Food making method for breeding periplaneta americana by using organic wastes and automatic feeding system

Through the design of multi-layer feeding layers and interlaced surfaces, combined with feeding components and slide rail systems, the problem of accumulation during feeding of American cockroaches is solved, and the uniform laying of organic waste and the improvement of cockroaches' feeding efficiency is achieved.

CN120436103AActive Publication Date: 2025-08-08ZHEJIANG HANGRUI ECOLOGICAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510956133.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-11
Publication Date
2025-08-08
Estimated Expiration
2045-07-11

AI Technical Summary

Technical Problem

The feed cannot be completely dispersed during feeding of the Central American cockroach, resulting in large accumulation of cockroaches during feeding, which can easily cause death.

Method used

Design a multi-layer feeding layer and an interlaced joint surface, combining the feeding assembly and the slide rail system to realize layer-by-layer laying and dispersed feeding of organic waste, and slide the organic waste layer-by-layer slide to the next layer of bearing surface through the feeding assembly to avoid accumulation.

Benefits of technology

The uniform laying of organic waste is achieved, reducing the accumulation and squeezing of cockroaches during feeding, improving the feeding efficiency, reducing the risk of death, and improving the waste utilization efficiency through automated treatment.

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Abstract

The invention discloses a food making method for breeding periplaneta americana through organic waste and an automatic feeding system, and belongs to the technical field of insect breeding. The food making method comprises a plurality of steps for treating organic waste materials; the automatic feeding system comprises a plurality of supports, and a plurality of feeding layers are arranged on the supports in the vertical direction from bottom to top; the bearing surfaces are arranged on the feeding layers at equal intervals, and the bearing surfaces on the adjacent feeding layers are arranged in a staggered mode; the feeding assembly is arranged at the top of the support and used for feeding organic waste to the feeding layer; and the organic waste treatment assembly is used for collecting and treating organic waste. The feeding assembly comprises a discharging bin, and the discharging bin throws organic waste to the bearing face on the lower feeding layer. By means of the feeding device, the thrown organic waste materials can be laid on the bearing faces of all the feeding layers layer by layer, so that the organic waste materials can be dispersed, and the possibility of the accumulation phenomenon in the feeding process of periplaneta is reduced.
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Description

Technical Field

[0001] The invention relates to a food preparation method and an automatic feeding system for breeding American cockroaches by utilizing organic waste, and belongs to the technical field of insect breeding. Background Art

[0002] The American cockroach belongs to the genus Periplaneta in the family Blattaria of the order Blattaria. The most common large cockroach we see is the American cockroach. It can play a certain role in treating blood stasis, stomach pain and bleeding, duodenal ulcers, and yin deficiency-induced pulmonary tuberculosis.

[0003] During the breeding process of American cockroaches, feed needs to be fed regularly. During the feeding process, the feed is usually not completely spread out, resulting in a large amount of feed being piled up together, which causes a large amount of feed to pile up together during the cockroaches' feeding process, easily causing the cockroaches to die. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to provide a food preparation method and an automatic feeding system for breeding American cockroaches using organic waste, which solves the problem in the prior art that the feed cannot be completely dispersed when feeding the cockroaches.

[0005] The technical problem to be solved by the present invention is achieved by the following technical solution: a plurality of brackets, each bracket vertically arranged with multiple feeding layers from bottom to top; receiving surfaces, equidistantly arranged on the feeding layers, with the receiving surfaces on adjacent feeding layers staggered; a feeding assembly, disposed on the top of the brackets, for feeding organic waste into the feeding layers; and an organic waste processing assembly, for collecting and processing the organic waste. The feeding assembly includes a lower hopper, which feeds organic waste onto the receiving surface on the lower feeding layer. After the organic waste accumulates to a certain level, it slides to the sides and onto the receiving surface of the next feeding layer.

[0006] By adopting the above technical solution, the organic waste to be put in can be laid layer by layer on the receiving surface of each feeding layer, so that the organic waste can be dispersed and the phenomenon of accumulation will not occur during the feeding process of the cockroaches. The organic waste is first transferred to the receiving surface on the top feeding layer through the lower feeding hopper, and continuously accumulated on the receiving surface. After accumulation to a certain height, the organic waste that continues to be put in from the lower feeding hopper will slide downward from both sides of the receiving surface, pass through the gap between the receiving surfaces, and fall on the receiving surface of the next feeding layer, thereby accumulating on the receiving surface of the next feeding layer. After accumulation to a certain height, it slides again to the next feeding layer, and by continuously accumulating downward, the organic waste is dispersed and laid, so that the organic waste can be evenly laid on each feeding layer, thereby dispersing the space for the cockroaches to feed, making the cockroaches' feeding area larger, and reducing the probability of accumulation and squeezing between cockroaches during the feeding process.

[0007] The present invention is further configured such that the spacing between adjacent receiving surfaces on the same feeding layer is smaller than the width of the receiving surfaces.

[0008] By adopting the above technical solution, the organic waste on the receiving surface can accurately fall onto the lower receiving surface when it slides downward. Since the spacing between the receiving surfaces on the same feeding layer is smaller than the width of the receiving surface, when the organic waste in the receiving surface on the upper feeding layer slides to both sides, it can be accurately caught by the lower receiving surface whose width is wider than the spacing, and the organic waste will not fall directly to the bottom layer, thereby preventing the waste of organic waste.

[0009] The present invention is further configured as follows: the feeding assembly also includes a transverse slide rail and a longitudinal slide rail, the transverse slide rail is slidably set on the longitudinal slide rail, the lower material bin is slidably set on the transverse slide rail, and the lower material bin is used to put organic waste onto the receiving surface.

[0010] By adopting the above technical solution, the combined movement of the transverse and longitudinal slides allows the unloading bin to move freely in two dimensions within the horizontal plane, accurately covering any position of the receiving surface and avoiding the uneven accumulation problem caused by traditional fixed unloading. The longitudinal slide serves as the base track to carry the overall movement of the transverse slide, while the transverse slide independently adjusts the position of the unloading bin. The dual-track collaboration can quickly respond to the feeding requirements of different process areas. The modular design of the slides can reduce the equipment's footprint. The longitudinal slide can extend longitudinally along the production line, while the transverse slide expands the lateral working range.

[0011] The present invention is further configured as follows: the top of the lower hopper is open, a discharge port is provided at the bottom, and an opening and closing plate is provided below the discharge port for controlling the opening and closing of the discharge port.

[0012] By adopting the above technical solution, automatic unloading is achieved by controlling the opening and closing of the discharge port. At the same time, the open top opening design is compatible with a variety of loading methods and has higher adaptability.

[0013] The present invention is further configured as follows: connecting belts are provided on the bottom surfaces on both sides of the receiving surface, and the receiving surfaces on the single-layer feeding layer are connected by the connecting belts.

[0014] By adopting the above technical solution, the position of the receiving surface can be adjusted. By pulling the connecting belt, all the receiving surfaces on the entire feeding layer can be moved, so that the receiving surfaces and the discharge opening at the lower end of the transmission tube are aligned with each other. At the same time, the receiving surface can be clamped to the feeding layer by the connecting belt. The connecting belts arranged on both sides of the receiving surface and the receiving surface form a clamping groove. The clamping groove can stably clamp the receiving surface to the feeding layer. When the position of the receiving surface needs to be adjusted, the clamping groove formed by pulling the connecting belt can also play a certain guiding role.

[0015] The present invention is further configured as follows: both ends of the opening and closing plate are respectively connected to a rotating plate, the other end of the rotating plate is rotatably connected to the lower material bin, and the rotating connection point of the rotating plate is provided with a driver 1 for driving the rotating plate to rotate.

[0016] By adopting the above technical solution, using driver 1 and a rotating plate to control the opening and closing of the opening and closing plate, and setting the opening time of the discharge port, the unloading time of the unloading bin can be controlled in real time, thereby reasonably allocating the discharge amount of organic waste at each point and achieving fixed-point and fixed-quantity unloading.

[0017] The present invention is further configured as follows: the discharge port is provided with a stirring blade, the stirring blade is connected by a rotating shaft, both ends of the rotating shaft are rotatably arranged on the two side walls of the lower hopper, one end of the rotating shaft extends outward and is connected to driver 2, and driver 2 is fixed on the outer wall of the lower hopper.

[0018] By adopting the above technical solution, the organic waste in the feeding bin can be stirred, preventing the organic waste from blocking the outlet of the feeding bin, and improving the transmission efficiency of the organic waste.

[0019] The present invention is further configured as follows: the organic waste processing component includes a transmission pipe, a draining tank connected in sequence by the transmission pipe, an automatic sorting platform and a grinder, a mixing chamber, and a glue machine; a water collecting tank is provided at the bottom of the draining tank, and a transmission water pipe is connected between the water collecting tank and the mixing chamber.

[0020] By adopting the above technical solution, the collected organic waste can be processed quickly and automatically, sorted, and harmful substances can be removed, thus realizing automated and intelligent waste treatment.

[0021] The present invention is further configured as follows: a discharge port of the automatic sorting platform is provided with a magnetic adsorption plate.

[0022] By adopting the above technical solution, the metallic magnetic substances in the organic waste can be further removed, which facilitates the subsequent grinding and crushing treatment of the organic waste and improves the treatment efficiency of the organic waste.

[0023] The present application also relates to a method for preparing food for breeding American cockroaches using organic waste, comprising the following steps: Step 1: Collect kitchen waste and various organic wastes in daily life; Step 2: Put the organic waste into the draining tank to drain out a certain amount of water; Step 3: The organic waste in the drain tank is transferred to the automatic sorting platform through the transmission pipe. The harmful substances such as plastics in the organic waste are identified and separated. The metal debris is intercepted by the magnetic adsorption plate and discharged into the grinder for grinding. Step 4: The organic waste obtained in step 3 is transferred to a mixing chamber through a transfer pipe for stirring, and the water drained in step 2 is simultaneously transferred back into the mixing chamber through a transfer pipe to be mixed with the organic waste, and a certain blending admixture is added to mix the organic waste uniformly; Step 5: The organic waste obtained in step 4 is transported to a glue machine through a transmission pipe for fine grinding to form a gelatinous fluid; Step 6: The colloidal fluid formed in step 5 is transferred to the lower hopper through the transfer pipe.

[0024] By adopting the above technical solution, organic waste can be effectively utilized, direct discharge of organic waste is reduced, and environmental pollution is reduced. At the same time, through the biological transformation of cockroaches, the volume and harmfulness of organic waste are further reduced.

[0025] The beneficial effects of the present invention are: The receiving surfaces arranged at intervals are staggered to collect organic waste, and the processed organic waste can be effectively dispersed and placed on the receiving surfaces, thereby greatly increasing the space for cockroaches to eat, effectively reducing the accumulation and squeezing during the feeding process of cockroaches, which is beneficial to improving the overall feeding efficiency of cockroaches and preventing the fermentation and breeding of bacteria caused by the organic waste not being cleaned for a long time after being placed.

[0026] The feed assembly allows organic waste to be quickly discharged onto the receiving surface. The longitudinal rail is fixed to the equipment frame or the ground, while the transverse rail serves as a movable auxiliary rail. A single axis of extension is required to cover a wide working area, reducing the floor space required by traditional multi-arm solutions. By extending the longitudinal rail or connecting multiple transverse rails in parallel, the system can accommodate cultivation areas of varying sizes. The rails are driven by servo or stepper motors, allowing for preset feeding paths to ensure even distribution of organic waste and avoid accumulation or gaps. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention; Figure 2 This is a front view of the support, feeding layer and receiving surface of the present invention; Figure 3 It is a schematic diagram of the three-dimensional structure of the receiving surface of the present invention; Figure 4 This is a schematic diagram of the three-dimensional structure of the lower silo of the present invention; Figure 5 Schematic diagram of the transmission path of the feeding assembly of the present invention.

[0028] In the figure: 1. Support; 2. Feeding layer; 3. Supporting surface; 4. Feeding assembly; 401. Horizontal slide rail; 402. Longitudinal slide rail; 403. Feeding bin; 404. Opening and closing plate; 405. Rotating plate; 406. Driver 1; 407. Driver 2; 5. Organic waste processing assembly; 501. Transmission pipe; 502. Drainage tank; 503. Automatic sorting platform; 504. Crushers; 505. Mixing chamber; 506. Gluing machine; 507. Collection tank; 6. Connecting belt; 7. Breeding area. DETAILED DESCRIPTION

[0029] In order to make the technical means, creative features, objectives and effects of the present invention easier to understand, the present invention is further explained below with reference to specific illustrations.

[0030] like Figure 1 As shown, an automatic feeding system for breeding American cockroaches using organic waste includes a plurality of brackets 1, a plurality of feeding layers 2 installed on the brackets 1, a plurality of receiving surfaces 3 installed on the feeding layers 2, and a feeding assembly 4 provided on the top of the feeding layer 2 at the highest point of the brackets 1.

[0031] The treated organic waste is transported by the feeding assembly 4 and falls from the top of the feeding layer 2 (first layer) at the highest point of the support 1 to the receiving surface 3. When the receiving surface 3 of the highest feeding layer 2 is full of organic waste, the organic waste that continues to fall slides down from both sides of the receiving surface 3 to the next feeding layer 2 and is collected by the receiving surface 3 on the next feeding layer 2 (second layer) until it is full again and slides to the third feeding layer 2. This cycle repeats until the receiving surface 3 on the bottom feeding layer 2 is also full and the supply of organic waste is stopped. By feeding organic waste in a layer-by-layer stacking and layer-by-layer falling manner, the organic waste can be quickly fed to multiple feeding layers 2, thereby preventing the accumulation of a large amount of organic waste, preventing the accumulation of a large amount of cockroaches during feeding, and effectively reducing the possibility of cockroaches being squeezed to death during feeding.

[0032] Specifically, in this embodiment, Figure 2 As shown, there are four feeding layers 2 on the support 1, which are arranged in parallel in the vertical direction. The same number of receiving surfaces 3 are equidistantly laid on each feeding layer 2, and the spacing between each receiving surface 3 is less than the width of the receiving surface 3. In addition, the receiving surfaces 3 on adjacent feeding layers 2 are staggered, that is, in adjacent feeding layers 2, the vertical position of the receiving surface 3 on the upper feeding layer 2 corresponds to the gap position of the receiving surface 3 on the lower feeding layer 2. The staggered receiving surfaces 3 can thus achieve layer-by-layer accumulation of organic waste.

[0033] Furthermore, the feeding component 4 includes a lower bin 403, and the lower bin 403 puts organic waste onto the receiving surface 3 on the feeding layer 2 below. The feeding component 4 also includes a transverse slide rail 401 and a longitudinal slide rail 402. The transverse slide rail 401 is slidably set on the longitudinal slide rail 402, and the lower bin 403 is slidably set on the transverse slide rail 401. The lower bin 403 is used to put organic waste onto the receiving surface 3. Through the combined movement of the transverse and longitudinal slide rails 402, the lower bin 403 can achieve two-dimensional free movement in the horizontal plane and accurately cover any position of the receiving surface 3. The longitudinal slide rail 402 serves as the basic track to carry the transverse slide rail 401 for overall movement, while the transverse slide rail 401 adjusts the position of the lower bin 403 separately. The dual-track collaboration can quickly respond to the feeding requirements of different process areas.

[0034] In this embodiment, if Figure 4 As shown, the lower bin 403 is funnel-shaped as a whole and is inverted on the horizontal slide rail 401 , with a larger opening on the top and a smaller discharge port on the bottom, and an opening and closing plate 404 is provided at the discharge port.

[0035] Specifically, both ends of the opening and closing plate 404 are respectively connected to a rotating plate 405, and the other end of the rotating plate 405 is rotatably connected to the discharge bin 403. The rotating connection point of the rotating plate 405 is provided with a driver 406 for driving the rotating plate 405 to rotate. The driver 406 is specifically a motor, which is used to control the rotation of the rotating plate 405. When the discharge bin 403 is unloading, the rotating plate 405 is controlled to rotate, so that the discharge port below the discharge bin 403 is opened, and the organic waste is discharged from the discharge port.

[0036] Furthermore, the spacing between adjacent receiving surfaces 3 on the same feeding layer 2 is smaller than the width of the receiving surfaces 3. This allows the organic waste on the receiving surfaces 3 to accurately fall onto the receiving surfaces 3 of the lower layer when sliding downward. Since the spacing between the receiving surfaces 3 on the same feeding layer 2 is smaller than the width of the receiving surfaces 3, when the organic waste on the receiving surfaces 3 of the upper feeding layer 2 slides to both sides, it can be accurately caught by the receiving surfaces 3 of the lower layer, which are wider than the spacing, and the organic waste will not fall directly to the bottom layer, thereby preventing the waste of organic waste.

[0037] In this embodiment, if Figure 3 As shown, connecting belts 6 are provided on the bottom surfaces on both sides of the receiving surface 3, and the receiving surface 3 on the single-layer feeding layer 2 is connected by the connecting belts 6, and the position of the receiving surface 3 can be adjusted by the connecting belts 6.

[0038] Furthermore, in this embodiment, the receiving surface 3 is specifically a rectangular structure. Connecting straps 6 are provided on the bottom surfaces of both sides of the receiving surface 3, and the receiving surface 3 on the single-layer feeding layer 2 is connected via the connecting straps 6. The connecting straps 6 are made of a flexible material and adhere to the bottom of the receiving surface 3. By adhering the connecting straps 6 to both sides of the bottom of the receiving surface 3, a bottom chute with the connecting straps 6 as the side is formed. The receiving surface 3 is connected to the feeding layer 2 via the chute. Specifically, the feeding layer 2 is composed of two square rods of equal width mounted on the support 1. The width between the two square rods is the groove width of the bottom chute of the receiving surface 3. The chute formed by the connecting straps 6 and the square rods interlock, thereby connecting the receiving surface 3 to the feeding layer 2. At the same time, a smoothing layer is attached to the inner side of the flexible connecting straps 6 to reduce the friction generated during the sliding of the receiving surface 3. The staff can adjust the position of the receiving surface 3 on each feeding layer 2 by pulling the connecting straps 6.

[0039] The discharge port is provided with stirring blades, which are connected by a rotating shaft. The two ends of the rotating shaft are rotatably arranged on the two side walls of the discharge bin 403. One end of the rotating shaft extends outward and is connected to the second driver 407, which is fixed to the outer wall of the discharge bin 403. The second driver 407 is specifically a drive motor, and the driving power is greater than that of the first driver 406. When the discharge bin 403 is unloading, the second driver 407 controls the rotation of the rotating shaft, driving the stirring blades to flip, thereby stirring the organic waste in the discharge bin 403 while discharging the organic waste, which can prevent the organic waste from blocking the discharge port of the discharge bin 403.

[0040] Specifically, the two ends of the rotating shaft are overlapped with the side walls of the lower material bin 403 through bearings. The side walls of the lower material bin 403 are provided with through holes for installing bearings. The two ends of the rotating shaft pass through the bearings and are connected with the bearings through interference fit. There are three stirring blades, each of which is rectangular and has a length equal to the length of the discharge port at the bottom of the lower material bin 403. One side of the long side of the stirring blade is fixed to the rotating shaft and is arranged on the rotating shaft at equal distances along the circumference of the rotating shaft.

[0041] Further, such as Figure 5 As shown, the organic waste processing assembly 5 includes a transmission pipe 501, a draining tank 502, an automatic sorting platform 503, a crusher 504, a mixing chamber 505, and a glue dispenser 506, which are sequentially connected by the transmission pipe 501. A water collection tank 507 is provided at the bottom of the draining tank 502, and a transmission water pipe is connected between the water collection tank 507 and the mixing chamber 505. The organic waste processing assembly 5 can quickly sort and mix the collected organic waste, realize automated production of organic waste, and improve organic waste processing efficiency.

[0042] Specifically, the transmission pipe 501 is a tubular auger conveyor that can automatically transmit organic waste. The bottom of the drain tank 502 is a mesh bottom plate. After the organic waste is put into the drain tank 502, the excess water flows into the water collection tank 507 below through the mesh bottom plate. The organic waste in the drain tank 502 is transported to the automatic sorting machine through the transmission pipe 501. The automatic sorting machine includes an automatic transmission platform. A plurality of detectors are provided on the automatic transmission platform to monitor the organic waste, and a magnetic adsorption plate is provided at the discharge port at the right end of the automatic sorting platform 503. The automatic sorting machine selects harmful substances (such as plastics) in the organic waste, and then absorbs the magnetic metals in the organic waste through the magnetic adsorption plate. Finally, the organic waste is discharged into the crusher 504 for crushing, and is processed by the stirring component and the grinding component and then transmitted to the discharge bin 403.

[0043] In this embodiment, if Figure 1 As shown, a breeding area 7 is installed between the brackets 1. One breeding area 7, one bracket 1 and the feeding layer 2 on the bracket 1 constitute a feeding group. In this embodiment, there are multiple feeding groups, so that the cockroaches can be divided into multiple batches for feeding.

[0044] The present application also relates to a method for preparing food for breeding American cockroaches using organic waste, comprising the following steps: Step 1: Collect kitchen waste and various organic wastes in daily life; Step 2: Put the organic waste into the draining tank 502 to drain out a certain amount of water; Step 3: The organic waste in the drain tank 502 is transferred to the automatic sorting platform 503 through the transfer pipe 501. The plastic and other harmful substances in the organic waste are identified and separated. The metal debris is intercepted by the magnetic adsorption plate and discharged into the grinder 504 for grinding. Step 4: The organic waste obtained in step 3 is transferred to the mixing chamber 505 through the transfer pipe 501 for stirring. At the same time, the water drained in step 2 is re-entered into the mixing chamber 505 through the transfer pipe to mix with the organic waste. At the same time, a certain blending admixture is added to mix with the organic waste. Step 5: The organic waste obtained in step 4 is transported to the glue machine 506 through the transmission pipe 501 for fine grinding to form a gelatinous fluid; Step 6: The colloidal fluid formed in step 5 is transferred to the lower hopper 403 through the transfer pipe 501 .

[0045] Organic waste can be quickly processed through the above steps, can be effectively utilized, reduced direct discharge of organic waste, reduced environmental pollution, and at the same time, through the biological transformation of cockroaches, further reduced the volume and harmfulness of organic waste.

[0046] Working principle: After organic waste is discharged from feed opening, first fall on the feeding layer 2 on support 1 top, be caught by the receiving surface 3 on the feeding layer 2, through continuously throwing in, make the receiving surface 3 on the top feeding layer 2 can no longer accommodate more organic waste, organic waste with viscous flow form is piled into cone on the receiving surface 3 after, from the receiving surface 3, both sides fall, fall to next layer feeding layer 2, be caught by the receiving surface 3 on next layer feeding layer 2, continue to pile up, repeat above-mentioned steps, all be piled with organic waste on the receiving surface 3 on each layer feeding layer 2 on support 1, complete the throwing in of organic waste.Through layered partitioning, organic waste is thrown in, it is possible to realize multi-region feeding of periplaneta, the more the feeding area of periplaneta is, then the more difficult crowded accumulation occurs between periplaneta, thereby prevents the situation that concentrated feeding causes periplaneta to occur extrusion death, simultaneously by automation throwing in and feeding, it is possible to reduce the contact between artificial and periplaneta, reduce the risk of bacterial transmission.

[0047] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art will appreciate that the present invention is not limited to the foregoing embodiments and that various modifications and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such modifications and improvements are intended to fall within the scope of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An automatic feeding system for breeding American cockroaches using organic waste, characterized in that: include: A plurality of supports (1), wherein the supports (1) are provided with multiple feeding layers (2) in a vertical direction from bottom to top; The receiving surfaces (3) are equidistantly arranged on the feeding layer (2), and the receiving surfaces (3) on adjacent feeding layers (2) are staggered; A feeding assembly (4) is arranged on the top of the support (1) and is used to feed organic waste into the feeding layer (2); An organic waste processing component (5) for collecting and processing organic waste; The feeding assembly (4) includes a lower hopper (403), and the lower hopper (403) feeds organic waste onto the receiving surface (3) on the lower feeding layer (2). After the organic waste accumulates on the receiving surface (3), it slides to both sides and onto the receiving surface (3) of the next feeding layer (2).

2. The automatic feeding system for breeding American cockroaches using organic waste according to claim 1, characterized in that: The spacing between adjacent receiving surfaces (3) on the same feeding layer (2) is smaller than the width of the receiving surfaces (3).

3. The automatic feeding system for breeding American cockroaches using organic waste according to claim 1, characterized in that: The feeding assembly (4) further comprises a transverse slide rail (401) and a longitudinal slide rail (402), wherein the transverse slide rail (401) is slidably arranged on the longitudinal slide rail (402), and the lower material bin (403) is slidably arranged on the transverse slide rail (401), and the lower material bin (403) is used for feeding organic waste onto the receiving surface (3).

4. The automatic feeding system for breeding American cockroaches using organic waste according to claim 3, characterized in that: The lower material bin (403) is open at the top and has a discharge port at the bottom. An opening and closing plate (404) is provided below the discharge port for controlling the opening and closing of the discharge port.

5. The automatic feeding system for breeding American cockroaches using organic waste according to claim 1, characterized in that: The bottom surfaces on both sides of the receiving surface (3) are provided with connecting belts (6), and the receiving surfaces (3) on the single-layer feeding layer (2) are connected via the connecting belts (6).

6. The automatic feeding system for breeding American cockroaches using organic waste according to claim 4, characterized in that: The two ends of the opening and closing plate (404) are respectively connected to a rotating plate (405), and the other end of the rotating plate (405) is rotatably connected to the lower bin (403). The rotating connection point of the rotating plate (405) is provided with a driver (406) for driving the rotating plate (405) to rotate.

7. The automatic feeding system for breeding American cockroaches using organic waste according to claim 4, characterized in that: The discharge port is provided with a stirring blade, and the stirring blade is connected by a rotating shaft. The two ends of the rotating shaft are rotatably arranged on the two side walls of the discharge bin (403). One end of the rotating shaft extends outward and is connected to the second driver (407), and the second driver (407) is fixed on the outer wall of the discharge bin (403).

8. The automatic feeding system for breeding American cockroaches using organic waste according to claim 1, characterized in that: The organic waste processing assembly (5) comprises a transmission pipe (501), a draining tank (502) connected in sequence by the transmission pipe (501), an automatic sorting platform (503), a grinder (504), a mixing chamber (505), and a glue sprayer (506); a water collecting tank (507) is provided at the bottom of the draining tank (502); and a transmission water pipe is connected between the water collecting tank (507) and the mixing chamber (505).

9. The automatic feeding system for breeding American cockroaches using organic waste according to claim 8, characterized in that: The unloading port of the automatic sorting platform (503) is provided with a magnetic adsorption plate.

10. A method for producing food for breeding American cockroaches using organic waste, specifically applied to the feeding system according to any one of claims 1 to 9, characterized in that: The following steps are involved: Step 1: Collect kitchen waste and various organic wastes in daily life; Step 2: Put the organic waste into the drain tank (502) to drain the water; Step 3: The organic waste in the drain tank (502) is transferred to the automatic sorting platform (503) through the transfer pipe (501), and the harmful substances in the organic waste are identified and separated. The metal debris is intercepted by the magnetic adsorption plate and discharged into the crusher (504) for crushing; Step 4: The organic waste obtained in step 3 is transferred to the mixing chamber (505) through the transfer pipe (501) for stirring, and the water drained in step 2 is simultaneously transferred back into the mixing chamber (505) through the transfer water pipe to be mixed with the organic waste, and a blending admixture is added to mix the organic waste uniformly; Step 5: The organic waste obtained in step 4 is transported to a glue machine (506) through a transmission pipe (501) for fine grinding to form a colloidal fluid; Step 6: The colloidal fluid formed in step 5 is transferred to the lower hopper (403) through the transfer pipe (501).

Citation Information

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