Distributed tadpole breeding workshop and breeding method
Through precise environmental control and resource optimization in distributed tadpole breeding workshops, the problem of inaccurate environmental regulation in traditional centralized breeding has been solved, the growth efficiency and survival rate of tadpoles have been improved, and optimal resource utilization and water quality stability have been achieved.
Patent Information
- Application Number
- CN202511067290.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-31
- Publication Date
- 2025-09-09
AI Technical Summary
Traditional centralized tadpole farming methods are unable to precisely control environmental parameters, resulting in poor growth in some areas, serious waste of resources, and difficulty maintaining stable water quality, which affects the growth and quality of tadpoles.
A distributed tadpole breeding workshop is used to monitor the environmental status through a sensor assembly. Combined with a simulated lighting end, feeding end and water treatment tank, precise environmental control and resource optimization of each breeding unit are achieved, including water circulation, feed feeding and light adjustment, to meet the needs of tadpoles at different growth stages.
It improves the growth efficiency and survival rate of tadpoles, reduces resource waste, ensures clean water quality, and achieves intelligent management and sustainable development.
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Figure CN120604756A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of tadpole breeding, in particular to a distributed tadpole breeding workshop and a breeding method. Background Art
[0002] In recent years, with the deepening of biodiversity conservation and ecological restoration efforts, the demand for tadpoles, as important ecological indicator species and feed production resources, has gradually increased. Tadpoles are not only the subject of biological research, but also play an increasingly important role in aquaculture and ecological restoration. Traditional tadpole farming methods are mainly based on centralized management. Although this method is simple and easy to implement, it often leads to poor tadpole growth quality and unstable yields due to problems such as complex farming environments, uneven resource distribution, and difficult water quality management. The farming process is often accompanied by a large amount of resource waste. To improve the efficiency and quality of tadpole farming, especially in large-scale farming environments, a new technical solution is urgently needed to enhance the refined management of farming and improve resource utilization efficiency.
[0003] The existing technology has the following defects or problems:
[0004] Most of the integrated breeding methods used are large breeding areas and cannot accurately control the environmental parameters of each breeding unit, which often causes poor growth of tadpoles in some areas and serious waste of resources. At the same time, it is impossible to adjust the water body and environment for tadpoles in a single area and at different growth cycles. The breeding water quality is difficult to maintain stable, which is prone to water pollution and affects the growth and quality of tadpoles.
[0005] It should be noted that the above content falls within the technical knowledge of the inventor and does not necessarily constitute prior art. Summary of the Invention
[0006] In view of the deficiencies of the existing technology, the present invention provides a distributed tadpole breeding workshop and a breeding method, which solve the current problems.
[0007] To achieve the above object, the present invention provides the following technical solution: a distributed tadpole breeding workshop, comprising:
[0008] Breeding units, which can be arranged in several groups, which together constitute a breeding workshop;
[0009] A sensor assembly is provided inside the breeding unit, and the sensor assembly is connected to an external scheduling unit via a wireless network to monitor the breeding environment status inside the breeding unit. A simulated light terminal is provided at the upper end of the breeding unit;
[0010] A feeding end, wherein tadpole breeding feed is stored inside the feeding end and a feeding pump is provided inside the feeding end. A feed guide pipeline is provided between the feeding end and each group of the breeding units, and the feed guide pipeline is connected to the output end of the feeding pump to realize the feeding operation of the feed;
[0011] A water treatment tank is provided with a water treatment unit and a liquid pump, and is controlled by an external scheduling unit. A liquid inlet pipeline and a liquid outlet pipeline are provided between the liquid pump inside the water treatment tank and the breeding unit. The input end of the liquid pump is connected to the external waterway to form a water circulation breeding system.
[0012] In some embodiments, the liquid inlet pipeline, liquid discharge pipeline and material guide pipeline are all fixedly connected with control valves to control the timed and quantitative introduction of aquaculture water and aquaculture feed. At the same time, a filter is built into the liquid discharge pipeline to prevent tadpoles from entering the water treatment tank with the water flow.
[0013] In some embodiments, the breeding units are detachably provided with transverse and vertical partitions, and the connection between the two is sealed. The breeding units are separated by the transverse and vertical partitions to form breeding chambers, and the sensor assemblies are fixedly installed in the breeding chambers of each group.
[0014] The bottom of each group of the culture chambers is provided with a liquid guide port, and each group of the liquid guide ports is connected to a liquid lowering pipeline.
[0015] Another technical problem to be solved by the present invention is to provide a breeding method for distributed tadpole breeding workshops, comprising the following steps:
[0016] The steps include:
[0017] Step 1: Since tadpoles in the hatching stage are extremely sensitive to humidity, temperature, and water quality, a suitable environment for tadpole rearing is required. First, healthy tadpoles in the hatching stage are selected for release. Before release, they need to be monitored and inspected to ensure they are free of disease and parasites, and then placed in the rearing chamber.
[0018] Step 2: The aquaculture water is introduced into the aquaculture unit through the liquid pump inside the water treatment tank. During this step, water circulation aquaculture is achieved through the liquid guide port and the liquid pipeline;
[0019] Step 3: The sensor assembly controls environmental indicators such as water temperature, oxygen content, pH value, and ammonia nitrogen concentration. This data is transmitted to an external dispatch unit. Through big data analysis, changing trends in water quality are quickly identified and predicted, thereby creating a suitable breeding environment for tadpoles.
[0020] Step 4: Simultaneously, the simulated lighting end is put into use, automatically adjusting the light intensity and lighting cycle according to the biological clock to simulate a more suitable breeding environment for tadpole larvae;
[0021] Step 5: Perform dynamic analysis based on the collected real-time data to predict the demand for tadpole larvae breeding and adjust the working status of various equipment through control algorithms;
[0022] Step 6: Start the feeding end and the guide pipe to introduce the feed into the breeding chamber to realize the tadpole feeding operation;
[0023] Step 7: The sensor assembly monitors the size of the tadpoles in real time. As they reach the growth stage, their range of activity gradually expands, and their demand for water quality, temperature, and oxygen increases. The temperature and water flow intensity are then increased to ensure the tadpoles can swim autonomously. The ammonia nitrogen concentration and oxygen content in the water also need to be adjusted accordingly.
[0024] Step 8: At this stage, the tadpoles need to gradually adapt to stronger light. Adjust the simulated light end to extend the light time and increase the light intensity.
[0025] Step 9: After the adjustment is completed, feed the tadpoles regularly according to their growth progress and nutritional needs;
[0026] Step 10: When the tadpoles grow to maturity, their adaptability to the environment improves. While adjusting the water temperature, maintain a strong water flow and oxygen supply to enhance the tadpoles' physical strength and immunity.
[0027] In some embodiments, the feeding operation is specifically based on a preset feeding program, and the system automatically feeds according to specified time intervals and feeding amounts. Through real-time data collection, the system continuously tracks the tadpoles' food intake, feed consumption in the pool, and environmental changes, and adjusts the feeding strategy based on these data.
[0028] In some embodiments, the water temperature during the incubation stage needs to be controlled at 20-25 degrees Celsius and the humidity is controlled at 70-70%. The water temperature during the growth stage is increased to 23-26 degrees Celsius, and the water temperature during the maturity stage is increased to 25-28 degrees Celsius.
[0029] In some embodiments, during the water circulation treatment process, the aquaculture water is subjected to biological filtration, ozone treatment and ultraviolet sterilization through various water treatment units inside the water treatment tank to prevent the water body from affecting the growth of tadpoles. At the same time, the aquaculture units and various pipelines need to be cleaned regularly.
[0030] Compared with the prior art, the present invention provides a distributed tadpole breeding workshop and breeding method, which has the following beneficial effects:
[0031] The distributed tadpole breeding workshop adopts a more comprehensive tadpole breeding method. The breeding process can achieve precise environmental control and resource optimization, ensuring the healthy growth of tadpoles under optimal growth conditions. It can adaptively adjust the environment and monitor water quality, greatly improving the efficiency of breeding and the convenience of management. This breeding method not only improves the survival rate and quality of tadpoles, but also effectively reduces costs, reduces environmental pollution, and promotes sustainable development.
[0032] It has good intelligent management, environmental adaptability and scalability. Through the rational allocation of breeding resources and precise environmental control, it improves breeding efficiency, reduces resource waste, ensures water quality and optimizes the production process.
[0033] At the same time, more effective and reasonable breeding environment regulation is carried out for different growth stages of tadpoles, further ensuring the efficiency of tadpole breeding. The distributed tadpole breeding workshop is composed of multiple groups of breeding units. In addition, through the coordinated installation of horizontal partitions and vertical partitions, the breeding units are divided into four groups of identical breeding chambers. The four groups of different breeding chambers can be cultured in batches, and different breeding policies can be adopted to find a more reasonable breeding plan. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] Figure 1 This is a structural diagram of a distributed breeding workshop according to the present invention;
[0035] Figure 2 This is a schematic diagram of the three-dimensional structure of the breeding unit of the present invention;
[0036] Figure 3 This is a schematic diagram of the three-dimensional structure of the breeding unit of the present invention from another perspective.
[0037] In the figure: 1. Breeding unit; 11. Sensor assembly; 12. Horizontal partition; 13. Vertical partition; 14. Breeding chamber; 15. Liquid inlet; 2. Feed end; 3. Water treatment tank; 4. Simulated light end; 5. Liquid inlet pipeline; 6. Liquid outlet pipeline; 7. Control valve; 8. Feed pipeline. DETAILED DESCRIPTION
[0038] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0039] It should be understood that the step numbers used herein are only for convenience of description and are not intended to limit the order in which the steps are executed.
[0040] It should be understood that the terms used in the present specification are only for the purpose of describing specific embodiments and are not intended to limit the present invention. As used in the present specification and the appended claims, the singular forms "a", "an" and "the" are intended to include the plural forms unless the context clearly indicates otherwise.
[0041] The terms “include” and “comprising” indicate the presence of described features, integers, steps, operations, elements and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components and / or groups thereof.
[0042] The term "and / or" refers to and includes any and all possible combinations of one or more of the associated listed items.
[0043] See also Figure 1-3 In this implementation plan: a distributed tadpole breeding workshop includes:
[0044] Breeding unit 1, breeding unit 1 can be set up in several groups, which together constitute a breeding workshop;
[0045] A sensor assembly 11 is provided inside the breeding unit 1. The sensor assembly 11 is connected to an external scheduling unit via a wireless network to monitor the internal breeding environment of the breeding unit 1. A simulated light terminal 4 is provided at the upper end of the breeding unit 1.
[0046] The feeding end 2 stores tadpole breeding feed inside the feeding end 2 and is provided with a feeding pump inside. A feed guide line 8 is provided between the feeding end 2 and each group of breeding units 1, and the feed guide line 8 is connected to the output end of the feeding pump to realize the feeding operation of the feed;
[0047] Water treatment tank 3, which has a water treatment unit and a liquid pump built in it and is controlled by an external scheduling unit. A liquid inlet pipeline 5 and a liquid outlet pipeline 6 are provided between the liquid pump inside the water treatment tank 3 and the breeding unit 1. The liquid pump input end is connected to the external waterway, thereby forming a water circulation breeding system;
[0048] In this embodiment, the liquid inlet pipeline 5, the liquid outlet pipeline 6 and the feed guide pipeline 8 are all fixedly connected with a control valve 7 to control the timing and quantitative introduction of aquaculture water and aquaculture feed. At the same time, the liquid outlet pipeline 6 is equipped with a filter to prevent tadpoles from entering the water treatment tank 3 with the water flow, thereby forming a water circulation aquaculture, so that the water body can be effectively regulated and cleaned more conveniently and quickly;
[0049] The breeding unit 1 is detachably provided with a horizontal partition 12 and a vertical partition 13, and the connection between the two is sealed. The breeding unit 1 is separated into breeding chambers 14 by the horizontal partition 12 and the vertical partition 13. The sensor assembly 11 is fixedly installed in each group of breeding chambers 14.
[0050] A liquid guide port 15 is provided at the bottom of each group of culture chambers 14 , and each group of liquid guide ports 15 is connected to a lower liquid pipeline 6 .
[0051] Based on the above-mentioned distributed tadpole breeding workshop, a breeding method of a distributed tadpole breeding workshop is proposed, which includes the following steps:
[0052] Step 1: Since tadpoles in the incubation stage are extremely sensitive to humidity, temperature and water quality, an environment suitable for tadpole culture is required. First, healthy tadpoles in the incubation stage are selected for release. Before release, they need to be monitored and inspected to ensure that they are free of disease and parasites, and then placed in the culture chamber 14;
[0053] Step 2: The aquaculture water is introduced into the aquaculture unit 1 through the liquid pump inside the water treatment tank 3. During this step, water circulation aquaculture is achieved through the liquid guide port 15 and the liquid downline 6;
[0054] During the water circulation treatment process, the aquaculture water is subjected to biological filtration, ozone treatment and ultraviolet sterilization by various water treatment units inside the water treatment box 3 to prevent the water from affecting the growth of tadpoles. At the same time, the aquaculture unit 1 and each pipeline need to be cleaned regularly;
[0055] Step 3: The sensor assembly 11 is used to control environmental indicators such as water temperature, oxygen content, pH value, and ammonia nitrogen concentration, and transmits the data to an external scheduling unit. Through big data analysis, the changing trend of water quality is quickly identified and predicted, thereby creating a breeding environment suitable for tadpole larvae;
[0056] Step 4: Simultaneously, the simulated illumination end 4 is put into use, and the light intensity and light cycle are automatically adjusted according to the biological clock, thereby simulating a breeding environment more suitable for tadpole larvae;
[0057] Step 5: Perform dynamic analysis based on the collected real-time data to predict the demand for tadpole larvae breeding and adjust the working status of various equipment through control algorithms;
[0058] Step 6: Start the feeding end 2 and cooperate with the feed guide line 8 to introduce the feed into the breeding chamber 14 to achieve the tadpole feeding operation;
[0059] Step 7: The size of the tadpoles is monitored in real time through the sensor assembly 11. When the tadpoles reach the growth stage, their range of activity gradually expands, and their demand for water quality, temperature, and oxygen increases. Therefore, the temperature is further increased while the water flow intensity is increased to ensure that the tadpoles can swim autonomously. At the same time, the ammonia nitrogen concentration and oxygen content in the water body also need to be adjusted accordingly.
[0060] Step 8: At this stage, the tadpoles need to gradually adapt to stronger light. Adjust the simulated light end 4 to extend the light time and increase the light intensity.
[0061] Step 9: After the adjustment is completed, feed the tadpoles regularly according to their growth progress and nutritional needs;
[0062] Step 10: When the tadpoles grow to maturity, their adaptability to the environment improves. While adjusting the water temperature, maintain a strong water flow and oxygen supply to enhance the tadpoles' physical strength and immunity.
[0063] It should be noted that the feeding operation is based on the preset feeding program. The system automatically feeds according to the specified time interval and feeding amount. Through real-time data collection, the system continuously tracks the tadpoles' food intake, feed consumption in the pond and environmental changes, and adjusts the feeding strategy based on this data.
[0064] During the incubation stage, the water temperature needs to be controlled at 20-25 degrees Celsius and the humidity at 70-70%. During the growth stage, the water temperature is increased to 23-26 degrees Celsius, and during the maturity stage, the water temperature is increased to 25-28 degrees Celsius.
[0065] The various embodiments in this specification are described in a progressive manner. Similar parts between the various embodiments can be referred to in conjunction with each other. Each embodiment focuses on the differences between the other embodiments. In particular, the system embodiments are described briefly because they are generally similar to the method embodiments. For relevant parts, refer to the description of the method embodiments.
[0066] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. Distributed tadpole breeding workshop, characterized by: include: Breeding units (1), wherein the breeding units (1) can be arranged in a plurality of groups, which together form a breeding workshop; A sensor assembly (11) is provided inside the breeding unit (1), and the sensor assembly (11) is connected to an external scheduling unit via a wireless network to monitor the internal breeding environment state of the breeding unit (1). A simulated lighting end (4) is provided at the upper end of the breeding unit (1); A feeding end (2), wherein tadpole breeding feed is stored inside the feeding end (2) and a feeding pump is provided inside the feeding end; a material guide line (8) is provided between the feeding end (2) and each group of the breeding units (1); the material guide line (8) is connected to the output end of the feeding pump, thereby realizing the feeding operation of the feed; A water treatment tank (3) is provided with a water treatment unit and a liquid pump, and is controlled by an external scheduling unit. A liquid inlet pipeline (5) and a liquid outlet pipeline (6) are provided between the liquid pump inside the water treatment tank (3) and the breeding unit (1). The liquid pump input end is connected to an external waterway, thereby forming water circulation breeding.
2. The distributed tadpole breeding workshop according to claim 1, characterized in that: The liquid inlet pipeline (5), the liquid outlet pipeline (6) and the feed guide pipeline (8) are all fixedly connected with a control valve (7) to control the timing and quantitative introduction of aquaculture water and aquaculture feed. At the same time, the liquid outlet pipeline (6) is built with a filter to prevent tadpoles from entering the water treatment tank (3) with the water flow.
3. The distributed tadpole breeding workshop according to claim 1, characterized in that: The breeding unit (1) is detachably provided with a transverse partition (12) and a vertical partition (13), and the connection between the two is sealed. The breeding unit (1) is provided with a breeding chamber (14) by means of the transverse partition (12) and the vertical partition (13). The sensor assembly (11) is fixedly installed in each group of the breeding chambers (14). The bottom of each group of the culture chambers (14) is provided with a liquid guide port (15), and each group of the liquid guide port (15) is connected to a liquid lowering pipeline (6).
4. The breeding method of the distributed tadpole breeding workshop is characterized in that: The steps include: Step 1: Since the tadpoles in the hatching stage are extremely sensitive to humidity, temperature and water quality, an environment suitable for tadpole culture is required. First, healthy tadpoles in the hatching stage are selected for release. Before release, they need to be monitored and inspected to ensure that they are free of disease and parasites, and then placed in the culture chamber (14); Step 2: The aquaculture water is introduced into the aquaculture unit (1) through the internal liquid pump of the water treatment tank (3). During this step, water circulation aquaculture is achieved through the liquid guide port (15) in conjunction with the liquid downline (6); Step 3: Using the sensor assembly (11), the water temperature, oxygen content, pH value, and ammonia nitrogen concentration are regulated, and the data is transmitted to an external dispatching unit. Through big data analysis, the changing trend of water quality is quickly identified and predicted, thereby forming a breeding environment suitable for tadpole larvae; Step 4: Simultaneously, the simulated illumination end (4) is put into use, and the light intensity and illumination period are automatically adjusted according to the biological clock, thereby simulating a breeding environment more suitable for tadpole larvae; Step 5: Perform dynamic analysis based on the collected real-time data to predict the demand for tadpole larvae breeding and adjust the working status of various equipment through control algorithms; Step 6: Start the feeding end (2) and cooperate with the feed guide line (8) to introduce the feed into the breeding chamber (14) to achieve the tadpole feeding operation; Step 7: The size of the tadpoles is monitored in real time by the sensor assembly (11). When the tadpoles grow to the growth stage, their range of activity gradually expands, and their demand for water quality, temperature and oxygen increases. The temperature is further increased while the water flow intensity is increased to ensure that the tadpoles can swim automatically. At the same time, the ammonia nitrogen concentration and oxygen content in the water body also need to be adjusted accordingly. Step 8: At this stage, the tadpoles need to gradually adapt to stronger light, and the illumination time and intensity can be extended by adjusting the simulated light end (4); Step 9: After the adjustment is completed, feed the tadpoles regularly according to their growth progress and nutritional needs; Step 10: When the tadpoles grow to maturity, their adaptability to the environment improves. While adjusting the water temperature, maintain a strong water flow and oxygen supply to enhance the tadpoles' physical strength and immunity.
5. The breeding method of the distributed tadpole breeding workshop according to claim 4, characterized in that: The feeding operation is specifically based on a preset feeding program. The system automatically feeds according to the specified time interval and feeding amount. Through real-time data collection, the system continuously tracks the tadpoles' food intake, feed consumption in the pond and environmental changes, and adjusts the feeding strategy based on this data.
6. The breeding method of the distributed tadpole breeding workshop according to claim 4, characterized in that: The water temperature in the incubation stage needs to be controlled at 20-25 degrees Celsius and the humidity at 70-70%. The water temperature in the growth stage is increased to 23-26 degrees Celsius, and the water temperature in the maturity stage is increased to 25-28 degrees Celsius.
7. The breeding method of the distributed tadpole breeding workshop according to claim 4, characterized in that: During the water circulation treatment process described in step 2, the aquaculture water is subjected to biological filtration, ozone treatment and ultraviolet sterilization through various water treatment units inside the water treatment box (3) to prevent the water from affecting the growth of tadpoles. At the same time, the aquaculture unit (1) and various pipelines need to be cleaned regularly.