Pelargonic acid herbicide composition
A stable pelargonic acid emulsifiable composition with anionic and nonionic surfactants and an organic solvent addresses stability and efficiency issues, offering prolonged weed control with reduced application rates.
Patent Information
- Application Number
- JP2022550001
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-02-21
- Filing Date
- 2021-02-18
- Publication Date
- 2025-09-10
- Estimated Expiration
- 2041-02-18
AI Technical Summary
Existing pelargonic acid herbicide formulations suffer from low stability in emulsions, phase separation issues, and high application rates, making them inefficient and uneconomical for weed control.
A concentrated emulsifiable composition comprising pelargonic acid, anionic and nonionic surfactants, and an organic solvent, which forms stable aqueous emulsions even at high concentrations, maintaining efficacy for over 2-4 weeks and reducing the required active ingredient volume.
The composition achieves enhanced herbicidal activity with reduced active ingredient use, providing stable emulsions under varying temperature and water hardness conditions, effectively controlling weeds for an extended period.
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Abstract
Description
[Technical Field]
[0001] The project leading to this invention has received funding from the European Union's Horizon 2020 research and innovation programme, Bio Based Industries Joint Undertaking Public-Private Partnership, under grant agreement No. 745012. The present invention relates to a concentrated emulsifiable composition comprising pelargonic acid, at least one emulsifier (preferably in acid form) from the class of anionic surfactants, at least one emulsifier from the class of nonionic surfactants, and at least one organic solvent, a method for preparing said composition, and the use of said composition in herbicidal applications. The composition is also advantageously used as a plant growth regulator. [Background technology]
[0002] Plant protection products are generally intended for one of the following uses: to protect plants or plant products from or prevent the effects of all harmful organisms, to affect vital plant processes such as substances other than nutrients that affect plant growth, to preserve plant products, to destroy undesirable plants or plant parts, or to suppress or prevent undesirable plant growth. Plant protection products include herbicides, or herbicides, which are substances used to control weeds. Herbicides can be selective or systemic (non-selective). The selectivity of the herbicidal action is essentially related to the nature of the active ingredient, its concentration, the method of application of the herbicide to the soil or plants, and even the mechanical vehicle used for its application.
[0003] Herbicides applied to the foliage can act either locally by damaging leaf tissue and shoots, or by systemic mechanisms after absorption and transport of the substance to the root parts of the plant (systemic or transport herbicides). Herbicides applied to the soil act by directly damaging the root system or by preventing seed germination. Another classification of herbicides is into pre-emergent herbicides, which target weeds at the seedling stage and suppress their development before they can compete with the crop, and post-emergent herbicides, which suppress weeds once they have already developed. Pre-emergent herbicides tend to leave residues in the soil, which can be an environmental disadvantage.
[0004] Fatty acid-based compositions for use in herbicidal applications are known from the literature; see, for example, patent applications WO 91 / 05471 and WO 91 / 05472 (Safer Inc.), EP 0 868 849 (W. Neudorff GmbH KG). In particular, pelargonic acid or nonanoic acid is active against a broad spectrum of annual and perennial weeds, monocotyledonous and dicotyledonous plants, algae, and mosses. Its herbicidal activity is typically post-emergence weed suppression, i.e., contact activity at the foliar level. Pelargonic acid generally acts as a contact desiccant on the above-ground parts of weeds to which the product is applied. As indicated in the WAASA Herbicide Handbook (January 1, 1998, pp. 55-57), nonanoic acid, available commercially under the trade name Scythe®, is a nonselective, broad-spectrum foliar herbicide that can be used to suppress plant growth during germination.
[0005] Pelargonic acid has no residual effect, which has some disadvantages, such as insufficient duration of weed suppression and the possibility of regrowth. Furthermore, one of the problems associated with the use of pelargonic acid as a herbicide is the high application rates required to achieve the desired effect, making its use in open fields difficult and uneconomical. A herbicide formulation commercially available under the trade name FINALSAN®, for example, contains 18.8% by weight of pelargonic acid and is diluted in water at a rate of 20 L of product per 100 L of water (according to the label) and applied in the field at a rate of 170 L of product per hectare, requiring approximately 830 L of water / ha.
[0006] To reduce the required volume, it is generally necessary to formulate more concentrated pelargonic acid compositions that can be diluted with water before use and retain herbicidal activity. The resulting diluted compositions are typically prepared in the form of emulsions. Such aqueous emulsions are generally characterized by low stability and, as a result, may exhibit phase separation, making them unsuitable for effective application to weeds. Furthermore, the stability of such emulsions is highly dependent on temperature and water hardness, and they can only be used under certain conditions. To improve emulsion stability, the above-described concentrated compositions generally contain an emulsifier. For example, the commercially available formulation BELOUKHA® contains 72% by weight of pelargonic acid and auxiliary ingredients, is diluted in water at 8% v / v, and is applied in the field at a rate of 16 L / ha. However, when emulsified in water at this application rate, this formulation exhibits extensive phase separation, which occurs immediately after preparation and occurs more quickly the higher the temperature and hardness of the water used. This makes it difficult to evenly distribute the product over the field, even when prepared immediately before use. Summary of the Invention [Problem to be solved by the invention]
[0007] Therefore, there remains a need to find alternative pelargonic acid formulations characterized by a high content of active substance that can be diluted with water to obtain ready-to-use emulsions that are stable enough to ensure full efficacy in herbicidal applications. [Means for solving the problem]
[0008] The present applicant has discovered that the above-mentioned technical problems can be solved by a concentrated emulsifiable composition comprising, in addition to pelargonic acid, at least one emulsifier belonging to the class of anionic surfactants, at least one emulsifier belonging to the class of nonionic surfactants, and at least one organic solvent. In particular, the composition according to the present invention can be advantageously diluted with water to produce an aqueous emulsion with good emulsion stability even at high concentrations of the active ingredient. Surprisingly, the composition according to the present invention, when applied in the form of an aqueous emulsion, exhibits significantly increased efficacy as a full-action herbicide, even at the same active ingredient dose, compared to commercially available formulations based on pelargonic acid or formulations described in the literature. Advantageously, the composition according to the present invention can also maintain its efficacy for more than 2-4 weeks, depending on weather conditions, effectively controlling weeds for a period long enough to prevent the regrowth of most weeds.
[0009] These features also enable a significant reduction in the amount of active ingredient required to adequately suppress weed growth, thereby reducing the volume of formulation used in the field. US 7,820,594 B2 discloses a herbicidal composition comprising pelargonic acid and an anionic or nonionic surfactant, which has been shown to be effective in controlling weeds only for the first few days after treatment. DETAILED DESCRIPTION OF THE INVENTION
[0010] In a first aspect, the present invention provides a method for producing a medicament for the treatment of a pulmonary arthritis, comprising: (a) 40 to 90% by weight of pelargonic acid; and (b) up to 15 wt. % of a compound represented by the formula (I): (R-(OCHR1-CHR2) n -(OCHR3-CHR4) m -O-) q -Z (In the formula, R is a straight or branched C4-C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH3; n and m are the same or different integers of 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in the acid form or a salt thereof. at least one emulsifier belonging to the class of anionic surfactants having the formula: (c) 5 to 55 wt. % of at least one organic solvent; (d) 1% to less than 15% by weight of at least one emulsifier belonging to the class of nonionic surfactants wherein the ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is 0.05 to 0.15.
[0011] Surprisingly, it has been found that, for the same amount of active ingredient applied to the field, when the ratio of the weight content of the sum of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is higher than 0.15, the herbicidal activity of the composition actually decreases. The composition of the present invention contains 40 to 90% by weight, preferably 40 to 85% by weight, more preferably 75 to 85% by weight of pelargonic acid relative to the total weight of the composition.
[0012] The composition of the present invention comprises from >0% to 15% by weight of at least one emulsifier belonging to the class of anionic surfactants having formula (I). Preferably, the emulsifier belonging to the class of anionic surfactants having formula (I) is ≧0.5, ≧1, ≧2, ≧3, ≧4, ≧5% by weight and ≦15, ≦14, ≦13, ≦12, ≦11, ≦10, ≦9% by weight, relative to the total weight of the composition. Preferably, the emulsifier belonging to the class of anionic surfactants having formula (I) is 3% to 13% by weight, more preferably 5% to 10% by weight, relative to the total weight of the composition.
[0013] The composition of the present invention contains 5 to 55% by weight, preferably 5 to 40% by weight, of at least one organic solvent based on the total weight of the composition. The composition of the present invention comprises at least one emulsifier belonging to the class of nonionic surfactants, the total amount of which is from 1 to less than 15% by weight, preferably from 1 to 10% by weight, more preferably from 1 to 5% by weight, relative to the total weight of the composition. The composition according to the invention is particularly advantageous if the content of anionic surfactant (b) is more than 5% by weight, preferably from 10 to 60% by weight, relative to the total weight of the anionic surfactant and the nonionic surfactant.
[0014] The compositions according to the invention can be easily formulated to provide homogeneous solutions with high stability, which can be conveniently stored and transported. When diluted in water at the dosages used, the compositions according to the invention form stable emulsions under different conditions of temperature and water hardness, even at high concentrations of pelargonic acid. The compositions according to the present invention also have a less pronounced odor than commercial formulations. These compositions are also surprisingly effective as herbicides, advantageously having total action. The compositions according to the present invention are typically liquid.
[0015] The pelargonic acid of the compositions of the present invention is generally prepared from vegetable oils with a high oleic or erucic acid content. Vegetable oils used to prepare the pelargonic acid useful in the compositions of the present invention are typically selected from the group consisting of sunflower oil, safflower oil, oils from the Brassicaceae family, such as Crambe abyssinica, Brassica carinata, and Brassica napus (rapeseed), and oils from the Thistle family, such as Cynara cardunculus (milk thistle). The pelargonic acid of the compositions of the present invention is preferably prepared from high oleic sunflower oil.
[0016] The pelargonic acid of the composition according to the invention is advantageously produced by a process of oxidative cleavage of a vegetable oil, preferably high oleic sunflower oil, typically in the presence of one or more oxidizing agents, as described, for example, in patent EP 2519489. The process of oxidative cleavage of vegetable oils is advantageously carried out in the absence of ozone.
[0017] Processes for the oxidative cleavage of vegetable oils generally differ from processes commonly known in the art for the production of saturated aliphatic monocarboxylic acids, in particular pelargonic acid, such as the process of ozonolysis of rapeseed oil or tallow oil, or the process of hydroformylation of olefins, in particular 1-octene.
[0018] The composition according to the invention may contain pelargonic acid in a mixture with other aliphatic monocarboxylic acids, which are advantageously present in an amount of from 0.5 to 15%, preferably from 0.5 to 10%, more preferably from 0.5 to 8% by weight relative to the weight of pelargonic acid. When present, said aliphatic monocarboxylic acids other than pelargonic acid are preferably chosen from: saturated aliphatic monocarboxylic acids, preferably selected from the group consisting of caprylic acid, capric acid, undecanoic acid, 10-undecenoic acid, lauric acid, myristic acid, palmitic acid, oleic acid, ricinoleic acid and mixtures thereof; monounsaturated aliphatic monocarboxylic acids, preferably of formula (II): CH3-(CH2) m -CH=CH-(CH2) n- COOH wherein the sum (m+n) is equal to 5, and m and n each represent 0 or an integer selected from 1, 2, 3, 4, and 5, as described, for example, in patent application WO2019 / 030060; -Formula (III):RC(O)-(CH2) n -COOH (wherein R represents H or an alkyl group, preferably a C1-C5 alkyl group, more preferably a C1-C4 alkyl group, and n represents 0, 1 or 2), such as those described in patent application WO2019 / 030062.
[0019] The composition according to the invention may comprise at least one additional herbicide, preferably selected from the group consisting of glyphosate, sulfanilureas, carfentrazone-ethyl, derivatives thereof and mixtures thereof.
[0020] Non-limiting examples of herbicides include the following active ingredients: aclonifen, amidosulfuron, aminopyralid, azimsulfuron, benfluralin, bensulfuron-methyl, bifenox, bispyribac-sodium, cyhalofop-butyl, cycloxydim, cyprosulfamide, clethodim, clodinafop-propargyl, clomazone, clopyralid, cloquintocet-mexyl, chlorotoluron, and clotoflurane. Luprofam, chlorsulfuron, dazomet, desmedipham, dicamba, diclofop-methyl, diflufenican, dimethenamid-P, ethofumesate, ethoxysulfuron, fenclorim, fenoxaprop-P-ethyl, flazasulfuron, florasulam, fluazifop-P-butyl, flufenacet, fluroxypyr, foramsulfuron, glyphosate, glyphosate trimesium, glyphosate ammonium, halo Xyfop-P, Imazamox, Imazosulfuron, Iodosulfuron-methyl-sodium, Ioxynil, Isoproturon, Isoxaben, Isoxaflutole, Lenacil, Mesosulfuron-methyl, Mesotrione, Metamitron, Metam sodium, Metazachlor, Metosulam, Metribuzin, Metsulfuron-methyl, Nicosulfuron, Orthosulfamuron, Oxadiargyl, Oxadiazon, Oxasulfuron, Oxyfluorfen, Pendimethalin, Penoxsulam, Petoxamide, Picolinafen, Pyridate, Propyzamide, Prosulfuron, Pyraflufen-ethyl, Rimsulfuron, S-Metolachlor, Sulcotrione, Sulfosulfuron, Tembotrione, Terbutylazine, Thifensulfuron-methyl, Triallate, Tralkoxydim, Triasulfuron, Tribenuron-methyl, Triflusulfuron-methyl, and Tritosulfuron.
[0021] The emulsifier (b) of the composition according to the invention comprises at least one surfactant chosen from the anionic surfactants of formula (I): According to one advantageous aspect of the invention, only one of R1, R2, R3 and R4 is CH3. According to another embodiment, R1, R2, R3 and R4 are H. In other words, if one of n or m is 0, the substituents of the remaining repeat units (R1 and R2 or R3 and R4) are H. Preferably, the emulsifier belonging to the class of anionic surfactants is selected from the group of anionic surfactants in acid form.
[0022] For the purposes of the present invention, the term "anionic surfactant in acid form" means a surfactant whose negative charge (anion) is neutralized by an H+ ion. Preferably, Z represents a phosphate group. The anionic surfactant is preferably selected from the group consisting of mono- and / or di-esterified sulphuric acid and mono- and / or di-esterified phosphate, more preferably of the monoester type.
[0023] The anionic surfactant is most preferably selected from the group consisting of, for example, mono- and di-[alkyl-polyethylene glycol] phosphates, mono- and di-[alkyl-polyethylene glycol] phosphates, mono- and di-[alkyl-polyethylene glycol] sulfates, mono- and di-[alkyl-polyethylene glycol] sulfates, mono- and di-[alkyl-polyethylene glycol-polypropylene glycol] phosphates, mono- and di-[alkyl-polyethylene glycol-polypropylene glycol] sulfates, and mixtures thereof.
[0024] Even more preferred are mono-[alkyl-polyethylene glycol-polypropylene glycol] phosphate, mono-[alkyl-polyethylene glycol] phosphate, and mono-[alkyl-polyethylene glycol] sulfate. For example, mono- and di-[cetyl-polyethylene glycol (10EO)-polypropylene glycol (5PO)] phosphate, mono- and di-[cetylstearyl polyethylene glycol (11EO)] phosphate, and sodium [dodecyltetradecylpolyethylene glycol (2EO)] phosphate. Even more preferred are mono- and di-[cetylpolyethylene glycol (10EO)-polypropylene glycol (5PO)] phosphate. In this application, "EO" means a -(OCHR1-CHR2)- group where R1 = R2 = H, and "PO" means a -(OCHR3-CHR4)- group where R3 or R4 = CH3.
[0025] The composition according to the present invention may contain one or more surfactants selected from nonionic surfactants (d). For purposes of the present invention, the term "nonionic surfactant" means an uncharged surfactant containing a hydrophilic portion and a lipophilic portion. The nonionic surfactant is preferably selected from the group consisting of alkoxylated alcohols, tri-styryl-phenols, alkoxylated fatty acid esters such as polyethoxylated fatty acid esters, polypropoxylated fatty acid esters and ethoxy-propoxylated fatty acid esters, and polyethoxylated vegetable oils.
[0026] Examples of alkoxylated alcohols include ethylene oxide-propylene oxide copolymers, such as ethylene oxide-propylene oxide block copolymers or ethylene oxide-propylene oxide random copolymers. Examples of alkoxylated fatty acid esters include, for example, at least partially alkoxylated derivatives of esters of sorbitan with at least one fatty acid selected from the group consisting of lauric acid, palmitic acid, stearic acid, oleic acid and ricinoleic acid, in particular polyethoxylated derivatives of esters of 3,6-sorbitan with C10 to C18 fatty acids or ethoxy-propoxylated derivatives of esters of 3,6-sorbitan with C10 to C18 fatty acids. Non-limiting specific examples of polyalkoxylated derivatives of 3,6-sorbitan monoester include those having 10 to 50, more preferably 15 to 40, moles of oxyalkylene units.
[0027] Examples of polyalkoxylated vegetable oils include fatty carboxylic acids, especially saturated and / or unsaturated C 14 ~C 20 Polyethoxylated derivatives of triglycerides of aliphatic carboxylic acids are included. Non-limiting examples of polyalkoxylated derivatives of aliphatic carboxylic acid triglycerides include, for example, polyethoxylated castor oil. Preferably, the polyethoxylated castor oil has a number of moles of oxyethylene units (EO) ranging from 20 to 50, more preferably from 25 to 40. According to one aspect of the invention, the composition does not contain a cationic surfactant.
[0028] The composition according to the invention comprises at least one organic solvent. The organic solvents useful in compositions according to the present invention are typically selected from the group consisting of water-insoluble organic solvents. The water-insoluble organic solvent is typically selected from the group consisting of aliphatic hydrocarbons, esters of carboxylic acids, such as diesters of dicarboxylic acids or esteramides of dicarboxylic acids, alcohols, unmodified vegetable oils (triglycerides), and transesterified vegetable oils with C1-C4 lower alcohols. Preferably, the water-insoluble organic solvent is selected from the group consisting of unmodified vegetable oils (triglycerides) and transesterified vegetable oils with C1-C4 lower alcohols. More preferably, the water-insoluble organic solvent is transesterified vegetable oil with methanol. More preferably, the water-insoluble organic solvent is a methyl ester of a fatty acid (biodiesel). Even more preferably, the water-insoluble organic solvent is biodiesel having methyl oleate as the main component.
[0029] The composition according to the invention advantageously comprises, relative to the total weight of the composition: (a) 40 to 90% by weight of pelargonic acid; (b) 0 to 15% by weight, preferably 3 to 13% by weight, more preferably 5 to 10% by weight of a compound represented by the following formula (I): (R-(OCHR1-CHR2) n -(OCHR3-CHR4) m -O-) q -Z (In the formula, R is a straight or branched C4-C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH3; n and m are the same or different integers of 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in acid form or a salt thereof, preferably in acid form. at least one emulsifier belonging to the class of anionic surfactants having the formula: (c) 5 to 55 wt. %, more preferably 5 to 40 wt. %, of at least one organic solvent; (d) 1% to less than 15% by weight, preferably 1-10% by weight, more preferably 1-5% by weight, of at least one emulsifier belonging to the class of nonionic surfactants The ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is 0.05 to 0.15.
[0030] According to a preferred embodiment of the present invention, the composition according to the present invention comprises, relative to the total weight of the composition: (a) 40 to 85% by weight of pelargonic acid; (b) 5 to 10% by weight of a compound represented by the following formula (I): (R-(OCHR1-CHR2) n -(OCHR3-CHR4) m -O-) q -Z (In the formula, R is a straight or branched C4-C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH3; n and m are the same or different integers of 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in acid form or a salt thereof, preferably in acid form. at least one emulsifier belonging to the class of anionic surfactants having the formula: (c) 5 to 55 wt. % of at least one organic solvent; (d) 1 to 10% by weight of at least one emulsifier belonging to the class of nonionic surfactants The ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is preferably 0.05 to 0.15.
[0031] According to a particularly preferred embodiment of the present invention, the composition according to the invention comprises, relative to the total weight of the composition: (a) 40 to 85% by weight of pelargonic acid; (b) 5 to 10% by weight of a compound represented by the following formula (I): (R-(OCHR1-CHR2) n -(OCHR3-CHR4) m -O-)q -Z (In the formula, R is a straight or branched C4-C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH3; n and m are the same or different integers of 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in acid form or a salt thereof, preferably in acid form. at least one emulsifier belonging to the class of anionic surfactants having the formula: (c) 5 to 40 wt. % of at least one organic solvent; (d) 1 to 5% by weight of at least one emulsifier belonging to the class of nonionic surfactants The ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is preferably 0.05 to 0.15.
[0032] The composition according to the present invention may further comprise 0 to 5% by weight of an adjuvant relative to the total weight of the composition. Adjuvants that may be present in the composition according to the present invention include preservatives, dyes and odor improvers, antifoaming agents, viscosity modifiers, and rheology modifiers. Examples of preservatives are 2-hydroxybiphenyl, sorbic acid, p-hydroxybenzaldehyde, methyl p-hydroxybenzoate, benzaldehyde, benzoic acid, propyl p-hydroxybenzoate, and p-nitrophenol. Sorbic acid is preferred. The content of preservatives in the emulsion may be 0.01 to 1% by weight based on the total weight of the composition. A possible odor improving agent is perfume oil.
[0033] The compositions of the present invention can advantageously contain 0.1 to 5 wt. % of viscosity modifiers and rheology modifiers, based on the total weight of the composition. Examples of viscosity modifiers and rheology modifiers include polyalkyl methacrylates in mineral or vegetable oils, synthetic esters with alkyl groups of different lengths (C1 to C18 and above, linear or branched), vegetable oils or esters, or natural rubber (polyisoprene) dissolved in mineral oils, polyolefins, typically polyisobutene, ethylene-propylene copolymers, or poly-α-olefins, polycondensed fatty acids, polymeric esters, such as complex esters, chemically modified vegetable oils, such as epoxidized oils, estolides, or polymerized vegetable oils, esters of rosin acid, and polyalkylene glycols. hydroxyalkyl alkyl cellulose ethers, in which the alkyl group contains 1 to 3 carbon atoms and the hydroxyalkyl group contains 2 to 4 carbon atoms, such as hydroxypropyl cellulose ether or hydroxyethyl cellulose ether, are preferred. The composition of the invention may advantageously contain from 0.001 to 0.5% by weight of an antifoaming agent relative to the total weight of the composition. Examples of antifoaming agents are polyalkylene glycols, esters, oxirane polymers in vegetable or mineral oils, polysiloxanes, and acrylate polymers.
[0034] In a second aspect, the present invention provides a method for producing a medicament for the treatment of a pulmonary arthritis, comprising: (a) pelargonic acid, and (b) Formula (I) (R-(OCHR1-CHR2) n -(OCHR3-CHR4) m -O-) q -Z (In the formula, R is a straight or branched C4-C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH3; n and m are the same or different integers of 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in the acid form or a salt thereof. at least one emulsifier belonging to the class of anionic surfactants having (c) at least one organic solvent; (d) at least one emulsifier belonging to the class of nonionic surfactants The present invention relates to a method for preparing a composition according to the present invention, comprising mixing The mixing is typically carried out under agitation under process conditions designed to obtain a homogeneous composition.
[0035] In a third aspect, the present invention provides a method for producing a medicament for the treatment of a pulmonary arthritis, comprising: a composition according to the invention, and -aqueous phase The present invention relates to an aqueous emulsion comprising: The aqueous emulsion according to the invention is advantageously prepared by diluting the composition according to the invention with an aqueous phase.
[0036] The aqueous emulsion according to the present invention typically comprises: - 0.1 to 15% by volume of the composition according to the invention relative to the total volume of the aqueous emulsion, and - 85 to 99.9% by volume of aqueous phase based on the total volume of the aqueous emulsion Includes: The aqueous emulsion according to the present invention preferably comprises: 0.5 to 12% by volume of the composition according to the invention relative to the total volume of the aqueous emulsion, and - 88 to 99.5% by volume of aqueous phase based on the total volume of the aqueous emulsion Includes:
[0037] For purposes of the present invention, the term "emulsion" refers to a dispersed system containing two immiscible liquid phases stabilized by an emulsifier. Emulsions typically have two immiscible liquid phases, one of which is dispersed in the other in the form of droplets generally having a median diameter of 0.5 μm to 10 μm. Thus, an emulsion is distinguished from a mixture in which two immiscible liquid phases are separated from one another. The aqueous emulsion according to the invention is advantageously an oil-in-water emulsion.
[0038] The aqueous emulsion according to the invention is stable for at least 24 hours compared to the commercial product BELOUKHA® and even after 24 hours it remains stable, advantageously after stirring for at least 30 minutes. The aqueous emulsions according to the invention are stable over a wide temperature range, typically between 6°C and 30°C, compared to the commercial product BELOUKHA®. Aqueous emulsions according to the present invention are stable under a variety of water hardness conditions, typically between 20 and 342 ppm CaCO3.
[0039] Those skilled in the art can readily assess emulsion stability using known techniques, for example, using the CIPAC MT36 standard. The aqueous emulsions according to the present invention exhibit excellent herbicidal activity according to the European Plant Protection Organization (EPPO) PP1 plant protection standard (evaluation of the efficacy of plant protection products).
[0040] In particular, the aqueous emulsion according to the invention exhibits excellent full-action herbicidal activity and is particularly effective as a post-emergence herbicide.Accordingly, in a fourth aspect, the present invention relates to the use of the aqueous emulsion as a herbicide. In particular, direct application of aqueous emulsions to plants causes rapid desiccation of plant tissues through denaturing and disrupting the cuticle and plant cell membranes, which causes rapid release of cell fluids and subsequent dehydration and death of plant tissues affected by non-selective contact.
[0041] According to one embodiment of the present invention, the aqueous emulsion can be used as a broad-spectrum herbicide with desiccation action and as a pre-harvest adjuvant for crop desiccation (i.e., in potatoes and large-seeded legumes). The composition according to the present invention can find application in weed control in grapevines, orchards, and other fruit crops, such as olives and nuts. In particular, the aqueous emulsion has been used as a broad-spectrum desiccant herbicide in grapevines and orchards. In these crops, weeds impair crop productivity through competition for plant resources, including water, soil nutrients, and light. Furthermore, in some instances, weeds harbor and transmit plant pests and pathogens. Conventional techniques for managing weeds in the aforementioned crops require pre- and post-emergence application of herbicides and / or mechanical work (also known as "tillage") under vineyards and fruit trees, while maintaining ground cover between rows. The short-term effectiveness of residual herbicides like glyphosate and frequent mechanical application have allowed growers to successfully cultivate these crops and maintain their productivity. However, concerns about the long-term effects of traditional weed management have recently led to interest in alternative methods and the use of non-residual herbicides that provide effective weed control while minimizing the negative environmental impacts associated with traditional weed management.
[0042] The efficacy of the compositions according to the invention as weed desiccants was higher than that of a commercial reference product (BELOUKHA®) considering the same application amount of active ingredient. In this application, aqueous emulsions according to the invention are typically applied to plants by conventional boom sprayers specially designed for under-row band herbicide application.
[0043] In potato (Solanum tuberosum L.), the composition according to the invention can be applied as a pre-harvest crop desiccant for the aerial parts of the plant and / or the tubers, without damaging the tubers from environmental conditions. In conventional crop management, the agents used as pre-harvest aids are herbicides and / or defoliants that artificially promote the desiccation of plant tissues, thus facilitating mechanical harvesting of the crop.
[0044] The leading potato desiccant (containing diquat as the active ingredient) has been banned by the EU and withdrawn from the market since May 4, 2019, due to concerns regarding bystander and resident exposure and its impact on avian life. Indeed, pre-harvest drying of potatoes is a common operation carried out via mechanical destruction and / or chemical drying with different active ingredients, such as pyraflufen-ethyl and pelargonic acid, but results in terms of efficacy are variable. The composition according to the invention exhibits higher efficacy as a potato pre-harvest desiccant compared to a commercially available reference product (BELOUKHA®), considering the same application amount of active ingredient.
[0045] In a fifth aspect, the present invention relates to a method for inhibiting or suppressing plant growth comprising applying to the plant an aqueous emulsion according to the present invention. Indeed, the compositions according to the invention also find application as plant growth regulators, inhibiting the growth of plants or parts thereof.
[0046] In particular, the aqueous emulsion has been used to suppress suckers in grapevines (Vitis vinifera L.) and axillary shoots in tobacco plants (Nicotiana tabacum L.).As a plant growth regulator, the aqueous emulsion has also been evaluated as a flower thinning agent in apples (Malus domestica Borkh).
[0047] In grapevines, removing shoots (suckers) that develop at the base of the stem is an essential operation, as they rob the productive parts of the plant of nutrients and energy, reduce the aeration of the bunch, and cause plant health problems. Conventionally, suckers are removed manually, mechanically, or using residual chemicals with high environmental impact (glufosinate ammonium). The use of a composition according to the invention in this sucker removal application was superior in efficacy to a commercial reference product (BELOUKHA®) for the same application amount of active ingredient.
[0048] In tobacco, a leaf-based crop, secondary shoot development deprives the plant of nutrients necessary for leaf growth, resulting in a decline in production quality. Therefore, axillary bud removal is a crucial operation. Conventionally, this operation is carried out manually (sucking) with high labor costs, or using chemicals (n-decanol, maleic hydrazide), which poses significant operational and sustainability challenges for the supply chain (long recovery times and pre-harvest intervals, and the impact of the strong residual odor of n-decanol-based formulations).
[0049] The recovery time refers to the time that must elapse between treatment and the time that workers can return to work without wearing appropriate protective equipment, and the pre-harvest interval refers to the minimum number of days that must elapse between the date of treatment with the plant growth regulator and the date of harvest of the treated product. The activity of suppressing axillary buds in tobacco using the composition according to the invention was clearly superior to the activity obtained using the commercial reference formulation BELOUKHA®, despite the same applied dose of active ingredient, which has important implications in terms of the modernization of the tobacco supply chain, drastically reducing and virtually eliminating the adverse effects associated with the residual odor of n-decanol-based formulations. Aqueous emulsions according to the invention are typically applied to plants by spraying. In application as a plant growth regulator, a spray bar is used to spray the main stem of the plant in a targeted manner.
[0050] In apples, flower / fruit thinning is the removal of part of the flower and / or fruit crop before they mature on the tree, and it is a necessary standard management procedure. In fact, an excess of fruit flowers and fruits on apple trees often results in low-quality marketable production. A further problem is that biennial fruits such as apples alternate between years with excessively large crops and years with insufficient crops. Proper thinning techniques can break this pattern and regularly obtain a crop of a consistent, desired size. There are three commonly used methods of flower / fruit thinning: mechanical, chemical, and manual.
[0051] With manual thinning, workers remove enough fruit to achieve satisfactory fruit thinning. Manual thinning is a very labor-intensive and costly technique. In recent years, machines have been developed to mechanically thin apple blossoms. These machines utilize a series of knotted ropes that are pulled through the trees, knocking off some of the blossoms. This practice often causes significant damage to the trees, and thinning is ineffective for some tree structures that must adapt to the application of this technique. In addition, increases in some pests (e.g., aphids) and diseases have been observed in mechanically thinned trees. While chemical thinning is preferable from a cost perspective, environmental concerns and inconsistent results are major drawbacks of existing chemical methods. Inconsistent results include overthinning, underthinning, and damaged leaves.
[0052] The success of chemical fruit thinning strategies can depend on many factors, including variety, tree condition, fruit set, proximity to pollinators, weather, the active ingredient used, and the specific application protocol. The blossom thinning activity in apple using the composition according to the invention is comparable to that obtained with the commercial reference formulation Ethrel C® (containing ethephon as the active ingredient), which has important implications in terms of efficacy, considering that ethephon produces a very variable thinning response, ranging from little thinning to complete inhibition of fruit set. The following examples illustrate the invention in a non-limiting manner. [Example]
[0053] material - Pelargonic acid (purity 98% by weight) obtained by oxidative cleavage of high oleic acid sunflower oil - a pelargonic acid-containing herbicide formulation (72% by weight, corresponding to approximately 680 g / l of active ingredient, free of anionic and cationic surfactants) marketed under the trade name BELOUKHA® (label approved by administrative decree of 26 / 02 / 2016) -Emulsifier A (anionic surfactant): [cetyl-polyethylene glycol (10EO)-polypropylene glycol (5PO)] phosphate -Emulsifier B (anionic surfactant): [cetylstearyl polyethylene glycol (11EO)] phosphate -Emulsifier C (anionic surfactant): [dodecyltetradecylpolyethylene glycol (2EO)] sodium sulfate -Emulsifier D (nonionic surfactant): Sorbitan monooleate polyethoxylate (20EO) -Emulsifier E (non-ionic surfactant): Sorbitan monooleate -Emulsifier F (nonionic surfactant): PEG-80 sorbitan laurate - Organic solvent A: Fatty acid methyl esters containing mainly methyl oleate
[0054] Example 1 The composition is, based on the total weight of the composition, 80.7% by weight of pelargonic acid, 6% by weight of emulsifier A, 3% by weight of emulsifier D, 1% by weight of emulsifier E, - 9.3 wt% of solvent A It was prepared by mixing the following:
[0055] Example 2 The composition is, based on the total weight of the composition, 80.7% by weight of pelargonic acid, 6% by weight of emulsifier B, 3% by weight of emulsifier D, 1% by weight of emulsifier E, - 9.3 wt% of solvent A It was prepared by mixing the following:
[0056] Example 3 The composition is, based on the total weight of the composition, 80.7% by weight of pelargonic acid, 6% by weight of emulsifier C, 3% by weight of emulsifier D, 1% by weight of emulsifier E, - 9.3 wt% of solvent A It was prepared by mixing the following:
[0057] Comparative Example 4 A herbicide formulation marketed under the trade name BELOUKHA® containing pelargonic acid (72% by weight, corresponding to approximately 680 g / l of active ingredient).
[0058] Comparative Example 5 The composition is, based on the total weight of the composition, 80% by weight of pelargonic acid, 5% by weight of emulsifier D, 5% by weight of an emulsifier F, 10% by weight of solvent A; It was prepared by mixing the following:
[0059] Example 6 The composition is, based on the total weight of the composition, 80% by weight of pelargonic acid, 1% by weight of emulsifier A, 4% by weight of emulsifier D, 5% by weight of an emulsifier F, 10% by weight of solvent A; It was prepared by mixing the following:
[0060] Comparative Example 7 The composition is, based on the total weight of the composition, 41% by weight of pelargonic acid, 1% by weight of emulsifier A, 9% by weight of emulsifier D, 49% by weight of solvent A; It was prepared by mixing the following:
[0061] In the composition of Comparative Example 7, the ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid was 0.25 to 0.15, which was higher than 0.15. The compositions of Examples 1 to 3 have a viscosity of 0.91 g / cm at ambient temperature. 3 and Example 6 and Comparative Example 5 have a density of 0.92 g / cm at ambient temperature. 3 Examples 1 to 3, 6 and Comparative Example 5 have an active ingredient concentration of about 720 g / l (ie, 100% pelargonic acid). The composition of Comparative Example 7 has a viscosity of 0.90 g / cm at ambient temperature. 3 and an active ingredient concentration of about 360 g / l (i.e. 100% pelargonic acid).
[0062] The compositions of Examples 1-3, 6 and Comparative Examples 4, 5 and 7 were diluted in water at different concentrations and tested for: - emulsion stability (Example 8, Tables 2-4), evaluated for emulsions prepared by diluting the compositions of Examples 1-3 and Comparative Example 4 to 8 and 10% v / v;
[0063] -Prepared diluted emulsion: 6.0 and 7.55% v / v of the composition of Example 1 (doses of 8640 g / ha and 10880 g / ha of active ingredient), 7.55% v / v of the compositions of Examples 2, 3, 6 and Comparative Example 5 (a dose of 10880 g active ingredient / ha), 8% v / v of the composition of Comparative Example 4 (a dose equivalent to 10880 g / ha of active ingredient), 15.10% v / v of the composition of Comparative Example 7 (a dose equivalent to 10,880 g / ha of active ingredient) Herbicidal activity by spraying in the field (Example 9, Tables 5-6);
[0064] - the effectiveness of suppressing tobacco sprouts by applying emulsions prepared by diluting the composition of Example 1 to 0.6 and 1% v / v (doses of 2592 g / ha and 4320 g / ha of active ingredient) and the composition of Comparative Example 4 to 1.2% v / v (dosage equivalent to 4896 g / ha of active ingredient) (Example 10, Table 7);
[0065] - effectiveness in controlling grapevine suckers by applying emulsions prepared by diluting the composition of Example 1 to 755% v / v (a dose of 10,880 g / ha of active ingredient) and the composition of Comparative Example 4 to 8% v / v (a dose equivalent to 10,880 g / ha of active ingredient) (Example 11, Table 8); - efficacy in suppressing weeds in apple orchards by applying emulsions prepared by diluting the composition of Example 1 to 6.00 and 7.55% v / v (doses of 8640 and 10880 g / ha of active ingredient) and the composition of Comparative Example 4 to 8% v / v (dosage equivalent to 10880 g / ha of active ingredient) (Example 12, Table 9); - Efficacy as a pre-harvest desiccant in potatoes by diluting and applying emulsions prepared from the composition of Example 1 at 6.00 and 7.55% v / v (doses of 8640 and 10880 g ai / ha) and the composition of Comparative Example 4 at 8% v / v (dosage equivalent to 10880 g ai / ha) (Example 13, Table 10).
[0066] Example 8. Comparison of emulsion stability The stability of aqueous emulsions prepared from the compositions of Examples 1-3 and Comparative Example 4 was tested according to standard CIPAC method MT36 (section 36.1.1 - Handshaking) under the conditions shown below, using water of different hardness and at different temperatures: The stability of the 8 and 10% v / v emulsions was tested in standard water A and D (characteristics shown in Table 1) at 6°C, 20°C and 30°C, and evaluated after 2 hours, 24 hours and finally after redispersion at 24 hours + 30 minutes, confirming better behavior in all test conditions compared to the commercial product.
[0067] [Table 1] Table 1. Characteristics of the standard water used.
[0068] [Table 2] Table 2. Number of ml of oil separated from an 8% v / v emulsion in standard water D at 2 hours, 24 hours and 24 hours + 30 minutes at 20°C.
[0069] [Table 3] Table 3. Number of ml of oil separated from a 10% v / v emulsion in standard water A at 2 hours, 24 hours and 24 hours + 30 minutes at 6°C and 30°C.
[0070] [Table 4] Table 4. Number of ml of oil separated from a 10% v / v emulsion in standard water D at 2 hours, 24 hours and 24 hours + 30 minutes at 6°C and 30°C.
[0071] As shown by the results in Tables 2 to 4, the aqueous emulsions according to the present invention were more stable than those prepared from equal dilutions of the herbicidal composition in Comparative Example 4, and no separation of free oil was observed in the final evaluation after redispersion at 24 hours + 30 minutes.
[0072] Example 9. Field testing of herbicidal activity against natural infestations The herbicidal activity of the aqueous emulsions prepared from Examples 1 to 3 and 6 was evaluated in comparison with the emulsions prepared from Comparative Examples 4, 5 and 7 in a field having a floral composition consisting mainly of dicotyledonous weeds (in particular, Artemisia vulgaris L., Capsella bursa-pastoris, Taraxacum officinale and Medicago sativa L.) and monocotyledonous weeds (Cynodon dactylon and Poa pratensis).
[0073] To test this activity against natural infestation, 7.55% v / v dilutions of the compositions of Examples 1 to 3, 6, and Comparative Example 5, an 8% v / v dilution of the composition of Comparative Example 4, and a 15.10% v / v dilution of the composition of Comparative Example 7 were prepared, and equal doses of the active ingredient (10,880 g / ha) were sprayed to the field using the same volume of aqueous emulsion. Specifically, 14.5 L / ha of the aqueous emulsions prepared from the compositions of Examples 1 to 3, 6, and Comparative Example 5, 16 L / ha of the aqueous emulsion prepared from the composition of Comparative Example 4, and 29.0 L / ha of the aqueous emulsion prepared from the composition of Comparative Example 7 were sprayed.
[0074] The evaluation of herbicidal activity was carried out at four relevant time points, 1, 3, 7 and 12 DAA (days after application), respectively, and was carried out according to the criteria laid down by the EPPO (Criteria for the evaluation of the efficacy of plant protection products PP1 / 152(4); PP1 / 181(4)). A visual efficacy assessment score (% dryness) was assigned on a scale of 0 to 100% compared to the untreated control (equal to 0%). Data regarding the assessment of treatment efficacy were statistically analyzed using ANOVA tests, and means were compared using Tukey's test for a significance level of p≦0.05. The results are shown in Table 5.
[0075] [Table 5] Table 5. Herbicidal activity against natural invasion (% visual rating 0-100); Tukey test a、b p ≤ 0.05, n = 3.
[0076] The results obtained in the field tests show that the aqueous emulsions prepared from Examples 1 to 3 and 6 have statistically greater herbicidal activity against monocotyledonous and dicotyledonous weeds than those prepared from Comparative Example 4 (containing neither anionic nor cationic emulsifiers), Comparative Example 5 (containing no anionic emulsifiers), and Comparative Example 7 (where the ratio of the total weight content of anionic surfactant (b) and nonionic surfactant (d) to pelargonic acid is greater than 0.15). In particular, when the same dose of active ingredient (10,880 g / ha) was used (Table 5), the herbicidal activity of the compositions according to the present invention was more than 10% higher than that of Comparative Examples 4 and 5 on the third day after application and more than 17% higher on the 12th day. Furthermore, the herbicidal activity of the composition according to the present invention was more than 40% higher than that of Comparative Example 7 on the third day after application and more than 50% higher on the 12th day after application.
[0077] The same evaluation was carried out by repeating the test under field conditions against natural infestation and comparing the herbicidal activity of two aqueous emulsions diluted at 6% and 7.55% v / v prepared from the composition of Example 1 with an 8% v / v dilution prepared from the composition of Comparative Example 4. In particular, herbicidal activity was evaluated by applying doses of 8640 g / ha and 10880 g / ha (using 6 and 7.55% v / v emulsions according to the invention, respectively) and 10880 g / ha of active ingredient (using an 8% v / v emulsion prepared from the formulation of Comparative Example 4) to the field. The results are shown in Table 6.
[0078] [Table 6] Table 6. Herbicidal activity against natural invasion (% visual rating 0-100); Tukey test a、b p ≤ 0.05, n = 3.
[0079] The results obtained in the field tests shown in Table 6 show that after the first 12 days after application, the herbicidal activity of the emulsion prepared from Example 1 was statistically higher than that of Comparative Example 4, even when 20% less active ingredient was used.
[0080] Example 10. Evidence of efficacy in tobacco bud suppression The efficacy of the aqueous emulsion prepared from Example 1 in controlling tobacco buds was evaluated on plants of the variety Virginia Bright and compared with the emulsion prepared from Comparative Example 4. To test such efficacy against tobacco buds, two dilutions of 0.6% and 1% v / v of the composition of Example 1 and one dilution of 1.2% v / v of the composition of Comparative Example 4 were prepared. In particular, efficacy was evaluated by applying 2592 and 4320 g / ha (using 0.6% and 1% v / v emulsions according to the invention, respectively) and 4896 g / ha of active ingredient (using 1.2% v / v emulsion prepared from the formulation of Comparative Example 4), respectively.
[0081] The tests were carried out in accordance with EPPO PP standards 1 / 152(4), 1 / 135(4), 1 / 181(4) and 1 / 155(3). Each emulsion was applied three times, once before flowering (A) and twice after flowering (B, C). To evaluate the effectiveness of axillary bud suppression in tobacco according to EPPO PP1 / 155(3), the number of viable buds on a total of five terminal buds was counted at four relevant time points. The results are shown in Table 7.
[0082] [Table 7] Table 7. Percentage of active shoots from a total of five apical shoots detected 7 days after the first application (7DAA), 4 days after the second application (4DAB), and 7 and 13 days after the third application (7DAC and 13DAC), respectively (p ≤ 0.05, Student-Newman-Keuls).
[0083] Although the emulsion prepared from Comparative Example 4 showed only slight activity as a plant growth regulator, since after the third application 82-84% of the active shoots were still recorded in a total of five terminal buds (see 7DAC and 13DAC), the data recorded at the four relevant time points showed the surprising effectiveness of the 1% v / v emulsion according to the invention. This result is even more surprising considering that the concentration of the active ingredient was lower than in the comparison (1.2% v / v).
[0084] In particular, after the third application, the 1% v / v emulsion according to the present invention showed surprisingly high tobacco bud suppression, with only 28% of the total 5 apical buds being active. The 0.6% v / v emulsion according to the invention gave results comparable to the comparison, despite containing approximately half the active ingredient.
[0085] Example 11. Evidence of effectiveness in controlling grapevine suckers The efficacy of the aqueous emulsion prepared from Example 1 in controlling grapevine (Vitis vinifera L.) suckers was compared with the emulsion prepared from Comparative Example 4. To test such efficacy, dilutions were prepared of 7.55% v / v of the composition from Example 1 and 8.0% v / v of the composition from Comparative Example 4. Specifically, efficacy was evaluated by applying 10880 g / ha of active ingredient from both dilutions (of the compositions from Example 1 and Comparative Example 4).
[0086] The studies were carried out in accordance with Good Experimental Practice (GEP). All evaluations and applications were carried out in accordance with the guidelines: EPPO standards PP1 / 152(4), 1 / 135(4), 1 / 181(4), 1 / 161(3) and 1 / 64(4). To evaluate the effectiveness of EPPO PP1 / 161(3) (suppression of grapevine suckers) in suppressing grapevine suckers, two different applications of each emulsion were performed in the trial (the first application at the BBCH55 phenological growth stage of the crop and the second application at the BBCH67 stage).
[0087] Before the first application, the presence and development of viable suckers was observed uniformly throughout the test plots. During the test period, sucker suppression was assessed by recording the percentage of damaged and dead shoots. Evaluation of sucker suppression activity was carried out at different relevant time points, 22 and 43 DAB, respectively. A visual efficacy assessment score (% dryness) was assigned on a scale of 0 to 100% compared to the untreated control (equal to 0%). Data from the evaluations were analyzed by analysis of variance (ANOVA). If a significant effect of treatment was obtained (based on ANOVA analysis), differences between means were confirmed with the Student-Newman-Keuls (SNK) test (P=0.05).
[0088] The results of the test are shown in Table 8. [Table 8] Table 8. Percentage of sucker suppression detected 22 days after second application (22DAB) and 43 days after second application (43DAB), respectively (p ≤ 0.05, Student-Newman-Keuls).
[0089] The data in Table 8 show that the aqueous emulsion prepared from Example 1 is more effective than the aqueous emulsion prepared from Comparative Example 4 (62.6% vs. 43.8% at 22 DAB and 44.8% vs. 36.2% at 43 DAB).
[0090] Example 12: Evidence of effectiveness in weed suppression in apple orchards The efficacy of the aqueous emulsion prepared from Example 1 in controlling weeds in the apple orchard cultivar Brookfield (Malus domestica Borkh) was compared with that of the emulsion prepared from Comparative Example 4. To test such efficacy, two dilutions of 6.00% and 7.55% v / v of the composition of Example 1 and one dilution of 8.00% v / v of the composition of Comparative Example 4 were prepared. In particular, efficacy was evaluated by applying 8640 and 10880 g / ha (using the 6.00 and 7.55% v / v emulsions according to the invention, respectively) and 10880 g / ha of active ingredient (using the 8.00% v / v emulsion prepared from the formulation of Comparative Example 4), respectively.
[0091] The studies were carried out in accordance with Good Experimental Practice (GEP). All evaluations and applications were carried out in accordance with the guidelines of EPPO standards PP1 / 152(4) (design and analysis of efficacy evaluation studies), 1 / 135(4) (phytotoxicity evaluation), 1 / 181(4) (conducting and reporting efficacy evaluation studies) and 1 / 90(3) (weeds in orchards and other fruit crops, e.g., citrus and olive). The trial was designed to evaluate the efficacy and selectivity of each emulsion against weeds in apple orchards. Applications were made twice at crop phenological growth stages BBCH78 and BBCH81. At the first application, weed populations were determined in the field and the number of target weeds per square meter was recorded. Weed populations were homogenous in the field. Herbicidal activity was evaluated at four relevant time points: 7 and 14 DAA and 14 and 20 DAB, respectively. A visual efficacy assessment score (% dryness) was assigned on a scale of 0 to 100% compared to the untreated control (equal to 0%).
[0092] The results of the test are shown in Table 9. [Table 9] Table 9. Percentage of herbicidal activity detected 14 days after first application (14DAA) and 14 days after second application (14DAB), respectively (p≦0.05, Student-Newman-Keuls).
[0093] These results clearly show that the emulsion according to the invention (Example 1) is more effective than the emulsion from Comparative Example 4 and guarantees good control even over longer periods (14 and 20 DAB) even though the concentration of active ingredient is lower than the control (8640 g / ha Example 1 vs. 10880 g / ha Comparative Example 4).
[0094] Example 13: Evidence of effectiveness as a pre-harvest desiccant in potato The efficacy of the aqueous emulsion prepared from Example 1 as a pre-harvest desiccant was evaluated in potato cultivar Mikado and compared with the emulsion prepared from Comparative Example 4. To test this activity, 6.0 and 7.55% v / v dilutions of the composition from Example 1 and an 8% v / v dilution of the composition from Comparative Example 4 were prepared, so that equal doses of active ingredient, 10,880 g / ha, for the 7.55% v / v dilution of the composition from Example 1 and the 8% v / v dilution of the composition from Comparative Example 4 were sprayed on the field using the same volume of aqueous emulsion. In particular, 12.0 and 14.5 l / ha of the emulsion prepared from the composition of Example 1 and 16 l / ha of the emulsion prepared from the composition of Comparative Example 4 were sprayed.
[0095] The evaluation of desiccant activity was carried out 14 DAA (days after application) and was performed according to the criteria defined by the EPPO guidelines PPn.135(4) (phytotoxicity assessment), PPn.143(3) (desiccant compounds used on potatoes), PPn.152(4) (design and analysis of efficacy evaluation studies) and ePPn.181(4) (conducting and reporting efficacy evaluation studies). A visual efficacy assessment score (% dryness) was assigned on a scale of 0 to 100% compared to the untreated control (equal to 0%). Data regarding the assessment of treatment efficacy were statistically analyzed using an ANOVA test, and means were compared using a Tukey test for a significance level of p≦0.05. The results of the study are shown in Table 10.
[0096] [Table 10] Table 10. Desiccant activity in potato crops (% 0-100 visual score); Tukey test a、b p ≤ 0.05, n = 3.
[0097] The results obtained in the field trials show that the aqueous emulsion prepared from Example 1 has statistically greater desiccant activity than the aqueous emulsion prepared from Comparative Example 4, even at a dose of active ingredient as low as 8640 g / ha for a 6.00% v / v dilution of the composition from Example 1.
Claims
1. (a) 40 to 90% by weight of pelargonic acid; and (b) up to 15% by weight of a compound of formula (I): (R-(SIDE 1 -CHR 2 ) n -(SIDE 3 -CHR 4 ) m -Oh-) q -Z (In the formula, R is a linear or branched C 4 -C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH 3 and n and m are the same or different integers from 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in the acid form or a salt thereof. at least one emulsifier belonging to the class of anionic surfactants having the formula (c) 5 to 55 weight percent of at least one organic solvent; (d) 1% to less than 15% by weight of at least one emulsifier from the class of nonionic surfactants wherein the ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is 0.05 to 0.
15.
2. based on the total weight of the composition, (a) 40 to 85% by weight of pelargonic acid; (b) 5 to 10% by weight of a compound represented by formula (I): (R-(SIDE 1 -CHR 2 ) n -(SIDE 3 -CHR 4 ) m -Oh-) q -Z (In the formula, R is a linear or branched C 4 -C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH 3 and n and m are the same or different integers from 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in the acid form or a salt thereof. at least one emulsifier belonging to the class of anionic surfactants having the formula (c) 5 to 55 weight percent of at least one organic solvent; (d) 1 to 10% by weight of at least one emulsifier from the class of nonionic surfactants The composition according to claim 1, wherein the ratio of the total weight content of the anionic surfactant (b) and the nonionic surfactant (d) to pelargonic acid is 0.05 to 0.
15.
3. 3. The composition according to claim 1, wherein the content of the anionic surfactant (b) is more than 5% by weight, based on the total weight of the anionic surfactant and the nonionic surfactant.
4. 4. The composition according to claim 1, wherein the emulsifier (b) belongs to the class of anionic surfactants in the acid form.
5. The composition of any one of claims 1 to 4, wherein the anionic surfactant is selected from the group consisting of monoesterified sulfuric acid and diesterified sulfuric acid.
6. The composition of any one of claims 1 to 5, wherein R1, R2, R3 and R4 are H.
7. R1, R2, R3 and R4 are CH 3 The composition according to any one of claims 1 to 5,
8. 5. The composition according to claim 1, wherein the emulsifier (b) is selected from mono-[alkyl-polyethylene glycol] phosphates, mono-[alkyl-polyethylene glycol] phosphates, mono-[alkyl-polyethylene glycol] sulfates.
9. 9. The composition according to claim 1, wherein the organic solvent is selected from the group consisting of aliphatic hydrocarbons, esters of carboxylic acids, alcohols, unmodified vegetable oils, and transesterified vegetable oils with C1-C4 lower alcohols.
10. The composition of claim 9, wherein the ester of a carboxylic acid is a diester of a dicarboxylic acid or an ester amide of a dicarboxylic acid.
11. (a) pelargonic acid, and (b) Formula (I) (R-(SIDE 1 -CHR 2 ) n -(SIDE 3 -CHR 4 ) m -Oh-) q -Z (In the formula, R is a linear or branched C 4 -C 18 is an alkyl group, R1, R2, R3 and R4 are independently H or CH 3 and n and m are the same or different integers from 0 to 30, and at least one of them is not 0; q is 1 or 2; Z represents a sulfate or phosphate group in the acid form or a salt thereof. at least one emulsifier belonging to the class of anionic surfactants having (c) at least one organic solvent; (d) at least one emulsifier belonging to the class of nonionic surfactants A method for producing the composition of any one of claims 1 to 10, comprising mixing:
12. a composition according to any one of claims 1 to 10, and -Aqueous phase An aqueous emulsion comprising:
13. - 0.1 to 15% by volume of the composition according to any one of claims 1 to 10, relative to the total volume of the aqueous emulsion, and - 85 to 99.9% by volume of aqueous phase based on the total volume of the aqueous emulsion 13. The aqueous emulsion of claim 12, comprising:
14. 14. Use of the aqueous emulsion according to claim 12 or 13 as a herbicide.
15. 14. Use of the aqueous emulsion according to claim 12 or 13 as a plant growth regulator in inhibiting the growth of plants or parts thereof.
16. 14. A method for inhibiting or suppressing plant growth, comprising applying to the plant an aqueous emulsion according to claim 12 or 13.
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