An environmentally friendly molding device for processing biological feed
By introducing components such as a shock-absorbing base, drying equipment, and compression molding mechanism into the bio-feed forming device, the problems of adhesion and uneven drying were solved, achieving efficient dehydration and drying effects and improving the efficiency of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-24
- Publication Date
- 2026-04-03
AI Technical Summary
Existing bio-feed forming equipment is prone to sticking to the inner wall of the device during processing, and lacks effective dehydration and drying mechanisms, resulting in resource waste and low utilization efficiency.
The system employs components such as a shock-absorbing base, drying equipment, compression molding mechanism, stirring mechanism, and screening chamber. The compression molding plate is pushed by a cylinder to squeeze the material, the water absorption unit absorbs moisture, the impact rod shakes off the residue, and the stirring motor drives the heat-conducting components to stir and dry the material.
It improves the dehydration and drying effect of the molding device, reduces resource waste, and enhances the utilization efficiency of the molding device.
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Figure CN118716647B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of bio-feed processing technology, and more specifically to an environmentally friendly bio-feed processing molding device. Background Technology
[0002] The concept of bio-feed is relatively new, emerging only in the last decade or so. Its definition and connotation have evolved with scientific and practical advancements. Broadly speaking, bio-feed should encompass all feeds or raw materials except for artificially synthesized additives. Early proposals suggested that bio-feed should include novel protein and energy sources such as straw, feathers, and insect protein. Generally, bio-feed refers to new feed resources and additives developed using advanced technologies like genetic engineering, protein engineering, and fermentation engineering, utilizing microbial fermentation. The purpose of using feed is to adjust particle size, improve palatability for livestock, and facilitate contact with digestive juices, thereby increasing digestibility and nutrient absorption. Therefore, bio-feed processing and shaping equipment is required during its production.
[0003] For example, a bio-feed processing and molding device, disclosed in Chinese Invention Publication No. CN113854605A, includes a workbench, a compression mechanism, and a discharge mechanism. The compression mechanism includes a mounting frame at one end of the workbench, a crank rotatably connected to the mounting frame, a support rod rotatably connected to the middle of the crank, a sliding rod rotatably connected to the other end of the support rod, a lead screw at the other end of the sliding rod, an extrusion box sleeved on the outer side of the lead screw, an extrusion plate slidably connected to the side of the sliding rod near the lead screw, and a first limiting plate fixedly connected to the side of the sliding rod away from the lead screw. A first spring is provided between the first limiting plate and the extrusion plate. An extrusion chamber cooperating with the extrusion plate is provided on the side of the workbench near the mounting frame. The discharge mechanism has a discharge port in the middle of the workbench. This invention is applicable to an environmentally friendly bio-feed processing and molding device, which completes the extrusion processing of feed through the synchronous left and right movement of the extrusion box and the extrusion plate.
[0004] The existing technology has the following problems:
[0005] 1. In actual use, existing forming and processing equipment usually uses compression to form feed. However, during the forming process, there is often moisture in the feed, which cannot be dehydrated well. The feed tends to stick to the inner wall of the equipment, resulting in resource waste and reducing the utilization efficiency of the forming equipment.
[0006] 2. In actual use, the existing molding and processing equipment lacks a drying mechanism for feed. The usual drying mechanism is prone to the accumulation of biological feed, uneven drying, and low drying efficiency, thereby reducing the efficiency of the molding equipment. Summary of the Invention
[0007] This invention provides an environmentally friendly forming device for processing biological feed to solve the problems mentioned in the background art.
[0008] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows:
[0009] An environmentally friendly biological feed processing molding device includes a shock-absorbing base, a drying device fixedly installed on the upper surface of the shock-absorbing base, a molding device arranged above the surface of the drying device, a feeding hopper fixedly installed on the top surface of the molding device, a screening chamber fixedly installed at the bottom of the molding device, a compression molding mechanism arranged inside the molding device, the compression molding mechanism including a compression unit arranged inside the molding device, a water absorption unit arranged at one end of the compression unit, and a stirring mechanism arranged inside the drying device, the stirring mechanism including a stirring unit arranged inside the drying device, a drying unit arranged at one end of the stirring unit.
[0010] A further improvement of the technical solution of the present invention is that: a screening plate is movably connected inside the screening chamber, and a vibration motor is fixedly installed on the outside of the screening plate; vibration plates are movably connected to both sides of the screening plate; and a vibration component is movably installed at the bottom of the vibration plate. By setting the screening plate, vibration motor, vibration plates and vibration component to cooperate together, the feed is screened by vibration.
[0011] A further improvement of the technical solution of the present invention is that: the compression mechanism includes cylinders fixedly installed at both ends of the molding equipment, a compression molding plate one is fixedly installed at the telescopic end of the cylinder, a soft connecting column is fixedly connected to one side of the surface of the compression molding plate one, and a compression molding plate two is fixedly installed at one end of the soft connecting column. By using the cylinder to push the compression molding plate one, and through the connection of the soft connecting column, the compression molding plate two is driven to compress and mold the feed.
[0012] A further improvement of the technical solution of the present invention is that: an elastic rubber block is fixedly installed on the inner surface of the compression molding plate one, an elastic component is fixedly connected to one end of the elastic rubber block, a rubber ring is fixedly installed on the inner surface of the compression molding plate one, a soft component is fixedly connected to the outer surface of the rubber ring, and one end of the soft component is fixedly connected to the inner surface of the compression molding plate two. By setting the cooperation between the elastic rubber block, the rubber ring and the soft component, deformation occurs under the influence of pressure, thereby improving the compression effect.
[0013] A further improvement of the technical solution of the present invention is that: the water-absorbing unit includes a water-absorbing panel fixedly installed on the outer surface of the compression molding plate, the surface of the water-absorbing panel is provided with filter holes, and a water-absorbing cotton plate is snapped into the inner wall of the water-absorbing panel. A water-absorbing cotton sheet is fixedly installed on the inner surface of the water-absorbing cotton plate, an installation plate is fixedly installed on one end surface of the water-absorbing panel, an epoxy resin water-absorbing pad is fixedly installed on the inner surface of the installation plate, and a rebound component is fixedly connected to the surface of the epoxy resin water-absorbing pad. By setting the filter holes, water-absorbing cotton plate, water-absorbing cotton sheet, installation plate, epoxy resin water-absorbing pad and rebound component, part of the moisture in the feed is absorbed.
[0014] A further improvement of the technical solution of the present invention is that: an impact rod is movably connected inside the rebound assembly, a rebound rod body is fixedly installed at one end of the impact rod, a rebound component is installed at one end of the rebound rod body, and a rebound device is fixedly installed at one end of the rebound component. By setting the cooperation between the impact rod, the rebound rod body, the rebound component and the rebound device, the residues adhering to the surface of the absorbent panel are shaken off by the rebound impact.
[0015] A further improvement of the technical solution of the present invention is that: the stirring unit includes a stirring motor disposed at one end of the drying equipment, the output shaft of the stirring motor is fixedly mounted with a drive gear, the outer surface of the drive gear is meshed with an auxiliary gear, the inner walls of the auxiliary gear and the drive gear are both fixedly connected with a rotating shaft, and one end of the rotating shaft is fixedly mounted with a heat-conducting iron frame. The transmission drive is achieved by setting the cooperation between the stirring motor, the auxiliary gear, the drive gear, the rotating shaft and the heat-conducting iron frame.
[0016] A further improvement of the technical solution of the present invention is that: heat transfer rings are fixedly installed on both ends of the heat-conducting iron frame, heat-conducting triangular members are fixedly installed on the inner surface of the heat transfer rings, and a stirring shaft is fixedly connected to the surface of the heat-conducting triangular members. A stirring assembly is fixedly installed on the surface of the stirring shaft. By setting the cooperation between the heat transfer rings, heat-conducting triangular members, stirring shaft and stirring assembly, the feed is stirred, and the drying effect is improved by increasing the contact surface.
[0017] A further improvement of the technical solution of the present invention is that: a heat-conducting component is fixedly installed on the outer surface of the heat-conducting iron frame, an electric heating element is fixedly installed on the inner surface of the heat-conducting component, and a heat-conducting silicon wafer is fixedly installed on the inner surface of the heat-conducting component. A graphene heat-conducting pipe is fixedly installed on one side surface of the heat-conducting silicon wafer, and an electric heating core is fixedly installed on one side surface of the graphene heat-conducting pipe. By setting the cooperation between the heat-conducting component, the electric heating element, the heat-conducting silicon wafer, the graphene heat-conducting pipe, and the electric heating core, the mechanism has good heat transfer and accelerates the evaporation of moisture.
[0018] Due to the adoption of the above technical solution, the technical progress achieved by this invention compared to the prior art is as follows:
[0019] 1. This invention provides an environmentally friendly forming device for processing biological feed. A cylinder pushes a compression forming plate connected by a soft connecting column, causing the compression forming plate to be squeezed. During the squeezing process, the elastic rubber block and elastic components, made of elastic materials, deform under pressure. Similarly, the rubber ring and soft components deform to improve the compression effect and thus the forming effect. By incorporating a water-absorbing panel, the feed is pressurized and rubbed during compression, squeezing out moisture. The water-absorbing panel absorbs some of the moisture in the feed, increasing the dehydration effect. The moisture is then absorbed by the water-absorbing panel and absorbent cotton pads through filter holes. The cooperation between the mounting plate and the epoxy resin absorbent pad further enhances the absorption effect, thereby improving the utilization efficiency of the forming device.
[0020] 2. This invention provides an environmentally friendly forming device for processing biological feed. The device utilizes an impact rod that, under pressure, retracts into a rebound assembly. During this process, the rebound rod and rebound component are compressed, causing the rebounder to undergo physical deformation under force. When the compression reaches a certain level, the rebounder releases, and the impact rod strikes the surface of the water-absorbing panel with constant energy. This causes residue adsorbed by moisture on the surface to be shaken off through the rebound impact, preventing feed waste and improving the device's efficiency.
[0021] 3. This invention provides an environmentally friendly forming device for processing biological feed. By starting a stirring motor, the drive gear rotates, and with the assistance of auxiliary gears, the heat-conducting iron frame rotates. Simultaneously, the heat-transferring ring and heat-conducting triangular component rotate. The stirring shaft drives the stirring assembly to stir and dry the feed. During this process, an electric heating element generates heat, which is then transferred through a graphene heat-conducting pipe. The graphene heat-conducting pipe, made of graphene material, has excellent thermal conductivity. This heat is further enhanced by the electric heating core. Overheat conduction utilizes thermally conductive silicon wafers as a heat transfer medium to conduct heat to the surface of the heat-conducting components. The surface temperature of the heat-conducting components rises, which in turn raises the temperature of the heat-conducting iron frame. Through the principle of heat transfer, the hotter object transfers heat to the colder object. This layer-by-layer transfer, combined with the fact that the heat-conducting ring, the heat-conducting triangular components, and the stirring shaft all have a certain degree of thermal conductivity, results in a certain amount of heat on the surface of the stirring assembly. This allows the feed to evaporate moisture when it comes into contact with the surface, improving the drying effect and thus enhancing the working efficiency of the forming device. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the structure of the present invention;
[0023] Figure 2 This is a three-dimensional schematic diagram of the structural compression molding mechanism of the present invention;
[0024] Figure 3 This is a three-dimensional cross-sectional schematic diagram of the water-absorbing panel of the present invention;
[0025] Figure 4 This is a three-dimensional cross-sectional schematic diagram of the structural springback assembly of the present invention;
[0026] Figure 5 This is a three-dimensional schematic diagram of the stirring mechanism of the present invention.
[0027] Figure 6 This is an enlarged schematic diagram of section A of the structure of the present invention;
[0028] Figure 7 This is a three-dimensional cross-sectional schematic diagram of the thermally conductive structural component of the present invention.
[0029] In the diagram: 1. Vibration damping base; 2. Drying equipment; 3. Molding equipment; 31. Feed hopper;
[0030] 4. Screening chamber; 41. Screening plate; 42. Vibration motor; 43. Vibration plate; 44. Vibration component;
[0031] 5. Compression molding mechanism; 51. Cylinder; 52. Compression molding plate one; 521. Compression molding plate two; 53. Flexible connecting column; 54. Elastic rubber block; 541. Elastic component; 55. Rubber ring; 551. Flexible component;
[0032] 56. Absorbent panel; 561. Filter holes; 562. Absorbent cotton board; 563. Absorbent cotton sheet; 564. Mounting plate; 565. Epoxy resin absorbent pad; 566. Rebound assembly;
[0033] 5661. Impact rod; 5662. Rebound rod body; 5663. Rebound component; 5664. Rebound device;
[0034] 6. Stirring mechanism; 61. Stirring motor; 62. Auxiliary gear; 63. Drive gear; 64. Rotating shaft; 65. Heat-conducting iron frame;
[0035] 651. Thermally conductive component; 6511. Electric heating element; 6512. Thermally conductive silicon wafer; 6513. Graphene heat pipe; 6514. Electric heating core; 66. Heat transfer ring; 67. Thermally conductive triangular component; 68. Stirring shaft; 69. Stirring assembly. Detailed Implementation
[0036] The present invention will be further described in detail below with reference to embodiments: Example 1
[0037] like Figure 1-7 As shown, this invention provides an environmentally friendly biological feed processing molding device, including a shock-absorbing base 1, a drying device 2 fixedly installed on the upper surface of the shock-absorbing base 1, a molding device 3 arranged above the surface of the drying device 2, a feeding hopper 31 fixedly installed on the top surface of the molding device 3, a screening chamber 4 fixedly installed at the bottom of the molding device 3, a compression molding mechanism 5 arranged inside the molding device 3, the compression molding mechanism 5 including a compression unit arranged inside the molding device 3, a water absorption unit arranged at one end of the compression unit, a stirring mechanism 6 arranged inside the drying device 2, the stirring mechanism 6 including a stirring unit arranged inside the drying device 2, a drying unit arranged at one end of the stirring unit, a screening plate 41 movably connected inside the screening chamber 4, and a vibration motor fixedly installed on the outer side of the screening plate 41. 42. Vibrating plates 43 are movably connected to both sides of the screening plate 41. Vibrating components 44 are movably installed at the bottom of the vibrating plates 43. The compression mechanism includes cylinders 51 fixedly installed at both ends of the molding equipment 3. A compression molding plate 52 is fixedly installed at the telescopic end of the cylinder 51. A soft connecting column 53 is fixedly connected to one side of the surface of the compression molding plate 52. A compression molding plate 521 is fixedly installed at one end of the soft connecting column 53. An elastic rubber block 54 is fixedly installed on the inner surface of the compression molding plate 52. An elastic component 541 is fixedly connected to one end of the elastic rubber block 54. A rubber ring 55 is fixedly installed on the inner surface of the compression molding plate 52. A soft component 551 is fixedly connected to the outer surface of the rubber ring 55. One end of the soft component 551 is fixedly connected to the inner surface of the compression molding plate 521.
[0038] Furthermore, by using cylinder 51 to push compression molding plate 52 and connecting it with soft connecting column 53, compression molding plate 521 is squeezed. During the squeezing process, under the influence of pressure, elastic rubber block 54 and elastic component 541, which are made of elastic material, deform. Similarly, rubber ring 55 and soft component 551 deform to improve the compression effect and improve the molding effect. By setting water-absorbing panel 56, the feed is pressurized and rubbed during the compression process, squeezing out the water in the material. During this process, water-absorbing panel 56 absorbs some of the water in the feed, increasing the dehydration effect. The water is absorbed by water-absorbing cotton plate 562 and water-absorbing cotton sheet 563 through filter water holes 561. The absorption effect is improved by the cooperation between mounting plate 564 and epoxy resin water-absorbing pad 565. Example 2
[0039] like Figure 1-7As shown, based on Embodiment 1, the present invention provides a technical solution: Preferably, the water-absorbing unit includes a water-absorbing panel 56 fixedly installed on the outer surface of the compression molding plate 521. The surface of the water-absorbing panel 56 has filter holes 561, and a water-absorbing cotton plate 562 is snapped onto the inner wall of the water-absorbing panel 56. A water-absorbing cotton sheet 563 is fixedly installed on the inner surface of the water-absorbing cotton plate 562. An installation plate 564 is fixedly installed on one end surface of the water-absorbing panel 56. An epoxy resin water-absorbing pad 565 is fixedly installed on the inner surface of the installation plate 564. A rebound component 566 is fixedly connected to the surface of the epoxy resin water-absorbing pad 565. An impact rod 5661 is movably connected inside the rebound component 566. One end of the impact rod 5661... A rebound rod 5662 is fixedly installed at one end, and a rebound component 5663 is installed at one end of the rebound rod 5662. A rebound device 5664 is fixedly installed at one end of the rebound component 5663. When the impact rod 5661 is subjected to pressure, it retracts into the rebound component 566. During this process, the rebound rod 5662 and the rebound component 5663 are compressed, which causes the rebound device 5664 to undergo physical deformation under the action of force. When the compression reaches a certain degree, the rebound device 5664 is released. The impact rod 5661 impacts the surface of the water-absorbing panel 56 with constant energy, causing the residue adsorbed by moisture on the surface to be shaken off through the rebound impact. Example 3
[0040] like Figure 1-7As shown, based on Embodiment 1, the present invention provides a technical solution: Preferably, the stirring unit includes a stirring motor 61 disposed at one end of the drying device 2. A drive gear 63 is fixedly mounted on the output shaft of the stirring motor 61. An auxiliary gear 62 is meshed with the outer surface of the drive gear 63. A rotating shaft 64 is fixedly connected to the inner walls of both the auxiliary gear 62 and the drive gear 63. A heat-conducting iron frame 65 is fixedly mounted at one end of the rotating shaft 64. Heat-transferring rings 66 are fixedly mounted on both ends of the heat-conducting iron frame 65. A heat-conducting triangular member 67 is fixedly mounted on the inner surface of the heat-conducting ring 66, and the heat-conducting... A stirring shaft 68 is fixedly connected to the surface of the triangular member 67, and a stirring assembly 69 is fixedly installed on the surface of the stirring shaft 68. The drying unit includes a heat-conducting member 651 fixedly installed on the outer surface of the heat-conducting iron frame 65. An electric heating element 6511 is fixedly installed on the inner surface of the heat-conducting member 651, and a heat-conducting silicon wafer 6512 is fixedly installed on the inner surface of the heat-conducting member 651. A graphene heat-conducting pipe 6513 is fixedly installed on one side surface of the heat-conducting silicon wafer 6512, and an electric heating core 6514 is fixedly installed on one side surface of the graphene heat-conducting pipe 6513. The main heating element is driven by starting the stirring motor 61. The moving gear 63 rotates, and through the cooperation of the auxiliary gear 62, drives the heat-conducting iron frame 65 to rotate. Simultaneously, it drives the heat-conducting ring 66 and the heat-conducting triangular component 67 to rotate. The stirring shaft 68 drives the stirring assembly 69 to stir and dry the feed. During this process, the electric heating element 6511 generates heat, which is then transferred through the graphene heat pipe 6513 (made of graphene material, which has excellent thermal conductivity). This heat is further enhanced by the electric heating core 6514, and the heat is conducted through heat transfer. Using a thermally conductive silicon wafer 6512 as a heat transfer medium, heat is conducted to the surface of the thermally conductive component 651, raising the surface temperature of the thermally conductive component 651, which in turn raises the temperature of the thermally conductive iron frame 65. Through the principle of heat transfer, the object with a higher temperature transfers heat to the object with a lower temperature. This process is repeated layer by layer. Since the heat transfer ring 66, the thermally conductive triangular component 67, and the stirring shaft 68 all have a certain thermal conductivity, the surface of the stirring assembly 69 also has a certain amount of heat. This allows the feed to evaporate moisture when it comes into contact with the surface, which helps to improve the drying effect.
[0041] The working principle of this environmentally friendly biological feed processing molding device will be explained in detail below.
[0042] like Figure 1-7As shown, firstly, by using cylinder 51 to push compression molding plate 52 and connecting it with soft connecting column 53, compression molding plate 521 is squeezed. During the squeezing process, under the influence of pressure, elastic rubber block 54 and elastic component 541, which are made of elastic material, deform. Similarly, rubber ring 55 and soft component 551 deform to improve the compression effect and improve the molding effect. By setting up water-absorbing panel 56, the feed is pressurized and rubbed during the compression process, causing the water in the material to be squeezed out. During this process, water-absorbing panel 56 absorbs some of the water in the feed, increasing the dehydration effect. The effect is that moisture is absorbed by the absorbent cotton plate 562 and absorbent cotton sheet 563 after passing through the filter holes 561. The absorption effect is improved by the cooperation between the mounting plate 564 and the epoxy resin absorbent pad 565. Then, the impact rod 5661 retracts into the rebound assembly 566 after being subjected to pressure. During this process, the rebound rod 5662 and the rebound assembly 5663 are compressed, causing the rebound device 5664 to undergo physical deformation under the action of force. When the compression reaches a certain degree, the rebound device 5664 is released, and the impact rod 5661 impacts the surface of the absorbent panel 56 with a constant energy. The residue adsorbed by moisture on the surface is shaken off by the rebound impact. Simultaneously, the starting stirring motor 61 drives the drive gear 63 to rotate, and with the cooperation of the auxiliary gear 62, drives the heat-conducting iron frame 65 to rotate. This, in turn, drives the heat-transferring ring 66 and the heat-conducting triangular component 67 to rotate. The stirring shaft 68 drives the stirring assembly 69 to stir and dry the feed. During this process, heating is achieved using the electric heating element 6511. The heat generated on its surface passes through the graphene heat pipe 6513, which is made of graphene material and has excellent thermal conductivity. The heat is then further transferred through the electric heating element. The heat core 6514 enhances heat transfer. Through heat conduction, the thermally conductive silicon wafer 6512 is used as a heat transfer medium to conduct heat to the surface of the heat-conducting component 651. The surface temperature of the heat-conducting component 651 rises, which in turn raises the temperature of the heat-conducting iron frame 65. Through the principle of heat transfer, the object with a higher temperature transfers heat to the object with a lower temperature. Through layer-by-layer transfer, and because the heat-conducting ring 66, the heat-conducting triangular component 67, and the stirring shaft 68 all have a certain degree of heat conduction, the surface of the stirring assembly 69 has a certain amount of heat. This allows the feed to evaporate moisture when it comes into contact with the surface, which is beneficial for improving the drying effect.
[0043] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the scope of protection of the present invention.
Claims
1. An environmentally friendly biological feed processing molding device, comprising a shock-absorbing base (1), wherein a drying device (2) is fixedly installed on the upper surface of the shock-absorbing base (1), a molding device (3) is disposed above the surface of the drying device (2), and a feeding hopper (31) is fixedly installed on the top surface of the molding device (3), characterized in that: The bottom of the molding device (3) is fixedly installed with a screening chamber (4), and the inside of the molding device (3) is provided with a compression molding mechanism (5). The compression molding mechanism (5) includes a compression unit provided inside the molding device (3), and a water absorption unit is provided at one end of the compression unit. The inside of the drying device (2) is provided with a stirring mechanism (6), and the stirring mechanism (6) includes a stirring unit provided inside the drying device (2), and a drying unit is provided at one end of the stirring unit. The compression molding mechanism (5) includes cylinders (51) fixedly installed at both ends of the molding equipment (3). A compression molding plate (52) is fixedly installed at the telescopic end of the cylinder (51). A soft connecting column (53) is fixedly connected to one side of the surface of the compression molding plate (52). A compression molding plate (521) is fixedly installed at one end of the soft connecting column (53). The water-absorbing unit includes a water-absorbing panel (56) fixedly installed on the outer surface of the compression molding plate (521). The surface of the water-absorbing panel (56) is provided with water-filtering holes (561), and a water-absorbing cotton board (562) is snapped into the inner wall of the water-absorbing panel (56). A water-absorbing cotton sheet (563) is fixedly installed on the inner surface of the water-absorbing cotton board (562). An installation plate (564) is fixedly installed on one end surface of the water-absorbing panel (56). An epoxy resin water-absorbing pad (565) is fixedly installed on the inner surface of the installation plate (564). A rebound component (566) is fixedly connected to the surface of the epoxy resin water-absorbing pad (565). The rebound assembly (566) is internally connected to an impact rod (5661). One end of the impact rod (5661) is fixedly mounted with a rebound rod body (5662). One end of the rebound rod body (5662) is mounted with a rebound component (5663), and one end of the rebound component (5663) is fixedly mounted with a rebound device (5664).
2. The environmentally friendly biological feed processing molding device according to claim 1, characterized in that: The screening chamber (4) is movably connected to a screening plate (41), and a vibration motor (42) is fixedly installed on the outside of the screening plate (41). Vibration plates (43) are movably connected to both sides of the screening plate (41), and a vibration component (44) is movably installed at the bottom of the vibration plate (43).
3. The environmentally friendly biological feed processing molding device according to claim 1, characterized in that: An elastic rubber block (54) is fixedly installed on the inner surface of the compression molding plate one (52). An elastic member (541) is fixedly connected to one end of the elastic rubber block (54). A rubber ring (55) is fixedly installed on the inner surface of the compression molding plate one (52). A soft component (551) is fixedly connected to the outer surface of the rubber ring (55). One end of the soft component (551) is fixedly connected to the inner surface of the compression molding plate two (521).
4. The environmentally friendly biological feed processing molding device according to claim 1, characterized in that: The stirring unit includes a stirring motor (61) located at one end of the drying equipment (2). The output shaft of the stirring motor (61) is fixedly mounted with a drive gear (63). An auxiliary gear (62) is meshed with the outer surface of the drive gear (63). A rotating shaft (64) is fixedly connected to the inner wall of both the auxiliary gear (62) and the drive gear (63). A heat-conducting iron frame (65) is fixedly mounted at one end of the rotating shaft (64).
5. The environmentally friendly biological feed processing molding device according to claim 4, characterized in that: Heat transfer rings (66) are fixedly installed on both ends of the heat-conducting iron frame (65). Heat-conducting triangular members (67) are fixedly installed on the inner surface of the heat transfer rings (66). A stirring shaft (68) is fixedly connected to the surface of the heat-conducting triangular members (67). A stirring assembly (69) is fixedly installed on the surface of the stirring shaft (68).
6. The environmentally friendly biological feed processing molding device according to claim 5, characterized in that: The drying unit includes a heat-conducting component (651) fixedly installed on the outer surface of a heat-conducting iron frame (65). An electric heating element (6511) is fixedly installed on the inner surface of the heat-conducting component (651), and a heat-conducting silicon wafer (6512) is fixedly installed on the inner surface of the heat-conducting component (651). A graphene heat pipe (6513) is fixedly installed on one side surface of the heat-conducting silicon wafer (6512), and an electric heating core (6514) is fixedly installed on one side surface of the graphene heat pipe (6513).
Citation Information
Patent Citations
Environment-friendly biological feed processing and forming device
CN113854605A
Drying and screening device for feed processing
CN210632423U
Improved feed granulating and forming device
CN214514407U