A blade assembly structure and an automatic cutting machine

By designing a detachable and adjustable blade assembly structure, the problems of low efficiency, poor safety, and inconvenient maintenance of existing meat cutting equipment have been solved, achieving efficient and safe meat cutting and equipment maintenance.

CN224268091UActive Publication Date: 2026-05-26JARVIS MASCH MFG (BEIJING) CORP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JARVIS MASCH MFG (BEIJING) CORP
Filing Date
2025-07-14
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing meat cutting machines are inefficient and pose significant safety risks during operation. They also result in unsuccessful meat cutting, complex operation, inconvenient maintenance, and food hygiene issues.

Method used

A blade assembly structure was designed, including a housing, a detachable first feed assembly, a cutting assembly, and a height-adjustable second feed assembly. The detachable and height-adjustable components are achieved through the adjustment structure and spacers, which can adapt to different meat patty thicknesses and widths, thereby improving cutting efficiency and safety.

Benefits of technology

It enables the cutting of meat patties of different thicknesses and widths, improving the applicability and safety of the equipment, facilitating disassembly and maintenance, and reducing the difficulty of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a blade assembly structure and an automatic cutting machine, relating to the field of food processing technology. The solution includes: a housing with a hollow internal structure; a first feeding assembly detachably disposed within the housing, arranged along the length of the housing and connected to a power source; a cutting assembly detachably disposed within the housing, connected to the first feeding assembly and located behind the first feeding assembly along the meat strip conveying direction; and a second feeding assembly detachably disposed within the housing, connected to the cutting assembly and located in front of the first feeding assembly along the meat strip conveying direction. The installation height of the second feeding assembly is adjustable to accommodate meat strips of different thicknesses. This device, by adjusting the installation height of the second feeding assembly, can accommodate meat strips of different thicknesses, achieving stable meat strip feeding and assisting in meat strip cutting. All components are detachable from the housing, facilitating disassembly, maintenance, and replacement.
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Description

Technical Field

[0001] This utility model relates to the field of food processing technology, and in particular to a blade assembly structure and an automatic cutting machine. Background Technology

[0002] Currently, with the improvement of people's living standards and the pursuit of quality of life, as well as the requirements for standardization, automation, and efficiency in the food processing industry, especially the rapid development of the fast food industry in recent years, there is a market demand in the food processing field for the automatic processing of large pieces of lamb chops into different strips or smaller pieces, or for the whole chicken or duck carcass to be cut (saved) into different smaller pieces to meet the customization needs of different consumers and for convenient use.

[0003] Currently, the cutting of pork, beef, mutton, fish, and other meat chunks or whole carcasses, including chicken, duck, and fish, is mostly done manually using cleavers and axes. This is inefficient, poses significant safety hazards, and easily leads to food hygiene problems. Furthermore, the cutting machines often have non-disassembly components, resulting in a loose structure and inconvenient maintenance. This makes operation and maintenance difficult for operators. Additionally, the auxiliary feed wheel assemblies are mostly spring-loaded, with complex structures and inflexible adjustments. During actual cutting, the height is not adjustable, leading to uneven cutting and increasing the difficulty of operating the equipment. Utility Model Content

[0004] In view of the above-mentioned defects or deficiencies in the prior art, the present invention provides a blade assembly structure and an automatic cutting machine.

[0005] To achieve the above objectives, the present invention provides a blade assembly structure, comprising:

[0006] The shell has a hollow structure inside, and openings are provided on both side walls along the length of the shell. The openings face the meat feed direction and are used for the meat to enter and leave the shell.

[0007] A first feeding component is detachably disposed within the housing. The first feeding component is disposed along the length of the housing and is connected to a power source. The first feeding component is used for feeding meat patties.

[0008] A cutting assembly is detachably disposed within the housing. The cutting assembly is drively connected to the first feeding assembly and is located on the rear side of the first feeding assembly along the meat cutting board conveying direction. The cutting assembly is used to cut the meat cutting board.

[0009] The second feeding component is detachably disposed within the housing. The second feeding component is drively connected to the cutting component and is located in front of the first feeding component along the meat strip conveying direction. The second feeding component is used for feeding the meat strip.

[0010] The mounting height of the second feed component is adjustable to match meat patties of different thicknesses.

[0011] Preferably, the second feed assembly includes a first rotating shaft, a plurality of first feed wheels, and an adjustment structure;

[0012] The first rotating shaft passes through multiple first feed wheels, and the multiple first feed wheels are parallel to each other and spaced apart.

[0013] The adjustment structure includes an adjustment plate, an adjustment platform, and an adjustment component. The first rotating shaft is installed at one end of the adjustment plate, the adjustment platform is installed on the inner wall of the housing, the other end of the adjustment plate is located close to the adjustment platform, the cutting component is installed on the adjustment plate and located between the two ends, the adjustment plate is fixedly connected to the first rotating shaft, and the adjustment plate is rotatably connected to the cutting component.

[0014] The adjusting member is movably mounted on the adjusting platform and passes through the platform. Its protruding end abuts against the adjusting plate. The length of the adjusting member extending out of the adjusting platform is adjustable to control the adjusting plate to rotate around the cutting component as the center, thereby adjusting the height of the first rotating shaft.

[0015] Preferably, the cutting assembly includes a second rotating shaft and a plurality of cutting blades, the second rotating shaft passing through the plurality of cutting blades, the plurality of cutting blades being parallel to each other and spaced apart, and the second rotating shaft being drively connected to the first feeding assembly;

[0016] A second sprocket is provided at the end of the second rotating shaft, and a first sprocket is provided at the end of the first rotating shaft. The first sprocket and the second sprocket are connected by a chain drive. The first sprocket is located on the side of the adjusting plate away from the cutting blade, and the second sprocket is located on the side of the adjusting plate away from the first feed wheel.

[0017] The second rotating shaft is rotatably connected to the adjusting plate and is located between the two ends of the adjusting plate.

[0018] Preferably, the adjusting plates are respectively disposed at both ends of the first rotating shaft, and the two adjusting plates are fixedly connected by a connecting column;

[0019] The adjusting plate includes a first plate and a second plate, which are fixedly connected and connected at an angle.

[0020] The first rotating shaft is installed at the end of the first plate away from the second plate, the second rotating shaft is installed at the connection between the first plate and the second plate, the connecting column is installed at the end of the second plate away from the first plate, and the end of the second plate is located close to the adjustment platform.

[0021] Preferably, the first feeding assembly includes a third rotating shaft and a plurality of second feeding wheels, wherein the third rotating shaft passes through the plurality of second feeding wheels, and the plurality of second feeding wheels are parallel to each other and spaced apart;

[0022] A protruding first auxiliary feeding structure is provided on the circumferential sidewall of the second feed wheel. The first auxiliary feeding structure is used to push the meat patty into the feed.

[0023] Two first auxiliary feeding structures are provided, and the two first auxiliary feeding structures are spaced apart along the axial direction of the second feeding wheel. When the first feeding assembly and the cutting assembly are installed on the housing, each cutting blade is inserted into the space between the two first auxiliary feeding structures.

[0024] Preferably, a protruding second auxiliary feeding structure is provided on the circumferential sidewall of the first feeding wheel, the second auxiliary feeding structure being used to advance the meat patty.

[0025] Preferably, the spacing between every two first feed wheels, between every two cutting blades, and between every two second feed wheels is adjustable.

[0026] Preferably, spacers are provided between every two first feed wheels, between every two cutting blades, and between every two second feed wheels;

[0027] The axial length of the spacer is adjustable.

[0028] Preferably, a first gear is provided at both ends of the second rotating shaft, and a second gear is provided at both ends of the third rotating shaft. The first gear is meshed with the second gear, and the second gear is meshed with the power source gear.

[0029] When the cutting assembly and the first feed assembly are mounted on the housing, the first gear and the second gear are located on the outside of the housing.

[0030] To achieve the above objectives, this utility model also provides an automatic dividing machine, including a blade assembly structure as described above, and further including a frame, a first conveyor belt, a second conveyor belt and a power unit;

[0031] The blade assembly structure, the first conveyor belt, and the second conveyor belt are installed on the top of the frame. The power unit is installed inside the frame. The blade assembly structure is located between the first conveyor belt and the second conveyor belt. The power unit is connected to the blade assembly structure in a transmission manner. The first conveyor belt is used to transport meat patties to the blade assembly structure. The power unit is used to control the blade assembly structure to cut the meat patties. The second conveyor belt is used to transport the meat patties cut by the blade assembly structure to the next process.

[0032] Based on this, the beneficial effects of this utility model are as follows:

[0033] 1. According to the present invention, the height of the second feeding component is adjustable and can be adjusted according to the height of the meat chops to be cut. By setting an adjustment plate, an adjustment platform, and an adjustment component, the adjustment component passes through the adjustment platform and its extended end abuts against one end of the adjustment plate. The other end of the adjustment plate is equipped with the second feeding component, and the cutting component is installed at the center of the adjustment plate. By controlling the extension length of the adjustment component, the magnitude of the abutment force with one end of the adjustment plate is controlled, so that the adjustment plate rotates around the cutting component as the center to adjust the height of the second feeding component, thereby adapting to different meat chops heights and improving the applicability of the overall device.

[0034] 2. In the solution of this utility model, each first feed wheel, each cutting blade, and each second feed wheel are spaced apart by partitions. The axial length of the partitions is adjustable. By replacing partitions with different axial lengths, the size of the interval space can be adjusted to meet the needs of cutting different widths and improve the applicability of the device.

[0035] 3. With the solution of this utility model, the components in the first feed assembly, the second feed assembly and the cutting assembly are detachable, and the first feed assembly, the second feed assembly and the cutting assembly are detachably connected to the housing, and the blade assembly structure is detachably connected to the automatic dividing machine, making the whole machine easy to disassemble, maintain and replace, and more convenient to use. Attached Figure Description

[0036] Other features, objects, and advantages of this application will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:

[0037] Figure 1 A schematic diagram illustrating the structure of a blade assembly according to one embodiment of the present invention;

[0038] Figure 2 This schematic diagram illustrates the structure of the second feed assembly according to one embodiment of the present invention.

[0039] Figure 3 A schematic diagram illustrating the structure of the adjustment structure according to one embodiment of the present invention;

[0040] Figure 4 A schematic diagram illustrating the structure of a cutting assembly according to one embodiment of the present invention;

[0041] Figure 5 This schematic diagram illustrates the structure of a first feed assembly according to one embodiment of the present invention.

[0042] Figure 6 This illustration shows one embodiment of the present invention. Figure 5 Enlarged schematic diagram;

[0043] Figure 7 A schematic diagram illustrating the structure of an automatic dividing machine according to one embodiment of the present invention;

[0044] Explanation of reference numerals in the attached drawings: 10-House, 20-First feed assembly, 201-Third rotary shaft, 202-Second feed wheel, 2021-First auxiliary feed structure, 203-Third fixing nut, 204-Second gear, 30-Cutting assembly, 301-Second rotary shaft, 302-Cutting blade, 303-Second sprocket, 304-Second fixing nut, 305-First gear, 40-Second feed assembly, 401-First rotary shaft Shaft, 402-First feed wheel, 4021-Second auxiliary feed structure, 403-Adjusting structure, 4031-Adjusting plate, 40311-First plate body, 40312-Second plate body, 4032-Adjusting platform, 4033-Adjusting component, 4034-Connecting column, 404-First fixing nut, 405-First sprocket, 50-Spacer sleeve, 60-Frame, 70-First conveyor belt, 80-Second conveyor belt, 90-Power unit. Detailed Implementation

[0045] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0046] The terminology used in the embodiments of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application. The singular forms "a," "the," and "the" as used in the embodiments of this application are also intended to include the plural forms unless the context clearly indicates otherwise.

[0047] It should be understood that although the terms first, second, third, etc., may be used to describe related structures in the embodiments of this application, these related structures should not be limited to these terms. These terms are only used to distinguish related structures from each other.

[0048] Depending on the context, the word "if" as used here can be interpreted as "when" or "when". Similarly, depending on the context, the phrase "if determined" can be interpreted as "when determined" or "when (the condition or event of the statement) is detected".

[0049] It should be noted that the directional terms such as "upper," "lower," "left," and "right" described in the embodiments of this application are used to describe the angles shown in the accompanying drawings and should not be construed as limiting the embodiments of this application. Furthermore, in the context, it should also be understood that when it is mentioned that an element is formed "upper" or "lower" of another element, it can not only be formed directly "upper" or "lower" of the other element, but also indirectly "upper" or "lower" of the other element through an intermediate element.

[0050] Figure 1 This schematic diagram illustrates the structure of the blade assembly according to one embodiment of the present invention, as shown below. Figure 1 As shown, a blade assembly structure of this utility model includes:

[0051] The housing 10 has a hollow structure inside, and openings (not shown in the figure) are provided on both side walls along the length of the housing 10. The openings face the meat feed direction and are used for the meat to enter and leave the housing 10.

[0052] The first feeding assembly 20 is detachably disposed inside the housing 10. The first feeding assembly 20 is disposed along the length of the housing 10. The first feeding assembly 20 is connected to the power source for transmission. When the first feeding assembly 20 rotates, the first feeding assembly 20 is used for feeding the meat patties.

[0053] The cutting assembly 30 is detachably disposed inside the housing 10. The cutting assembly 30 is connected to the first feeding assembly 20 and is located on the rear side of the first feeding assembly 20 along the meat strip conveying direction. When the cutting assembly 30 rotates, the cutting assembly 30 is used to cut the meat strip.

[0054] The second feeding assembly 40 is detachably disposed in the housing 10. The second feeding assembly 40 is connected to the cutting assembly 30 and is located in front of the first feeding assembly 20 along the meat strip conveying direction. The second feeding assembly 40 is used for feeding the meat strip.

[0055] The installation height of the second feed assembly 40 is adjustable to match chops of different thicknesses.

[0056] With this configuration, the first feeding component 20, the cutting component 30, and the second feeding component 40 are respectively installed inside the housing 10 and are detachably connected to the housing 10, making the whole unit easy to disassemble, maintain, and replace, and convenient to use. Furthermore, the installation height of the second feeding component 40 is adjustable. When cutting meat chops of different thicknesses, the height of the second feeding component 40 can be freely adjusted so that the meat chops can be smoothly positioned and conveyed backward, achieving adaptability to meat chops of different thicknesses and improving the applicability of the device.

[0057] Furthermore, Figure 2 This schematic diagram illustrates the structure of the second feed assembly according to one embodiment of the present invention. Figure 3 This schematic diagram illustrates the structure of the adjustment structure according to one embodiment of the present invention, as shown below. Figure 2 , 3 As shown:

[0058] The second feed assembly 40 includes a first rotating shaft 401, a plurality of first feed wheels 402 and an adjustment structure 403. The first rotating shaft 401 passes through the plurality of first feed wheels 402, and the plurality of first feed wheels 402 are parallel to each other and spaced apart.

[0059] The adjustment structure 403 includes an adjustment plate 4031, an adjustment platform 4032, and an adjustment component 4033. A first rotating shaft 401 is installed at one end of the adjustment plate 4031, the adjustment platform 4032 is installed on the inner wall of the housing 10, and the other end of the adjustment plate 4031 is located close to the adjustment platform 4032. A cutting component 30 is installed on the adjustment plate 4031 and located between the two ends. The adjustment plate 4031 is fixedly connected to the first rotating shaft 401, and the adjustment plate 4031 is rotatably connected to the cutting component 30.

[0060] Adjusting component 4033 is movably mounted on adjusting platform 4032. Adjusting component 4033 passes through adjusting platform 4032, and one of its extended ends abuts against adjusting plate 4031. The length of adjusting component 4033 extending out of adjusting platform 4032 is adjustable to control adjusting plate 4031 to rotate around cutting component 30 as center, thereby adjusting the height of first rotating shaft 401.

[0061] Specifically, multiple first feed rollers 402 are installed at intervals on the first rotating shaft 401, and spacers 50 are provided between the multiple first feed rollers 402. Each pair of first feed rollers 402 is spaced apart by spacers 50. At the same time, spacers 50 are detachable. By replacing spacers 50 with different axial lengths, the distance between each pair of first feed rollers 402 can be adjusted, thereby achieving adaptation to different meat cut widths and auxiliary feeding.

[0062] After multiple first feed wheels 402 and spacers 50 are installed on the first rotating shaft 401, the multiple first feed wheels 402 and spacers 50 are limited by installing first fixing nuts 404 at both ends of the whole. At the same time, when the first rotating shaft 401 is installed on the adjusting plate 4031, its two ends pass through the adjusting plate 4031. The first rotating shaft 401 is limited by setting bearing seats (not shown in the figure) at the ends of the first rotating shaft 401 that extend out of the adjusting plate 4031, so as to prevent it from separating from the adjusting plate 4031.

[0063] The adjusting component 4033 is inserted through and movably mounted on the adjusting platform 4032. The two can be threaded together. A threaded hole is opened in the adjusting platform 4032. The adjusting component 4033 is a screw. After the adjusting component 4033 is inserted into the threaded hole of the adjusting platform 4032, the extension length of the extended end of the adjusting component 4033 can be adjusted by rotating the adjusting component 4033. The extended end of the adjusting component 4033 abuts against the adjusting plate 4031. When the adjusting component 4033 has different extension lengths, the abutment force between it and the adjusting plate 4031 is different. For example, when the extension length of the adjusting component 4033 increases, it presses down on one end of the adjusting plate 4031, causing the adjusting plate 4031 to rotate around the cutting component 30 as the center, causing the other end of the adjusting plate 4031 to rise. The first rotating shaft 401 is installed at this end. When this end rises, the first rotating shaft 401 rises synchronously, thereby realizing the adjustment of the installation height of the second feeding component 40 and adapting to meat chops of different thicknesses.

[0064] Furthermore, Figure 4 This schematic diagram illustrates the structure of a cutting assembly according to one embodiment of the present invention, as shown below. Figure 4 As shown:

[0065] The cutting assembly 30 includes a second rotating shaft 301 and a plurality of cutting blades 302. The second rotating shaft 301 passes through the plurality of cutting blades 302. The plurality of cutting blades 302 are parallel to each other and spaced apart. The second rotating shaft 301 is connected to the first feed assembly 20 in a transmission manner.

[0066] A second sprocket 303 is provided at the end of the second rotating shaft 301, and a first sprocket 405 is provided at the end of the first rotating shaft 401. The first sprocket 405 and the second sprocket 303 are connected by chain drive. The first sprocket 405 is located on the side of the adjusting plate 4031 away from the cutting blade 302, and the second sprocket 303 is located on the side of the adjusting plate 4031 away from the first feed wheel 402.

[0067] The second rotating shaft 301 is rotatably connected to the adjusting plate 4031 and is located between the two ends of the adjusting plate 4031.

[0068] Specifically, multiple cutting blades 302 are spaced apart by spacers 50. Similarly, spacers 50 can be detached from the second rotating shaft 301. By replacing spacers 50 with different axial lengths, the spacing between the multiple cutting blades 302 can be adjusted, thereby enabling the meat cutlets to be cut into different widths, fully meeting the needs of users and improving the overall applicability of the device.

[0069] Furthermore, a second fixing nut 304 is provided at both ends of the multiple cutting blades 302 and the spacer 50 to limit the multiple cutting blades 302 and the spacer 50, and to fix them to the second rotating shaft 301.

[0070] The first sprocket 405 is sleeved on the first rotating shaft 401 and is positioned near one end of it. The second sprocket 303 is sleeved on the second rotating shaft 301 and is positioned near one end of it. When the first rotating shaft 401 and the second rotating shaft 301 are mounted on the adjusting plate 4031, the first sprocket 405 and the second sprocket 303 are located on the same side and are both located on the outside of the adjusting plate 4031.

[0071] The first sprocket 405 and the second sprocket 303 are driven by a chain. When the first feed assembly 20 is driven to rotate by the power source, it controls the second rotating shaft 301 to rotate, and then controls the first rotating shaft 401 to rotate synchronously through the chain drive to complete the cutting action.

[0072] Furthermore, the adjusting plates 4031 are respectively disposed at both ends of the first rotating shaft 401, and the two adjusting plates 4031 are fixedly connected by the connecting column 4034;

[0073] The adjusting plate 4031 includes a first plate body 40311 and a second plate body 40312, which are fixedly connected and are connected at an angle.

[0074] The first rotating shaft 401 is installed at the end of the first plate 40311 away from the second plate 40312, the second rotating shaft 301 is installed at the connection between the first plate 40311 and the second plate 40312, the connecting column 4034 is installed at the end of the second plate 40312 away from the first plate 40311, and the end of the second plate 40312 is set close to the adjustment platform 4032.

[0075] Specifically, the included angle between the first plate 40311 and the second plate 40312 can be set as a straight angle, an obtuse angle or a right angle, preferably an obtuse angle. By setting the two as an obtuse angle, the overall installation volume can be reduced within a certain range, making the components compact and reducing the overall size of the machine.

[0076] Furthermore, Figure 5This schematic diagram illustrates the structure of a first feed assembly according to one embodiment of the present invention. Figure 6 This illustration shows one embodiment of the present invention. Figure 5 Enlarged schematic diagram, such as Figure 5 , 6 As shown:

[0077] The first feed assembly 20 includes a third rotating shaft 201 and a plurality of second feed wheels 202. The third rotating shaft 201 passes through the plurality of second feed wheels 202, and the plurality of second feed wheels 202 are parallel to each other and spaced apart.

[0078] A protruding first auxiliary feeding structure 2021 is provided on the circumferential side wall of the second feed wheel 202. The first auxiliary feeding structure 2021 is used to push the meat chops into the feed.

[0079] Two first auxiliary feed structures 2021 are provided, and the two first auxiliary feed structures 2021 are spaced apart along the axial direction of the second feed wheel 202. When the first feed assembly 20 and the cutting assembly 30 are installed on the housing 10, each cutting blade 302 is inserted into the space between the two first auxiliary feed structures 2021.

[0080] Specifically, the multiple second feed wheels 202 are also spaced apart by spacers 50. The spacers 50 are detachably connected to the third rotating shaft 201, so that different spacings between the multiple second feed wheels 202 can be adjusted by replacing spacers 50 with different axial lengths.

[0081] A third fixing nut 203 is provided at both ends of the multiple second feed wheels 202 and the spacer 50 to limit the multiple second feed wheels 202 and the spacer 50, and to fix them to the third rotating shaft 201.

[0082] The circumferential sidewall of the first auxiliary feeding structure 2021 is segmented and inclined respectively. When the third rotating shaft 201 rotates, the circumferential sidewall of the first auxiliary feeding structure 2021 gradually tilts outward along the rotation direction. With this configuration, when the first auxiliary feeding structure 2021 rotates, the height difference between the end of the first segment and the beginning of the second segment can better promote the feeding of the meat cutlet and ensure that the feeding of the meat cutlet is stable.

[0083] Meanwhile, when the first feed assembly 20 and the cutting assembly 30 are installed on the housing 10, each cutting blade 302 is inserted between the two first auxiliary feed structures 2021, which enables the cutting blade 302 to achieve a better cutting effect and makes the two installations compact. Similarly, when the second feed assembly 40 is installed on the housing 10, each cutting blade 302 is inserted between the two first feed wheels 402, which also makes the two installations compact and the overall structure of the machine compact.

[0084] Furthermore, such as Figure 2 As shown, a protruding second auxiliary feeding structure 4021 is provided on the circumferential sidewall of the first feed wheel 402. The second auxiliary feeding structure 4021 can improve the friction between the first feed wheel 402 and the meat cutlet, and enable the second feeding assembly 40 to push the meat cutlet feed more smoothly.

[0085] Furthermore, such as Figure 4 , 5 As shown, a first gear 305 is provided at both ends of the second rotating shaft 301, and a second gear 204 is provided at both ends of the third rotating shaft 201. The first gear 305 is meshed with the second gear 204, and the second gear 204 is meshed with the power source gear.

[0086] When the first feed assembly 20 and the cutting assembly 30 are mounted on the housing 10, the first gear 305 and the second gear 204 are located on the outside of the housing 10.

[0087] Furthermore, Figure 7 This schematic diagram illustrates the structure of an automatic dividing machine according to one embodiment of the present invention, as shown below. Figure 7 As shown, an automatic cutting machine of this utility model includes the above-mentioned blade assembly structure, as well as a frame 60, a first conveyor belt 70, a second conveyor belt 80, and a power unit 90.

[0088] The blade assembly structure, the first conveyor belt 70, and the second conveyor belt 80 are installed on the top of the frame 60. The power unit 90 is installed inside the frame 60. The blade assembly structure is located between the first conveyor belt 70 and the second conveyor belt 80. The power unit 90 is connected to the blade assembly structure for transmission. The first conveyor belt 70 is used to transport meat patties to the blade assembly structure. The power unit 90 is used to control the blade assembly structure to cut the meat patties. The second conveyor belt 80 is used to transport the meat patties cut by the blade assembly structure to the next process.

[0089] In summary, this utility model provides a blade assembly structure in which all components are detachable, making it convenient for disassembly, maintenance, and cleaning. It is easy to use, and the height adjustment of the second feed assembly 40 allows it to be used for cutting meat chops of different thicknesses. Furthermore, by changing the spacers 50 with different axial lengths, it is possible to cut meat chops of different widths, making the whole machine highly versatile.

[0090] The above description is merely a preferred embodiment of this application. Those skilled in the art should understand that the scope of disclosure in this application is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the above-described concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features with similar functions disclosed in this application.

Claims

1. A blade assembly structure, characterized in that, include: The shell has a hollow structure inside, and openings are provided on both side walls along the length of the shell. The openings face the meat feed direction and are used for the meat to enter and leave the shell. A first feeding component is detachably disposed within the housing. The first feeding component is disposed along the length of the housing and is connected to a power source. The first feeding component is used for feeding meat patties. A cutting assembly is detachably disposed within the housing. The cutting assembly is drively connected to the first feeding assembly and is located on the rear side of the first feeding assembly along the meat cutting board conveying direction. The cutting assembly is used to cut the meat cutting board. The second feeding component is detachably disposed within the housing. The second feeding component is drively connected to the cutting component and is located in front of the first feeding component along the meat strip conveying direction. The second feeding component is used for feeding the meat strip. The mounting height of the second feed component is adjustable to match meat patties of different thicknesses.

2. The blade assembly structure according to claim 1, characterized in that, The second feed assembly includes a first rotary shaft, a plurality of first feed wheels, and an adjustment structure; The first rotating shaft passes through multiple first feed wheels, and the multiple first feed wheels are parallel to each other and spaced apart. The adjustment structure includes an adjustment plate, an adjustment platform, and an adjustment component. The first rotating shaft is installed at one end of the adjustment plate, the adjustment platform is installed on the inner wall of the housing, the other end of the adjustment plate is located close to the adjustment platform, the cutting component is installed on the adjustment plate and located between the two ends, the adjustment plate is fixedly connected to the first rotating shaft, and the adjustment plate is rotatably connected to the cutting component. The adjusting member is movably mounted on the adjusting platform and passes through the platform. Its protruding end abuts against the adjusting plate. The length of the adjusting member extending out of the adjusting platform is adjustable to control the adjusting plate to rotate around the cutting component as the center, thereby adjusting the height of the first rotating shaft.

3. The blade assembly structure according to claim 2, characterized in that, The cutting assembly includes a second rotating shaft and a plurality of cutting blades. The second rotating shaft passes through the plurality of cutting blades, which are parallel to each other and spaced apart. The second rotating shaft is connected to the first feeding assembly in a driving connection. A second sprocket is provided at the end of the second rotating shaft, and a first sprocket is provided at the end of the first rotating shaft. The first sprocket and the second sprocket are connected by a chain drive. The first sprocket is located on the side of the adjusting plate away from the cutting blade, and the second sprocket is located on the side of the adjusting plate away from the first feed wheel. The second rotating shaft is rotatably connected to the adjusting plate and is located between the two ends of the adjusting plate.

4. The blade assembly structure according to claim 3, characterized in that, The adjusting plates are respectively disposed at both ends of the first rotating shaft, and the two adjusting plates are fixedly connected by a connecting column; The adjusting plate includes a first plate and a second plate, which are fixedly connected and connected at an angle. The first rotating shaft is installed at the end of the first plate away from the second plate, the second rotating shaft is installed at the connection between the first plate and the second plate, the connecting column is installed at the end of the second plate away from the first plate, and the end of the second plate is located close to the adjustment platform.

5. The blade assembly structure according to claim 3, characterized in that, The first feed assembly includes a third rotating shaft and a plurality of second feed wheels, wherein the third rotating shaft passes through the plurality of second feed wheels, and the plurality of second feed wheels are parallel to each other and spaced apart; A protruding first auxiliary feeding structure is provided on the circumferential sidewall of the second feed wheel. The first auxiliary feeding structure is used to push the meat patty into the feed. Two first auxiliary feeding structures are provided, and the two first auxiliary feeding structures are spaced apart along the axial direction of the second feeding wheel. When the first feeding assembly and the cutting assembly are installed on the housing, each cutting blade is inserted into the space between the two first auxiliary feeding structures.

6. The blade assembly structure according to claim 2, characterized in that, A protruding second auxiliary feeding structure is provided on the circumferential sidewall of the first feed wheel, and the second auxiliary feeding structure is used to propel the meat patty into the feed.

7. The blade assembly structure according to claim 5, characterized in that, The spacing between each pair of first feed wheels, between each pair of cutting blades, and between each pair of second feed wheels is adjustable.

8. The blade assembly structure according to claim 7, characterized in that, Each pair of first feed wheels, each pair of cutting blades, and each pair of second feed wheels are spaced apart by spacers; The axial length of the spacer is adjustable.

9. A blade assembly structure according to claim 5, characterized in that, A first gear is provided at both ends of the second rotating shaft, and a second gear is provided at both ends of the third rotating shaft. The first gear and the second gear are meshed together, and the second gear is meshed together with the power source gear. When the cutting assembly and the first feed assembly are mounted on the housing, the first gear and the second gear are located on the outside of the housing.

10. An automatic dividing machine, characterized in that, The tool assembly structure includes any one of claims 1-9, and further includes a frame, a first conveyor belt, a second conveyor belt, and a power unit; The blade assembly structure, the first conveyor belt, and the second conveyor belt are installed on the top of the frame. The power unit is installed inside the frame. The blade assembly structure is located between the first conveyor belt and the second conveyor belt. The power unit is connected to the blade assembly structure in a transmission manner. The first conveyor belt is used to transport meat patties to the blade assembly structure. The power unit is used to control the blade assembly structure to cut the meat patties. The second conveyor belt is used to transport the meat patties cut by the blade assembly structure to the next process.