Australian freshwater lobster breeding system

Through the combination of a double-layer filtration system and a cooling and cooling pump, the problems of water temperature regulation and water quality purification in the Australian freshwater lobster breeding system are solved, timely purification of water quality and dynamic adjustment of water temperature are achieved, breeding efficiency and refined control are improved, and an environment conducive to lobster growth is created.

CN120323391APending Publication Date: 2025-07-18SUZHOU AOJU BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510578018.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-07
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

The prior art is difficult to effectively regulate the water temperature in the Australian freshwater lobster breeding system, resulting in harsh breeding conditions, low human participation efficiency, and low degree of control refinement.

Method used

The combination of a double-layer filtration system and a heating and cooling pump is adopted. Through the linkage between the main and auxiliary water injection pipes and the water buckets, water recovery pipes, filters and heating and cooling pumps, water quality purification and dynamic adjustment of water temperature are achieved, and an oxygen generator is set up to increase oxygen to build an environment suitable for lobster growth.

Benefits of technology

Timely purification of water quality and dynamic adjustment of water temperature are achieved, better breeding conditions are provided, breeding efficiency and refined control are improved, and an environment conducive to lobster growth is created.

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Abstract

The invention relates to an Australian freshwater lobster breeding system, which comprises at least one first breeding tank, a second breeding tank and a third breeding tank, the second culture tank is provided with a second culture space; a main water injection pipeline, an auxiliary water injection pipeline and a water bucket, the water bucket is provided with a water storage space, the main water injection pipeline is communicated with the water storage space of the water bucket on one hand, the main water injection pipeline extends to the first culture space of the first culture tank on the other hand, and water in the water bucket flows into the first culture tank; the auxiliary water injection pipeline is communicated with the main water injection pipeline, and water in the water bucket flows into the second culture tank; the water recycling pipeline is communicated with the first breeding tank and the second breeding tank, the water recycling pipeline is communicated with the filter, the filter is communicated with the cooling and heating pump, the cooling and heating pump is communicated with the water bucket, and the cooling and heating pump is used for heating or cooling water according to requirements.
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Description

Technical Field

[0001] The present invention relates to the field of aquaculture equipment, and particularly to an Australian red claw crayfish aquaculture system. Background Art

[0002] The breeding conditions of Australian red claw crayfish are extremely harsh, requiring good water quality and moderate water temperature. It is easy to meet the water quality requirements, but it is extremely difficult to achieve the condition of moderate water temperature, which has not been solved by the existing technologies yet. Secondly, most of the existing Australian red claw crayfish aquaculture systems require human participation. Human participation is inefficient and the degree of fine control is not high. For example, a crayfish aquaculture system disclosed in the Chinese utility model patent with the application number CN202222107662.1 belongs to the technical field of crayfish aquaculture, including a culture pond and a water circulation mechanism connected to the culture pond. The water circulation mechanism includes a circulating water supply pipe connected from the water outlet of the culture pond and connected to the water inlet of the culture pond, a filter arranged on the circulating water supply pipe, a water replenishing tank and a disinfectant replenishing tank respectively connected to the circulating water supply pipe. The inner bottom wall of the culture pond is provided with a loop heating pipe, the inner side wall is provided with a water quality monitoring sensor, the outer side wall is provided with a control panel respectively connected to the loop heating pipe and the water quality monitoring sensor, and a first high-density screen is arranged in the middle of the culture pond. The utility model has a simple structure, is scientifically and reasonably designed, is convenient to use, solves the technical problem of untimely purification of the existing crayfish aquaculture water body, can master the water quality indexes in the pond in real time, and realizes the reuse of water quality purification based on water body circulation, so as to construct a water quality cycle, ensure the water quality, and provide a suitable environment for the growth of shrimp seedlings. Although the crayfish aquaculture system provided by this patent can solve the technical problem of water body purification to a certain extent, it still cannot solve the technical problem of providing dynamically changing water temperature. Summary of the Invention

[0003] The purpose of the present invention is to solve the deficiencies in the existing technologies and propose an Australian red claw crayfish aquaculture system.

[0004] To achieve the above purpose, the present invention adopts the following technical solutions: An Australian red claw crayfish aquaculture system, including: At least one first culture tank, the first culture tank having a first culture space; At least one second culture tank, the second culture tank having a second culture space; A main water injection pipe, a secondary water injection pipe, and a water bucket, the water bucket having a water storage space. One end of the main water injection pipe is communicated with the water storage space of the water bucket, and the other end extends into the first culture space of the first culture tank, so that the water in the water bucket flows into the first culture tank; the secondary water injection pipe is communicated with the main water injection pipe, so that the water in the water bucket flows into the second culture tank; A water recovery pipeline, a filter, and a cooling and heating pump. The water recovery pipeline is connected to both the first breeding tank and the second breeding tank. The water recovery pipeline is connected to the filter, the filter is connected to the cooling and heating pump, and the cooling and heating pump is connected to the water bucket, so that the water in the first breeding tank and the second breeding tank flows into the filter through the water recovery pipeline, flows into the cooling and heating pump after being filtered by the filter, and the cooling and heating pump is used to heat or cool the water according to requirements, and the heated or cooled water flows into the water storage space of the water bucket.

[0005] In some embodiments of the present application, it further includes a first communication pipeline, a second communication pipeline, and a first water outlet pipeline. One end of the first communication pipeline is connected to the filter, and on the other hand, the first communication pipeline is connected to the second communication pipeline, and the second communication pipeline is connected and communicated with the water recovery pipeline, so that the water in the water recovery pipeline flows into the filter; the first water outlet pipeline is connected and communicated with the filter, so that the water filtered by the filter flows out through the first water outlet pipeline.

[0006] In some embodiments of the present application, it further includes an intermediate water tank, a first pumping pipeline, a first water pump, a first water injection pipeline, and a second water pump. The intermediate water tank has a water storage cavity. One end of the first pumping pipeline extends into the water storage cavity of the intermediate water tank, and the other end of the first pumping pipeline is connected and communicated with the first water pump. The first water pump is connected and communicated with the cooling and heating pump through a third communication pipeline, so that the first water pump pumps the water in the intermediate water tank to the cooling and heating pump; one end of the first water injection pipeline extends into the intermediate water tank, and the other end of the first water injection pipeline is connected and communicated with the second water pump. The second water pump is connected and communicated with the cooling and heating pump, so that the second water pump injects the water heated or cooled by the cooling and heating pump into the intermediate water tank.

[0007] In some embodiments of the present application, it further includes a fourth communication pipeline, a fifth communication pipeline, and a spraying pipeline. One end of the fourth communication pipeline extends into the water storage cavity of the intermediate water tank, and on the other hand, the fourth communication pipeline is connected and communicated with the second water pump. The fourth communication pipeline is connected to the fifth communication pipeline, the fifth communication pipeline is connected to the spraying pipeline, and the spraying pipeline is connected to the water storage space of the water bucket.

[0008] In some embodiments of the present application, a filter layer is further provided in the water storage space of the water bucket, and the filter layer is used to filter the water in the water storage space of the water bucket.

[0009] In some embodiments of the present application, it further includes an oxygen generator, an oxygen-containing pipeline, and an oxygen delivery pipeline. The oxygen generator and the oxygen-containing pipeline are connected through the oxygen delivery pipeline, so that the oxygen produced by the oxygen generator is delivered into the oxygen-containing pipeline; on the one hand, the oxygen-containing pipeline is connected to the main water injection pipeline, and on the other hand, the oxygen-containing pipeline is connected to the water bucket through a fifth connection pipeline, so that the water in the water bucket is mixed with the oxygen in the oxygen-containing pipeline and then flows into the main water injection pipeline together.

[0010] In some embodiments of the present application, it further includes a third water pump and a sixth connection pipeline. The sixth connection pipeline is connected to the oxygen-containing pipeline on the one hand and the third water pump on the other hand, so that when the water in the water bucket flows into the oxygen-containing pipeline, the third water pump pumps the mixture of water and oxygen in the oxygen-containing pipeline into the main water injection pipeline.

[0011] In some embodiments of the present application, it further includes a seventh connection pipeline. The seventh connection pipeline is connected to the water recovery pipeline and is also connected to the oxygen generator, so that the water in the first breeding tank and the second breeding tank flows into the water recovery pipeline, and a part of the water in the water recovery pipeline flows into the oxygen generator through the seventh connection pipeline to produce oxygen.

[0012] In some embodiments of the present application, it further includes a first water injection pipeline, a second water injection pipeline, an eighth connection pipeline, and a ninth connection pipeline. The first water injection pipeline and the second water injection pipeline are both connected to the secondary water injection pipeline, and the first water injection pipeline extends to the first breeding tank, and the second water injection pipeline extends to the second breeding tank, so that water is injected into the first breeding tank through the first water injection pipeline and water is injected into the second breeding tank through the second water injection pipeline; the eighth connection pipeline is connected to the first breeding tank on the one hand and the water recovery pipeline on the other hand; the ninth connection pipeline is connected to the second breeding tank on the one hand and the water recovery pipeline on the other hand.

[0013] The beneficial effects of the present application are as follows: The Australian red claw crayfish breeding system provided by the present application has a simple structure and stable system operation. In view of the double-layer filtration system provided in the breeding system (the first filtration system is the filter, and the second filtration system is the filter layer arranged in the water bucket), the water purification effect is good, which is beneficial to the breeding and hygiene of crayfish; secondly, in view of the setting of the cooling and heating pump, the water temperature required for the growth of crayfish is adjusted through the cooling and heating pump, creating a water temperature environment more conducive to the growth of crayfish. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a schematic structural diagram of the Australian red claw crayfish breeding system provided by the present invention.

[0015] Figure 2 is Figure 1 a partial enlarged view of the Australian freshwater crayfish farming system shown in the figure.

[0016] Figure 3 is Figure 1 another partial enlarged view of the Australian freshwater crayfish farming system shown in the figure. Specific embodiments

[0017] The present application will be further described in detail below in conjunction with the accompanying drawings through specific embodiments. Similar components in different embodiments are labeled with related similar reference numerals. In the following embodiments, many detailed descriptions are provided to enable a better understanding of the present application. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other components, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification to avoid overwhelming the core part of the present application with excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the descriptions in the specification and general technical knowledge in the art.

[0018] In addition, the features, operations, or characteristics described in the specification can be combined in any appropriate manner to form various embodiments, and the operation steps involved in each embodiment can also be adjusted or reordered in an obvious manner by those skilled in the art. Therefore, the specification and the drawings are only for clearly describing a certain embodiment and do not mean that they are essential compositions and / or sequences.

[0019] The serial numbers assigned to the components in this article, such as "first", "second", etc., are only used to distinguish the described objects and do not have any sequential or technical meanings. The "connection" and "coupling" mentioned in the present application, unless otherwise specified, both include direct and indirect connections (couplings).

[0020] Please refer to Figures 1-3 , the present application provides an Australian freshwater crayfish farming system (hereinafter referred to as "the farming system"). Multiple such farming systems can be set up in the farming base of Australian freshwater crayfish. For example, in the present application Figure 1 , it is shown that a first farming system 2, a second farming system 3, and a third farming system 4 are set up on the farming base 1. The settings of the first farming system 2, the second farming system 3, and the third farming system 4 are exactly the same. The following description will be made with the farming system 2.

[0021] The aquaculture system 2 provided by the present application can achieve timely purification of water quality, water circulation, and dynamic regulation of water temperature, thereby providing better feeding conditions for the cultivation of Australian freshwater crayfish.

[0022] Please refer to Figures 1-3 , the aquaculture system 2 includes: At least one first aquaculture tank 21, the first aquaculture tank 21 having a first aquaculture space 2100; At least one second aquaculture tank 22, the second aquaculture tank 22 having a second aquaculture space 2200; A main water injection pipeline 23, a secondary water injection pipeline 226, and a water bucket 210. The water bucket 210 has a water storage space 2101. On the one hand, the main water injection pipeline 23 communicates with the water storage space 2101 of the water bucket 210, and on the other hand, the main water injection pipeline 23 extends into the first aquaculture space 2100 of the first aquaculture tank 21, so that the water in the water bucket 210 flows into the first aquaculture tank 21; the secondary water injection pipeline 226 communicates with the main water injection pipeline 23, so that the water in the water bucket 210 flows into the second aquaculture tank 22; A water recovery pipeline 225, a filter 221, and a cooling and heating pump 216. The water recovery pipeline 225 is connected to both the first aquaculture tank 21 and the second aquaculture tank 22. The water recovery pipeline 225 is connected to the filter 221, the filter 221 is connected to the cooling and heating pump 216, and the cooling and heating pump 216 is connected to the water bucket 210, so that the water in the first aquaculture tank 21 and the second aquaculture tank 22 flows into the filter 221 through the water recovery pipeline 225, is filtered by the filter 221 and then flows into the cooling and heating pump 216. The cooling and heating pump 216 is used to heat or cool the water according to requirements, and the heated or cooled water flows into the water storage space 2101 of the water bucket 210. The cooling and heating pump 216 in the present application can dynamically adjust the water temperature according to requirements. For example, the cooling and heating pump 216 is connected to a control unit, and a preset value of the water temperature is input into the control unit. If the water temperature passing through the cooling and heating pump 216 is higher or lower than the preset value, the cooling and heating pump 216 operates to control the water temperature at the preset value.

[0023] In some embodiments of the present application, please refer to Figures 2-3, the aquaculture system 2 further includes a first connecting pipe 223, a second connecting pipe 224, and a first water outlet pipe 222. One end of the first connecting pipe 223 is connected to the filter 221, and on the other hand, the first connecting pipe 223 is connected to the second connecting pipe 224. The second connecting pipe 224 is connected and communicated with the water recovery pipe 225, so that the water in the water recovery pipe 225 flows into the filter 221; the first water outlet pipe 222 is connected and communicated with the filter 221, so that the water filtered by the filter flows out through the first water outlet pipe 222.

[0024] In some embodiments of the present application, please refer to Figures 2-3 , the aquaculture system 2 further includes an intermediate water tank 214, a first pumping pipe 218, a first water pump 215, a first water injection pipe 217, and a second water pump 213. The intermediate water tank 214 has a water storage cavity 2140. One end of the first pumping pipe 218 extends into the water storage cavity 2140 of the intermediate water tank 214, and the other end of the first pumping pipe 218 is connected and communicated with the first water pump 215. The first water pump 215 is connected and communicated with the cooling and heating pump 216 through a third connecting pipe 219, so that the first water pump 215 pumps the water in the intermediate water tank 214 to the cooling and heating pump 216; one end of the first water injection pipe 217 extends into the intermediate water tank 214, and the other end of the first water injection pipe 217 is connected and communicated with the second water pump 213. The second water pump 213 is connected and communicated with the cooling and heating pump 216, so that the second water pump 213 injects the water heated or cooled by the cooling and heating pump 216 into the intermediate water tank 214. It should be noted that the first water pump 215 and the second water pump 213 do not work at the same time, but work at intervals. For example, when the first water pump 215 works, the second water pump 213 does not work, which makes it impossible for the water in the intermediate water tank 214 to be pumped to the cooling and heating pump 216 and the water in the cooling and heating pump 216 to be pumped to the intermediate water tank 214 at the same time.

[0025] In some embodiments of the present application, please refer to Figures 1-3, the aquaculture system 2 further includes a fourth connecting pipe 220, a fifth connecting pipe 212, and a water spraying pipe 211. One end of the fourth connecting pipe 220 extends into the water storage cavity 2140 of the intermediate water tank 214, and on the other hand, the fourth connecting pipe 220 is connected and communicated with the second water pump 213. The fourth connecting pipe 220 is communicated with the fifth connecting pipe 212, the fifth connecting pipe 212 is communicated with the water spraying pipe 211, and the water spraying pipe 211 is communicated with the water storage space 2101 of the water bucket 210. In this way, after the second water pump 213 finishes filling water into the intermediate water tank 214, the water in the intermediate water tank 214 is pumped to the water spraying pipe 211, and the water in the water spraying pipe 211 flows into the water storage space 2101 of the water bucket 210.

[0026] In some embodiments of the present application, please refer to Figures 1-3 , a filter layer 2102 is further provided in the water storage space 2101 of the water bucket 210, and the filter layer 2102 is used to filter the water in the water storage space 2101 of the water bucket 210. In the present application, the structure and composition of the filter layer 2102 are not limited as long as the filter layer 2102 can achieve the filtering function. For example, activated carbon can be provided in the filter layer 2102, and the activated carbon has an adsorption effect on the impurities in the water in the water bucket 210, so as to realize the filtering of the water in the water bucket 210.

[0027] In some embodiments of the present application, please refer to Figures 1-3 , the aquaculture system 2 further includes an oxygen generator 25, an oxygen-containing pipe 24, and an oxygen delivery pipe 230. The oxygen generator 25 is communicated with the oxygen-containing pipe 24 through the oxygen delivery pipe 230, so that the oxygen produced by the oxygen generator 25 is delivered into the oxygen-containing pipe 24; one end of the oxygen-containing pipe 24 is communicated with the main water injection pipe 23, and on the other hand, the oxygen-containing pipe 24 is communicated with the water bucket 210 through a fifth connecting pipe 29, so that the water in the water bucket 210 and the oxygen in the oxygen-containing pipe 24 flow into the main water injection pipe 23 together.

[0028] In some embodiments of the present application, please refer to Figures 1-3 , the aquaculture system 2 further includes a third water pump 26 and a sixth connecting pipe 28. One end of the sixth connecting pipe 28 is communicated with the oxygen-containing pipe 24, and on the other hand, it is communicated with the third water pump 26, so that when the water in the water bucket 210 flows into the oxygen-containing pipe 24, the third water pump 26 pumps the mixture of water and oxygen in the oxygen-containing pipe 24 into the main water injection pipe 23.

[0029] In some embodiments of the present application, please refer to Figures 1-3, the aquaculture system 2 further includes a seventh communication pipeline 227 which communicates with the water recovery pipeline 225 and also communicates with the oxygen generator 25. In this way, the water in the first aquaculture tank 21 and the second aquaculture tank 22 flows into the water recovery pipeline 225, and a part of the water in the water recovery pipeline 225 flows into the oxygen generator 25 through the seventh communication pipeline 227 to produce oxygen. Of course, an electric water valve can be provided on the seventh communication pipeline 227 to control the opening and closing of the seventh communication pipeline 227. For example, the electric water valve can be a solenoid valve which is connected to a control unit, and the control unit controls the solenoid valve to open and close intermittently.

[0030] In some embodiments of the present application, please refer to Figures 1-3 , the aquaculture system 2 further includes a first water injection pipeline 231, a second water injection pipeline 233, an eighth communication pipeline 232, and a ninth communication pipeline 234. The first water injection pipeline 231 and the second water injection pipeline 233 both communicate with the secondary water injection pipeline 226, and the first water injection pipeline 231 extends towards the first aquaculture tank 21 while the second water injection pipeline 233 extends towards the second aquaculture tank 22. In this way, water is injected into the first aquaculture tank 21 through the first water injection pipeline 231 and into the second aquaculture tank 22 through the second water injection pipeline 233. The eighth communication pipeline 232 communicates with the first aquaculture tank 21 on one hand and with the water recovery pipeline 225 on the other hand. The ninth communication pipeline 234 communicates with the second aquaculture tank 22 on one hand and with the water recovery pipeline 225 on the other hand. In this way, the water in the first aquaculture tank 21 and the second aquaculture tank 22 flows into the water recovery pipeline 225, and the water in the water recovery pipeline 225 flows into the filter, and so on in a cycle.

[0031] The Australian freshwater lobster aquaculture system provided by the present application has a simple structure and stable system operation. In view of the double - layer filtration system arranged in the aquaculture system (the first - stage filtration system is the filter, and the second - stage filtration system is the filtration layer arranged in the water bucket), the water purification effect is good, which is beneficial to the breeding and hygiene of lobsters. Secondly, in view of the setting of the cooling and heating pump, the water temperature required for the growth of lobsters is adjusted through the cooling and heating pump, creating a water temperature environment more conducive to the growth of lobsters.

[0032] The above - mentioned embodiments are only used to illustrate the technical concept and characteristics of the present invention. The purpose is to enable those who are familiar with this technology to understand the content of the present invention and implement it accordingly, and it cannot be used to limit the protection scope of the present invention. Any equivalent changes or modifications made according to the spirit and essence of the present invention should be covered within the protection scope of the present invention.

Claims

1. Australian freshwater lobster farming system, characterized in that, Comprising: At least one first breeding tank, the first breeding tank having a first breeding space; At least one second breeding tank, the second breeding tank having a second breeding space; A main water injection pipe, a secondary water injection pipe, and a water bucket, the water bucket having a water storage space, the main water injection pipe being connected to the water storage space of the water bucket on the one hand and extending into the first breeding space of the first breeding tank on the other hand, so that the water in the water bucket flows into the first breeding tank; the secondary water injection pipe is connected to the main water injection pipe, so that the water in the water bucket flows into the second breeding tank; A water recovery pipe, a filter, and a cooling and heating pump, the water recovery pipe being connected to both the first breeding tank and the second breeding tank, the water recovery pipe being connected to the filter, the filter being connected to the cooling and heating pump, and the cooling and heating pump being connected to the water bucket, so that the water in the first breeding tank and the second breeding tank flows through the water recovery pipe into the filter, is filtered by the filter and then flows into the cooling and heating pump, and the cooling and heating pump is used to heat or cool the water according to requirements, and the heated or cooled water flows into the water storage space of the water bucket.

2. The breeding system according to claim 1, characterized in that, It further includes a first communication pipe, a second communication pipe, and a first water outlet pipe. The first communication pipe is connected to the filter on the one hand and the second communication pipe on the other hand. The second communication pipe is connected and communicated with the water recovery pipe, so that the water in the water recovery pipe flows into the filter; the first water outlet pipe is connected and communicated with the filter, so that the water filtered by the filter flows out through the first water outlet pipe.

3. The breeding system according to claim 1, characterized in that It further includes an intermediate water tank, a first water pumping pipe, a first water pump, a first water injection pipe, and a second water pump. The intermediate water tank has a water storage chamber. One end of the first water pumping pipe extends into the water storage chamber of the intermediate water tank, and the other end of the first water pumping pipe is connected and communicated with the first water pump. The first water pump is connected and communicated with the cooling and heating pump through a third communication pipe, so that the first water pump pumps the water in the intermediate water tank to the cooling and heating pump; one end of the first water injection pipe extends into the intermediate water tank, and the other end of the first water injection pipe is connected and communicated with the second water pump. The second water pump is connected and communicated with the cooling and heating pump, so that the second water pump injects the water heated or cooled by the cooling and heating pump into the intermediate water tank.

4. The breeding system according to claim 3, characterized in that, It further includes a fourth communication pipe, a fifth communication pipe, and a spraying pipe. The fourth communication pipe extends into the water storage chamber of the intermediate water tank on the one hand and is connected and communicated with the second water pump on the other hand. The fourth communication pipe is connected to the fifth communication pipe, the fifth communication pipe is connected to the spraying pipe, and the spraying pipe is connected to the water storage space of the water bucket.

5. The breeding system according to claim 1, wherein A filter layer is further provided in the water storage space of the water bucket, and the filter layer is used to filter the water in the water storage space of the water bucket.

6. The breeding system according to claim 1, characterized in that, It further includes an oxygen generator, an oxygen-containing pipeline, and an oxygen delivery pipeline. The oxygen generator and the oxygen-containing pipeline are connected through the oxygen delivery pipeline, so that the oxygen produced by the oxygen generator is delivered into the oxygen-containing pipeline. On the one hand, the oxygen-containing pipeline is connected to the main water injection pipeline, and on the other hand, the oxygen-containing pipeline is connected to the water bucket through a fifth connecting pipeline, so that the water in the water bucket is mixed with the oxygen in the oxygen-containing pipeline and then flows into the main water injection pipeline together.

7. The breeding system according to claim 6, characterized in that, It further includes a third water pump and a sixth connecting pipeline. On the one hand, the sixth connecting pipeline is connected to the oxygen-containing pipeline, and on the other hand, it is connected to the third water pump, so that when the water in the water bucket flows into the oxygen-containing pipeline, the third water pump pumps the mixture of water and oxygen in the oxygen-containing pipeline into the main water injection pipeline.

8. The breeding system according to claim 6, characterized in that It further includes a seventh connecting pipeline. The seventh connecting pipeline is connected to the water recovery pipeline and is also connected to the oxygen generator, so that the water in the first breeding tank and the second breeding tank flows into the water recovery pipeline, and a part of the water in the water recovery pipeline flows into the oxygen generator through the seventh connecting pipeline to produce oxygen.

9. The breeding system according to claim 1, characterized in that It further includes a first water injection pipeline, a second water injection pipeline, an eighth connecting pipeline, and a ninth connecting pipeline. Both the first water injection pipeline and the second water injection pipeline are connected to the auxiliary water injection pipeline. The first water injection pipeline extends towards the first breeding tank, and the second water injection pipeline extends towards the second breeding tank, so that water is injected into the first breeding tank through the first water injection pipeline and into the second breeding tank through the second water injection pipeline. On the one hand, the eighth connecting pipeline is connected to the first breeding tank, and on the other hand, it is connected to the water recovery pipeline. On the one hand, the ninth connecting pipeline is connected to the second breeding tank, and on the other hand, it is connected to the water recovery pipeline.

Citation Information

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