A cell wall breaking machine

By introducing a filter tank and a rotating filter screen into the blender, the problems of low blending efficiency and noticeable residue in the slurry are solved, achieving efficient filtration of the slurry and automatic separation of the filter residue, thus improving the blender's performance.

CN224344773UActive Publication Date: 2026-06-12NINGBO FOTILE KITCHEN WARE CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGBO FOTILE KITCHEN WARE CO LTD
Filing Date
2025-05-23
Publication Date
2026-06-12

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    Figure CN224344773U_ABST
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Abstract

The utility model relates to a kind of wall breaking machines, including: cabinet, its inside has the working cavity for wall breaking food material and the slurry made;For conveying slurry pipeline, its inlet end is communicated with the working cavity;Filtering tank, it is located outside the working cavity, and filtering tank inside has and is independently arranged and the top of first tank cavity, second tank cavity of side by side, the first tank cavity is equipped with liquid outlet;Filter screen, with the first mesh surface of multiple filter holes is located in the first tank cavity, the outlet end below of the pipeline, for receiving slurry;And the filter screen can be driven by the drive mechanism in succession and be turned over to second tank cavity by the top of first tank cavity, the top of second tank cavity opening, at this time, the first mesh surface of the filter screen faces down. Compared with prior art, the wall breaking machine of the utility model can realize filter residue.
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Description

Technical Field

[0001] This utility model belongs to the field of kitchen appliance technology, specifically relating to a blender. Background Technology

[0002] Most blenders on the market currently use the shearing force of high-speed rotating blades to break down the cell walls of food, crushing, mixing, and stirring the food into a smooth paste or juice. Examples include the structures disclosed in Chinese invention patent applications CN202411094725.1 (application number CN118648809A, publication number CN118648809A) and CN201610708148.X (application number CN106073448B), which both describe a high-speed blender.

[0003] Existing blenders suffer from low blending efficiency and insufficient blending, resulting in a noticeable sludge-like texture in the blended liquid, which affects the taste. Utility Model Content

[0004] The technical problem to be solved by this utility model is to provide a wall-breaking machine that can filter residue, in light of the current state of the technology.

[0005] The technical solution adopted by this utility model to solve the above-mentioned technical problems is: a blender, comprising:

[0006] The casing has an internal working chamber for breaking down ingredients to produce a slurry.

[0007] The pipeline used for conveying slurry has its inlet end connected to the working chamber;

[0008] Its characteristic is that it also includes:

[0009] A filter tank is located outside the working chamber, and the filter tank has a first chamber and a second chamber arranged side by side and open at the top. The first chamber is provided with a liquid outlet.

[0010] The filter screen, with its first mesh face upward, is located inside the first cavity and below the outlet end of the pipeline, and is used to collect slurry. Under the drive of the driving mechanism, the filter screen can be flipped through the top opening of the first cavity and the top opening of the second cavity in sequence to enter the second cavity, at which time the first mesh face downward.

[0011] During the slurry discharge process, when filtration of the slurry is required, the filter screen can be driven into the first chamber. At this time, the slurry output from the pipeline outlet passes through the filter screen and enters the first chamber, then exits from the outlet. Filter residue accumulates on the first mesh surface of the filter screen. After slurry discharge is complete, the filter screen is driven into the second chamber, with the first mesh surface facing downwards. The filter residue on the first mesh surface can detach from the filter screen under its own gravity and enter the second chamber, thus completing the slurry filtration and filter residue collection. If slurry filtration is not required, the filter screen can be driven into the second chamber, and the slurry output from the pipeline outlet directly enters the first chamber and then exits from the outlet.

[0012] Preferably, the filter screen includes an arc-shaped mesh plate, and the concave arc-shaped surface on one side of the mesh plate is the first mesh surface of the filter screen. The structural design of the arc-shaped mesh plate is more conducive to receiving slurry and filter residue.

[0013] Preferably, the first and second slots are arranged left and right, and the arc-shaped mesh plate has two arc-shaped sides arranged one in front of the other and straight edges connecting the corresponding ends of the two arc-shaped sides, with the two straight edges arranged left and right. Before and after flipping, the two straight edges can maintain a left-right state, and the two arc-shaped sides can maintain a front-back state, with only the orientation of the first mesh surface changing.

[0014] Preferably, the filter screen further includes two end plates, which are respectively disposed opposite to each other on both sides of the arc-shaped mesh plate to form an upward-opening concave cavity with the arc-shaped mesh plate.

[0015] Furthermore, one of the two straight edges is rotatably connected between the tops of the first and second slots via a rotating shaft extending forward and backward. The driving mechanism acts on the rotating shaft to drive the rotating shaft to rotate around its own axis.

[0016] The aforementioned drive mechanism can be an existing motor, etc.

[0017] Preferably, the filter also includes a stirring head disposed on the first mesh surface of the filter screen and capable of rotating under the drive of a power component. The stirring head is designed to aid filtration and promote the passage of the filtrate through the filter pores.

[0018] In the above solutions, to prevent filter residue from remaining on the filter screen, a spraying component is preferably included, positioned above the filter tank, for spraying water onto the filter tank. The sprayed water can rinse the filter screen, washing off the filter residue. Simultaneously, the sprayed water can also spray and clean the inner walls of the first and second tank cavities.

[0019] Preferably, the first and second cavities are arranged horizontally. The spray element includes an arc-shaped spray plate that gradually arches upwards from the left and right sides to the center. The lower surface of the arc-shaped spray plate has multiple downward-facing spray holes for water spraying. The spray holes on the left side of the arc-shaped spray plate are located above the first cavity, and the spray holes on the right side of the arc-shaped spray plate are located above the second cavity. The arc-shaped spray plate design does not affect the rotation of the filter screen and ensures that the spray water can reach the first and second cavities.

[0020] Preferably, the outlet end of the pipe faces downward and opens into the arc-shaped spray plate.

[0021] In the above solutions, the blender is an embedded blender that can be installed in a cabinet, and the bottom of the second chamber is provided with a slag discharge port. Of course, in addition, the blender can also be a countertop machine placed on a countertop.

[0022] Compared with existing technologies, the advantages of this invention are as follows: Through the design of the filter tank and filter screen, during the slurry discharge process, when filtration of the slurry is required, the filter screen can be driven into the first tank cavity. At this time, the slurry output from the pipeline outlet enters the first tank cavity after being filtered by the filter screen, and then exits from the outlet. Filter residue accumulates on the first mesh surface of the filter screen. After slurry discharge is completed, the filter screen is driven into the second tank cavity, with the first mesh surface facing downwards. The filter residue on the first mesh surface can detach from the filter screen under its own gravity and enter the second tank cavity, thus completing the slurry filtration and filter residue collection. If slurry filtration is not required, the filter screen can be driven into the second tank cavity, and the slurry output from the pipeline outlet directly enters the first tank cavity and then exits from the outlet. Attached Figure Description

[0023] Figure 1 This is a partial structural schematic diagram of an embodiment of the present utility model;

[0024] Figure 2 This is a cross-sectional view of a portion of the structure of an embodiment of the present utility model (the cross-section is a vertical plane extending left and right, with the filter screen located inside the first groove cavity);

[0025] Figure 3 for Figure 2 A cross-sectional view of the filter screen flipped inside the second cavity;

[0026] Figure 4 This is a cross-sectional view of a portion of the structure of an embodiment of the present invention (the cross-section is a vertical plane extending front to back, with the filter screen located inside the second cavity). Detailed Implementation

[0027] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.

[0028] like Figures 1-4 As shown, this is a preferred embodiment of a blender of the present invention. The blender is an embedded blender that can be installed in a cabinet and includes: a housing 1, a filter tank 2, a filter screen 3, pipelines, a stirring unit 7, and a spraying unit 8.

[0029] The casing 1 has a working chamber 10 for making a slurry by breaking down food ingredients. Specifically, as with the prior art, the working chamber 10 has a breaking blade and a power mechanism (such as a motor) for driving the breaking blade to rotate.

[0030] The inlet end of the pipeline is connected to the working chamber 10 for outputting slurry.

[0031] The filter tank 2 is located beside the working chamber 10, and the filter tank 2 has a first chamber 21 and a second chamber 22 arranged side by side on the left and right, both with open tops. The bottom of the first chamber 21 is provided with a liquid outlet 211, and the bottom of the second chamber 22 is provided with a slag outlet 221. The cross-section of the first chamber 21 and the second chamber 22 is rectangular, and the first chamber 21 and the second chamber 22 are separated by vertical partitions 23 extending from front to back.

[0032] A spray element 8 is positioned above the filter tank 2 and is used to spray water into the filter tank 2. Specifically, the spray element 8 includes an arc-shaped spray plate 81 that gradually arches upward from the left and right sides to the center. The lower surface of the arc-shaped spray plate 81 is provided with a plurality of downward-facing spray holes 82 for supplying water. The spray holes on the left side of the arc-shaped spray plate 81 are located above the first tank cavity 21, and the spray holes on the right side of the arc-shaped spray plate 81 are located above the second tank cavity 22. The outlet end 4 of the pipeline faces downward and opens into the arc-shaped spray plate 81, and is located directly above the first tank cavity 21.

[0033] like Figure 2As shown, the filter screen 3 is located within the first cavity 21 and includes an arc-shaped mesh plate 32 that gradually curves downwards from the left and right sides to the center, and two semi-circular end plates 33. The concave arc-shaped surface on the upper side of the arc-shaped mesh plate 32 is the first mesh surface 31 of the filter screen 3, and multiple filter holes 30 penetrating the plate thickness are distributed at intervals on the first mesh surface 31. The arc-shaped mesh plate 32 has two arc-shaped sides 321 arranged one in front of the other, and straight edges 322 connecting the corresponding ends of the two arc-shaped sides 321. The two semi-circular end plates 33 are respectively arranged one in front of the other on both sides of the arc-shaped mesh plate 32. The arc-shaped edge of each end plate 33 engages with the arc-shaped side 321 of the corresponding arc-shaped mesh plate 32, so that an upward-opening concave cavity is formed between the two end plates 33 and the arc-shaped mesh plate 32. The opening of the concave cavity is located below the outlet end 4 of the pipeline and is used to receive slurry. The two straight edges 322 are arranged one on the left and one on the right. One of the two straight edges 322 is rotatably connected to the vertical partition 23 between the first cavity 21 and the second cavity 22 via a rotating shaft 5 extending front and rear. The driving mechanism is a conventional motor, the motor output acting on the rotating shaft 5 to drive the rotating shaft 5 to rotate around its own axis, thereby driving the filter screen 3 to flip over sequentially through the top opening of the first cavity 21 and the top opening of the second cavity 22 into the second cavity 22. At this time, the opening of the cavity faces downwards, and the first mesh surface 31 of the filter screen 3 faces downwards. Please refer to [link / reference] for details. Figure 3 .

[0034] When slurry filtration is required, the filter screen 3 can be driven into the first chamber 21, such as... Figure 2 As shown, at this time, the slurry output from the outlet 4 of the pipeline enters the first tank 21 after being filtered by the filter screen 3, and then is output from the outlet 211. The filter residue accumulates on the first mesh surface 31 of the filter screen 3. After the slurry is discharged, as shown... Figure 3 As shown, the drive filter screen 3 is located in the second chamber 22, with the first mesh surface 31 of the filter screen 3 facing downwards. The filter residue on the first mesh surface 31 can detach from the filter screen under its own gravity and enter the second chamber 22, thereby completing the filtration of the slurry and the collection of the filter residue. To clean the filter screen 3 and the filter tank 2, water can be sprayed downwards through the spray holes 82 of the spray element 8.

[0035] To aid filtration, the aforementioned stirring head 7 is positioned on the first mesh surface 31 of the filter screen 3 and can rotate under the drive of the power component 70 (a conventional motor). The stirring head 7 is semi-circular in shape, adapted to the shape of the first mesh surface 31, with the arc edge of the semi-circle facing the first mesh surface. Driven by the power component 70, it can rotate around its central axis passing through the center of the semi-circle. This agitates the slurry on the first mesh surface 31, promoting downward flow of the liquid through the filter holes 30.

[0036] In the specification and claims of this utility model, terms indicating direction, such as "front," "rear," "upper," "lower," "left," "right," "side," "top," and "bottom," are used to describe various exemplary structural parts and elements of this utility model. However, the use of these terms is merely for the purpose of explanation and is based on the exemplary orientations shown in the accompanying drawings. Since the embodiments disclosed in this utility model can be arranged in different orientations, these terms indicating direction are for illustrative purposes only and should not be regarded as limitations. For example, "upper" and "lower" are not necessarily limited to directions opposite to or consistent with the direction of gravity.

[0037] The term "vertical" is also used in the specification and claims of this utility model, meaning basically along the up and down direction, and is not limited to just the vertical direction, but can also be slightly deviated from the vertical direction.

Claims

1. A high-speed blender, comprising: The casing (1) has a working chamber (10) inside for making a slurry by breaking down ingredients; The pipeline used for conveying slurry has its inlet end connected to the working chamber (10); Its features It also includes: The filter tank (2) is located outside the working chamber (10), and the filter tank (2) has a first chamber (21) and a second chamber (22) arranged side by side and open at the top. The first chamber (21) is provided with a liquid outlet (211). The filter screen (3), with its first mesh surface (31) having multiple filter holes (30) facing upward, is located inside the first cavity (21) and below the outlet end (4) of the pipeline, and is used to receive slurry; and the filter screen (3) can be flipped into the second cavity (22) by passing through the top opening of the first cavity (21) and the top opening of the second cavity (22) in sequence under the drive of the drive mechanism. At this time, the first mesh surface (31) of the filter screen (3) faces downward.

2. The blender according to claim 1, characterized in that: The filter (3) includes an arc-shaped mesh plate (32), and the concave arc-shaped plate surface on one side of the arc-shaped mesh plate (32) is the first mesh surface (31) of the filter (3).

3. The blender according to claim 2, characterized in that: The first cavity (21) and the second cavity (22) are arranged to the left and right. The arc-shaped mesh plate (32) has two arc-shaped sides (321) arranged one in front and one behind, and straight edges (322) connecting the corresponding ends of the two arc-shaped sides (321). The two straight edges (322) are arranged to the left and one to the right.

4. The blender according to claim 3, characterized in that: The filter screen (3) also includes two end plates (33), which are respectively arranged opposite each other on both sides of the arc-shaped mesh plate (32) to form an upward-facing concave cavity with the arc-shaped mesh plate (32).

5. The blender according to claim 3, characterized in that: One of the two straight edges (322) is rotatably connected between the tops of the first cavity (21) and the second cavity (22) via a rotating shaft (5) extending forward and backward. The driving mechanism acts on the rotating shaft (5) to drive the rotating shaft (5) to rotate about its own axis.

6. The blender according to claim 2, characterized in that: It also includes a stirring head (7), which is disposed on the first mesh surface (31) of the filter screen (3) and can rotate under the drive of the power member (70).

7. The blender according to any one of claims 1 to 6, characterized in that: It also includes a spray element (8) located above the filter tank (2) for spraying water onto the filter tank (2).

8. The blender according to claim 7, characterized in that: The first trough (21) and the second trough (22) are arranged on the left and right sides. The spraying component (8) includes an arc-shaped spray plate (81) that gradually arches upward from the left and right sides to the center. The lower surface of the arc-shaped spray plate (81) is provided with a plurality of downward-facing spray holes (82) for water spraying. The spray holes on the left side of the arc-shaped spray plate (81) are located above the first trough (21), and the spray holes on the right side of the arc-shaped spray plate (81) are located above the second trough (22).

9. The blender according to claim 8, characterized in that: The outlet end (4) of the pipeline faces downward and opens into the arc-shaped spray plate (81).

10. The blender according to any one of claims 1 to 6, characterized in that: The blender is an embedded blender that can be installed in a cabinet, and the bottom of the second cavity (22) is provided with a slag discharge port (221).