Raw material batching device for organic fertilizer processing
By designing the support mechanism and feed mechanism, the problems of inconvenient movement of the conveyor belt and manual valve closure affecting the accuracy of the batching are solved, and automated and accurate batching of the organic fertilizer production process is achieved.
Patent Information
- Application Number
- CN202422054475.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-08-23
AI Technical Summary
During the production process of existing organic fertilizers, the conveyor belt is inconvenient to move, which leads to difficulty in cleaning and maintaining the batching funnel, and the raw materials are prone to falling off, which affects the batching accuracy. The worker manually closes the valve and affects the batching accuracy.
A raw material batching device including a support mechanism and a material conveying mechanism is designed. The support mechanism is convenient for cleaning and maintenance. The material feeding mechanism automatically controls the discharge through a weighing sensor and a solenoid valve. The scraper scrapes off the attached raw materials to ensure accurate ingredients.
It improves the accuracy of ingredients, reduces the workload of workers in cleaning, reduces the impact of workers' manual operations on the accuracy of ingredients, and ensures the stable transportation of raw materials and quantitative discharge.
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Figure CN223127920U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of organic fertilizer batching equipment, and specifically discloses a raw material batching device for organic fertilizer processing. Background Art
[0002] Organic fertilizer is a kind of natural organic matter, a type of fertilizer formed by microbial decomposition or fermentation, also known as farmyard manure, which has the functions of improving soil, enhancing soil fertility and land productivity. There are many types of organic fertilizers, and common ones include compost, green manure, cake fertilizer, and biogas fertilizer, etc. During the production process of organic fertilizers, a batching device is required to mix various raw materials needed for organic fertilizer production in a certain proportion. After stirring and mixing evenly, subsequent fermentation processing can be carried out to obtain organic fertilizers with different nutritional effects.
[0003] Chinese Patent No. CN214106815U discloses a raw material quantitative batching device for bio-organic fertilizer production, including a batching funnel. An electronic weighing scale is provided at the bottom of the batching funnel. Above the electronic weighing scale is the weighing body. Weighing sensors are arranged at the four corners of the bottom of the weighing body, and the bottom of the weighing sensors is in contact with the ground. A weighing display instrument is also provided on the weighing body. The weighing body is square and sunken at the top. A feeding port is opened in the middle of the weighing body, and a circular baffle is arranged at the feeding port. A conveyor belt is provided below the weighing body; Bio-organic fertilizer refers to a type of fertilizer that combines the effects of microbial fertilizers and organic fertilizers with specific functional microorganisms and mainly sourced from animal and plant residues. In the prior art, most batching is manual feeding, which has a certain impact on the composition of the finished product, thus affecting the quality of bio-organic fertilizers. In view of this, we propose a raw material quantitative batching device for bio-organic fertilizer production. However, during the use of the above batching device, the conveyor belt is inconvenient to move, which is not conducive to the cleaning and maintenance of the batching funnel. During the process of the conveyor belt transporting raw materials, the raw materials are easily attached to the conveyor belt. When the conveyor belt with attached raw materials rotates towards the ground direction, the raw materials are extremely likely to fall from the conveyor belt to the ground, increasing the workload of workers while affecting the accuracy of organic fertilizer raw material batching. In addition, during the use of the above batching device, workers need to manually close the valve below the batching funnel, which increases the workload of workers and the working state of workers and the speed of closing the valve are likely to further affect the batching accuracy. Therefore, in order to solve the above problems, the utility model proposes a raw material batching device for organic fertilizer processing. Summary of the Utility Model
[0004] The purpose of the utility model is to provide a raw material batching device for organic fertilizer processing, which is convenient to move the feeding mechanism away from the lower part of the storage hopper during the process of cleaning and maintaining the storage hopper, can scrape the raw materials attached to the conveyor belt into the original collection device or other devices, avoid the raw materials from falling to the ground from the conveyor belt, reduce the workload of workers picking up the raw materials, ensure the accuracy of raw material batching. When the amount of raw materials falling from the storage hopper reaches the required amount for the ratio, the valve automatically closes without manual closing by workers, reducing the influence of the working state of workers on the batching accuracy.
[0005] The utility model is realized through the following technical solutions:
[0006] A raw material batching device for organic fertilizer processing, including a support mechanism. A plurality of storage mechanisms are equidistantly arranged inside the support mechanism. A feeding mechanism is arranged below the storage mechanism. The support mechanism includes a support rod assembly and a first mounting plate. Two first mounting plates are symmetrically arranged above the support rod assembly. The two ends of the upper part of the first mounting plate are respectively provided with a first telescopic rod and a limiting rod. The telescopic ends of the two first telescopic rods are connected with a top plate. The storage mechanism includes a storage hopper. Weighing sensors are arranged on both sides of the storage hopper. The feeding mechanism includes a conveyor belt, a first support seat, a second support seat and a scraper. The first support seat and the second support seat are respectively arranged on both sides of the conveyor belt. Connecting seats are arranged on one side of the two second support seats. A scraper is connected between the two connecting seats.
[0007] As a further setting of the above scheme, the support rod assembly includes two support long rods and four support vertical rods. The two ends of the two support long rods are respectively connected with support vertical rods. The upper ends of the support vertical rods are detachably connected with the first mounting plate, which can form the overall framework of the support mechanism together with the support rod assembly while facilitating the installation and maintenance of the first mounting plate. The two ends of the first mounting plate are respectively detachably connected with the first telescopic rod and the limiting rod, which is convenient for the installation and maintenance of the first telescopic rod and the limiting rod. The two first telescopic rods and the limiting rods are respectively arranged diagonally, which can provide stable support for the top cover. The telescopic end of the first telescopic rod is detachably connected with the top plate. The limiting rod penetrates through the inside of the top plate and is slidably connected with the top plate, which can limit the moving direction of the top plate, facilitate lifting the top plate upward during the process of injecting materials into the storage hopper and cleaning and maintaining, increasing the distance between the top plate and the storage hopper to provide space for injecting materials, and then resetting the top plate after the injection is completed to restore the protection of the storage hopper.
[0008] As a further setting of the above solution, a feeding pipe is connected below the storage hopper, and a solenoid valve is arranged at the upper end of the feeding pipe, which is convenient for discharging the raw materials in the storage hopper and automatically closing when the required amount of material is discharged, so that the feeding hopper stops feeding. A support ring is connected to the outside of the storage hopper, which is convenient for installing a weighing sensor. The support ring is connected to the upper end of the weighing sensor, and the weight of the discharged raw materials can be accurately calculated through the change of the measured value. A support plate is connected below the weighing sensor, which can provide stable support for components such as the weighing sensor and the storage hopper, and provide space for the downward and upward displacement of the storage hopper due to the change of the weight of the internal raw materials. Both ends of the support plate are respectively connected to two support long rods, which is convenient for the installation and maintenance of the support plate and helps to keep the storage mechanism stable.
[0009] As a further setting of the above solution, a first support shaft and a second support shaft are respectively arranged on both sides of the conveyor belt. A baffle is connected between the first support shaft and the second support shaft on the same side, which can prevent the raw materials from falling to the ground from the upper sides of both sides of the conveyor belt during the conveying process. The first support shaft and the second support shaft are respectively rotatably connected to the first support seat and the second support seat. The first nut and the second nut are respectively threadedly connected to the outer sides of the first support shaft and the second support shaft, which is convenient for adjusting the angle of the conveyor belt and the baffle according to the needs and tightening the first nut and the second nut for fixation.
[0010] As a further setting of the above solution, a second telescopic rod and a third telescopic rod are respectively connected below the first support seat and the second support seat, which is convenient for adjusting the height of the conveyor belt according to the needs. A second mounting plate is connected below both the second telescopic rod and the third telescopic rod, which is convenient for the installation and maintenance of the second telescopic rod and the third telescopic rod. A pressing plate is arranged above both the second mounting plates. A long strip hole is arranged inside the pressing plate, which is convenient for connecting with the first threaded column. A base is arranged below the second mounting plate. Both ends of the base are respectively detachably connected to both ends of the pressing plate, which is convenient for the disassembly and assembly of the pressing plate and lays a foundation for installing the second mounting plate between the pressing plate and the base. Limiting grooves are arranged on both sides above the base, which is convenient for connecting with the convex blocks. Two universal braking wheels are symmetrically arranged on both sides below the base, which is convenient for adjusting the position of the conveying mechanism and fixing it, and makes room for the cleaning and maintenance of the storage mechanism.
[0011] As a further setting of the above solution, bumps are provided at both lower ends of the second mounting plate. The bumps are slidably connected to the limiting grooves, and can initially limit the moving direction of the second mounting plate and the connecting components above it during the adjustment of the conveyor belt angle. A first threaded post is provided in the middle above the second mounting plate. The first threaded post penetrates through the interior of the long hole. A first gasket is provided on the outer side of the first threaded post. A third nut is provided above the first gasket. The third nut is threadedly connected to the first threaded post, which can further limit the moving direction of the second mounting plate and the connecting components above it, and tighten the third nut to fix the position of the second mounting plate after the movement is completed and the angle of the conveyor belt is adjusted, so as to fix the angles of the conveyor belt and the baffle.
[0012] As a further setting of the above solution, a mounting hole is provided inside the connecting seat. Second threaded posts are provided at both ends of the scraper. The second threaded posts penetrate through the interior of the mounting hole. A second gasket is provided on the outer side of the second threaded posts. A fourth nut is provided on one side of the second gasket. The fourth nut is threadedly connected to the first threaded post, which is convenient for adjusting the angle of the scraper according to the change in the angle between the second support seat and the conveyor belt, so as to ensure that the scraper can still scrape the raw materials attached to the conveyor belt after the angle of the conveyor belt is adjusted.
[0013] As a further setting of the above solution, a controller is provided on one side of the support mechanism, which is convenient for controlling the operation of relevant components in the device.
[0014] The utility model has the following beneficial effects during use:
[0015] The combined use of the two first telescopic rods and the limiting rod in the support mechanism is convenient for increasing the distance between the top plate and the storage hopper during the process of injecting raw materials into the storage hopper and cleaning and maintaining the storage hopper, providing an operating space for injection and cleaning. After the injection, cleaning and maintenance are completed, the top plate is reset to restore the protection of the storage hopper and the raw materials inside it.
[0016] The combined use of the weighing sensor and the solenoid valve in the storage mechanism can measure the weight of the raw materials discharged from the storage hopper through the numerical change of the weighing sensor, and automatically close the solenoid valve when the required weight is reached, so that the feeding pipe stops feeding, ensuring accurate feeding and the quality of raw material batching, and reducing the influence of manual valve closing by workers on the feeding and batching quality.
[0017] The rotational connection between the two support seats and the connecting shaft in the feeding mechanism facilitates adjusting the inclination angle between the support seat and the conveyor belt during the process of adjusting the angle of the conveyor belt. The combined use of the second telescopic rod and the third telescopic rod facilitates adjusting the height and angle of the conveyor belt. The use of the limiting grooves on both sides of the base and the long holes inside the pressing plate facilitates restricting the moving directions of the second mounting plate, the second telescopic rod, and the third telescopic rod during the process of adjusting the angle of the conveyor belt. After the position adjustment, tighten the third nut to fix the above components, thereby fixing the angle of the conveyor belt.
[0018] The combination of the scraper and the fourth nut can scrape the raw materials attached to the conveyor belt and, at the same time, achieve synchronous adjustment and fixation following the adjustment of the angle of the conveyor belt to ensure that the scraper can still scrape the raw materials attached to the conveyor belt after the angle of the conveyor belt is adjusted, guaranteeing the use effect of the scraper. The use of multiple universal brake wheels facilitates adjusting the position of the conveying mechanism and fixing it, so as to vacate the space under the storage mechanism, facilitating workers to poke the storage mechanism for cleaning and maintenance. Brief Description of the Drawings
[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for describing the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0020] Figure 1 Is a perspective view of the present invention;
[0021] Figure 2 Is a combined perspective view of the support mechanism and the controller in the present invention;
[0022] Figure 3 Is a perspective view of the storage mechanism in the present invention;
[0023] Figure 4 Is a perspective view of the feeding mechanism in the present invention;
[0024] Figure 5 Is a combined view of the second support seat and the scraper in the present invention;
[0025] Figure 6 Is a perspective view of the second support seat in the present invention;
[0026] Figure 7 Is a perspective view of the scraper in the present invention;
[0027] Figure 8 Is a perspective view of the second mounting plate in the present invention;
[0028] Figure 9This is a perspective view of the pressing plate in the present utility model.
[0029] In the figure: 1, support mechanism; 2, material storage mechanism; 3, material conveying mechanism; 4, controller; 11, support rod assembly; 111, support vertical rod; 112, support long rod; 12, first mounting plate; 13, first telescopic rod; 14, top plate; 15, limiting rod; 21, storage hopper; 22, blanking pipe; 23, solenoid valve; 24, support ring; 25, weighing sensor; 26, support plate; 31, conveyor belt; 311, first support shaft; 312, second support shaft; 313, baffle; 314, first nut; 315, second nut; 32, first support base; 33, second support base; 331, connecting seat; 3311, mounting hole; 34, second telescopic rod; 35, third telescopic rod; 36, second mounting plate; 361, first threaded column; 362, first gasket; 363, third nut; 364, convex block; 37, pressing plate; 371, long strip hole; 38, base; 381, limiting groove; 382, universal braking wheel; 39, scraper; 391, second threaded column; 392, second gasket; 393, fourth nut. Detailed implementation manners
[0030] In order to enable those skilled in the art to better understand the solution of this application, the technical solutions in the embodiments of this application will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are only a part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of this application.
[0031] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments can be combined with each other. The following will refer to the attached Figures 1-9 drawings and describe this application in detail in conjunction with the embodiments.
[0032] The embodiment discloses a raw material batching device for organic fertilizer processing, including a support mechanism 1. A plurality of storage mechanisms 2 are equidistantly arranged inside the support mechanism 1. A feeding mechanism 3 is arranged below the storage mechanism 2. The support mechanism 1 includes a support rod assembly 11 and a first mounting plate 12. Two first mounting plates 12 are symmetrically arranged above the support rod assembly 11. A first telescopic rod 13 and a limiting rod 15 are respectively arranged at both ends above the first mounting plate 12. The telescopic ends of the two first telescopic rods 13 are connected to a top plate 14. The storage mechanism 2 includes a storage hopper 21. Weighing sensors 25 are arranged on both sides of the storage hopper 21. The feeding mechanism 3 includes a conveyor belt 31, a first support base 32, a second support base 33, and a scraper 39. The first support base 32 and the second support base 33 are respectively arranged on both sides of the conveyor belt 31. Connecting seats 331 are arranged on one side of the two second support bases 33. A scraper 39 is connected between the two connecting seats 331.
[0033] As Figure 1 and Figure 2 shown, the support rod assembly 11 includes two support long rods 112 and four support vertical rods 111. Both ends of the two support long rods 112 are connected to the support vertical rods 111. The upper ends of the support vertical rods 111 are detachably connected to the first mounting plate 12, which is convenient for the installation and maintenance of the first mounting plate 12 and can form the overall framework of the support mechanism 1 together with the support rod assembly 11. Both ends of the first mounting plate 12 are detachably connected to the first telescopic rod 13 and the limiting rod 15, which is convenient for the installation and maintenance of the first telescopic rod 13 and the limiting rod 15. The two first telescopic rods 13 and the limiting rod 15 are respectively arranged diagonally, which can provide stable support for the top cover. The telescopic end of the first telescopic rod 13 is detachably connected to the top plate 14. The limiting rod 15 penetrates through the inside of the top plate 14 and is slidably connected to the top plate 14, which can limit the moving direction of the top plate 14. It is convenient to jack up the top plate 14 during the process of feeding the storage hopper 21 and cleaning and maintaining, increasing the distance between the top plate 14 and the storage hopper 21 to provide space for feeding. After the feeding is completed, the top plate 14 is reset to restore the protection of the storage hopper 21.
[0034] As Figure 1 and Figure 3As shown, a feeding pipe 22 is connected below the storage hopper 21. An electromagnetic valve 23 is provided at the upper end of the feeding pipe 22, which is convenient for discharging the raw materials in the storage hopper 21 and automatically closing when the required amount of materials is discharged, so that the feeding hopper stops feeding. A support ring 24 is connected to the outside of the storage hopper 21, which is convenient for installing the weighing sensor 25. The support ring 24 is connected to the upper end of the weighing sensor 25, and the weight of the discharged raw materials can be accurately calculated through the change of the measured value. A support plate 26 is connected below the weighing sensor 25, which can provide stable support for components such as the weighing sensor 25 and the storage hopper 21, and provide space for the downward and upward displacement of the storage hopper 21 due to the change of the weight of the internal raw materials. Both ends of the support plate 26 are respectively connected to two support long rods 112, which is convenient for the installation and maintenance of the support plate 26 and helps to maintain the stability of the storage mechanism 2.
[0035] As Figure 1 and Figure 4 shown, first support shafts 311 and second support shafts 312 are respectively arranged on both sides of the conveyor belt 31. A baffle 313 is connected between the first support shaft 311 and the second support shaft 312 on the same side, which can prevent the raw materials from falling to the ground from both sides above the conveyor belt 31 during the conveying process. The first support shaft 311 and the second support shaft 312 are respectively rotatably connected to the first support seat 32 and the second support seat 33. First nuts 314 and second nuts 315 are respectively threadedly connected to the outside of the first support shaft 311 and the second support shaft 312, which is convenient for adjusting the angles of the conveyor belt 31 and the baffle 313 according to requirements and tightening the first nuts 314 and the second nuts 315 for fixation.
[0036] As Figure 1 , Figure 4 and Figure 9 shown, second telescopic rods 34 and third telescopic rods 35 are respectively connected below the first support seat 32 and the second support seat 33, which is convenient for adjusting the height of the conveyor belt 31 according to requirements. Second mounting plates 36 are connected below both the second telescopic rods 34 and the third telescopic rods 35, which is convenient for the installation and maintenance of the second telescopic rods 34 and the third telescopic rods 35. A pressing plate 37 is arranged above both the second mounting plates 36. A long strip hole 371 is arranged inside the pressing plate 37, which is convenient for connecting with the first threaded column 361. A base 38 is arranged below the second mounting plate 36. Both ends of the base 38 are respectively detachably connected to both ends of the pressing plate 37, which is convenient for the disassembly and assembly of the pressing plate 37 and lays a foundation for installing the second mounting plate 36 between the pressing plate 37 and the base 38. Limiting grooves 381 are arranged on both sides above the base 38, which is convenient for connecting with the convex blocks 364. Two universal brake wheels 382 are symmetrically arranged on both sides below the base 38, which is convenient for adjusting the position of the conveying mechanism and fixing it, and vacates space for the cleaning and maintenance of the storage mechanism 2.
[0037] As Figure 1 , Figure 4 and Figure 8 shown, bumps 364 are provided at both lower ends of the second mounting plate 36. The bumps 364 are slidably connected to the limiting grooves 381, and can initially limit the moving direction of the second mounting plate 36 and the connecting components above it during the angle adjustment of the conveyor belt 31. A first threaded post 361 is provided in the middle above the second mounting plate 36. The first threaded post 361 passes through the inside of the long hole 371. A first gasket 362 is provided on the outside of the first threaded post 361. A third nut 363 is provided above the first gasket 362. The third nut 363 is threadedly connected to the first threaded post 361, which can further limit the moving direction of the second mounting plate 36 and the connecting components above it, and tighten the third nut 363 after the movement is completed and the angle adjustment of the conveyor belt 31 is completed to fix the position of the second mounting plate 36, thereby fixing the angles of the conveyor belt 31 and the baffle 313.
[0038] As Figure 1 , Figure 4 , Figure 5 , Figure 6 and Figure 7 shown, a mounting hole 3311 is provided inside the connecting seat 331. Second threaded posts 391 are provided at both ends of the scraper 39. The second threaded posts 391 pass through the inside of the mounting hole 3311. A second gasket 392 is provided on the outside of the second threaded posts 391. A fourth nut 393 is provided on one side of the second gasket 392. The fourth nut 393 is threadedly connected to the first threaded post 361, which is convenient for adjusting the angle of the scraper 39 according to the change in the included angle between the second support seat 33 and the conveyor belt 31, so as to ensure that the scraper 39 can still scrape off the raw materials attached to the conveyor belt 31 after the angle adjustment of the conveyor belt 31.
[0039] As Figure 1 and Figure 2 shown, a controller 4 is provided on one side of the support mechanism 1, which is convenient for controlling the operation of the relevant components in the device.
[0040] Before use, the raw material batching device for organic fertilizer processing disclosed in this embodiment uses the controller 4 to simultaneously control the two first telescopic rods 13 to extend, jack up the top plate 14, and increase the distance between the top plate 14 and the storage hopper 21 to provide space for injecting raw materials into the storage hopper 21. Zero the weighing sensor 25 on the controller 4. After using the original feeding device to inject sufficient organic fertilizer raw materials into each storage hopper 21 in sequence, move the feeding device away, and loosen the first nut 314, the second nut 315, the third nut 363, and the fourth nut 393 in sequence. According to the angle adjustment of the conveyor belt 31, use the controller 4 to control the telescopic movement of the two second telescopic rods 34 and the third telescopic rod 35 respectively. During the telescopic movement of the second telescopic rod 34 and the third telescopic rod 35, the angles of the first support base 32 and the second support base 33 with respect to the conveyor belt 31 change accordingly. At this time, the convex block 364 and the first threaded rod 361 slide in the limiting groove 381 and the long hole 371 respectively. When the conveyor belt 31 is adjusted to the appropriate angle, tighten the first nut 314, the second nut 315, and the third nut 363 in sequence. Adjust the angle of the scraper 39 so that the second threaded rod 391 rotates in the mounting hole 3311. When the scraper 39 is adjusted to an angle perpendicular to the conveyor belt 31, tighten the two fourth nuts 393 in sequence to fix the scraper 39.
[0041] Install the original collection device or other material receiving equipment at one end of the conveyor belt 31 and connect it to the scraper 39. Use the controller 4 to start the conveyor belt 31, and use the controller 4 to simultaneously control the two first telescopic rods 13 to contract to reset the top plate 14. Record on the controller 4 the weights of the raw materials before discharging transmitted back by the weighing sensors 25 on both sides of each storage hopper 21. According to the set raw material ratio, open the solenoid valves 23 below the corresponding storage hoppers 21 in sequence, so that the raw materials in the storage hoppers 21 are discharged through the feeding pipes 22 and fall onto the conveyor belt 31, and are transported to the collection device via the conveyor belt 31. The scraper 39 scrapes the raw materials attached to the conveyor belt 31 into the collection device. At this time, the value of the weighing sensor 25 gradually decreases, and the decreased value is the weight of the raw materials discharged from the storage hopper 21. When the required raw material weight is reached, use the controller 4 to close the solenoid valve 23. When the raw materials on the conveyor belt 31 are completely sent into the collection device, the solenoid valve 23 can be opened again to cooperate with the change in the value of the weighing sensor 25 for precise feeding. It is also possible to set the target value for the decrease in the value of the weighing sensor 25 in the controller 4, and link the weighing sensor 25 with the solenoid valve 23 so that when the target value is reached, the solenoid valve 23 automatically closes, and then the worker manually opens it to continue feeding.
[0042] The controller 4, the first telescopic rod 13, the solenoid valve 23, the weighing sensor 25, the conveyor belt 31, the first nut 314, the second nut 315, the second telescopic rod 34, the third telescopic rod 35, the first threaded rod 361, the first gasket 362, the third nut 363, the universal brake wheel 382, the second threaded rod 391, the second gasket 392, the fourth nut 393 and other components in the raw material batching device for organic fertilizer processing disclosed by the present utility model are all common standard components or components known to those skilled in the art, and their structures and principles can all be known by those skilled in the art through technical manuals or obtained through conventional experimental methods.
[0043] The above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. An ingredient batching device for organic fertilizer processing, comprising a support mechanism, characterized in that, A plurality of material storage mechanisms are equidistantly arranged inside the support mechanism. A material conveying mechanism is arranged below the material storage mechanism. The support mechanism includes a support rod assembly and a first mounting plate. Two first mounting plates are symmetrically arranged above the support rod assembly. At both ends above the first mounting plate, a first telescopic rod and a limiting rod are respectively arranged. The telescopic ends of the two first telescopic rods are connected to a top plate. The material storage mechanism includes a storage hopper. Weighing sensors are arranged on both sides of the storage hopper. The material conveying mechanism includes a conveyor belt, a first support seat, a second support seat, and a scraper. The first support seat and the second support seat are respectively arranged on both sides of the conveyor belt. Connecting seats are arranged on one side of the two second support seats. A scraper is connected between the two connecting seats.
2. The raw material batching device for organic fertilizer processing according to claim 1, wherein, The support rod assembly includes two support long rods and four support vertical rods. The two ends of the two support long rods are respectively connected to the support vertical rods. The upper ends of the support vertical rods are detachably connected to the first mounting plate. The two ends of the first mounting plate are respectively detachably connected to the first telescopic rod and the limiting rod. The two first telescopic rods and the limiting rods are respectively arranged diagonally. The telescopic end of the first telescopic rod is detachably connected to the top plate. The limiting rod penetrates through the inside of the top plate and is slidably connected to the top plate.
3. The raw material batching device for organic fertilizer processing according to claim 1, wherein, A feeding pipe is connected below the storage hopper. An electromagnetic valve is arranged at the upper end of the feeding pipe. A support ring is connected to the outside of the storage hopper. The support ring is connected to the upper end of the weighing sensor. A support plate is connected below the weighing sensor. The two ends of the support plate are respectively connected to the two support long rods.
4. A raw material batching device for organic fertilizer processing according to claim 1, characterized in that, First support shafts and second support shafts are respectively arranged on both sides of the conveyor belt. A baffle is connected between the first support shaft and the second support shaft on the same side. The first support shaft and the second support shaft are respectively rotatably connected to the first support seat and the second support seat. A first nut and a second nut are respectively threadedly connected to the outside of the first support shaft and the second support shaft.
5. The raw material batching device for organic fertilizer processing according to claim 1, characterized in that, Second telescopic rods and third telescopic rods are respectively connected below the first support seat and the second support seat. The lower ends of the two second telescopic rods and the third telescopic rods are both connected to a second mounting plate. A pressing plate is arranged above the two second mounting plates. A long strip hole is arranged inside the pressing plate. A base is arranged below the second mounting plate. The two ends of the base are respectively detachably connected to the two ends of the pressing plate. Limiting grooves are arranged on both sides above the base. Two universal brake wheels are symmetrically arranged on both sides below the base.
6. The raw material batching device for organic fertilizer processing according to claim 5, characterized in that, Protrusions are arranged at both ends below the second mounting plate. The protrusions are slidably connected to the limiting grooves. A first threaded column is arranged in the middle above the second mounting plate. The first threaded column penetrates through the inside of the long strip hole. A first gasket is arranged on the outside of the first threaded column. A third nut is arranged above the first gasket. The third nut is threadedly connected to the first threaded column.
7. A raw material batching device for organic fertilizer processing according to claim 1, characterized in that, An installation hole is provided inside the connection base. Both ends of the scraping plate are provided with second threaded posts. The second threaded posts penetrate through the inside of the installation hole. A second gasket is arranged on the outer side of the second threaded post. A fourth nut is arranged on one side of the second gasket. The fourth nut is threadedly connected to the first threaded post.
8. The raw material batching device for organic fertilizer processing according to claim 1, characterized in that, A controller is arranged on one side of the support mechanism.
Citation Information
Patent Citations
Raw material quantitative batching device for bio-organic fertilizer production
CN214106815U