AU755802B2 - Controlled release device for the preservation of wooden structure proximate soil - Google Patents
Controlled release device for the preservation of wooden structure proximate soil Download PDFInfo
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- AU755802B2 AU755802B2 AU63316/98A AU6331698A AU755802B2 AU 755802 B2 AU755802 B2 AU 755802B2 AU 63316/98 A AU63316/98 A AU 63316/98A AU 6331698 A AU6331698 A AU 6331698A AU 755802 B2 AU755802 B2 AU 755802B2
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B27—WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
- B27K—PROCESSES, APPARATUS OR SELECTION OF SUBSTANCES FOR IMPREGNATING, STAINING, DYEING, BLEACHING OF WOOD OR SIMILAR MATERIALS, OR TREATING OF WOOD OR SIMILAR MATERIALS WITH PERMEANT LIQUIDS, NOT OTHERWISE PROVIDED FOR; CHEMICAL OR PHYSICAL TREATMENT OF CORK, CANE, REED, STRAW OR SIMILAR MATERIALS
- B27K3/00—Impregnating wood, e.g. impregnation pretreatment, for example puncturing; Wood impregnation aids not directly involved in the impregnation process
- B27K3/02—Processes; Apparatus
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION 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
- A01N25/00—Biocides, 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
- A01N25/08—Biocides, 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 containing solids as carriers or diluents
- A01N25/10—Macromolecular compounds
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION 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
- A01N25/00—Biocides, 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
- A01N25/08—Biocides, 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 containing solids as carriers or diluents
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01N—PRESERVATION 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
- A01N25/00—Biocides, 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
- A01N25/18—Vapour or smoke emitting compositions with delayed or sustained release
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- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K3/00—Materials not provided for elsewhere
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B27—WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
- B27K—PROCESSES, APPARATUS OR SELECTION OF SUBSTANCES FOR IMPREGNATING, STAINING, DYEING, BLEACHING OF WOOD OR SIMILAR MATERIALS, OR TREATING OF WOOD OR SIMILAR MATERIALS WITH PERMEANT LIQUIDS, NOT OTHERWISE PROVIDED FOR; CHEMICAL OR PHYSICAL TREATMENT OF CORK, CANE, REED, STRAW OR SIMILAR MATERIALS
- B27K3/00—Impregnating wood, e.g. impregnation pretreatment, for example puncturing; Wood impregnation aids not directly involved in the impregnation process
- B27K3/34—Organic impregnating agents
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- Life Sciences & Earth Sciences (AREA)
- Health & Medical Sciences (AREA)
- General Health & Medical Sciences (AREA)
- Engineering & Computer Science (AREA)
- Wood Science & Technology (AREA)
- Zoology (AREA)
- Plant Pathology (AREA)
- Dentistry (AREA)
- Pest Control & Pesticides (AREA)
- Agronomy & Crop Science (AREA)
- Environmental Sciences (AREA)
- Toxicology (AREA)
- Chemical & Material Sciences (AREA)
- Forests & Forestry (AREA)
- Materials Engineering (AREA)
- Organic Chemistry (AREA)
- Agricultural Chemicals And Associated Chemicals (AREA)
- Catching Or Destruction (AREA)
- Road Paving Structures (AREA)
- Chemical And Physical Treatments For Wood And The Like (AREA)
Description
WO 99/42264 PCT/US98/03265 -1- CONTROLLED RELEASE DEVICE FOR THE PRESERVATION OF WOODEN STRUCTURE PROXIMATE SOIL FIELD OF THE INVENTION The present invention is a controlled release device composed of a polymer, bioactive chemical including at least one fungicide and a binding carrier, effective to prevent or retard wood decay of a wooden object that is in direct contact with soil. As used herein, the term "bioactive" means stimulating an organism, usually in a negative way up to and including death for purposes of a deterrent.
BACKGROUND OF THE INVENTION Preserving wood from decay has been recognized as a problem from ancient times. Roman books on architecture had descriptions "of preserving trees after they are cut, what to plaster or anoint them with, of the remedies against their affirmities, and of allotting them their proper place in the building." (See W.C. Hayes, ed., "'Extending Wood Pole Life: Solving a Problem", ELECTRICAL WORLD, 41-47 at 42 (February 1986).
In modern times, the protection of wooden utility poles, railroad ties and fence posts from decay has become a major concern. The decay of such wooden objects has been found to be primarily caused by the action of pests and particularly of fungi, termites, carpenter ants, and other wood invading insects.
The decay caused by fungi is a common and an important source of deterioration of wooden objects by removal or severing of fibers which weakens the wooden object. (See R.A. Zabel et al., The Fungal Associates.
Detection, and Fumigant control of Decay in Treated SUBSTITUTE SHEET (RULE 26) WO 99/42264 PCT/US98/03265 -2southern Pine Poles, Final Report EL-2768 for EPRI Research Project 1471-1, State University of New York 1982). Although decay most frequently occurs within centimeters of the ground line, any part of the pole which has a moisture content of above 20% and is in contact with oxygen can harbor decay-producing fungi.
The secondary region of decay is the cross-tie intersection area. The fungi feed on wood by extending networks of minute, threadlike strands of single cells (hyphae) through the cracks in the wood. The hyphae secrete enzymes that dissolve the cellulose and lining in the wood, transforming them into simple chemicals that the fungi then use as food. In its incipient stages, decay is often invisible to the naked eye, but it is capable of completely destroying large volumes of wood.
The termites, carpenter ants and other wood invading insects bore into the wood, thereby destroying its integrity and structural strength. The problem of invasion by pests is exacerbated by the cracking of wood upon drying. As wood dries to below about 30 percent moisture content, it shrinks. Since the moisture level of freshly-cut wood decreases with the distance from the center, as the wood dries, it produces V-shaped cracks, which expose additional surface for penetration by pests.
Additionally, any protection of a wooden object which is limited to the outside surface of such object is rendered inoperative once cracks are formed.
The magnitude of the problem of decay of wood is illustrated with wooden utility poles. There are about 120 million wooden utility poles in service in the United States, of which 15 to 20 million are currently in need of treatment to remain in service, and 4 to 6 million more become defective each year. A survey by the Electric Power Research Institute ("EPRI") indicated that, on average, it costs $810 to replace an electric WO 99/42264 PCTIUS98/03265 -3distribution pole, and $1690 to replace an electric transmission pole.
The presently accepted commercial approach to protection of new utility poles involves pressure treatment of the outer layers of the lower portions of poles with various organic or inorganic compounds. One widely used preservative is creosote, produced by the destructive distillation of coal. Another organic preservative that has been commonly used to impregnate wooden objects, including utility poles, is pentachlorophenol ("penta"). However, its use in the United States has been severely restricted by the U.S.
Environmental Protection Agency. Wooden poles are also impregnated with inorganic compounds, such as chromated copper arsenical (CCA), ammoniacal copper arsenate (ACA) or ammoniacal copper zinc arsenate (ACZA) compounds. A problem with these inorganic wood impregnants, however, is that they leach out and quickly lose their effectiveness in preserving the wood.
A more recent approach to overcoming decay of wooden utility poles is by placing a clamshell mold around the pole. The clamshell mold extends from about 2-3 feet above the soil surface to about 2-3 feet below the soil surface. A resin mixture is placed in an annulus between the clamshell mold and the utility pole wherein the resin fills cracks and is allowed to cure and harden. Upon removal of the clamshell mold, the cured resin supports the pole and retards further decay of the wood. A pesticide or insecticide may be injected with the resin.
However, the effective lifetime of the pesticide in the resin is relatively short and is not easily renewed.
A problem common to treatment of wood by impregnation with either organic or inorganic preservatives is that the impregnants reach only the surface layers of the WO 99/42264 PCT/US98/03265 -4wooden objects. Accordingly, wood cracking exposes untreated areas which are subject to decay.
The pressure impregnation approach provides limited decay protection for a few years up to generally about years. Moreover, the pressure impregnation approach cannot be applied to wooden poles already in place. The decay protection of poles already in place may be extended by periodic inspection and treatment, as necessary, with the fumigants, such as chloropicrin (trichloronitromethane), VAPAM (sodium methyldithiocarbamate) a non-volatile solid which is hydrolyzed to form (methyl isocyanate) or VORLEX, a volatile liquid containing the bioactive ingredient of methyl isocyanate in conjunction with physical strengthening of the deteriorated pole. Such remedial treatment has been shown to arrest fungal activity in Douglas fir poles for up to 10 years. (See R.D. Graham et al., Controlling Biological Deterioration of Wood with Volatile Chemicals, EPRI Report EL-1480 (Oregon State University, 1980). The treatment with fumigants generally involves drilling a hole at ground level downward and toward the center of the pole and pouring of the fumigant into the hole. The physical strengthening of the deteriorated pole generally involves placing reinforcing structures, such as metal sheath, concrete poured jackets, or an adjacent supporting pole.
The problem with the current treatment and repair methods is that they are effective for relatively short periods of time and necessitate regular costly manpowerintensive inspections and continual further treatments and repairs. Providing an excess quantity of an impregnant or a fumigant does not solve the problem of the short duration of the protection. The excess of such impregnant of fumigant is rapidly lost to the air and soil decreasing the long-term effectiveness. Moreover, WO 99/42264 PCT/US98/03265 losses of impregnants or fumigants may cause significant environmental problems. Also, additional impregnants and fumigants are subject to decomposition, which renders them ineffective in the long run and not cost effective in the short run. The concentration of bioactive ingredients resulting from a single application of an impregnant or fumigant starts out well above the minimum level necessary for effectiveness, but decreases rapidly with passing time, dropping quickly below the minimum effective level.
Since a long-term solution to pesticide intrusion is desired, the pesticide which is used to control such intrusion can be incorporated into a controlled release device. A "controlled release device" refers to a substance that results in controlled and sustained release of an bioactive chemical from its surface. The device provides a method for the controlled release of the chemical into the surrounding environment. The chemical released into the environment establishes an effective zone of action.
Presently, there are at least three controlled release packaging systems, including microcapsules, coated granules, and chemically-bound fungicides, wherein the fungicide is chemically bound to a polymer.
While there are a number of reasons for recommending microencapsulation (it is highly versatile, makes use of a variety of manufacturing techniques, and reduces the toxicity of the contained material), it is essentially a short-term system, with lifetimes measured in months rather than years. Additionally, microencapsulation can add significantly to the cost of the fungicide being encapsulated. Furthermore, this process has no use in protecting the other portions of the wood.
Coated granules have a pesticide absorbed onto a matrix such as clay and then coated with cross-linked WO 99/42264 PCT/US98/03265 -6resins which helps slow the release rate. Clay loses or releases pesticide over a short period of at most a few weeks.
Chemically-bound pesticides are made by chemically binding the pesticide to a polymer, either by being reacting the pesticide with a preformed polymer, or by attaching the pesticide to a monomer and then cross linking to form the polymer. The amount of pesticide chemically bound in a polymer affects the integrity, strength and properties of the polymer. Accordingly, the amount of pesticide that is chemically bound is limited to less than about 10 wt% to maintain polymer integrity.
A Japanese patent J5 8039-601, JA-1983-03 describes an antibacterial agent placed in a hydrophillic polymer and formed into a stick or tablet that is inserted into a hole into the trunk of a tree. The hydrophillic polymer absorbs moisture from the tree and dissolves thereby releasing the antibacterial agent. This controlled release device would be inoperative in non-living dry wood. In fact, it would be inoperative in an environment of unsteady moisture exposure since overexposure to moisture would result in dissolution too quickly and under exposure to moisture would result in insufficient dissolution to release the antibacterial agent.
There is, therefore, a long felt and unsatisfied need for a device, a method and a system of preserving wooden objects for a prolonged period of time, and independent of moisture exposure by preventing decay and deterioration of such objects by pests such as fungi, termites, ants, and other wood invading flora and fauna.
The need is particularly keen in connection with the prevention of decay and deterioration of wooden utility poles, railroad ties, fence posts, and buildings.
SUMMARY OF THE INVENTION The present invention has for its objective, the provision of an improved bound friable mixture, and preferably such a bound friable mixture which might be used in a controlled release device for deterring, repelling or killing pests.
In accordance with this aspect, the present invention provides a bound friable mixture for deterring, repelling or killing pests, including: at least one bioactive chemical; bound with a binding carrier. Conveniently a control release device for deterring, repelling or killing pests according to this aspect may include a bound friable mixture as aforesaid dispersed within a continuous polymeric matrix.
Preferred features and aspects of the band friable mixture may be as defined in claims 2 to 5 annexed hereto which are hereby made part of the S* disclosure of this specification. Preferred features and aspects of the control release device may be as defined in claims 7 to 23 as annexed hereto, which 15 claims are hereby made part of the disclosure of this specification.
The present invention has for a further preferred aspect, the provision of an improved method of making a controlled release device useful for deterring, repelling or killing pests. In accordance with this aspect, the present invention provides a method including the following steps: 20 forming a friable mixture including a binding carrier and at least one o.
bioactive chemical so as to bind said bioactive chemical to said carrier; and o.e.
incorporating said bound particles of said carrier and said bioactive chemical into a polymer to form a polymeric matrix containing said bound particles.
Preferred features and aspects of this aspect of the invention may be as defined in claims 25 to 41 as annexed hereto, which claims are hereby made part of the disclosure of this specification.
The present invention has for a still further preferred aspect, the provision of an improved method of preventing or retarding decay and deterioration of a wooden object from wood attacking pests. In accordance with the aspect, the method includes the steps of: 8 making a controlled release device as defined above with a release rate of at least about 0.4 gg/cm 2 /day; creating a cavity in the wooden object; inserting the controlled release device into the cavity and closing the cavity; and permitting at least one bioactive chemical to vaporize from a surface of said controlled release device and to diffuse into the molecular wood structure of the wooden object thereby creating an exclusion zone within the wooden object having a concentration of the bioactive chemical above a minimum effective concentration preventing pest invasion into said exclusion zone.
The present invention has for another preferred aspect, the provision of an improved method of preventing decay and deterioration of wooden objects in contact with the soil caused by the invasion of pests. In accordance with this aspect the method includes the steps of: making a controlled release device as defined above; placing the controlled release device proximate the wooden object, the concentration of the bioactive chemical being sufficient to provide a predetermined release rate through said polymer and sufficient to provide a minimal effective level to prevent pest intrusion for a predetermined period of 20 time.
0.
Preferred features and aspects of this aspect of the invention may be as defined in claims 44 to 52 as annexed hereto, which claims are hereby made part of the disclosure of this specification.
In accordance with a still further aspect of this invention, there is an 25 objective of providing an improved multi-layer controlled release device for deterring, repelling or killing pests which approach or come into contact with the device. In accordance with this aspect, the multi-layer release device includes a polymeric sheet having: a pesticide; 9 a carrier, the pesticide being bound to the carrier to form a carrier band pesticide so as to modify a release rate of the pesticide from the controlled release device; and a thermoplastic, hydrophobic polymer enveloping said carrier.
Preferred features and aspects of the aforesaid multi-layer controlled release device may be as defined in claims 54 and 55 annexed hereto which are hereby made part of the disclosure of this specification.
The present invention together with the attendant objects and advantages, will best be understood with reference to the detailed description below read in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a schematic representation of the comparison of concentrations of a pesticide applied in a single dose and by the process and device of the present invention to a wooden object as a function of time.
FIG. 2 is a perspective view of a top section of a wooden telephone pole showing the location of the controlled release device constructed in accordance with the present invention.
FIG. 3 is a perspective view of a wooden telephone pole being treated by the process of the present invention to install a pesticide-releasing device of the 20 present invention.
FIG. 4 is a perspective view of the wooden telephone pole of FIG. 3 showing an installed pesticide-releasing device constructed in accordance with the present invention.
:0.00. FIG. 5 is a perspective view of drilling operation in the process of el99 25 installation of the pesticide-releasing device of the present invention into new ooo.
00-0 wooden utility poles, showing in partial cross-section the bore for the pesticideoo..o releasing device of the present invention.
*oooo 0900 WO 99/42264 PCT/US98/03265 FIG. 6 is a perspective view of the railroad tracks mounted on railroad ties which contain the pesticidereleasing devices constructed and installed in accordance with the present invention.
FIG. 7 is a perspective view of the bottom of a wooden utility pole covered with a controlled pesticide release layer constructed in accordance with an embodiment of the present invention.
FIG. 8 is a perspective view of a railroad tie whose lower surface is covered with a controlled pesticide release layer constructed in accordance with an embodiment of the present invention.
FIG. 9 is a cross-sectional view of a wooden utility pole surrounded by a controlled-release device constructed in accordance with an embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION It has been discovered that the longevity of a pest control can be greatly increased by first combining the bioactive chemical containing at least one fungicide, with a binding carrier as a bound friable mixture. A wood attacking pest controlled release device may then be formed by placing the bound friable mixture into a polymer. The polymer may be from a preform of a monomer or a polymer powder that is then formed into pellet, rod, strip, sheet or any suitable shape for the desired deployment of the wood attacking pest controlled release device.
Wood attacking pests include but are not limited to microorganisms for example fungi, and/or mold; macroorganisms including insects and arachnids, for example ants, termites, beetles, spiders; and combinations thereof.
WO 99/42264 PCTIUS98/03265 11- Decay and deterioration of wooden objects maintained in soil, can be prevented for a prolonged period of time by a controlled release device which releases a pesticide at a predetermined rate into the wooden object to maintain at least a portion of such object above the pesticide concentration that can be tolerated by pesticides. The devices of the present invention can prevent pest infestation of wooden objects up to the expected lifetime of such objects. For example, the devices of the present invention can prevent pest caused decay and deterioration of wooden utility poles for at least twenty (20) years and preferably at least fifty years.
The process of the present invention for treating wooden objects can be used on any wooden object; however, as a practical matter, it is mostly useful in treating wooden objects which are proximate soil either within soil, in contact with soil, or sufficiently near soil that pests have access to the wooden object(s). The wooden objects for which the present invention is especially useful include: wooden utility poles, wooden railroad ties, wooden bridge parts, such as bridge bracings, wooden fence posts, and the like. As it should be clear to one skilled in the art, the term "wooden objects" is used herein to refer to objects made of the wood, out of dead tree trunk and branches. The term "wooden objects" is not intended to refer to live trees.
The device of the present invention can be installed in wooden objects which are already in the soil and in those which have not yet been placed in the soil. The present invention is effective in treating both the wooden objects that have been infested by pests and those which have not yet suffered from pest infestation.
Preferred deployment is for the device of the present WO 99/42264 PCT/US98/03265 -12invention to be installed in the wooden object, then release the pesticide at a controlled rate into the wood.
The device's pesticide-release rate is selected to maintain at least a portion of the wooden object at the minimum effective level. As used in the specification and the appended claims, the term "minimum effective level" is defined to be the pesticide level which can be tolerated by pests. In some applications, a creation of an exclusion zone which pests cannot penetrate is sufficient to protect the entire object. The creation of such a zone is advantageous in that less pesticide is required than if such a level was maintained throughout the whole object. Also, it often is much less expensive to install devices for creation of such zone than for treating the entire object. Finally, the creation of a pest barrier or exclusion zone is advantageous for ecological and human safety reasons. This is because most of the object does not contain a pesticide.
The controlled release devices of the present invention preferably have a release rate shown in FIG. 1, which is initially rapid so as to bring the pesticide concentration of the zone in the wooden object or the entire object to the desired concentration level as quickly as possible. Thereafter, the release rate is slower, preferably just sufficient to maintain the object or the selected zone of the wooden object above the minimum effective level to prevent pest infestation. The initial high release rate is achieved by allowing the pesticide to release from the matrix prior to inserting the device into or onto the wooden object. The amount of the released pesticide can be varied by the varying temperature and the amount of time for the release prior to inserting the device.
It has been found that hydrophobic polymers serve as effective pesticide release devices because they can act WO 99/42264 PCT[US98/03265 13as reservoirs and release regulating mechanisms for the pesticide. They are able to function in this manner because they trap the pesticide within their matrices and matrix acts as a reservoir for the pesticide. Moreover, these polymeric matrices can protect the pesticide from degradation. Thus, the polymeric delivery system is able to maintain an effective dose of the pesticide for a substantial length of time in a zone surrounding the device. Hydrophobicity of the pesticide containing polymer is preferably less than about 13 on either the HLB or solubility parameter scale. More preferred in a hydrophobicity less than about 10 and most preferably less than about 8. Specifically excluded are polymers that are water soluble, and/or have ionic groups (e.g.
carboxylic acids, sulfonic acids), and/or have been treated with water to form materials that contain water.
However, the present invention includes blends for example polyethylene and POLYOX wherein POLYOX is a water soluble ethylene oxide polymer. However, the bioactive pesticide is contained within the hydrophobic polymer.
The pesticides used in the present invention depend on the anticipated pests which in turn depend on many factors, including the type of wood, the geographical location of the wooden object, and the soil in which the object is maintained. In most cases, the pesticide is selected to eliminate fungi and wood boring insects. The wood boring insects which cause particular problems include carpenter ants and termites (soil born or dry wood). If a single pesticide does not eliminate all of the anticipated pests, the device can incorporate a combination of pesticides, as long as such pesticides are compatible with each other or one another. If the pesticides are not compatible because of different release rates, or, for other reasons, separate devices can be used for treatment in accordance with the present WO 99/42264 PCT/US98/03265 -14invention. For termites and/or ants, the presently preferred pesticide is a pyrethrin, specifically for example tefluthrin, permethrin, cypermethrin, or combinations thereof. Other preferred pesticides include especially fenoxycarb, and chlorpyrifos, sold under the trademark Chlorophos by Dow Chemical.
For fungi, pesticides include but are not limited to tri-chloronitromethane under the tradename Chloropicrin, a mixture of methylisothiocyanate and 1-3 dichloropropane under the tradename Vorlex, sodium N-methyl dithiocarbomate under the tradename Vapam, 2,3,5,6 tetracholoro 1,9 benzoquinone under the tradename Chloronil, calcium cyanamide, biphenyl, copper naphthenate, dichlorphen, fentin hydroxide and combinations thereof. Preferred fungicides are biphenyl, dichlorophen, and Chloropicrin, which are water soluble and incorporable into urethane or low density polyethylene. The amount of polymer is preferably about wt% with fungicide in an amount from about 5 wt% to about 30 wt% and a binding carrier in an amount from about 5 wt% to about 30 wt%.
Other exemplary insecticides include but are not limited to isofenphos, fenvalerate, cypermethrin, permethrin, pyrethrin, fenoxycarb, tefluthrin, and combinations thereof, as well as in combination with any of the previously cited pesticides.
Polymer selection for the controlled release device depends upon the conditions encountered, either inside the pole, or on its outer surface. The polymer matrices must be able to endure the seasonal variations in temperature and moisture. Moreover, because of their naked exposure to the elements, the matrices used to coat the poles must be able to withstand amplified conditions.
The polymer utilized in the coating must meet three requirements. First, it must be bound to the wood pole WO 99/42264 PCT/US98/03265 15 so that it remains intact during handling. Second, it must provide an adequate diffusion barrier for the pesticide so that the release rate will be compatible with the desired service life. Finally, the selection of the polymer must account for the characteristics of the pesticide.
Polymers capable of withstanding such conditions and providing the desired release rates for the pesticides can be classified into four groups: thermoplastic polymers, thermoset polymers, elastomeric polymer and copolymers thereof. By way of example and not intending to limit the scope of this invention, low density polyethylene, high density polyethylene, vinyl acetate, urethane, polyester, silicone, neoprene, and isoprene polymer and co-polymer can all be used in this invention.
Where synthetic pyrethroids are used, high density polyethylene is the preferred polymer, specifically polyethylene MA778000. More specifically, pyrethroids having both low water solubility and low vapor pressures, the low vapor pressures in the range of 1 nPa to 100 mPa, including tefluthrin (80 mPa), permethrin (45 nPA), lambdacyhalthrin (200 nPa), resmethrin (1.5 nPa), deltamethrin (0.002 mPa), cypermethrin (0.5 nPa), cyphenothrin (0.12 mPa) and cyfluthrin (1 mPa) are preferred in combination with high density polyethylene.
Most preferred are permethrin, cyphenothrin, tefluthrin, or combinations thereof because of their combination of efficacy and their release rates from or through a polymer. For more water soluble bioactive chemicals, urethane, specifically Urethane 2200, Hytrel polyesters, and low density polyethylene, specifically Microthene 763 are used. Water soluble bioactive chemicals include diazinon, chlorpyrifos, fenoxycarb, tralomethrin, methyl isothiocyanate and pentachlorophenol.
WO 99/42264 PCT[S98/03265 16- In addition, it is advantageous to add filler and/or binding carrier to optimize the loading of the polymer.
The inclusion of such a substance allows greater amounts of pesticide to be loaded into the desired polymer, while, at the same time, assisting in the release rate of the polymer. Binding carrier includes carbon, hydroxyapatite, alumina, silicoalumina, and combinations thereof. Carbon may be in the form of activated carbon, carbon black, and combinations thereof. Carbon black is the preferred binding carrier. More specifically, Vulcan XC-72 is preferred because Vulcan XC-72 has greater adsorption capacity compared to other carbon blacks. For bioactive chemicals that are liquid at room temperature, for example diazinon (pesticide) and copper naphthanate (fungicide), hydroxyapatite is the preferred binding carrier.
For high density polyethylene, the preferred amount of high density polythene is about 70 wt% and low vapor pressure bioactive chemicals in an amount of about wt%, with the binding carrier in an amount of about wt%. For low density polyethylene, polyester, urethane the preferred amount of plastic is about 65 wt%, and water soluble bioactive chemicals of about 15 wt%, with the amount of carrier about 0 wt% to about 25 wt%. For all combinations, bioactive chemical may range from about wt% to about 30 wt% and binding carrier from about 0 wt% to about 25 wt%.
When a binding carrier is added, it has been found that simply adding the binding carrier to a mix of pesticide and pre-polymer results in poor formability of the controlled release device and permits evaporation of the pesticide. Accordingly, it is preferred to first mix the pesticide into the binding carrier as a bound friable mixture so that the pesticide is preferably bound either onto the surface of the binding carrier or into the bulk WO 99/42264 PCT/US98/03265 -17volume of the binding carrier or both. The bound friable mixture of pesticide and binding carrier is then added to a polymer. The bound pesticide is retarded or prevented from evaporation during subsequent forming of the polymer.
The pesticide is best mixed with carrier with the pesticide in a liquid form. Some pesticides are in liquid form at room temperature, and others are solid or near solid at room temperature. Accordingly, heating the pesticide may be necessary to insure a liquid form for mixing with the binding carrier. For a pesticide in solid form with a high melting temperature, for example the fungicide carbendazin, the solid form is preferably a powder or granular form mixed with the binding carrier.
The pesticide may be in the form of a paste and mixed with a binding carrier.
In a further embodiment, the controlled release device is constructed in two parts, an inner part surrounded by an outer part. The inner part comprises a mix of pesticide and binding carrier with the outer part a hydrophobic polymer encapsulating the inner part. The outer part may also contain pesticide and binding carrier that is the same or different compared to the inner part.
The inner part preferably has about 60 wt% pesticide, 30 wt% binding carrier and 10 wt% polymer, and may range from about 5 wt% to about 70 wt% pesticide, 10 wt% to about 95 wt% binding carrier and 0 wt% to about 85 wt% polymer.
Forms of the controlled release device include sheets, rods, pellets, and two-part constructions including inner part and outer part rods or pellets, and/or multi-laminate sheets wherein one sheet contains the pesticide or pesticide and binding carrier and another sheet is added to prevent photodegradation of the pesticide from light exposure.
WO 99/42264 PCTIUS98/03265 -18- When the controlled release device is for insertion into the wooden object, the pesticide must be loaded into the polymer in sufficient amounts to maintain a "minimal effective level." It is preferred to maintain the concentration in parts by weight of the polymer from about 50 to about 80, the concentration of the pesticide from about 5 to about 30, and the concentration of the binding carrier from about 5 to about 20. By so loading the polymer, the minimum effective level can be maintained for at least seven years. As the concentration profile shown in Fig. 1, a polymeric controlled release device can maintain a minimal effective level of pesticide for much greater periods of time than single application methods.
The devices of the present invention can have any physical shape. If the device is inserted inside the wooden object, it is desirable to have the device shaped to conform to the cavity. Sheets, sleeves, multiple layers, pellets, dots on geotextile, pots, pot covers, and strips are only a few of the shapes that may embody the present invention.
In some cases, it is desirable to incorporate the device into the wood in a liquid or in a gel form, which may or may not solidify once it is incorporated. For example, a pesticide can be incorporated into a molten polymer which can then be injected in a molten state into a cavity in the wooden object. The polymer then solidifies, creating a solid device which fits tightly in the cavity. Similarly, the pesticide in a molten polymer may be spread on a surface or wooden object and allowed to solidify, creating a device which surrounds a portion of the wooden object as illustrated in FIG. 3.
For utility poles, as illustrated in FIG.s 2-5, it is preferred to insert the device as a controlled release device near the center of the pole so that the pesticide WO 99/42264 PCTIUS98/03265 -19is carried outward by diffusion and longitudinally by the capillary action of the wood structure. Once inserted, the opening into the pole must be sealed (not shown in the drawings). Preferably, the seal utilized provides a diffusion barrier for the pesticide. Since the cavity in the wooden objects is often created by drilling a hole therein, the devices of the present invention are often tubular, as generally shown in FIG.s 2-4. The diameter of the tubular device may be any diameter from thread size to several feet, but is preferably from about inch to about 2 inches. The length may be any length but is preferably a length that does not extend beyond the wooden object. For a device inserted longitudinally in a portion of a wooden pole to be placed below grade, it is preferred that the length of the device approximately match the distance of the wooden pole extending below grade.
FIG. 2 illustrates an embodiment of this invention.
It illustrates the controlled release device 51 already inserted near the top of the utility pole 12.
FIG. 3 shows the process of treating an already existing utility pole 11. In this figure, the lower end of the pole 11 is being drilled by a workman using drill A collar 30 is set about the pole 11 to stabilize it as the drill 40 is being pushed downwards into the pole 11. FIG. 4 illustrates the finished pole 11 of FIG. 3 with the controlled release device 50 inserted.
FIG. 5 illustrates the drilling operation of a new utility pole 10. A drill 20 is used to bore a hole 30 in the pole 10 to provide a reservoir for the controlled release device.
FIG. 6 shows railroad cross-ties 72, wherein it is preferred to insert the controlled release device 52 near the center of the tie 72. A preferred mode of application includes a mechanism capable of movement on WO 99/42264 PCT/US98/03265 rails 90, inserting the controlled release device 52 into cross-ties 72. The mechanism may utilize a plurality of drills to bore holes into the cross-ties 72.
In another embodiment of this invention, the polymer is placed in contact with the external surface of the wood object. This embodiment provides immediate protection for the wood. The embodiment maintains a minimum effective level of pesticide at the surface of the wood and, if in contact with the soil, the surrounding soil. Preferably, the concentration in part by weight of the polymer ranges from about 50 to about the concentration of the pesticide from about 50 to about 80, more preferably from about 10 to about 30, and the concentration of the binding carrier from about 10 to about 20. By so loading the polymer, the minimum effective level can be maintained for at least seven (7) years. However, it should be noted that these concentrations can be varied by the user according to the desired results.
FIG.s 7 and 8 describe a mode of providing external contact. A coat 60 is applied to pole 12 in FIG. 7.
Similarly, a coat 61 is applied to the bottom of a railroad cross-tie 70. These coats 60, 61 are applied in order to protect the wood structures before the pesticide inserted into the core can diffuse through the wood to reach the outer surface of the wooden object. The coat is able to provide an immediate minimum effective level of pesticide. Depending upon the place of application, this minimum effective level of pesticide can also be instituted in the adjacent soil or structure. Both FIG.
7 and 8 show the wood (pole 11 or cross-tie 70) being in intimate contact with the surface soil 71.
In another embodiment (FIG. 9) for providing external contact, a protective outer layer of pesticide can be applied by using a member 110 with reservoirs 120 to hold WO 99/42264 PCT/US98/03265 -21 the controlled release device 53. The member 110 configured as a ring partially covers the wood object 130. The ring 110, as the applied coating, can be placed on the wood object according to user preference. The coating and ring embodiments of this invention have been shown by way of example and do not limit the scope of this invention.
The pesticide may permeate the wooden object by several mechanisms. First, if a polar, water soluble, pesticide is used and the wood contains enough moisture, the pesticide is carried by the capillary action of the wood structure. Second, the pesticide having vapor pressure of about 1 mm Hg at 25 0 C diffuse relatively quickly through the porous molecular wood structure through gaseous diffusion. Such pesticides diffuse through from the center to the periphery of a telephone pole in about 4 to 6 months. The pesticides having vapor pressure equal to or less than about 1 diffuse more slowly, and those having vapor pressure of less than about 0.1 mm Hg do not effectively diffuse through the wood.
As stated above, the controlled release device may be positioned externally and/or internally in a variety of locations with respect to the wooden structure. If placed above ground level, the pesticide is carried laterally and longitudinally by molecular and gaseous diffusion and longitudinally by the capillary action of the wood structure and moisture. If placed at or about at ground level, a minimum effective level can also be maintained in the soil or surface surrounding the wood structure.
WO 99/42264 PCT/US98/03265 -22- Example 1 The following controlled release devices were made and tested to obtain their release rates (Table The devices were made as follows. All devices, except for those employing S-113 urethane, were injection molded into a thin sheet about 1/8 inch thick. The device employing S-113 urethane was case, a method typically used for thermoset polymers. All thermoplastics were formulated using sufficient amount of carbon black to carry pesticides. All thermoplastic polymers were formulated with 10 percent pesticide, 3 or 7 percent carbon black to absorb liquid pesticide and 87 to 83 percent by weight of polymer. Specifically, devices made from thermoplastic polymers and deltamethrin and lambdacyhalothrin contained 3 percent of carbon black.
The devices made from the remaining pesticides and thermoplastic polymers contained 7 percent of carbon black.
The devices made from S-113 urethane (a thermoset polymer) were made from a polymer mix containing 60% S- 113, 40% castor oil, and 5% of TIPA catalyst by weight.
The polymer mix comprised 90% of the total weight of the device. The pesticide, deltamethrin, comprised the remaining 10% of the device. No carbon black was used in this device. The polymer/pesticide mixture was cast into a 1/8 inch thick sheet and heated at about 60 0 C for about to 60 minutes to cure the cast sheet.
One inch squares were then cut from the thin sheets that were injection molded or cast, and the squares were tested for release rates as shown in Table i.
WO 99/42264 PTU9/36 PCTIUS98/03265 23 Table 1 Comnbinat ions Release Rates f or Pesticide/Polymer Pesticide Polymer Release Rate Deltamethrin S-113 urethane 25.2 /g/cm2/day Aromatic 80A 16.8 Ag/cm2/day pellethane 2102-80A 8.8 jig/cm2/day pellethane 2102-55D 8.0 Atg/cm2/day Alipmtic PS-49-100 7.2 Atg/cm2/day Cypermethrin polyurethane 3100 0.4 jiglcm2/day polyurethane 2200 0.7 /.g/cm2/day EVA 763 27.3 Acg/cm2/day Polyethylene MA 778-000 4.6 j.g/cm2/day Lanibdacyhalothrin polyurethane 3100 0.7 ALg/cm2/day polyurethane 2200 2.0 gig/cm2/day EVA 763 20.6 Ag/cm2/day Polyethylene MA 778-000 5.2 ILg/cm2/day Tefluthrin polyurethane 3100 6.4 A~g/cm2/day polyurethane 2200 25.0 Lg/cm2/day EVA 763 40.4 jAg/cm2/day Polyethylene MA 778-000 27.0 Ag/cm2/day Permethrin polyurethane 3100 1.4 gg/cm2/day 2200 1.3 A.g/cm2/day EVA 763 28.5 A~g/cm2/day Polyethylene MA 778-000 4.0 Ag/cm2/day Dichiorophen Polyethylene MA 778-000 6.2 jug/cm2/day Example 2 Controlled release devices in the form of sheets are made having 10 wtt pesticide, 10 wtt binding carrier and wtti high density polyethylene (Polyethylene MA 778-000).
WO 99/42264 PCT/US98/03265 -24- Longevity as a function of sheet thickness is shown in Table 2.
Table 2 Release Rate and Longevity as a Function of Sheet Thickness and Temperature Pesticide Sheet Release Longevity Longevity Thickness Rate (years) (years) (mil) (/g/cm 2 /day) 23 OC 35 °C 23 °C Permethrin 60 1.5 8.6 3.2 120 17 240 35 13 Tefluthrin 60 1.3 9.1 3.1 120 18.2 5.9 240 39 10.4 Diazinon 60 11.7 1.1 0.6 120 2.3 1.3 240 4.8 2.7 Biphenyl 60 3.5 2.5 2.1 120 5.1 4.4 240 11.2 9.1 Dichlorophen 60 6.2 1.6 1.4 120 3.3 240 6.8 6.4 Release rates are substantially decreased compared to those in Tables 1 and 2 by an additional layer, for example metallized Mylar or Saran that is added to prevent photodegradation.
Example 3 A device having an inner part surrounded by or encapsulated by an outer part is constructed having an WO 99/42264 PCT/US98/03265 overall mass of about 100g. The inner part contains wt% pesticide and 40 wt% binding carrier. The outer part is high density polyethylene of a thickness of 120 mil.
Release rates are shown in Table 3.
Table 3 Release Rate for Encapsulated Construction Two-Part Pesticide Release Rate Longevity Longevity (Ig/cm 2 /day) (years) (years) 23 oC 23 oC 35 °C Permethrin 16 68 38 Tefluthrin 31 35 18 Diazinon 28 39 24 Biphenyl 35 31 23 Dichlorophen 24 56 28 Example 4 A pellet is made having a mass of about 100g and a surface area of about 150 cm 2 The polymer is 70 wt% high density polyethylene, with 20 wt% pesticide and 10 wt% binding carrier. Release rates are shown in Table 4.
Comparing Table 4 to Table 3, it is evident that the encapsulated two-part construction provides longer life than the pellet.
WO 99/42264 PCT/US98/03265 -26- Table 4 Release Rates From Pellet Pesticide Release Rate Longevity Longevity (g/cm 2 /day) (years) (years) 23 oC 23 OC 35 °C Permethrin 12 30 14 Tefluthrin 11 33 16 Diazinon 45 8.1 5.1 Biphenyl 16 22 11 Dichlorophen 11 33 16 EXAMPLE An experiment was conducted to demonstrate the effect of a binding carrier on release rate. The bioactive chemicals were tefluthrin and lambdacyhalothrin in an amount of 5 wt%, the binding carrier was carbon black in amounts of 0 wt% and 10 wt%, with the balance high density polyethylene (MA 778-000). Release rates were measured at 6 weeks after fabrication wherein samples were wiped weekly to remove surface accumulation of released bioactive chemical.
Results are shown in Table TABLE 5 Release Rates for 0 wt% and 10 wt% Carbon Black Bioactive Chemical Carbon Black Release Rate (Ag/cm 2 /day) tefluthrin 0 3.13 tefluthrin 10 0.71 lambdacyhalothrin 0 1.78 0.81 20 0.61 WO 99/42264 PCT/US98/03265 -27 Closure It should be apparent that a wide range of changes and modifications can be made to the embodiments described above. It is, therefore, intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that it is the following claims, including all equivalents, which are intended to define this invention.
Claims (54)
1. A bound friable mixture for deterring, repelling or killing pests, including: at least one bioactive chemical; bound with a binding carrier.
2. The bound friable mixture as recited in claim 1, wherein the binding carrier is selected from the group consisting of carbon black, activated carbon, alumina, hydroxyapatite, silicoalumina and combinations thereof.
3. The bound friable mixture as recited in claim 1, further including a pre- polymer.
4. The bound friable mixture as recited in claim 3, wherein the pre-polymer is polyethylene.
5. The bound friable mixture as recited in claim 1, wherein the bioactive chemical is in a liquid form during forming said friable mixture.
6. A controlled release device for deterring, repelling or killing pests including the bound friable mixture of claim 1 dispersed within a continuous polymeric matrix.
7. The controlled release device as recited in claim 6, wherein said bioactive chemical comprises a pesticide selected from the group consisting of pyrethroid, isofenphos, fenvalerate, water soluble bioactive chemicals, tefluthrin, permethrin, fenoxycarb, chlorpyrifos, lambdacyhalothrin, resmethrin, deltamethrin, cypermethrin, cyphenothrin, cyfluthrin, and combinations thereof.
8. The controlled release device as recited in claim 6, wherein said bioactive chemical includes at least one fungicide.
9. The controlled release device as recited in claim 8, wherein said fungicide is selected from the group consisting of tri-chloronitromethane, a mixture of methylisothiocyanate and 1-3 dichloropropane, sodium N-methyl dithiocarbomate, 2,3,5,6-tetracholoro-1,9-benzoquinone, calcium cyanamide, biphenyl, copper naphthenate, dichlorphen, fentin hydroxide and combinations thereof.
The controlled release device as recited in claim 6, wherein said binding carrier is carbon black.
11. The controlled release device as recited in claim 6, wherein said polymer of said polymeric matrix is hydrophobic.
12. The controlled release device as recited in claim 6, wherein the polymer of said polymeric matrix is selected from the group consisting of low density polyethylene, high density polyethylene, vinyl acetate, urethane, polyester, silicone, neoprene, isoprene and combinations thereof.
13. The controlled release device as recited in claim 12, wherein the particles of said bound friable mixture are enveloped within the polymeric matrix.
14. The controlled release device as recited in claim 11, wherein said polymeric matrix is in the form of a rod, pellet, strip or sheet.
15. The controlled release device as recited in claim 6, wherein the polymeric matrix is in the form of a sheet.
16. The controlled release device as recited in claim 15, wherein said controlled release device further includes a second sheet for retarding or preventing photodegradation of said bioactive chemical.
17. The controlled release device as recited in claim 16, further including a third sheet containing metallized Mylar, saran, or combinations thereof.
18. The controlled release device as recited in claim 17, wherein said bioactive material comprises at least one pesticide selected from the group consisting of pyrethroid, isofenphos, fenvalerate, water soluble bioactive chemicals, tefluthrin, permethrin, fenoxycarb, chlorphyrifos, lambdacyhalothrin, resmethrin, deltamethrin, cypermethrin, cypermethrin, cyphenothrin, cyfluthrin, and combinations thereof.
19. The controlled release device as recited in claim 17, wherein said bioactive chemical is lambdacyhalothrin.
The controlled release device as recited in claim 19, wherein the polymeric matrix includes low density polyethylene.
21. The controlled release device as recited in claim 6, wherein said bioactive chemical includes at least one pesticide having a vapor pressure greater than about 0.1 mm Hg at 250C.
22. The controlled release device as recited in claim 6, wherein said polymer *.of said polymeric matrix is in an amount from about 50 to about 90 parts by Sweight of said matrix and said bioactive chemical releases from said matrix at a rate from about 0.4 gg/cm 2 day to about 40 jg/cm 2 day.
23. The controlled release device as recited in claim 14, wherein the polymer is in an amount from about 50 to about 90 parts by weight of the matrix, the 31 pesticide is in an amount from about 5 to about 30 parts by weight of the matrix and the carrier is in an amount from about 10 to about 20 parts by weight of the matrix.
24. A method of making a controlled release device useful for deterring, repelling, or killing pests, said method having the following steps: forming a friable mixture including a binding carrier and at least one bioactive chemical so as to bind said bioactive chemical to said carrier; and incorporating said bound particles of said carrier and said bioactive chemical into a polymer to form a polymeric matrix containing said bound particles.
The method of claim 24, wherein the step of incorporating includes forming a melt of the polymer and the bound particles of said friable mixture.
26. The method of claim 25, wherein the friable mixture includes the carrier, the bioactive chemical and a prepolymer.
27. The method as recited in claim 24, wherein the bioactive chemical is in a liquid form.
28. The method as recited in claim 27, wherein the bioactive chemical is a pesticide selected from the group consisting of pyrethroid, isofenphos, fenvalerate, water soluble bioactive chemicals, tefluthrin, permethrin, fenoxycarb, chlorpyrifos, lambdacyhalothrin, resmethrin, deltamethrin, cypermethrin, cyphenothrin, cyfluthrin, and combinations thereof.
29. The method as recited in claim 24, wherein the bioactive chemical includes lambdacyhalothrin.
The method as recited in claim 25, wherein the bioactive chemical is a fungicide selected from the group consisting of tri-chloronitromethane, a mixture of methylisothiocyanate and 1-3 dichloropropane, sodium N-methyl dithiocarbomate, 2,3,5,6-tetracholoro-l ,9-benzoquinone, calcium cyanamide, biphenyl, copper naphthenate, dichlorphen, fentin hydroxide, and combinations thereof.
31. The method as recited in claim 25, wherein the bioactive chemical includes a fungicide selected from the group consisting of tri-chloronitromethane, a mixture of methylisothiocyanate and 1-3 dichloropropane, sodium N-methyl dithiocarbomate, 2,3,5,6-tetracholoro-1,9-benzoquinone, calcium cyanamide, biphenyl, copper naphthenate, dichlorphen, fentin hydroxide, and combinations thereof and further includes an insecticide selected from the group consisting of Spyrethroid, isofenphos, fenvalerate, water soluble bioactive chemicals, and combinations thereof.
32. The method as recited in claim 28, wherein the pesticide is in an amount from about 5 to about 30 parts by weight of the polymeric matrix, the polymer is in an amount from about 50 to about 90 parts by weight of the polymeric matrix and the binding carrier is in an amount from about 10 to about 20 parts by weight of the polymeric matrix.
33. The method as recited in claim 27, wherein said polymer is a hydrophobic polymer.
34. The method as recited in claim 27, wherein said polymer is selected from the group consisting of low density polyethylene, high density polyethylene, vinyl acetate, urethane, polyester, silicone, neoprene, isoprene and combinations thereof.
The method as recited in claim 27, further including the step of forming said matrix into a rod, pellet, strip or sheet.
36. The method as recited in claim 27, wherein said bioactive chemical is a low vapor pressure pesticide, wherein said low vapor pressure pesticide is combined with a high density pre-polymer.
37. The method as recited in claim 27, wherein said pre-polymer is selected from the group consisting of high density polyethylene.
38. The method as recited in claim 27, wherein said bioactive chemical is a water soluble fingicide.
39. The method as recited in claim 26, wherein said pre-polymer is selected from the group consisting of urethane, polyester, low density polyethylene, and combinations thereof.
The method as recited in claim 26, wherein said pre-polymer is a low density polyethylene.
41. The method as recited in claim 27, further including the step of drying said binding carrier prior to mixing with said bioactive chemical.
42. A method of preventing or retarding decay and deterioration of a wooden object from wood attacking pests, including the steps of: S making the controlled release device as recited in claim 24 with a release rate of at least about 0.4 gg/cm 2 /day; a creating a cavity in the wooden object; inserting the controlled release device into the cavity and closing the cavity; and permitting at least one bioactive chemical to vaporize from a surface of said controlled release device and to diffuse into the molecular wood structure of the wooden object thereby creating an exclusion zone within the wooden object having a concentration of the bioactive chemical above a minimum effective concentration preventing pest invasion into said exclusion zone.
43. A method of preventing the decay and deterioration of wooden objects in contact with soil caused by the invasion of pests including the steps of: making a controlled release device as recited in claim 24; placing the controlled release device proximate the wooden object, the concentration of the bioactive chemical being sufficient to provide a predetermined release rate through said polymer and sufficient to provide a minimal effective level to prevent pest intrusion for a predetermined period of time.
44. The method as recited in claim 43, wherein the controlled release device releases bioactive chemical at an initially high rate and a lower, steady state rate thereafter.
The method as recited in claim 43, wherein the minimal effective level is maintained throughout the whole wooden structure.
46. The method as recited in claim 43, wherein the minimal effective level is Smaintained in a zone of the wooden structure.
47. The method as recited in claim 43, wherein the polymer is selected from the group consisting of thermoset polymers, thermoplastic polymers, elastomeric polymers, and copolymers thereof.
48. The method as recited in claim 43, wherein the controlled release device is placed within said wooden object.
49. The method as recited in claim 43, wherein the controlled release device is placed on an exterior surface of said wooden object.
The method as recited in claim 43, wherein the controlled release device is placed in physical contact with said wooden object.
51. The method as recited in claim 43, wherein said bioactive chemical includes a fungicide selected from the group consisting of tri-chloronitromethane, a mixture of methylisothiocynate and 1-3 dichloropropane, sodium N-methyl dithiocarbomate, 2,3,5,6-tetracholoro-1 ,9-benzoquinone, calcium cyanamide, biphenyl, copper naphthenate, dichlorphen, fentin hydroxide and combinations thereof.
52. The method as recited in claim 51, further including an insecticide selected from the group consisting of pyrethroid, isofenphos, fenvalerate, water soluble bioactive chemicals, tefluthrin, permethrin, fenoxycarb, chlorphyrifos, lambdacyhalothrin, resmethrin, deltamethrin, cypermethrin, cyphenothrin, cyfluthrin, and combinations thereof.
53. A multi-layer controlled release device for deterring, repelling or killing pests which approach or come in contact with said device, said device including a polymeric sheet including: a pesticide; a carrier, the pesticide being bound to the carrier to form a carrier bound pesticide so as to modify a release rate of the pesticide from the controlled release device; and a thermoplastic, hydrophobic polymer enveloping said carrier. S*
54. The multilayer device as recited in claim 53, wherein the pesticide is selected from the group consisting of pyrethroid, isofenphos, fenvalerate, water soluble bioactive chemcials, tefluthrin, permethrin, fenoxycarb, chlorpyrifos, lambdacyhalothrin, resmethrin, deltamethrin, cypermethrin, cyphenothrin, cyfluthrin, and combinations thereof; the carrier is selected from the group consisting of carbon black, activated carbon, alumina, hydroxyapatite, silicoalumina and combinations thereof; and the thermoplastic, hydrophobic polymer is selected from the group consisting of low density polyethylene, high density polyethylene, vinyl acetate, urethane, polyester, silicone, neoprene, isprene and combinations thereof. The multilayer device as recited in claim 54, wherein the controlled release device includes: at least one additional sheet for retarding or preventing photodegradation of said pesticide; and at least one additional sheet containing metallized Mylar, saran, or combinations thereof. DATED this 30 th day of October 2000 BATTELLE MEMORIAL INSTITUTE *SOO. WATERMARK PATENT AND TRADE MARK ATTORNEYS 290 BURWOOD ROAD HAWTHORN VICTORIA 3122 aa AUSTRALIA .4 SKP:VRH P18238AU00.DOC a...i S
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
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PCT/US1998/003265 WO1999042264A1 (en) | 1998-02-20 | 1998-02-20 | Controlled release device for the preservation of wooden structure proximate soil |
Publications (3)
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AU6331698A AU6331698A (en) | 1999-09-06 |
AU755802B2 true AU755802B2 (en) | 2002-12-19 |
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Family Applications (1)
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AU63316/98A Ceased AU755802C (en) | 1998-02-20 | 1998-02-20 | Controlled release device for the preservation of wooden structure proximate soil |
Country Status (12)
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EP (1) | EP1056575A1 (en) |
JP (1) | JP2002503710A (en) |
KR (1) | KR20010041174A (en) |
CN (1) | CN1291129A (en) |
AU (1) | AU755802C (en) |
BR (1) | BR9815779A (en) |
CA (1) | CA2320950A1 (en) |
EA (1) | EA004158B1 (en) |
IL (1) | IL137962A0 (en) |
NZ (1) | NZ507006A (en) |
TR (1) | TR200002435T2 (en) |
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ES2820879R1 (en) | 2016-02-19 | 2021-06-21 | Hazel Tech Inc | Compositions for the controlled release of active ingredients and methods of their preparation |
CN107696210A (en) * | 2017-11-14 | 2018-02-16 | 西南林业大学 | A kind of protein mineral matter composite wood preservative and preparation method thereof |
CN114275161B (en) * | 2020-09-28 | 2023-10-27 | 扬州大学 | Intelligent control system for preventing pesticide spraying and drifting of plant protection unmanned aerial vehicle and control method thereof |
Citations (2)
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JPS58113102A (en) * | 1981-12-26 | 1983-07-05 | Earth Chem Corp Ltd | Method for slowing release of drug |
US4842860A (en) * | 1986-07-01 | 1989-06-27 | Ube Industries, Ltd. | Process for producing controlled release preparation |
Family Cites Families (5)
Publication number | Priority date | Publication date | Assignee | Title |
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US3740419A (en) * | 1971-01-20 | 1973-06-19 | Mobil Oil Corp | Pesticidal compositions |
NL8400339A (en) * | 1984-02-03 | 1985-09-02 | Tno | COMPOSITION AND METHOD FOR SUSTAINING WOOD. |
JPS60202801A (en) * | 1984-03-28 | 1985-10-14 | Nippon Tokushu Noyaku Seizo Kk | Granular substance of sustained release type |
US5083408A (en) * | 1990-01-30 | 1992-01-28 | Window Care B.V. | Wood preservation method and preservation means for use in said method |
US5525147A (en) * | 1994-02-22 | 1996-06-11 | Perma-Chink Systems, Inc. | Preventative treatment of wood |
-
1998
- 1998-02-20 WO PCT/US1998/003265 patent/WO1999042264A1/en not_active Application Discontinuation
- 1998-02-20 NZ NZ507006A patent/NZ507006A/en unknown
- 1998-02-20 EA EA200000854A patent/EA004158B1/en not_active IP Right Cessation
- 1998-02-20 JP JP2000532251A patent/JP2002503710A/en active Pending
- 1998-02-20 IL IL13796298A patent/IL137962A0/en unknown
- 1998-02-20 TR TR2000/02435T patent/TR200002435T2/en unknown
- 1998-02-20 EP EP98907535A patent/EP1056575A1/en not_active Withdrawn
- 1998-02-20 BR BR9815779-5A patent/BR9815779A/en not_active IP Right Cessation
- 1998-02-20 CN CN98813950A patent/CN1291129A/en active Pending
- 1998-02-20 AU AU63316/98A patent/AU755802C/en not_active Ceased
- 1998-02-20 KR KR1020007009225A patent/KR20010041174A/en not_active Application Discontinuation
- 1998-02-20 CA CA002320950A patent/CA2320950A1/en not_active Abandoned
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS58113102A (en) * | 1981-12-26 | 1983-07-05 | Earth Chem Corp Ltd | Method for slowing release of drug |
US4842860A (en) * | 1986-07-01 | 1989-06-27 | Ube Industries, Ltd. | Process for producing controlled release preparation |
Also Published As
Publication number | Publication date |
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WO1999042264A1 (en) | 1999-08-26 |
EA004158B1 (en) | 2004-02-26 |
JP2002503710A (en) | 2002-02-05 |
AU6331698A (en) | 1999-09-06 |
CA2320950A1 (en) | 1999-08-26 |
KR20010041174A (en) | 2001-05-15 |
AU755802C (en) | 2003-08-28 |
BR9815779A (en) | 2000-11-07 |
IL137962A0 (en) | 2001-10-31 |
EA200000854A1 (en) | 2001-04-23 |
NZ507006A (en) | 2003-05-30 |
EP1056575A1 (en) | 2000-12-06 |
TR200002435T2 (en) | 2001-01-22 |
CN1291129A (en) | 2001-04-11 |
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