Slicing tool and noodles

By designing a cutting tool with a UFO-shaped cavity, the dough strip is cut to form noodles that resemble UFOs, solving the problem of monotonous chewiness in existing technologies and achieving a rich chewiness and firm texture.

CN224306659UActive Publication Date: 2026-06-02KANGSHI (SHANGHAI) FOOD SCIENCE & TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
KANGSHI (SHANGHAI) FOOD SCIENCE & TECHNOLOGY CO LTD
Filing Date
2025-04-29
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The noodles cut by existing noodle-cutting tools have a uniform cross-sectional shape, resulting in a uniform chewy texture.

Method used

Design a noodle cutting tool, wherein the cavity formed between the annular cutting teeth of the first and second cutting rollers and the cutting groove has a UFO-shaped cross-section, and forms UFO-shaped noodles by meshing and cutting the surface.

Benefits of technology

It enriches the chewiness of the noodles, making them thinner on both sides and thicker in the middle, thus increasing the multi-layered chewiness and firm texture of the noodles.

✦ Generated by Eureka AI based on patent content.

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Abstract

A noodle cutting tool and noodles. The noodle cutting tool comprises: a first cutter roll and a second cutter roll which can be engaged; a plurality of first annular cutter grooves are arranged on the first cutter roll, and a first annular cutter tooth is formed between any two adjacent first annular cutter grooves; a second annular cutter groove is arranged on the second cutter roll, and a second annular cutter tooth is formed between any two adjacent second annular cutter grooves; in the engaged state, the first annular cutter tooth is inserted into the corresponding second annular cutter groove, and a first cavity is formed between the inserted first annular cutter tooth and the bottom of the second annular cutter groove; the second annular cutter tooth is inserted into the corresponding first annular cutter groove, and a second cavity is formed between the inserted second annular cutter tooth and the bottom of the first annular cutter groove; the cross-sectional shape of at least one of the first cavity and the second cavity is in the shape of a flying disc. By using the above scheme, the chewiness of the noodles can be enriched while ensuring the taste of the noodles.
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Description

Technical Field

[0001] This utility model relates to the field of food processing technology, specifically to a noodle cutting tool and noodles. Background Technology

[0002] In recent years, with the acceleration of the pace of life and the rise of tourism, the demand for convenience food has been growing. Instant noodles are very popular because they are convenient to eat, easy to carry, and inexpensive.

[0003] Currently, the processing of commercially available instant noodles can include: kneading dough, rolling, shredding, waving, separating, steaming, cutting, and drying. Among these processes, the shredding process involves cutting the noodles into shredded strands using a noodle-cutting tool.

[0004] However, the cross-sectional shape of noodles cut by existing noodle-cutting tools is uniform, either rectangular or circular, resulting in a relatively uniform chewy texture. Utility Model Content

[0005] The problem this invention aims to solve is: how to enrich the chewiness of noodles while ensuring their texture.

[0006] To address the above problems, this utility model provides a face-cutting tool, which includes:

[0007] A first cutter roller and a second cutter roller that can mesh;

[0008] The first cutter roller is provided with a plurality of first annular cutter grooves, and a first annular cutter tooth is formed between any two adjacent first annular cutter grooves;

[0009] The second cutter roller is provided with a second annular cutter groove, and a second annular cutter tooth is formed between any two adjacent second annular cutter grooves;

[0010] In the meshing state, the first annular cutter tooth is inserted into the corresponding second annular cutter groove, and a first cavity is formed between the first annular cutter groove and the bottom of the inserted second annular cutter groove; the second annular cutter tooth is inserted into the corresponding first annular cutter groove, and a second cavity is formed between the second annular cutter groove and the bottom of the inserted first annular cutter groove.

[0011] The cross-sectional shape of at least one of the first cavity and the second cavity is saucer-shaped.

[0012] In one possible embodiment, the first cutter roller includes a first inverted octagon structure, and the corresponding second cutter roller includes a second regular octagon structure, wherein the first inverted octagon structure and the second regular octagon structure mesh with each other.

[0013] In one possible embodiment, the first cutter roller further includes a first groove connected to the bottom of the first inverted octagon structure, and the corresponding second cutter roller further includes a second groove connected to the second regular octagon structure, wherein the depth of the first groove is less than the depth of the second groove.

[0014] In one possible embodiment, the first inverted octagon structure and the second regular octagon structure have a first preset stagger height, which is greater than or equal to zero.

[0015] In one possible embodiment, the first preset stagger height is adjustable.

[0016] In one possible embodiment, the first preset stagger height is less than 1 / 2 of the width of the first groove.

[0017] In one possible embodiment, the first inverted octagon structure includes a first arc-shaped portion and a second arc-shaped portion, both of which protrude toward the second cutter roller.

[0018] In one possible embodiment, the second octagonal structure includes: a third arc-shaped portion, a fourth arc-shaped portion, a first extension portion, and a second extension portion; both the third arc-shaped portion and the fourth arc-shaped portion protrude toward the first cutter roller; one end of the first extension portion is connected to the fourth arc-shaped portion, and the other end extends toward the first cutter roller; one end of the second extension portion is connected to the third arc-shaped portion, and the other end extends toward the first cutter roller.

[0019] In one possible embodiment, in the meshing state, the width of the first annular cutter tooth is less than the width of the corresponding second annular cutter groove, and the width of the second annular cutter tooth is less than the width of the corresponding first annular cutter groove.

[0020] In one possible embodiment, the first cavity and the second cavity are centrally symmetrical about their critical point.

[0021] In one possible embodiment, the cutting tool further includes a face comb connected to the first cutter roller and the second cutter roller.

[0022] This utility model embodiment also provides a noodle, which is cut using the cutting tool in any of the above embodiments.

[0023] Compared with the prior art, the technical solution of this utility model embodiment has the following advantages:

[0024] By applying the solution of this utility model, since at least one of the first and second cavities has a saucer-shaped cross-section, the cross-sectional shape of the cut noodles can also resemble a saucer shape. Noodles with a saucer-shaped cross-section are thinner at both ends and thicker in the middle, giving them a multi-layered chewy texture. Furthermore, noodles that are thinner at both ends and thicker in the middle resemble wide noodles, but actually have the firm texture of round noodles, making them more elastic and chewy. Therefore, the solution of this utility model can enrich the chewy texture of noodles while ensuring good taste. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the structure of a cutting tool;

[0026] Figure 2 This is a schematic diagram of a structure in which the first cutter roller and the second cutter roller are in an unengaged state;

[0027] Figure 3 This is a schematic diagram of another structure in which the first cutter roller and the second cutter roller are in an engaged state;

[0028] Figure 4 This is a partial cross-sectional structural diagram of a first cutter roller in an embodiment of this utility model;

[0029] Figure 5 This is a partial cross-sectional structural diagram of another second cutter roller in an embodiment of this utility model;

[0030] Figure 6 This is a partial cross-sectional structural diagram of the first cutter roller and the second cutter roller in the meshing state in an embodiment of this utility model;

[0031] Wherein: 11-base, 121-first cutter roller, 122-second cutter roller, 121a-first annular cutter groove, 121b-first annular cutter tooth, 122a-second annular cutter groove, 122b-second annular cutter tooth, 123-cavity;

[0032] 41-First cutter roller, 411-First annular cutter groove, 412-First annular cutter tooth, 42-Second cutter roller, 421-Second annular cutter groove, 422-Second annular cutter tooth, 412a-First arc-shaped portion, 412b-Second arc-shaped portion, 421a-Third arc-shaped portion, 421b-Fourth arc-shaped portion, 412c-First groove, 421c-Second groove, 421d-First extension, 421e-Second extension. Detailed Implementation

[0033] Figure 1 This is a schematic diagram of the structure of an existing cutting tool. (Refer to...) Figure 1The cutting tool may include: a base 11, a first cutter roller 121 and a second cutter roller 122 mounted on the base 11. The first cutter roller 121 and the second cutter roller 122 are meshed.

[0034] Figure 2 This is a schematic diagram showing the first cutter roller 121 and the second cutter roller 122 in an unengaged state. Figure 3 This is a schematic diagram showing the first cutter roller 121 and the second cutter roller 122 in an engaged state. Figure 2 and Figure 3 As shown, the surface of the first cutter roller 121 is provided with a plurality of first annular cutter grooves 121a, and a first annular cutter tooth 121b is formed between any two adjacent first annular cutter grooves 121a, the first annular cutter tooth 121b protruding from the surface of the first annular cutter groove 121a. The surface of the second cutter roller 122 is provided with a plurality of second annular cutter grooves 122a, and a second annular cutter tooth 122b is formed between any two adjacent second annular cutter grooves 122a, the second annular cutter tooth 122b protruding from the surface of the second annular cutter groove 122a.

[0035] In the engaged state, the first annular cutter tooth 121b is inserted into the corresponding second annular cutter groove 122a, and the second annular cutter tooth 122b is inserted into the corresponding first annular cutter groove 121a. Cavities 123 are formed between the bottom of the first annular cutter tooth 121b and the corresponding second annular cutter groove 122a, and between the second annular cutter tooth 122b and the corresponding first annular cutter groove 121a.

[0036] In practical applications, the dough is conveyed between the first cutter roller 121 and the second cutter roller 122. As the first cutter roller 121 and the second cutter roller 122 rotate in opposite directions, the dough passes through the first cutter roller 121 and the second cutter roller 122 and is evenly squeezed into the cavity 123 between the bottom of the first annular cutter tooth 121b and the corresponding bottom of the second annular cutter groove 122a, and between the bottom of the second annular cutter tooth 122b and the corresponding bottom of the first annular cutter groove 121a, thereby cutting the noodles into the corresponding shapes. The cross-sectional shape of the noodles is basically the same as the cross-sectional shape of the cavity 123.

[0037] In the above-mentioned cutting tool, the cross-sectional shape of the cavity 123 is rectangular, and the cross-sectional shape of the noodles cut is also rectangular.

[0038] There are also existing cutting tools with a circular cavity cross-section, in which the cut noodles have a circular cross-section.

[0039] However, whether the noodles have a rectangular or circular cross-section, their thickness is uniform, resulting in a monotonous chewy texture.

[0040] To address this problem, this utility model provides a noodle-cutting tool. The cross-sectional shape of the cavity formed between the annular blade teeth and the corresponding annular grooves in the noodle-cutting tool is saucer-shaped. Thus, the noodle-cutting tool can be used to obtain noodles with a cross-sectional shape similar to a saucer. These noodles are thin at both sides and thick in the middle, thereby ensuring the texture of the noodles while enriching their chewiness.

[0041] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0042] This utility model embodiment provides a cutting tool, which may include: a first cutting roller and a second cutting roller that can mesh with each other. Wherein:

[0043] The first cutter roller is provided with a plurality of first annular cutter grooves, and a first annular cutter tooth is formed between any two adjacent first annular cutter grooves;

[0044] The second cutter roller is provided with a second annular cutter groove, and a second annular cutter tooth is formed between any two adjacent second annular cutter grooves;

[0045] In the engaged state, the first annular cutter tooth is inserted into the corresponding second annular cutter groove, and a first cavity is formed between the first annular cutter tooth and the bottom of the inserted second annular cutter groove; the second annular cutter tooth is inserted into the corresponding first annular cutter groove, and a second cavity is formed between the second annular cutter groove and the bottom of the inserted first annular cutter groove.

[0046] Unlike existing technologies, in the embodiments of this utility model, at least one of the first cavity and the second cavity has a saucer-shaped cross-section. That is, the solution of this utility model can be such that only the first cavity formed between the first annular cutting tooth and the bottom of the inserted second annular cutting groove is saucer-shaped, or only the second cavity formed between the second annular cutting tooth and the bottom of the inserted first annular cutting groove is saucer-shaped, or both the first cavity formed between the first annular cutting tooth and the bottom of the inserted second annular cutting groove and the second cavity formed between the second annular cutting tooth and the bottom of the inserted first annular cutting groove are saucer-shaped.

[0047] The term "flying saucer shape" refers to the fact that, when viewed from the direction the dough enters the cutting blade, the width of the edge areas on both sides of the cavity is smaller than the width of the middle area, thus giving the cut noodles the characteristic of being thin on both sides and thick in the middle.

[0048] In specific implementations, the first cutter roller and the second cutter roller can have various structures, such that the cross-sectional shape of at least one of the first cavity and the second cavity is saucer-shaped.

[0049] In one embodiment of the present invention, the first cutter roller includes a first inverted octagon structure, and the corresponding second cutter roller includes a second regular octagon structure, wherein the first inverted octagon structure and the second regular octagon structure mesh with each other.

[0050] Specifically, when the cross-sectional shape of the first cavity is saucer-shaped, the first annular cutter tooth includes a first inverted octagon structure, and the corresponding second annular cutter groove includes a second regular octagon structure. When the second cavity is saucer-shaped, the second annular cutter tooth includes a second regular octagon structure, and the corresponding first annular cutter groove includes a first inverted octagon structure.

[0051] The structures of the first cavity and the second cavity are described in detail below with reference to the accompanying drawings:

[0052] Figure 4 This is a partial cross-sectional structural diagram of the first cutter roller 41 in one embodiment of the present invention. (Refer to...) Figure 4 The first cutter roller 41 may include a first annular cutter groove 411 and a first annular cutter tooth 412. Each first annular cutter groove 411 extends circumferentially along the first cutter roller 41 and forms a closed annulus. Each first annular cutter tooth 412 also extends circumferentially along the first cutter roller 41 and forms a closed annulus. In the circumferential direction of the first cutter roller 41, the top surface of the first annular cutter tooth 412 protrudes beyond the top surface of the first annular cutter groove 411. The first annular cutter grooves 411 and the first annular cutter teeth 412 are staggered along the axial direction of the first cutter roller 41, with no gap between them.

[0053] Figure 5 This is a partial cross-sectional structural diagram of the second cutter roller 42 in one embodiment of the present invention. (Refer to...) Figure 5 The second cutter roller 42 may include a second annular cutter groove 421 and a second annular cutter tooth 422. Each second annular cutter groove 421 extends circumferentially along the second cutter roller 42 and forms a closed annulus. Each second annular cutter tooth 422 also extends circumferentially along the second cutter roller 42 and forms a closed annulus. In the circumferential direction of the second cutter roller 42, the top surface of the second annular cutter tooth 422 protrudes beyond the top surface of the second annular cutter groove 421. The second annular cutter grooves 421 and the second annular cutter teeth 422 are staggered along the axial direction of the second cutter roller 42, with no gap between them.

[0054] When the first cavity is saucer-shaped, the first annular cutter tooth 412 includes a first inverted octagon structure, and the corresponding second annular cutter groove 421 includes a second regular octagon structure.

[0055] When the second cavity is saucer-shaped, the second annular cutter tooth 422 may include a second regular octagon structure, and the corresponding first annular cutter groove 411 may include a first inverted octagon structure.

[0056] Specifically, refer to Figure 4 and Figure 5 Both the first cavity and the second cavity are saucer-shaped. Taking the first annular cutter groove 411 as an example, the first inverted eight structure includes: a first arc-shaped portion 412a and a second arc-shaped portion 412b, both of which protrude toward the second cutter roller 42.

[0057] Accordingly, refer to Figure 5 The second octagonal structure may include: a third arc-shaped portion 421a, a fourth arc-shaped portion 421b, a first extension portion 421d, and a second extension portion 421e. Both the third arc-shaped portion 421a and the fourth arc-shaped portion 421b protrude towards the first cutter roller 41. One end of the first extension portion 421d is connected to the fourth arc-shaped portion 421b, and the other end extends towards the first cutter roller 41. One end of the second extension portion 421e is connected to the third arc-shaped portion 421a, and the other end extends towards the first cutter roller 41.

[0058] In a specific implementation, the first arc-shaped portion 412a and the second arc-shaped portion 412b are both arc-shaped protruding towards the second cutter roller 42, and the third arc-shaped portion 421a and the fourth arc-shaped portion 421b are also arc-shaped protruding towards the second cutter roller 42. This makes the width h1 of the edge region of the first cavity smaller than the width h2 of the middle region, and the width of the first cavity gradually decreases from the middle region to the edge region.

[0059] In practice, in order to obtain noodles with a regular shape, the first arc-shaped portion 412a and the third arc-shaped portion 421a have the same curvature and are symmetrically arranged on both sides of the dough strip, and the second arc-shaped portion 412b and the fourth arc-shaped portion 421b have the same curvature and are symmetrically arranged on both sides of the dough strip, thereby obtaining noodles with a regular thickness variation.

[0060] In other embodiments, the curvature of the first arc-shaped portion 412a and the third arc-shaped portion 421a may be different, as may the curvature of the second arc-shaped portion 412b and the fourth arc-shaped portion 421b, thereby obtaining noodles with irregular thickness variations.

[0061] In specific implementation, when the first cavity is saucer-shaped, refer to... Figure 4 The first cutter roller 41 also includes a first groove 412c connected to the bottom of the first inverted octagon structure. (See reference...) Figure 5 The corresponding second cutter roller 42 also includes a second groove 421c connected to the second octagonal structure.

[0062] By setting the first groove 412c and the second groove 421c, the width of the first cavity in the middle area can be increased, thereby increasing the thickness of the noodles in the middle area, making the noodles more firm and thus further improving the taste of the noodles.

[0063] Specifically, one end of the first groove 412c is connected to the first arcuate portion 412a. The other end of the first groove 412c is connected to the second arcuate portion 412b, thus making the first annular cutter tooth 412 have a structure that is concave in the middle and protruding on both sides. Similarly, one end of the second groove 421c is connected to the third arcuate portion 421a. The other end of the second groove 421c is connected to the fourth arcuate portion 421b, thus making the second annular cutter groove have a structure that is concave in the middle and protruding on both sides.

[0064] In one embodiment, the first arc-shaped portion 412a, the second arc-shaped portion 412b, and the first groove 412c can each occupy 1 / 3 of the width of the first inverted octagon structure, and the third arc-shaped portion 421a, the fourth arc-shaped portion 421b, and the second groove 421c can each occupy 1 / 3 of the width of the second regular octagon structure, thereby making the cross-sectional shape of the obtained noodles more aesthetically pleasing.

[0065] In a specific implementation, the depth of the first groove 412c is less than the depth of the second groove 421c, which allows the middle region of the first cavity to have a recess of different depths along its width direction, thereby facilitating the subsequent insertion of the face comb into the second groove 421c.

[0066] In a specific implementation, the width of the first groove 12c is basically equal to the width of the second groove 421c, thereby forming a protrusion of the same width on both sides of the middle area of ​​the noodle along its width direction.

[0067] In other embodiments, the width of the first groove 12c may not be equal to the width of the second groove 421c.

[0068] In specific implementation, under meshing conditions, the width w1 of the first annular cutter tooth 412 is smaller than the width w2 of the corresponding second annular cutter groove 421. This allows the first annular cutter tooth 412 to intersect with, or contact with, the second annular cutter groove 421, thus achieving meshing between the first annular cutter tooth and the second annular cutter groove (e.g., Figure 6 As shown in the figure, this allows the dough to be squeezed into the first cavity.

[0069] In specific implementation, in the meshing state, the width w3 of the second annular cutter tooth 422 is smaller than the width w4 of the corresponding first annular cutter groove 411. This allows the second annular cutter tooth 422 to intersect with, or contact with, the first annular cutter groove 411, thus achieving meshing between the second annular cutter tooth 422 and the first annular cutter groove 411 (e.g., Figure 6 As shown in the figure, this allows the dough to be squeezed into the second cavity.

[0070] In a specific implementation, the first extension 421d and the second extension 421e extend radially along the second annular groove 421 on both sides of the second regular octagon structure and are symmetrically arranged with respect to the center of the second regular octagon structure. This facilitates the insertion of the first inverted octagon structure into the groove formed by the first extension 421d and the second extension 421e, and allows it to engage with the second regular octagon structure. In the engaged state, the first inverted octagon structure may or may not intersect with the second regular octagon structure. In the embodiments of this utility model, the overlap dimension between the first inverted octagon structure and the first extension 421d and the second extension 421e is called the first preset staggered height. The first preset staggered height affects the thickness of the noodle edge.

[0071] In some embodiments, the first preset staggered height can be equal to the height difference h0 between the first annular blade tooth and the top surface of the first annular groove. In this case, the first inverted octagon structure intersects with the second regular octagon structure, and the edge thickness of the resulting noodle is essentially zero, with the cross-sectional shape of the noodle having sharp angles at the edges.

[0072] In other embodiments, in the meshing state, the first preset staggered height can also be zero. In this case, the first inverted octagon structure does not intersect with the second regular octagon structure. The edge thickness of the formed noodle is equal to the height difference h0 between the top surface of the first annular blade and the first annular groove, and the cross-sectional shape of the formed noodle is similar to that of a four-leaf clover.

[0073] In some embodiments, the first preset staggered height is adjustable. Specifically, the cutting tool may further include a base, on which the first and second cutting rollers are fixed. The first preset staggered height can be adjusted by adjusting the positions of the first and second cutting rollers on the base, thereby adjusting the distance between them. When the distance between the first and second cutting rollers increases, the first preset staggered height also increases. When the distance between the first and second cutting rollers decreases, the first preset staggered height also decreases. By adjusting the first preset staggered height, not only can the thickness of the noodle edges be adjusted, but also the formation of noodles sticking together can be avoided.

[0074] In some embodiments, the first preset staggered height can be set to be less than half the width of the first groove. In this case, the cut noodles can have a more rounded texture and be more elastic.

[0075] In practical implementation, when the cross-sections of both the first and second cavities are saucer-shaped, the first annular cutter groove 411 and the first annular cutter tooth 412 are alternately connected without gaps on the first cutter roller 41. Similarly, the second annular cutter groove 421 and the second annular cutter tooth 422 are alternately connected without gaps on the second cutter roller 42. Thus, the first and second cavities have a centrally symmetrical structure with their critical point as the center. The critical point between the first and second cavities is the contact point between the first and second cavities. The first cavity can coincide with the second cavity after rotating 180° around this critical point. This staggered tooth distribution of the first and second cutter rollers can effectively avoid the problem of sliver shearing.

[0076] In a specific implementation, the cutting tool may also include a transmission component, which may be fixed at one end of the base and connected to the first cutter roller and the second cutter roller, thereby driving the first cutter roller and the second cutter roller to rotate.

[0077] In some embodiments, the cutting tool may further include a face comb, which is connected to the first cutting roller and the second cutting roller. Specifically, the cutting tool may include a first face comb and a second face comb. The first face comb may have a first tooth, and the second face comb may have a second tooth. The first tooth of the first face comb may be embedded in a first annular cutting groove and extend outward from the bottom of the first annular cutting groove. The second face comb may be embedded in a second annular cutting groove and extend outward from the bottom of the second annular cutting groove.

[0078] In practical applications, the dough strip is squeezed into the first cavity and the second air chamber, thereby cutting the dough strip into two sets of noodles with a saucer-shaped cross-section. One set of noodles is located in the first annular cutter groove and rotates with the first cutter roller until it contacts the teeth of the first face comb embedded in the first annular cutter groove. Then, under the action of the teeth of the first face comb and the weight of the noodles themselves, it falls from the glass of the first annular cutter groove onto the noodle separator below the cutting blade. The other set of noodles is located in the second annular cutter groove and rotates with the second cutter roller until it contacts the teeth of the second face comb embedded in the second annular cutter groove. Then, under the action of the teeth of the second face comb and the weight of the noodles themselves, it falls from the glass of the second annular cutter groove onto the noodle separator below the cutting blade.

[0079] In some embodiments, the cutting tool may further include a scraper. Specifically, the scraper may include a first scraper and a second scraper, the first scraper being located between the first cutter roller and the base, and the second scraper being located between the second cutter roller and the base. The first scraper can be used to remove dough residue from the surface of the first cutter roller, and the second scraper can be used to remove dough residue from the surface of the second cutter roller.

[0080] As can be seen from the above, in the embodiment of this utility model, the cross-sectional shape of the cavity formed between the annular blade teeth and the corresponding annular blade groove is saucer-shaped. Therefore, the cross-sectional shape of the noodles can be obtained by using the cutting tool, which can enrich the chewiness of the noodles while ensuring the taste of the noodles.

[0081] This embodiment of the invention also provides a type of noodle, which is formed using the cutting tool described in the above embodiment. This noodle not only has a better taste and a richer chewiness, but it is also easier to rehydrate and has a firmer texture compared to plain wide noodles.

[0082] While the present invention has been disclosed above, it is not limited thereto. Any person skilled in the art can make various modifications and alterations without departing from the spirit and scope of the present invention; therefore, the scope of protection of the present invention should be determined by the scope defined in the claims.

Claims

1. A cutting tool, characterized in that, include: A first cutter roller and a second cutter roller that can mesh; The first cutter roller is provided with a plurality of first annular cutter grooves, and a first annular cutter tooth is formed between any two adjacent first annular cutter grooves; The second cutter roller is provided with a second annular cutter groove, and a second annular cutter tooth is formed between any two adjacent second annular cutter grooves; In the meshing state, the first annular cutter tooth is inserted into the corresponding second annular cutter groove, and a first cavity is formed between the first annular cutter tooth and the bottom of the inserted second annular cutter groove; The second annular cutter tooth is inserted into the corresponding first annular cutter groove, and a second cavity is formed between the tooth and the bottom of the inserted first annular cutter groove. The cross-sectional shape of at least one of the first cavity and the second cavity is saucer-shaped.

2. The cutting tool as described in claim 1, characterized in that, The first cutter roller includes a first inverted octagon structure, and the corresponding second cutter roller includes a second regular octagon structure, wherein the first inverted octagon structure and the second regular octagon structure mesh with each other.

3. The cutting tool as described in claim 2, characterized in that, The first cutter roller also includes a first groove connected to the bottom of the first inverted octagon structure, and the corresponding second cutter roller also includes a second groove connected to the second regular octagon structure, wherein the depth of the first groove is less than the depth of the second groove.

4. The cutting tool as described in claim 3, characterized in that, The first inverted octagon structure and the second regular octagon structure have a first preset stagger height, which is greater than or equal to zero.

5. The cutting tool as described in claim 4, characterized in that, The first preset stagger height is adjustable.

6. The cutting tool as described in claim 5, characterized in that, The first preset staggered height is less than 1 / 2 of the width of the first groove.

7. The cutting tool as described in claim 2, characterized in that, The first inverted eight-shaped structure includes a first arc-shaped portion and a second arc-shaped portion, both of which protrude toward the second cutter roller.

8. The cutting tool as described in claim 7, characterized in that, The second octagonal structure includes: a third arc-shaped portion, a fourth arc-shaped portion, a first extension portion, and a second extension portion; both the third arc-shaped portion and the fourth arc-shaped portion protrude toward the first cutter roller; one end of the first extension portion is connected to the fourth arc-shaped portion, and the other end extends toward the first cutter roller; one end of the second extension portion is connected to the third arc-shaped portion, and the other end extends toward the first cutter roller.

9. The cutting tool according to claim 8, characterized in that, In the meshing state, the width of the first annular cutter tooth is less than the width of the corresponding second annular cutter groove, and the width of the second annular cutter tooth is less than the width of the corresponding first annular cutter groove.

10. The cutting tool according to claim 1, characterized in that, The first cavity and the second cavity have a centrally symmetrical structure with their critical point as the center.

11. The cutting tool as described in claim 1, characterized in that, Also includes: A face comb connected to the first and second cutter rollers.

12. A type of noodle, characterized in that, The noodles are cut using the cutting tool described in any one of claims 1 to 11.