Cutter clutch control device on noodle maker

By designing the cutting tool clutch control device, the problem that the noodle cutter cannot be flexibly controlled by the noodle machine is solved, and the flexible switch of the cutter is realized, saving energy consumption and improving safety.

CN223076137UActive Publication Date: 2025-07-08YONGKANG KANGMEIJIA FOOD MACHINERY CO LTD
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Patent Information

Application Number
CN202422926251.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-28
Publication Date
2025-07-08
Estimated Expiration
2034-11-28

AI Technical Summary

Technical Problem

The noodle knife on existing noodle machines cannot flexibly control the switch, resulting in waste of energy and safety risks.

Method used

A cutting tool clutch control device is designed to realize the opening and closing state switching of the facer through the combination of the switch assembly, transmission assembly and clutch gear, which is independent of the power device of the noodles machine.

Benefits of technology

It realizes flexible control of the facelift, avoids waste of energy consumption, improves safety, and avoids accidental injury to users.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of noodle makers, particularly provides a cutter clutch control device on a noodle maker, and aims to solve the problem that a noodle cutter on the noodle maker in the prior art cannot be flexibly controlled to be opened and closed. The device comprises a driving wheel, the noodle cutting device is connected with a noodle cutting device gear; the clutch assembly comprises a switch assembly, a transmission assembly and a clutch gear, and the end of the transmission assembly is connected with the switch assembly and the clutch gear; and both the noodle cutter gear and the driving wheel are meshed with the clutch gear in a sliding manner in the axial direction. According to the utility model, a set of transmission mechanism for independently controlling the noodle cutting device to open or close is designed, the clutch gear is driven by the transmission component to slide along the axial direction by operating the switch component, so that the clutch gear and the noodle cutting device gear are driven to be separated and meshed, and the noodle cutting device gear is connected with the noodle cutting device. Therefore, the noodle cutting device can be controlled to be opened or closed by operating the switch assembly, the operation is simple, and the flexibility is higher.
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Description

Technical Field

[0001] The utility model belongs to the technical field of noodle machines, and particularly relates to a cutter clutch control device on a noodle machine. Background Art

[0002] In the existing noodle machines, the noodle cutter is usually directly connected to the power device on the noodle machine, and the opening and closing device of the noodle cutter cannot be flexibly switched. Usually, when the noodle cutting function is not required, the noodle cutter is still in the working state, which not only causes energy consumption waste, but also is very dangerous and easily injures users. Summary of the Utility Model

[0003] The utility model provides a cutter clutch control device on a noodle machine, aiming to solve the problem that the noodle cutter on the existing noodle machine cannot be flexibly controlled to open and close.

[0004] In order to solve the above technical problems, the technical solution adopted by the utility model is as follows:

[0005] The utility model provides a cutter clutch control device on a noodle machine, including:

[0006] A machine body; provided with a driving wheel,

[0007] A noodle cutter, arranged on the machine body, including an open state and a closed state; the noodle cutter is connected with a noodle cutter gear;

[0008] A clutch assembly, arranged on the machine body, the clutch assembly includes a switch assembly, a transmission assembly and a clutch gear; the power input end of the transmission assembly is connected with the switch assembly, and the power output end is connected with the clutch gear; the switch assembly includes an open position and a closed position;

[0009] Both the noodle cutter gear and the driving wheel are axially slidably meshed with the clutch gear together;

[0010] When the switch assembly switches from the open position to the closed position, the switch assembly drives the clutch gear to slide axially through the transmission assembly, the clutch gear disengages from the noodle cutter gear, the noodle cutter gear stops, and the noodle cutter is in the closed state;

[0011] When the switch assembly switches from the closed position to the open position, the switch assembly drives the clutch gear to slide axially through the transmission assembly, the clutch gear meshes with the noodle cutter gear, and under the drive of the driving wheel, the noodle cutter gear rotates, and the noodle cutter is in the open state.

[0012] Further solution: The transmission assembly includes a first transmission rod and a second transmission rod; the input end of the first transmission rod is connected to the output end of the switch assembly, and the output end of the first transmission rod is hinged to the input end of the second transmission rod; the output end of the second transmission rod is connected to the clutch gear.

[0013] Based on the above solution, the connection structure between the switch assembly, the first transmission rod, the second transmission rod and the clutch gear can not only achieve power transmission, but also has a simple structure, reducing other complex transmission components, and thus can save manufacturing costs.

[0014] Further solution: A support rod is horizontally arranged on the body; a driving seat is arranged on the second transmission rod, and a driven seat is arranged on the clutch gear; the driven seat is fixedly connected to the support rod in the circumferential direction and is slidably connected to the support rod in the axial direction; the driving seat is rotatably arranged on the support rod;

[0015] When the driving seat rotates driven by the second transmission rod, the driving seat drives the driven seat to slide axially along the support rod.

[0016] Based on the above solution, the second transmission rod is arranged on the support rod through the driving seat, and the clutch gear is arranged on the support rod through the driven seat, improving the stability of the second transmission rod and the clutch gear.

[0017] Further solution: A number of driving teeth are arranged on the driving seat in the circumferential direction, and a number of driven teeth that cooperate with the driving teeth are arranged on the driven seat in the circumferential direction; a driving slope is arranged on the driving teeth, and a driven slope is arranged on the driven teeth;

[0018] When the driving seat rotates, the driven slope on the driven teeth moves along the driving slope on the driving teeth, and the driven seat slides axially along the support rod and drives the clutch gear to slide axially.

[0019] Based on the above solution, the slope designs on the driving teeth and the driven teeth can achieve effective power transmission. When the driving seat rotates, the driving slope and the driven slope interact with each other, and the driven slope moves along the driving slope, converting the rotational motion of the driving seat into the axial sliding of the driven seat, and thus realizing the axial sliding of the clutch gear.

[0020] Further solution: An elastic member for pushing the clutch gear to move axially and engage with the cutter gear is arranged on the support rod.

[0021] Based on the above solution, the elastic member can ensure that the clutch gear will not loosen when moving axially.

[0022] Further solution: A switch component mounting seat for mounting the switch component is provided on the body; An opening positioning groove and a closing positioning groove are provided on the switch component mounting seat; A positioning ball is provided at the bottom of the switch component;

[0023] When the switch component is switched from the open position to the closed position, the positioning ball is switched from the opening positioning groove to the closing positioning groove;

[0024] When the switch component is switched from the closed position to the open position, the positioning ball is switched from the closing positioning groove to the opening positioning groove.

[0025] Based on the above solution, when the positioning ball is located in the opening positioning groove or the closing positioning groove, it plays a positioning role to ensure that the switch component can be accurately and stably located in the open position or the closed position.

[0026] Further solution: The switch component includes a swing rod and a connecting rod. The outer end of the swing rod is the control end and the inner end of the swing rod is the positioning end. The connecting rod is arranged between the swing rod and the first transmission rod. The connecting rod and the swing rod are rotatably arranged on the body through a rotating shaft arranged in the up and down direction;

[0027] The first transmission rod is arranged in the front and rear direction;

[0028] The connecting rod is provided with a connecting end and a driving end, and the connecting end is connected to the swing rod. The driving end is inserted into the jack at the input end of the first transmission rod. When the connecting rod rotates around the rotating shaft along with the swing rod, the driving end of the connecting rod swings back and forth in the jack and drives the first transmission rod to move back and forth.

[0029] Based on the above solution, in this solution, the connection structure between the connecting rod and the swing rod, and the connection structure between the swing rod and the first transmission rod can effectively convert the simple rotational movement of the swing rod into the back and forth movement of the first transmission rod through the connecting rod, with a simple structure and improved power transmission efficiency.

[0030] Further solution: An installation cylinder is further provided at the positioning end of the swing rod. A spring and a positioning ball are arranged in the installation cylinder, and the positioning ball is located at the bottom of the installation cylinder; When the positioning ball moves to the position of the opening positioning groove or the closing positioning groove, the positioning ball protrudes from the installation cylinder and is clamped in the opening positioning groove or closes the positioning groove.

[0031] Based on the above solution, on the one hand, the spring provides pressure for the positioning ball, enabling the positioning ball to firmly embed into the opening positioning groove or the closing positioning groove. On the other hand, due to the elastic force of the spring, it is relatively easy for the positioning ball to switch between the opening positioning groove and the closing positioning groove, and thus it is relatively smooth for the switch assembly to switch between the open position and the closed position.

[0032] Further solution: Each meshing tooth of the clutch gear is provided with a cutting-in end on the end face facing the cutter gear; each meshing tooth of the cutter gear is provided with a cutting-in end on the end face facing the clutch gear;

[0033] Each of the cutting-in ends on the clutch gear and each of the cutting-in ends on the cutter gear gradually increase in thickness from front to back along the cutting-in direction.

[0034] Based on the above solution, the cutting-in end can play a guiding role, enabling the meshing teeth of the clutch gear and the meshing teeth of the cutter gear to mesh with each other smoothly.

[0035] Further solution: The thickness of the clutch gear and the thickness of the cutter gear are both smaller than the thickness of the driving wheel; when the clutch gear is disengaged from the cutter gear, the clutch gear still remains meshed with the driving wheel.

[0036] The beneficial effects of the present utility model are as follows:

[0037] The present utility model designs a transmission mechanism for separately controlling the opening or closing of the cutter. There is no need to share a switch assembly with the power device of the noodle machine. In the present utility model, the switch assembly is connected to the power input end of the transmission assembly, and the power output end of the transmission assembly is connected to the clutch gear. By operating the switch assembly, the switch assembly drives the clutch gear to slide axially through the transmission assembly, thereby driving the disengagement and engagement between the clutch gear and the cutter gear, and the cutter gear is connected to the cutter, and thus the control of opening or closing the cutter can be achieved by operating the switch assembly. The operation is simple and has high flexibility; when the cutter is not required to work, the cutter can be closed, avoiding energy consumption waste of the noodle machine and improving the safety of the cutter to avoid accidental injury to users. Description of the Drawings

[0038] To more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the attached drawings required for the embodiments. It should be understood that the following attached drawings only show some embodiments of the present utility model, and thus should not be regarded as a limitation of the scope. For those of ordinary skill in the art, without creative efforts, other related attached drawings can also be obtained based on these attached drawings.

[0039] Figure 1 is a schematic structural view of a cutter clutch control device on a noodle machine of the present utility model;

[0040] Figure 2 is an exploded structural view of a cutter clutch control device on a noodle machine of the present utility model;

[0041] Figure 3 is Figure 2 an enlarged structural view of part A in

[0042] Figure 4 is a schematic structural view of the connection between a clutch gear and a second transmission rod in the present utility model;

[0043] Figure 5 is an exploded structural view of a clutch gear and a second transmission rod of the present utility model;

[0044] Figure 6 is a schematic structural view of the cutting-in end on a cutter gear of the present utility model.

[0045] Description of the reference numerals in the figures:

[0046] 1 - Machine body; 11 - Dough pressing roller shaft; 111 - Driving wheel; 12 - Noodle cutting roller shaft; 121 - Transmission gear; 122 - Noodle cutting roller shaft mounting seat; 13 - Support rod; 131 - Sliding groove; 2 - Switch assembly; 21 - Swing rod; 211 - Control end; 222 - Positioning end; 22 - Connecting rod; 221 - Connection end; 222 - Driving end; 23 - Installation cylinder; 24 - Spring; 25 - Positioning ball; 3 - Switch assembly mounting seat; 31 - Opening positioning groove; 32 - Closing positioning groove; 33 - Rotating shaft; 4 - First transmission rod; 41 - Insertion hole; 5 - Second transmission rod; 51 - Driving seat; 52 - Driving tooth; 6 - Clutch gear; 61 - Driven seat; 611 - Ball; 62 - Driven tooth; 63 - Elastic member; 7 - Cutter gear; 8 - Cutting-in end. Detailed implementation manners

[0047] The technical solutions in the embodiments of the present utility model will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present utility model. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative efforts belong to the protection scope of the present utility model.

[0048] As Figures 1-5 shown, this embodiment provides a cutter clutch control device on a noodle machine, including:

[0049] A machine body 1; provided with a driving wheel 111,

[0050] A noodle cutter, arranged on the machine body 1, including an open state and a closed state; the noodle cutter is connected with a noodle cutter gear 7;

[0051] A clutch assembly, arranged on the machine body 1, the clutch assembly includes a switch assembly 2, a transmission assembly and a clutch gear 6; the power input end of the transmission assembly is connected with the switch assembly 2, and the power output end is connected with the clutch gear 6; the switch assembly 2 includes an open position and a closed position;

[0052] Both the noodle cutter gear 7 and the driving wheel 111 are slidably meshed with the clutch gear 6 axially;

[0053] When the switch assembly 2 is switched from the open position to the closed position, the switch assembly 2 drives the clutch gear 6 to slide axially through the transmission assembly, the clutch gear 6 disengages from the noodle cutter gear 7, the noodle cutter gear 7 is stationary, and the noodle cutter is in the closed state;

[0054] When the switch assembly 2 is switched from the closed position to the open position, the switch assembly 2 drives the clutch gear 6 to slide axially through the transmission assembly, the clutch gear 6 meshes with the noodle cutter gear 7, and driven by the driving wheel 111, the noodle cutter gear 7 rotates, and the noodle cutter is in the open state.

[0055] It should be noted that: the switch assembly 2 drives the clutch gear 6 to slide axially through the transmission assembly, and the axial direction refers to the direction along the support rod 13, that is, drives the clutch gear 6 to slide along the direction of the support rod 13.

[0056] In addition, as Figure 1 and Figure 2 shown, the machine body 1 is also rotatably provided with a noodle pressing roller shaft 11 for pressing the dough into a pancake. The driving wheel 111 is arranged on the noodle pressing roller shaft 11.

[0057] The machine body 1 is a square machine body 1 surrounded by a left side plate, a right side plate and a rear side plate; the cutting device is horizontally arranged inside the machine body 1, and the clutch assembly is arranged inside the machine body 1 and is located on the right side or the left side of the machine body 1. In this embodiment, the clutch assembly is located on the right side of the machine body 1; the noodle pressing roller shaft 11 is horizontally arranged inside the machine body 1, and the driving wheel 111 is arranged at the right end of the noodle pressing roller shaft 11; the cutting device gear 7 is arranged at the right end of the cutting device.

[0058] The thickness of the clutch gear 6 (the thickness in the left-right direction) and the thickness of the cutting device gear 7 (the thickness in the left-right direction) are both smaller than the thickness of the driving wheel 111 (the thickness in the left-right direction). When the clutch gear 6 is disengaged from the cutting device gear 7, the clutch gear 6 is still engaged with the driving wheel 111.

[0059] As Figure 6 shown, each meshing tooth of the clutch gear 6 is provided with a cutting-in end 8 on the end face facing the cutting device gear 7; each meshing tooth of the cutting device gear 7 is provided with a cutting-in end 8 on the end face facing the clutch gear 6; each of the cutting-in ends 8 on the clutch gear 6 and each of the cutting-in ends 8 on the cutting device gear 7 gradually increases in thickness from front to back along the cutting-in direction.

[0060] It should be noted that: for the sake of simplifying the process, it is also possible to choose to only provide the cutting-in end 8 on the end face of each meshing tooth of the clutch gear 6 facing the cutting device gear 7, or only provide the cutting-in end 8 on the end face of each meshing tooth of the cutting device gear 7 facing the clutch gear 6.

[0061] Next, a more specific case for the transmission assembly is: as Figure 1 and Figure 3 shown, the transmission assembly includes a first transmission rod 4 and a second transmission rod 5; the input end of the first transmission rod 4 is connected to the output end of the switch assembly 2, the output end of the first transmission rod 4 is hinged to the input end of the second transmission rod 5; the output end of the second transmission rod 5 is connected to the clutch gear 6.

[0062] Specifically, the first transmission rod 4 is arranged in the front-back direction, the input end of the first transmission rod 4 is located at the front end of the first transmission rod 4, and the output end of the first transmission rod 4 is located at the rear end of the first transmission rod 4. The second transmission rod 5 is located between the first transmission rod 4 and the clutch gear 6.

[0063] As Figure 4 and Figure 5As shown in the figure, to achieve the transmission relationship in which the first transmission rod 4 moves back and forth to drive the second transmission rod 5 to rotate, and further drive the clutch gear 6 to axially slide, the solution adopted in this embodiment is as follows:

[0064] A support rod 13 is horizontally arranged on the machine body 1; a driving seat 51 is arranged on the second transmission rod 5, and a driven seat 61 is arranged on the clutch gear 6; the driven seat 61 is fixedly connected to the support rod 13 in the circumferential direction, and the driven seat 61 is slidably connected to the support rod 13 in the axial direction; the driving seat 51 is rotatably arranged on the support rod 13;

[0065] When the driving seat 51 rotates driven by the second transmission rod 5, the driving seat 51 drives the driven seat 61 to axially slide along the support rod 13.

[0066] Wherein, a chute 131 arranged along the direction of the support rod 13 is provided at the connection between the support rod 13 and the driven seat 61, and a fixing rod penetrates the driven seat 61 and the chute 131 from the side, so as to realize that the driven seat 61 is fixedly connected to the support rod 13 in the circumferential direction and is slidably connected to the support rod 13 in the axial direction.

[0067] Further, a plurality of driving teeth 52 are arranged on the driving seat 51 in the circumferential direction, and a plurality of driven teeth 62 that cooperate with the driving teeth 52 are arranged on the driven seat 61 in the circumferential direction; a driving slope is provided on the driving teeth 52, and a driven slope is provided on the driven teeth 62;

[0068] When the driving seat 51 rotates, the driven slope on the driven teeth 62 moves along the driving slope on the driving teeth 52, and the driven seat 61 axially slides along the support rod 13 and drives the clutch gear 6 to axially slide.

[0069] Wherein, the shapes of the driving teeth 52 and the driven teeth 62 are respectively trapezoids that are symmetric to each other. When the driving teeth 52 and the driven teeth 62 are engaged with each other, the driving surface and the driven surface are abutted against each other. Since the driven seat 61 is fixedly arranged in the circumferential direction (the driven seat 61 cannot rotate), and is not fixed in the axial direction, when the second transmission rod 5 rotates, the driving seat 51 rotates, driving the driven slope on the driven teeth 62 to move along the driving slope on the driving teeth 52, and further driving the clutch gear 6 to axially slide.

[0070] In addition, the driving seat 51 is integrally provided with the second transmission rod 5. The driven seat 61 is inserted into the middle of the clutch gear 6, and a plurality of circumferentially arranged cylindrical balls 611 are provided on one surface of the driven seat 61 that contacts the clutch gear 6, for reducing the frictional force when the clutch gear 6 rotates relative to the driven seat 61.

[0071] Based on the above solution, an elastic member 63 for pushing the clutch gear 6 to axially move and engage with the cutter gear 7 is provided on the support rod 13. As a preference, the elastic member 63 can be a conical spring, the conical spring is sleeved on the support rod 13 and is located outside the clutch gear 6. The end with a smaller cross-section of the conical spring is connected to the support rod 13, and the end with a larger cross-section of the conical spring is connected to the clutch gear 6.

[0072] As Figure 3 shown, based on the above solution, a switch component mounting seat 3 for mounting the switch component 2 is provided on the machine body 1; an open positioning groove 31 and a closed positioning groove 32 are provided on the switch component mounting seat 3; a positioning ball 25 is provided at the bottom of the switch component 2;

[0073] When the switch component 2 switches from the open position to the closed position, the positioning ball 25 switches from the open positioning groove 31 to the closed positioning groove 32;

[0074] When the switch component 2 switches from the closed position to the open position, the positioning ball 25 switches from the closed positioning groove 32 to the open positioning groove 31.

[0075] A more specific case for the switch component 2 is: the switch component 2 includes a swing rod 21 and a connecting rod 22, the outer end of the swing rod 21 is the control end 211 and the inner end of the swing rod 21 is the positioning end 222, the connecting rod 22 is arranged between the swing rod 21 and the first transmission rod 4, and the connecting rod 22 and the swing rod 21 are rotatably arranged on the machine body 1 through a rotating shaft 33 arranged in the up-down direction;

[0076] The first transmission rod 4 is arranged in the front-back direction; it should be noted that: the front-back direction is relative to the front-back direction of the machine body 1;

[0077] The connecting rod 22 is provided with a connecting end 221 and a driving end 222, and the connecting end 221 is connected to the swing rod 21, the driving end 222 is inserted into the jack 41 at the input end of the first transmission rod 4, when the connecting rod 22 rotates around the rotating shaft 33 along with the swing rod 21, the driving end 222 of the connecting rod 22 swings back and forth in the jack 41 and drives the first transmission rod 4 to move back and forth.

[0078] The positioning end 222 of the swing rod 21 is further provided with an installation cylinder 23. A spring 24 and a positioning ball 25 are arranged inside the installation cylinder 23, and the positioning ball 25 is located at the bottom of the installation cylinder 23. When the positioning ball 25 moves to the position of the opening positioning groove 31 or the closing positioning groove 32, the positioning ball 25 protrudes from the installation cylinder 23 and is clamped in the opening positioning groove 31 or the closing positioning groove.

[0079] Wherein, the rotating shaft 33 is arranged in the switch assembly mounting seat 3 in the up and down direction. The closing positioning groove 32 and the opening positioning groove 31 are arranged on the switch assembly mounting seat 3, located on the right side of the rotating shaft 33 and arranged parallel to each other in the front and back.

[0080] The positioning end 222 of the swing rod 21 is rotatably arranged on the switch assembly mounting seat 3, and the rotating shaft 33 penetrates through the positioning end 222 of the swing rod 21. The control end 211 of the swing rod 21 includes an open position and a closed position. It should be noted that the open position of the control end 211 of the swing rod 21 is the open position of the switch assembly 2, and the closed position of the control end 211 of the swing rod 21 is the closed position of the switch assembly 2.

[0081] The connecting rod 22 is located above the positioning end 222 of the swing rod 21, and the rotating shaft 33 penetrates through the connecting rod 22. The driving end 222 of the connecting rod 22 is provided with a bent portion. When the driving end 222 is inserted into the jack 41 at the input end of the first transmission rod 4, the bent portion of the driving end 222 hooks the bottom of the jack 41. The connecting end 221 of the connecting rod 22 is also provided with a bent portion. The bent portion of the connecting end 221 is inserted into the installation cylinder 23 from the top and is connected to the upper end of the spring 24. The positioning ball 25 is connected to the lower end of the spring 24.

[0082] On the basis of the above scheme, as Figure 1 and Figure 2 shown, the slicer includes two slicing roller shafts 12 arranged horizontally on the machine body 1; both of the two slicing roller shafts 12 are connected with transmission gears 121, and the two transmission gears 121 are meshed with each other; the slicer gear 7 is connected with one of the transmission gears 121.

[0083] Specifically, the two cutting surface roller shafts 12 are arranged in parallel and rotate horizontally in the machine body 1. Cutting surface roller shaft mounting seats 122 are provided on both the left and right sides of the machine body 1; the left ends of the two cutting surface roller shafts 12 are arranged on the cutting surface roller shaft mounting seats 122 on the left side of the machine body 1; the right ends of the two cutting surface roller shafts 12 are arranged on the cutting surface roller shaft mounting seats 122 on the right side of the machine body 1, and the transmission gear 121 and the cutter gear 7 are both located on the right side of the cutting surface roller shaft mounting seat 122 on the right side of the machine body 1.

[0084] Next, the present invention will be further described in conjunction with the working principle:

[0085] When the control end 211 of the swing rod 21 is toggled from the open position to the closed position, the positioning ball 25 switches from the open positioning groove 31 to the closed positioning groove 32. The swing rod 21 drives the first transmission rod 4 to move forward through the connecting rod 22, the first transmission rod 4 drives the second transmission rod 5 to rotate, the driving seat 51 rotates, the driven slope on the driven gear 62 moves along the driving slope on the driving gear 52, the driven seat 61 slides axially along the support rod 13 and drives the clutch gear 6 to slide axially and away from the second rotating rod, the clutch gear 6 disengages from the cutter gear 7, the cutter gear 7 stops, and the cutter is in the closed state.

[0086] When the control end 211 of the swing rod 21 is toggled from the closed position to the open position, the positioning ball 25 switches from the closed positioning groove 32 to the open positioning groove 31. The swing rod 21 drives the first transmission rod 4 to move backward through the connecting rod 22, the first transmission rod 4 drives the second transmission rod 5 to rotate, the driving seat 51 rotates, the driven slope on the driven gear 62 moves along the driving slope on the driving gear 52, the driven seat 61 slides axially along the support rod 13 and drives the clutch gear 6 to slide axially and close to the second rotating rod, the clutch gear 6 meshes with the cutter gear 7, and under the drive of the driving wheel 111, the cutter gear 7 rotates, and the cutter is in the open state.

[0087] The present invention is not limited to the above optional embodiments. On the premise of not conflicting with each other, the various solutions can be combined arbitrarily; anyone can obtain other various forms of products under the inspiration of the present invention, but no matter what changes are made in its shape or structure, as long as the technical solutions fall within the scope defined by the claims of the present invention, they are all within the protection scope of the present invention.

Claims

1. A cutter clutch control device on a noodle machine, characterized in that, Comprising: Machine body; It is provided with a driving wheel, A cutter, disposed on the machine body, including an open state and a closed state; the cutter is connected with a cutter gear; A clutch assembly, disposed on the machine body, the clutch assembly includes a switch assembly, a transmission assembly and a clutch gear; the power input end of the transmission assembly is connected to the switch assembly, and the power output end is connected to the clutch gear; the switch assembly includes an open position and a closed position; Both the cutter gear and the driving wheel are slidably meshed with the clutch gear axially; When the switch assembly switches from the open position to the closed position, the switch assembly drives the clutch gear to slide axially through the transmission assembly, the clutch gear disengages from the cutter gear, the cutter gear stops, and the cutter is in the closed state; When the switch assembly switches from the closed position to the open position, the switch assembly drives the clutch gear to slide axially through the transmission assembly, the clutch gear meshes with the cutter gear, and under the drive of the driving wheel, the cutter gear rotates, and the cutter is in the open state.

2. The cutter clutch control device on a noodle machine according to claim 1, characterized in that, The transmission assembly includes a first transmission rod and a second transmission rod; the input end of the first transmission rod is connected to the output end of the switch assembly, the output end of the first transmission rod is hinged to the input end of the second transmission rod; the output end of the second transmission rod is connected to the clutch gear.

3. The cutter clutch control device on a noodle machine according to claim 2, characterized in that, A support rod is horizontally disposed on the machine body; a driving seat is provided on the second transmission rod, and a driven seat is provided on the clutch gear; the driven seat is fixedly connected to the support rod in the circumferential direction and slidably connected to the support rod in the axial direction; the driving seat is rotatably disposed on the support rod; When the driving seat rotates driven by the second transmission rod, the driving seat drives the driven seat to slide axially along the support rod.

4. The cutter clutch control device on a noodle machine according to claim 3, characterized in that, A plurality of driving teeth are circumferentially arranged on the driving seat, and a plurality of driven teeth cooperating with the driving teeth are circumferentially arranged on the driven seat; a driving slope is provided on the driving teeth, and a driven slope is provided on the driven teeth; When the driving seat rotates, the driven slope on the driven teeth moves along the driving slope on the driving teeth, and the driven seat slides axially along the support rod and drives the clutch gear to slide axially.

5. The cutter clutch control device on a noodle machine according to claim 3, characterized in that, An elastic member for pushing the clutch gear to move axially and mesh with the cutter gear is provided on the support rod.

6. The cutter clutch control device on a noodle machine according to claim 2, characterized in that, A switch assembly mounting seat for mounting the switch assembly is provided on the machine body; an open positioning groove and a closed positioning groove are provided on the switch assembly mounting seat; a positioning ball is provided at the bottom of the switch assembly; When the switch assembly switches from the open position to the closed position, the positioning ball switches from the open positioning groove to the closed positioning groove; When the switch assembly switches from the closed position to the open position, the positioning ball switches from the closed positioning groove to the open positioning groove.

7. The cutter clutch control device on a noodle machine according to claim 6, characterized in that, The switch assembly includes a swing rod and a connecting rod. The outer end of the swing rod is the control end, and the inner end of the swing rod is the positioning end. The connecting rod is arranged between the swing rod and the first transmission rod. The connecting rod and the swing rod are rotatably arranged on the machine body through a rotating shaft arranged in the up and down direction; The first transmission rod is arranged in the front-rear direction; The connecting rod is provided with a connecting end and a driving end. The connecting end is connected to the swing rod, and the driving end is inserted into a jack at the input end of the first transmission rod. When the connecting rod rotates around the rotating shaft along with the swing rod, the driving end of the connecting rod swings back and forth in the jack and drives the first transmission rod to move back and forth.

8. The cutter clutch control device on a noodle machine according to claim 7, characterized in that, An installation cylinder is further arranged at the positioning end of the swing rod. A spring and a positioning ball are arranged in the installation cylinder, and the positioning ball is located at the bottom of the installation cylinder; when the positioning ball moves to the position of the opening positioning groove or the closing positioning groove, the positioning ball protrudes from the installation cylinder and is clamped in the opening positioning groove or closes the positioning groove.

9. The cutter clutch control device on a noodle machine according to claim 1, characterized in that, Each meshing tooth of the clutch gear is provided with a cutting-in end facing the end face of the cutter gear; each meshing tooth of the cutter gear is provided with a cutting-in end facing the end face of the clutch gear; Each of the cutting-in ends on the clutch gear and each of the cutting-in ends on the cutter gear gradually increases in thickness from front to back along the cutting-in direction.

10. The cutter clutch control device on a noodle machine according to claim 1, characterized in that, The thickness of the clutch gear and the thickness of the cutter gear are both smaller than the thickness of the driving wheel; when the clutch gear is disengaged from the cutter gear, the clutch gear is still meshed with the driving wheel together.