Automatic treatment device for flower planting medium

By designing an automated processing device for flower planting media, and adopting a bottom-up circulating stirring structure, the problem of clumping during the stirring process was solved, achieving uniform mixing of the planting media and improving mixing efficiency and nutrient balance.

CN122030221APending Publication Date: 2026-05-15TONGXIANG ZHENCHEN FLOWER CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
TONGXIANG ZHENCHEN FLOWER CO LTD
Filing Date
2024-01-15
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing flower planting media are prone to clumping during the mixing process, leading to an imbalance of nutrients and affecting the healthy growth of flowers.

Method used

Design an automated processing device for flower planting media, including an automatic feeding mechanism, a vertical storage mechanism, an internal circulation mechanism, a circulation drive mechanism, and a dispersing mechanism. Through a bottom-up circulating stirring structure, the mixed materials are fully crushed, dispersed, and uniformly dispersed.

Benefits of technology

It improves mixing efficiency and material mixing quality, ensures balanced nutrient composition of planting medium, and promotes healthy flower growth.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN122030221A_ABST
    Figure CN122030221A_ABST
Patent Text Reader

Abstract

The invention discloses an automatic flower planting medium treatment device, and belongs to the technical field of flower planting medium treatment.The automatic flower planting medium treatment device comprises a first supporting frame and a second supporting frame, and an automatic feeding mechanism is fixedly installed on the second supporting frame; a vertical material storage mechanism is fixedly mounted on the first supporting frame, an inner circulation mechanism is fixedly connected in the vertical material storage mechanism, and a circulation driving mechanism is arranged between the vertical material storage mechanism and the inner circulation mechanism; a scattering and dispersing mechanism used for scattering and dispersing materials is installed between the vertical material storage mechanism and the circulation driving mechanism. By designing the internal circulation mechanism, the circulation driving mechanism and the scattering and dispersing mechanism, the internal circulation mechanism can be matched with the circulation driving mechanism to realize the circulation movement of mixed materials from bottom to top, and a plurality of metal rods rotating at high speed can quickly scatter the overflowed mixed materials, so that the continuous circulation stirring, dispersing and mixing are realized.
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Description

Technical Field

[0001] This invention belongs to the field of flower planting medium treatment technology, specifically relating to an automated flower planting medium treatment device. Background Technology

[0002] Flowering media refers to the substances that provide a habitat for plant growth and root anchorage, commonly known as soil or culture medium. Choosing the right media is crucial for the growth and health of flowers. Common flowering media include potting soil, vermiculite, perlite, leaf mold, vermiculite, and hydroponic media. Potting soil is a mixture of organic matter (such as leaf mold and well-rotted compost) and minerals (such as perlite and vermiculite). It has good water retention and aeration, provides the nutrients needed by plants, and promotes root development. Vermiculite is a porous mineral that can be used to increase soil aeration and water retention; it can be mixed with other media. Perlite is a lightweight, porous volcanic rock often used to improve soil aeration and water retention. It is also effective in absorbing and releasing water and providing trace elements. Leaf mold is a soil composed of decomposed leaves and plant residues. It is rich in organic matter, provides abundant nutrients, and has good water retention. Vermiculite is a planting medium made from soil and sand with the addition of appropriate amounts of earthworm castings. Vermiculite is rich in organic matter and has excellent water retention and aeration.

[0003] Choosing the right planting medium requires considering the plant's preferences and needs, as well as environmental conditions. Different types of flowers may have different requirements for the medium. Currently, common flower planting media are generally composite media made up of a variety of materials. In the large-scale production and processing of flower planting media, specialized processing equipment is usually required. Mixing is the most important step in the production and processing of planting media. There are various types of mixers on the market, including commonly used vertical mixers and horizontal mixers. Although conventional mixers can achieve the mixing effect of planting media, in actual production and processing, many materials in the medium tend to clump together. When various materials are poured into the mixer for mixing, due to the large amount of material and the low speed of the mixer, it is difficult to fully break up the clumps and mix them thoroughly with other materials. This can lead to an imbalance of nutrients in the processed planting media, which may affect the healthy growth of some flowers during subsequent use. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art and provide an automated processing device for flower planting media.

[0005] The technical solution adopted to solve the above technical problems is: an automated processing device for flower planting media, including a first support frame and a second support frame, an automatic feeding mechanism is fixedly installed on the second support frame, a vertical storage mechanism is fixedly installed on the first support frame, and two connecting components are fixedly connected between the automatic feeding mechanism and the vertical storage mechanism.

[0006] An internal circulation mechanism is fixedly connected inside the vertical storage mechanism, and a circulation drive mechanism is provided between the vertical storage mechanism and the internal circulation mechanism.

[0007] A dispersing mechanism for breaking up and dispersing materials is installed between the vertical storage mechanism and the circulating drive mechanism.

[0008] The bottom end of the vertical storage mechanism is fixedly connected to a feeding mechanism.

[0009] Furthermore, the automatic feeding mechanism includes a feeding frame fixed on a second support frame. A drive roller and a driven roller are rotatably connected to the top of the bottom of the center of the feeding frame. A motor bracket is fixedly connected to the bottom of one side of the outer wall of the feeding frame. A first servo motor is installed on the outside of the motor bracket. A transmission belt is sleeved between the drive roller and the driven roller. Multiple evenly distributed feeding hoppers are provided on the outside of the transmission belt. A feeding port is opened at the bottom of the rear end of the feeding frame. A feeding hopper is fixedly connected to the rear end of the feeding frame. A discharging port is opened at the top of the front end of the feeding frame. A guide pipe is fixedly connected to the position of the discharging port.

[0010] Through the above technical solution, during production and processing, various materials to be processed in a pre-configured ratio can be poured into the feeding hopper. At this time, the first servo motor is started, which drives the drive roller to rotate synchronously, thereby driving the transmission belt and multiple evenly distributed conveyor hoppers on its outer side to rotate synchronously. The mixed materials poured into the feeding hopper will slowly enter the loading rack through the feeding port. The multiple conveyor hoppers in operation will automatically hold the materials and be moved by the transmission belt to the discharge port position at the top of the mechanism. At this time, under the action of gravity, the mixed materials will enter the guide pipe through the discharge port and then be sent into the vertical storage mechanism through the guide pipe, thereby completing the automatic feeding operation.

[0011] Furthermore, the output end of the first servo motor is fixedly connected to one end of the drive roller via a coupling.

[0012] With the above technical solution, when the first servo motor is working, the output shaft of the first servo motor can drive the drive roller to rotate synchronously through the coupling, thereby driving the entire mechanism to operate.

[0013] Furthermore, the vertical storage mechanism includes a storage pipe fixedly connected to the first support frame, a guide hopper fixedly connected to the top of the storage pipe, a discharge pipe fixedly connected to the bottom of the storage pipe, a support plate fixedly connected to the top center of the guide hopper, and a notch opened at the top center of the rear end of the guide hopper.

[0014] Through the above technical solution, the storage pipe is used to store the mixed materials. During the production and processing, the mixed materials are fed into the guide hopper by the automatic feeding mechanism. Under the action of gravity, the fed mixed materials will fall naturally and be stored and accumulated in the storage pipe. After the mixing and processing is completed, the mixed materials can be discharged through the discharge pipe at the bottom, thereby realizing the discharge.

[0015] Furthermore, the storage pipe, guide hopper, discharge pipe, and support plate are an integral structure, and the front end of the guide pipe is inserted into the notch and extends into the guide hopper.

[0016] Furthermore, the internal circulation mechanism includes an internal circulation cylinder disposed inside the storage pipe, and multiple connecting rods are fixedly connected to both sides of the outer wall of the internal circulation cylinder, with the other end of each of the multiple connecting rods fixedly connected to the inner wall of the storage pipe.

[0017] Through the above technical solution, the internal circulation mechanism is mainly used to cooperate with the circulation drive mechanism to realize the circulation movement of the mixed materials from bottom to top, so that the mixed materials stored and accumulated in the storage pipe can achieve circulation mixing and stirring, thereby achieving a better mixing and stirring effect.

[0018] Furthermore, the cyclic drive mechanism includes a second servo motor fixedly installed at the top center of the support plate, a first transmission rod fixedly connected to the bottom end of the output shaft of the second servo motor, a first auger fixedly connected to the middle of the outer wall of the first transmission rod, and a second auger fixedly connected to the bottom of the outer wall of the first transmission rod.

[0019] Through the above technical solution, during the operation of the second servo motor, the output shaft of the second servo motor can drive the first transmission rod to rotate synchronously. When the first transmission rod rotates, it can drive the first and second spiral augers to rotate synchronously. During the rotation of the first and second spiral augers, the mixed material accumulated at the bottom of the storage pipe can be conveyed upward along the inner circulation cylinder. The conveyed material is finally scattered to the surroundings through the top opening of the inner circulation cylinder, thereby realizing three-dimensional circulation mixing. Due to the adoption of the bottom-up circulation mixing structure, it can be ensured that the mixed material accumulated in the storage pipe can be circulated back and forth between the inner circulation cylinder and the storage pipe. Furthermore, since there are no dead corners, the various materials can be fully mixed, greatly improving the mixing efficiency and mixing quality.

[0020] Furthermore, the dispersing mechanism includes a fixed bracket fixed to the top of the inner wall of the storage pipe, a support bearing installed at the center of the fixed bracket, a rotating frame fixedly installed on the inner ring of the support bearing, a plurality of evenly distributed metal rods fixedly connected to the bottom of the outer wall of the rotating frame, a support column fixedly connected to the fixed bracket, a protective cover fixedly connected to the top of the support column, a first pulley fixedly installed on the top of the outer wall of the rotating frame, a third servo motor fixedly installed on the top of the support plate, a second transmission rod fixedly connected to the bottom of the output shaft of the third servo motor, a second pulley fixedly installed at the bottom of the second transmission rod, and a transmission belt installed between the first pulley and the second pulley.

[0021] Through the above technical solution, when the mixed material enters the guide hopper, the third servo motor can be started, which drives the second transmission rod and the second pulley to rotate synchronously. In turn, the transmission belt drives the first pulley, the rotating frame, and multiple metal rods to rotate synchronously at high speed. When the mixed material slides naturally down the inner wall of the guide hopper, the multiple high-speed rotating metal rods will quickly disperse the mixed material and make it evenly dispersed. Then, it will naturally flow down the inner wall of the storage pipe and finally accumulate layer by layer at the bottom of the storage pipe. By setting a dispersing mechanism at the top of the storage pipe, the solidified material can be fully crushed and dispersed during the feeding stage, and the mixing effect can also be achieved. Since the rotation speed of the multiple metal rods is relatively fast and the feeding speed is uniform, the various materials can be fully crushed, dispersed, and mixed before the internal circulation mixing, thereby greatly improving the mixing efficiency and the quality of material mixing.

[0022] Furthermore, the rotating frame is sleeved on the outer wall of the first transmission rod, and the distance between the multiple metal rods and the top of the inner circulation cylinder is 1-3cm.

[0023] Through the above technical solution, the rotating frame is sleeved on the outer wall of the first transmission rod, so that the rotating frame and the first transmission rod can rotate independently without affecting each other. In addition, when the feeding work is completed and internal circulation stirring is required in the storage pipe, when the conveyed material overflows through the top opening of the inner circulation cylinder and scatters to the surroundings, due to the small distance between the multiple metal rods and the top of the inner circulation cylinder, the multiple high-speed rotating metal rods can quickly disperse the overflowing mixture again, thereby achieving continuous circulation stirring, dispersion and mixing, which can greatly improve the overall mixing efficiency and mixing quality.

[0024] Furthermore, the feeding mechanism includes a mounting base fixedly installed at the bottom of the discharge pipe, the bottom of the mounting base is fixedly connected to the feeding pipe, a limiting groove is opened at the center of the front end of the mounting base, a limiting baffle is slidably connected in the limiting groove, and an integrated handle is provided at the front end of the limiting baffle.

[0025] With the above technical solution, after the internal circulation mixing process is completed, the mounting base can be pulled out by the handle at the front end of the manual limit baffle. At this time, the feeding pipe and the discharge pipe are connected, and the material accumulated at the bottom of the storage pipe will enter the feeding pipe through the discharge pipe and then accumulate below the feeding pipe. Alternatively, a conveyor belt can be set below the feeding pipe to transport the processed material to the designated location for accumulation. Furthermore, during the feeding process, the output shaft of the second servo motor will rotate in the opposite direction, thereby using the second spiral auger to discharge the mixed material accumulated at the bottom of the storage pipe into the discharge pipe, thus avoiding the situation where the mixed material blocks the discharge pipe.

[0026] The beneficial effects of the present invention are as follows: (1) By setting a dispersing mechanism at the top of the storage pipe, the present invention can fully break and disperse the solidified material during the feeding stage, and at the same time achieve the mixing effect. Since the rotation speed of multiple metal rods is relatively fast and the feeding is carried out at a uniform speed, the various materials can be fully broken, dispersed and mixed before the internal circulation mixing, thereby greatly improving the mixing efficiency and the mixing quality of the materials; (2) By designing an internal circulation mechanism, a circulation drive mechanism and a dispersing mechanism, the present invention can cooperate with the circulation drive mechanism to realize the circulation movement of the mixed materials from bottom to top, thereby making the storage pile in the storage pipe more efficient. The accumulated mixture can achieve a bottom-up circulating motion, and when the conveyed material overflows through the top opening of the inner circulation cylinder and scatters to the surroundings, multiple high-speed rotating metal rods can quickly disperse the overflowing mixture again, thereby achieving continuous circulating stirring, dispersion and mixing, which can greatly improve the overall mixing efficiency and mixing quality; (3) By adopting a bottom-up circulating stirring structure, this invention can ensure that the mixture accumulated in the storage pipe can be circulated back and forth between the inner circulation cylinder and the storage pipe, and since there are no dead corners, it can achieve full mixing of various materials, making the nutritional components of the processed planting medium more balanced. Attached Figure Description

[0027] Figure 1 This is a first-view structural diagram of the present invention;

[0028] Figure 2 This is a second-view structural diagram of the present invention;

[0029] Figure 3 This is the front view of the present invention;

[0030] Figure 4 yes Figure 3 Sectional view along line AA;

[0031] Figure 5 This is the right view of the present invention;

[0032] Figure 6 yes Figure 5Sectional view along the BB direction;

[0033] Figure 7 yes Figure 6 A magnified view of a section at point A in the middle;

[0034] Figure 8 yes Figure 6 A magnified view of a section at point B in the middle;

[0035] Figure 9 This is a right view of the automatic feeding mechanism of the present invention;

[0036] Figure 10 yes Figure 9 C-axis sectional view;

[0037] Figure 11 This is a schematic diagram of the vertical storage mechanism of the present invention;

[0038] Figure 12 This is a schematic diagram of the internal structure of the vertical storage mechanism of the present invention;

[0039] Figure 13 Figure 12 A magnified view of a section at point C.

[0040] Reference numerals: 1. First support frame; 2. Second support frame; 3. Automatic feeding mechanism; 301. Feeding frame; 302. Drive roller; 303. Driven roller; 304. Motor bracket; 305. First servo motor; 306. Transmission belt; 307. Feed hopper; 308. Feed inlet; 309. Feed hopper; 310. Discharge outlet; 311. Guide pipe; 4. Vertical storage mechanism; 401. Storage pipe; 402. Guide hopper; 403. Discharge pipe; 404. Support plate; 405. Notch; 5. Connecting assembly; 6. Internal circulation mechanism; 601. Internal circulation cylinder; 602. Connecting rod 7. Cyclic drive mechanism; 701. Second servo motor; 702. First transmission rod; 703. First spiral auger; 704. Second spiral auger; 8. Dispersing mechanism; 801. Fixed bracket; 802. Support bearing; 803. Rotating frame; 804. Metal rod; 805. Support column; 806. Protective cover; 807. First pulley; 808. Third servo motor; 809. Second transmission rod; 810. Second pulley; 811. Transmission belt; 9. Feeding mechanism; 901. Mounting base; 902. Feeding pipe; 903. Limiting groove; 904. Limiting baffle. Detailed Implementation

[0041] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.

[0042] like Figures 1-13 As shown, an automated flower planting medium processing device of this embodiment includes a first support frame 1 and a second support frame 2. An automatic feeding mechanism 3 is fixedly installed on the second support frame 2. The automatic feeding mechanism 3 includes a feeding frame 301 fixed on the second support frame 2. A drive roller 302 and a driven roller 303 are rotatably connected to the top of the bottom of the center of the feeding frame 301. A motor bracket 304 is fixedly connected to the bottom of one side of the outer wall of the feeding frame 301. A first servo motor 305 is installed on the outside of the motor bracket 304. A transmission belt 306 is sleeved between the drive roller 302 and the driven roller 303. A plurality of evenly distributed feeding hoppers 307 are provided on the outside of the transmission belt 306. A feeding port 308 is opened at the bottom of the rear end of the feeding frame 301. A feeding hopper 309 is fixedly connected to the rear end of the feeding frame 301. A feeding port 308 is opened at the top of the front end of the feeding frame 301. The discharge port 310 is fixedly connected to the guide pipe 311. During production and processing, various materials to be processed in a pre-mixed ratio can be poured into the feed hopper 309. At this time, the first servo motor 305 is started, which drives the drive roller 302 to rotate synchronously, thereby driving the transmission belt 306 and multiple evenly distributed feed hoppers 307 on its outer side to rotate synchronously. The mixed materials poured into the feed hopper 309 will slowly enter the loading rack 301 through the feed port 308. The multiple feed hoppers 307 in operation will automatically hold the materials and be moved by the transmission belt 306 to the discharge port 310 at the top of the mechanism. At this time, under the action of gravity, the mixed materials will enter the guide pipe 311 through the discharge port 310, and then be sent into the vertical storage mechanism 4 through the guide pipe 311, thereby completing the automatic feeding operation.

[0043] Further in this embodiment, such as Figure 10 As shown, the output end of the first servo motor 305 is fixedly connected to one end of the drive roller 302 through a coupling. When the first servo motor 305 is working, the output shaft of the first servo motor 305 can drive the drive roller 302 to rotate synchronously through the coupling, thereby driving the entire mechanism to operate.

[0044] like Figures 3-12As shown, a vertical storage mechanism 4 is fixedly installed on the first support frame 1. The vertical storage mechanism 4 includes a storage pipe 401 fixedly connected to the first support frame 1. A guide hopper 402 is fixedly connected to the top of the storage pipe 401, and a discharge pipe 403 is fixedly connected to the bottom of the storage pipe 401. A support plate 404 is fixedly connected to the top center of the guide hopper 402. A notch 405 is opened at the top center of the rear end of the guide hopper 402. The storage pipe 401 is used for storing the mixed materials. During the production and processing, the mixed materials are fed into the guide hopper 402 by the automatic feeding mechanism 3. Under the action of gravity, the fed mixed materials will fall naturally and accumulate in the storage pipe 401. After the mixing and processing is completed, the mixed materials can be discharged through the discharge pipe 403 at the bottom, thereby realizing the discharge.

[0045] In this embodiment, the storage pipe 401, the guide hopper 402, the discharge pipe 403 and the support plate 404 are an integral structure, and the front end of the guide pipe 311 is inserted into the notch 405 and extends into the guide hopper 402.

[0046] like Figure 1 As shown, there are two connecting components 5 that are fixedly connected between the automatic feeding mechanism 3 and the vertical storage mechanism 4. The two connecting components 5 are mainly used for connecting and fixing the automatic feeding mechanism 3 and the vertical storage mechanism 4, and bolts can be used for fixing during assembly.

[0047] like Figures 3-13 As shown, an internal circulation mechanism 6 is fixedly connected inside the vertical storage mechanism 4. The internal circulation mechanism 6 includes an internal circulation cylinder 601 disposed inside the storage pipe 401. Multiple connecting rods 602 are fixedly connected to both sides of the outer wall of the internal circulation cylinder 601. The other end of each connecting rod 602 is fixedly connected to the inner wall of the storage pipe 401. The internal circulation mechanism 6 is mainly used to cooperate with the circulation drive mechanism 7 to realize the circulation movement of the mixed material from bottom to top, so that the mixed material stored and accumulated in the storage pipe 401 can achieve circulation mixing and stirring, thereby achieving a better mixing and stirring effect.

[0048] like Figures 6-13As shown, a circulation drive mechanism 7 is provided between the vertical storage mechanism 4 and the inner circulation mechanism 6. The circulation drive mechanism 7 includes a second servo motor 701 fixedly installed at the top center of the support plate 404. A first transmission rod 702 is fixedly connected to the bottom end of the output shaft of the second servo motor 701. A first spiral auger 703 is fixedly connected to the middle of the outer wall of the first transmission rod 702. A second spiral auger 704 is fixedly connected to the bottom of the outer wall of the first transmission rod 702. During the operation of the second servo motor 701, the output shaft of the second servo motor 701 can drive the first transmission rod 702 to rotate synchronously. When the first transmission rod 702 rotates, it can drive the first spiral auger 704 to rotate synchronously. The first spiral auger 703 and the second spiral auger 704 rotate synchronously. During the rotation, the first spiral auger 703 and the second spiral auger 704 can convey the mixture accumulated at the bottom of the storage pipe 401 upward along the inner circulation cylinder 601. The conveyed material is finally scattered to the surroundings through the top opening of the inner circulation cylinder 601, thereby realizing three-dimensional circulation mixing. Due to the adoption of the bottom-up circulation mixing structure, it can be ensured that the mixture accumulated in the storage pipe 401 can be circulated back and forth between the inner circulation cylinder 601 and the storage pipe 401. Moreover, since there are no dead corners, the various materials can be fully mixed, which greatly improves the mixing efficiency and mixing quality.

[0049] like Figures 4-13As shown, a dispersing mechanism 8 for breaking up and dispersing materials is installed between the vertical storage mechanism 4 and the circulating drive mechanism 7. The dispersing mechanism 8 includes a fixed bracket 801 fixed to the top of the inner wall of the storage pipe 401, a support bearing 802 installed at the center of the fixed bracket 801, a rotating frame 803 fixedly installed on the inner ring of the support bearing 802, a plurality of evenly distributed metal rods 804 fixedly connected to the bottom of the outer wall of the rotating frame 803, a support column 805 fixedly connected to the fixed bracket 801, a protective cover 806 fixedly connected to the top of the support column 805, a first pulley 807 fixedly installed on the top of the outer wall of the rotating frame 803, a third servo motor 808 fixedly installed on the top of the support plate 404, a second transmission rod 809 fixedly connected to the bottom of the output shaft of the third servo motor 808, a second pulley 810 fixedly installed at the bottom of the second transmission rod 809, and a transmission belt 811 installed between the first pulley 807 and the second pulley 810. When the mixed material enters... When the material is in the feed hopper 402, the third servo motor 808 can be started. The third servo motor 808 drives the second transmission rod 809 and the second pulley 810 to rotate synchronously. In turn, the transmission belt 811 drives the first pulley 807, the rotating frame 803 and multiple metal rods 804 to rotate synchronously at high speed. When the mixed material slides naturally down the inner wall of the feed hopper 402, the multiple high-speed rotating metal rods 804 will quickly disperse the mixed material and make it evenly dispersed. Then, it will naturally flow down the inner wall of the storage pipe 401 and finally accumulate layer by layer at the bottom of the storage pipe 401. By setting the dispersion mechanism 8 at the top position inside the storage pipe 401, the solidified material can be fully crushed and dispersed during the feeding stage, and the mixing effect can also be achieved. Since the rotation speed of the multiple metal rods 804 is relatively fast and the feeding speed is uniform, the various materials can be fully crushed, dispersed and mixed before the internal circulation mixing, thereby greatly improving the mixing efficiency and the quality of material mixing.

[0050] In this embodiment, the rotating frame 803 is sleeved on the outer wall of the first transmission rod 702, and the distance between the multiple metal rods 804 and the top of the inner circulation cylinder 601 is 1-3 cm. The rotating frame 803 is sleeved on the outer wall of the first transmission rod 702, so that the rotating frame 803 and the first transmission rod 702 can rotate independently without affecting each other. In addition, when the feeding work is completed and internal circulation stirring is required in the storage pipe 401, when the conveyed material overflows through the top opening of the inner circulation cylinder 601 and scatters to the surroundings, the small distance between the multiple metal rods 804 and the top of the inner circulation cylinder 601 allows the multiple high-speed rotating metal rods 804 to quickly disperse the overflowing mixture again, thereby achieving continuous circulation stirring, dispersion and mixing, which can greatly improve the overall mixing efficiency and mixing quality.

[0051] like Figures 1-8As shown, a feeding mechanism 9 is fixedly connected to the bottom of the vertical storage mechanism 4. The feeding mechanism 9 includes a mounting base 901 fixedly installed at the bottom of the discharge pipe 403. A feeding pipe 902 is fixedly connected to the bottom of the mounting base 901. A limiting groove 903 is opened at the center of the front end of the mounting base 901. A limiting baffle 904 is slidably connected in the limiting groove 903. An integrated handle is provided at the front end of the limiting baffle 904. After the internal circulation mixing process is completed, the mounting base 901 can be pulled out by manually pulling out the handle at the front end of the limiting baffle 904. At this time, the feeding pipe 902 and the discharge pipe 403 are connected. With pipe 403 through, the material accumulated at the bottom of storage pipe 401 will enter the discharge pipe 902 through discharge pipe 403, and then accumulate below discharge pipe 902. Alternatively, a conveyor belt can be set below discharge pipe 902 to transport the processed material to a designated location for accumulation. Furthermore, during the feeding process, the output shaft of the second servo motor 701 will rotate in the opposite direction, thereby using the second auger 704 to discharge the mixed material accumulated at the bottom of storage pipe 401 into discharge pipe 403, thus preventing the mixed material from clogging discharge pipe 403.

[0052] The working principle of this embodiment is as follows: During production and processing, various materials to be processed in a pre-configured ratio can be poured into the feeding hopper 309. The first servo motor 305 is started, and the first servo motor 305 drives the drive roller 302 to rotate synchronously, thereby driving the transmission belt 306 and multiple evenly distributed conveyor hoppers 307 on its outer side to rotate synchronously. The mixed materials poured into the feeding hopper 309 will slowly enter the loading rack 301 through the feeding port 308. The multiple conveyor hoppers 307 in operation will automatically hold the materials, and the transmission belt 306 will move them to the discharge port 310 position at the top of the mechanism. At this time, under the action of gravity, the mixed materials will enter the guide pipe 311 through the discharge port 310, and then be sent into the vertical storage mechanism 4 through the guide pipe 311.

[0053] When the mixture slides naturally down the inner wall of the feed hopper 402, multiple high-speed rotating metal rods 804 will quickly break up the mixture and disperse it evenly. Then, it will naturally flow down the inner wall of the storage pipe 401 and eventually accumulate layer by layer at the bottom of the storage pipe 401.

[0054] Once the material is fed, the second servo motor 701 starts working. The output shaft of the second servo motor 701 can drive the first transmission rod 702 to rotate synchronously. When the first transmission rod 702 rotates, it can drive the first spiral auger 703 and the second spiral auger 704 to rotate synchronously. During the rotation of the first spiral auger 703 and the second spiral auger 704, the mixed material accumulated at the bottom of the storage pipe 401 can be conveyed upward along the inner circulation cylinder 601. The conveyed material is finally scattered to the surroundings through the top opening of the inner circulation cylinder 601.

[0055] When the conveyed material overflows through the top opening of the inner circulation cylinder 601 and scatters to the surroundings, the small gap between the multiple metal rods 804 and the top of the inner circulation cylinder 601 allows the multiple high-speed rotating metal rods 804 to quickly disperse the overflowing mixture again, thereby achieving continuous circulation stirring, dispersion and mixing.

[0056] After the internal circulation mixing process is completed, the mounting base 901 can be pulled out by the handle at the front end of the manual limit baffle 904. At this time, the feeding pipe 902 and the discharge pipe 403 are connected. The material accumulated at the bottom of the storage pipe 401 will enter the feeding pipe 902 through the discharge pipe 403 and then accumulate below the feeding pipe 902, thus completing the entire automated processing process.

[0057] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention.

Claims

1. An automated processing device for flower planting media, comprising a first support frame (1) and a second support frame (2), characterized in that: An automatic feeding mechanism (3) is fixedly installed on the second support frame (2), and a vertical storage mechanism (4) is fixedly installed on the first support frame (1). Two connecting components (5) are fixedly connected between the automatic feeding mechanism (3) and the vertical storage mechanism (4). An internal circulation mechanism (6) is fixedly connected inside the vertical storage mechanism (4), and a circulation drive mechanism (7) is provided between the vertical storage mechanism (4) and the internal circulation mechanism (6); A dispersing mechanism (8) for dispersing and breaking down materials is installed between the vertical storage mechanism (4) and the circulating drive mechanism (7); The bottom end of the vertical storage mechanism (4) is fixedly connected to the unloading mechanism (9).

2. The automated flower planting medium processing device according to claim 1, characterized in that, The automatic feeding mechanism (3) includes a feeding frame (301) fixed on the second support frame (2). A drive roller (302) and a driven roller (303) are rotatably connected to the top of the bottom of the center of the feeding frame (301). A motor bracket (304) is fixedly connected to the bottom of one side of the outer wall of the feeding frame (301). A first servo motor (305) is installed on the outside of the motor bracket (304). The drive roller (302) and the driven roller... A transmission belt (306) is sleeved between the wheels (303). Multiple evenly distributed material hoppers (307) are provided on the outer side of the transmission belt (306). A feed inlet (308) is opened at the bottom of the rear end of the feeding frame (301). A feed hopper (309) is fixedly connected to the rear end of the feeding frame (301). A discharge port (310) is opened at the top of the front end of the feeding frame (301). A guide pipe (311) is fixedly connected to the position of the discharge port (310).

3. The automated flower planting medium processing device according to claim 2, characterized in that, The output end of the first servo motor (305) is fixedly connected to one end of the drive roller (302) via a coupling.

4. The automated flower planting medium processing device according to claim 2, characterized in that, The vertical storage mechanism (4) includes a storage pipe (401) fixedly connected to the first support frame (1), a guide hopper (402) fixedly connected to the top of the storage pipe (401), a discharge pipe (403) fixedly connected to the bottom of the storage pipe (401), a support plate (404) fixedly connected to the top center of the guide hopper (402), and a notch (405) opened at the top center of the rear end of the guide hopper (402).

5. The automated flower planting medium processing device according to claim 4, characterized in that, The storage pipe (401), the guide hopper (402), the discharge pipe (403) and the support plate (404) are an integral structure, and the front end of the guide pipe (311) is inserted into the notch (405) and extends into the guide hopper (402).

6. The automated flower planting medium processing device according to claim 4, characterized in that, The internal circulation mechanism (6) includes an internal circulation cylinder (601) disposed in the storage pipe (401). Multiple connecting rods (602) are fixedly connected to both sides of the outer wall of the internal circulation cylinder (601), and the other end of the multiple connecting rods (602) is fixedly connected to the inner wall of the storage pipe (401).

7. The automated flower planting medium processing device according to claim 6, characterized in that, The cycle drive mechanism (7) includes a second servo motor (701) fixedly installed at the top center of the support plate (404). The bottom end of the output shaft of the second servo motor (701) is fixedly connected to a first transmission rod (702). The middle part of the outer wall of the first transmission rod (702) is fixedly connected to a first spiral auger (703). The bottom of the outer wall of the first transmission rod (702) is fixedly connected to a second spiral auger (704).

8. The automated flower planting medium processing device according to claim 7, characterized in that, The dispersing mechanism (8) includes a fixed bracket (801) fixed to the top of the inner wall of the storage pipe (401). A support bearing (802) is installed at the center of the fixed bracket (801). A rotating frame (803) is fixedly installed on the inner ring of the support bearing (802). A plurality of evenly distributed metal rods (804) are fixedly connected to the bottom of the outer wall of the rotating frame (803). A support column (805) is also fixedly connected to the fixed bracket (801). The top of the support column (805) is fixedly connected to... The rotating frame (803) has a protective cover (806). A first pulley (807) is fixedly installed on the top of the outer wall of the rotating frame (803). A third servo motor (808) is fixedly installed on the top of the support plate (404). A second transmission rod (809) is fixedly connected to the bottom of the output shaft of the third servo motor (808). A second pulley (810) is fixedly installed at the bottom of the second transmission rod (809). A transmission belt (811) is installed between the first pulley (807) and the second pulley (810).

9. The automated flower planting medium processing device according to claim 8, characterized in that, The rotating frame (803) is sleeved on the outer wall of the first transmission rod (702), and the distance between the multiple metal rods (804) and the top of the inner circulation cylinder (601) is 1-3cm.

10. The automated flower planting medium processing device according to claim 4, characterized in that, The feeding mechanism (9) includes a mounting base (901) fixedly installed at the bottom of the discharge pipe (403). The bottom of the mounting base (901) is fixedly connected to the feeding pipe (902). A limiting groove (903) is opened at the center of the front end of the mounting base (901). A limiting baffle (904) is slidably connected in the limiting groove (903). An integrated handle is provided at the front end of the limiting baffle (904).