Auger type material scattering vehicle
By designing the material cavity, twisting dragon and discharge conveyor belt in the body of the spreading truck and fitting with pushing parts, the problem that the twisting dragon-style spreading truck cannot discharge materials on both sides is solved, and an efficient and uniform spreading effect is achieved.
Patent Information
- Application Number
- CN202421434037.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-21
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-06-21
AI Technical Summary
The existing dragon-splitting truck cannot achieve simultaneous discharge of both sides, and the discharge efficiency is low.
The material dispersing truck is designed to have a material cavity inside the body, with discharge ports on both sides, and a twisting dragon and discharge conveyor belt are installed inside. The pushing material is slid between the conveyor belts, pushing the material to the conveyor belt, so as to achieve the discharge of materials on both sides at the same time.
The sprinkling of materials on both sides of the feed truck is achieved, which improves the efficiency and uniformity of the feed, avoids material accumulation and blockage, and is suitable for uniform sprinkling needs of large-area pastures or farmlands.
Smart Images

Figure CN223053652U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of manure spreaders, and specifically to a screw-type manure spreader. Background Art
[0002] With the continuous improvement of the requirements for efficiency and productivity in modern agriculture, the traditional manual feeding method has gradually been replaced by the mechanized feeding method. The design of a screw-type manure spreader needs to consider the type of feed, the feeding requirements of animals, and the terrain conditions. Therefore, the structure of the manure spreader usually includes one or more conveying systems, a feed storage bin, a driving device, a control panel, and a walking chassis. An optimized structural design can ensure the smooth flow of feed, reduce blockages, and at the same time improve the uniformity and coverage of manure spreading. The emergence of the screw-type manure spreader is precisely to meet the needs of large-scale farms for fast, uniform, and efficient feed distribution. And for farms of different scales and types, screw-type manure spreader manufacturers provide customized services to adjust the specifications, capacity, and functions of the manure spreader according to the specific needs of customers to meet specific feeding and management requirements. In the prior art, although the screw-type manure spreader can achieve discharging on both sides, it cannot achieve simultaneous discharging on both sides, and the discharging effect is poor. Summary of the Utility Model
[0003] The utility model provides a screw-type manure spreader, which solves the technical problems in the related art that the screw-type manure spreader cannot discharge simultaneously on both sides and has low discharging efficiency.
[0004] The technical solution of the utility model is as follows: A screw-type manure spreader, comprising:
[0005] A manure spreader body, the manure spreader body having a material cavity, and both sides of the material cavity respectively having a first discharge port and a second discharge port;
[0006] A screw, the screw being arranged in the material cavity;
[0007] A first discharge conveyor belt and a second discharge conveyor belt, both the first discharge conveyor belt and the second discharge conveyor belt being arranged in the material cavity and located below the end of the screw. The first discharge conveyor belt passes through the first discharge port and extends outside the material cavity, and the second discharge conveyor belt passes through the second discharge port and extends outside the material cavity. The conveying directions of the first discharge conveyor belt and the second discharge conveyor belt are perpendicular to the axial direction of the screw;
[0008] A pusher, the pusher being slidably arranged above the first discharge conveyor belt and the second discharge conveyor belt, and being used for pushing the material above the first discharge conveyor belt and the second discharge conveyor belt onto the first discharge conveyor belt and the second discharge conveyor belt.
[0009] Optionally, the auger is a double auger, the bottom of the material chamber has two troughs, and the double auger is arranged in the two troughs.
[0010] Optionally, the trough is V-shaped, square, arc-shaped or semi-circular.
[0011] Optionally, the pusher includes: a first pusher and a second pusher. The first pusher and the second pusher are both reciprocally slidably arranged above the first discharge conveyor belt and the second discharge conveyor belt. The first pusher and the second pusher respectively have a plurality of first comb teeth and a plurality of second comb teeth, and the plurality of first comb teeth and the plurality of second comb teeth are arranged alternately.
[0012] Optionally, both sides of the first pusher and both sides of the second pusher respectively have a first arc-shaped pushing surface and a second arc-shaped pushing surface. The first arc-shaped pushing surface is used to push the material onto the first discharge conveyor belt, and the second arc-shaped pushing surface is used to push the material onto the second discharge conveyor belt.
[0013] Optionally, it further includes a first driving roller and a second driving roller, and the first driving roller and the second driving roller respectively drive the first discharge conveyor belt and the second discharge conveyor belt to convey;
[0014] A first transmission device, one connection end of the first transmission device is in transmission connection with the first driving roller, and the other connection end is in transmission connection with the first pusher, for driving the first pusher to reciprocate;
[0015] A second transmission device, one connection end of the second transmission device is in transmission connection with the second driving roller, and the other connection end is in transmission connection with the second pusher, for driving the second pusher to reciprocate.
[0016] Optionally, the first transmission device includes: a first crank, and the first crank is arranged on the first driving roller and rotates therewith;
[0017] A first connecting rod, one end of the first connecting rod is hinged to the first crank, and the other end is hinged to the first pusher.
[0018] Optionally, the second transmission device includes: a second crank, and the second crank is arranged on the second driving roller and rotates therewith;
[0019] A second connecting rod, one end of the second connecting rod is hinged to the second crank, and the other end is hinged to the second pusher.
[0020] Optionally, it further includes: a guide rod, the guide rod is arranged in the material chamber, and both the first pusher and the second pusher are slidably arranged on the guide rod.
[0021] Optionally, it further includes: a first guiding plate, which is arranged below the first discharge port and on the outer side of the spreader body;
[0022] a second guiding plate, which is arranged below the second discharge port and on the outer side of the spreader body.
[0023] The working principle and beneficial effects of the present utility model are as follows:
[0024] In the present utility model, a material chamber is provided inside the spreader body for storing feed or materials to be spread. A first discharge port and a second discharge port are respectively designed on both sides of the material chamber, so that the materials can be evenly spread from both sides to achieve a wider coverage range. The auger is arranged inside the material chamber and pushes the materials in the material chamber towards the discharge ports on both sides by rotating. The axial direction of the auger is consistent with the length direction of the material chamber to ensure that the materials and feed can be evenly advanced forward. The first discharge conveyor belt and the second discharge conveyor belt are both located below the end of the auger and extend outside the material chamber through the discharge ports on both sides of the material chamber. The conveying direction of the conveyor belt is perpendicular to the axial direction of the auger. When the materials reach the end of the auger, they will be horizontally conveyed by the first discharge conveyor belt and the second discharge conveyor belt to the first discharge port and the second discharge port, and then spread to the outside. Moreover, the first discharge conveyor belt and the second discharge conveyor belt can convey simultaneously, thus realizing spreading from both sides of the spreader, improving the spreading efficiency.
[0025] Considering that there may be a situation where feed accumulates between the first discharge conveyor belt and the second discharge conveyor belt and cannot be conveyed outwards, a pusher is specially designed. The pusher is slidably arranged above the first discharge conveyor belt and the second discharge conveyor belt. Its function is to push the materials onto the first discharge conveyor belt and the second discharge conveyor belt when the materials reach the end of the auger, so that the materials can be smoothly sent onto the conveyor belt and then evenly spread out. Through the combined action of the auger, the discharge conveyor belt and the pusher, the materials can be evenly spread from both sides of the spreader, improving the evenness and efficiency of spreading. The setting of the pusher increases the controllability of the material flow towards the discharge conveyor belt, avoids material accumulation or blockage, ensures the smoothness of the spreading process. The double-discharge-port design enables the spreader to evenly spread materials within a relatively wide range, meeting the spreading requirements of large-scale pastures or farmlands. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The following will further illustrate the above-mentioned characteristics, technical features, advantages and their implementation manners of the present utility model in a clear and understandable manner in combination with the drawings of the preferred embodiments.
[0027] Figure 1 It is a schematic diagram of the main structure of the present utility model;
[0028] Figure 2 It is a schematic top view structure of the present utility model;
[0029] Figure 3 Schematic diagram of the internal structure of the present utility model;
[0030] Figure 4 For the present utility model Figure 3 Schematic diagram of the enlarged structure of part A in it.
[0031] In the figure: 1, vehicle body; 101, material chamber; 1011, first discharge port; 1012, second discharge port; 1013, first discharge conveyor belt; 1014, second discharge conveyor belt; 1015, tank body; 2, auger; 3, pusher; 301, first pusher; 302, second pusher; 3011, first comb teeth; 3012, first arc-shaped pushing surface; 3021, second comb teeth; 3022, second arc-shaped pushing surface; 4, first driving roller; 5, second driving roller; 6, first driving device; 601, first crank; 602, first connecting rod; 7, second driving device; 701, first crank; 702, second connecting rod; 8, first guiding plate; 9, second guiding plate. Detailed implementation manners
[0032] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the specific implementation manners of the present utility model will be described below with reference to the accompanying drawings. Obviously, the accompanying drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings and other implementation manners can be obtained.
[0033] To make the drawings concise, only the parts related to the utility model are schematically shown in each drawing, and they do not represent the actual structure of the product. In addition, to make the drawings concise and easy to understand, in some drawings, parts with the same structure or function are only schematically shown as one of them, or only one of them is marked. In this article, "one" not only means "only this one", but also can mean "more than one" situation, and "several" includes "two" and "more than two".
[0034] In this article, it should be noted that unless otherwise clearly defined and limited, the terms "installation", "connection" and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations.
[0035] In addition, in the description of the present application, terms such as "first" and "second" are only used for distinguishing descriptions and cannot be construed as indicating or implying relative importance.
[0036] Referring to Figures 1 to 4 , an embodiment of the present utility model provides a screw-type material spreading vehicle, which includes a material spreading vehicle body 1. The vehicle body of the material spreading vehicle has a material chamber, and both sides of the material chamber are respectively provided with a first discharge port 1011 and a second discharge port 1012; a screw 2 is arranged in the material chamber 101; a first discharge conveyor belt 1013 and a second discharge conveyor belt 1014 are provided in the material chamber 101 and are located below the end of the screw 2. The first discharge conveyor belt 1013 extends outside the material chamber through the first discharge port 1011, and the second discharge conveyor belt 1014 extends outside the material chamber through the second discharge port 1012. The conveying directions of the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 are perpendicular to the axial direction of the screw 2; a pusher 3 is slidably arranged above the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014, and is used to push the material onto the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 above the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014.
[0037] In this embodiment, considering the prior art, a material chamber 101 is provided inside the material spreading vehicle body 1 for storing feed or materials to be spread. First discharge ports 1011 and second discharge ports 1012 are respectively designed on both sides of the material chamber 101 so that the materials can be evenly spread from both sides to achieve a wider coverage range. The screw 2 is arranged inside the material chamber 101 and pushes the materials in the material chamber 101 towards the discharge ports on both sides by rotation. The axial direction of the screw 2 is consistent with the length direction of the material chamber 101 to ensure that the materials and feed can be evenly advanced forward. The first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 are both located below the end of the screw 2 and extend outside the material chamber through the discharge ports on both sides of the material chamber 101. The conveying direction of the conveyor belt is perpendicular to the axial direction of the screw 2. When the materials reach the end of the screw 2, they will be horizontally conveyed by the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 to the first discharge port 1011 and the second discharge port 1012 of the discharge port, and then spread to the outside. Moreover, the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 can convey simultaneously, thereby realizing simultaneous material spreading on both sides of the material spreading vehicle and improving the efficiency of material spreading.
[0038] In this embodiment, considering that feed may accumulate between the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 and cannot be conveyed outwards, a pusher 3 is specifically designed. The pusher 3 is slidably arranged above the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014. Its function is to push the material onto the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 when the material reaches the end of the auger 2, so that the material can be smoothly conveyed onto the conveyor belt and then evenly spread out. Through the combined action of the auger 2, the discharge conveyor belt and the pusher 3, the material can be evenly spread out from both sides of the spreader truck, improving the uniformity and efficiency of spreading. The setting of the pusher 3 increases the controllability of the material flow towards the discharge conveyor belt, avoids material accumulation or blockage, and ensures the smoothness of the spreading process. The double-discharge port design enables the spreader truck to evenly spread the material within a relatively wide range, meeting the spreading requirements of large-scale pastures or farmlands.
[0039] Furthermore, the auger 2 is a double auger 2, and the bottom of the material chamber 101 has two troughs 1015, and the double auger 2 is arranged in the two troughs 1015.
[0040] In this embodiment, a double auger 2 is adopted. The double auger 2 is respectively arranged in the two troughs 1015 at the bottom of the material chamber 101. This design can more effectively push the material from the center of the material chamber 101 to both sides, can better use various types of feed, improve the fluidity of the material in the material chamber 101, and reduce the possibility of blockage. The setting of the double auger 2 enables the material to be pushed from two directions of the material chamber 101 at the same time, accelerating the conveying speed of the material towards the discharge port and improving the spreading efficiency of the spreader truck. And it can make the material more evenly distributed in the material chamber 101, avoiding the situation of concentrated accumulation of the material at a certain point, thereby ensuring the uniformity of the material when it is spread out through the discharge port. The two troughs 1015 at the bottom of the material chamber 101 provide a better conveying space for the double auger 2. The shape of the trough 1015 can improve the working efficiency of the auger 2, reduce friction, and extend the service life of the equipment.
[0041] Furthermore, the trough 1015 is V-shaped or square-shaped or arc-shaped or semi-circular.
[0042] In this embodiment, the trough body 1015 can be designed to be V-shaped, square, arc-shaped or semicircular. The V-shaped trough body 1015 can effectively guide the material to gather toward the center of the auger 2, and is particularly suitable for processing granular or powdery materials, which helps to improve the fluidity of the material and reduce retention. The square trough body 1015 provides a flat bottom surface, which is suitable for processing materials in various forms, including block, granular and powdery, and can better distribute the material evenly along the direction of the auger shaft. The arc-shaped trough body 1015 can reduce the contact area between the material and the trough wall, reduce friction, and can better process wet or highly viscous materials, reducing the adhesion of materials in the trough body 1015. The semicircular trough body 1015 combines the low friction advantages of the arc and the material support of the flat bottom surface. It is suitable for occasions where both material fluidity and distribution uniformity need to be taken into account, while reducing the accumulation of materials.
[0043] In this embodiment, the double auger 2 is combined with the trough 1015 of different shapes, which can select the best processing solution according to the characteristics of the material, improve the efficiency and uniformity of the equipment operation, and the design of the trough 1015 of different shapes enables the material spreading vehicle to adapt to different types of materials and effectively process them. By adopting the combination of the double auger 2 and the V-shaped, square, arc-shaped or semicircular trough 1015, the auger 2-type material spreading vehicle can provide a more accurate and efficient processing solution for the characteristics and needs of different materials. This design enhances the adaptability and reliability of the equipment, and provides more flexible and efficient material processing for agriculture, animal husbandry and other fields.
[0044] Furthermore, the pushing member 3 includes: a first pushing member 301 and a second pushing member 302. The first pushing member 301 and the second pushing member 302 are both reciprocatingly slidably arranged above the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014. The first pushing member 301 and the second pushing member 302 respectively have a plurality of first comb teeth 3011 and a plurality of second comb teeth 3021, and the plurality of first comb teeth 3011 and the plurality of second comb teeth 3021 are staggered.
[0045] In this embodiment, the two pusher members 3 respectively have a number of first comb teeth 3011 and a number of second comb teeth 3021. These comb teeth are arranged alternately, forming an efficient material combing and distribution system, reducing the adhesion between materials, improving the fluidity of the materials, ensuring that the materials can be smoothly sent to the discharge conveyor belt. While pushing the materials, the pusher member 3 can ensure that the materials are evenly distributed on the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014, avoiding the problems of material accumulation or uneven distribution on the conveyor belt, and improving the uniformity of material spreading. The reciprocating sliding of the pusher member 3 can not only cover a wider material conveying area, but also adjust the pushing force and frequency according to the flow condition of the materials, enhancing the flexibility and efficiency of material spreading. The design of the comb tooth structure can reduce the wear and maintenance requirements of the equipment. The replacement and cleaning of the comb teeth are relatively easy, ensuring the long-term stable operation of the equipment. The first pusher member 301 and the second pusher member 302, as well as the alternating comb tooth design, not only increase the pushing range of the auger 2 type material spreader for materials, but also achieve the even distribution of materials, greatly enhancing the efficiency and uniformity of material spreading.
[0046] Furthermore, both sides of the first pusher member 301 and both sides of the second pusher member 302 respectively have a first arc-shaped pushing surface 3012 and a second arc-shaped pushing surface 3022. The first arc-shaped pushing surface 3012 is used to push the material onto the first discharge conveyor belt 1013, and the second arc-shaped pushing surface 3022 is used to push the material onto the second discharge conveyor belt 1014.
[0047] In this embodiment, both sides of the first pusher member 301 and both sides of the second pusher member 302 respectively have a first arc-shaped pushing surface 3012 and a second arc-shaped pushing surface 3022. The first arc-shaped pushing surface 3012 can push the material onto the first discharge conveyor belt 1013, and the second arc-shaped pushing surface 3022 can push the material onto the second discharge conveyor belt 1014. The arc-shaped pushing surface design can more accurately guide the material onto the corresponding conveyor belt, ensuring the even distribution of the material. The shape of the arc-shaped pushing surface can guide the material to flow along a specific direction, reducing the random scattering of the material during the material spreading process, improving the accuracy of material distribution. Through precise material guiding, the arc-shaped pushing surface reduces the loss of the material during the transfer process, improves the utilization rate of the material, can meet different material characteristics, and can also enhance the stability and wear resistance of the structure during daily use, ensuring the long-term stable operation of the equipment.
[0048] Further, it further includes a first driving roller 4 and a second driving roller 5. The first driving roller 4 and the second driving roller 5 respectively drive the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014 to convey. One connection end of the first transmission device 6 is in transmission connection with the first driving roller 4, and the other connection end is in transmission connection with the first pusher 301, for driving the first pusher 301 to reciprocate. One connection end of the second transmission device 7 is in transmission connection with the second driving roller 5, and the other connection end is in transmission connection with the second pusher 302, for driving the second pusher 302 to reciprocate.
[0049] In this embodiment, the two driving rollers are responsible for driving the first discharge conveyor belt 1013 and the second discharge conveyor belt 1014, ensuring that the materials can be smoothly and continuously sent out from the spreading vehicle. These first discharge conveyor belts 1013 and second discharge conveyor belts 1014 not only connect to the driving rollers, but also cooperate with the pusher 3 to ensure the uniform distribution of materials on the conveyor belt. The conveying of materials and the sliding of the pusher 3 can reduce the accumulation or gaps of materials on the conveyor belt, improving the uniformity of spreading. The design of the transmission device takes into account the efficiency and flexibility of material conveying, enabling the adjustment of the transmission speed and pusher force according to spreading requirements, adapting to spreading requirements in different scenarios. The combined design of the driving roller and the transmission device makes it convenient for equipment maintenance and fault troubleshooting, thereby reducing the equipment maintenance cost and downtime cost.
[0050] Further, the first transmission device 6 includes: a first crank 601 is arranged on the first driving roller 4 and rotates therewith; one end of a first connecting rod 602 is hinged to the first crank 601, and the other end is hinged to the first pusher 301.
[0051] In this embodiment, on the first driving roller 4, it rotates as the driving roller rotates, thereby providing the driving force for reciprocating motion. The periodically rotating crank pushes the connecting rod, and then drives the first pusher 301 to reciprocate. The reciprocating motion is synchronized with the operation of the material conveyor belt, ensuring the uniform distribution of materials on the conveyor belt. Through the size design of the crank and the connecting rod, the stroke and speed of the first pusher 301 can be precisely controlled, thereby adjusting the width and density of material distribution to meet different spreading requirements. It has a high mechanical efficiency, can effectively convert the input rotational kinetic energy into linear reciprocating motion, reduces energy loss and saves the internal space of the equipment, is conducive to the optimization of the overall structure of the spreading vehicle, and improves the portability and operation flexibility of the equipment.
[0052] Further, the second transmission device 7 includes: a second crank 701 is arranged on the second driving roller 5 and rotates therewith; one end of a second connecting rod 702 is hinged to the second crank 701, and the other end is hinged to the second pusher 302.
[0053] In this embodiment, the second crank 701 is arranged on the second driving roller 5 and rotates with the rotation of the driving roller. Its rotational movement is converted into a power source for linear reciprocating motion. The periodic rotation of the second crank 701 drives the second pusher 302 to perform reciprocating motion through the second connecting rod 702. The reciprocating motion is synchronized with the operation of the second discharge conveyor belt 1014 to ensure the uniform distribution of materials on the conveyor belt. By adjusting the dimensions of the crank and the length of the connecting rod, the stroke and speed of the second pusher 302 can be precisely controlled, thereby adjusting the distribution width and density of the materials, and meeting the requirements of different material spreading. The crank and connecting rod mechanism can efficiently convert rotational motion into linear motion, reduce energy loss, improve the efficiency of material spreading, and has a relatively compact design, saving the internal space of the equipment. At the same time, through reasonable material selection and process treatment, the reliability and durability of the equipment are improved.
[0054] Furthermore, it further includes a guide rod. The guide rod is arranged in the material chamber 101, and both the first pusher 301 and the second pusher 302 are slidably arranged on the guide rod.
[0055] In this embodiment, the guide rod is fixed inside the material chamber 101, providing a stable sliding track for the first pusher 301 and the second pusher 302, ensuring that they can move smoothly along the predetermined trajectory when performing reciprocating motion, enabling them to precisely push the materials from the material chamber 101 onto the discharge conveyor belt, reducing the uneven distribution of materials, avoiding unnecessary swinging or deviation, and enhancing the stability of the internal structure of the spreader truck, reducing the vibration that may occur during the high-speed movement of the pusher 3, ensuring the long-term stable operation of the equipment. The design of the guide rod takes into account the requirements of different material characteristics, enabling uniform material spreading through the guidance of the guide rod, enhancing the adaptability and flexibility of the spreader truck, simplifying the internal structure of the equipment, making maintenance and cleaning work simpler and faster, and reducing the maintenance cost and downtime of the equipment.
[0056] Furthermore, it further includes a first guide plate 8. The first guide plate 8 is arranged below the first discharge port 1011 and on the outside of the spreader truck body 1; the second guide plate 9 is arranged below the second discharge port 1012 and on the outside of the spreader truck body 1.
[0057] In this embodiment, the first guide plate 8 and the second guide plate 9 are located on the outside of the spreading vehicle body, and the first discharge port 1011 and the second discharge port 1012 are located below. Their function is to guide the materials spread from the discharge ports to be distributed in a predetermined direction and range, thereby avoiding random diffusion of the materials during the spreading process and improving the directionality and coverage accuracy of the spreading materials. The design of the guide plates takes into account different spreading requirements. By adjusting the angle and position of the guide plates, the spreading range of the materials can be flexibly controlled to meet the requirements for adjusting the spreading width and direction in different scenarios, ensuring that the materials can evenly cover the target area, avoiding the phenomenon of local over-crowding or over-sparseness, and improving the uniformity and effect of the spreading. By accurately controlling the spreading direction and range of the materials, the guide plates help reduce material waste, reduce costs, improve resource utilization efficiency, optimize the spreading effect, and simplify the operating process. The operator only needs to adjust the position of the guide plates as needed to quickly adjust the spreading effect.
[0058] It should be noted that the above embodiments are only used to illustrate the technical solution of the utility model rather than to limit it. Although the utility model has been described in detail with reference to the preferred embodiments, ordinary technicians in the field should understand that the technical solution of the utility model can be modified or replaced by equivalents without departing from the spirit and scope of the technical solution of the utility model, which should be included in the scope of the claims of the utility model.
Claims
1. Auger type manure spreader, characterized in that, Including: The spreading vehicle body (1) has a material chamber (101), and both sides of the material chamber (101) are respectively provided with a first discharge port (1011) and a second discharge port (1012); The auger (2) is arranged in the material chamber (101); The first discharge conveyor belt (1013) and the second discharge conveyor belt (1014) are both arranged in the material chamber (101) and are located below the end of the auger (2). The first discharge conveyor belt (1013) passes through the first discharge port (1011) and extends outside the material chamber (101), and the second discharge conveyor belt (1014) passes through the second discharge port (1012) and extends outside the material chamber (101). The conveying directions of the first discharge conveyor belt (1013) and the second discharge conveyor belt (1014) are perpendicular to the axial direction of the auger (2); The pusher (3) is slidably arranged above the first discharge conveyor belt (1013) and the second discharge conveyor belt (1014) and is used to push the material onto the first discharge conveyor belt (1013) and the second discharge conveyor belt (1014) above the first discharge conveyor belt (1013) and the second discharge conveyor belt (1014).
2. The auger (2) type manure spreader according to claim 1, characterized in that, The auger (2) is a double auger (2), and the bottom of the material chamber (101) has two troughs (1015), and the double auger (2) is arranged in the two troughs (1015).
3. The auger-type material spreader according to claim 2, characterized in that, The trough (1015) is V-shaped or square or arc-shaped or semi-circular.
4. The auger type manure spreader according to claim 2, characterized in that, The pusher (3) includes: The first pusher (301) and the second pusher (302) are both reciprocatingly slidably arranged above the first discharge conveyor belt (1013) and the second discharge conveyor belt (1014). The first pusher (301) and the second pusher (302) respectively have a number of first comb teeth (3011) and a number of second comb teeth (3021), and the number of the first comb teeth (3011) and the number of the second comb teeth (3021) are arranged alternately.
5. The auger-type material spreading vehicle according to claim 4, wherein, Both sides of the first pusher (301) and both sides of the second pusher (302) are respectively provided with a first arc-shaped pushing surface (3012) and a second arc-shaped pushing surface (3022). The first arc-shaped pushing surface (3012) is used to push the material onto the first discharge conveyor belt (1013), and the second arc-shaped pushing surface (3022) is used to push the material onto the second discharge conveyor belt (1014).
6. The auger-type manure spreader according to claim 5, characterized in that, It also includes: The first driving roller (4) and the second driving roller (5) respectively drive the first discharge conveyor belt (1013) and the second discharge conveyor belt (1014) to convey; The first transmission device (6), one connecting end of the first transmission device (6) is in driving connection with the first driving roller (4), and the other connecting end is in driving connection with the first pusher (301), and is used for driving the first pusher (301) to reciprocate; The second transmission device (7), one connecting end of the second transmission device (7) is in driving connection with the second driving roller (5), and the other connecting end is in driving connection with the second pusher (302), and is used for driving the second pusher (302) to reciprocate.
7. The auger-type material spreader according to claim 6, characterized in that, The first transmission device (6) includes: The first crank (601), the first crank (601) is arranged on the first driving roller (4) and rotates therewith; The first connecting rod (602), one end of the first connecting rod (602) is hinged to the first crank (601), and the other end is hinged to the first pusher (301).
8. The auger type material spreader according to claim 6, characterized in that, The second transmission device (7) includes: The second crank (701), the second crank (701) is arranged on the second driving roller (5) and rotates therewith; The second connecting rod (702), one end of the second connecting rod (702) is hinged to the second crank (701), and the other end is hinged to the second pusher (302).
9. The auger type manure spreader according to claim 4, wherein, It further includes: The guide rod, the guide rod is arranged in the material cavity (101), and both the first pusher (301) and the second pusher (302) are slidably arranged on the guide rod.
10. The auger type manure spreader according to claim 1, wherein It further includes: The first guide plate (8), the first guide plate (8) is arranged below the first discharge port (1011) and on the outside of the spreader body (1); The second guide plate (9), the second guide plate (9) is arranged below the second discharge port (1012) and on the outside of the spreader body (1).