Insecticide composition and its application

By rationally compounding flufenacet, tetrachlorfenapyr, tetrazobactam, cyantraniliprole and the compound of formula (I), a suspension concentrate and other dosage forms are prepared, which solves the problems of pest resistance and pesticide pollution and achieves efficient and safe pest control.

CN118985620BActive Publication Date: 2025-09-05QINGDAO TENGRUNXIANG TESTING EVALUATION CO LTD
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Patent Information

Application Number
CN202411096780.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-12
Publication Date
2025-09-05
Estimated Expiration
2044-08-12

AI Technical Summary

Technical Problem

The use of a single pesticide can easily lead to pest resistance, and the effects of existing pesticide combinations are mostly additive or antagonistic, lacking obvious synergistic effects.

Method used

Flufenac, tetrachlorfenapyr, tetrazobactam, cyantraniliprole and the compound of formula (I) are rationally compounded to determine a mass ratio of 1:40 to 32:1, and prepared into suspension concentrates, water-dispersible granules and other dosage forms for preventing and controlling herbivorous pests in agriculture, forestry and gardening.

Benefits of technology

The synergistic effect of the insecticide combination is achieved, pest resistance is reduced, pesticide usage and environmental pollution are reduced, prevention efficiency is improved, and the method is safe for humans and animals.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the field of pesticide compounding technology and specifically relates to an insecticidal composition comprising active ingredient A and active ingredient B, wherein active ingredient A is a compound of formula (I) and active ingredient B is a diamide insecticide, and the mass ratio of active ingredient A to active ingredient B is 1:40 to 32:1. The composition of the present invention exhibits synergistic effects at certain ratios, effectively controlling a variety of plant-feeding pests, delaying the development of pesticide resistance in pests, and reducing pesticide usage.
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Description

Technical Field

[0001] The present invention belongs to the technical field of pesticides and insecticides, and particularly relates to an insecticide composition and its application in preventing and controlling herbivorous pests in agriculture, forestry and gardening. Background Art

[0002] Fluchlordiniliprole is a benzamide insecticide that can efficiently activate insect ryanodine receptors and excessively release calcium ions from the cellular calcium stores, causing paralysis and death of the insects.

[0003] Tetrachlorantraniliprole, a diamide insecticide, is highly effective against the rice stem borer and rice leaf roller, and also has good control effects against aphids, leafhoppers, planthoppers, and some coleopteran and dipteran pests. It binds to ryanodine receptors, opening calcium ion channels and causing the continuous release of intracellular calcium ions into the sarcoplasm. The calcium ions bind to matrix proteins in the sarcoplasm, inducing sustained muscle contraction in the pest. This results in convulsions, paralysis, and a refusal to feed, ultimately leading to death in the target pest.

[0004] Tetraniliprole is a new broad-spectrum o-formamidobenzamide insecticide developed by Bayer. It is a myotoxic agent that targets insect ryanodine receptors. Ryanodine receptors are selective ion channels that regulate the orderly release of intracellular calcium ions, specifically tetrameric channel proteins that regulate the balance of intracellular calcium ion concentrations. At low doses, it is highly effective against lepidopteran, coleopteran, and dipteran pests on a variety of crops.

[0005] Cyantraniliprole is a diamide insecticide that targets the insect ryanodine receptor, causing the insect cells to release calcium ions without restriction, paralyzing their muscles, causing them to stop feeding and eventually die.

[0006] In the actual process of agricultural production, the use of a single drug can easily lead to the development of drug resistance in pests. Compounding different varieties of ingredients is a very common method for preventing and controlling resistant pests. Different ingredients are compounded, and the actual application effect is used to judge whether a certain compound is synergistic, additive or antagonistic. In most cases, the compounding effect of pesticides is additive, and there are fewer real synergistic effects, especially compounds with very obvious synergistic effects and high co-toxicity coefficients. After the inventors' compounding research, the compound shown in formula (I) was reasonably compounded with diamide compounds: fluchlorfenapyr, tetrachlorfenapyr, tetrazolyl thiocarbamide, and cyanamide. The activity of the compounded composition was verified, and it had a synergistic effect under a certain mass ratio. In addition, there are no related reports on the compounding of the compound shown in formula (I) with fluchlorfenapyr, tetrachlorfenapyr, tetrazolyl thiocarbamide, and cyanamide. Summary of the Invention

[0007] The purpose of the present invention is to provide an insecticide composition which has synergistic effect, reduces drug resistance, has low use cost and good prevention effect.

[0008] To achieve the above object, the technical solution adopted by the present invention is: an insecticide composition comprising active ingredient A and active ingredient B, wherein active ingredient A is a compound of formula (I) with the following structural formula:

[0009] Active ingredient B is a diamide insecticide;

[0010] Furthermore, the diamide insecticide is selected from any one of fluchlorfenapyr, tetrachlorfenapyr, tetrazolyl thiophanate, and cyantraniliprole;

[0011] Furthermore, the mass ratio of the active ingredient A to the active ingredient B is 1:40 to 32:1;

[0012] Furthermore, the mass ratio of the active ingredient A to the active ingredient B is 1:25 to 32:1;

[0013] Furthermore, the mass ratio of the compound of formula (I) to flubendiamide is 1:40 to 32:1, such as 1:40, 1:25, 2:15, 5:2, 8:1, 16:1, 32:1 or any value therebetween;

[0014] Furthermore, the mass ratio of the compound of formula (I) to flubendiamide is 1:25 to 32:1;

[0015] Furthermore, the mass ratio of the compound of formula (I) to flubendiamide is 1:25, 2:15, 5:2, 8:1, 16:1, or 32:1;

[0016] Furthermore, the mass ratio of the compound of formula (I) to tetrachlorantraniliprole is 1:32 to 25:1, such as 1:32, 1:16, 1:8, 5:2, 4:1, 8:1, 14:1, 25:1 or any value therebetween;

[0017] Furthermore, the mass ratio of the compound of formula (I) to tetrachlorantraniliprole is 1:16 to 25:1;

[0018] Furthermore, the mass ratio of the compound of formula (I) to tetrachlorantraniliprole is 1:16, 1:8, 5:2, 4:1, 8:1, 14:1, 25:1;

[0019] Furthermore, the mass ratio of the compound of formula (I) to tetrazolyl thiabendazole is 1:35 to 25:1, such as 1:35, 1:18, 1:12, 1:6, 3:2, 6:1, 12:1, 25:1 or any value between the above values;

[0020] Furthermore, the mass ratio of the compound of formula (I) to tetrazolyl thiamethoxam is 1:18 to 25:1;

[0021] Furthermore, the mass ratio of the compound of formula (I) to tetrazolin is 1:18, 1:12, 1:6, 3:2, 6:1, 12:1, and 25:1;

[0022] Furthermore, the mass ratio of the compound of formula (I) to cyantraniliprole is 1:24 to 28:1, such as 1:24, 1:16, 1:9, 1:4, 9:2, 14:1, 28:1 or any value therebetween;

[0023] Furthermore, based on the total weight of the insecticide composition being 100 wt%, the sum of the content of the active ingredient A and the active ingredient B in the insecticide composition is 0.5 to 90 wt%;

[0024] Furthermore, based on the total weight of the insecticide composition being 100 wt%, the sum of the content of the active ingredient A and the active ingredient B in the insecticide composition is 1 to 80 wt%;

[0025] The insecticide composition of the present invention can be prepared by a common processing method known to those skilled in the art, that is, after mixing the active ingredient with a liquid solvent or a solid carrier, one or more surfactants such as a wetting agent, a dispersant, an emulsifier, a thickener, a disintegrant, an antifreeze agent, a defoaming agent, a solvent, a stabilizer, a penetrant and a carrier are added;

[0026] Furthermore, the wetting agent is selected from a mixture of one or more of sodium lauryl sulfate, sodium dodecylbenzene sulfonate, lakai powder BX, wetting and penetrating agent F, sapodilla powder, silkworm excrement or soapberry powder;

[0027] Furthermore, the dispersant is selected from a mixture of one or more of polycarboxylates, lignin sulfonates, alkylphenol polyoxyethylene ether formaldehyde condensate sulfates, alkylbenzene sulfonate calcium, naphthalenesulfonic acid formaldehyde condensate sodium salts, alkylphenol polyoxyethylene ether phosphates, fatty amine polyoxyethylene ethers, fatty acid polyoxyethylene ethers or glycerol fatty acid ester polyoxyethylene ethers;

[0028] Furthermore, the emulsifier is selected from Nongru 500# (calcium alkylbenzene sulfonate), OP series phosphate (nonylphenol polyoxyethylene ether phosphate), 600# phosphate (phenylphenol polyoxyethylene ether phosphate), styrene polyoxyethylene ether ammonium sulfate, alkyl diphenyl ether disulfonic acid magnesium salt, triethanolamine salt, Nongru 400# (benzyl dimethylphenol polyoxyethyl ether), Nongru 700# (alkylphenol formaldehyde resin polyoxyethyl ether), Ningru 36# (phenylethylphenol formaldehyde resin polyoxyethylene ether), A mixture of one or more of the following: Nongru 1600# (phenylethylphenol polyoxyethylene polypropylene ether), ethylene oxide-propylene oxide block copolymer, OP series (nonylphenol polyoxyethylene ether), BY series (castor oil polyoxyethylene ether), Nongru 33# (alkylaryl polyoxyethylene polyoxypropylene ether), Span series (sorbitan monostearate), Tween series (sorbitan fatty acid ester polyoxyethylene ether) or AEO series (fatty alcohol polyoxyethylene ether);

[0029] Furthermore, the thickener is selected from a mixture of one or more of xanthan gum, polyvinyl alcohol, bentonite, carboxymethyl cellulose or magnesium aluminum silicate;

[0030] Furthermore, the disintegrant is selected from a mixture of one or more of bentonite, urea, ammonium sulfate, aluminum chloride, low-substituted hydroxypropyl cellulose, lactose, citric acid, succinic acid or sodium bicarbonate;

[0031] Furthermore, the antifreeze agent is selected from a mixture of one or more of ethylene glycol, propylene glycol, glycerol or urea;

[0032] Furthermore, the defoaming agent is selected from silicone oil, silicone compounds, C 10 ~C 20 Saturated fatty acid compounds or C8~C 10 A mixture of one or more fatty alcohol compounds;

[0033] Furthermore, the solvent is selected from a mixture of one or more of N,N-dimethylformamide, cyclohexanone, toluene, xylene, dimethyl sulfoxide, methanol, ethanol, trimethylcyclohexanone, N-octylpyrrolidone, ethanolamine, triethanolamine, isopropylamine, N-methylpyrrolidone, propanol, butanol, ethylene glycol, diethylene glycol, ethylene glycol methyl ether, butyl ether, ethanolamine, isopropylamine, ethyl acetate or acetonitrile;

[0034] Furthermore, the stabilizer is selected from a mixture of one or more of epoxy soybean oil, epichlorohydrin, BHT, ethyl acetate, and triphenyl phosphate;

[0035] Furthermore, the penetrant is selected from a mixture of one or more of penetrant JFC (fatty alcohol polyoxyethylene ether), penetrant T (diisooctyl maleate sulfonate), azone or silicone;

[0036] Furthermore, the carrier is one, two or three of a solvent or a filler, and water is preferably deionized water;

[0037] Furthermore, the filler is selected from a mixture of one or more of kaolin, diatomaceous earth, bentonite, attapulgite, white carbon black, starch or light calcium carbonate;

[0038] The above substances are all commercially available.

[0039] The insecticide composition of the present invention can be processed into any agriculturally acceptable dosage form;

[0040] Furthermore, the insecticide composition can be prepared into an agriculturally acceptable formulation, wherein the formulation is selected from a solid formulation and / or a liquid formulation;

[0041] Furthermore, the solid preparation includes powders, granules, pellets, tablets, strips, wettable powders, oil-dispersible powders, emulsion powders, water-dispersible granules, emulsion granules, water-dispersible tablets, soluble powders, soluble tablets or soluble granules;

[0042] Furthermore, the liquid preparation includes a soluble solution, a soluble gel, an oil, a film-spreading oil, an emulsifiable concentrate, a latex, a dispersible liquid, an ointment, an aqueous emulsion, an oil emulsion, a microemulsion, a fat, a suspension, a microcapsule suspension, an oil suspension, a dispersible oil suspension, a suspoemulsion, a microcapsule suspension-suspension, a microcapsule suspension-water emulsion or a microcapsule suspension-suspoemulsion;

[0043] Furthermore, the solid preparation is selected from wettable powders and water-dispersible granules; the liquid preparation is selected from emulsifiable concentrates, aqueous emulsions, microemulsions, suspensions, suspoemulsions, and dispersible oil suspensions;

[0044] Furthermore, the solid preparation is selected from wettable powders and water-dispersible granules; and the liquid preparation is selected from emulsifiable concentrates and suspension concentrates.

[0045] The present invention also provides the use of the above-mentioned insecticide composition in controlling agricultural, forestry or gardening herbivorous pests;

[0046] Furthermore, the herbivorous pests are pests with chewing mouthparts.

[0047] The chewing mouthparts pests include: Adoxophyes spp., Adoxophyes orana, Agrotis spp. (cutworms), Agrotis ipsilon (black cutworm), Alabama argillacea (cotton leafworm), Amorbia cuneana, Amyelosis transitella (navel orangeworm), Anacamptodes defectaria, Anarsia lineatella (peach twigborer), Anomis sabulifera (jute looper), Anticarsia gemma ta lis, Archips argyrospila (fruittree leafroller), Archips rosana (rose leafroller), and A. roller), Argyrotaenia spp. (tortricidmoths), Argyrotaenia citrana (orange tortrix), Autographagamma, Bonagota cranaodes, Borbo cinnara (rice leaf folder), Bucculatrix thurberiella (cotton leaf perforator), Caloptilia spp. (leaf miners), Capua reticulana, Carposina niponensis (peachfruit moth), Chilo spp., Chlumetia transversa (mangoshoot borer), Choristoneura rosaceana (obliquebanded leaf roller),

[0048] leafroller)), Chrysodeixis spp., Cnaphalocerus medinalis (grass

[0049] leafroller), Colias spp., Conpomorpha cramerella, Cossus cossus (carpenter moth), Crambus spp. (sod webworms), Cydia funebrana (plum fruit moth), Cydia molesta (oriental fruit moth), Cydian ignicana (pea moth), Cydia pomonella (codling moth), Darna diducta, Diaphania spp. (stem borers), Diatraea spp. (stalk borers), Diatraea saccharalis (sugarcane borer), Diatraea graniosella (southwester cornborer), Earias spp. (cotton bollworm), Earias insulata (Egyptian bollworm), Earias vitella (rough northern bollworm), Ecdytopophaaurantianum, Elasmopalpus lignosellus (lesser cornstalk borer), Epiphysias postruttana (light brown applemoth), Ephestia spp. (flour moths), Ephestia cautella (almond moth), Ephestia elutella (tobacco moth) moth), Ephestia kuehniella (Mediterranean flour moth), Epimeces spp.), Epinotia aporema, Erionota thrax (banana skipper), Eupoecilia ambiguella (grape berry moth), Euxoa auxiliaris (army cutworm), Feltia spp. (cutworms), Gortyna spp. (stemblerers), Grapholita molesta (Oriental fruit moth).

[0050] (Oriental Fruit Moth), Hedylepta indicate (Bean Leaf Webber), Helicoverpa sp. (Spodoptera exigua), Helicoverpa armigera, Helicoverpa zea, Heliothis spp., Heliothis virescens, Hellula undalis (Cabbage Webworm), Indarbela spp. (Root Borers), Keiferia lycopersicella, Leucinodes orbonalis, Leucoptera malifoliella, Lithocollectis spp., Lobesia botrana (Grape Fruit Moth), fruitmoth), Loxagrotis spp., Loxagrotis albicosta (western bean cutworm), Lymantria dispar (gypsy moth), Lyonetia clerkella (apple leaf miner), Mahasena corbetti (oil palm bagworm), Malacosoma spp.) (tent caterpillars), Mamestra brassicae (cabbage armyworm), Maruca testulalis (bean pod borer), Metisa plana (bagworm), Mythimna unipuncta (true armyworm), Neoleucinodes elegantalis, Nymphula depunctalis (three-spotted water borer), Operophtherabrumata (winter looper), Ostrinia nubilalis (European corn borer), Oxydia vesulia, Pandemis cerasana (common currant tortrix), Pandemis heparana (brown apple tortrix), Papilio demodocus (African swallowtail), Pectinophora gossypiella (pink bollworm), (Bollworm), Peridroma species (pp.), Peridroma saucia (variegated cutworm), Perileucoptera coffeella (white coffee leafminer), Phthorimaea operculella (potato tuber moth), Phyllocnisitis citrella, Phyllonorycter spp., Pieris rapae, Plathypena scabra, Plodia interpunctella, Plutellaxylostella (diamondback moth), Polychrosis viteana (grapeberry moth), Prays endocarpa, Prays olive moth oleae) (olive moth), Pseudaletia spp.) (spodoptera), Pseudaletia unipunctata (armyworm), Pseudoplusia includes (, Rachiplusia nu), Scirpophaga incertulas, Sesamia spp. (stemborers), Sesamia inferens (pink rice stem borer), Sesamia nonagrioides, Setora nitens, Sitotroga cerealella (Angoumois grain moth), Sparganothis pilleriana, Spodoptera spp., Spodoptera exigua, Spodoptera fugiperda, Spodoptera oridania (southern armyworm), Synanthedon spp., Thecla basilides, Thermisia gemmatalis, Tineola bisselliella (webbing clothes moth), Trichoplusia ni (cabbage worm), and Tuta absoluta;

[0051] Furthermore, the chewing mouthpart pests include diamondback moth, beet armyworm, Spodoptera litura, fall armyworm, striped stem borer, cotton bollworm, and cabbage worm;

[0052] The present invention also provides the above-mentioned insecticide composition to be applied in an effective dose to the pests to be controlled or the medium where they grow.

[0053] The beneficial effects of the present invention are:

[0054] 1) When the compound of formula (I) is combined with a diamide insecticide, it has a significant synergistic and long-lasting effect;

[0055] 2) It has a high control effect on chewing pests of crops and reduces the development of resistance of chewing pests to pesticides;

[0056] 3) Reduce the amount of pesticides used, reduce the amount of pesticide residues on crops, and alleviate environmental pollution;

[0057] 4) Safe for humans and animals, and environmentally friendly. DETAILED DESCRIPTION

[0058] The present invention is further described below with reference to the examples. The percentages in the examples are all by weight, but the present invention is not limited thereto.

[0059] The insecticide composition of the present invention can be provided in the form of a formulation. It can be formulated as a suspension concentrate, water-dispersible granules, wettable powder, or dispersible oil suspension concentrate, as needed. The content of the active ingredient in the composition of the present invention depends on the application rate when used alone, as well as the mixing ratio and the degree of synergistic effect. The optimal range of the active ingredient content varies depending on the formulation type of the composition.

[0060] Preparation Example

[0061] Preparation Example 1:

[0062] 27% formula (I) compound·flufenacil suspension concentrate (24:3)

[0063] Preparation formula: 24% of compound of formula (Ⅰ), 3% of flubendiamide,

[0064] Polyether 3.5%, phenylethylphenol polyether phosphate 3%, dioctyl sodium sulfosuccinate 3%, magnesium aluminum silicate 1%, xanthan gum 0.25%, ethylene glycol 5%, benzisothiazolinone 0.02%, silicone defoamer 0.4%, deionized water to make up the balance;

[0065] Preparation method: According to the formula ratio, the active ingredients, surfactants and other functional additives are placed in a reactor in sequence, water is added and mixed evenly, and the suspension is obtained by high-speed shearing, wet sand grinding, and finally homogenization filtration.

[0066] Preparation Example 2:

[0067] 40% formula (I) compound·flufenacil water dispersible granules (35:5)

[0068] Preparation formula: 35% of compound (I), 5% of flubendiamide,

[0069] Sodium lignin sulfonate 8%, naphthalene sulfonate formaldehyde condensate 8.5%, sodium lauryl sulfate 2%, white carbon black 4.5%, starch 20%, kaolin makes up the balance;

[0070] Preparation method: According to the formula ratio of the embodiment, the active ingredient is added to the carrier, and the surfactant and other functional additives are added thereto, mixed, and after air flow grinding, 10-25% water is added, and then the water-dispersible granule product is obtained by kneading, granulating, drying and screening.

[0071] Preparation Example 3:

[0072] 20% formula (I) compound·tetrachlorantraniliprole suspension concentrate (16:4)

[0073] Preparation formula: 16% of the compound of formula (I), 4% of tetrachlorantraniliprole,

[0074] Polyether 3%, phenylethylphenol polyether phosphate 3%, dioctyl sodium sulfosuccinate 2.5%, magnesium aluminum silicate 1%, xanthan gum 0.25%, ethylene glycol 5%, benzisothiazolinone 0.02%, silicone defoamer 0.4%, deionized water to make up the balance;

[0075] Preparation method: Same as Preparation Example 1.

[0076] Preparation Example 4:

[0077] 35% formula (I) compound·tetrachlorantraniliprole wettable powder (25:10)

[0078] Preparation formula: 25% of compound (I), 10% of tetrachlorantraniliprole,

[0079] Polycarboxylic acid sodium salt 5%, dispersant NNO 5%, alkyl polyoxyethylene ether sodium sulfonate 4.5%, sodium lauryl sulfate 2.8%, kaolin makes up the balance;

[0080] Preparation method: The active ingredients, other functional additives and fillers are mixed according to the formula ratio, stirred evenly in a stirring kettle, and crushed and mixed evenly for multiple times in a jet mill to prepare the wettable powder of the composition of the present invention.

[0081] Preparation Example 5:

[0082] 21% formula (I) compound·tetrazolylpyram suspension (18:3)

[0083] Preparation formula: 18% of the compound of formula (I), 3% of tetrazolyl amide,

[0084] Polyether 3%, phenylethylphenol polyether phosphate 3%, dioctyl sodium sulfosuccinate 2.5%, magnesium aluminum silicate 1%, xanthan gum 0.25%, ethylene glycol 5%, sodium benzoate 0.02%, silicone defoamer 0.4%, deionized water to make up the balance;

[0085] Preparation method: Same as Preparation Example 1.

[0086] Preparation Example 6:

[0087] 15% formula (I) compound·tetrazolylpyram dispersible oil suspension (12:3)

[0088] Preparation formula: 12% of the compound of formula (I), 3% of tetrazolyl amide,

[0089] Sulfonic acid succinate 2%, alkyl aryl polyoxyethylene polyoxypropylene ether 12%, fatty alcohol polyoxyethylene ether 3%, calcium dodecylbenzene sulfonate 2%, silicon dioxide 1%, organic bentonite 1%, 200# solvent oil 15%, methyl oleate makes up the balance;

[0090] Preparation method: According to the formula ratio, the active ingredients, surfactants and other functional additives are placed in the reactor in sequence, and solvent oil is added and mixed evenly. After high-speed shearing, wet sand grinding, and finally homogenization filtration, the dispersible oil suspension product is obtained.

[0091] Preparation Example 7:

[0092] 25% formula (I) compound·cyantraniliprole suspension concentrate (5:20)

[0093] Preparation formula: 5% compound of formula (Ⅰ), 20% cyantraniliprole,

[0094] Polyether 2.5%, phenylethylphenol polyether phosphate 4%, dioctyl sodium sulfosuccinate 1.5%, magnesium aluminum silicate 1%, xanthan gum 0.3%, ethylene glycol 5%, sodium benzoate 0.02%, silicone defoamer 0.4%, deionized water to make up the balance;

[0095] Preparation method: Same as Preparation Example 1.

[0096] Preparation Example 8:

[0097] 40% formula (I) compound·cyantraniliprole wettable powder (9:31)

[0098] Preparation formula: 9% of compound of formula (I), 31% of cyantraniliprole,

[0099] Polycarboxylic acid sodium salt 4.5%, dispersant NNO 5%, alkyl polyoxyethylene ether sodium sulfonate 5%, sodium lauryl sulfate 2.5%, kaolin makes up the balance;

[0100] Preparation method: same as Preparation Example 4.

[0101] Indoor biological activity assay:

[0102] The specific test methods are as follows:

[0103] Lepidoptera larvae: a combination of leaf and insect dipping;

[0104] Test insect age: Use sensitive populations raised indoors for multiple generations, and select healthy and consistent second-instar Lepidoptera larvae (no less than 60 per treatment).

[0105] Use tweezers to place fresh cabbage slices in the drug solution and immerse them for 10 seconds, then take them out. After the drug solution has dried naturally, place the cabbage slices in a culture dish lined with moisturizing filter paper. Place the test insects in the drug solution for 5 seconds, absorb the excess drug solution with filter paper, and place the test insects in a culture dish with leaves soaked in the corresponding concentration.

[0106] Each treatment was repeated 4 times, with a blank treatment as a control. The treated insects were reared in an artificial intelligence culture chamber at 26±1°C, a light intensity of L:D=16h:8h, and a relative humidity of 60%.

[0107] After treatment with the pesticide, the mortality of the test insects was investigated 48 hours later. The criterion for judging the death of the test insects was obvious shrinkage of the insect body or inability to crawl normally after being pricked with a needle. The number of dead insects was recorded.

[0108] Data statistics and analysis:

[0109] According to the survey data, the adjusted mortality rate of each treatment was calculated using the following formula:

[0110]

[0111] Where:

[0112] P——mortality rate, in percentage (%);

[0113] K——indicates the number of dead insects, the unit is head;

[0114] N——represents the total number of insects processed, in heads.

[0115]

[0116] Where:

[0117] P1——adjusted mortality rate, in percentage (%);

[0118] P t ——Treatment mortality rate, expressed in percentage (%);

[0119] P0 - blank control mortality rate, in percentage (%).

[0120] Data statistics and analysis: If the control mortality rate is less than 5%, no correction is required; if the control mortality rate is between 5% and 20%, correction should be made according to formula (2); if the control mortality rate is greater than 20%, the experiment needs to be repeated.

[0121] The data were processed by probability value analysis. The DPS statistical analysis system was used to analyze the toxicity regression line and LC 50 The activity of the test agents on the biological materials was evaluated by using the values, 95% confidence limits and correlation coefficient r.

[0122] The co-toxicity coefficient (CTC value) of the mixture is calculated as follows:

[0123]

[0124] Where:

[0125] ATI - measured toxicity index of mixture;

[0126] S——LC of standard pesticide 50 , the unit is milligrams per liter (mg / L);

[0127] M——LC of the mixture 50 , the unit is milligrams per liter (mg / L).

[0128] TTI=TI A *P A +TI B *P B

[0129] Where:

[0130] TTI – Theoretical Toxicity Index of Mixtures;

[0131] TI A ——Agent toxicity index;

[0132] P A ——The percentage of agent A in the mixture, in percentage (%);

[0133] TI B ——Toxicity index of agent B;

[0134] P B ——The percentage of agent B in the mixture, in percentage (%).

[0135]

[0136] Where:

[0137] CTC – Co-toxicity coefficient;

[0138] ATI - measured toxicity index of mixture;

[0139] TTI - Theoretical Toxicity Index of Mixture.

[0140] A co-toxicity coefficient (CTC) of 120 or higher indicates a synergistic effect; a co-toxicity coefficient (CTC) of 80 or lower indicates an antagonistic effect; and a co-toxicity coefficient (CTC) of 80 or lower indicates an additive effect.

[0141] Indoor activity determination of Plutella xylostella

[0142] As shown in Table 1 and Table 2, the compound of formula (I) has a high toxicity to Plutella xylostella. The LC values ​​of flubendiamide and tetrachlorantraniliprole to Plutella xylostella are 50 They are 0.3866 mg / L and 1.5124 mg / L respectively.

[0143] When the weight ratio of the compound of formula (I) and flubendiamide to the diamondback moth is 1:40 to 32:1, the co-toxicity coefficient is greater than 80, indicating that the two show additive or synergistic effects when mixed within the range of 1:40 to 32:1, and no antagonistic effect occurs; when the compound of formula (I) and flubendiamide are mixed with the diamondback moth at a weight ratio of 1:25 to 32:1, the co-toxicity coefficient is greater than 120, indicating that the two show synergistic effects when mixed within this weight ratio range.

[0144] When the weight ratio of the compound of formula (I) and tetrachlorantraniliprole to the diamondback moth is 1:32 to 25:1, the co-toxicity coefficient is greater than 80, indicating that the two show additive or synergistic effects when mixed within the range of 1:32 to 25:1, and no antagonistic effect occurs; when the compound of formula (I) and tetrachlorantraniliprole are mixed with the diamondback moth at a weight ratio of 1:16 to 25:1, the co-toxicity coefficient is greater than 120, indicating that the two show synergistic effects when mixed within this weight ratio range.

[0145] Table 1 Toxicity test results of compound of formula (I) and flubendiamide against diamondback moth

[0146]

[0147]

[0148] Table 2 Toxicity test results of compound of formula (I) and tetrachlorantraniliprole against Plutella xylostella

[0149]

[0150] Indoor activity assay of Pieris rapae

[0151] As shown in Table 3 and Table 4, the compound of formula (I) has a high toxicity effect on Pieris rapae. The LC values ​​of tetrazobactam and cyantraniliprole on Pieris rapae are 50 They are 0.4732mg / L and 0.5537mg / L respectively.

[0152] When the weight ratio of the compound of formula (I) and tetrazolin to Pieris rapae is 1:35 to 25:1, the co-toxicity coefficient is greater than 80, indicating that the two exhibit additive or synergistic effects when mixed within the range of 1:35 to 25:1, and no antagonistic effect occurs; when the compound of formula (I) and tetrazolin to Pieris rapae is 1:18 to 25:1, the co-toxicity coefficient is greater than 120, indicating that the two exhibit synergistic effects when mixed within this weight ratio range.

[0153] When the weight ratio of the compound of formula (I) and cyantraniliprole to Pieris rapae is 1:24 to 28:1, the co-toxicity coefficient is greater than 120, indicating that the mixture of the two exhibits a synergistic effect within this weight ratio range.

[0154] Table 3 Toxicity test results of compound of formula (I) and tetrazopyram against Pieris rapae

[0155]

[0156]

[0157] Table 4 Toxicity test results of compound of formula (I) combined with cyantraniliprole against Pieris rapae

[0158]

[0159] Field trials on controlling cabbage looper

[0160] Experimental crops: Cabbage (cabbage), which was in the rosette stage during the experiment;

[0161] Test target: Pieris rapae;

[0162] Test reference: Based on GB / T 17980.13-2000 "Guidelines for field efficacy tests (I): Insecticides for the control of lepidopteran larvae of cruciferous vegetables";

[0163] Experimental location: Cabbage experimental field in the cruciferous vegetable planting base of Biejiatun Village, Anqiu City, Weifang City, Shandong Province;

[0164] Application equipment: 3WBS-16 electric backpack sprayer;

[0165] Trial date: July 12, 2023;

[0166] Experimental environment: All experimental plots were uniformly cultivated, with the same fertilizer and water management level, good water and fertilizer conditions, and clay loam soil;

[0167] Test agent:

[0168] Table 5 Field test design and dosage

[0169]

[0170]

[0171] Test method: Apply the pesticide once during the peak period of cabbage looper occurrence (mostly 2nd to 4th instar).

[0172] Plot size and repetition: random block arrangement, plot size 20m 2 , each treatment was repeated 4 times.

[0173] Survey method: Randomly sample five points in each plot, hang a sign on 4 cabbage plants at each point, investigate the number of cabbage loopers on all cabbages, investigate the base number of insects before spraying, and investigate the number of remaining insects 3 days and 10 days after spraying.

[0174] Calculation formula and data analysis:

[0175]

[0176] Test results:

[0177] As can be seen from Table 6, 3 days after application, 15% of the compound of formula (I)·tetrazobactam dispersible oil suspension concentrate (12:3) and 25% of the compound of formula (I)·cyantraniliprole suspension concentrate (5:20) showed good fast-acting properties against cabbage loopers, with control efficacies of 84.49% and 84.70%, respectively, which were significantly higher than those of the control single agent.

[0178] Table 6 Field control effects of different pesticides on cabbage worms (3 days after application)

[0179]

[0180] Note: The above insect population base and control efficacy data are the average of 4 replicates, and the values ​​are rounded to two decimal places. Different letters after the control efficacy data in the same column indicate significant differences (P < 0.05).

[0181] As can be seen from Table 7, 7 days after application, 15% of the compound of formula (I)·tetrazobactam dispersible oil suspension concentrate (12:3) and 25% of the compound of formula (I)·cyantraniliprole suspension concentrate (5:20) showed good persistent effect against cabbage loopers, with control efficacy of 91.34% and 90.22%, respectively, which were significantly higher than the control single agent.

[0182] Table 7 Field control effects of different pesticides on cabbage worms (10 days after application)

[0183]

[0184] Note: The above insect population base and control efficacy data are the average of 4 replicates, and the values ​​are rounded to two decimal places. Different letters after the control efficacy data in the same column indicate significant differences (P < 0.05).

[0185] Safety: During the test period and later observations, cabbage grew normally and no obvious phytotoxicity was observed.

[0186] Field trials on controlling diamondback moth

[0187] Test crops: cauliflower;

[0188] Test target: Diamondback moth;

[0189] Test reference: Based on GB / T 17980.13-2000 "Guidelines for field efficacy tests (I): Insecticides for the control of lepidopteran larvae of cruciferous vegetables";

[0190] Experimental location: Cauliflower experimental field at the cruciferous vegetable planting base in Zhangjiashagou Village, Anqiu City, Weifang City, Shandong Province;

[0191] Application equipment: 3WBS-16 electric backpack sprayer;

[0192] Trial time: August 12, 2023;

[0193] Experimental environment: All experimental plots were uniformly cultivated, with the same fertilizer and water management level, good water and fertilizer conditions, and clay loam soil;

[0194] Test agent:

[0195] Table 8 Field test design and dosage

[0196]

[0197]

[0198] Test method: Apply the pesticide once during the peak period of diamondback moth infestation.

[0199] Plot size and repetition: random block arrangement, plot size 20m 2 , each treatment was repeated 4 times.

[0200] Survey method: Five random sampling points were selected in each plot, and two cauliflower plants were fixed at each point. The number of diamondback moths on the whole cauliflower plant was investigated. The base number of insects was investigated before spraying, and the number of remaining insects was investigated 3 days and 7 days after spraying.

[0201] Calculation formula and data analysis:

[0202]

[0203] Test results:

[0204] As can be seen from Table 9, 3 days after application, 27% formula (I) compound·flufenapyr suspension concentrate (24:3) and 20% formula (I) compound·tetrachlorfenapyr suspension concentrate (16:4) showed good quick-acting properties against Plutella xylostella, with control efficacies of 83.48% and 84.50%, respectively, which were significantly higher than those of the control single agent.

[0205] Table 9 Field control effects of different pesticides on Plutella xylostella (3 days after application)

[0206]

[0207] Note: The above insect population base and control efficacy data are the average of 4 replicates, and the values ​​are rounded to two decimal places. Different letters after the control efficacy data in the same column indicate significant differences (P < 0.05).

[0208] As can be seen from Table 10, 7 days after application, 27% formula (I) compound·flufenapyr suspension concentrate (24:3) and 20% formula (I) compound·tetrachlorfenapyr suspension concentrate (16:4) showed good persistent effect against Plutella xylostella, with control efficacy of 93.13% and 92.30%, respectively, which were significantly higher than the control single agent.

[0209] Table 10 Field control effects of different pesticides on Plutella xylostella (7 days after application)

[0210]

[0211] Note: The above insect population base and control efficacy data are the average of 4 replicates, and the values ​​are rounded to two decimal places. Different letters after the control efficacy data in the same column indicate significant differences (P < 0.05).

[0212] Safety: During the trial period and subsequent observations, cauliflower grew normally and no obvious signs of drug damage were observed.

[0213] Although the present application describes specific embodiments in detail by way of example, the disclosure of the present application may adopt various modifications and alternative forms. However, it should be understood that the disclosure of the present application is not limited to the specific forms disclosed. On the contrary, the disclosure of the present application covers all modifications, equivalents and alternative forms within the scope of the disclosure of the present application, and the scope of the present application is limited by the appended claims and their legal equivalents.

Claims

1. An insecticidal composition, characterized in that It contains active ingredient A and active ingredient B, wherein active ingredient A is a compound of formula (I) with the following structural formula: (I); active ingredient B is a diamide insecticide; the diamide insecticide is selected from any one of flubendiamide and tetrachlorantraniliprole, the mass ratio of the compound of formula (I) to flubendiamide is 1:25 to 32:1, and the mass ratio of the compound of formula (I) to tetrachlorantraniliprole is 1:16 to 25:

1.

2. The insecticidal composition according to claim 1, characterized in that The mass ratio of the compound of formula (I) to flubendiamide is 1:25, 2:15, 5:2, 8:1, 16:1, and 32:1; the mass ratio of the compound of formula (I) to tetrachlorantraniliprole is 1:16, 1:8, 5:2, 4:1, 8:1, 14:1, and 25:

1.

3. The insecticidal composition according to claim 1, characterized in that Based on the total weight of the insecticide composition being 100 wt%, the sum of the contents of the active ingredient A and the active ingredient B in the insecticide composition is 0.5 to 90 wt%.

4. The insecticidal composition according to claim 1, characterized in that Based on the total weight of the insecticide composition being 100 wt%, the sum of the contents of the active ingredient A and the active ingredient B in the insecticide composition is 1 to 80 wt%.

5. The insecticidal composition according to claim 1, characterized in that The insecticide composition further comprises an adjuvant, which is selected from one or more of a wetting agent, a dispersant, an emulsifier, a thickener, a disintegrant, an antifreeze agent, a defoaming agent, a solvent, a stabilizer, a penetrant and a carrier.

6. The insecticidal composition according to claim 5, characterized in that The insecticide composition is prepared into an agriculturally acceptable formulation, which is selected from a solid formulation and / or a liquid formulation.

7. The insecticidal composition according to claim 6, characterized in that The solid preparation is selected from wettable powders and water-dispersible granules; the liquid preparation is selected from emulsifiable concentrates, aqueous emulsions, microemulsions, suspensions, suspoemulsions, and dispersible oil suspensions.

8. Use of the insecticidal composition according to any one of claims 1 to 7 in controlling herbivorous pests in agriculture, forestry or gardening.

9. The use according to claim 8, characterized in that The herbivorous pests are chewing pests; the chewing pests include diamondback moth, beet armyworm, Spodoptera litura, fall armyworm, striped stem borer, cotton bollworm or cabbage worm.

10. The use according to claim 8, characterized in that The insecticide composition is applied to the pests to be controlled or the medium where they grow in an effective dose.

Citation Information

Patent Citations

  • Compositions having pesticidal utility and methods related thereto

    CN115052482A

  • Compositions having pesticidal utility and processes related thereto

    WO2023224815A2