Insecticidal composition containing flufenacet carbonate and application thereof
By combining flufenoxuron-methyl with compounds of Formula I in a certain proportion and preparing them into suspension or emulsifiable concentrate formulations, the problem of pesticide resistance in target pests is solved, and the synergistic effect of the insecticidal composition and the reduction of pesticide dosage are achieved, with both rapid and long-lasting effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANDONG DEHAO CHEMICAL CO LTD
- Filing Date
- 2025-12-22
- Publication Date
- 2026-05-05
AI Technical Summary
Long-term use of a single insecticide leads to increased resistance in target pests, decreased efficacy, and shortened compound lifespan. Therefore, there is a need for an insecticide composition that can synergistically enhance efficacy and reduce dosage.
Flufenoxam and a compound of formula I are combined in a certain proportion to form an insecticidal composition, and adjuvants are added to prepare it into formulations such as suspension concentrate, emulsifiable concentrate or water-dispersible granules for the control of agricultural pests.
It achieves a synergistic effect of insecticidal composition, improves efficacy, reduces dosage, delays pest resistance, and has both rapid and long-lasting effects.
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Figure CN121970769A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of insecticides, specifically relating to an insecticidal composition containing flufenoxuron and its application. Background Technology
[0002] Flufenoxam, a quinoline insecticide, kills pests by inhibiting electron transport complex III, preventing cells from utilizing energy and blocking energy conversion. It has rapid action and dual action of contact and stomach poison, but no systemic effect. It can be used to control thrips, whiteflies, and lepidopteran pests on fruit trees, vegetables, tea trees, and other crops. It has low toxicity to birds and bees.
[0003] Compound I is (S)-4-(5-(3-chloro-5-(trifluoromethyl)phenyl)-5-(trifluoromethyl)-4,5-dihydroisoxazo-3-yl)-2-methyl-N-(2-oxo-2-((2,2,2-trifluoroethyl)amino)ethyl)benzamide, belonging to the class of allosteric regulators of γ-aminobutyric acid-gated chloride channels. It exhibits broad-spectrum activity, high activity, and high selectivity, demonstrating good biological activity against agricultural pests of Hemiptera, Thysanoptera, Diptera, and Lepidoptera. Its structural formula is as follows: (Formula I).
[0004] Chemical control is a common method for managing agricultural pests. However, long-term use of a single pesticide can lead to increased resistance in target pests, decreased efficacy, and a shortened lifespan of the compound. Scientifically and rationally combining pesticides can reduce dosage, improve control over target pests, slow the development of resistance, and extend the lifespan of the compound. Summary of the Invention
[0005] Based on the above, the present invention aims to provide an insecticidal composition containing flufenoxuron and its formulation for controlling agricultural pests, especially thrips. The insecticidal composition has a synergistic effect, which can improve efficacy while reducing the dosage.
[0006] The technical solution of the present invention is as follows: An insecticidal composition comprising active ingredient A and active ingredient B, wherein active ingredient A is flufenoxuron, and active ingredient B is a compound of formula I: (Formula I), wherein the mass ratio of active ingredient A to active ingredient B is 1~30:1~30.
[0007] In a further embodiment, the mass ratio of active ingredient A to active ingredient B is 1~10:1~10.
[0008] In a further embodiment, the mass ratio of active ingredient A to active ingredient B is 1~5:1~5.
[0009] In a further embodiment, the active ingredient accounts for 1% to 50% by weight of the insecticide composition.
[0010] In a further embodiment, the insecticidal composition further includes an adjuvant selected from one or more of the following: wetting agents, dispersants, emulsifiers, thickeners, disintegrants, antifreeze agents, defoamers, solvents, preservatives, stabilizers, binders, synergists, and carriers.
[0011] In a further embodiment, the insecticidal composition can be prepared into any agriculturally acceptable formulation.
[0012] In a further embodiment, the formulation includes suspension concentrates, emulsifiable concentrates, water-dispersible granules, and seed treatment agents.
[0013] The application of the insecticidal composition in the control of agricultural pests.
[0014] In a further embodiment, the agricultural pests include Lepidoptera, Thysanoptera, and Hemiptera.
[0015] In a further embodiment, the agricultural pest is the thrips.
[0016] The beneficial effects of this invention are: 1. The insecticidal composition provided by the present invention has a significant synergistic effect and can effectively control target pests.
[0017] 2. The insecticidal composition provided by the present invention can reduce the dosage and cost of pesticides while ensuring efficacy.
[0018] 3. The insecticidal composition provided by the present invention can effectively delay the development of pesticide resistance in pests. Detailed Implementation
[0019] To enable those skilled in the art to better understand the technical solutions of the present invention, the present invention will be further described in detail below with reference to specific embodiments. Obviously, the described embodiments are merely some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] Unless otherwise specified, the experimental methods used in the following examples are conventional methods.
[0021] Unless otherwise specified, all raw materials and reagents used in the following examples are commercially available.
[0022] I. Indoor toxicity test Test target: Palm thrips ( Thrips palmi Karny).
[0023] Test reagents: flufenoxuron, compound of formula I.
[0024] Test method: The test was conducted in accordance with the People's Republic of China agricultural industry standard NY / T1154.7—2006.
[0025] Chili pepper leaves were immersed in different concentrations of pesticide solution diluted according to the preliminary experimental results. After 5 seconds, they were removed and placed on filter paper to air dry. The leaves were then placed face up on a lower glass plate, with a suitable size filter paper placed underneath. A suitable amount of distilled water was added to the filter paper to maintain moisture. Adult palm thrips were transferred into the round holes of the glass plate using a pipette. The glass plate was then covered and secured with clamps. Four replicates were set up for each pesticide concentration, with each replicate containing 30 adult palm thrips. The glass plates containing the test insects were placed in an incubator for observation. The mortality of the test insects was checked 72 hours after treatment. The insects were gently touched with a brush; those that did not move were considered dead. The data were recorded.
[0026] Based on the survey data, the mortality rate or adjusted mortality rate for each treatment was calculated using the following formula: P1 (mortality rate) = K (number of dead insects) / N (total number of insects treated) P2 (corrected mortality rate) = P t (Treatment mortality rate) - P0 (blank control mortality rate) / 1 - P0 (blank control mortality rate) If the mortality rate of the blank control is <5%, no correction is needed, and P1 (mortality rate) is used for calculation; if the mortality rate of the blank control is between 5% and 20%, correction is needed, and P2 (corrected mortality rate) is used for calculation; if the mortality rate of the control is >20%, the experiment needs to be repeated.
[0027] LC50 of each reagent was calculated using SPSS 18. 50 Values and regression equations.
[0028] The co-toxicity coefficient (CTC) of the mixture was calculated using the Sun Yunpei method to evaluate its synergistic effect. The specific calculation method is as follows: Single-dose toxicity index = LC50 of standard reagent 50 / Test reagent LC 50 ×100 The experimentally measured toxicity index (API) of the mixture = the LC of the standard reagent 50 (S) / Mixed LC 50 (M) × 100 Theoretical Toxicity Index (TTI) of Mixture = Toxicity Index (PI) of Agent A A Percentage content of drug A in the mixture (P) A ) + B Agent Toxicity Index (PI) BPercentage content of drug B in the mixture (P) B ) Co-toxicity coefficient (CTC) = Measured toxicity index (API) of the mixture / Theoretical toxicity index (TTI) of the mixture × 100 Among them, CTC≤80 indicates antagonistic effect, 80<CTC<120 indicates additive effect, and CTC≥120 indicates synergistic effect.
[0029] The results of the toxicity test are as follows. The co-toxicity coefficient of each treatment is greater than 120. The co-toxicity coefficient is the highest when the ratio of flufenoxuron to compound I is 3:1, reaching 193.517.
[0030] Table 1. Results of toxicity assays
[0031] Note: In the regression equation, the logarithmic value of the drug concentration (x) is the independent variable, and the probability value of the control effect (y) is the dependent variable.
[0032] The above results indicate that the combination of flufenoxuron and compound I exhibits a synergistic effect at all treatment ratios, with the most significant synergistic effect observed when the ratio of the two compounds reaches 3:1.
[0033] II. Formulation Examples Example
[0034] 15% flufenoxuron, 5% Formula I compound, 2% phosphate ester dispersant, 1% EO-PO block copolymer wetting and dispersing agent, 1% magnesium aluminum silicate, 0.1% xanthan gum thickener, 0.1% BIT preservative, 3% ethylene glycol, 0.2% silicone defoamer, deionized water to 100%.
[0035] The above raw materials are placed in a reaction vessel according to the formula ratio, water is added and mixed evenly, and after high-speed shearing, wet sand milling, and finally homogenization filtration, a 20% flufenoxuron-formula I compound suspension is obtained. Example
[0036] 20% flufenoxuron, 4% Formula I compound, 5% sodium polycarboxylate, 2% sodium alkylnaphthalene sulfonate, 3% ammonium sulfate, 1% polyvinylpyrrolidone, bentonite to make up to 100%.
[0037] The active ingredient is added to the carrier according to the formula ratio, and other adjuvants are added to it. After mixing, the mixture is pulverized by air jet and 10-25% water is added. After kneading, granulation, drying and sieving, 24% flufenoxuron-formula I compound water dispersible granules are obtained. Example
[0038] 12% flufenoxuron carbonate, 8% Formula I compound, 5% tristyrylphenol polyoxyethylene ether, 2% castor oil polyoxyethylene ether, solvent oil to bring to 100%.
[0039] The above raw materials were placed in a reaction vessel according to the formula ratio, stirred and mixed, and filtered to obtain 20% flufenoxuron-formula I compound emulsifiable concentrate.
[0040] Comparative Example 1 10% Formula I compound, 2% polycarboxylate dispersant, 1% EO-PO block copolymer wetting and dispersing agent, 1% magnesium aluminum silicate, 0.1% BIT preservative, 2% ethylene glycol, 0.2% silicone defoamer, deionized water to 100%.
[0041] The above raw materials are placed in a reaction vessel according to the formula ratio, water is added and mixed evenly, and after high-speed shearing, wet sand milling, and finally homogenization and filtration, a 10% Formula I compound suspension is obtained.
[0042] Comparative Example 2 10% flufenoxuron, 3% polycarboxylate dispersant, 1.5% EO-PO block copolymer wetting and dispersing agent, 1% magnesium aluminum silicate, 0.1% BIT preservative, 2% ethylene glycol, 0.2% silicone defoamer, deionized water to 100%.
[0043] The above raw materials are placed in a reaction vessel according to the formula ratio, water is added and mixed evenly, and after high-speed shearing, wet sand milling, and finally homogenization filtration, 10% flufenoxuron suspension is obtained.
[0044] III. Field efficacy trials Test reagents: Example 1, Comparative Example 1, Comparative Example 2.
[0045] The tested crops and varieties were: chili peppers and Haijiao No. 1.
[0046] Test target: Palm thrips ( Thrips palmi Karny).
[0047] Test location: Datian Town, Dongfang City, Hainan Province.
[0048] Experimental design: The experiment was conducted in accordance with NY / T 1464.6-2007. There were four treatment groups, with each treatment replicated four times. Each plot was 30 m². 2 The plots were randomly arranged, with protective rows between plots. At the initial stage of thrips infestation, electric sprayers were used for uniform spraying, with a water consumption of 45 L / acre. The specific design for each treatment is as follows: Table 2. Treatment agents and dosages
[0049] Efficacy survey: Fifteen leaves were selected from the upper part of the chili pepper plant. The number of live thrips was surveyed before application, and 1 day, 3 days, and 7 days after application. The pest population reduction rate and control efficacy were calculated based on the survey data. The calculation formula is as follows: Insect population reduction rate (%) = (Insect population before application - Insect population after application / Insect population before application) × 100 Control efficacy (%) = (Pest population reduction rate in the treated area - Pest population reduction rate in the control area / 100 - Pest population reduction rate in the control area) × 100 As shown in the table below, one day after application, the control efficacy of all treatments reached over 80%, with the treatment in Example 1 being superior to the single-agent treatment, achieving a control efficacy of 91.78% and rapidly reducing the thrips population. Three days after application, the control efficacy of all treatments improved, with the control efficacy of the treatment in Example 1 reaching 95.56%, significantly higher than the single-agent treatment. Seven days after application, the control efficacy of all treatments decreased, with the control efficacy of the treatment in Example 1 remaining at 89.72%, still showing good control over thrips.
[0050] Table 3 Field control effect of palm thrips
[0051] The above results indicate that the combination of flufenoxuron and compound I has a synergistic effect. This combination has excellent control effect on palm thrips, with good rapid action and long-lasting effect. It can reduce the dosage and frequency of application, and can also slow down the development of resistance.
[0052] Although embodiments of the invention have been disclosed for illustrative purposes, those skilled in the art will understand that various substitutions, variations, and modifications are possible without departing from the spirit and scope of the invention and the appended claims, and therefore the scope of the invention is not limited to the contents disclosed in the embodiments.
Claims
1. An insecticidal composition, characterized in that, It comprises active ingredient A and active ingredient B, wherein active ingredient A is flubendiate and active ingredient B is a compound of formula I: (Formula I), wherein the mass ratio of active ingredient A to active ingredient B is 1~30:1~30.
2. The insecticidal composition according to claim 1, characterized in that, The mass ratio of active ingredient A to active ingredient B is 1~10:1~10.
3. The insecticidal composition according to claim 1, characterized in that, The mass ratio of active ingredient A to active ingredient B is 1~5:1~5.
4. The insecticidal composition according to claim 1, characterized in that, The active ingredient accounts for 1% to 50% of the weight percentage of the insecticide composition.
5. The insecticidal composition according to claim 1, characterized in that, The insecticidal composition further includes adjuvants selected from one or more of the following: wetting agents, dispersants, emulsifiers, thickeners, disintegrants, antifreeze agents, defoamers, solvents, preservatives, stabilizers, binders, synergists, and carriers.
6. The insecticidal composition according to claim 1, characterized in that, The insecticidal composition can be prepared into any agriculturally acceptable formulation.
7. The insecticidal composition according to claim 6, characterized in that, The formulations include suspension concentrates, emulsifiable concentrates, water-dispersible granules, and seed treatment agents.
8. The use of the insecticidal composition according to any one of claims 1 to 7 in the control of agricultural pests.
9. The application as described in claim 8, characterized in that, The agricultural pests mentioned include Lepidoptera, Thysanoptera, and Hemiptera.
10. The application as described in claim 9, characterized in that, The agricultural pest in question is the thrips.