A water quality purifying agent for aquaculture and its preparation method
By embedding nanorod materials and metal capture agents on the surface of porous carbon particles, combining hollow porous carbon microspheres and plant active cells, a composite plant cell additive is formed, which solves the problems of insufficient stability of existing water purifiers for aquaculture and insufficient heavy metal removal capabilities, and achieves efficient and stable water purification effect.
Patent Information
- Application Number
- CN202510499662.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2045-04-21
AI Technical Summary
The existing water quality purifiers for aquaculture have shortcomings in terms of stability and purification effects, especially the limited ability to remove heavy metals, and microorganisms are prone to detachment of ceramic particles, resulting in poor water purification effects.
Compound plant cell additives are used to embed nanorod material on the surface of porous carbon particles and penetrate metal capture agents to form a structure with metal capture agent as the core and composite porous carbon as the shell. Combined with hollow porous carbon microspheres and plant active cells, a stable purifier is formed to enhance the chelation precipitation effect of heavy metals, and structural stability is enhanced through mechanical stirring and ultrasonic treatment.
It improves the stability and purification effect of water purifiers, extends the purification time, avoids secondary pollution of heavy metal ions, protects plant active cells, and achieves effective removal of heavy metals in water.
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Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water purification treatment, and specifically provides a water quality purifying agent for aquaculture and a preparation method thereof. Background Art
[0002] China is a major country in aquaculture. However, with the development of the aquaculture industry, people have overlooked the death or reduction of aquaculture products caused by the decline in the water quality of the aquaculture water. Part of the reason for the death or reduction of aquaculture products is the excessive feeding of bait by people, as well as the unreasonable discharge of some eutrophic substances such as phosphorus that are prone to cause water blooms and red tides. In addition, there are heavy metals, etc. Although there have been great breakthroughs in the physical aspect of aquaculture water treatment in recent years, there are still great defects in chemical agents. At present, in the water treatment in China, coagulants such as potassium ferrate, polyaluminum chloride, polyferric sulfate, non-ionic polyacrylamide, and cationic polyacrylamide are still being used. In addition, there are oxidants and adsorbents such as activated carbon, bromochlorohydantoin, zeolite powder, and diatomite, and oxygen increasing agents such as sodium percarbonate and potassium persulfate. Although these chemical agents have good treatment effects, they have limitations and pertinence: coagulants can only coagulate and have a long action cycle, flocculants can only flocculate, the amount of oxidant is small and ineffective, and a large amount will cause phytotoxicity. Although the adsorbent has no phytotoxicity, a large amount is used, and the oxygen increasing agent can only increase oxygen.
[0003] For example, Chinese Patent CN107673481B discloses a water quality purifying agent for aquaculture water and a preparation method thereof. By culturing photosynthetic bacteria, denitrifying bacteria, and bacillus in a culture medium containing porous SiC ceramic particles, a water quality purifying agent for aquaculture water is prepared by enriching microorganisms on the porous SiC ceramic particles. Although this water quality purifying agent for aquaculture water has good effects in aspects such as water quality purification and disease prevention in the aquaculture water, since the microorganisms are enriched on the porous structure of silicon carbide ceramic particles, the enrichment stability is poor. In the water body, under the action of water flow, it is easy to cause the enriched microorganisms to break away from the ceramic particles, resulting in the loss of microorganisms with water, thereby affecting the water purification effect. Moreover, this water quality purifying agent can only degrade nitrite, ammonia nitrogen, active phosphorus, etc. in the water body, and cannot remove heavy metals in the water body. Therefore, the improvement effect on the water body is general and cannot meet the needs of modern aquaculture. Summary of the Invention
[0004] Aiming at the problems existing in the prior art, the purpose of the present invention is to provide a water quality purifying agent for aquaculture and a preparation method thereof.
[0005] To achieve the above purpose, the present invention provides the following technical solutions:
[0006] An aquaculture water quality purifier, the water quality purifier comprising the following components in parts by weight: 15-25 parts of potassium monopersulfate compound salt, 5-8 parts of citric acid, 1-5 parts of humic acid, 2-6 parts of sodium carbonate, 0.1-0.5 parts of magnesium carbonate, 1-3 parts of sodium hexametaphosphate, 1-5 parts of probiotics, 0.03-0.08 parts of polyethylene glycol, 5-10 parts of sodium sulfate, 10-16 parts of a composite plant cell additive, 0.2-0.7 parts of plant active ingredients, and 20-30 parts of water;
[0007] The plant active ingredients are composed of aloe polysaccharide and saponin in a mass ratio of 1:(1.0-1.6);
[0008] The preparation method of the composite plant cell additive is as follows:
[0009] S1 Embed nanorod materials on the surface of porous carbon particles to obtain a composite nanomaterial, and then use the vacuum impregnation method to infiltrate a metal scavenger into the composite nanomaterial to obtain a metal scavenger material;
[0010] S2 Use hollow porous carbon microspheres as the matrix, and through a hydrothermal reaction, deposit nanowires on the matrix to obtain a composite porous carbon. Then, with the metal scavenger material as the core and the composite porous carbon as the shell, by means of mechanical stirring, make the composite porous carbon cover the surface of the metal scavenger material to obtain a composite carrier material;
[0011] S3 Immobilize plant algal cells on the composite carrier material and wash them by oscillation with distilled water to obtain the composite plant cell additive.
[0012] As a further preferred method of the present invention, in the above S1, the specific operation steps are as follows:
[0013] According to the mass ratio of the metal scavenger to the composite nanomaterial of 1:(10-18), first place the composite nanomaterial in a vacuum impregnation tank, evacuate to 50-100 Pa, and maintain for 10-20 min. Then add the metal scavenger to deionized water, fully stir and inject it into the vacuum impregnation tank, evacuate to 10-60 Pa and maintain for 20-30 min. After the treatment is completed, slowly release the pressure to normal pressure, and through centrifugal separation, the metal scavenger material can be obtained;
[0014] Among them, the metal scavenger is selected from at least one of polyaluminum chloride, polyacrylamide, and dithiocarbamic acid.
[0015] As a further preferred method of the present invention, in the above S2, the specific operation steps are as follows:
[0016] According to the mass ratio of the composite porous carbon to the metal scavenger material being 1:(2 - 3), first disperse the metal scavenger material in deionized water and stir it at a rotation speed of 800 - 1000 r / min for 1 - 2 h. By means of the mutual intercalation of the nanorod materials, the metal scavenger materials are agglomerated and connected together to form aggregates. Then add the composite porous carbon and continue to stir for 1 - 2 h. After the treatment is completed, perform centrifugal separation. At this time, through secondary stirring, the nanowires deposited on the composite porous carbon will wind around the nanorods of the aggregates, causing the composite porous carbon to cover the surface of the aggregates, thereby forming a composite carrier material with the metal scavenger material as the core and the composite porous carbon as the shell.
[0017] As a further preferred method of the present invention, in the above S3, the specific operation steps are as follows:
[0018] 1) According to the parts by weight, uniformly mix 4 - 7 parts of Chlorella pyrenoidosa cells, 6 - 10 parts of Anabaena cells, 6 - 10 parts of a 2% calcium alginate solution, and 10 - 18 parts of the composite carrier material to obtain a mixture;
[0019] 2) At a position 20 - 25 cm above the liquid surface of the pre-cooled 0.1 - 0.2 mol / L calcium chloride solution, drop the mixture into the calcium chloride solution, gel it at 4 - 5 °C for 8 - 10 h, take out the particles and put them into a shaker with filter holes at the bottom, and rinse them with distilled water for 20 - 30 min under the oscillation of 300 - 500 r / min to obtain the composite plant cell additive;
[0020] Among them, the preparation of Chlorella pyrenoidosa: According to the parts by weight, inoculate 5 - 10 parts of Chlorella pyrenoidosa seeds into an Erlenmeyer flask containing 15 - 30 parts of SE medium, culture it at a temperature of 24 °C, with 10 - 13 h of light, 10 - 13 h of no light, and a light intensity of 1900 lx. Centrifuge the Chlorella pyrenoidosa in the logarithmic phase at 3800 - 4000 r / min for 14 - 16 min, discard the supernatant to obtain Chlorella pyrenoidosa cells, and the process is aseptic operation;
[0021] Under this condition, the growth rate of Chlorella pyrenoidosa cells is the fastest, the obtained Chlorella pyrenoidosa cells have a high yield, high activity, and strong absorption ability for ammonia nitrogen in water;
[0022] The preparation of Anabaena: According to the parts by weight, inoculate 8 - 12 parts of Anabaena seeds into an Erlenmeyer flask containing 15 - 25 parts of SE medium, culture it at a temperature of 24 °C, with 12 - 15 h of light, 12 - 15 h of no light, and a light intensity of 2300 lx. Centrifuge the Anabaena in the logarithmic phase at 3800 - 4000 r / min for 14 - 16 min, discard the supernatant to obtain Anabaena cells, and the process is aseptic operation;
[0023] Under this condition, the growth rate of Anabaena cells is the fastest, and the obtained Anabaena cells have high yield, high activity, and strong absorption capacity for nitrates and nitrites in water bodies.
[0024] As a further preferred embodiment of the present invention, the preparation method of the composite nanomaterial is as follows:
[0025] 1) Add titanium dioxide nanopowder to an aqueous sodium hydroxide solution, stir well, transfer to a reaction kettle, react at 150 - 160 °C for 45 - 50 h, cool to room temperature, then filter by suction, wash repeatedly with dilute hydrochloric acid and deionized water, and dry to obtain nanorod materials;
[0026] 2) Disperse porous carbon particles in deionized water to obtain a dispersion, then add nanorod materials, mechanically stir at a rotation speed of 800 - 1000 r / min for 1 - 2 h, then perform ultrasonic treatment at 500 - 800 W for 1 - 2 h. After the treatment is completed, centrifuge the product and dry to obtain the composite nanomaterial.
[0027] As a further preferred embodiment of the present invention, the ratio of the titanium dioxide nanopowder to the aqueous sodium hydroxide solution is (1.5 - 3.0) g : (100 - 200) mL;
[0028] The aqueous sodium hydroxide solution has a concentration of 12 - 13 mol / L;
[0029] The ratio of the porous carbon particles, deionized water, and nanorod materials is (3 - 8) g : (500 - 700) mL : (0.5 - 1.0) g.
[0030] As a further preferred embodiment of the present invention, the preparation method of the porous carbon particles is as follows:
[0031] 1) Dissolve cobalt chloride in deionized water, then add polyacrylic acid type cation exchange resin, place in an oil bath at 80 - 85 °C and stir to evaporate to dryness, then place in an oven at 80 - 90 °C to completely dry, load into a ball milling tank, and grind at a rotation speed of 300 - 500 r / min for 2 - 5 h to obtain a sieved product for standby;
[0032] 2) Add calcium hydroxide to deionized water, stir well, add the sieved product, place in an oil bath at 80 - 85 °C and stir to evaporate to dryness, then place in an oven at 80 - 90 °C to completely dry. Then weigh potassium hydroxide and dissolve it in absolute ethanol, stir until completely dissolved, add the above sample, place in an oil bath at 80 - 85 °C and stir to evaporate to dryness, then place in an oven at 80 - 90 °C to completely dry;
[0033] 3) Place the dried product in a porcelain boat and put it in a tube furnace filled with an argon atmosphere. Heat it from room temperature to 800 - 830 °C at a rate of 2 - 3 °C / min and hold for 2 - 3 h. After the treatment is completed, take out the product from the tube furnace, carry out acid washing and then suction filtration. Wash it until neutral and then dry it. After ultra-fine pulverization and grinding, three-dimensional porous carbon particles are obtained.
[0034] As a further preferred embodiment of the present invention, the mass ratio of cobalt chloride to polyacrylic acid type cation exchange resin is (1 - 2):(10 - 20);
[0035] The ratio of calcium hydroxide, deionized water, sieved product, potassium hydroxide, and absolute ethanol is (6 - 10) g:(12 - 20) mL:(3 - 5) g:(3 - 5) g:(6 - 10) mL.
[0036] As a further preferred embodiment of the present invention, the preparation method of the composite porous carbon is as follows:
[0037] 1) Add sucrose to deionized water, stir until uniform, then add stannic chloride and sodium dodecyl sulfate thereto respectively and stir well. Then transfer the solution to a high-pressure hydrothermal reaction kettle and react at 190 - 195 °C for 24 - 30 h. After the reaction is completed, wash it repeatedly with deionized water and ethanol alternately and dry it at 80 - 85 °C for 6 - 10 h to obtain composite microspheres;
[0038] 2) Take the composite microspheres, mix them with hydrochloric acid solution, stir evenly, then transfer the mixture to a high-pressure hydrothermal reaction kettle and react at 190 - 195 °C for 24 - 30 h. After the reaction is completed, wait for it to cool to room temperature, wash it with deionized water until the filtrate is neutral, collect the filter cake and dry it at 80 - 85 °C for 6 - 10 h to obtain hollow porous carbon microspheres;
[0039] 3) Measure oleic acid and absolute ethanol, stir and mix them well to obtain an oleic acid - ethanol mixed solution. Then add a sodium hydroxide solution with a concentration of 50 - 70 g / L, a calcium chloride solution with a concentration of 17 - 20 g / L, and a sodium dihydrogen phosphate solution with a concentration of 23 - 28 g / L to the oleic acid - ethanol mixed solution in sequence. The dropping rate is 30 - 40 drops / min. Stir for 10 - 30 min after each solution is added to obtain a reaction solution;
[0040] 4) According to the solid - liquid ratio of 1:(30 - 50) g / mL, add the hollow porous carbon microspheres to the reaction solution, stir well, then transfer it to a reaction kettle and react at 180 - 185 °C for 20 - 25 h under the ultrasonic action of 200 - 300 W. After the reaction is completed, centrifuge and separate the product, and dry it to obtain the composite porous carbon.
[0041] As a further preferred embodiment of the present invention, the ratio of sucrose, deionized water, tin tetrachloride, and sodium dodecyl sulfate is (8.5 - 15.0) g : (50 - 120) mL : (8.7 - 14.6) g : (0.4 - 1.2) g;
[0042] The ratio of the composite microspheres to the hydrochloric acid solution is (2 - 5) g : (60 - 150) mL;
[0043] The hydrochloric acid solution has a concentration of 7 - 10 wt%;
[0044] The volume ratio of oleic acid, absolute ethanol, sodium hydroxide solution, calcium chloride solution, and sodium dihydrogen phosphate solution is (8 - 12) : (9 - 15) : (10 - 20) : (10 - 20) : (10 - 20).
[0045] A preparation method of a water quality purifying agent for aquaculture specifically includes the following steps:
[0046] S1 By weight, take potassium peroxymonosulfate compound salt, add citric acid and humic acid under stirring, and mix evenly to obtain mixture A;
[0047] S2 Add sodium carbonate, magnesium carbonate, sodium sulfate, and a composite plant cell additive to mixture A, stir evenly, then add sodium hexametaphosphate and polyethylene glycol, and continue to stir evenly to obtain mixture B;
[0048] S3 First dissolve the probiotic in water at 35 - 45 °C, add the plant active ingredient under stirring, mix evenly, and then add it to mixture B, and stir evenly to obtain the water quality purifying agent.
[0049] Compared with the prior art, the beneficial effects of the present invention are:
[0050] In the present invention, an intermediate is obtained by an ion exchange reaction between a polyacrylic acid type cation exchange resin and cobalt chloride. The transition metal cobalt ions therein can play a catalytic role, enabling the subsequent resin to obtain a higher degree of graphitization during the carbonization process. Then, potassium hydroxide and calcium hydroxide are added to the intermediate as chemical activation pore-forming agents, and after heat treatment, three-dimensional porous carbon particles are obtained. These porous carbon particles have a high porosity and a large specific surface area. As a framework matrix, they can buffer the collision impact force under mechanical stirring and ultrasonic action and maintain the integrity of the structure. Then, using titanium dioxide nanopowder as a raw material, a nanorod material is synthesized, and through mechanical stirring and ultrasonic treatment, the nanorod material can be embedded into the pores of the porous carbon particles, thereby forming a raised "burr" - like structure on the surface of the porous carbon particles. The raised "burr" - like structures can be connected together by inter - insertion with each other subsequently, so that the porous carbon particles form an aggregated aggregate. By means of vacuum impregnation, a metal scavenger is infiltrated into the synthesized composite nanomaterial to generate a metal scavenger material. Through the method of vacuum pumping, it can promote the infiltration of the metal scavenger deep into the pores of the composite nanomaterial. During the subsequent water purification process, under the capillary action of the porous carbon particles, heavy metal ions in the water body will migrate into it and undergo a chelation precipitation reaction with the metal scavenger, generating large - granular chelation precipitates that are insoluble in water. And due to the action of mechanical stirring and ultrasonic treatment, the depth of the embedding of the nanorod material into the pores of the porous carbon particles will increase. As a result, the part of the nanorod material that penetrates into the pores of the porous carbon particles will have a certain blocking effect on the movement of the large - granular chelation precipitates. Under the restrictive action of the nanorod material, the chelation precipitates are not easily detached from the pores, thus avoiding the secondary pollution of the water body after the metal ions are adsorbed and chelated.
[0051] Secondly, in order to provide a good carrier material for the immobilization of plant algal cells, in the present invention, sucrose is used as a carbon source, and hollow porous carbon microspheres are synthesized by hydrothermal reaction. Taking the hollow porous carbon microspheres as the matrix material, the nanowires generated by the hydrothermal reaction are deposited on the matrix. And because the matrix has a porous structure, one end of the deposited nanowires will be embedded in the pores, thus forming a firm structure with the hollow porous carbon microspheres to generate a composite porous carbon. Then, by mechanical stirring, the metal scavenger material is dispersed in deionized water. Through high-speed stirring, the metal scavenger materials are connected together by the interlocking of the "burr"-like structures protruding from the surface to form an aggregated aggregate. Then, the composite porous carbon is added. Through high-speed stirring, the nanowires deposited on the composite porous carbon will wind around the nanorods of the aggregate, so that the composite porous carbon covers the surface of the aggregate, thus forming a composite carrier material with the metal scavenger material as the core and the composite porous carbon as the shell. By combining the two, the migration path of the chelated precipitate in the core is increased, and its migration time is prolonged, so that the chelated precipitate is more difficult to break away. Then, the plant active cells composed of Chlorella pyrenoidosa cells and Anabaena cells are gelated and immobilized in the composite carrier material to obtain a composite plant cell additive. And because there are a large number of nanowires on the surface of the composite carrier material, it can wrap the gelated plant active cells. On the one hand, it improves the firmness of the attachment of the plant active cells, and at the same time can play a protective role, isolating the direct contact between the plant active cells and microorganisms and phosphates, and avoiding the damage of microorganisms and phosphates to the plant active cells. Finally, by rinsing with distilled water under oscillating conditions, the plant active cells that are not firmly attached to the composite carrier material can be washed away, thus exposing the pores on the composite carrier material, providing a smooth pore channel for the migration of heavy metals during the water purification process.
[0052] In the water purifying agent of the present invention, through the scientific compounding of various active ingredients, the physical treatment and chemical treatment purification act synergistically, making its water purification effect more prominent. And the specially added composite plant cell additive, by confining the metal scavenger inside the pores and wrapping the gelated plant active cells, makes it difficult for metal ions to break away from the pores after chelation precipitation, avoiding the secondary pollution of the water body caused by metal ions after being adsorbed and chelated. At the same time, it also avoids the damage of microorganisms and phosphates to the plant active cells, thus making the water purifying agent more stable, prolonging the efficacy time, and having good economic benefits. Detailed implementation mode
[0053] The technical solutions in the embodiments of the present invention will be clearly and completely described below. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0054] In the embodiments of the present invention, the preparation of Chlorella pyrenoidosa: By weight, 5 parts of Chlorella pyrenoidosa seeds are inoculated into an Erlenmeyer flask containing 15 parts of SE medium, and cultured at a temperature of 24 °C, with 10 hours of light, 10 hours of no light, and a light intensity of 1900 lx. The Chlorella pyrenoidosa in the logarithmic phase is centrifuged at 4000 r / min for 15 minutes, and the supernatant is discarded to obtain Chlorella pyrenoidosa cells. The process is aseptic operation.
[0055] The preparation of Anabaena: By weight, 10 parts of Anabaena seeds are inoculated into an Erlenmeyer flask containing 20 parts of SE medium, and cultured at a temperature of 24 °C, with 15 hours of light, 15 hours of no light, and a light intensity of 2300 lx. The Anabaena in the logarithmic phase is centrifuged at 4000 r / min for 14 minutes, and the supernatant is discarded to obtain Anabaena cells. The process is aseptic operation.
[0056] The plant active ingredient is composed of aloe polysaccharide and saponin in a mass ratio of 1:1.2.
[0057] Example 1
[0058] An aquaculture water quality purifier, which contains the following components by weight: 15 parts of potassium monopersulfate compound salt, 5 parts of citric acid, 1 part of humic acid, 2 parts of sodium carbonate, 0.1 part of magnesium carbonate, 1 part of sodium hexametaphosphate, 1 part of probiotic, 0.03 part of polyethylene glycol, 5 parts of sodium sulfate, 10 parts of compound plant cell additive, 0.2 part of plant active ingredient, and 20 parts of water;
[0059] The preparation method of the water quality purifier specifically includes the following steps:
[0060] S1 By weight, take potassium monopersulfate compound salt, add citric acid and humic acid under stirring, and mix evenly to obtain mixture A;
[0061] S2 Add sodium carbonate, magnesium carbonate, sodium sulfate, and compound plant cell additive to mixture A, stir evenly, then add sodium hexametaphosphate and polyethylene glycol, and continue to stir evenly to obtain mixture B;
[0062] S3 First dissolve the probiotic in water at 35 °C, add the plant active ingredient under stirring, mix evenly, and then add it to mixture B, and stir evenly to obtain the water quality purifier.
[0063] Among them, for the composite plant cell additive, its preparation method is as follows:
[0064] S1 According to the mass ratio of the metal scavenger to the composite nanomaterial being 1:10, first place the composite nanomaterial in a vacuum impregnation tank, evacuate to 50 Pa, and maintain for 10 min. Then add the metal scavenger to deionized water, fully stir and inject it into the vacuum impregnation tank, evacuate to 10 Pa and maintain for 20 min. After the treatment is completed, slowly release the pressure to atmospheric pressure, and after centrifugal separation, the metal scavenger material can be obtained;
[0065] Among them, the metal scavenger selects polyaluminum chloride;
[0066] Among them, for the composite nanomaterial, its preparation method is as follows:
[0067] 1) Dissolve 1 g of cobalt chloride in deionized water, then add 10 g of polyacrylic acid type cation exchange resin, place it in an 80 °C oil bath and stir to dryness, then place it in an 80 °C oven to dry completely, put it into a ball mill tank, and grind at a speed of 300 r / min for 2 h to obtain a sieved product for standby;
[0068] 2) Add 6 g of calcium hydroxide to 12 mL of deionized water, stir evenly, then add 3 g of the sieved product, place it in an 80 °C oil bath and stir to dryness, then place it in an 80 °C oven to dry completely. Then weigh 3 g of potassium hydroxide and dissolve it in 6 mL of absolute ethanol, stir until completely dissolved, add the above sample, place it in an 80 °C oil bath and stir to dryness, then place it in an 80 °C oven to dry completely;
[0069] 3) Put the dried product into a porcelain boat, place it in a tubular furnace filled with an argon atmosphere, heat from room temperature to 800 °C at a rate of 2 °C / min, and keep it warm for 2 h. After the treatment is completed, take out the product from the tubular furnace, perform acid washing and then suction filtration, wash until neutral and then dry, and obtain three-dimensional porous carbon particles through ultrafine pulverization and grinding;
[0070] 4) Add 1.5 g of titanium dioxide nanopowder to 100 mL of sodium hydroxide aqueous solution with a concentration of 12 mol / L, fully stir evenly and transfer it to a reaction kettle, react at 150 °C for 45 h, cool to room temperature and then perform suction filtration, and repeatedly wash with dilute hydrochloric acid and deionized water, and obtain nanorod materials after drying;
[0071] 5) Disperse 3 g of porous carbon particles in 500 mL of deionized water to obtain a dispersion liquid, then add 0.5 g of nanorod materials, mechanically stir at a speed of 800 r / min for 1 h, and then perform ultrasonic treatment at 500 W for 1 h. After the treatment is completed, centrifuge the product and dry it to obtain the composite nanomaterial;
[0072] S2 According to the mass ratio of the composite porous carbon to the metal scavenger material being 1:2, first disperse the metal scavenger material in deionized water, stir at a rotation speed of 800 r / min for 1 h, then add the composite porous carbon, continue to stir for 1 h, and after the treatment is completed, perform centrifugal separation to obtain the composite carrier material;
[0073] Among them, for the composite porous carbon, its preparation method is as follows:
[0074] 1) Add 8.5 g of sucrose to 50 mL of deionized water, stir until uniform, then add 8.7 g of tin tetrachloride and 0.4 g of sodium dodecyl sulfate thereto respectively, and stir well. Then transfer the solution to a high-pressure hydrothermal reaction kettle, react at 190 °C for 24 h. After the reaction is completed, wash repeatedly with deionized water and ethanol alternately, and dry at 80 °C for 6 h to obtain composite microspheres;
[0075] 2) Take 2 g of the composite microspheres, mix them with 60 mL of a hydrochloric acid solution with a concentration of 7 wt%, stir evenly, transfer the mixture to a high-pressure hydrothermal reaction kettle, react at 190 °C for 24 h. After the reaction is completed, wait for it to cool to room temperature, wash with deionized water until the filtrate is neutral, collect the filter cake and dry at 80 °C for 6 h to obtain hollow porous carbon microspheres;
[0076] 3) Measure 8 mL of oleic acid and 9 mL of absolute ethanol, stir and mix them well to obtain an oleic acid-ethanol mixed solution. Then add 10 mL of a sodium hydroxide solution with a concentration of 50 g / L, 10 mL of a calcium chloride solution with a concentration of 17 g / L, and 10 mL of a sodium dihydrogen phosphate solution with a concentration of 23 g / L to the oleic acid-ethanol mixed solution in sequence, with a dropping speed of 30 drops / min. Stir for 10 min after each solution is added dropwise to obtain a reaction solution;
[0077] 4) According to the solid-liquid ratio of 1:30 g / mL, add the hollow porous carbon microspheres to the reaction solution, stir well, transfer to a reaction kettle, react at 180 °C for 20 h under the ultrasonic action of 200 W. After the reaction is completed, centrifuge and separate the product, and dry it to obtain the composite porous carbon;
[0078] S3 By weight, uniformly mix 4 parts of Chlorella pyrenoidosa cells, 6 parts of Anabaena cells, 6 parts of a calcium alginate solution with a mass fraction of 2%, and 10 parts of the composite carrier material to obtain a mixture. Then, at a position 20 cm above the liquid surface of the pre-cooled 0.1 mol / L calcium chloride solution, drop the mixture into the calcium chloride solution, gel at 4 °C for 8 h, take out the particles and put them into a shaker with filter holes at the bottom, and rinse with distilled water for 20 min at an oscillation speed of 300 r / min to obtain the composite plant cell additive.
[0079] Example 2
[0080] An aquaculture water quality purifier, which contains the following components in parts by weight: 20 parts of potassium monopersulfate compound salt, 7 parts of citric acid, 3 parts of humic acid, 5 parts of sodium carbonate, 0.3 part of magnesium carbonate, 2 parts of sodium hexametaphosphate, 3 parts of probiotics, 0.05 part of polyethylene glycol, 7 parts of sodium sulfate, 15 parts of compound plant cell additive, 0.5 part of plant active ingredient, and 25 parts of water;
[0081] The preparation method of the water quality purifier specifically includes the following steps:
[0082] S1 According to the parts by weight, take potassium monopersulfate compound salt, and add citric acid and humic acid under stirring, and mix evenly to obtain mixture A;
[0083] S2 Add sodium carbonate, magnesium carbonate, sodium sulfate, and compound plant cell additive to mixture A, stir evenly, then add sodium hexametaphosphate and polyethylene glycol, and continue to stir evenly to obtain mixture B;
[0084] S3 First dissolve the probiotics in water at 40 °C, add the plant active ingredient under stirring, mix evenly, and then add it to mixture B, and stir evenly to obtain the water quality purifier.
[0085] Among them, the preparation method of the compound plant cell additive is as follows:
[0086] S1 According to the mass ratio of the metal scavenger to the composite nanomaterial of 1:15, first place the composite nanomaterial in a vacuum impregnation tank, evacuate to 80 Pa, and maintain for 15 min. Then add the metal scavenger to deionized water, stir well and inject it into the vacuum impregnation tank, evacuate to 50 Pa and maintain for 25 min. After the treatment is completed, slowly release the pressure to normal pressure, and perform centrifugal separation to obtain the metal scavenger material;
[0087] Among them, the metal scavenger is selected as polyaluminum chloride;
[0088] Among them, the preparation method of the composite nanomaterial is as follows:
[0089] 1) Dissolve 1.5 g of cobalt chloride in deionized water, then add 15 g of polyacrylic acid type cation exchange resin, place it in an oil bath at 83 °C and stir to dry, then place it in an oven at 85 °C to completely dry, put it into a ball milling tank, and grind at a rotation speed of 400 r / min for 3 h to obtain a sieved product for standby;
[0090] 2) Add 8g of calcium hydroxide to 15mL of deionized water, stir well, add 4g of the sieved product, place in an 83℃ oil bath, stir and evaporate to dryness, then place in an 85℃ oven to completely dry, weigh 4g of potassium hydroxide and dissolve in 8mL of anhydrous ethanol, stir until completely dissolved, add the above sample, place in an 83℃ oil bath, stir and evaporate to dryness, then place in an 85℃ oven to completely dry;
[0091] 3) The dried product is placed in a porcelain boat, placed in a tubular furnace filled with argon atmosphere, heated from room temperature to 820°C at a rate of 3°C / min, and kept warm for 2.5 hours. After the treatment is completed, the product is taken out of the tubular furnace, acid-washed and filtered, washed to neutrality and then dried, and ultrafine ground to obtain porous carbon particles with a three-dimensional structure;
[0092] 4) Add 2.6 g of titanium dioxide nanopowder to 170 mL of 12.5 mol / L sodium hydroxide aqueous solution, stir well and transfer to a reactor, react at 155 °C for 47 h, cool to room temperature and filter, wash repeatedly with dilute hydrochloric acid and deionized water, and dry to obtain nanorod material;
[0093] 5) Disperse 5 g of porous carbon particles in 600 mL of deionized water to obtain a dispersion, then add 0.8 g of nanorod material, stir mechanically at a speed of 900 r / min for 1.5 h, and then treat with 600 W ultrasound for 1.5 h. After the treatment, centrifuge the product and dry it to obtain a composite nanomaterial;
[0094] S2: According to the mass ratio of the composite porous carbon and the metal scavenger material of 1:2.5, the metal scavenger material is first dispersed in deionized water, and stirred at a speed of 900r / min for 1.5h, and then the composite porous carbon is added, and stirring is continued for 1.5h. After the treatment is completed, centrifugal separation is performed to obtain a composite carrier material;
[0095] Among them, the composite porous carbon is prepared by the following method:
[0096] 1) Add 12.5 g of sucrose to 86 mL of deionized water, stir until uniform, then add 13.0 g of tin tetrachloride and 0.9 g of sodium dodecyl sulfate respectively, stir thoroughly, then transfer the solution to a high-pressure hydrothermal reactor, react at 192 ° C for 28 h, and after the reaction is completed, wash with deionized water and ethanol alternately, and dry at 83 ° C for 8 h to obtain composite microspheres;
[0097] 2) Take 3 g of composite microspheres, mix with 90 mL of 8 wt% hydrochloric acid solution, stir evenly, move the mixture into a high-pressure hydrothermal reactor, react at 192 ° C for 28 h, and after the reaction is completed, wait for it to cool to room temperature, and wash with deionized water until the filtrate is neutral. Collect the filter cake and dry it at 83 ° C for 8 h to obtain hollow porous carbon microspheres;
[0098] 3) 10 mL of oleic acid and 13 mL of anhydrous ethanol were weighed and mixed to obtain an oleic acid-ethanol mixed solution, and then 15 mL of a 60 g / L sodium hydroxide solution, 15 mL of a 18 g / L calcium chloride solution, and 15 mL of a 25 g / L sodium dihydrogen phosphate solution were added to the oleic acid-ethanol mixed solution in sequence at a dropping rate of 35 drops / min. After each solution was added, it was stirred for 20 minutes to obtain a reaction solution;
[0099] 4) Add hollow porous carbon microspheres to the reaction solution at a solid-liquid ratio of 1:40 g / mL, stir thoroughly, transfer to a reactor, react at 183°C for 24 hours under 260W ultrasound, centrifuge the product after the reaction is complete, and dry to obtain composite porous carbon;
[0100] S3: According to weight proportions, 5 parts of Chlorella pyrenoidosa cells, 8 parts of Anabaena cells, 8 parts of 2% calcium alginate solution, and 15 parts of composite carrier materials are uniformly mixed to obtain a mixture, and then the mixture is dripped into a pre-cooled 0.2 mol / L calcium chloride solution at a distance of 25 cm from the liquid surface, and gelled at 5°C for 10 hours. The particles are taken out and placed in a shaking incubator with a filter hole at the bottom, and washed with distilled water for 25 minutes under shaking at 400 r / min to obtain a composite plant cell additive.
[0101] Example 3
[0102] A water purifier for aquaculture, comprising the following components in parts by weight: 25 parts of potassium permonosulfate composite salt, 8 parts of citric acid, 5 parts of humic acid, 6 parts of sodium carbonate, 0.5 parts of magnesium carbonate, 3 parts of sodium hexametaphosphate, 5 parts of probiotics, 0.08 parts of polyethylene glycol, 10 parts of sodium sulfate, 16 parts of composite plant cell additives, 0.7 parts of plant active ingredients, and 30 parts of water;
[0103] The preparation method of the water purifier specifically comprises the following steps:
[0104] S1: taking potassium persulfate composite salt in parts by weight, adding citric acid and humic acid under stirring, and mixing evenly to obtain a mixture A;
[0105] S2 Add sodium carbonate, magnesium carbonate, Glauber's salt, and a composite plant cell additive to mixture A. After stirring evenly, add sodium hexametaphosphate and polyethylene glycol, and continue to stir evenly to obtain mixture B;
[0106] S3 First dissolve the probiotic in water at 45 °C, add the plant active ingredients under stirring, mix evenly, and then add to mixture B. Stir well to obtain the water purifying agent.
[0107] Among them, the preparation method of the composite plant cell additive is as follows:
[0108] S1 According to the mass ratio of the metal scavenger to the composite nanomaterial being 1:18, first place the composite nanomaterial in a vacuum impregnation tank, evacuate to 100 Pa, and maintain for 20 min. Then add the metal scavenger to deionized water, stir well and inject it into the vacuum impregnation tank, evacuate to 60 Pa and maintain for 30 min. After the treatment is completed, slowly release the pressure to atmospheric pressure, and obtain the metal scavenger material through centrifugal separation;
[0109] Among them, the metal scavenger selects polyaluminum chloride;
[0110] Among them, the preparation method of the composite nanomaterial is as follows:
[0111] 1) Dissolve 2 g of cobalt chloride in deionized water, then add 20 g of polyacrylic acid type cation exchange resin, place it in an 85 °C oil bath and stir to dry, then place it in a 90 °C oven to completely dry, put it into a ball mill tank, and grind at a speed of 500 r / min for 5 h to obtain a sieved product for standby;
[0112] 2) Add 10 g of calcium hydroxide to 20 mL of deionized water, stir evenly, add 5 g of the sieved product, place it in an 85 °C oil bath and stir to dry, then place it in a 90 °C oven to completely dry. Weigh 5 g of potassium hydroxide and dissolve it in 10 mL of absolute ethanol, stir until completely dissolved, add the above sample, place it in an 85 °C oil bath and stir to dry, then place it in a 90 °C oven to completely dry;
[0113] 3) Put the dried product into a porcelain boat, place it in a tube furnace filled with an argon atmosphere, heat from room temperature to 830 °C at a rate of 3 °C / min, and keep it warm for 3 h. After the treatment is completed, take out the product from the tube furnace, perform acid washing and then suction filtration, wash until neutral and then dry, and obtain three-dimensional porous carbon particles through ultrafine pulverization and grinding;
[0114] 4) Add 3 g of titanium dioxide nanopowder to 200 mL of an aqueous sodium hydroxide solution with a concentration of 13 mol / L. After stirring well, transfer it to a reaction kettle and react at 160 °C for 50 h. After cooling to room temperature, filter it by suction, wash it repeatedly with dilute hydrochloric acid and deionized water, and dry it to obtain a nanorod material;
[0115] 5) Disperse 8 g of porous carbon particles in 700 mL of deionized water to obtain a dispersion liquid. Then add 1 g of the nanorod material and mechanically stir it at a speed of 1000 r / min for 2 h. Then, ultrasonically treat it with 800 W for 2 h. After the treatment is completed, centrifuge the product and dry it to obtain the composite nanomaterial;
[0116] S2 According to the mass ratio of the composite porous carbon to the metal scavenger material of 1:3, first disperse the metal scavenger material in deionized water and stir it at a speed of 1000 r / min for 2 h. Then add the composite porous carbon and continue to stir for 2 h. After the treatment is completed, perform centrifugal separation to obtain the composite carrier material;
[0117] Among them, the preparation method of the composite porous carbon is as follows:
[0118] 1) Add 15 g of sucrose to 120 mL of deionized water. After stirring until uniform, add 14.6 g of tin tetrachloride and 1.2 g of sodium dodecyl sulfate to it respectively, and stir well. Then transfer the solution to a high-pressure hydrothermal reaction kettle and react at 195 °C for 30 h. After the reaction is completed, wash it alternately with deionized water and ethanol repeatedly, and dry it at 85 °C for 10 h to obtain composite microspheres;
[0119] 2) Take 5 g of the composite microspheres and mix them with 150 mL of a hydrochloric acid solution with a concentration of 10 wt%. After stirring evenly, transfer the mixture to a high-pressure hydrothermal reaction kettle and react at 195 °C for 30 h. After the reaction is completed, wait for it to cool to room temperature, and wash it with deionized water until the filtrate is neutral. Collect the filter cake and dry it at 85 °C for 10 h to obtain hollow porous carbon microspheres;
[0120] 3) Measure 12 mL of oleic acid and 15 mL of absolute ethanol, stir and mix them well to obtain an oleic acid-ethanol mixed solution. Then add 20 mL of a sodium hydroxide solution with a concentration of 70 g / L, 20 mL of a calcium chloride solution with a concentration of 20 g / L, and 20 mL of a sodium dihydrogen phosphate solution with a concentration of 28 g / L to the oleic acid-ethanol mixed solution in sequence. The dropping speed is 40 drops / min. Stir for 30 min after each solution is added dropwise to obtain a reaction solution;
[0121] 4) Add hollow porous carbon microspheres to the reaction solution at a solid-liquid ratio of 1:50 g / mL, stir thoroughly, transfer to a reactor, react at 185°C for 25 h under 300 W ultrasound, centrifuge the product after the reaction is complete, and dry to obtain composite porous carbon;
[0122] S3: According to weight proportions, 7 parts of Chlorella proteoglycans cells, 10 parts of Anabaena cells, 10 parts of 2% calcium alginate solution, and 18 parts of composite carrier materials are uniformly mixed to obtain a mixture, and then the mixture is dripped into a pre-cooled 0.2 mol / L calcium chloride solution at a distance of 25 cm from the liquid surface, and gelled at 5°C for 10 hours. The particles are taken out and placed in a shaking incubator with a filter hole at the bottom, and washed with distilled water for 30 minutes under shaking at 500 r / min to obtain a composite plant cell additive.
[0123] Comparative Example 1: This comparative example is basically the same as Example 1, except that the nanorod material in S1 is omitted in the preparation of the composite plant cell additive.
[0124] Comparative Example 2: This comparative example is basically the same as Example 1, except that the composite nanomaterial in S1 is omitted in the preparation of the composite plant cell additive.
[0125] Comparative Example 3: This comparative example is basically the same as Example 1, except that the nanowires in S2 are omitted in the preparation of the composite plant cell additive.
[0126] Comparative Example 4: This comparative example is basically the same as Example 1, except that, in the preparation of the composite plant cell additive, the composite porous carbon in S2 is omitted.
[0127] Comparative Example 5: This comparative example is basically the same as Example 1, except that, in the preparation of the composite plant cell additive, the oscillation and washing in S3 is omitted.
[0128] Test experiment:
[0129] It was used in a fish pond in Lingang, Guangdong, with an area of 2 mu. The water quality in the pond was too concentrated in spring, and the water color was not good. The ammonia nitrogen, nitrite and heavy metal copper ions in the water reached 1.43 mg·L -1 , 0.59mg·L -1 , 0.096mg·L -1 The bottom of the pond turned black and smelly, which seriously affected the growth of fish. On a sunny day, the water purifier was used in the breeding pond at a dosage of 260g / mu.m water depth. After 24 hours of use, the contents of ammonia nitrogen, nitrite, COD and heavy metal copper ions in the water were tested. The results are shown in Table 1.
[0130] Table 1
[0131]
[0132] As can be seen from Table 1, the water purifying agent in the present invention can effectively reduce the concentrations of ammonia nitrogen, nitrite, and heavy metals in water, improve the water visibility, purify the water quality, and meet the requirements for water used in aquaculture.
[0133] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the art can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. An aquaculture water quality purifying agent, characterized in that, The water purifying agent comprises the following components in parts by weight: 15-25 parts of potassium monopersulfate compound salt, 5-8 parts of citric acid, 1-5 parts of humic acid, 2-6 parts of sodium carbonate, 0.1-0.5 parts of magnesium carbonate, 1-3 parts of sodium hexametaphosphate, 1-5 parts of probiotics, 0.03-0.08 parts of polyethylene glycol, 5-10 parts of sodium sulfate, 10-16 parts of composite plant cell additive, 0.2-0.7 parts of plant active ingredient, and 20-30 parts of water; The plant active ingredient is composed of aloe polysaccharide and saponin according to a mass ratio of 1:(1.0-1.6); The preparation method of the composite plant cell additive is as follows: S1 Embed nanorod materials on the surface of porous carbon particles to obtain a composite nanomaterial, and then use the vacuum impregnation method to infiltrate a metal scavenger into the composite nanomaterial to obtain a metal scavenger material; S2 Use hollow porous carbon microspheres as the matrix, and through a hydrothermal reaction, deposit nanowires on the matrix to obtain a composite porous carbon. Then, with the metal scavenger material as the core and the composite porous carbon as the shell, by means of mechanical stirring, make the composite porous carbon cover the surface of the metal scavenger material to obtain a composite carrier material; S3 Immobilize plant algal cells on the composite carrier material and rinse them with distilled water by oscillation; The preparation method of the composite nanomaterial is as follows: 1) Add titanium dioxide nanopowder to an aqueous sodium hydroxide solution, stir well, transfer it to a reaction kettle, react at 150-160°C for 45-50 h, cool to room temperature, filter by suction, wash repeatedly with dilute hydrochloric acid and deionized water, and dry to obtain nanorod materials; 2) Disperse porous carbon particles in deionized water to obtain a dispersion liquid, then add nanorod materials, mechanically stir at a rotation speed of 800-1000 r / min for 1-2 h, and then perform ultrasonic treatment at 500-800 W for 1-2 h. After the treatment is completed, centrifuge the product and dry it to obtain the composite nanomaterial; The preparation method of the composite porous carbon is as follows: 1) Add sucrose to deionized water, stir until uniform, then add stannic chloride and sodium dodecyl sulfate to it respectively, and stir well. Then transfer the solution to a high-pressure hydrothermal reaction kettle, react at 190-195°C for 24-30 h. After the reaction is completed, wash repeatedly with deionized water and ethanol alternately, and dry at 80-85°C for 6-10 h to obtain composite microspheres; 2) Take the composite microspheres, mix them with a hydrochloric acid solution, stir well, transfer the mixture to a high-pressure hydrothermal reaction kettle, react at 190-195°C for 24-30 h. After the reaction is completed, wait for it to cool to room temperature, wash with deionized water until the filtrate is neutral, collect the filter cake and dry it at 80-85°C for 6-10 h to obtain hollow porous carbon microspheres; 3) Measure oleic acid and anhydrous ethanol, stir and mix them thoroughly to obtain an oleic acid-ethanol mixed solution, then add a 50-70 g / L sodium hydroxide solution, a 17-20 g / L calcium chloride solution and a 23-28 g / L sodium dihydrogen phosphate solution to the oleic acid-ethanol mixed solution in sequence at a dripping rate of 30-40 drops / min, and stir for 10-30 minutes after each solution is added to obtain a reaction solution; 4) Add hollow porous carbon microspheres to the reaction solution at a solid-liquid ratio of 1: (30-50) g / mL, stir thoroughly, transfer to a reactor, and react at 180-185°C for 20-25 hours under 200-300W ultrasound. After the reaction is completed, centrifuge the product and dry it to obtain a composite porous carbon.
2. The water quality purifying agent for aquaculture according to claim 1, wherein The metal scavenger is selected from at least one of polyaluminium chloride, polyacrylamide and dithiocarbamic acid; The mass ratio of the metal capture agent and the composite nanomaterial is 1:(10-18); The mass ratio of the composite porous carbon and the metal capture agent material is 1:(2-3).
3. An aquaculture water quality purifying agent according to claim 1, characterized in that, The ratio of the titanium dioxide nanopowder to the sodium hydroxide aqueous solution is (1.5-3.0) g: (100-200) mL; The sodium hydroxide aqueous solution has a concentration of 12-13 mol / L; The ratio of the porous carbon particles, deionized water and nanorod material is (3-8) g: (500-700) mL: (0.5-1.0) g.
4. An aquaculture water quality purifying agent according to claim 1, characterized in that, The porous carbon particles are prepared by the following method: 1) Dissolve cobalt chloride in deionized water, then add polyacrylic acid type cation exchange resin, place in an 80-85°C oil bath, stir and evaporate to dryness, then place in an 80-90°C oven to completely dry, put into a ball mill, grind at a speed of 300-500r / min for 2-5h to obtain a sieved product for standby use; 2) Add calcium hydroxide to deionized water, stir evenly, then add the sieved product, place in an 80-85℃ oil bath, stir and evaporate to dryness, then place in an 80-90℃ oven to completely dry, then weigh potassium hydroxide and dissolve in anhydrous ethanol, stir until completely dissolved, add the above sample, place in an 80-85℃ oil bath, stir and evaporate to dryness, then place in an 80-90℃ oven to completely dry; 3) The dried product is placed in a porcelain boat, placed in a tubular furnace filled with argon atmosphere, heated from room temperature to 800-830°C at a rate of 2-3°C / min, and kept warm for 2-3 hours. After the treatment is completed, the product is taken out of the tubular furnace, acid-washed and filtered, washed to neutrality and then dried, and ultrafine ground to obtain porous carbon particles with a three-dimensional structure.
5. The water quality purifying agent for aquaculture according to claim 4, characterized in that, The mass ratio of the cobalt chloride and the polyacrylic acid type cation exchange resin is (1-2): (10-20); The ratio of calcium hydroxide, deionized water, sieved product, potassium hydroxide and anhydrous ethanol is (6-10) g: (12-20) mL: (3-5) g: (3-5) g: (6-10) mL.
6. The water quality purifying agent for aquaculture according to claim 1, characterized in that, The ratio of the sucrose, deionized water, tin tetrachloride, and sodium dodecyl sulfate is (8.5 - 15.0) g : (50 - 120) mL : (8.7 - 14.6) g : (0.4 - 1.2) g; The ratio of the composite microspheres and the hydrochloric acid solution is (2 - 5) g : (60 - 150) mL; The hydrochloric acid solution has a concentration of 7 - 10 wt%; The volume ratio of the oleic acid, absolute ethanol, sodium hydroxide solution, calcium chloride solution, and sodium dihydrogen phosphate solution is (8 - 12) : (9 - 15) : (10 - 20) : (10 - 20) : (10 - 20).
7. An aquaculture water purifying agent according to claim 1, characterized in that, The specific operation method of step S3 is as follows: 1) By weight, 4 - 7 parts of Chlorella pyrenoidosa cells, 6 - 10 parts of Anabaena cells, 6 - 10 parts of a 2% calcium alginate solution, and 10 - 18 parts of a composite carrier material are uniformly mixed to obtain a mixture; 2) At a position 20 - 25 cm above the liquid surface of a pre-cooled 0.1 - 0.2 mol / L calcium chloride solution, the mixture is dropped into the calcium chloride solution, gelled at 4 - 5 °C for 8 - 10 h, the particles are taken out and placed in a shaker with filter holes at the bottom, and rinsed with distilled water for 20 - 30 min under shaking at 300 - 500 r / min.
8. A preparation method of the water quality purifying agent for aquaculture according to claim 1, characterized in that, Specifically, it includes the following steps: S1 By weight, take potassium monopersulfate compound salt, add citric acid and humic acid under stirring, and mix evenly to obtain mixture A; S2 Add sodium carbonate, magnesium carbonate, sodium sulfate, and a composite plant cell additive to mixture A, stir evenly, then add sodium hexametaphosphate and polyethylene glycol, and continue to stir evenly to obtain mixture B; S3 First dissolve the probiotic in water at 35 - 45 °C, add the plant active ingredients under stirring, mix evenly, and then add it to mixture B, and stir well to obtain the water purifying agent.
Citation Information
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