WO1996023408A1 - Pesticidal granules containing fertilizer and surfactant - Google Patents

Pesticidal granules containing fertilizer and surfactant Download PDF

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Publication number
WO1996023408A1
WO1996023408A1 PCT/US1996/001233 US9601233W WO9623408A1 WO 1996023408 A1 WO1996023408 A1 WO 1996023408A1 US 9601233 W US9601233 W US 9601233W WO 9623408 A1 WO9623408 A1 WO 9623408A1
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WO
WIPO (PCT)
Prior art keywords
formula
fertilizer
pesticide
weight percent
composition
Prior art date
Application number
PCT/US1996/001233
Other languages
French (fr)
Inventor
James Lyle Hazen
Original Assignee
Rhone-Poulenc Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Rhone-Poulenc Inc. filed Critical Rhone-Poulenc Inc.
Priority to AU47728/96A priority Critical patent/AU4772896A/en
Priority to JP8523671A priority patent/JPH10513148A/en
Priority to EP96903745A priority patent/EP0806893A1/en
Priority to BR9607573-2A priority patent/BR9607573A/en
Publication of WO1996023408A1 publication Critical patent/WO1996023408A1/en

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Classifications

    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01NPRESERVATION OF BODIES OF HUMANS OR ANIMALS OR PLANTS OR PARTS THEREOF; BIOCIDES, e.g. AS DISINFECTANTS, AS PESTICIDES OR AS HERBICIDES; PEST REPELLANTS OR ATTRACTANTS; PLANT GROWTH REGULATORS
    • A01N25/00Biocides, pest repellants or attractants, or plant growth regulators, characterised by their forms, or by their non-active ingredients or by their methods of application, e.g. seed treatment or sequential application; Substances for reducing the noxious effect of the active ingredients to organisms other than pests
    • A01N25/12Powders or granules
    • A01N25/14Powders or granules wettable
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01JCHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
    • B01J2/00Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic
    • B01J2/006Coating of the granules without description of the process or the device by which the granules are obtained
    • CCHEMISTRY; METALLURGY
    • C05FERTILISERS; MANUFACTURE THEREOF
    • C05CNITROGENOUS FERTILISERS
    • C05C3/00Fertilisers containing other salts of ammonia or ammonia itself, e.g. gas liquor
    • CCHEMISTRY; METALLURGY
    • C05FERTILISERS; MANUFACTURE THEREOF
    • C05GMIXTURES OF FERTILISERS COVERED INDIVIDUALLY BY DIFFERENT SUBCLASSES OF CLASS C05; MIXTURES OF ONE OR MORE FERTILISERS WITH MATERIALS NOT HAVING A SPECIFIC FERTILISING ACTIVITY, e.g. PESTICIDES, SOIL-CONDITIONERS, WETTING AGENTS; FERTILISERS CHARACTERISED BY THEIR FORM
    • C05G3/00Mixtures of one or more fertilisers with additives not having a specially fertilising activity
    • C05G3/60Biocides or preservatives, e.g. disinfectants, pesticides or herbicides; Pest repellants or attractants

Definitions

  • the present invention relates to pesticidal granules containing rapidly dissolutioning or dispersing fertilizer and surfactant compositions. More particularly, the fertilizers are water-soluble nitrogen-containing and the surfactant compositions comprise solid, nonionic surfactants.
  • active pesticides as water dissolutioning or dispersible compositions which can be easily mixed with water and applied by means of a spraying apparatus to a locus to be protected.
  • the art has also recognized the particular importance of two of the adjuvant properties. They are first, the hydrophilic - hydrophobic balance (HLB) and secondly, the physical form of the initial surface deposit, ideally a moist gel. It has been theorized that with surfactants in the appropriate HLB range, the surfactant is hydrophilic enough to solubilize the herbicide in water and lipophilic enough to penetrate the cuticle of a leaf. In moist gels, the surfactants are hypothesized to form monolayers on the leaf surfaces with the lipophilic portion along the waxes and the hydrophilic portion forming "hydrophilic channels" through surface imperfections such as cracks, punctures, and pores. These channels absorb water and slightly swell to allow herbicides to diffuse through the cuticle into the cell walls.
  • HLB hydrophilic - hydrophobic balance
  • the surfactants preferred by the art and which can realize the above-described properties when admixed with pesticides in aqueous medium, are the nonionics.
  • the solid, nonionic surfactants are desired by the end-user, usually a farmer, for ease of handling such as when preparing a pesticidal spray tank mix.
  • the solid nonionics are also preferred to eliminate the need for triple rinsing of the liquid surfactant containers, e.g., the 2.5 gallon jugs, usually used to deliver liquid surfactant concentrates to farmers and to avoid the attendant jug disposal problem.
  • dry water-soluble nitrogen fertilizers such as urea, ethylurea, mono and diammonium phosphate; mono and diammonium sulfate, and mixtures thereof can enhance the efficacy of pesticides, especially the herbicides.
  • This significant increase in herbicide phytotoxicity in the presence of nitrogen fertilizers has been especially observed with the use of diammonium sulfate adjuvant.
  • Large increases in herbicidal efficacy have been reported (Adjuvants and Agrochemicals, Vol. II, Chapter 34) when diammonium sulfate was used as an adjuvant in combination with methylated seed oil, a known cuticle "softener".
  • Glyphosate one of the most frequently used herbicides worldwide, usually has diammonium sulfate added to its spray tank solution to enhance its herbicidal efficacy.
  • diammonium sulfate appears to have at least two modes of action when coupled to glyphosates : firstly, by directly increasing the glyphosates phytotoxicity and secondly, by overcoming antagonism from certain cations. It has been theorized that the sulfate ions precipitate calcium and sodium ions by forming calcium and sodium sulfates which have low water solubility. The ammonium ions form the more toxic glyphosate-ammonium complex and prevent formation of the less phytotoxic glyphosate - sodium complex during droplet drying.
  • Extrusion processing to prepare melt-admixed granules such as is taught in EP 501,798A1, wherein pesticides, binders and diluents are extruded together, has the disadvantage of always intimately admixing all of the components thus inherently placing a restriction on the individual components that can be utilized in such a process. For example, in many situations, the individual components sought to be used are incompatible in intimate contact. Furthermore, in extruded granules, all of the material components will be exposed to the aqueous medium simultaneously, i.e., one cannot program for differing dissolution rates.
  • granule-type products i.e., multi-component particles are desirable in many end-use applications such as when they are to be used in pesticidal tank mixes for they are more stable during storage and transport than mere physical mixtures of the dry individual components and provide ease of handling.
  • It is an object of the present invention to realize a process for preparing pesticidal granules comprising a dry water-soluble nitrogen fertilizer coated by solid nonionic surfactant compositions and granulated with pesticide adhered to the granule, and the resulting granule.
  • This is accomplished by spray-coating the molten surfactant composition onto from about 1 to about 99 weight percent dry water-soluble, nitrogen-containing fertilizer, preferably diammonium sulfate crystals, said percent based on the final weight of the dry bonded adjuvant granule, and granulating the composition in the presence of pesticide to incorporate same into the granule.
  • dry water-soluble nitrogen- containing fertilizers preferably diammonium sulfate can provide excellent substrates for certain solid nonionic surfactants when the surfactant composition is dry bonded onto from about 1 to about 99 weight percent (based on the total dry bonded particle weight) of the fertilizer by spray-coating the fertilizer with the molten surfactant and these particles provide excellent carrier systems for pesticides.
  • the time for complete dissolution in water of the solid, nonionic surfactant compositions can ofttimes be significantly reduced.
  • the instant pesticide-fertilizer carrier systems are exceptionally stable and relatively unaffected by attrition during storage and shipping. These unique delivery systems permit components, normally incompatible with the pesticide and/or nitrogen-containing fertilizer to be physically incorporated in the granule. For example, if an adjuvant is incompatible with the fertilizer, it can be adhered to the granule; if incompatible with the pesticide, it can be added prior to the spray coating, i.e., made part of the substrate.
  • adjuvants that require a longer exposure time to a given aqueous medium for optimum efficiency as an inherent part of the granule, for example, guar particles that require additional hydration time; pH buffers, etc., they can be preferentially or sequentially released by not having the adjuvant incorporated uniformly throughout the particle as would occur using the processing of the prior art, but rather having the adjuvant adhered to the outer surfactant coating of the granule.
  • spray-coated is meant that the solid surfactant is melted and coated upon a substrate comprising the fertilizer while still in the molten state. This is done by spraying the molten surfactant onto the substrate, most preferably the diammonium sulfate particles in a coating blender. Complete coating of the substrate particles is not always necessary but, rather, the degree of completeness of the coating is often determined by specific requirements such as the need to isolate the fertilizer from other added incompatible adjuvants. The sprayed material, while still-in a sticky state is then continuously tumbled to partially agglomerate or granulate the individual particles while preferably the pesticide is added and bonded so as to yield dry bonded flowable granules.
  • the solid, nonionic surfactants that can be used in the process of this invention are those known in the art which are solid or of a hard, nontacky wax consistency at room temperature.
  • nonionics are the following:
  • R' and R" each can be -H, -CH 2 CH 2 OH, or
  • esters such as: i) fatty acid esters of the formula -
  • Ethoxylates such as: i) alkylphenol ethoxylates of the formula - ii) alcohol ethoxylates of the formula - R - O - (CH 2 CH 2 O) n H; iii) tristyrylphenol ethoxylates of the formula -
  • R is a fatty alkyl group, preferably a C 6 - C 22 fatty alkyl group, most preferably a C 8 - C 18 fatty alkyl group;
  • R 1 is -H or a fatty alkyl group, preferably -H or a C 6 - C 22 fatty alkyl group, most preferably -
  • x, ⁇ ', y, y' and n are each independently moles of ethylene oxide preferably 1 to 300; most preferably 1 to 150; and
  • n, m', l and l' are each independently moles of propylene oxide, preferably 1 to 300; most preferably 1 to 150;
  • the surfactant composition is a solid at room temperature (24oC), preferably a solid at 50oC.
  • Mixtures of the above surfactants are acceptable and, in fact, mixtures of the above surfactants with other nonionics that alone are liquid even at room temperature may be acceptable provided that the amount or nature of the liquid surfactant is such that the final particulate product does not exhibit tackiness at room temperature. Preferably, tackiness is not exhibited even at 50oC.
  • the more preferred solid nonionic surfactants are the aforedescribed alkyl alcohol ethoxylates and alkylphenol ethoxylates.
  • the solid, nonionic surfactant composition of the instant granules should be from about 1 to about 99 weight percent, preferably from about 3 to about 95 weight percent based on the total granule formulation weight.
  • the most preferred solid nonionic surfactant is dinonylphenol ethoxylate ( ⁇ 100 EO) for it has been discovered that this compound possesses the ability to provide excellent wetting characteristics together with a high melting point. Furthermore, the material exhibits an ability to dissolve in aqueous medium without formation of a gel phase.
  • the amount of the dry water-soluble nitrogen-containing fertilizer to be spray-coated by the solid nonionic composition can be from about 1 to about 99 weight percent, preferably from about 1 to about 95 weight percent based on the total weight of the final spray-coated composition.
  • the pesticides contemplated for use in the granules of this invention are those active ingredients well known to be of value to agriculture and are normally distributed to loci via aqueous spray means such as herbicides, fungicides, bactericides, insecticides, insect antifeedants, acaricides, miticides, nematocides, and plant growth regulants.
  • Preferred pesticides are the herbicides selected from the group consisting of the herbicidal sulfonyl ureas, imidazolines, and glyphosates.
  • the active ingredients should be present in the granules in pesticidally effective amounts, preferably from about 0.01 to about 90 weight percent, most preferably from about 0.03 to about 80 weight percent based on the total granule formulation weight.
  • the essence of the preferred embodiment of the instant invention lies in the discovery that if solid nonionic surfactant compositions are spray-coated upon dry, water-soluble nitrogen-containing fertilizers such as diammonium sulfate, the dissolution rate of the dry surfactant particulate composition in aqueous solution can be greatly enhanced. It is also hypothesized that in addition to the action of the fertilizer per se upon the dissolution rate of the solid, nonionic surfactant composition, the coating/granulation process tends to entrap air within the coated granules thereby increasing the surface area ultimately exposed to the aqueous medium which increases the dissolution rate (as opposed to compaction and extrusion processes which tend to compress air out of the particles). Also, the pockets of entrapped air function as flotation aids which assist in keeping the coated granules from settling.
  • the preferred process of the instant spray-coating invention comprises the steps of:
  • the fertilizer particles are initially blended for at least 10 minutes before the spraying step to ensure that the initial crystal or particle sizes are uniformly distributed throughout the batch.
  • the preferred spray blender-mixers are those of the Mark VI design manufactured by Continental Rollo or an equivalent.
  • the mixture should continue to be blended for at least three additional minutes after the spraying has ceased. If it is desired to have any additional components adhere to the surface of the coated granules, e.g., if an additional additive is a fine powder and one desires to reduce dusting in the final product, the material can also be added while the coated granules are still tacky to obtain adherence, i.e., the material can be added before the granules are completely cooled.
  • optional additional components include anti-foam agents, flow agents, anti-caking agents, stabilizers, inert fillers, gas-generating agents, dyes, and/or any adjuvants particular to the specific end-use application of the resulting product.
  • Optional adjuvants can be added from about 0 to about 20 weight percent of the granular composition.
  • Inert ingredients can be added up to about 80 weight percent.
  • one of the distinct advantages of the instant spray-coated, i.e., multi-layered particle is that it frees the preparer from many of the restrictions normally imposed upon multi-component systems manufacturers.
  • additional adjuvant components which normally would be incompatible with the fertilizer, specifically the diammonium sulfate can be made a part of the coated granule by introducing the component after the pesticide granulation process is essentially completed, but while the multi-layered material is still tacky so that the adjuvant can be adhered to the outer surface, i.e., the component would only be in contact with the pesticide and the nonionic composition layer.
  • Another advantage realized by this adherence contact procedure is that in addition to the pesticide, it allows other material to be placed on the outside of the spray-coated granule, thus giving the adhered material preferential or advanced exposure to the aqueous media. Thus, one can also selectively sequence the exposure times of certain components of the granule.
  • the fertilizer of the instant process preferably should be of a coarse grade; most preferably 95 weight percent of the material should have an average particle size diameter of from about 200 to about 600 microns, i.e., 95 weight percent should pass through a 30 mesh (U. S. Standard) screen and not pass through a 70 mesh (U. S. Standard) screen. Elimination of fines is preferred to minimize compaction or agglomeration of the fertilizer particles during the coating process.
  • the granules may be used as is or, if preferred, screened to a desired particle size.
  • a flaked dinonylphenol ethoxylate ( ⁇ 100 EO) (sold under the Rhone-Poulenc trademark Igepal DM- 970 FLK) is blended with a sufficient amount of a liquid isodecyl alcohol ethoxylate (4 EO) (sold under the Rhone-Poulenc trademark Rhodasurf DA-530) to produce a non-tacky, solid mixture with a 85:15 respectively weight ratio surfactant Composition A (said blend also sold by Rhone-Poulenc under the trademark AgRHô DS 420).
  • isodecyl alcohol ethoxylate has an adverse effect on the melting point of the solid dinonylphenol ethoxylated surfactant, its presence is useful for the improved wetting characteristic it provides, i.e., the lower surface tension realized in the final aqueous solution as a result of its incorporation.
  • dry diammonium sulfate is added to the dry Composition A prepared above in a Sigma Blade Mixer in a weight ratio of approximately 85:15 weight percent sulfate to surfactant. Blending is unable to be accomplished because the materials compress together and cake.
  • the test is run again utilizing solely the flaked dinonylphenol ethoxylate ( ⁇ 100 EO) , i.e., Igepal DM-970 FLK in lieu of Composition A. Again, the blending is unsuccessful because, even at room temperature, the surfactant and diammonium sulfate compact to form cakes.
  • Diammonium sulfate is charged into a Continental Rollo mixer Mark VI blender. The sulfate is rotationally blended for about 10 minutes.
  • a solid nonionic surfactant composition comprising an 85:15 weight ratio of dinonylphenol ethoxylate
  • the resulting dissolution time of the solid nonionic surfactant composition indicates the significantly enhanced dissolution rates that can be unexpectedly realized by this invention, i.e., by the spray-coating of diammonium sulfate with the molten nonionic surfactant composition.
  • 84.05 weight percent diammonium sulfate is charged into a Continental Rollo mixer Mark VI blender. The sulfate is rotationally blended for about 10 minutes. 15 weight percent of a solid nonionic surfactant composition comprising a 85:15 weight ratio of dinonylphenol ethoxylate ( ⁇ 100 EO) (Igepal DM 970) to isodecyl alcohol ethoxylate (4 EO) (Igepal DA 530) respectively, (said nonionic surfactant composition blend sold under the Rhone-Poulenc trademark AgRHô DS 420) is heated at a temperature of about 85o C until the surfactant composition is melted.
  • a solid nonionic surfactant composition comprising a 85:15 weight ratio of dinonylphenol ethoxylate ( ⁇ 100 EO) (Igepal DM 970) to isodecyl alcohol ethoxylate (4 EO) (Igepal DA 530) respectively, (said nonionic sur
  • the molten surfactant is then sprayed onto the rotating ammonium sulfate through five sized 8008E spray tips.
  • the mixture is blended continuously for three additional minutes to ensure uniform granulation.
  • the mixture is then cooled to about 45o C at which time 0.2 weight percent of antifoam Rhodorsil Silicone EP 6703 is blended into the mixture for three minutes.
  • 0.75 weight percent of an anti-caking or free flow aid (Tixosil 38AB) is blended in for a few minutes.
  • the coated granular product is collected through a #8 mesh sieve.
  • the dissolution times of the resulting coated granules are less than half that of the solid nonionic surfactant composition alone.
  • Example IV The process of Example IV is followed utilizing the following weight percentages: ammonium sulfate - 93.15%; AgRHô DS 420 - 6.0%; Rhodorsil EP 6703 - 0.1%; and Tixosil 38 AB - 0.75%.
  • Example IV the dissolution times of the resulting coated granules are again less than half that of the solid nonionic surfactant compositions alone.
  • the spray-admixed compositions of this invention do not suffer from particle separation that can occur with simple solid blends of the same materials.
  • the coated products of this invention also realize a very uniform granule size together with excellent attrition resistance. Serendipitously, the process is significantly less energy intensive and more capital cost effective than other melt-admixing processes, e.g., the extrusion processes of the prior art.
  • Adjuvant A Twenty five pounds of Adjuvant A is prepared by charging 93.15 weight percent diammonium sulfate into a Continental Rollo Mixer Mark VI Blender. The sulfate is rotationally blended for about 10 minutes. 6.0 weight percent of a solid nonionic surfactant composition comprising an 85:15 weight ratio of dinonylphenol ethoxylate ( ⁇ 100 EO) (Igepal DM 970) to isodecyl alcohol ethoxylate (4 EO) (Igepal DA 530) respectively, (said nonionic surfactant composition blend sold under the Rhone-Poulenc trademark AgRHô DS 420) is heated at a temperature of about 85o C until the surfactant composition is melted.
  • a solid nonionic surfactant composition comprising an 85:15 weight ratio of dinonylphenol ethoxylate ( ⁇ 100 EO) (Igepal DM 970) to isodecyl alcohol ethoxylate (4 EO) (Ige
  • the molten surfactant is then sprayed onto the rotating diammonium sulfate through five sized 8008E spray tips.
  • the mixture is blended continuously for two additional minutes to ensure uniform granulating, at which time herbicides are identified and, in the amounts listed below, are added.
  • the material is tumble blended an additional three minutes to adhere the particulate pesticide to and incorporate them in the granules.
  • the mixture is then cooled to about 45oC, at which time 0.8 oz. of antifoam Rhodorsil Silicone EP 6703 is blended into the mixture for three minutes.
  • 6.0 oz. of an anti-caking or free flow aid (Tixosil 38 AB) is blended in for a few minutes.
  • the pesticide-adhered granules are cooled and collected through a sieve.
  • the following table illustrates the enhanced phytotoxicity realized by the use of the dry bonded pesticidal-adjuvant systems of the instant invention prepared as above described compared to that realized by standard liquid adjuvant-pesticide blends.
  • the carrier for the compositions listed in Table II is water at ten gallons per acre.
  • Kinetic is a proprietary liquid surfactant adjuvant system comprising a polyorganosilicone and an ethyleneoxide/propyleneoxide block copolymer.
  • Dynamic is a proprietary liquid adjuvant system comprising methylated seed oil (MSO) and a polyorganosilicone.
  • MSO methylated seed oil
  • C.O.C. is a crop oil concentrate usually about 83 weight percent paraffinic crop oil and 17 weight percent emulsifier.
  • the following examples illustrate the enhanced phytotoxicity realized by the use of a glyphosate herbicide incorporated into the granulated products of the surfactant-fertilizer carrier systems of this invention prepared as described in Examples VI - XV with the following changes to the pesticidal granular composition: 84.05 weight percent diammonium sulfate; 15.0 weight percent AgRHô DS 420; 1.6 oz. Rhodorsil Silicone EP 6703; and 6.0 oz. of Tixosil 38 AB.
  • the herbicide used is Roundup which is a trademark of Monsanto for a glyphosate herbicidal formulation. Quest is a proprietary ammonia-based water conditioner of Helena Chemical Co.
  • the carrier for the compositions is again ten gallons of water per acre.
  • the final granular product is such that it produces very little foam; low dust levels and odor; is non-compacting; and spills are easily swept up.
  • the dry bonded granular pesticide delivery systems of this invention enable a rapidly dispersing, completely optimized and balanced pesticidal-adjuvant-fertilizer composition to be prepared and, therefore, combines performance, convenience, and safety to the end-user in one granular product - - an ideal situation.

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  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Pest Control & Pesticides (AREA)
  • Organic Chemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • Plant Pathology (AREA)
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Abstract

A method for producing a dry bonded pesticidal granular surfactant/fertilizer delivery system comprising spray-coating from about 1 to about 99 weight percent dry water-soluble, nitrogen-containing fertilizer particles, preferably diammonium sulfate with the surfactant composition, admixing pesticide; and granulating the final delivery system; and the granules produced thereby.

Description

PESTICIDAL GRANULES CONTAINING FERTILIZER AND SURFACTANT Field of the Invention
The present invention relates to pesticidal granules containing rapidly dissolutioning or dispersing fertilizer and surfactant compositions. More particularly, the fertilizers are water-soluble nitrogen-containing and the surfactant compositions comprise solid, nonionic surfactants.
Background of the Invention
It is well recognized by the agricultural industry that it is advantageous to the end-user to be able to formulate active pesticides as water dissolutioning or dispersible compositions which can be easily mixed with water and applied by means of a spraying apparatus to a locus to be protected.
Additionally, many pesticides, for example, fungicides, plant growth regulators, herbicides and systemic insecticides or, in fact, any pesticide needing rain fastness or attendant soil or surface wetting/penetration require the presence of surfactant adjuvants for effective end-use applications. This is especially true for herbicides which realize greatly enhanced post-emergence weed control when applied with certain nonionic surfactants. For example, studies such as "Surfactant Structure and Concentration Strongly Affect Rimsulfuron Activity" Green et al., Weed Technology Vol. 7:633-640, 1993 have indicated that sulfonyl urea herbicidal activity can be increased ten-fold with selection of appropriate nonionic surfactant adjuvants. The art has also recognized the particular importance of two of the adjuvant properties. They are first, the hydrophilic - hydrophobic balance (HLB) and secondly, the physical form of the initial surface deposit, ideally a moist gel. It has been theorized that with surfactants in the appropriate HLB range, the surfactant is hydrophilic enough to solubilize the herbicide in water and lipophilic enough to penetrate the cuticle of a leaf. In moist gels, the surfactants are hypothesized to form monolayers on the leaf surfaces with the lipophilic portion along the waxes and the hydrophilic portion forming "hydrophilic channels" through surface imperfections such as cracks, punctures, and pores. These channels absorb water and slightly swell to allow herbicides to diffuse through the cuticle into the cell walls.
The surfactants preferred by the art and which can realize the above-described properties when admixed with pesticides in aqueous medium, are the nonionics. Most preferably, the solid, nonionic surfactants are desired by the end-user, usually a farmer, for ease of handling such as when preparing a pesticidal spray tank mix. The solid nonionics are also preferred to eliminate the need for triple rinsing of the liquid surfactant containers, e.g., the 2.5 gallon jugs, usually used to deliver liquid surfactant concentrates to farmers and to avoid the attendant jug disposal problem. However, solid nonionic surfactants tend to dissolve rather slowly; therefore, end-users must be especially careful to ensure complete dissolution of the surfactant so that proper pesticide to surfactant ratios are delivered to the locus and/or that entrained undissolved particles do not interrupt the delivery process, e.g., by plugging spray nozzles.
Often dry water-soluble nitrogen fertilizers such as urea, ethylurea, mono and diammonium phosphate; mono and diammonium sulfate, and mixtures thereof can enhance the efficacy of pesticides, especially the herbicides. This significant increase in herbicide phytotoxicity in the presence of nitrogen fertilizers has been especially observed with the use of diammonium sulfate adjuvant. Large increases in herbicidal efficacy have been reported (Adjuvants and Agrochemicals, Vol. II, Chapter 34) when diammonium sulfate was used as an adjuvant in combination with methylated seed oil, a known cuticle "softener". Glyphosate, one of the most frequently used herbicides worldwide, usually has diammonium sulfate added to its spray tank solution to enhance its herbicidal efficacy. As an aside, diammonium sulfate appears to have at least two modes of action when coupled to glyphosates : firstly, by directly increasing the glyphosates phytotoxicity and secondly, by overcoming antagonism from certain cations. It has been theorized that the sulfate ions precipitate calcium and sodium ions by forming calcium and sodium sulfates which have low water solubility. The ammonium ions form the more toxic glyphosate-ammonium complex and prevent formation of the less phytotoxic glyphosate - sodium complex during droplet drying.
However, the delivery of a pesticide, the aforedescribed solid, nonionic surfactant composition and the dry water-soluble fertilizer components individually to the customer for on-site blending or tank mixing ofttimes results in an undesirable situation for the customer for he has to ensure that the amounts of the pesticide, surfactant composition and fertilizer inserted into the spray tank are correct; the materials are compatible and properly dispersed; proper safety precautions are followed, for example, if one or more of the components dust; and that necessary additional adjuvants are immediately available if, through incompatibility or otherwise, for example, problems with excessive foaming or precipitation were to occur. Even though all of the components are delivered as solids, a spill of a component delivered as a powder can also be exceedingly difficult to clean up.
In view of the above, suppliers to the agricultural market have attempted to pre-blend individual fertilizer, surfactant and other adjuvant components as an aid to the end- user farmer. However, significant differences in particle sizes among the individual components can result in separation during shipping and/or storage. Furthermore, inherent tackiness or particle fines generated through attrition can result in compaction and/or caking before the customer can use the product blend. In view of the slow aqueous dissolution rate exhibited by many of the solid nonionics, it would also be desirable no increase the rate at which the solid surfactant dissolves in the end-user's final liquid medium. Heretofore, attempts to control the times of solid surfactant solubilization have taken various forms, such as using incorporated binders, extrusion granulation, membrane encapsulation, or tableting, i.e., compression of the surfactant-containing compositions all of which possess attendant disadvantages. For example, encapsulation is highly dependent upon the quality of the encapsulating material and may release the compositions in discrete packages. The compaction process is an extremely difficult way to control the release of surfactant material for slight variations in composition properties, e.g., tackiness, particle size, etc. can have dramatic impact on the dissolution rate even under fixed, uniform compacting pressure.
Extrusion processing to prepare melt-admixed granules, such as is taught in EP 501,798A1, wherein pesticides, binders and diluents are extruded together, has the disadvantage of always intimately admixing all of the components thus inherently placing a restriction on the individual components that can be utilized in such a process. For example, in many situations, the individual components sought to be used are incompatible in intimate contact. Furthermore, in extruded granules, all of the material components will be exposed to the aqueous medium simultaneously, i.e., one cannot program for differing dissolution rates.
As noted above, however, granule-type products, i.e., multi-component particles are desirable in many end-use applications such as when they are to be used in pesticidal tank mixes for they are more stable during storage and transport than mere physical mixtures of the dry individual components and provide ease of handling.
It would be advantageous if a process means relatively insensitive to minor process or product variations were available to avoid the above-identified problems of the prior art; to provide a single particle pesticide-fertilizer-nonionic surfactant carrier; and to perhaps not only increase the rate at which nonionic solid surfactants dissolve in aqueous medium, but also permit i) incompatible components to be incorporated into a single particle and ii) preferential or sequential exposure of selected components to the aqueous media.
For all of the above reasons, it would be highly desirable to be able to provide a dry solid granulated product comprising a water-dispersible pesticide, water-soluble solid fertilizer and solid, nonionic surfactant composition, which does not exhibit the undesirable traits associates with heretofore prior art blend attempts as detailed above. Summary of the Invention
It is an object of the present invention to realize a process for preparing pesticidal granules comprising a dry water-soluble nitrogen fertilizer coated by solid nonionic surfactant compositions and granulated with pesticide adhered to the granule, and the resulting granule. This is accomplished by spray-coating the molten surfactant composition onto from about 1 to about 99 weight percent dry water-soluble, nitrogen-containing fertilizer, preferably diammonium sulfate crystals, said percent based on the final weight of the dry bonded adjuvant granule, and granulating the composition in the presence of pesticide to incorporate same into the granule. Detailed Description of the Invention
It has been discovered that dry water-soluble nitrogen- containing fertilizers, preferably diammonium sulfate can provide excellent substrates for certain solid nonionic surfactants when the surfactant composition is dry bonded onto from about 1 to about 99 weight percent (based on the total dry bonded particle weight) of the fertilizer by spray-coating the fertilizer with the molten surfactant and these particles provide excellent carrier systems for pesticides. The time for complete dissolution in water of the solid, nonionic surfactant compositions can ofttimes be significantly reduced. These coated pesticide-fertilizer carrier systems also realize many additional advantages over similar blends of these materials in the prior art. At the outset, being a hard coated, granular type product, the instant pesticide-fertilizer carrier systems are exceptionally stable and relatively unaffected by attrition during storage and shipping. These unique delivery systems permit components, normally incompatible with the pesticide and/or nitrogen-containing fertilizer to be physically incorporated in the granule. For example, if an adjuvant is incompatible with the fertilizer, it can be adhered to the granule; if incompatible with the pesticide, it can be added prior to the spray coating, i.e., made part of the substrate. If it is desired to have adjuvants that require a longer exposure time to a given aqueous medium for optimum efficiency as an inherent part of the granule, for example, guar particles that require additional hydration time; pH buffers, etc., they can be preferentially or sequentially released by not having the adjuvant incorporated uniformly throughout the particle as would occur using the processing of the prior art, but rather having the adjuvant adhered to the outer surfactant coating of the granule.
By "spray-coated" is meant that the solid surfactant is melted and coated upon a substrate comprising the fertilizer while still in the molten state. This is done by spraying the molten surfactant onto the substrate, most preferably the diammonium sulfate particles in a coating blender. Complete coating of the substrate particles is not always necessary but, rather, the degree of completeness of the coating is often determined by specific requirements such as the need to isolate the fertilizer from other added incompatible adjuvants. The sprayed material, while still-in a sticky state is then continuously tumbled to partially agglomerate or granulate the individual particles while preferably the pesticide is added and bonded so as to yield dry bonded flowable granules.
The solid, nonionic surfactants that can be used in the process of this invention are those known in the art which are solid or of a hard, nontacky wax consistency at room temperature.
Among the preferred nonionics are the following:
A) Amides such as :
i) Alkanolamides of the formula -
Figure imgf000011_0001
wherein R' and R" each can be -H, -CH2CH2OH, or
Figure imgf000011_0002
ii) ethoxylated alkanolamides of the formula -
and
Figure imgf000011_0003
iii) ethylene bisamides of the formula -
Figure imgf000012_0001
B) Esters such as: i) fatty acid esters of the formula -
Figure imgf000012_0002
ii) glycerol esters of the formula -
Figure imgf000012_0003
iii) ethoxylated fatty acid glycol and polyethylene glycol esters of the formula -
Figure imgf000012_0004
iv) sorbitan esters of the formula -
and
Figure imgf000012_0005
v) ethoxylated sorbitan esters of the formula -
Figure imgf000013_0001
C) Ethoxylates such as: i) alkylphenol ethoxylates of the formula -
Figure imgf000013_0002
ii) alcohol ethoxylates of the formula - R - O - (CH2CH2O)nH; iii) tristyrylphenol ethoxylates of the formula -
; and
Figure imgf000013_0003
iv) mercaptan ethoxylates of the formula - R - S - (CH2CH2O)nH;
D) End-capped and EO/PO block copolymers such as - i ) alcohol alkoxylates of the formula -
Figure imgf000014_0001
ii ) ethylene oxide/propylene oxide block copolymers of the formula -
Figure imgf000014_0002
iii) reverse copolymers of the formula -
Figure imgf000014_0003
iv) chlorine capped ethoxylates of the formula - R - (OCH2CH2)xCl; and v) tetra- functional block copolymers of the formula -
Figure imgf000014_0004
or
Figure imgf000014_0005
wherein R is a fatty alkyl group, preferably a C6 - C22 fatty alkyl group, most preferably a C8 - C18 fatty alkyl group;
R1 is -H or a fatty alkyl group, preferably -H or a C6 - C22 fatty alkyl group, most preferably -
H or a C8 - C18 fatty alkyl group;
x, χ', y, y' and n are each independently moles of ethylene oxide preferably 1 to 300; most preferably 1 to 150; and
m, m', l and l' are each independently moles of propylene oxide, preferably 1 to 300; most preferably 1 to 150;
with the proviso that the fatty alkyl group and/or the number or arrangement of the ethylene oxide and/or propylene oxide units are such that the surfactant composition is a solid at room temperature (24ºC), preferably a solid at 50ºC.
Mixtures of the above surfactants are acceptable and, in fact, mixtures of the above surfactants with other nonionics that alone are liquid even at room temperature may be acceptable provided that the amount or nature of the liquid surfactant is such that the final particulate product does not exhibit tackiness at room temperature. Preferably, tackiness is not exhibited even at 50ºC.
The more preferred solid nonionic surfactants are the aforedescribed alkyl alcohol ethoxylates and alkylphenol ethoxylates.
The solid, nonionic surfactant composition of the instant granules should be from about 1 to about 99 weight percent, preferably from about 3 to about 95 weight percent based on the total granule formulation weight.
The most preferred solid nonionic surfactant is dinonylphenol ethoxylate (〉 100 EO) for it has been discovered that this compound possesses the ability to provide excellent wetting characteristics together with a high melting point. Furthermore, the material exhibits an ability to dissolve in aqueous medium without formation of a gel phase.
The amount of the dry water-soluble nitrogen-containing fertilizer to be spray-coated by the solid nonionic composition can be from about 1 to about 99 weight percent, preferably from about 1 to about 95 weight percent based on the total weight of the final spray-coated composition.
The pesticides contemplated for use in the granules of this invention are those active ingredients well known to be of value to agriculture and are normally distributed to loci via aqueous spray means such as herbicides, fungicides, bactericides, insecticides, insect antifeedants, acaricides, miticides, nematocides, and plant growth regulants. Preferred pesticides are the herbicides selected from the group consisting of the herbicidal sulfonyl ureas, imidazolines, and glyphosates. The active ingredients should be present in the granules in pesticidally effective amounts, preferably from about 0.01 to about 90 weight percent, most preferably from about 0.03 to about 80 weight percent based on the total granule formulation weight.
The essence of the preferred embodiment of the instant invention lies in the discovery that if solid nonionic surfactant compositions are spray-coated upon dry, water-soluble nitrogen-containing fertilizers such as diammonium sulfate, the dissolution rate of the dry surfactant particulate composition in aqueous solution can be greatly enhanced. It is also hypothesized that in addition to the action of the fertilizer per se upon the dissolution rate of the solid, nonionic surfactant composition, the coating/granulation process tends to entrap air within the coated granules thereby increasing the surface area ultimately exposed to the aqueous medium which increases the dissolution rate (as opposed to compaction and extrusion processes which tend to compress air out of the particles). Also, the pockets of entrapped air function as flotation aids which assist in keeping the coated granules from settling.
The preferred process of the instant spray-coating invention comprises the steps of:
a) adding the dry water-soluble nitrogen-containing fertilizer, preferably diammonium sulfate to a blender chamber;
b) mixing said fertilizer to ensure uniform distribution; c) melting the initially solid nonionic surfactant composition, preferably at a temperature of from about 65º to about 95ºC. (149 - 203ºF);
d) spraying the molten surfactant composition onto the fertilizer particles in said blender chamber; e) blending continuously to effect a uniform coating and granulation of the fertilizer particles;
f) admixing pesticide particles while the surfactant composition is still tacky; and
g) cooling the pesticide-containing granules, preferably to less than 50ºC (122ºF).
Preferably, the fertilizer particles are initially blended for at least 10 minutes before the spraying step to ensure that the initial crystal or particle sizes are uniformly distributed throughout the batch. The preferred spray blender-mixers are those of the Mark VI design manufactured by Continental Rollo or an equivalent.
Also preferably , to aid in providing a uniform granulation, the mixture should continue to be blended for at least three additional minutes after the spraying has ceased. If it is desired to have any additional components adhere to the surface of the coated granules, e.g., if an additional additive is a fine powder and one desires to reduce dusting in the final product, the material can also be added while the coated granules are still tacky to obtain adherence, i.e., the material can be added before the granules are completely cooled. Examples of such optional additional components include anti-foam agents, flow agents, anti-caking agents, stabilizers, inert fillers, gas-generating agents, dyes, and/or any adjuvants particular to the specific end-use application of the resulting product. Optional adjuvants can be added from about 0 to about 20 weight percent of the granular composition. Inert ingredients can be added up to about 80 weight percent.
Aside from being able to deliver to the end-user a complete accurately measured, optimized and compatible pesticidal formulation in a single granule, one of the distinct advantages of the instant spray-coated, i.e., multi-layered particle is that it frees the preparer from many of the restrictions normally imposed upon multi-component systems manufacturers. For example, additional adjuvant components which normally would be incompatible with the fertilizer, specifically the diammonium sulfate can be made a part of the coated granule by introducing the component after the pesticide granulation process is essentially completed, but while the multi-layered material is still tacky so that the adjuvant can be adhered to the outer surface, i.e., the component would only be in contact with the pesticide and the nonionic composition layer.
Another advantage realized by this adherence contact procedure is that in addition to the pesticide, it allows other material to be placed on the outside of the spray-coated granule, thus giving the adhered material preferential or advanced exposure to the aqueous media. Thus, one can also selectively sequence the exposure times of certain components of the granule.
The fertilizer of the instant process preferably should be of a coarse grade; most preferably 95 weight percent of the material should have an average particle size diameter of from about 200 to about 600 microns, i.e., 95 weight percent should pass through a 30 mesh (U. S. Standard) screen and not pass through a 70 mesh (U. S. Standard) screen. Elimination of fines is preferred to minimize compaction or agglomeration of the fertilizer particles during the coating process.
The granules may be used as is or, if preferred, screened to a desired particle size.
The following specific examples are further illustrative of the present invention, but it is understood that the invention is not limited thereto. All amounts of various ingredients are by weight or weight percent unless otherwise specified.
In all of the following Examples, the dissolution rates were determined as follows:
A calculated amount of product such that the surfactant weight remained at 2.0 grams is added into a 250 ml beaker filled with 98 ml of deionized water at room temperature while stirring with a magnetic stirrer set to a speed of about 30-50% full scale and a stopwatch started. When complete dissolution is observed, i.e., the solution becomes completely clear, the time is recorded. Examples I-II
A flaked dinonylphenol ethoxylate (〉100 EO) (sold under the Rhone-Poulenc trademark Igepal DM- 970 FLK) is blended with a sufficient amount of a liquid isodecyl alcohol ethoxylate (4 EO) (sold under the Rhone-Poulenc trademark Rhodasurf DA-530) to produce a non-tacky, solid mixture with a 85:15 respectively weight ratio surfactant Composition A (said blend also sold by Rhone-Poulenc under the trademark AgRHô DS 420). Although the isodecyl alcohol ethoxylate has an adverse effect on the melting point of the solid dinonylphenol ethoxylated surfactant, its presence is useful for the improved wetting characteristic it provides, i.e., the lower surface tension realized in the final aqueous solution as a result of its incorporation.
At room temperature, dry diammonium sulfate is added to the dry Composition A prepared above in a Sigma Blade Mixer in a weight ratio of approximately 85:15 weight percent sulfate to surfactant. Blending is unable to be accomplished because the materials compress together and cake.
The test is run again utilizing solely the flaked dinonylphenol ethoxylate (〉100 EO) , i.e., Igepal DM-970 FLK in lieu of Composition A. Again, the blending is unsuccessful because, even at room temperature, the surfactant and diammonium sulfate compact to form cakes.
Example III
Diammonium sulfate is charged into a Continental Rollo mixer Mark VI blender. The sulfate is rotationally blended for about 10 minutes. A solid nonionic surfactant composition comprising an 85:15 weight ratio of dinonylphenol ethoxylate
(〉 100 EO) (Igepal DM 970) and isodecyl alcohol ethoxylate (4 EO) (Igepal DA 530) respectively, (said nonionic surfactant composition blend sold under the Rhone-Poulenc trademark AgRHô DS 420) is heated at a temperature of about 85º C until the surfactant composition is melted. The molten surfactant is then sprayed onto the rotating diammonium sulfate through fine sized 8008E spray tips. The mixture is blended continuously for three additional minutes to ensure uniform granulation. The mixture is then cooled to about 45º C at which time an antifoam agent is blended into the mixture (and where indicated, this is followed by citric acid and a flow aid) for three minutes. The coated granular product is collected through a #8 (U. S. Standard) mesh screen. In these and the following examples, the weight percentages as indicated are based on the total weight of the final granule formulation.
Figure imgf000023_0001
The resulting dissolution time of the solid nonionic surfactant composition indicates the significantly enhanced dissolution rates that can be unexpectedly realized by this invention, i.e., by the spray-coating of diammonium sulfate with the molten nonionic surfactant composition.
Example IV
84.05 weight percent diammonium sulfate is charged into a Continental Rollo mixer Mark VI blender. The sulfate is rotationally blended for about 10 minutes. 15 weight percent of a solid nonionic surfactant composition comprising a 85:15 weight ratio of dinonylphenol ethoxylate (〉 100 EO) (Igepal DM 970) to isodecyl alcohol ethoxylate (4 EO) (Igepal DA 530) respectively, (said nonionic surfactant composition blend sold under the Rhone-Poulenc trademark AgRHô DS 420) is heated at a temperature of about 85º C until the surfactant composition is melted. The molten surfactant is then sprayed onto the rotating ammonium sulfate through five sized 8008E spray tips. The mixture is blended continuously for three additional minutes to ensure uniform granulation. The mixture is then cooled to about 45º C at which time 0.2 weight percent of antifoam Rhodorsil Silicone EP 6703 is blended into the mixture for three minutes. Lastly, 0.75 weight percent of an anti-caking or free flow aid (Tixosil 38AB) is blended in for a few minutes. The coated granular product is collected through a #8 mesh sieve.
The dissolution times of the resulting coated granules are less than half that of the solid nonionic surfactant composition alone.
Example V
The process of Example IV is followed utilizing the following weight percentages: ammonium sulfate - 93.15%; AgRHô DS 420 - 6.0%; Rhodorsil EP 6703 - 0.1%; and Tixosil 38 AB - 0.75%.
As in Example IV, the dissolution times of the resulting coated granules are again less than half that of the solid nonionic surfactant compositions alone.
In addition to the above-identified advantages of potentially increased surfactant dissolution rates and the avoidance of compaction problems associated with attempts to intimately admix diammonium sulfate with the solid surfactants of the instant invention, the spray-admixed compositions of this invention do not suffer from particle separation that can occur with simple solid blends of the same materials. In addition to the aforementioned enhanced dissolution; incompatibility avoidance; and preferential dissolution advantages, the coated products of this invention also realize a very uniform granule size together with excellent attrition resistance. Serendipitously, the process is significantly less energy intensive and more capital cost effective than other melt-admixing processes, e.g., the extrusion processes of the prior art.
Examples VI - XV
Twenty five pounds of Adjuvant A is prepared by charging 93.15 weight percent diammonium sulfate into a Continental Rollo Mixer Mark VI Blender. The sulfate is rotationally blended for about 10 minutes. 6.0 weight percent of a solid nonionic surfactant composition comprising an 85:15 weight ratio of dinonylphenol ethoxylate (〉 100 EO) (Igepal DM 970) to isodecyl alcohol ethoxylate (4 EO) (Igepal DA 530) respectively, (said nonionic surfactant composition blend sold under the Rhone-Poulenc trademark AgRHô DS 420) is heated at a temperature of about 85º C until the surfactant composition is melted. The molten surfactant is then sprayed onto the rotating diammonium sulfate through five sized 8008E spray tips. The mixture is blended continuously for two additional minutes to ensure uniform granulating, at which time herbicides are identified and, in the amounts listed below, are added. The material is tumble blended an additional three minutes to adhere the particulate pesticide to and incorporate them in the granules. The mixture is then cooled to about 45ºC, at which time 0.8 oz. of antifoam Rhodorsil Silicone EP 6703 is blended into the mixture for three minutes. Lastly, 6.0 oz. of an anti-caking or free flow aid (Tixosil 38 AB) is blended in for a few minutes. The pesticide-adhered granules are cooled and collected through a sieve.
The following table illustrates the enhanced phytotoxicity realized by the use of the dry bonded pesticidal-adjuvant systems of the instant invention prepared as above described compared to that realized by standard liquid adjuvant-pesticide blends. The carrier for the compositions listed in Table II is water at ten gallons per acre.
Kinetic (a trademark of Helena Chemical Co.) is a proprietary liquid surfactant adjuvant system comprising a polyorganosilicone and an ethyleneoxide/propyleneoxide block copolymer. Dynamic (a trademark of Helena Chemical Co.) is a proprietary liquid adjuvant system comprising methylated seed oil (MSO) and a polyorganosilicone. C.O.C. is a crop oil concentrate usually about 83 weight percent paraffinic crop oil and 17 weight percent emulsifier.
Figure imgf000027_0001
The above results illustrate the significantly enhanced herbicidal activity that can be realized via the use of the dry bonded pesticidal-adjuvant granules of the instant invention over the activity levels when standard liquid adjuvant systems are used. Examples XVI - XVII
The following examples illustrate the enhanced phytotoxicity realized by the use of a glyphosate herbicide incorporated into the granulated products of the surfactant-fertilizer carrier systems of this invention prepared as described in Examples VI - XV with the following changes to the pesticidal granular composition: 84.05 weight percent diammonium sulfate; 15.0 weight percent AgRHô DS 420; 1.6 oz. Rhodorsil Silicone EP 6703; and 6.0 oz. of Tixosil 38 AB. The herbicide used is Roundup which is a trademark of Monsanto for a glyphosate herbicidal formulation. Quest is a proprietary ammonia-based water conditioner of Helena Chemical Co. The carrier for the compositions is again ten gallons of water per acre.
Figure imgf000028_0001
The above results illustrate the greatly enhanced herbicidal activity achieved via the use of the dry bonded pesticidal-adjuvant granules of this invention when the pesticide is a glyphosate herbicide. The outstanding activity of these dry bonded granules are the result of the combined properties of high surfactant loadings; high ammonium ion levels; and rapid aqueous dispersement. These factors, together with the fact that 1) the HLB is about 16, i.e., within the art-recognized preferred range of 12-17 and 2) the compositions dry initially to a moist gel on leaf surfaces (an ideal condition as previously noted for increased pesticide leaf penetration) combine to make these dry bonded granules powerful products for the pesticide end-user. The final granular product is such that it produces very little foam; low dust levels and odor; is non-compacting; and spills are easily swept up. The dry bonded granular pesticide delivery systems of this invention enable a rapidly dispersing, completely optimized and balanced pesticidal-adjuvant-fertilizer composition to be prepared and, therefore, combines performance, convenience, and safety to the end-user in one granular product - - an ideal situation.
Although the present invention has been described and illustrated with reference to specific examples, it is understood that modifications and variations of composition and procedure are contemplated within the scope of the following claims:

Claims

We claim:
1. A method for producing a dry bonded granular pesticide system comprising spray-coating from about 1 to about 99 weight percent dry, water-soluble nitrogen-containing fertilizer with from about 1 to about 99 weight percent of a solid, nonionic surfactant composition and admixing from about 0.01 to about 90 weight percent pesticide while the surfactant composition is still tacky; the weight percentage based on the total weight of the spray- coated composition.
2. The method of claim 1 wherein the fertilizer is present from about 1 to about 95 weight percent of the spray- coated granular composition.
3. The method of claim 1 wherein said fertilizer is diammonium sulfate.
4. The method of claim 2 wherein said fertilizer is diammonium sulfate.
5. A method for producing a dry bonded granular pesticide system comprising:
spray-coating from about 1 to about 99 weight percent dry water-soluble, nitrogen-containing fertilizer with from about 1 to about 99 weight percent of a solid, nonionic surfactant composition selected from the group consisting of: i) alkanolamides of the formula
Figure imgf000031_0001
wherein R' and R" each can be -H-, -CH2 CH2 OH, or
Figure imgf000031_0002
ii ) ethoxylated alkanolamides of the formula
Figure imgf000031_0003
iii) ethylene bisamides of the formula
Figure imgf000031_0004
iv) fatty acid esters of the formula
Figure imgf000031_0005
v) glycerol esters of the formula
Figure imgf000031_0006
vi) ethoxylated fatty acid glycol and polyethylene glycol esters of the formula
Figure imgf000031_0007
vii) sorbitan esters of the formula
Figure imgf000032_0001
viii) ethoxylated sorbitan esters of the formula
Figure imgf000032_0002
ix) alkylphenol ethoxylates of the formula
Figure imgf000032_0003
x) alcohol ethoxylates of the formula
R - O - (CH2CH2O)nH; xi) tristyrylphenol ethoxylates of the formula
Figure imgf000032_0004
xii) mercaptan ethoxylates of the formula
R - S - (CH2CH2O)nH; xiii) alcohol alkoxylates of the formula
Figure imgf000033_0001
xiv) ethyleneoxide/propyleneoxide block copolymers of the formula
Figure imgf000033_0002
xv) reverse copolymers of the formula
Figure imgf000033_0003
xvi) chlorine capped ethoxylates of the formula
R - (OCH2CH2)xCl;
xvii) tetra-functional block copolymers of the formula
Figure imgf000033_0004
xviii) mixtures thereof
wherein
R is a fatty alkyl group; R1 is -H or a fatty alkyl group;
x, x', y, y' and n are each independently moles of ethyleneoxide; and
m, m', l and l' are each independently moles of propyleneoxide; and
with the proviso that the fatty alkyl group and/or the number or arrangement of the ethyleneoxide and/or propyleneoxide units are such that the surfactant composition is solid at 24ºC; and
admixing from about 0.01 to about 90 weight percent pesticide while the surfactant composition is still in a tacky state; (all weight percents based on the total spray-coated granular composition weight).
6. The method of claim 5 wherein
R fatty alkyl groups are from C6 to C22;
R1 is H or the fatty alkyl groups are from C6 to C22; x, x', y, y', and n are each independently from 1 to 300; and
m, m', l, and l' are each independently from 1 to 300.
7. The method of claim 6 wherein
R is C8 to C18 alkyl;
R1 is H or C8 to C18 alkyl;
x, x' y, y' and n are each independently from 1 to 200; m, m', l, and l' are each independently from 1 to 200.
8. A method for producing a dry bonded granular pesticide system comprising
a) mixing dry water-soluble nitrogen-containing fertilizer particles in a blending chamber;
b) melting a solid nonionic surfactant composition;
c) spraying the molten surfactant composition onto said fertilizer;
d) blending continuously to achieve a uniform coating and granulation of the fertilizer particles;
e) admixing pesticide particles while the surfactant composition is still tacky; and
f) cooling the pesticide-containing granules wherein said fertilizer comprises from about 1 to about 99 weight percent of the granule composition; said nonionic surfactant comprises from about 1 to about 99 weight percent; and said pesticide comprises from about 0.01 to about 90 weight percent (all weight percents based on the total spray-coated granular composition weight).
9. The method of claim 8 wherein said fertilizer is present from about 1 to about 95 weight percent of the coated composition.
10. The method of claim 8 wherein said fertilizer is diammonium sulfate.
11. The method of claim 9 wherein said fertilizer is diammonium sulfate.
12. A method for producing a dry bonded granular pesticide system comprising
a) mixing dry water-soluble nitrogen-containing fertilizer particles in a blending chamber; b) melting a solid nonionic surfactant selected from the group consisting of
i) alkanolamides
Figure imgf000036_0001
wherein R' and R" each can be -H, -CH2 CH2 OH, or -
Figure imgf000036_0002
ii) ethoxylated alkanolamides of the formula
Figure imgf000036_0003
iii) ethylene bisamides of the formula
Figure imgf000036_0004
iv) fatty acid esters of the formula
Figure imgf000036_0005
v) glycerol esters of the formula
Figure imgf000037_0001
vi) ethoxylated fatty acid glycol and polyethylene glycol esters of the formula
Figure imgf000037_0002
vii) sorbitan esters of the formula
Figure imgf000037_0003
viii) ethoxylated sorbitan esters of the formula
Figure imgf000037_0004
ix) alkylphenol ethoxylates of the formula
Figure imgf000037_0005
x) alcohol ethoxylates of the formula
R - O - (CH2CH2O)nH; xi ) tristyrylphenol ethoxylates of the formula ;
Figure imgf000038_0001
xii) mercaptan ethoxylates of the formula
R - S - (CH2CH2O)nH; xiii) alcohol alkoxylates of the formula
Figure imgf000038_0002
xiv) ethyleneoxide/propyleneoxide block copolymers of the formula
Figure imgf000038_0003
xv) reverse copolymers of the formula
xvi) chlorine capped ethoxylates of the formula
R - (OCH2CH2)xCl; xvii) tetra-functional block copolymers of the formula
Figure imgf000039_0001
xviii) mixtures thereof
wherein
R is a fatty alkyl group;
R1 is -H or a fatty alkyl group;
x, x', y, y', and n are each independently moles of ethyleneoxide; and
m, m', l, and l' are each independently moles of propyleneoxide; and
with the proviso that the fatty alkyl group and/or the number or arrangement of the ethyleneoxide and/or propyleneoxide units are such that the surfactant composition is solid at 24ºC.
c) spraying the molten surfactant onto the fertilizer; d) blending continuously to achieve a uniform coating and granulation of the fertilizer particles;
e) admixing pesticide particles while the surfactant composition is still tacky; and
f) cooling the pesticide-containing granules wherein said fertilizer comprises from about 1 to about 99 weight percent of the granular composition; said nonionic surfactant comprises from about 1 to about 99 weight percent; and said pesticide comprises from about 0.01 to about 90 weight percent (all weight percents based on the total spray-coated granular composition weight).
13. The method of claim 12 wherein the fertilizer is present from about 1 to about 95 weight percent based on the coated composition.
14. The method of claim 12 wherein
R fatty alkyl groups are from C6 to C22
R1 is -H or the fatty alkyl groups are from C6 to C22; x, x', y, y', and n are each independently 1 to 300; and
m, m', l, and l' are each independently 1 to 300.
15. The method of claim 14 wherein
R is C8 - C18 alkyl;
R1 is -A or C8 8 C18 alkyl;
x, x', y, y', and n are each independently from 1 to 200; and
m, m', l, and l' are each independently from 1 to
200.
16. The method of claim 8 wherein
i) the nonionic surfactant is melted at from about 65º C to about 95º C; and
ii) the pesticidal granules particles are cooled to less than about 50º C.
17. The method of claim 12 wherein
i) the nonionic surfactant is melted at from about 65º C to about 95º C; and
ii) the pesticidal granules particles are cooled to less than about 50º C.
18. The dry bonded pesticide granules produced by the process of claim 1.
19. The dry bonded pesticide granules produced by the process of claim 3.
20. The dry bonded pesticide granules produced by the process of claim 5.
21. The dry bonded pesticide granules produced by the process of claim 8.
22. The dry bonded pesticide granules produced by the process of claim 10.
23. The dry bonded pesticide granules produced by the process of claim 12.
PCT/US1996/001233 1995-01-31 1996-01-31 Pesticidal granules containing fertilizer and surfactant WO1996023408A1 (en)

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EP0753256B1 (en) * 1995-07-13 2002-09-25 Cfpi Nufarm New solid storage and selling form for pesticidal compositions and means for its preparation
US6460290B1 (en) 1997-03-07 2002-10-08 Robert A. Moore Fully compatible surfactant-impregnated water-soluble fertilizer; concentrate; and use
EP2000027A1 (en) * 2007-06-06 2008-12-10 Bayer CropScience AG Insecticide compounds with improved effect
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EP3177143A2 (en) * 2014-04-17 2017-06-14 Basf Se Combination of novel nitrification inhibitors and herbicides as well as combination of (thio)phosphoric acid triamides and herbicides
EP3191430A4 (en) * 2014-09-12 2018-05-23 South Star Fertilizers Limited Fertilizer coated with linear alcohol ethoxylate and optionally raw plant oil
WO2021091400A1 (en) * 2019-11-08 2021-05-14 Donaghys Limited A composition and related methods of manufacture and use

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EP0753256B1 (en) * 1995-07-13 2002-09-25 Cfpi Nufarm New solid storage and selling form for pesticidal compositions and means for its preparation
WO1998039273A1 (en) * 1997-03-07 1998-09-11 Aquatrols Corporation Of America Inc. Fully compatible surfactant-impregnated water-soluble fertilizer; concentrate; and use
US6460290B1 (en) 1997-03-07 2002-10-08 Robert A. Moore Fully compatible surfactant-impregnated water-soluble fertilizer; concentrate; and use
EP0900786A1 (en) * 1997-09-03 1999-03-10 Monsanto Europe S.A./N.V. New surface active compounds, method for their preparation, and their use
EP2000027A1 (en) * 2007-06-06 2008-12-10 Bayer CropScience AG Insecticide compounds with improved effect
WO2008148483A1 (en) * 2007-06-06 2008-12-11 Bayer Cropscience Ag Insecticide compositions having an improved effect
EP2840074A1 (en) 2013-08-23 2015-02-25 Biotensidon GmbH Composition for stimulating the cultivation of plants, use of same and method of production
EP3177143A2 (en) * 2014-04-17 2017-06-14 Basf Se Combination of novel nitrification inhibitors and herbicides as well as combination of (thio)phosphoric acid triamides and herbicides
EP3191430A4 (en) * 2014-09-12 2018-05-23 South Star Fertilizers Limited Fertilizer coated with linear alcohol ethoxylate and optionally raw plant oil
WO2021091400A1 (en) * 2019-11-08 2021-05-14 Donaghys Limited A composition and related methods of manufacture and use
US11432544B2 (en) 2019-11-08 2022-09-06 Donaghys Limited Composition and related methods of manufacture and use
US11737456B2 (en) 2019-11-08 2023-08-29 Donaghys Limited Composition and related methods of manufacture and use

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BR9607573A (en) 2000-10-31
JPH10513148A (en) 1998-12-15
EP0806893A1 (en) 1997-11-19
CA2211996A1 (en) 1996-08-08
AU4772896A (en) 1996-08-21

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