Food processing equipment
By using finely spaced grinding blades and an inverted conical structure in fruit processing equipment, combined with a filter screen and pressing components, the problem of incomplete grinding of fruit raw materials is solved, thereby improving juice yield and processing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHONGQING CQQJ EQUIP
- Filing Date
- 2025-05-21
- Publication Date
- 2026-05-01
AI Technical Summary
During fruit processing, small-diameter fruit raw materials tend to fall to the bottom of the grinding device and cannot be thoroughly ground, resulting in material waste and reduced processing efficiency.
The rotating shaft driven by a motor is equipped with first and second grinding blades with different spacing and denser vertical spacing. Combined with an inverted conical processing cylinder and a filter screen, the material residue on the filter screen is pressed by a pressing component to ensure that the juice is thoroughly crushed and collected.
It achieves thorough crushing of fruit raw materials, increases juice yield, avoids raw material waste, and improves processing efficiency.
Smart Images

Figure CN224181003U_ABST
Abstract
Description
A food processing equipment Technical Field
[0001] This application relates to the field of food processing technology, and specifically discloses a food processing device. Background Technology
[0002] Food processing refers to the processing of grains, feeds, vegetable oils and sugars, slaughtering and meats, aquatic products, vegetables, fruits and nuts, as well as tubers, dehydrated vegetables and canned vegetables, using agricultural, forestry, animal husbandry and fishery products as raw materials. It is a type of agricultural product processing industry in a broad sense.
[0003] Currently, fruit processing involves turning fruit into juice. The juice is typically consumed directly or further processed into fruit wine, fruit flavorings, and so on. The fruit processing method usually involves placing the fruit into juice-making equipment. The equipment uses a grinding device to crush the whole fruit, producing juice and fruit pulp. The juice is then collected for further use or processing.
[0004] However, during the process of grinding fruit raw materials into juice, small-diameter fruit raw materials tend to fall to the bottom of the grinding device and cannot be ground, resulting in incomplete grinding of the fruit raw materials, waste of fruit raw materials, and reduced juice yield. Therefore, in view of this, the inventor provides a food processing device to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to solve the problem that in traditional fruit processing, fruit raw materials cannot be thoroughly minced, resulting in waste of fruit raw materials and reduced processing efficiency.
[0006] To achieve the above objectives, the basic solution of this utility model provides a food processing device, including a processing cylinder for containing and processing fruit raw materials, a support frame located at the bottom of the processing cylinder, and a grinding mechanism located inside the processing cylinder for grinding the fruit raw materials into juice. The top of the processing cylinder has symmetrically arranged feeding ports for adding fruit raw materials into the processing cylinder, and the bottom of the processing cylinder has symmetrically arranged draining components for discharging the juice obtained from grinding within the processing cylinder. A collecting cylinder connected to the draining components is also located below the processing cylinder, and a transverse support for supporting the collecting cylinder is provided on the side of the support frame. The juice collecting cylinder is equipped with a filter screen, and a pressing component is located above the filter screen inside the juice collecting cylinder. A juice collecting component is also located at the bottom of the juice collecting cylinder. The snagging mechanism includes a motor installed at the top of the processing cylinder, a rotating shaft rotatably connected between the top and bottom of the processing cylinder and coaxially connected to the output end of the motor, a number of first snagging blades evenly arranged around the rotating shaft and located near the feeding port, and a number of second snagging blades evenly arranged around the rotating shaft and located near the end of the juice collecting cylinder. The vertical distance between two adjacent first snagging blades is greater than the vertical distance between two adjacent second snagging blades.
[0007] The principle and effect of this basic scheme are as follows:
[0008] 1. Compared with the prior art, this utility model uses a motor to drive a rotating shaft with first and second grinding blades of different spacing and denser vertical spacing, which facilitates the layered grinding of fruit raw materials inside the processing cylinder, making the grinding more thorough and comprehensive. By setting a juice collection cylinder, it is easy to collect the juice of the ground fruit inside the processing cylinder. By setting a filter screen, the juice of the fruit entering the juice collection cylinder is filtered. At the same time, the pressing component presses the fruit residue filtered on the filter screen, maximizing the juice yield and avoiding waste of raw materials. This solves the problem that in traditional fruit processing grinding, fruit raw materials cannot be thoroughly ground, resulting in waste and reduced processing efficiency.
[0009] Furthermore, the processing cylinder has an inverted conical structure, and both the first and second abrasive blades are fan-shaped. The radius of the second abrasive blade on the rotating shaft decreases progressively from top to bottom. By designing the processing cylinder as an inverted conical structure, it is easier for juice to drain from the cylinder. By progressively decreasing the radius of the second abrasive blade, it is better adapted to the internal structure of the processing cylinder, facilitating installation and use. This ensures that the fruit within the inverted conical structure of the processing cylinder can also be chopped, avoiding blind spots that could affect the chopping efficiency.
[0010] Furthermore, the juice discharge component includes symmetrically arranged juice discharge ports at the bottom of the processing cylinder, a juice discharge pipe sealed between the juice discharge ports and the top of the juice receiving cylinder, and a juice discharge valve on the juice discharge pipe. By providing the juice discharge pipe and valve, the juice inside the processing cylinder can be easily discharged; the structure is simple and the operation is convenient.
[0011] Furthermore, the bottom of the juice drain pipe extends into the inner top of the juice collecting cylinder. The pressing component includes a pressing plate parallel to the filter screen, pneumatic telescopic rods symmetrically arranged between the pressing plate and the inner top surface of the juice collecting cylinder and on both sides of the juice drain pipe, and a controller for controlling the telescopic movement of the pneumatic telescopic rods. The pressing plate is symmetrically provided with through holes that allow the juice drain pipe to pass through. By setting up the pressing plate and pneumatic telescopic rods, it is convenient to press the fruit pulp discharged into the juice collecting cylinder and filtered on the filter screen, so that the juice can be discharged and recycled more thoroughly, improving the utilization rate and yield of fruit raw materials.
[0012] Furthermore, the juice collecting component includes a juice collecting pipe located at the bottom of the juice collecting cylinder and a juice collecting valve installed on the juice collecting pipe. By providing the juice collecting pipe and the juice collecting valve, it is convenient to collect and discharge the juice inside the juice collecting cylinder.
[0013] Furthermore, the bottom of the juice-receiving cylinder is detachably mounted on the horizontal support. By mounting the juice-receiving cylinder on the horizontal support, it is convenient to provide structural support for the juice-receiving cylinder, as well as to facilitate the installation of the juice-receiving tube and the juice-receiving valve. Attached Figure Description
[0014] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0015] Figure 1 shows a schematic diagram of the structure of a food processing equipment proposed in an embodiment of this application. Detailed Implementation
[0016] To further illustrate the technical means and effects adopted by this utility model in order to achieve the intended utility model purpose, the following detailed description of the specific implementation methods, structure, features and effects of this utility model is provided in conjunction with the accompanying drawings and preferred embodiments.
[0017] The reference numerals in the accompanying drawings include: processing cylinder 1, support frame 2, feeding port 3, juice collection cylinder 4, horizontal support 5, filter screen 6, motor 7, rotating shaft 8, first agitator blade 9, second agitator blade 10, juice discharge port 11, juice discharge pipe 12, juice discharge valve 13, pressure plate 14, pneumatic telescopic rod 15, juice collection pipe 16, and juice collection valve 17.
[0018] A food processing device, as shown in Figure 1, includes a processing cylinder 1 for containing and processing fruit raw materials, a support frame 2 at the bottom of the processing cylinder 1, and a grinding mechanism inside the processing cylinder 1 for grinding the fruit raw materials into juice. The top of the processing cylinder 1 has symmetrically arranged feeding ports 3 for adding fruit raw materials into the processing cylinder 1, and the bottom of the processing cylinder 1 has symmetrically arranged draining components for discharging the juice obtained from grinding within the processing cylinder 1. A collecting cylinder 4 connected to the draining components is also provided below the processing cylinder 1. The side of the support frame 2 has a transverse support 5 for supporting the collecting cylinder 4, and the collecting cylinder 4 contains filter residue. The inside of the juice collecting cylinder 4 is equipped with a pressing component located above the filter screen 6, and a juice collecting component is also provided at the bottom of the juice collecting cylinder 4. The snagging mechanism includes a motor 7 installed at the top of the processing cylinder 1, a rotating shaft 8 rotatably connected between the top and bottom of the processing cylinder 1 and coaxially connected to the output end of the motor 7, a plurality of first snagging blades 9 evenly arranged around the rotating shaft 8 and located near the end of the feeding port 3, and a plurality of second snagging blades 10 evenly arranged around the rotating shaft 8 and located near the end of the juice collecting cylinder 4. The vertical distance between two adjacent first snagging blades 9 is greater than the vertical distance between two adjacent second snagging blades 10.
[0019] The processing cylinder 1 has an inverted conical structure, and both the first agitator blade 9 and the second agitator blade 10 have a fan-shaped structure. The radius of the second agitator blade 10 on the rotating shaft 8 decreases progressively from top to bottom. The juice discharge component includes a juice discharge port 11 symmetrically arranged at the bottom of the processing cylinder 1, a juice discharge pipe 12 sealingly connected between the juice discharge port 11 and the top of the juice collection cylinder 4, and a juice discharge valve 13 provided on the juice discharge pipe 12. The bottom of the juice discharge pipe 12 extends into the inner top of the juice collection cylinder 4. The pressing component includes a pressing plate 14 parallel to the filter screen 6, pneumatic telescopic rods 15 symmetrically arranged between the pressing plate 14 and the inner top surface of the juice collection cylinder 4 and located on both sides of the juice discharge pipe 12, and a controller for controlling the telescopic movement of the pneumatic telescopic rods 15. The controller includes, but is not limited to, a single-chip microcomputer controller. The pressing plate 14 has symmetrical through holes that allow the juice discharge pipe 12 to pass through.
[0020] The juice-collecting component includes a juice-collecting tube 16 located at the bottom of the juice-collecting cylinder 4 and a juice-collecting valve 17 installed on the juice-collecting tube 16. The bottom of the juice-collecting cylinder 4 is detachably mounted on the horizontal support 5.
[0021] In the specific implementation of this utility model, before adding fruit raw materials into the processing cylinder 1, it is necessary to ensure that the juice discharge valve 13 and the juice collection valve 17 are both closed, the pneumatic telescopic rod 15 is in its original retracted state, and the motor 7 is energized. Then, fruit raw materials are added into the processing cylinder 1. After the fruit raw materials enter the processing cylinder 1, the rotating shaft 8 driven by the motor 7, as well as the first abrasive blade 9 and the second abrasive blade 10, are all rotating at high speed, crushing the fruit raw materials entering from the feeding port 3. After the motor 7 runs for a certain period of time, the fruit raw materials change from a whole fruit state to a juice state of juice and pulp powder. Then, the power supply to motor 7 is stopped, and the juice discharge valve 13 is opened, allowing the juice to flow from the juice discharge pipe 12 into the juice collection cylinder 4. The juice then falls onto the filter screen 6 through the juice collection cylinder 4. The juice is directly filtered and falls into the bottom of the juice collection cylinder 4, while the fruit pulp is filtered onto the upper surface of the filter screen 6. Then, the controller controls the pneumatic telescopic rod 15 to extend and drive the pressing plate 14 to move downward and squeeze it against the filter screen 6, further pressing out the juice from the fruit pulp and allowing it to fall into the bottom of the juice collection cylinder 4 through the filter screen 6. Finally, the juice collection valve 17 is opened, and the juice in the juice collection cylinder 4 is discharged and recycled from the juice collection pipe 16.
[0022] Compared with existing technologies, this invention uses a motor 7 to drive a rotating shaft 8 with first and second grinding blades 9 and 10 arranged at different intervals and with denser vertical spacing. This facilitates the layered grinding of fruit raw materials inside the processing cylinder 1, making the grinding more thorough and comprehensive. The juice collection cylinder 4 facilitates the collection of fruit juice after grinding inside the processing cylinder 1. The filter screen 6 filters the fruit juice entering the juice collection cylinder 4. At the same time, the pressing component presses the fruit residue filtered on the filter screen 6, maximizing the juice yield and avoiding waste of raw materials. This solves the problem that traditional fruit grinding methods cannot thoroughly grind fruit raw materials, resulting in waste and reduced processing efficiency.
[0023] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some modifications or alterations to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.
Claims
1. A food processing apparatus, characterized in that: The system includes a processing cylinder for holding and processing fruit raw materials, a support frame at the bottom of the processing cylinder, and a grinding mechanism inside the processing cylinder for grinding the fruit raw materials into juice. The top of the processing cylinder has symmetrically arranged feeding ports for adding fruit raw materials, and the bottom of the processing cylinder has symmetrically arranged discharge components for discharging the juice obtained from grinding within the processing cylinder. Below the processing cylinder is a collecting cylinder connected to the discharge components. The side of the support frame has a transverse support for supporting the collecting cylinder. A filter screen is installed inside the collecting cylinder. The internal part is equipped with a pressing component located above the filter screen, and a juice collecting component is also provided at the bottom of the juice collecting cylinder. The snagging mechanism includes a motor installed at the top of the processing cylinder, a rotating shaft rotatably connected between the top and bottom of the processing cylinder and coaxially connected to the output end of the motor, a number of first snagging blades evenly arranged around the rotating shaft and located near the feeding port, and a number of second snagging blades evenly arranged around the rotating shaft and located near the end of the juice collecting cylinder. The vertical distance between two adjacent first snagging blades is greater than the vertical distance between two adjacent second snagging blades.
2. A food processing device according to claim 1, characterised in that The processing cylinder has an inverted conical structure, and both the first and second snagging blades are fan-shaped structures. The radius of the second snagging blade on the rotating shaft decreases layer by layer from top to bottom.
3. The food processing equipment according to claim 2, characterized in that, The draining component includes drain ports symmetrically arranged at the bottom of the processing cylinder, a drain pipe sealed between the drain ports and the top of the collecting cylinder, and a drain valve provided on the drain pipe.
4. A food processing device according to claim 3, wherein The bottom of the drain pipe extends into the inner top of the juice collecting cylinder. The pressing component includes a pressing plate parallel to the filter screen, pneumatic telescopic rods symmetrically arranged between the pressing plate and the inner top surface of the juice collecting cylinder and located on both sides of the drain pipe, and a controller for controlling the telescopic movement of the pneumatic telescopic rods. The pressing plate is symmetrically provided with through holes that allow the drain pipe to pass through.
5. A food processing device according to any one of claims 1 to 4, wherein, The juice collecting component includes a juice collecting tube located at the bottom of the juice collecting cylinder and a juice collecting valve installed on the juice collecting tube.
6. A food processing device according to claim 5, wherein, The bottom of the juice-collecting cylinder is detachably mounted on a horizontal support.