synchronous wheels 306 .

[0043] The installation of the synchronous wheel 306 facilitates the rotation of the synchronous belt 307, thereby facilitating the synchronous movement of the pair of rotating rods 303 through the transmission of force by the synchronous belt 307.

[0044] During use, grains are poured into the support frame 201 through the discharge port 101, and then the heating wire 302 is heated. During the heating process, the heating wire 302 can start the first motor 210 to drive the crank 203 to rotate, and the crank 203 will drive the connecting rod 204 to move up and down repeatedly during the rotation, so that the movement of the connecting rod 204 will drive the knocking column 205 to continuously knock the bottom of the support frame 201, and the grains in the support frame 201 will be shaken up during the knocking process. Since a first spring 206 is provided under the support frame 201, the amplitude of the shaking of the support frame 201 will not shake the grains out of the support frame 201.

[0045] When the support frame 201 is bumped, the engagement with the slider 207 will drive the slider 207 to slide on the slide bar 208. During the sliding process, the second spring 209 can play a buffering role, so that the force of the support frame 201 is more uniform when it is bumped. In the process of the grain being bumped, the second motor 305 can be started to rotate, and the rotation of the second motor 305 drives the rotation of the synchronous wheel 306 thereon, so that the synchronous wheel 306 drives the synchronous belt 307 to transmit the rotational force, so that the pair of rotating rods 303 can be rotated synchronously, thereby driving the pair of fan blades 304 to rotate and blow air, and the heating of the electric heating wire 302 will increase the temperature in the installation box 1, so that when the grain is bumped, the blowing of the fan blades 304 will accelerate the drying speed of the grain and make the degree of drying of the grain more uniform. When the support frame 201 is taken out of the installation box 1, the support frame 201 can be pulled to separate the support frame 201 from the slider 207.

[0046] 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 shall be included in the scope of protection of the present invention.

Claims

1. A digital food processing device for a processing plant, characterized in that: include: An installation box (1), wherein a pair of feed openings (101) are installed on the installation box (1), and a pair of heat dissipation nets are provided on the installation box (1); A jolting mechanism (2) is installed on the installation box (1), the jolting mechanism (2) comprising a support frame (201), a fixed bin (202) installed in the installation box (1), a crank (203) rotatably installed in the fixed bin (202), the crank (203) passing through the fixed bin (202) and the installation box (1), a pair of connecting rods (204) installed between the cranks (203), and a knocking column (205) installed on the connecting rod (204). The air drying mechanism (3) is installed on the installation box (1).

2. A digital food processing device for a processing plant according to claim 1, characterized in that: The knocking column (205) matches the support frame (201), and a plurality of first springs (206) are installed on the fixed bin (202), and the first springs (206) are arranged under the support frame (201).

3. The digital food processing device for a processing plant according to claim 2, characterized in that: A pair of sliders (207) are provided in the installation box (1), and a square groove matching the sliders (207) is cut on the installation box (1), and a slide rod (208) is installed in the square groove.

4. The digital food processing device for a processing plant according to claim 3, characterized in that: The sliding rod (208) is provided with a second spring (209) on its outer sleeve, and the sliding block (207) is slidably mounted on the sliding rod (208). The sliding block (207) is provided with a sliding groove that matches the support frame (201).

5. The digital food processing device for a processing plant according to claim 1, characterized in that: A first motor (210) is installed on one side of the installation box (1), and the first motor (210) is connected to the crank (203).

6. The digital food processing device for a processing plant according to claim 1, characterized in that: The air-drying mechanism (3) comprises a connecting chamber (301), the connecting chamber (301) is arranged to pass through the installation box (1), a pair of ventilation grooves are provided on the connecting chamber (301), a heating wire (302) is installed in the connecting chamber (301), and a pair of rotating rods (303) are rotatably installed on the connecting chamber (301).

7. The digital food processing device for a processing plant according to claim 5, characterized in that: A fan blade (304) is installed at one end of the rotating rod (303), and a second motor (305) is fixedly installed in the connecting compartment (301).

8. The digital food processing device for a processing plant according to claim 6, characterized in that: Synchronous wheels (306) are respectively installed on the second motor (305) and the rotating rod (303), and a synchronous belt (307) is installed between the pair of synchronous wheels (306).