Pesticides and their uses

A gum-based pesticide adhesive composition effectively controls pests by adhering to crops and immobilizing pests, addressing environmental hazards and toxicity issues of traditional pesticides.

JP7724154B2Active Publication Date: 2025-08-15ATOON AGRI LLC
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Patent Information

Application Number
JP2021529251
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-08-03
Filing Date
2019-08-02
Publication Date
2025-08-15
Estimated Expiration
2039-08-02

AI Technical Summary

Technical Problem

Existing pesticides, particularly insecticides, pose environmental hazards and are toxic to non-target organisms, necessitating the development of non-toxic, biodegradable alternatives that effectively control crop pests without adverse effects.

Method used

A pesticide adhesive composition utilizing hydrocolloids, preferably gums, with rheological properties that adhere to crops and immobilize pests like aphids and mites, utilizing xanthan gum and konjac in a 1:1 ratio, providing adhesive droplets that trap and suffocate pests.

Benefits of technology

The gum-based adhesive composition effectively controls pests with minimal environmental impact, adhering to crops and immobilizing pests, reducing the need for toxic chemicals and minimizing harm to non-target organisms.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention described herein is a novel pesticide for aerial field application with low toxicity and minimal environmental impact. The invention utilizes the physical properties of hydrocolloids, particularly gums, preferably natural gums, to realize the sprayable pesticide formulation described herein. The rheological properties of the pesticide allow it to exit industrial spray nozzles under pressure, and the fine droplets then coalesce into droplets of sufficient size and adhesiveness to act as sticky traps for small insects that encounter the droplets on target foliage. The pesticide is unique in that it does not contain environmentally harmful chemicals and is harmless to ecosystems and life. Rather, the pesticide of the present invention traps target pests, such as small soft-bodied insects and arachnids, in place, immobilizing them and ultimately killing them.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of priority to U.S. Provisional Patent Application No. 62 / 714,461, the contents of which are incorporated herein by reference in their entirety. STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT This invention was conceived and made into practice without the benefit of federal funding. [Background technology]

[0002] Many pesticide active ingredients, especially insecticides, have inherent drawbacks due to the potential adverse effects they can have on the environment in which they are applied, and their use is strictly regulated by government agencies such as the U.S. Environmental Protection Agency (EPA) and its foreign counterparts. For example, organophosphates, a dominant class of insecticides on the global market, are under scrutiny due to their toxicity to humans and other animals other than the target insects, and some products have been deregistered by the EPA for some or all uses. This has led to the development of initiatives such as organic farming, which leads to a localized reduction in the use of environmentally harmful chemicals while also increasing consumer food costs. Therefore, there is an emerging market for non-toxic alternatives to many conventionally applied classes of insecticides and other pesticides. It is important to note that a major advantage of gum-based pesticide formulations is that such formulations are much more environmentally friendly than those typically contained in existing commercial products.The gum used in the present invention is non-toxic and biodegradable, unlike many commercially available chemical pesticides.The damage to waterways and many fragile ecosystems resulting from the use of certain pesticides has recently attracted the attention of activist groups and the EPA, leading to the cancellation of several pesticide registrations with the EPA and the expansion of the EPA's restricted use product inventory, which imposes legal restrictions on the use of certain classes of pesticides due to their environmental impact profiles.The European Food Safety Authority (EFSA) has also participated in the discussion about the harm that certain pesticides cause to bee populations, and has recognized this issue as a serious environmental concern.

[0003] Many commercial crops are problematic because they are targeted by a variety of pests, including many insect and arachnid species, as a food source, shelter, mating site, or site for the transmission of pathogenic microorganisms. As an illustration, the global pesticide market is estimated to reach nearly $20 billion within the next five years due to factors such as a decrease in arable land area per capita and the growth of the agricultural industry. Global population growth currently outpaces global food production, particularly in developing countries. Therefore, the use of pesticides, such as herbicides, fungicides, insecticides, and acaricides, as well as formulation additives that improve the efficacy of active ingredients, while balancing the effectiveness of commercially available ingredients with the need to reduce their environmental impact, has contributed to the growth of 4046.86m. 2 Over time, there has been a growing need for methods that farmers can use to increase crop production per acre. Summary of the Invention

[0004] The invention described herein relates to the field of crop protection, more specifically to pesticides, and in preferred embodiments, to a pesticide adhesive composition and its method of use for protecting crops against insects, mites, and other pests that adversely affect crop yield and are susceptible to control by the composition. The applicant has formulated the pesticide described herein using low levels of certain hydrocolloids, preferably gums, in aqueous solutions. In a preferred embodiment of the invention, the hydrocolloid is a gum, which is environmentally harmless and exhibits rheological properties that allow for the adhesion of adhesive droplets of suitable viscosity to the target crop, while also allowing for spray application of the pesticide adhesive composition to the target crop using currently available crop protection equipment and infrastructure. The viscosity and adhesive properties of the attached droplets allow for the permanent immobilization and capture of small, soft-bodied insects and other susceptible pests for killing.

[0005] Through extensive research and testing, the applicant has discovered that certain hydrocolloids, preferably gums, more preferably natural gums, and combinations thereof, with or without additional components, exhibit pesticidal activity when sprayed on target crops. In a preferred embodiment, the compositions described herein exhibit insecticidal activity when sprayed on target crops infested with certain small insects, including, but not limited to, aphids, psyllids, and lygus bugs, as well as small arthropods such as mites. The applicant has observed that the compositions described herein, when applied as spray droplets to target crops, exhibit a unique combination of surface tension, viscosity, and rheology that allows small insects to enter the droplets but not exit. The adhesive properties of the droplets allow them to adhere to the target crop and to small insects that encounter them.

[0006] The physical characteristics of the pesticide adhesive composition described herein are essentially two-fold: First, the outer surface tension of the adhesive droplets applied to the target crop is such that crop pests, particularly small insects, can penetrate the outer surface of the droplets, for example, by inserting one or more appendages into one or more droplets. Second, the rheology of the compositions described herein is such that back pressure can be applied to the liquid form of the composition at a certain viscosity that allows it to flow (deform) through standard agricultural spray equipment and then return to static viscosity, which allows it to adhere to the target crop and contributes to the ability of the spray droplets to capture small insects and the like. For example, the g-force required for such small insects and mites to remove their inserted appendages from the droplets is greater than the g-force these pests can exert, and the pests remain captured by the droplets. The compositions of the present invention, which have newly discovered potential for controlling certain pests in the field, contain aqueous preparations of certain gums and their blends. Gums are hydrocolloids obtained primarily from various plant materials or microbial fermentation processes. They are water-soluble, non-toxic, and less harmful to the environment than many traditional classes of chemicals used in crop protection. Applicant has observed that these hydrocolloids are effective as pesticide adhesives when applied to target crops at relatively low concentrations, but they may be applied at higher use levels for improved efficacy compared to existing pesticides, the application rates of which are limited by environmental regulations to avoid adverse environmental impacts.

[0007] Gums are polysaccharides and glycoproteins that bind and organize water in a manner that allows them to remain in a uniform solution over a wide range of concentrations. These unique properties of gums have enabled the applicant to formulate sprayable pesticide adhesives that are resistant to evaporation and runoff in the field and are environmentally friendly. In relation to the embodiments disclosed herein, the ability of certain gums and gum combinations to bind and organize water allows for an increase or maintenance of solution viscosity and a relatively high surface tension of the spray droplets, which allows them to remain substantially spherical while adhering to target surfaces, such as host plant leaves, without flattening or evaporating. This characteristic, in particular, teaches away from the use of surfactants, which tend to lower surface tension.

[0008] In preferred embodiments, the gums maintain a uniform consistency by remaining in solution without settling, which aids in predictability in spray applications. In certain exemplary embodiments, the gums used in the pesticide adhesive compositions described herein are xanthan gum, a fermentation product of the bacterium Xanthamonas campestris, and konjac, a substance obtained from the dried corm of the konjac plant that contains primarily glucomannan. While xanthan gum and konjac can independently increase the viscosity of an aqueous solution while remaining dissolved, the combination of these two gums can increase the viscosity of an aqueous solution to a greater extent than either gum alone when the same total amount of both gums is added to the solution. Thus, in certain exemplary embodiments, the pesticide adhesive composition comprises or consists essentially of xanthan gum and konjac added to an aqueous solvent in a 1:1 ratio.

[0009] Previous attempts have been made to incorporate hydrocolloids into pesticide formulations, but not without the addition of other chemicals that are toxic or somewhat harmful to the environment in which they are applied. Examples of such additives include surfactants, cosolvents, attractants, preservatives, and colorants, which are synthetic and not necessarily biodegradable. The objective of the present invention is to eliminate environmentally harmful chemicals from the compositions described herein and achieve a sprayable pesticide adhesive formulation that relies primarily or exclusively on the properties of hydrocolloids, preferably gums, or combinations thereof in solution, to be applied to target crops and control their infestation with various pests. However, certain examples of the classes of additives suggested in this paragraph may not increase the environmental impact of the exemplary compositions and may be used to adjust the properties of the compositions. [Brief explanation of the drawings]

[0010] [Figure 1] 1 shows aphids immobilized on broccoli leaves after encountering a pesticide of the present invention, with a size scale provided in the lower left corner. [Figure 2] 1 shows aphids immobilized on broccoli leaves after exposure to a pesticide of the present invention, with a size scale provided in the lower left corner. [Figure 3] 1 shows aphids immobilized on broccoli leaves after exposure to a pesticide of the present invention, with a size scale provided in the lower left corner. [Figure 4] Figure 1 shows the reduction in the average number of adult peach aphids on broccoli plants sprayed with various concentrations of an aqueous composition containing a 1:1 blend of xanthan gum and konjac (0.25%) (light gray bars) compared to an untreated control (black bars) and the commercial acetamiprid insecticide Assail 30 SG (gray bars) under controlled greenhouse conditions. Aphids were counted 1, 3, and 6 days after treatment. [Figure 5]Figure 1 shows the reduction in the average number of adult peach aphids on broccoli plants sprayed with various concentrations of an aqueous composition containing a 1:1 blend of xanthan gum and konjac (0.25%) (light gray bars) compared to an untreated control (black bars) and the commercial acetamiprid insecticide Assail 30 SG (gray bars) in the field. Aphids were counted 1, 3, and 6 days after treatment. [Figure 6] Figure 1 shows the reduction in the average number of green peach aphid larvae on broccoli plants sprayed with various concentrations of an aqueous composition containing a 1:1 blend of xanthan gum and konjac (0.25%) (light gray bars) compared to an untreated control (black bars) and the commercial acetamiprid insecticide Assail 30 SG (gray bars) under controlled greenhouse conditions. Aphids were counted 1, 3, and 6 days after treatment. [Figure 7] Figure 1 shows the reduction in the average number of green peach aphid larvae on broccoli plants sprayed with various concentrations of an aqueous composition containing a 1:1 blend of xanthan gum and konjac (0.25%) (light gray bars) compared to an untreated control (black bars) and the commercial acetamiprid insecticide Assail 30 SG (gray bars) in the field. Aphids were counted 1, 3, and 6 days after treatment. [Figure 8] 1 shows flow curves for compositions comprising a 1:1 ratio of xanthan gum and konjac in an aqueous solvent at various concentrations. The flow curves are derived from multiple viscosity measurements taken over time in response to increasing shear forces. [Figure 9] 1 shows flow curves for compositions containing gum arabic and carboxymethyl cellulose in a 4:1 ratio at various concentrations in an aqueous solvent. The flow curves are derived from multiple viscosity measurements taken over time in response to increasing shear forces. [Figure 10] 1 shows flow curves for compositions containing gum arabic, xanthan gum, and hydroxypropyl methylcellulose in a 7:5:1 ratio at various concentrations in an aqueous solvent. The flow curves are derived from multiple viscosity measurements taken over time in response to increasing shear forces. [Figure 11] FIG. 1 shows the relative tack of several formulations of the pesticide adhesive concentrate described herein, measured as the force (g·m·s2) required to remove an object from the tested material. [Figure 12] 10 shows the relative tack of several formulations of the pesticide adhesive concentrate described herein, measured as the g-force required to remove an object from the tested material. The compositions tested are those represented by the flow curves in FIGS. 9-11. DETAILED DESCRIPTION OF THE INVENTION

[0011] The invention described herein focuses on a method for controlling crop pests that have harmful effects on crops, such as, but not limited to, certain small insects or arachnids. The pesticide adhesive formulation described herein works particularly well when applied to crops infested with small soft-bodied insects, such as those of the Gastrorhyncha suborder, and small arachnids, such as those of the Acari taxon. The applicant has used high-resolution video technology to study in detail what happens to certain target pests that encounter the pesticide adhesive, and has demonstrated that the gum in aqueous solution, when applied to infested crops, kills insects by one or more means, including but not limited to, complete or partial immobilization, exhaustion, and suffocation.

[0012] Control of target pests using the gum-based pesticide adhesives described herein is achieved using a method with very little environmental impact. The various gum components described herein are water-soluble and non-toxic, and indeed, many gum products are used for various purposes in human food and animal feed. The compositions described herein may be applied to target crops at relatively low concentrations, but are not harmful to other organisms even when applied at higher concentrations, making them more attractive than most pesticides currently used by the global agricultural industry. For example, many insecticides, such as neonicotinoids, currently applied to the environment to control crop pests are harmful to non-target organisms such as bees, making these products an undesirable alternative to the present invention for pest control.

[0013] In an exemplary embodiment, the invention described herein is directed to a method for controlling aphids, spider mites, psyllids, and ligus bugs on host plants by immobilization, exhaustion, suffocation, or a combination thereof, which occurs when the pests encounter spray droplets containing the pesticide adhesive described herein. These small plant pests are a major problem for farmers of many crops, such as pecans, broccoli, cotton, and bell peppers, among others. For example, aphids are sap-sucking insects that successfully colonize food and fiber crops, reducing yields by consuming host plants and transmitting plant viruses. There are hundreds of species of aphids, and they are one of the most damaging crop pests in temperate growing regions and are very difficult to control. For example, the effectiveness of the pesticide adhesive composition described herein in controlling aphids demonstrates to those skilled in the art the novelty and usefulness of the present invention.

[0014] In its preferred embodiment, the invention described herein is an agrochemical adhesive composition consisting essentially of one or more gums in aqueous solution within a concentration range that allows spray application of the composition to a target crop using existing application means. Methods of spray application include, but are not limited to, application using handheld spray equipment, spray equipment mounted on a tractor or equivalent for spraying row crops, or aerial application, such as with aircraft-mounted spray equipment, and high-pressure blast application, such as that used to control citrus crop pests. An important feature of the present invention is that the rheological properties of the agrochemical adhesive composition are such that pressures recognized by those skilled in the art can be applied to the composition to propel it through one or more spray nozzles (also familiar to those skilled in the art) in a manner that allows acceptable target crop coverage. For example, back pressures in the range of 103.42 to 1206.58 kPa (15 to 175 pounds per square inch (psi)) are common to the types of equipment mentioned above. Thus, a further advantage of the present invention is that no special equipment is required to carry out the methods described herein for applying pesticide adhesive compositions for use in controlling plant-feeding insects and mites, including but not limited to those described in the preceding paragraph.

[0015] A further benefit of the present invention is that the rheological properties of the pesticide adhesive compositions described herein allow for spray application common in the art while also exhibiting time-dependent viscosity, or "thixotropy." For example, in an exemplary embodiment, the pesticide adhesive compositions described herein are prepared as concentrates that are diluted by the user (i.e., farm worker) into large tanks of aqueous solvent to reach a predetermined "tank mix" concentration for spray application. The concentrates and tank mixes each have a single-point viscosity. When sprayed under pressure through a nozzle onto a target crop area, the single-point viscosity of the tank mix decreases in response to the applied shear force as it exits the nozzle (see Figures 8-11). However, after exiting the nozzle, the spray droplets coalesce, and their viscosity increases by the time they fall onto the target crop. This is important because the viscosity of the formulation used is one of the properties that must be controlled to ensure that the pesticide adhesive composition adheres well to the target crop for an appropriate period of time to allow target pests, such as aphids, to encounter the droplets. Thus, a key attribute of the present invention is that the user can use viscosity as a guide to select the tank-mix concentration for application that best suits the equipment used for application, the desired residence time of the droplets on the target crop, and the desired coverage level of the spray droplets. Table 1 lists several sample concentration ranges (of pesticide adhesive concentrates) along with the viscosity and pH of each of the concentrates tested.

[0016] As discussed above, single-point viscosity measurements during the formulation process, when compared against similar data from formulations previously measured and then tested in greenhouse or field experiments using various spray applicators, are useful in developing alternative formulations of the pesticide adhesive compositions described herein. Also as noted above, many of the gums and combinations thereof considered for use in pesticide adhesive formulations exhibit thixotropic properties, making them particularly suitable for the purposes of the present invention. To study how candidate materials may function in terms of time-dependent viscosity reduction in response to shear, flow curves were generated, whereby various candidate formulations were subjected to increasing shear over time and the effect on viscosity was measured. Figures 8-11 present comparisons of certain candidate materials to water used in the selection process for the optimized preparation of the pesticide adhesives described herein.

[0017] [Table 1]

[0018] In certain embodiments of the invention described herein, the combination of two or more gums exhibits greater efficacy than either gum alone with respect to Applicant's performance requirements. In the most extensively tested embodiment, the gums used in combination are selected from the group consisting of xanthan gum and konjac. In certain exemplary embodiments, Applicant's invented pesticide adhesive composition consists essentially of a 1:1 blend of xanthan gum and konjac dissolved in an aqueous solvent to a level suitable for use as a concentrate from which a tank mix can be prepared at the site of use. In certain embodiments, the pesticide adhesive concentrate comprises or consists essentially of a 1:1 blend of xanthan gum and konjac present in an aqueous solvent at a concentration of 0.125-0.25%, which is further diluted to a final tank mix concentration in the range of 0.0375-0.15% for spray application. Concentrate and tank mix percentages referred to herein represent weight / volume (w / v) percentages in solution unless otherwise specified. The dilution rate, or "usage rate," for the pesticide adhesive compositions (tank mixes) described herein varies based on the type of application vehicle, target plant or crop, time of application, and other environmental factors such as temperature and humidity, and can be appropriately selected by one of ordinary skill in the art. In certain example embodiments, the usage rate is about 1 ounce per 100 gallons to about 4 gallons per 100 gallons of final solution. In certain example embodiments, the usage rate is about 1 pint to 1 quart per 100 gallons of final application solution.

[0019] The application parameters for administration of the final application solution depend on the application mechanism and can be appropriately selected by one skilled in the art. For aerial application, the flow rate is typically 4.68 x 10 -3 ~23.41×10 -3 L / m 2 (5-25 gallons per acre (gpa)). Vehicle-borne (typically truck or tractor) applications are typically 23.41 x 10 -3 L / m 2 (25gpa), but 9.37 x 10 -3 ~140.48×10 -3 L / m 2 (10-150 gpa). Handheld applications are typically 93.65 x 10 -3 ~234.13×10 -3 L / m 2 (100-250 gpa). Applications by backpack sprayer are typically 28.10 x 10 -3 ~93.65×10 -3 L / m 2(30-100 gPa). The pressure range typically depends on the spray nozzle and application type and can be appropriately selected by one skilled in the art. A typical pressure range is 103.42-792.90 kPa (15-115 pounds per square inch) back pressure. The gum-based insecticides disclosed herein further benefit from a significant reduction in off-target spray drift due to an increase in the percentage of droplets ≥ 100 μm in diameter per volume when sprayed at pressures up to 275.79 kPa (40 psi) compared to water, with performance comparable to the commercially available standards tested.

[0020] Preferred embodiments of the invention described herein must exhibit adhesive properties that are described as providing their mode of action as an effective pesticide, particularly an insecticide, against small, soft-bodied insects, arachnids, and the like, e.g., those less than 5 millimeters (mm) in body length. The exact level of "adhesion" is difficult to specify; tank-mix spray droplets must be effective in immobilizing or otherwise controlling the target pest when sprayed on the target crop area, and requirements may vary based on the size and strength of the pest to be immobilized. However, in all cases, the average g-force required to remove an object from the pesticide adhesive concentrate described herein can be measured. As used herein, the greater the g-force ("removal force") required to remove the test object, the "stickier" the tested formulation. Figure 12 is a graphical representation of the "adhesion" of several compositions tested. In the case of targeting the above-mentioned aphids and similarly sized pests, the applicant has succeeded in preparing a tank mix that is useful for controlling pests by trapping (i.e., immobilizing) and then killing the pests, using a pesticide adhesive concentrate with a stickiness that requires a removal force of even less than 1 g. It is noted that larger insect species, such as bees, can escape from droplets that they may encounter.

[0021] The embodiments disclosed herein represent novel pesticide adhesive compositions comprising or consisting essentially of a gum as an active ingredient that is effective in immobilizing, exhausting, and optionally suffocating crop pests, such as small insects and arachnid pests, including aphids, psyllids, lice, lice, and spider mites. A significant benefit of the present invention is the reduced environmental impact resulting from the water solubility and biodegradability of the active ingredient compared to many common chemical pesticides, as well as the reduced amount and cost of the active ingredient required to cover a given number of acres. These benefits result in a positive impact on the environment by reducing the amount of non-biodegradable and potentially hazardous chemicals released into the environment due to measures taken by agriculture and related industries to control pests and improve crop yields.

[0022] The reduced environmental impact of the pesticide adhesives described herein is largely due to the fact that they are not toxic to biological organisms; rather, spray droplets applied to target crops according to the methods of the present invention form sticky traps useful for immobilizing pests. For example, Figure 1 shows an aphid immobilized in a pesticide adhesive droplet disclosed herein. Applicant's video footage revealed that the insect was unable to escape from the droplet, effectively immobilizing it, limiting its ability to move around and feed on the plant, and potentially resulting in physical exhaustion or loss of trapped appendages as it attempts to escape. The pesticide adhesive also obstructs the target pest's airways, impairing its ability to breathe and potentially leading to suffocation. Both of these hypothesized modes result in mortality, as demonstrated in greenhouse and field experiments shown in Figures 4-7.

[0023] These control methods are quite different from the more commonly used pesticides currently used in agriculture, and the most common example of toxic chemicals applied to control pests is insecticides. For example, many insecticides target the nervous system of insects, i.e., they are neurotoxic by definition. Insects share some common nervous system characteristics with other living organisms, and therefore chemicals that are insect neurotoxic can also affect higher organisms such as mammals by blocking sodium channels or inhibiting enzymes involved in neurotransmission. In fact, many insecticides have been banned from the market for these reasons, but some remain. Even chemical insecticides that do not target the nervous system may target other important biological mechanisms, such as calcium channels in muscles.

[0024] Exemplary Compositions Some pesticide adhesive compositions contain blends of gums that exhibit significantly different properties than each individual gum alone. Table 2 lists some example embodiments of dry gum blends tested by the applicants and useful dry weight ratio ranges. In connection with the embodiments disclosed herein, the ability of certain gums and gum combinations to interact with water allows for increased or maintained viscosity. In addition, certain gums and gum combinations exhibit the rheological properties necessary to ensure that the solution can form relatively large droplets (i.e., ≧100 mm) when sprayed. Therefore, in preparing useful gum-based pesticides, the dry gums and gum blends prepared by the applicants were added to aqueous solvents at the concentrations listed throughout this application.

[0025] [Table 2]

[0026] In certain example embodiments, the dry gum blend consists essentially of xanthan gum and konjac in a ratio of 1:6, 1:3, 1:2, 2:3, 5:6, 1:1, 6:5, 3:2, 2:1, 3:1, or 6:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, carrageenan and MC in a ratio of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, MC and sodium alginate in a ratio of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of CMC and MC in ratios of 1:6, 1:3, 1:2, 2:3, 5:6, 1:1, 6:5, 3:2, 2:1, 3:1, or 6:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of MC and konjac in ratios of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of MC and guar gum in ratios of 1:6, 1:3, 1:2, 2:3, 5:6, 1:1, 6:5, 3:2, 2:1, 3:1, 6:1, 5:4, 5:3, 5:2, 5:1, 4:3, or 4:1, respectively. In one example embodiment, the dry gum blend consists essentially of, or consists of, MC and xanthan gum in a ratio of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, MC and pectin in a ratio of 1:2, 1:1, or 2:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, carrageenan and HPMC in a ratio of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, HPMC and sodium alginate in a ratio of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively.In certain example embodiments, the dry gum blend consists essentially of or consists of CMC and HPMC in ratios of 1:6, 1:3, 1:2, 2:3, 5:6, 1:1, 6:5, 3:2, or 2:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of HPMC and konjac in ratios of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of HPMC and guar gum in ratios of 1:6, 1:3, 1:2, 2:3, 5:6, 1:1, 6:5, 3:2, 2:1, 3:1, 6:1, 5:4, 5:3, 5:2, 5:1, 4:3, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of HPMC and xanthan gum in ratios of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of HPMC and pectin in ratios of 1:8, 1:4, 3:8, 1:2, 5:8, 3:4, 7:8, 1:1, 8:7, 4:3, 8:5, 2:1, 8:3, 4:1, or 8:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of carrageenan and PGA in ratios of 1:3, 2:3, 1:1, 3:2, 3:1, 4:3, 2:1, or 4:1, respectively.

[0027] In certain example embodiments, the dry gum blend consists essentially of, or consists of, CMC and PGA in a ratio of 1:8, 1:4, 3:8, 1:2, 5:8, 3:4, 7:8, 1:1, 8:7, 4:3, 8:5, 2:1, 8:3, 4:1, or 8:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, PGA and konjac in a ratio of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, PGA and guar gum in ratios of 1:6, 1:3, 1:2, 2:3, 5:6, 1:1, 6:5, 3:2, 2:1, 3:1, 6:1, 5:4, 5:3, 5:2, 5:1, 4:3, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, PGA and xanthan gum in ratios of 1:4, 1:2, 3:4, 1:1, 4:3, 2:1, or 4:1, respectively. In certain example embodiments, the dry gum blend consists essentially of or consists of PGA and pectin in ratios of 1:8, 1:4, 3:8, 1:2, 5:8, 3:4, 7:8, 1:1, 8:7, 4:3, 8:5, 2:1, 8:3, 4:1, or 8:1, respectively. In certain example embodiments, the dry gum blend consists essentially of, or consists of, gum acacia and xanthan gum in a ratio of 3:2, 3:1, 1:1, 4:3, 2:1, 4:1, 5:4, 5:3, 5:2, 5:1, 6:5, 3:1, 6:1, 7:6, 7:5, 7:4, 7:3, 7:2, 7:1, 8:7, 8:5, 8:3, 8:1, 9:8, 9:7, 9:5, 9:4, 9:2, 9:1, 10:9, 10:8, 10:3, 10:1, 11:10, 11:9, 11:8, 11:7, 11:6, 11:5, 11:4, 11:3, 11:2, 11:1, 12:11, 12:7, 12:5, or 12:1, respectively.In certain example embodiments, the dry gum blend consists essentially of, or consists of, modified gum arabic (MGA) and xanthan gum in a ratio of 3:2, 3:1, 1:1, 4:3, 2:1, 4:1, 5:4, 5:3, 5:2, 5:1, 6:5, 3:1, 6:1, 7:6, 7:5, 7:4, 7:3, 7:2, 7:1, 8:7, 8:5, 8:3, 8:1, 9:8, 9:7, 9:5, 9:4, 9:2, 9:1, 10:9, 10:8, 10:3, 10:1, 11:10, 11:9, 11:8, 11:7, 11:6, 11:5, 11:4, 11:3, 11:2, 11:1, 12:11, 12:7, 12:5, or 12:1, respectively. In certain example embodiments, the gums may include acacia gum, MGA, guar gum, cellulose compounds, xanthan gum, konjac, carrageenan, alginates, and pectin. As used throughout this disclosure, the term "about" is used to indicate a concentration that is an exact value.

[0028] In certain example embodiments, the blend of xanthan gum and konjac is present in an aqueous solvent at a concentration of about 0.1% to about 2.5%, about 0.1% to about 1%, about 0.1% to about 0.9%, about 0.1% to about 0.8%, about 0.1% to about 0.7%, about 0.1% to about 0.6%, about 0.1% to about 0.5%, about 0.1% to about 0.4%, about 0.1% to about 0.3%, about 0.1% to about 0.2%, about 1% to about 2.5%, about 1% to about 2.4%, about 1% to about 2.3%, about It is added at a concentration of 1% to about 2.2%, about 1% to about 2.1%, about 1% to about 2.0%, about 1% to about 1.9%, about 1% to about 1.8%, about 1% to about 1.7%, about 1% to about 1.6%, about 1% to about 1.5%, about 1% to about 1.4%, about 1% to about 1.3%, about 1% to about 1.2%, about 1% to about 1.1%, about 2.0% to about 2.5%, about 2.0% to about 2.4%, or about 2.0% to about 2.3%, about 2.0% to about 2.2%, or about 2.0% to about 2.1%.

[0029] In certain example embodiments, the adjuvant composition comprises carboxymethyl cellulose (CMC) and hydroxypropyl methyl cellulose (HPMC), polysaccharides derived from insoluble cellulose fibers extracted from cotton linters or wood pulp that have been etherified with carboxymethyl or hydroxypropyl methyl groups, respectively, to produce soluble fibers. The resulting cellulose ethers offer unique rheological properties in aqueous solution, including varying levels of viscosity development, film-forming ability, and, in the case of HPMC, temperature-induced gelation. In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of CMC and HPMC. In certain example embodiments, CMC and HPMC are added in a 1:1 ratio.

[0030] In certain example embodiments, the blend of CMC and HPMC is present in an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 15%, about 5% to about 16%, about 5% to about 17%, about 5% to about 18%, about 5% to about 19%, about 5% to about 20%, about 5% to about 25%, about 5% to about 26%, about 5% to about 27%, about 5% to about 28%, about 5% to about 29%, about 5% to about 30%, about 5% to about 31%, about 5% to about 32%, about 5% to about 33%, about 5% to about 34%, about 5% to about 35%, about 5% to about 36%, about 5% to about 37%, about 5% to about 38%, about 5% to about 39%, about 5% to about 40%, about 5% to about 41%, about 5% to about 42%, about 5% to about 43%, about 5% to about 44%, about 5% to about 45%, about 5% to about 46%, about 5% to about 47%, about 5% to about 48%, about 5% to about 49%, about 5% to about 50%, about It is added at a concentration of about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0031] In certain example embodiments, the blend of CMC and HPMC is present in an aqueous solvent at a concentration of about 0.1% to about 13%, about 1% to about 12%, about 1% to about 11%, about 1% to about 10%, about 1% to about 9%, about 1% to about 8%, about 1% to about 7%, about 1% to about 6%, about 1% to about 5%, about 1% to about 4%, about 1% to about 3%, about 1% to about 2%, about 0.1% to about 1%, or about 0.1%. It is added at a concentration of about 0.9%, about 0.1% to about 0.8%, about 0.1% to about 0.7%, about 0.1% to about 0.6%, about 0.1% to about 0.5%, about 0.1% to about 0.4%, about 0.1% to about 0.3%, about 0.1% to about 0.2%, about 1% to about 1.5%, about 1% to about 1.4%, about 1% to about 1.3%, about 1% to about 1.2%, or about 1% to about 1.1%. In certain example embodiments, the resulting adjuvant composition may further comprise gum acacia added at a concentration of about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 15%, about 7% to about 15%, about 8% to about 15%, about 9% to about 15%, about 10% to about 15%, about 11% to about 15%, about 12% to about 15%, about 13% to about 15%, or about 14% to about 15%.

[0032] In another exemplary embodiment, the gums used in the adjuvant composition are carrageenan and propylene glycol alginate (PGA). Carrageenan is a polysaccharide obtained from various species of red algae and has a wide variety of viscosity and gel-forming properties. PGA is obtained from various species of brown algae and is the reaction product of propylene oxide and alginic acid.

[0033] In certain exemplary embodiments, the adjuvant composition comprises, consists essentially of, or consists of carrageenan and PGA. In certain exemplary embodiments, the carrageenan and PGA are added in a 1:1 ratio. In certain exemplary embodiments, the blend of carrageenan and PGA is added to an aqueous solvent at a concentration of about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 30%, about 7% to about 30%, about 8% to about 30% About 9% to about 30%, 10% to about 30%, about 11% to about 30%, about 12% to about 30%, about 13% to about 30%, about 14% to about 30%, about 15% to about 30%, about 16% to about 30%, about 17% to about 30%, about 18% to about 30%, about 19% to about 30%, about 20% to about 30%, about 21% to about 30%, about 22% to about 30%, about 23% to about 30%, about 24% to about 30%, about 25% to about 30%, It is added at a concentration of about 26% to about 30%, about 27% to about 30%, about 28% to about 30%, about 29% to about 30%, about 6% to about 29%, about 7% to about 28%, about 8% to about 27%, about 9% to about 26%, about 10% to about 25%, about 11% to about 24%, about 12% to about 23%, about 13% to about 22%, about 14% to about 21%, about 15% to about 20%, about 16% to about 19%, or about 17% to about 18%.

[0034] In certain example embodiments, a 1:1 blend of carrageenan and PGA may be from about 0.1% to about 13%, from about 1% to about 12%, from about 1% to about 11%, from about 1% to about 10%, from about 1% to about 9%, from about 1% to about 8%, from about 1% to about 7%, from about 1% to about 6%, from about 1% to about 5%, from about 1% to about 4%, from 1% to about 3%, from about 1% to about 2%, from about 1% to about 1.5%, from 0.1% to about 1%, from about It is added at a concentration of 0.1% to about 0.9%, about 0.1% to about 0.8%, about 0.1% to about 0.7%, about 0.1% to about 0.6%, about 0.1% to about 0.5%, about 0.1% to about 0.4%, about 0.1% to about 0.3%, about 0.1% to about 0.2%, about 1% to about 1.5%, about 1% to about 1.4%, about 1% to about 1.3%, about 1% to about 1.2%, or about 1% to about 1.1%.

[0035] In certain example embodiments, the adjuvant composition may further comprise gum acacia added at a concentration of about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 15%, about 7% to about 15%, about 8% to about 15%, about 9% to about 15%, about 10% to about 15%, about 11% to about 15%, about 12% to about 15%, about 13% to about 15%, or about 14% to about 15%. In another example embodiment, the gums used in the adjuvant composition are pectin and methylcellulose (MC). Pectin is a polysaccharide extracted from citrus peels or apple pumice that provides viscosity, film-forming, and gel properties. MC is made from the same base as CMC and hydroxypropylmethylcellulose (HPMC) and is a cellulose that is etherified with methyl groups to produce soluble fiber. MC has similar thermal gelling properties to HPMC and excellent film-forming properties. Therefore, in a specific example embodiment, the adjuvant composition includes pectin and MC added in a 1:1 ratio.

[0036] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of MC and pectin. In certain example embodiments, the MC and pectin are added in a 1:1 ratio. In certain example embodiments, the blend of MC and pectin is added to an aqueous solvent at a concentration of 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, about 5% to about 20%, about 5% to about 19%, or %, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 30%, about 7% to about 30%, about 8% to about 30% About 9% to about 30%, 10% to about 30%, about 11% to about 30%, about 12% to about 30%, about 13% to about 30%, about 14% to about 30%, about 15% to about 30%, about 16% to about 30%, about 17% to about 30%, about 18% to about 30%, about 19% to about 30%, about 20% to about 30%, about 21% to about 30%, about 22% to about 30%, about 23% to about 30%, about 24% to about 30%, about 25% to about 30%, It is added at a concentration of about 26% to about 30%, about 27% to about 30%, about 28% to about 30%, about 29% to about 30%, about 6% to about 29%, about 7% to about 28%, about 8% to about 27%, about 9% to about 26%, about 10% to about 25%, about 11% to about 24%, about 12% to about 23%, about 13% to about 22%, about 14% to about 21%, about 15% to about 20%, about 16% to about 19%, or about 17% to about 18%.

[0037] In certain example embodiments, a 1:1 blend of pectin and MC may be from about 0.1% to about 20%, from about 1% to about 20%, from about 1% to about 19%, from about 1% to about 18%, from about 1% to about 17%, from about 1% to about 16%, from about 1% to about 15%, from about 1% to about 14%, from about 1% to about 13%, from about 1% to about 12%, from about 1% to about 11%, from about 1% to about 10%, from about 1% to about 9%, from about 1% to about 8%, from about 1% to about 7%, from about 1% to about 6%, from about 1% to about 5%, from about 1% to about 4% , 1% to about 3%, about 1% to about 2%, about 1% to about 1.5%, 0.1% to about 1%, about 0.1% to about 0.9%, about 0.1% to about 0.8%, about 0.1% to about 0.7%, about 0.1% to about 0.6%, about 0.1% to about 0.5%, about 0.1% to about 0.4%, about 0.1% to about 0.3%, about 0.1% to about 0.2%, about 1% to about 1.5%, about 1% to about 1.4%, about 1% to about 1.3%, about 1% to about 1.2%, and about 1% to about 1.1%.

[0038] In certain example embodiments, the adjuvant composition may further comprise gum acacia added at a concentration of about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 15%, about 7% to about 15%, about 8% to about 15%, about 9% to about 15%, about 10% to about 15%, about 11% to about 15%, about 12% to about 15%, about 13% to about 15%, or about 14% to about 15%.

[0039] In certain exemplary embodiments, the adjuvant composition comprises, consists essentially of, or consists of carrageenan and MC. In certain exemplary embodiments, the carrageenan and MC are added in a 1:1 ratio. In certain exemplary embodiments, the blend of carrageenan and MC is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 12%. It is added at a concentration of about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0040] In another exemplary embodiment, the adjuvant composition comprises, consists essentially of, or consists of MC and an alginate selected from the group consisting of sodium alginate, ammonium alginate, calcium alginate, PGA, and combinations thereof. In certain exemplary embodiments, the MC and alginate are added in a 1:1 ratio. In certain exemplary embodiments, the blend of MC and alginate is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 12%. It is added at a concentration of about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0041] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of CMC and MC. In certain example embodiments, the CMC and MC are added in a 1:1 ratio. In certain example embodiments, the blend of CMC and MC is added to an aqueous solvent at a concentration of about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, about 5% to about 20%, about 5% to about 19%, or the like. %, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 30%, about 7% to about 30%, about 8% to about 30% About 9% to about 30%, 10% to about 30%, about 11% to about 30%, about 12% to about 30%, about 13% to about 30%, about 14% to about 30%, about 15% to about 30%, about 16% to about 30%, about 17% to about 30%, about 18% to about 30%, about 19% to about 30%, about 20% to about 30%, about 21% to about 30%, about 22% to about 30%, about 23% to about 30%, about 24% to about 30%, about 25% to about 30%, It is added at a concentration of about 26% to about 30%, about 27% to about 30%, about 28% to about 30%, about 29% to about 30%, about 6% to about 29%, about 7% to about 28%, about 8% to about 27%, about 9% to about 26%, about 10% to about 25%, about 11% to about 24%, about 12% to about 23%, about 13% to about 22%, about 14% to about 21%, about 15% to about 20%, about 16% to about 19%, or about 17% to about 18%.

[0042] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of MC and konjac. In certain example embodiments, the MC and konjac are added in a 1:1 ratio. In certain example embodiments, the blend of MC and konjac is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 12%. It is added at a concentration of about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0043] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of MC and guar gum. In certain example embodiments, the MC and guar gum are added in a 1:1 ratio. In certain example embodiments, the blend of MC and guar gum is added to an aqueous solvent at a concentration of about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, about 5% to about 20%, about 5% to about 10%, or about 12%. 9%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 30%, about 7% to about 30%, about 8% to about 30% Approximately 9% to approximately 30%, 10% to approximately 30%, approximately 11% to approximately 30%, approximately 12% to approximately 30%, approximately 13% to approximately 30%, approximately 14% to approximately 30%, approximately 15% to approximately 30%, approximately 16% to approximately 30%, approximately 17% to approximately 30%, approximately 18% to approximately 30%, 19% to approximately 30%, 20% to approximately 30%, approximately 21% to approximately 30%, approximately 22% to approximately 30%, approximately 23% to approximately 30%, approximately 24% to approximately 30%, approximately 25% to approximately 30%, approximately It is added at a concentration of 26% to about 30%, about 27% to about 30%, about 28% to about 30%, about 29% to about 30%, about 6% to about 29%, about 7% to about 28%, about 8% to about 27%, about 9% to about 26%, about 10% to about 25%, about 11% to about 24%, about 12% to about 23%, about 13% to about 22%, about 14% to about 21%, about 15% to about 20%, about 16% to about 19%, or about 17% to about 18%.

[0044] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of MC and xanthan gum. In certain example embodiments, the MC and xanthan gum are added in a 1:1 ratio. In certain example embodiments, the blend of MC and xanthan gum is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, or about 8%. about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0045] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of carrageenan and HPMC. In certain example embodiments, the carrageenan and HPMC are added in a 1:1 ratio. In certain example embodiments, the blend of carrageenan and HPMC is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0046] In another exemplary embodiment, the adjuvant composition comprises, consists essentially of, or consists of HPMC and an alginate selected from the group consisting of sodium alginate, ammonium alginate, calcium alginate, and PGA. In certain exemplary embodiments, the HPMC and alginate are added in a 1:1 ratio. In certain exemplary embodiments, the blend of HPMC and alginate is added to an aqueous solvent at a concentration of 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0047] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of HPMC and konjac. In certain example embodiments, the HPMC and konjac are added in a 1:1 ratio. In certain example embodiments, the blend of HPMC and konjac is added to an aqueous solvent at a concentration of 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 15%, about 10 ... It is added at a concentration of about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0048] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of HPMC and guar gum. In certain example embodiments, the HPMC and guar gum are added in a 1:1 ratio. In certain example embodiments, the blend of HPMC and guar gum is added to an aqueous solvent at a concentration of about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 30%, about 7% to about 30%, about 8% to about 30% About 9% to about 30%, 10% to about 30%, about 11% to about 30%, about 12% to about 30%, about 13% to about 30%, about 14% to about 30%, about 15% to about 30%, about 16% to about 30%, about 17% to about 30%, about 18% to about 30%, about 19% to about 30%, about 20% to about 30%, about 21% to about 30%, about 22% to about 30%, about 23% to about 30%, about 24% to about 30%, about 25% to about 30%, It is added at a concentration of about 26% to about 30%, about 27% to about 30%, about 28% to about 30%, about 29% to about 30%, about 6% to about 29%, about 7% to about 28%, about 8% to about 27%, about 9% to about 26%, about 10% to about 25%, about 11% to about 24%, about 12% to about 23%, about 13% to about 22%, about 14% to about 21%, about 15% to about 20%, about 16% to about 19%, or about 17% to about 18%.

[0049] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of HPMC and xanthan gum. In certain example embodiments, the HPMC and xanthan gum are added in a 1:1 ratio. In certain example embodiments, the blend of HPMC and xanthan gum is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 15%, about 15% to about 16%, about 15% to about 17%, about 15% to about 18%, about 15% to about 19%, about 15% to about 20 ... % to about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0050] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of HPMC and pectin. In certain example embodiments, the HPMC and pectin are added in a 1:1 ratio. In certain example embodiments, the blend of HPMC and pectin is added to an aqueous solvent at a concentration of about 5% to about 40%, about 5% to about 39%, about 5% to about 38%, about 5% to about 37%, about 5% to about 36%, about 5% to about 35%, about 5% to about 34%, about 5% to about 33%, about 5% to about 32%, about 5% to about 31%, about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, or about 5% to about 21%. %, about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 40%, about 7% to about 40%, about 8% to about 40%, about 9% to about 40%, about 10% to about 40%, about 11% to about 40%, about 12% to about 40%, about 13% to about 40%, about 14% to about 4 0%, about 15% to about 40%, about 16% to about 40%, about 17% to about 40%, about 18% to about 40%, about 19% to about 40%, about 20% to about 40%, about 21% to about 40%, about 22% to about 40%, about 23% to about 40%, about 24% to about 40%, about 25% to about 40%, about 26% to about 40%, about 27% to about 40%, about 28% to about 40%, about 29% to about 40%, about 30% to about 40%, about 31% to about 40%, about 32% to about 40%, about 33% to about 40%, about 34% to about 40%, about 35% to about 40%, about 3 It is added at a concentration of 6% to about 40%, about 37% to about 40%, about 38% to about 40%, about 39% to about 40%, about 6% to about 39%, about 7% to about 38%, about 8% to about 37%, about 9% to about 36%, about 10% to about 35%, about 11% to about 34%, about 12% to about 33%, about 13% to about 32%, about 14% to about 31%, about 15% to about 30%, about 16% to about 29%, about 17% to about 28%, about 18% to about 27%, about 19% to about 26%, about 20% to about 25%, about 21% to about 24%, or about 22% to about 23%.

[0051] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of CMC and PGA, hi one particular example embodiment, the CMC and PGA are added in a 1:1 ratio. In certain example embodiments, the blend of CMC and PGA is present in an aqueous solvent at a concentration of about 5% to about 40%, about 5% to about 39%, about 5% to about 38%, about 5% to about 37%, about 5% to about 36%, about 5% to about 35%, about 5% to about 34%, about 5% to about 33%, about 5% to about 32%, about 5% to about 31%, about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, or About 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 40%, about 7% to about 40%, about 8% to about 40%, about 9% to about 40%, about 10% to about 40%, about 11% to about 40%, about 12% to about 40%, about 13% to about 40%, about 14% to about 40 %, about 15% to about 40%, about 16% to about 40%, about 17% to about 40%, about 18% to about 40%, about 19% to about 40%, about 20% to about 40%, about 21% to about 40%, about 22% to about 40%, about 23% to about 40%, about 24% to about 40%, about 25% to about 40%, about 26% to about 40%, about 27% to about 40%, about 28% to about 40%, about 29% to about 40%, about 30% to about 40%, about 31% to about 40%, about 32% to about 40%, about 33% to about 40%, about 34% to about 40%, about 35% to about 40%, about 36 % to about 40%, about 37% to about 40%, about 38% to about 40%, about 39% to about 40%, about 6% to about 39%, about 7% to about 38%, about 8% to about 37%, about 9% to about 36%, about 10% to about 35%, about 11% to about 34%, about 12% to about 33%, about 13% to about 32%, about 14% to about 31%, about 15% to about 30%, about 16% to about 29%, about 17% to about 28%, about 18% to about 27%, about 19% to about 26%, about 20% to about 25%, about 21% to about 24%, or about 22% to about 23%.

[0052] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of PGA and konjac. In certain example embodiments, the PGA and konjac are added in a 1:1 ratio. In certain example embodiments, the blend of PGA and konjac is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 12%. It is added at a concentration of about 20%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0053] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of PGA and guar gum. In certain example embodiments, the PGA and guar gum are added in a 1:1 ratio. In certain example embodiments, the blend of PGA and guar gum is added to an aqueous solvent at a concentration of about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, about 5% to about 21%, about 5% to about 20%, about 5% to about 10%, or about 12%. 9%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 30%, about 7% to about 30%, about 8% to about 30% About 9% to about 30%, 10% to about 30%, about 11% to about 30%, about 12% to about 30%, about 13% to about 30%, about 14% to about 30%, about 15% to about 30%, about 16% to about 30%, about 17% to about 30%, about 18% to about 30%, about 19% to about 30%, about 20% to about 30%, about 21% to about 30%, about 22% to about 30%, about 23% to about 30%, about 24% to about 30%, about 25% to about 30%, It is added at a concentration of about 26% to about 30%, about 27% to about 30%, about 28% to about 30%, about 29% to about 30%, about 6% to about 29%, about 7% to about 28%, about 8% to about 27%, about 9% to about 26%, about 10% to about 25%, about 11% to about 24%, about 12% to about 23%, about 13% to about 22%, about 14% to about 21%, about 15% to about 20%, about 16% to about 19%, or about 17% to about 18%.

[0054] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of PGA and xanthan gum. In certain example embodiments, the PGA and xanthan gum are added in a 1:1 ratio. In certain example embodiments, the blend of PGA and xanthan gum is added to an aqueous solvent at a concentration of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, or about 8%. about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0055] In one example embodiment, the adjuvant composition comprises, consists essentially of, or consists of PGA and pectin. In certain example embodiments, the PGA and pectin are added in a 1:1 ratio. In certain example embodiments, the blend of PGA and pectin is added to an aqueous solvent at a concentration of about 5% to about 40%, about 5% to about 39%, about 5% to about 38%, about 5% to about 37%, about 5% to about 36%, about 5% to about 35%, about 5% to about 34%, about 5% to about 33%, about 5% to about 32%, about 5% to about 31%, about 5% to about 30%, about 5% to about 29%, about 5% to about 28%, about 5% to about 27%, about 5% to about 26%, about 5% to about 25%, about 5% to about 24%, about 5% to about 23%, about 5% to about 22%, or about 5% to about 21%. , about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 40%, about 7% to about 40%, about 8% to about 40%, about 9% to about 40%, about 10% to about 40%, about 11% to about 40%, about 12% to about 40%, about 13% to about 40%, about 14% to about 4 0%, about 15% to about 40%, about 16% to about 40%, about 17% to about 40%, about 18% to about 40%, about 19% to about 40%, about 20% to about 40%, about 21% to about 40%, about 22% to about 40%, about 23% to about 40%, about 24% to about 40%, about 25% to about 40%, about 26% to about 40%, about 27% to about 40%, about 28% to about 40%, about 29% to about 40%, about 30% to about 40%, about 31% to about 40%, about 32% to about 40%, about 33% to about 40%, about 34% to about 40%, about 35% to about 40%, about 3 It is added at a concentration of 6% to about 40%, about 37% to about 40%, about 38% to about 40%, about 39% to about 40%, about 6% to about 39%, about 7% to about 38%, about 8% to about 37%, about 9% to about 36%, about 10% to about 35%, about 11% to about 34%, about 12% to about 33%, about 13% to about 32%, about 14% to about 31%, about 15% to about 30%, about 16% to about 29%, about 17% to about 28%, about 18% to about 27%, about 19% to about 26%, about 20% to about 25%, about 21% to about 24%, or about 22% to about 23%.

[0056] In one embodiment, the adjuvant composition comprises, consists essentially of, or consists of gum acacia and xanthan gum. In certain embodiments, MGA can be used in place of gum acacia. In certain embodiments, gum acacia or MGA is present in the adjuvant composition in an amount of about 30% to about 60%, about 30% to about 59%, about 30% to about 58%, about 30% to about 57%, about 30% to about 56%, about 30% to about 55%, about 30% to about 54%, about 30% to about 53%, about 30% to about 52%, about 30% to about 51%, about 30% to about 50%, about 30% to about 49%, about 30% to about 48%, about 30% to about 47%, about 30% to about 46%, about 30% ~ about 45%, about 30% to about 44%, about 30% to about 43%, about 30% to about 42%, about 30% to about 41%, about 30% to about 40%, about 30% to about 39%, about 30% to about 38%, about 30% to about 37%, about 30% to about 36%, about 30% to about 35%, about 30% to about 34%, about 30% to about 33%, about 30% to about 32%, about 30% to about 31%, about 31% to about 60%, about 32% to about 60%, about 33% to about 60%, about 34% to about 60%, about 35% to about 60% 0%, approximately 36% to approximately 60%, approximately 37% to approximately 60%, approximately 38% to approximately 60%, approximately 39% to approximately 60%, approximately 40% to approximately 60%, approximately 41% to approximately 60%, approximately 42% to approximately 60%, approximately 43% to approximately 60%, approximately 44% to approximately 60%, approximately 45% to approximately 46%, approximately 47% to approximately 60%, approximately 48% to approximately 60%, approximately 49% to approximately 60%, approximately 50% to approximately 60%, approximately 51% to approximately 60%, approximately 52% to approximately 60%, approximately 53% to approximately 60%, approximately 54% to approximately 60%, approximately 55% to approximately 60% , about 56% to about 60%, about 57% to about 60%, about 58% to about 60%, about 59% to about 60%, about 31% to about 59%, about 32% to about 58%, about 33% to about 57%, about 34% to about 56%, about 35% to about 55%, about 36% to about 54%, about 37% to about 53%, about 38% to about 52%, about 39% to about 51%, about 40% to about 50%, about 41% to about 49%, about 42% to about 48%, about 43% to about 47%, or about 44% to about 46%.

[0057] In certain exemplary embodiments, xanthan gum is added to the adjuvant composition in an amount of about 5% to about 20%, about 5% to about 19%, about 5% to about 18%, about 5% to about 17%, about 5% to about 16%, about 5% to about 15%, about 5% to about 14%, about 5% to about 13%, about 5% to about 12%, about 5% to about 11%, about 5% to about 10%, about 5% to about 9%, about 5% to about 8%, about 5% to about 7%, about 5% to about 6%, about 6% to about 20%, about 7% to about 20%, about 8% to about 2 It is added at a concentration of 0%, about 9% to about 20%, 10% to about 20%, about 11% to about 20%, about 12% to about 20%, about 13% to about 20%, about 14% to about 20%, about 15% to about 20%, about 16% to about 20%, about 17% to about 20%, about 18% to about 20%, about 19% to about 20%, about 5% to about 19%, about 6% to about 18%, about 7% to about 17%, about 8% to about 16%, about 9% to about 15%, about 10% to about 14%, or about 11% to about 13%.

[0058] Any of the foregoing formulations can be diluted to a final tank mix concentration ranging from 0.005% to 0.04%, depending on the gum composition selected. The choice of tank mix concentration is determined by the user at the site of application immediately prior to use. All subranges within the ranges listed in this paragraph are believed to be useful, and each mix should be customized based on temperature, relative humidity, spray application method, and any other factors that should be reasonably considered when following the use instructions provided by applicant for its commercial products.

[0059] It is recognized and anticipated that certain other gums can be readily substituted for or added in addition to the above embodiments. Additional gums that can be used in place of or in addition to the gums described above include beta-glucan, ghatti gum, locust bean gum, gellan gum, larchi gum, karaya gum, tara gum, tragacanth, fenugreek, agar, pullulan, and linseed gum.

[0060] Depending on the gum used, the aqueous pesticide adhesive formulation of the present invention can be applied to 1 x 10 -3 ~1500×10 -3 Pa·s (1–1500 centipoise (cP)), 5×10-3 ~1400×10 -3 Pa·s (5–1400 cP), 10×10 -3 ~1300×10 -3 Pa·s (10~1300cP), 20×10 -3 ~1000×10 -3 Pa·s (20–1000 cP), 50×10 -3 ~750×10 -3 Pa·s (50–750 cP), 100×10 -3 ~600×10 -3 Pa·s (100–600 cP), 200 × 10 -3 ~500×10 -3 Pa·s (200–500 cP), or 300×10 -3 ~400×10 -3 It can exhibit a single-point static viscosity of Pa·s (300-400 cP). Alternatively, the single-point static viscosity is 1×10 -3 ~750×10 -3 Pa·s (1–750 cP), 5×10 -3 ~700×10 -3 Pa·s (5–700 cP), 10×10 -3 ~650×10 -3 Pa·s (10–650 cP), 20×10 -3 ~600×10 -3 Pa·s (20-600cP), 25×10 -3 ~550×10 -3 Pa·s (25–550 cP), 30×10 -3 ~540×10 -3 Pa·s (30–540 cP), 35×10 -3 ~525×10 -3 Pa·s (35–525 cP), 40×10 -3 ~500×10 -3 Pa·s (40–500 cP), 50×10 -3 ~400×10 -3 Pa·s (50-400cP), 75×10 -3 ~300×10 -3 Pa·s (75–300 cP) or 100×10 -3 ~200×10 -3The single-point static viscosity can be 750×10 Pa·s (100-200 cP). -3 ~1500×10 -3 Pa·s (750-1500cP), 800×10 -3 ~1400×10 -3 Pa·s (800-1400cP), 900×10 -3 ~1300×10 -3 Pa·s (900–1300 cP), 1000×10 -3 ~1250×10 -3 Pa·s (1000-1250cP) or 1050×10 -3 ~1200×10 -3 It can be Pa·s (1050-1200 cP). Another aspect of the present invention may be as follows. [1] A method for reducing the number of insect or arachnid pests living on a target plant, comprising: preparing a gum concentrate comprising an effective amount of at least one gum selected from the group consisting of xanthan gum, konjac, carboxymethylcellulose, hydroxypropylmethylcellulose, carrageenan, propylene glycol alginate, methylcellulose, acacia gum, pectin, and combinations thereof; diluting the gum concentrate with an aqueous solvent to form an aqueous pesticide, wherein the aqueous pesticide has a single point viscosity of 1.0×10 when no shear force is applied; -3 ~3.0×10 -3 Pa·s (1.0–3.0 centipoise), and when 100 units of shear force are applied, the shear strength is 1.0×10 -3 Pa·s (1.0 centipoise) or less, and spraying the aqueous pesticide through a spray nozzle onto the target plants under a pressure of 103.42 kPa to 1206.58 kPa (15 to 175 pounds per square inch) to form spray droplets that adhere to the target plants; Including, Insect or arachnid pests come into contact with the spray droplets and are thereby trapped in the spray droplets, A method wherein the average g-force required for each insect or arachnid pest to escape from any one of the spray droplets is at least 350. [2] The method according to [1] above, wherein the concentration of at least one gum in the gum concentrate is 0.05 to 30% w / v. [3] The method according to [1] above, wherein the concentration of the at least one gum in the aqueous pesticide is 0.0375 to 0.15% w / v. [4] The method according to [1] above, wherein the spray droplets are resistant to evaporation. [5] The method according to [1], wherein the gum concentrate further comprises at least one sugar alcohol selected from the group consisting of arabitol, erythritol, glycerol, isomalt, lactitol, mannitol, sorbitol, xylitol, and combinations thereof. [6] The method according to [5] above, wherein the concentration of the at least one sugar alcohol in the aqueous concentrate is 0.6 to 50% w / v. [7] The method according to [5] above, wherein the spray droplets are resistant to evaporation. [8] The method according to [1], wherein the at least one gum comprises xanthan gum, konjac, and acacia gum. [9] The method according to [5], wherein the at least one gum comprises xanthan gum, konjac, and acacia gum.

[10] The method according to [1], wherein the at least one gum comprises xanthan gum, carboxymethyl cellulose, and acacia gum.

[11] The method according to [5], wherein the at least one gum comprises xanthan gum, carboxymethyl cellulose, and acacia gum.

[12] The method according to [1], wherein the number of surviving insect or arachnid pests on the target plant is reduced by at least 50%.

[13] The single-point viscosity of an aqueous pesticide is 1 × 10 when no shear force is applied. -3 ~1500×10 -3 Pa·s (1 to 1500 centipoise) The single-point viscosity of an aqueous pesticide is 1.0 x 10 when 100 units of shear force are applied. -3 Pa·s (1.0 centipoise) The aqueous pesticide according to [1], wherein the droplet size of the composition after the shear force is applied is at least 100 μm.

[14] A method for reducing insect or arachnid pest populations on target plants, comprising: The spray droplets according to [1] are applied to a target plant through a spray nozzle at a pressure of 103.42 to 1206.58 kPa (15 to 175 pounds per square inch), the applied spray droplets define a plurality of substantially spherical pesticide adhesive areas having a diameter of at least 100 μm; The method wherein at least one target pest present within the target plant area encounters at least one pesticide adhesive area and is permanently immobilized.

[15] The method according to

[14] above, wherein the insect or arachnid pest has a body length of 1 to 5 mm.

Claims

1. 1. A method for reducing the number of surviving insect or arachnid pests on a target plant, comprising: preparing a gum concentrate comprising an effective amount of at least one gum selected from the group consisting of xanthan gum, konjac, carboxymethylcellulose, hydroxypropylmethylcellulose, carrageenan, propylene glycol alginate, methylcellulose, acacia gum, pectin, and combinations thereof; diluting the gum concentrate in an aqueous solvent to form an aqueous pesticide, wherein the aqueous pesticide does not contain a surfactant; spraying the aqueous pesticide through a spray nozzle onto the target plants under a pressure of 103.42 to 1206.58 kPa (15 to 175 pounds per square inch) to form spray droplets that adhere to the target plants; Including, Insect or arachnid pests come into contact with the spray droplets and are thereby trapped in the spray droplets, A method wherein the average g-force required for each insect or arachnid pest to escape from any one of the spray droplets is at least 0.

7.

2. 10. The method of claim 1, wherein the concentration of the at least one gum in the gum concentrate is from 0.05 to 30% w / v.

3. 10. The method of claim 1, wherein the concentration of the at least one gum in the aqueous pesticide is 0.0375 to 0.15% w / v.

4. The method of claim 1 , wherein the spray droplets are resistant to evaporation.

5. 10. The method of claim 1, wherein the gum concentrate further comprises at least one sugar alcohol selected from the group consisting of arabitol, erythritol, glycerol, isomalt, lactitol, mannitol, sorbitol, xylitol, and combinations thereof.

6. 6. The method of claim 5, wherein the concentration of the at least one sugar alcohol in the gum concentrate is from 0.6 to 50% w / v.

7. The method of claim 5 , wherein the spray droplets are resistant to evaporation.

8. 10. The method of claim 1, wherein the at least one gum comprises xanthan gum, konjac, and acacia gum.

9. 6. The method of claim 5, wherein the at least one gum comprises xanthan gum, konjac, and acacia gum.

10. 10. The method of claim 1, wherein the at least one gum comprises xanthan gum, carboxymethyl cellulose, and gum acacia.

11. 6. The method of claim 5, wherein the at least one gum comprises xanthan gum, carboxymethyl cellulose, and gum acacia.

12. 10. The method of claim 1, wherein the number of surviving insect or arachnid pests on the target plant is reduced by at least 50%.

13. 1. A method for reducing insect or arachnid pest populations on a target plant, comprising: applying the spray droplets of claim 1 to a target plant through a spray nozzle at a pressure of 103.42 to 1206.58 kPa (15 to 175 pounds per square inch); the applied spray droplets define a plurality of substantially spherical pesticide adhesive areas at least 100 μm in diameter; The method wherein at least one target pest present within the target plant area encounters at least one pesticide adhesive area and is permanently immobilized.

14. 14. The method of claim 13, wherein the insect or arachnid pest has a body length of 1 to 5 mm.

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