Automatic picking hay cutter and grass block machine

By designing the picking teeth to extend along the tangent of the rotating shaft and in the opposite direction of the shaft's rotation, combined with the vertical tooth picking component and spiral conveyor belt, the problem of straw snagging in the picking device was solved, achieving efficient straw picking and conveying, and improving the working efficiency and reliability of the automatic straw picking and chopping machine.

CN223872864UActive Publication Date: 2026-02-06吴国贤
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202423110315.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2026-02-06
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

The existing automatic chaff picker's picking device is prone to snagging grass, which affects the machine's efficiency and ease of operation.

Method used

The design incorporates picking teeth that extend tangentially along the shaft, which rotates towards the support plate. The direction of the picking teeth's extension is opposite to the direction of the shaft's rotation, providing an upward lifting force. Combined with the vertical tooth picking assembly and the spiral conveyor belt, this optimizes the straw picking and conveying process.

Benefits of technology

It improved picking efficiency, reduced the risk of straw getting stuck, ensured smooth straw transport, and enhanced the machine's working efficiency and reliability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223872864U_ABST
    Figure CN223872864U_ABST
Patent Text Reader

Abstract

The utility model discloses an automatic picking hay cutter and a grass block machine. The automatic picking hay cutter comprises a picking mechanism, a conveying mechanism and a hay cutter mechanism which are sequentially connected, the picking mechanism comprises a bearing plate, and the first end of the picking mechanism is connected with the conveying mechanism; the picking device comprises a rotating shaft connected with the second end of the bearing plate and a plurality of picking teeth arranged on the outer surface of the rotating shaft, and the picking teeth extend in the tangential direction of the rotating shaft; the rotating shaft rotates towards the bearing plate, and the tangent line of the rotating direction of the rotating shaft is opposite to the extending direction of the picking teeth. And the vertical tooth type picking assembly is arranged above the bearing plate. According to the scheme, the picking teeth extend in the tangential direction of the rotating shaft, the rotating shaft rotates towards the bearing plate, and the tangential direction of the rotating direction of the rotating shaft is opposite to the extending direction of the picking teeth. Therefore, the picking teeth can provide upward picking acting force, straw can be picked up and moved to the bearing plate instead of being pressed between the picking teeth, and the risk of straw clamping is reduced.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model generally relates to agricultural equipment technical field, more specifically, the utility model relates to an automatic pick-up straw chopper, further, the utility model still relates to a straw block machine. BACKGROUND

[0002] With the modernization of agricultural equipment, combine harvesters have become the main tool for harvesting crops, and after harvesting, the straw is usually scattered in the field. However, the traditional processing method such as burning the straw not only causes serious air pollution, but also may cause a fire, posing a great threat to the environment and the safety of the life and property of farmers. Therefore, in order to make full use of straw energy, reduce air pollution, and protect the safety of the life and property of farmers, people have begun to explore the rational utilization of straw, such as straw power generation, straw carbonization, fertilizer, base material and feed processing, etc.

[0003] In the aspect of feed processing of straw, the automatic pick-up straw chopper is an effective tool that can process straw into feed suitable for animals to eat. This machine mainly consists of a pick-up device, a conveying device and a straw cutter. The pick-up device includes a roller and a plurality of pick-up teeth arranged radially along the roller. In the use process, the pick-up device, under the synergistic action of other components, controls the rotation of the roller so that the pick-up teeth can pick up the straw and put it on the conveying device, and then the straw is transported to the straw cutter by the conveying device for cutting and processing, and finally the feed is made. However, the existing automatic pick-up straw chopper has a problem that the pick-up device is easy to hang grass, which affects the efficiency and convenience of operation of the machine.

[0004] Therefore, it is urgent to provide an automatic pick-up straw chopper and a straw block machine so that the pick-up device is not easy to hang grass, thereby improving the working efficiency of the automatic pick-up straw chopper. SUMMARY

[0005] In order to at least solve the technical problems mentioned above, the utility model provides an automatic pick-up straw chopper and a straw block machine which are not easy to hang grass and have high working efficiency.

[0006] In a first aspect, an automatic pickup mower is provided, which includes a pickup mechanism, a conveying mechanism and a chopping mechanism connected in sequence, the pickup mechanism includes a carrier plate with an arc-shaped upper surface, and a first end of the carrier plate in the height direction is connected to the conveying mechanism; a pickup device, the pickup device includes a rotating shaft connected to a second end of the carrier plate in the height direction, and a plurality of pickup teeth arranged on the outer surface of the rotating shaft, and the pickup teeth are arranged in the tangential direction of the rotating shaft; the rotating shaft rotates towards the carrier plate, and the tangent of the rotating direction of the rotating shaft is opposite to the extension direction of the pickup teeth; and a vertical tooth pickup assembly (1019) is arranged above the carrier plate and is used to pick up the pickup on the carrier plate to the conveying mechanism, and the conveying mechanism transports the pickup to the chopping mechanism for processing.

[0007] In some embodiments, the pickup teeth include an extension section; the pickup teeth are respectively provided with a first end and a second end at both ends in the length extension direction, the first end of one pickup tooth abuts against the peripheral wall of another pickup tooth, and the region between the abutting position and the second end of the another pickup tooth forms the extension section.

[0008] In some embodiments, the pickup device further includes a plurality of supports arranged in the radial direction of the rotating shaft, one end of the pickup teeth abuts against the peripheral wall of one support, and the other end abuts against the extension end of another support and continues to extend.

[0009] In some embodiments, the pickup device includes N groups of pickup tooth assemblies arranged at intervals in the length direction of the rotating shaft, each pickup tooth assembly includes a plurality of pickup teeth arranged in the circumferential direction of the rotating shaft, and N is a positive integer not less than 2. In some embodiments, the second end of the carrier plate away from the conveying mechanism is provided with a sleeve, the rotating shaft is installed in the sleeve, and the outer periphery of the sleeve and the carrier plate are both provided with hollow portions to avoid the pickup teeth.

[0010] In some embodiments, the conveying mechanism includes a conveying belt, and a plurality of spiral assemblies arranged at intervals above the conveying belt in the length direction of the conveying belt.

[0011] In some embodiments, the spiral assembly includes a rotating shaft and a spiral piece arranged on the rotating shaft, and the spiral assembly is arranged in the width direction of the conveying belt.

[0012] In some embodiments, the chopping mechanism includes a cylindrical housing and a chopping knife arranged in the housing, and the housing is provided with a feed inlet, wherein the feed inlet is connected to one end of the conveying belt in the length direction.

[0013] In some embodiments, the feed inlet is located below the central axis of the housing.

[0014] In a second aspect, the utility model provides a grass block machine, the grass block machine includes the automatic pickup fodder chopper, and with the fodder chopper is connected the briquetting device, the briquetting device is pressed into the block structure with the chopped material.

[0015] Through the automatic pickup fodder chopper as above, the pickup tooth on the pickup device in the utility model is arranged along the tangent direction of the rotation axis, the rotation axis is rotated towards the bearing plate, and the tangent of the rotation direction of the rotation axis is opposite to the extension direction of the pickup tooth. Compared with the scheme that the pickup tooth is arranged along the radial direction of the rotation axis, the pickup tooth in the scheme can provide an upward force for the straw, which helps the straw to be more effectively picked up and moved to the bearing plate, instead of being pressed between the pickup teeth, thereby reducing the risk of grass clamping. Further, in some embodiments, by arranging the feed inlet on the fodder chopper below the central axis of the housing, the vertical height of the transmission device can be shortened, and the pickup object can be more easily picked up by the pickup device and moved to the conveying device. BRIEF DESCRIPTION OF DRAWINGS

[0016] The above and other objects, features and advantages of the exemplary embodiments of the present application will be more apparent from the following detailed description read in conjunction with the accompanying drawings, in which several embodiments of the present application are shown by way of example, and wherein the same reference numerals refer to the same or similar components throughout the several views. In the drawings:

[0017] Figure 1 A structural schematic diagram of the automatic pickup fodder chopper of the utility model is shown;

[0018] Figure 2 A structural schematic diagram of a pickup device of the utility model is shown;

[0019] Figure 3 A structural schematic diagram of a pickup device of the utility model is shown;

[0020] Figure 4 A structural schematic diagram of a pickup device of the utility model is shown;

[0021] Figure 5 A structural schematic diagram of the fodder chopper mechanism of the utility model is shown.

[0022] In the drawings: 100, automatic pickup fodder chopper;

[0023] 101, pickup mechanism; 102, conveying mechanism; 103, fodder chopper mechanism;

[0024] 1011, carrier plate; 1011-1, hollow part; 1012, pickup; 1013, rotating shaft; 1014, pickup tooth assembly; 1015, pickup tooth; 1016, extension section; 1018, support; 1019, drop-type pickup assembly;

[0025] 1021, rotating shaft; 1022, spiral blade; 1023, conveying belt;

[0026] 1031, housing; 1032, cutter; 1033, feeding port; 1034, discharging port. DETAILED DESCRIPTION

[0027] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0028] It should be understood that the terms "include" and "contain" used in the specification and claims of the present application indicate the existence of the described features, whole, steps, operations, elements and / or components, but do not exclude the existence or addition of one or more other features, whole, steps, operations, elements, components and / or sets thereof.

[0029] In the description of the present application, it should be noted that, unless otherwise explicitly specified and limited, if the terms "mount", "connect", "connect" appear, they should be understood in a broad sense, for example, can be fixedly connected, can also be detachably connected, or integrally connected; can be mechanically connected, can also be electrically connected; can be directly connected, can also be indirectly connected through an intermediate medium, can be the communication between two elements inside. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0030] The specific embodiments of the present application will be described in detail below with reference to the drawings.

[0031] As Figure 1The utility model provides a kind of automatic pickup straw cutter 100, the automatic pickup straw cutter 100 includes pickup mechanism 101, conveying mechanism 102 and straw cutter mechanism 103 connected in turn. Among them, pickup mechanism 101 is used to be in contact with pickup object on ground, and pickup object is picked up to conveying mechanism 102, then pickup object is transported to straw cutter mechanism 103 by conveying mechanism 102 and is handled in sectioning. The pickup object in the present scheme is straw, the straw does not need to be manually put into straw cutter, but is transported to straw cutter mechanism 103 by pickup mechanism 101 and conveying mechanism 102 and is cut to be made into feed suitable for animal.

[0032] Specifically, pickup mechanism 101 in the present scheme includes bearing plate 1011, pickup 1012 connected with bearing plate 1011 and vertical-tooth type pickup assembly 1019 arranged above bearing plate 1011. More specifically, bearing plate 1011 has arc-shaped upper surface, the first end of height direction is connected with conveying mechanism 102, the second end of height direction is connected with pickup 1012, wherein the position of first end is higher than the position of second end. Pickup 1012 includes cylindrical rotating shaft 1013 connected with the second end of bearing plate 1011, and a plurality of pickup teeth 1015 with preset extension length are arranged along the circumference of rotating shaft 1013. Pickup tooth 1015 is arranged along the tangent direction of rotating shaft 1013, and the rotating shaft 1013 in the present scheme rotates towards bearing plate 1011, and the extension direction of pickup tooth 1015 is opposite to the tangent of the rotating direction of rotating shaft 1013. The bearing plate of the present scheme has support structure for fixing vertical-tooth type pickup assembly 1019, and the vertical-tooth type pickup assembly 1019 at least includes rotating shaft, and a plurality of grate teeth are arranged along the axial direction of rotating shaft, and the grate teeth are arranged along the radial direction of rotating shaft. When the machine operates, the rotating power of rotating shaft is transmitted to grate tooth, so that they rotate synchronously. Grate tooth contacts with straw on bearing plate in the process of rotation, and pushes straw upwards and forwards through its rotating motion, and finally transports straw to conveying mechanism.

[0033] When using, rotating shaft 1013 on pickup 1012 is controlled to rotate, so that pickup tooth 1015 can effectively contact with straw on ground. With the continuous rotation of rotating shaft 1013, straw is picked up from ground by the rotating force generated by pickup tooth 1015, and is moved to bearing plate 1011. In this process, the design of pickup tooth 1015 ensures that straw can be smoothly guided to the specified position of bearing plate 1011. Then, straw is lifted by the action of grate tooth, and is transferred from bearing plate 1011 to conveying structure. Conveying mechanism 102 then transports straw to straw cutter mechanism 103 for cutting.

[0034] In this scheme, since the pickup teeth 1015 are arranged in the tangential direction of the rotating shaft 1013, and the rotating shaft 1013 rotates towards the bearing plate 1011, and the tangent of the rotating direction of the rotating shaft 1013 is opposite to the extension direction of the pickup teeth 1015. Compared with the scheme in which the pickup teeth 1015 are arranged in the radial direction of the rotating shaft 1013, the pickup teeth 1015 in this scheme can provide an upward force to the straw, which helps the straw to be picked up more effectively and moved to the bearing plate 1011, rather than being pressed between the pickup teeth 1015, thereby reducing the risk of grass clamping. Therefore, this scheme not only improves the pickup efficiency, but also reduces the machine failure caused by the straw being stuck, so that the whole pickup process is more smooth and efficient.

[0035] As can be understood by those skilled in the art, the number of pickup teeth 1015 in this scheme is flexible and is not limited to a certain fixed value. This means that according to the actual application requirements and design considerations, different numbers of pickup teeth 1015 can be configured on the pickup device 1012, such as 2, 3, 4 or more. This design allows the pickup efficiency and effect to be optimized according to the specific working environment or straw density, ensuring that the automatic pickup chopper 100 can adapt to different working conditions, thereby improving its versatility and practicality. By adjusting the number of pickup teeth 1015, the interaction between the pickup device 1012 and the straw can be better controlled, thereby improving the overall pickup performance.

[0036] In a specific embodiment, the vertical tooth type pickup assembly 1019 in this application is the vertical tooth type pickup device described in the automatic pickup chopper hay press machine with publication number CN216087724U.

[0037] As shown in Figure 2 In a specific embodiment, the pickup device 1012 has a plurality of pickup teeth 1015 arranged at intervals in the circumferential direction. The pickup teeth 1015 in this scheme are cylindrical structures with a predetermined extension length, one end of which is connected to the outer circumference of the rotating shaft 1013, and the other end is arranged in the tangential direction of the rotating shaft 1013.

[0038] As shown in Figure 3As shown, in one specific embodiment, two adjacent pickup teeth 1015 are connected to each other. The pickup teeth 1015 in this embodiment are cylindrical structures with a preset length, and each pickup tooth 1015 has a first end and a second end at the two ends of the length extension direction. Two adjacent pickup teeth 1015 are connected to each other by abutting the first end of one pickup tooth 1015 with the peripheral wall of the other pickup tooth 1015, forming a pickup surface. In this connection mode, the first end of one pickup tooth 1015 abuts the peripheral wall of the adjacent pickup tooth 1015, and the area between this abutment point and the second end of the adjacent pickup tooth 1015 constitutes an extension section 1016 of the pickup tooth 1015. In this embodiment, the provision of the pickup surface helps the smooth transition of the straw from one pickup tooth 1015 to the next during the pickup process, reducing the possibility of the straw being pinched between the extension sections 1016, and improving the working efficiency and reliability of the automatic pickup mower 100.

[0039] As shown, Figure 4 In one specific embodiment, the pickup device 1012 not only includes pickup teeth 1015, but also includes a plurality of support members 1018 arranged radially along the rotating shaft 1013. These support members 1018 not only provide structural stability to the pickup device 1012, but are also crucial for the proper positioning of the pickup teeth 1015.

[0040] Specifically, the number of pickup teeth 1015 in this embodiment matches the number of support members 1018, ensuring that each pickup tooth 1015 is properly supported. More specifically, the first end of a pickup tooth 1015 tightly abuts the peripheral wall of a support member 1018, while the second end abuts the extension end of the adjacent support member 1018 and continues to extend, forming a continuous pickup surface. This design allows the pickup teeth 1015 to effectively contact the straw on the ground when the rotating shaft 1013 rotates, and to pick up and transport the straw to the carrier plate 1011 through the force generated by rotation.

[0041] In this embodiment, the circumferential positioning of the support members 1018 is crucial for the accurate assembly and function realization of the pickup device 1012 during manufacturing, ensuring the consistency and reliability of the pickup teeth 1015 during rotation, thereby improving the working efficiency and durability of the entire pickup device 1012. With this carefully designed pickup device 1012 structure, the automatic pickup mower 100 can more efficiently complete the pickup of straw.

[0042] As understood by those skilled in the art, the shape of the pickup teeth 1015 in this embodiment is not specifically limited, and can be the square structure described in the above embodiments, or a polyhedral structure.

[0043] It is worth mentioning that in the above scheme, in the design of the automatic pickup header 100, the pickup 1012 is composed of N groups of pickup tooth assemblies 1014, which are arranged at intervals along the length direction of the rotating shaft 1013, where N is a positive integer not less than 2, which ensures that the pickup 1012 has enough pickup tooth assemblies 1014 to cover the required working width.

[0044] Each group of pickup tooth assemblies 1014 includes a plurality of pickup teeth 1015, which are uniformly distributed along the circumference of the rotating shaft 1013. Such a design enables the pickup 1012 to effectively pick up the straw on the ground through the coordinated action of each pickup tooth assembly 1014 when the rotating shaft 1013 rotates.

[0045] In the above scheme, the structure of the carrier plate 1011 is carefully designed to meet the operational requirements of the pickup 1012. The second end of the carrier plate 1011, i.e. the end away from the conveying mechanism 102, is provided with a sleeve, which serves as a mounting seat for the rotating shaft 1013. The rotating shaft 1013 is stably mounted inside the sleeve, ensuring the stability and accuracy of the rotating shaft 1013 during rotation. In order to enable the pickup teeth 1015 to pass smoothly during rotation, specific hollow parts 1011-1 are designed on the outer periphery of the sleeve and on the carrier plate 1011. These hollow parts 1011-1 provide the necessary space for the pickup teeth 1015, so that the pickup teeth 1015 do not interfere with the carrier plate 1011 and the sleeve during rotation, thereby ensuring the efficient operation of the pickup 1012 and the smooth pickup of the straw. Such a design not only improves the working performance of the pickup 1012, but also helps to reduce the wear and tear that may be caused by the friction of mechanical parts, prolonging the service life of the machine.

[0046] In one specific embodiment, the automatic pickup mower 100 further comprises a conveying mechanism 102 responsible for transporting the straw collected by the pickup 1012 into the mowing mechanism 103. Specifically, the conveying mechanism 102 is mainly composed of a conveyor belt 1023 and a plurality of spiral assemblies to ensure smooth transportation of the straw. The conveyor belt 1023 is designed with a preset extension length, providing a continuous conveying surface for carrying and moving the straw. Above the conveying surface of the conveyor belt 1023, a number of spiral assemblies are arranged at uniform intervals, which are arranged along the length direction of the conveyor belt 1023 to ensure uniform distribution of the straw during transportation. Each spiral assembly is composed of a rotating shaft 1021 and a spiral blade 1022, which are arranged along the width direction of the conveyor belt 1023, so that the spiral assembly can uniformly distribute the straw in the width direction of the conveyor belt 1023 when rotating. This design not only improves the conveying efficiency, but also helps to avoid the accumulation and blockage of the straw during transportation, ensuring that the straw can be uniformly and continuously transported into the mowing mechanism 103 for cutting processing. Through the design of this efficient conveying mechanism 102, the automatic pickup mower 100 can achieve rapid and uniform transportation of the straw, thereby improving the overall work efficiency.

[0047] As shown in Figure 5 In one specific embodiment, the mowing machine in the automatic pickup mower 100 is mainly composed of a cylindrical shell 1031 and an internal mowing knife 1032 for effective cutting of the straw. The shell 1031 is provided with an inlet 1033 connected to one end of the length direction of the conveyor belt 1023, ensuring that the straw can be smoothly transported from the conveyor belt 1023 into the mowing mechanism 103. In particular, the center of the inlet 1033 in this scheme is deliberately configured on a plane lower than the center height of the mowing knife 1032. That is, the vertical height of the center of the inlet 1033 is lower than the vertical height of the center of the mowing knife 1032. This layout means that the center point of the inlet 1033 is lower in height than the center of the mowing knife 1032, so that the height of the transmission belt opposite the inlet 1033 is lowered. This arrangement facilitates the work of the pickup mechanism, allowing the pickup 1012 to more easily pick up and transport the straw onto the conveyor belt 1023.

[0048] As understood by those skilled in the art, the automatic pickup mower 100 in this scheme can also be connected with a collection device connected to the discharge port 1034 of the mowing mechanism 103 for collecting the mowed straw.

[0049] In a second aspect, the utility model provides a grass block machine, the grass block machine includes the automatic pickup fodder chopper 100 above, and with the fodder chopper connects the briquetting device, the briquetting device is pressed into the block structure with chopped material.

[0050] The utility model further provides a grass block machine, the grass block machine includes the automatic pickup fodder chopper 100 above, and further include the fan and briquetting device with fodder chopper connection. That is to say, the grass block machine provided by the scheme is a kind of integrated automatic pickup fodder chopper 100, fan and high-efficiency agricultural equipment of briquetting device. Its work flow starts from automatic pickup fodder chopper 100, and the automatic pickup fodder chopper 100 is responsible for picking up and conveying the straw in field to fodder mechanism 103 and cuts. After straw is handled into appropriate length by fodder chopper, immediately be inhaled and transported to briquetting device by fan. In briquetting device, straw is compressed into compact block, to facilitate storage and transportation. After briquetting, these grass blocks are exported and bagged, to facilitate subsequent transportation and use. The entire process realizes the automation from straw pickup, cutting, conveying, compression to bagging, significantly improves production efficiency and reduces labor intensity.

[0051] Although the utility model has shown and described multiple embodiments of the utility model in the present paper, it is obvious for those skilled in the art that such embodiments are only provided in the mode of example. Those skilled in the art can think of many changes, changes and alternative ways without deviating from the idea and spirit of the utility model. It should be understood that various alternative solutions to the utility model embodiments described in the present paper can be adopted in the process of practicing the utility model. The appended claims are intended to define the scope of protection of the utility model and thus cover equivalent or alternative solutions within the scope of these claims.

Claims

1. An automatic pickup swather (100) comprising, in sequence, a pickup mechanism (101), a transport mechanism (102) and a swathing mechanism (103), characterised in that: The picking mechanism (101) comprises: a bearing plate (1011) having an arc-shaped upper surface, and a first end in the height direction being connected with the conveying mechanism (102); a picker (1012) comprising a rotating shaft (1013) connected with a second end in the height direction of the bearing plate (1011), and a plurality of picking teeth (1015) arranged on the outer surface of the rotating shaft (1013), and the picking teeth (1015) are arranged in the tangential direction of the rotating shaft (1013); the rotating shaft (1013) rotates towards the bearing plate (1011), and the tangent of the rotating direction of the rotating shaft (1013) is opposite to the extension direction of the picking teeth (1015); and a vertical tooth picking assembly (1019) arranged above the bearing plate (1011) and used for picking the picked objects on the bearing plate (1011) to the conveying mechanism (102), and the conveying mechanism (102) transports the picked objects to the mowing mechanism (103) for processing.

2. The automatic pickup swather (100) according to claim 1, characterized in that, The picking teeth (1015) comprise an extension section (1016); The picking teeth (1015) are respectively provided with a first end and a second end at both ends in the length extension direction, the first end of one picking tooth (1015) abuts against the peripheral wall of another picking tooth (1015) between the two adjacent picking teeth (1015), and the region between the abutting position and the second end of the other picking tooth (1015) constitutes the extension section (1016).

3. The automatic pickup swather (100) according to claim 1, characterized in that, The picker (1012) further comprises a plurality of support members (1018) arranged in the radial direction of the rotating shaft (1013), one end of the picking teeth (1015) abuts against the peripheral wall of one support member (1018), and the other end abuts against the extension end of another support member (1018) and continues to extend.

4. The automatic pickup swather (100) according to any one of claims 1-3, wherein, The picker (1012) comprises N groups of picking tooth assemblies (1014) arranged at intervals in the length direction of the rotating shaft (1013), each picking tooth assembly (1014) comprises a plurality of picking teeth (1015) arranged in the circumferential direction of the rotating shaft (1013), and N is a positive integer not less than 2.

5. The automatic pickup swather (100) according to claim 1, wherein, The second end of the bearing plate (1011) away from the conveying mechanism (102) is provided with a sleeve, the rotating shaft (1013) is installed in the sleeve, and the outer periphery of the sleeve and the bearing plate (1011) are both provided with a hollow portion (1011-1) avoiding the picking teeth (1015).

6. The automatic pickup swather (100) according to any one of claims 1-3, wherein, The conveying mechanism (102) comprises a conveying belt (1023) and a plurality of spiral assemblies arranged at intervals in the length direction of the conveying belt (1023) above the conveying belt (1023).

7. The automatic pickup swather (100) according to claim 6, characterized in that, The spiral assembly comprises a rotating shaft (1021) and a spiral blade (1022) arranged on the rotating shaft (1021), and the spiral assembly is arranged in the width direction of the conveying belt (1023).

8. The automatic pickup swather (100) according to claim 6, characterized in that, The hay cutting mechanism (103) comprises a cylindrical casing (1031) and a cutter (1032) arranged in the casing (1031), and a feeding port (1033) is arranged on the casing (1031), wherein the feeding port (1033) is connected with one end of the conveying belt (1023) in the length direction.

9. The automatic pickup swather (100) according to claim 8, characterized in that, The center of the feeding port (1033) is arranged on a plane lower than the center height of the cutter (1032).

10. A hay bale press characterized in that, The hay cutting mechanism (100) comprises the automatic pickup hay cutting mechanism (100) according to any one of claims 1-9, and a briquetting device connected with the hay cutting mechanism, wherein the briquetting device compresses the cut material into a block structure.

Citation Information

Patent Citations

  • Automatic picking and chopping forage grass briquetting machine

    CN216087724U