Highly-efficient intelligent energy-saving water-saving type aquaculture environment-friendly warm water-purifying circulating system
A circulatory system and water-saving technology, applied in the field of aquaculture, can solve problems such as metabolic capacity not meeting water quality production requirements, aquaculture ecosystem imbalance, water eutrophication, etc., to achieve reduced water purification efficiency, fast filtration speed, The effect of less energy consumption
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Embodiment 1
[0025] This embodiment provides a high-efficiency, intelligent, energy-saving and water-saving aquaculture environment-friendly, warm, hot and purified water circulation system, the structure of which is as follows: figure 1 Shown, comprise culture pond 1, the first filtration pond 2, the second filtration pond 3, purification pond 4, disinfection pond 5, heating device 6 and water storage pond 7, culture pond 1 water outlet connects water pump 22 water inlets, culture pond 1 is provided with an intelligent spraying device 10, and the intelligent spraying device 10 is connected to a water pipe. 2 is equipped with quartz sand 8, the water outlet of the first filter tank 2 is connected to the water inlet of the second filter tank 3, the second filter tank 3 is provided with an activated carbon filter layer 9, and the water outlet of the second filter tank 2 is connected to the inlet of the purification tank 4 Water outlet, purification pool 4 bottoms are provided with blowdown o...
Embodiment 2
[0034] The structure of this embodiment is the same as that of Embodiment 1, and the difference is that the water inlet and outlet of the first filter tank, the second filter tank, the purification tank and the disinfection tank are all provided with high-performance water purification membranes;
[0035] The high-performance water purification membrane of this embodiment includes a base film layer, a matrix support layer, a microbial preparation layer, and a protective surface layer. The matrix support layer and the microbial preparation layer are sequentially arranged on the base film layer from bottom to top, and are covered by the protective surface layer;
[0036] The bottom film layer is pressed into a porous film with a pore size of 40 μm by an anti-oxidation polyethylene material. The anti-oxidation polyethylene material contains the following components in parts by weight: low-density polyethylene resin: 53 parts, plasticizer: 23 parts, Hydroxy polyphosphate: 8 parts, ...
Embodiment 3
[0041] The structure of this embodiment is the same as that of Embodiment 1, and the difference is that the water inlet and outlet of the first filter tank, the second filter tank, the purification tank and the disinfection tank are all provided with high-performance water purification membranes;
[0042] The high-performance water purification membrane of this embodiment includes a base film layer, a matrix support layer, a microbial preparation layer, and a protective surface layer. The matrix support layer and the microbial preparation layer are sequentially arranged on the base film layer from bottom to top, and are covered by the protective surface layer;
[0043] The bottom film layer is pressed into a porous film with a pore size of 45 μm by an anti-oxidation polyethylene material. The anti-oxidation polyethylene material contains the following components in parts by weight: low-density polyethylene resin: 54 parts, plasticizer 25 parts, hydroxyl Polyphosphate: 9 parts, ...
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Abstract
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