Insecticide composition and its application

By adding the compound of formula (I) and polyflubendiamide or thiocyclam in a specific ratio to the insecticide composition and mixing them to prepare different dosage forms, the problem of increased pest resistance is solved, and efficient and low-cost pest control is achieved.

CN118923678BActive Publication Date: 2025-09-12QINGDAO TENGRUNXIANG TESTING EVALUATION CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202410980035.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-09-12
Estimated Expiration
2044-07-22

AI Technical Summary

Technical Problem

The large-scale and frequent use of pesticides and insecticides has led to increased pest resistance, making prevention and control more difficult. Existing technologies are unable to effectively prevent and control a variety of pests.

Method used

An insecticide composition is used, comprising an active ingredient A which is a mixture of a compound of formula (I) and polyflubendiamide or thiocyclam, with a mass ratio within a specific range, and agriculturally acceptable auxiliary ingredients are added to prepare different dosage forms for controlling pests.

Benefits of technology

Significantly improve the prevention and control effect, delay pest resistance, reduce use costs, and be environmentally friendly.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure QLYQS_1
    Figure QLYQS_1
  • Figure BDA0004955771390000091
    Figure BDA0004955771390000091
  • Figure BDA0004955771390000092
    Figure BDA0004955771390000092
Patent Text Reader

Abstract

The present invention belongs to the field of pesticides and insecticides and relates to an insecticidal composition. The insecticidal composition comprises active ingredients A and B, wherein active ingredient A is a compound of formula (I) and active ingredient B is either flubendiamide or thiocyclam. The mass ratio of active ingredient A to active ingredient B is 1:35 to 33:1. The insecticidal composition of the present invention has the advantages of enhancing synergy and delaying resistance development, and is used for controlling resistant pests.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention belongs to the technical field of pesticides and insecticides, and particularly relates to an insecticide composition and application thereof. Background Art

[0002] Piperflanilide belongs to the class of inter-diamide insecticides with the characteristics of high activity, broad spectrum and novel mechanism of action. It has excellent control effects on cotton bollworm, striped stem borer, rice leaf roller, corn borer, armyworm, beet armyworm, diamondback moth, fall armyworm, apple leaf roller, flea beetle, thrips and whitefly.

[0003] Pioxaniliprole is a new type of pyridine carboxamide insecticide with a novel mechanism of action and a broad insecticidal spectrum. It has high insecticidal activity against sensitive and resistant lepidopteran pests of crops such as rice, corn, cotton, soybeans, fruit trees and vegetables. It has both good rapid and long-lasting effects and has no cross-resistance with existing insecticides.

[0004] In agricultural production, the frequent and irrational use of pesticides has led to the continuous development of insect resistance, which has caused more severe damage to crops and made prevention and control more difficult. By combining the compound of formula (I) with polyflubendiamide and thiocyclamide, it is possible to quickly and simultaneously control different pests, expand the control spectrum, improve the efficacy of the pesticides, and reduce the development of pest resistance. Summary of the Invention

[0005] The present invention aims to provide an insecticide composition which has synergistic effects, reduces resistance and has low use cost.

[0006] 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:

[0007] The active ingredient B is any one of polyflumizone and thiocyclamide.

[0008] Furthermore, the mass ratio between the active ingredient A and the active ingredient B is 1:35 to 33:1;

[0009] Furthermore, the mass ratio between the active ingredient A and the active ingredient B is 1:24 to 33:1;

[0010] Furthermore, the mass ratio of the compound of formula (I) to polyflubendiamide is 1:30 to 33:1, such as 1:30, 1:24, 1:13, 2:11, 4:3, 9:4, 13:1, 33:1 or any value between the above values;

[0011] Furthermore, the mass ratio of the compound of formula (I) to polyflubendiamide is 1:24 to 33:1;

[0012] Furthermore, the mass ratio of the compound of formula (I) to polyflubendiamide is 1:24, 1:13, 2:11, 4:3, 9:4, 13:1, and 33:1;

[0013] Furthermore, the mass ratio of the compound of formula (I) to thiocyclamide is 1:35 to 26:1, such as 1:35, 1:18, 1:12, 1:4, 7:5, 7:1, 18:1, 26:1 or any value therebetween;

[0014] Furthermore, the mass ratio of the compound of formula (I) to thiocyclamide is 1:18 to 26:1;

[0015] Furthermore, the mass ratio of the compound of formula (I) to thiocyclamide is 1:18, 1:12, 1:4, 7:5, 7:1, 18:1, and 26:1;

[0016] Furthermore, based on the total mass 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%;

[0017] Furthermore, the sum of the contents of the active ingredient A and the active ingredient B in the insecticide composition is 1% to 85%;

[0018] Furthermore, the insecticide composition further comprises, in addition to the active ingredient, agriculturally acceptable auxiliary ingredients, wherein the auxiliary ingredients are 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 preservative, a stabilizer, a synergist or a carrier;

[0019] Furthermore, 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 preservative, a stabilizer, a synergist and a carrier;

[0020] The wetting agent is selected from one or more of alkylbenzene sulfonate, alkylnaphthalene sulfonate, lignin sulfonate, sodium lauryl sulfate, sodium dioctyl sulfosuccinate, alpha olefin sulfonate, alkylphenol polyoxyethylene ether, castor oil polyoxyethylene ether, alkylphenol ethoxylate, fatty alcohol ethoxylate, fatty alcohol polyoxyethylene ether sodium sulfate, silkworm feces, soapberry powder, soapberry powder, SOPA, detergent, emulsifier 2000 series and wetting penetrant F; and / or

[0021] The dispersant is selected from one or more of lignin sulfonate, alkylnaphthalene sulfonate formaldehyde condensate, naphthalene sulfonate, tristyrylphenol ethoxylate phosphate, fatty alcohol ethoxylate, alkylphenol polyoxyethylene ether, alkylphenol polyoxyethylene ether methyl ether condensate sulfate, fatty amine polyoxyethylene ether, glycerol fatty acid ester polyoxyethylene ether, polycarboxylates, polyacrylic acids, phosphates, EO-PO block copolymers and EO-PO graft copolymers; and / or

[0022] The emulsifier is selected from one or more of calcium dodecylbenzenesulfonate, alkylphenol formaldehyde resin polyoxyethylene ether, phenylethylphenol polyoxyethylene polyoxypropylene ether, fatty alcohol ethylene oxide-propylene oxide copolymer, styrylphenol polyoxyethylene ether, castor oil polyoxyethylene ether and alkylphenol ether phosphate; and / or

[0023] The thickener is selected from one or more of xanthan gum, organobentonite, gum arabic, sodium alginate, magnesium aluminum silicate, carboxymethyl cellulose and white carbon black; and / or

[0024] The disintegrant is selected from one or more of sodium sulfate, ammonium sulfate, aluminum chloride, sodium chloride, ammonium chloride, bentonite, glucose, sucrose, starch, cellulose, urea, sodium carbonate, sodium bicarbonate, citric acid and tartaric acid; and / or

[0025] The antifreeze agent is selected from one or more of alcohols, alcohol ethers, chlorinated hydrocarbons and inorganic salts; and / or

[0026] Defoaming agent selected from C 10 -C 20 Saturated fatty acid compounds, silicone oil, silicone compounds, C8-C 10 One or more of fatty alcohols; and / or

[0027] The solvent is selected from one or more of benzene, toluene, xylene, durene, methanol, ethanol, isopropanol, n-butanol, dimethyl sulfoxide, dimethylformamide, cyclohexanone, alkylene carbonate, diesel, solvent oil, vegetable oil, vegetable oil derivatives and water; and / or

[0028] The preservative is selected from one or more of propionic acid, sodium propionic acid, sorbic acid, sodium sorbic acid, potassium sorbic acid, benzoic acid, sodium benzoic acid, sodium p-hydroxybenzoic acid, methyl p-hydroxybenzoate, kasone and 1,2-benzisothiazolin-3-one; and / or

[0029] The stabilizer is selected from one or more of disodium hydrogen phosphate, oxalic acid, succinic acid, adipic acid, borax, 2,6-di-tert-butyl-p-cresol, triethanolamine oleate, epoxidized vegetable oil, kaolin, bentonite, attapulgite, white carbon black, talc, montmorillonite and starch; and / or

[0030] Synergists are selected from synergist, piperonyl butoxide; and / or

[0031] The carrier is selected from one or more of ammonium salts, ground natural minerals, ground artificial minerals, silicates, resins, waxes, solid fertilizers, water, organic solvents, mineral oils, vegetable oils and vegetable oil derivatives.

[0032] 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;

[0033] 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;

[0034] 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;

[0035] 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;

[0036] Furthermore, the solid preparation is selected from wettable powders and water dispersible granules; the liquid preparation is selected from emulsifiable concentrates and suspension concentrates;

[0037] Application of the insecticide composition of the present invention in preventing and controlling agricultural and forestry pests and sanitary pests;

[0038] The insecticide composition of the present invention can be used to control pests on fruit trees, vegetables, ornamental plants, tea, cotton, and cereal crops;

[0039] Furthermore, the agricultural and forestry pests and sanitary pests are Lepidoptera and Thysanoptera pests;

[0040] Furthermore, the Lepidoptera 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 twig borer), Anomis sabulifera (jute looper), Anticarsia g emma talis, Archips argyrospila (fruittree leafroller), Archips rose leafroller, and A. rosana (rose leaf roller), Argyrotaenia spp. (tortricid moths), Argyrotaenia citrana (orange tortrix), Autographa gamma, Bonagota cranaodes, Borbo cinnara (rice leaf folder), Bucculatrix thurberiella (cotton leaf perforator), Caloptilia spp. (leaf miners), Capua reticulana, Carposina niponensis (peach fruit moth), Chilo spp., Chlumetia transversa (mango shoot borer), Choristoneura rosaceana (obliquebanded rose leaf roller), leafroller)), Chrysodeixis spp.), Cnaphalocerus medinalis (grass leafroller), Colias spp., Conpomorpha cramerella, Cossus cossus (carpenter moth), Crambus spp. (sod webworms), Cydia funebrana (plum fruit moth), Cydia molesta (oriental fruit moth), Cydia nignicana (pea moth), Cydia pomonella (codling moth), Darna diducta, Diaphania spp. (stem borer), borers), Diatraea spp. (stalk borers), Diatraea saccharalis (sugarcane borer), Diatraea graniosella (southwester corn borer), Earias spp. (cotton bollworm), Earias insulata (Egyptian bollworm), Earias vitella (rough northern bollworm), Ecdytopopha aurantianum, Elasmopalpus lignosellus (lesser cornstalk borer), Epiphysias postruttana (light brown apple moth), Ephestia spp. (flour moths), Ephestia cautella)(almond moth), tobacco pink moth.

[0041] Ephestia elutella (tobbaco moth), Ephestiakuehniella (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), Hedylepta indicate (bean leaf roller), leafwebber), Helicoverpa sp. (spotworm), Helicoverpa paarmigera, 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 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, Mythimna unipuncta (true armyworm), Neoleucinodes elegantalis, Nymphula depunctalis, Operophtherabrumata, Ostrinia nubilalis (European corn borer), Oxydia vesulia, Pandemis cerasana (common currant tortrix), Pandemis heparana (brown apple tortrix), Papilio demodocus, Pectinophora gossypiella (pink bollworm), Peridroma spp. (cutworms), 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 oleae (olive moth), Pseudaletia spp. (moths), Spodoptera litura Fabricius, Pseudaletia unipunctata (armyworm), Pseudoplusia includes (, Rachiplusia nu), Chilo suppressalis (Walker), Scirpophaga incertulas, Sesamia spp. (stem borer). spp.) (stemborers), Sesamia inferens (pink rice stem borer), Spodoptera frugiperda (JESmmith), 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 clothesmoth), Trichoplusia ni (cabbage worm), Pierisrapae Linne (cabbage worm), Tuta absoluta;

[0042] Further, the Thysanoptera pests include: Thrips palmiKarny, Thrips tabaci, Frankliniella fusca (tobacco thrips), Frankliniella occidentalis, (western flower thrips), Frankliniella shultzei, Frankliniella williamsi (cornthrips), Heliothrips haemorrhaidalis, greenhouse thrips, Riphiphorothrips cruentatus, Scirtothrips spp., Scirtothrips citri (citrus thrips), Scirtothrips spp. dorsalis) (yellow tea thrips), Taeniothrips rhopalantennalis, and Thrips spp.;

[0043] Furthermore, the lepidopteran pests include diamondback moth, beet armyworm, Spodoptera litura, fall armyworm, striped stem borer, cotton bollworm, and cabbage worm;

[0044] Furthermore, the Thysanoptera pests include Thrips palmi, Thrips tabaci, and Western Flower Thrips;

[0045] The present invention also provides a method for using the insecticide composition as described above, specifically applying an effective dose to the pests to be controlled or the medium in which they grow.

[0046] The insecticide composition of the present invention has the following advantages:

[0047] 1) The insecticide composition of the present invention exhibits a synergistic effect within a certain ratio range, with significant control effects and good rapid effectiveness;

[0048] 2) The insecticide composition of the present invention can delay insect pest resistance, is environmentally friendly, and can reduce usage costs. DETAILED DESCRIPTION

[0049] 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.

[0050] The composition of the present invention can be provided in the form of a formulation. It can be formulated as a suspension concentrate, emulsifiable concentrate, water-dispersible granules, aqueous emulsion, granules, wettable powder, or dispersible oil suspension, as needed. The content of the active ingredient in the composition of the present invention depends on the dosage when used alone, as well as the blending ratio and the degree of synergistic effect. The optimal range of the active ingredient content varies depending on the formulation type of the composition.

[0051] Preparation Example

[0052] Example 1:

[0053] 10% formula (Ⅰ) compound·sulfuronamide emulsifiable concentrate (7.5+2.5)

[0054] Formula: 7.5% compound of formula (I), 2.5% thiocyclopentadiene, 5.8% propylene carbonate, 7% castor oil polyoxyethylene ether, 1% N,N-dimethylformamide, 2% peanut oil, 32% cyclohexanone, and methyl oleate makes up the balance;

[0055] Preparation method: first add the active ingredient into the solvent and dissolve it completely, then add the emulsifier and stir evenly to form a uniform and transparent oily liquid, and then fill it to prepare the emulsifiable concentrate preparation of the composition of the present invention.

[0056] Example 2:

[0057] 20% formula (Ⅰ) compound·polyflubenzuronamide dispersible oil suspension (12+8)

[0058] Formula: 12% compound of formula (I), 8% polyflubenzuronide, 1% naphthalenesulfonate condensate, 2% sodium ligninsulfonate, 12% castor oil polyoxyethylene ether, 3% fatty alcohol polyoxyethylene ether, 2% calcium dodecylbenzenesulfonate, 0.2% silicon dioxide, 5% ethylene glycol, 0.2% gum arabic, and soybean oil makes up the balance;

[0059] Preparation method: According to the formula ratio, the active ingredients, surfactants and other functional additives are placed in the reactor in sequence, oil is added and mixed evenly, and the dispersible oil suspension product is obtained by high-speed shearing, wet sand grinding, and finally homogenization filtration.

[0060] Example 3:

[0061] 26% formula (Ⅰ) compound·sulfuronamide suspension (18+8)

[0062] Formula: 18% compound of formula (I), 8% thiocyclamide, 4.2% fatty alcohol polyoxyethylene ether, 1.5% sodium lignin sulfonate, 2.5% alkyl aryl polyoxyethylene ether polyoxypropylene ether, 1% magnesium aluminum silicate, 0.2% xanthan gum, 0.5% methyl parahydroxybenzoate, 5% glycerol, 0.5% organosilicon defoamer, and deionized water to make up the balance;

[0063] Preparation method: Add active ingredients to the wetting dispersant and defoamer, use glass beads, and wet grind with a sand mill to D 90 (90% of the particles have a particle size of less than 10 μm) to obtain a crushed slurry. A thickener, antifreeze agent, preservative, etc. are added to the crushed slurry and mixed evenly. Deionized water is added to 100%, and the suspension product is obtained by high-speed shearing.

[0064] Example 4:

[0065] 24% formula (Ⅰ) compound·polyflubendiamide suspension concentrate (14+10)

[0066] Formula: 14% compound of formula (I), 10% polyflubenzuronide, 1% sodium lignin sulfonate, 2.5% alkyl aryl polyoxyethylene ether polyoxypropylene ether, 3% sodium dioctyl succinate sulfonate, 1% magnesium aluminum silicate, 0.2% xanthan gum, 0.5% methyl parahydroxybenzoate, 5% ethylene glycol, 0.5% organosilicon defoamer, and deionized water to make up the balance;

[0067] Preparation method: same as Example 3.

[0068] Example 5:

[0069] 40% formula (Ⅰ) compound·sulfuronamide water dispersible granules (30+10)

[0070] Formula: 30% compound of formula (I), 10% thiocyclamide, 6% sodium salt of polycarboxylate, 2.5% sodium lignin sulfonate, 6% naphthalene sulfonate formaldehyde condensate, 3.5% sodium lauryl sulfate, 4% white carbon black, 2% bentonite, and kaolin makes up the balance;

[0071] Preparation method: According to the formula ratio, the active ingredients are added to the carrier, and surfactants and other functional additives are added thereto, mixed, and after air flow grinding, appropriate water is added, and then the water-dispersible granule product is obtained by kneading, granulating, drying and screening.

[0072] Example 6:

[0073] 52% formula (Ⅰ) compound·polyflubendiamide wettable powder (32+20)

[0074] Formula: 32% compound of formula (I), 20% polyflubenzuronamide, 8% naphthalenesulfonate formaldehyde condensate, 4% tea saponin, 5% sodium alginate, 7.5% light calcium carbonate, and kaolin makes up the balance;

[0075] Preparation method: Active ingredients, dispersants, wetting agents and fillers are mixed according to the formula ratio, stirred evenly in a stirring kettle, and pulverized and mixed evenly for multiple times in a jet mill to prepare the wettable powder of the composition of the present invention.

[0076] Indoor biological activity assay

[0077] Refer to agricultural industry standards:

[0078] Guidelines for Indoor Bioassay Tests of Pesticides - Insecticides Part 6: Insect Dipping Method (NY / T 1154.6-2006);

[0079] Guidelines for Indoor Bioassay Tests of Pesticides—Insecticides Part 14: Leaf Dip Method (NY / T 1154.14-2008);

[0080] "Guidelines for Indoor Bioassay Tests of Pesticides - Insecticides Part 7: Determination of Combined Action of Mixtures" NY / T1154.7-2006, etc.

[0081] Specific indoor toxicity test:

[0082] 1) Thysanoptera adults: glass tube method;

[0083] Test insect age: Use sensitive populations raised indoors for multiple generations, and select healthy and consistent female adults of the order Thysanoptera.

[0084] After the glass tube is evenly rolled with 250 μl of the drug solution, the cabbage leaves are punched into 1.5 cm diameter discs with a hole punch. The fresh cabbage slices are placed in the drug solution with tweezers and immersed for 10 seconds before being taken out. After the drug solution is naturally dried, the cabbage slices are placed in the glass tube. 20 female adults of Thysanoptera are sucked into the glass tube with an insect sucker and the tube is sealed with a 200-mesh gauze.

[0085] 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%.

[0086] 2) Lepidoptera larvae: a combination of leaf and insect dipping;

[0087] Test insect age: Use sensitive populations raised indoors for multiple generations, and select healthy and consistent second-instar Lepidoptera larvae.

[0088] 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 dries naturally, place the cabbage slices in a culture dish lined with moisturizing filter paper. Place 16 second-instar Lepidoptera larvae 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.

[0089] 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%.

[0090] 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.

[0091] Data statistics and analysis:

[0092] Based on the survey data, calculate the adjusted mortality rate of each treatment using the following formula, with the results rounded to two decimal places:

[0093]

[0094] Where:

[0095] P——mortality rate, in percentage (%);

[0096] K——indicates the number of dead insects, the unit is head;

[0097] N——represents the total number of insects processed, in heads.

[0098]

[0099] Where:

[0100] P1——adjusted mortality rate, in percentage (%);

[0101] P t ——Treatment mortality rate, expressed in percentage (%);

[0102] P0 - blank control mortality rate, in percentage (%).

[0103] 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; if the control mortality rate is greater than 20%, the test needs to be repeated.

[0104] 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.

[0105] The co-toxicity coefficient (CTC value) of the mixture is calculated as follows:

[0106]

[0107] Where:

[0108] ATI - measured toxicity index of mixture;

[0109] S——LC of standard pesticide 50 , the unit is milligrams per liter (mg / L);

[0110] M——LC of the mixture 50 , the unit is milligrams per liter (mg / L).

[0111] TTI=TI A *P A +TI B *P B

[0112] Where:

[0113] TTI – Theoretical Toxicity Index of Mixtures;

[0114] TI A ——Agent toxicity index;

[0115] P A ——The percentage of agent A in the mixture, in percentage (%);

[0116] TI B ——Toxicity index of agent B;

[0117] P B ——The percentage of agent B in the mixture, in percentage (%).

[0118]

[0119] Where:

[0120] CTC – Co-toxicity coefficient;

[0121] ATI - measured toxicity index of mixture;

[0122] TTI - Theoretical Toxicity Index of Mixture.

[0123] 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.

[0124] Test results:

[0125] Combined toxicity of mixed pesticides to Thrips tabaci:

[0126] The results in Table 1 show that the LC of the compound of formula (I) against Thrips tabaci 50 The LC value of polyflubendiamide against Thrips tabaci is 9.6589 mg / L. 50 It is 1.5805 mg / L.

[0127] The compound of formula (I) and polyflubendiamide mixed together have a good combined effect on Thrips tabaci, and at certain mass ratios, exhibit a significant synergistic effect. When the mass ratio of the compound of formula (I) to polyflubendiamide is 1:30 to 33:1, the co-toxicity coefficient against Thrips tabaci is greater than 80, indicating an additive or synergistic effect. When the mass ratio of the compound of formula (I) to polyflubendiamide is 1:24 to 33:1, the co-toxicity coefficient against Thrips tabaci is greater than 120, indicating a synergistic effect.

[0128] Table 1 Toxicity test results of different ratios of compound of formula (I) and polyflubendiamide against Thrips tabaci

[0129]

[0130]

[0131] Combined toxicity of mixed pesticides to Pieris rapae:

[0132] The results in Table 2 show that the LC of the compound of formula (I) against Pieris rapae 50 The LC value of thiocyclamide against Pieris rapae is 5.0143 mg / L. 50 It is 13.5733 mg / L.

[0133] The compound of formula (I) and thiocyclamide exhibited a strong synergistic effect against Pieris rapae, exhibiting a significant synergistic effect at certain mass ratios. When the mass ratio of the compound of formula (I) to thiocyclamide was 1:35 to 26:1, the co-toxicity coefficient against Pieris rapae was greater than 80, indicating an additive or synergistic effect. When the mass ratio of the compound of formula (I) to thiocyclamide was 1:18 to 26:1, the co-toxicity coefficient against Pieris rapae was greater than 120, indicating a synergistic effect.

[0134] Table 2 Toxicity test results of different ratios of compound of formula (I) and thiocyclamide to Pieris rapae

[0135]

[0136] Field efficacy examples

[0137] Field trial 1

[0138] Experimental crops: Panax notoginseng (2-year-old);

[0139] Test target: Thrips tabaci;

[0140] Experimental location: Gaolong Township, Tianlin County, Baise City, Guangxi Zhuang Autonomous Region;

[0141] Trial date: November 10, 2022;

[0142] Application method: Use a knapsack electric sprayer in the test field to apply pesticides manually according to the designed plan. First spray the whole plant, and then focus on spraying the back of the leaves.

[0143] 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;

[0144] Test agent:

[0145] Table 3 Field test design and dosage

[0146]

[0147] Test method: Apply the pesticide once at the early stage of the outbreak of Thrips tabaci.

[0148] Plot size and repetition: random block arrangement, plot size 25m 2 , each treatment was repeated 4 times.

[0149] Survey method: Randomly sample five points in each plot and use the patting method. Randomly survey 4 Panax notoginseng trees at each point. Gently gather the leaves of each Panax notoginseng tree together and pat them 3 times. Count the number of thrips shaken into the white porcelain plate. Survey the base number of insect population before spraying, and survey the number of residual insects 1 day and 7 days after spraying.

[0150] Calculation formula and data analysis:

[0151]

[0152] Field efficacy test results:

[0153] The different treatments with the tested pesticides were safe for Panax notoginseng, with no flower, fruit, or leaf drop or phytotoxicity observed. The efficacy of the pesticides against Thrips tabaci is shown in Table 4.

[0154] The results in Table 4 show that 24% of the compound of formula (I)·polyflubendiamide suspension concentrate (14+10) showed good quick-acting effect on Thrips tabaci at 1 day after application, and the dosage of active ingredient was 15 and 25 g ai / hm 2 The control efficacy was 80.42% and 86.27% respectively. With the increase of time, 7 days after application, the control efficacy of 24% formula (Ⅰ) compound·polyflubendiamide suspension concentrate (14+10) against Thrips tabaci increased, and the dosage of active ingredient was 15 and 25 g ai / hm 2The protective effects at different times were 90.70% and 94.38% respectively, which were significantly higher than the control single-dose and lasted longer.

[0155] Table 4 Field control effects of different treatment agents on Panax notoginseng thrips

[0156]

[0157] 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).

[0158] Field trial 2

[0159] Test crops: Chinese cabbage (Jiaobai No. 4);

[0160] Test target: Pieris rapae;

[0161] Experimental location: Cruciferous vegetable planting experimental field in Pingdu, Qingdao, Shandong Province;

[0162] Trial time: May 30, 2022;

[0163] Application method: Use a knapsack electric sprayer in the test field to apply pesticides manually according to the designed plan. First spray the whole plant, and then focus on spraying the back of the leaves.

[0164] 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;

[0165] Test agent:

[0166] Table 5 Field test design and dosage

[0167]

[0168] Test method: Apply the pesticide once during the peak period of cabbage looper occurrence (mostly 2nd to 4th instar).

[0169] Plot size and repetition: random block arrangement, plot size 20m 2 , each treatment was repeated 4 times.

[0170] 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 7 days after spraying.

[0171] Calculation formula and data analysis:

[0172]

[0173] Field efficacy test results:

[0174] As can be seen in Table 6, three days after application, all tested agents were able to effectively control the number of cabbage loopers. Among them, the 10% formula (I) compound sulfocyclotetramid emulsifiable concentrate (7.5 + 2.5) showed the best control effect and a long-lasting effect. Three days after application, the active ingredient dosage was 20 and 30 g ai / hm2. 2 The control efficacy was 85.28% and 87.42% respectively; 7 days after application, the dosage of active ingredient was 20 and 30 g ai / hm 2 The prevention effects were 91.34% and 93.29% respectively.

[0175] Table 6 Field control effects of different treatment agents on cabbage worms

[0176]

[0177] 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).

[0178] Safety: During the trial period and subsequent observations, the Chinese cabbage grew normally and no obvious pesticide damage was observed.

[0179] The insecticide composition or formulation obtained by compounding the present invention exhibits significant control efficacy, outperforming single agents in delaying the development of insecticide resistance and prolonging insecticide retention. Furthermore, no crop damage was observed with the compounded formulation in tests, demonstrating that the insecticide composition or formulation, while enhancing synergistic insecticide efficacy, can reduce production and use costs and is safe for crops.

[0180] Although the present invention has been described in detail above using general descriptions and specific implementation plans, it is obvious to those skilled in the art that some modifications or improvements can be made thereto based on the present invention. Therefore, these modifications or improvements made without departing from the spirit of the present invention shall fall within the scope of protection claimed by the present invention.

Claims

1. An insecticidal composition, characterized in that Contains active ingredient A and active ingredient B, active ingredient A is a compound of formula (I), and the structural formula is as follows (I); the active ingredient B is polyflubendiamide, and the mass ratio of the compound of formula (I) to polyflubendiamide is 1:24~33:

1.

2. The insecticidal composition according to claim 1, wherein: The mass ratio of the compound of formula (I) to polyflubendiamide is 1:24, 1:13, 2:11, 4:3, 9:4, 13:1, and 33:

1.

3. The insecticidal composition according to claim 1, wherein: Based on the total mass 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%.

4. The insecticidal composition according to claim 1, wherein: In addition to the active ingredients, the insecticide composition also includes agriculturally acceptable auxiliary ingredients, which are selected from one or more of wetting agents, dispersants, emulsifiers, thickeners, disintegrants, antifreeze agents, defoaming agents, solvents, preservatives, stabilizers, synergists or carriers.

5. The insecticidal composition according to claim 4, characterized in that: The insecticide composition is prepared into an agriculturally acceptable formulation, wherein the formulation is selected from solid formulations and / or liquid formulations; the solid formulation is selected from wettable powders and water-dispersible granules; and the liquid formulation is selected from emulsifiable concentrates, emulsions in water, microemulsions, suspensions, suspoemulsions, and dispersible oil suspensions.

6. Use of the insecticide composition according to any one of claims 1 to 5 in preventing and controlling agricultural and forestry pests and sanitary pests.

7. The use according to claim 6, characterized in that: The agricultural and forestry pests and sanitary pests are Lepidoptera and Thysanoptera pests.

8. The use according to claim 7, characterized in that: The Thysanoptera pests are palm thrips, tobacco thrips and western flower thrips.

9. The use according to claim 6, characterized in that: The insecticide composition is applied to the pests to be controlled or the medium where the pests grow at an effective dose.

Citation Information

Patent Citations

  • Pesticidal composition comprising a compound containing a 1, 2, 4-triazolyl and a 4-oxothiazolyl and another pesticidal agent

    CN120187298A

  • Processes related to formation of n-(4-chloro-2-(pyridin-3-YL)thiazol-5-YL)- n-ethyl-3-(methylsulfonyl)propanamide

    WO2024168001A1