US20080073849A1 - Asphalt-containing projectable targets - Google Patents

Asphalt-containing projectable targets Download PDF

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Publication number
US20080073849A1
US20080073849A1 US11/525,500 US52550006A US2008073849A1 US 20080073849 A1 US20080073849 A1 US 20080073849A1 US 52550006 A US52550006 A US 52550006A US 2008073849 A1 US2008073849 A1 US 2008073849A1
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Prior art keywords
binder
asphalt
projectable
range
wax
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US11/525,500
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Robert E. Quinn
David R. Jones
Jay W. Keating
Jason D. Guerra
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Owens Corning Intellectual Capital LLC
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Individual
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Priority to US11/525,500 priority Critical patent/US20080073849A1/en
Assigned to OWENS-CORNING FIBERGLAS TECHNOLOGY, INC. reassignment OWENS-CORNING FIBERGLAS TECHNOLOGY, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: QUINN, ROBERT E., GUERRA, JASON D., JONES IV, DAVID R., KEATING, JAY W.
Assigned to OWENS CORNING INTELLECTUAL CAPITAL, LLC reassignment OWENS CORNING INTELLECTUAL CAPITAL, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: OWENS-CORNING FIBERGLAS TECHNOLOGY, INC.
Publication of US20080073849A1 publication Critical patent/US20080073849A1/en
Abandoned legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41JTARGETS; TARGET RANGES; BULLET CATCHERS
    • F41J9/00Moving targets, i.e. moving when fired at
    • F41J9/16Clay-pigeon targets; Clay-disc targets
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41JTARGETS; TARGET RANGES; BULLET CATCHERS
    • F41J1/00Targets; Target stands; Target holders
    • F41J1/01Target discs characterised by their material, structure or surface, e.g. clay pigeon targets characterised by their material

Definitions

  • This invention relates in general to projectable shooting targets of the type commonly referred to as clay pigeons, and in particular to compositions for use in manufacturing the targets.
  • saucer-shaped targets are projected into the air by means of an ejection device past the location of the marksmen.
  • the marksman's intention is to hit the flying target by a shot from a shotgun causing it to disintegrate.
  • the targets are also manufactured to withstand transportation and handling, and to withstand the strain they are subjected to when projected.
  • the properties of the shooting targets have typically been achieved by using as starting material a mass consisting of pitch (coal tar or a petroleum pitch) and a filler material such as limestone powder or clay.
  • pitch coal tar or a petroleum pitch
  • filler material such as limestone powder or clay.
  • the pitch acts as a binder for the filler material.
  • This invention relates to a projectable target made from a composition
  • a composition comprising a filler material and an improved binder for the filler material.
  • the binder comprises a mixture of asphalt and an asphalt modifier selected from polymers, waxes, asphaltites, and combinations thereof.
  • the asphalt modifier is a combination of polymer and wax
  • the binder has a penetration within a range of from 0 dmm to about 5 dmm at 25° C., a softening point within a range of from about 80° C. to about 175° C., and a viscosity within a range of from about 1000 centipoise to about 25,000 centipoise at 163° C.
  • the composition is formed into the shape of the projectable target and hardened.
  • the projectable target is made from a composition comprising a filler material and a binder for the filler material.
  • the binder comprises a mixture of solvent extracted asphalt, hydrocarbon resin and wax.
  • the solvent extracted asphalt is oxidized to a softening point within a range of from about 140° C. to about 180° C., and the asphalt has a penetration of about 0 dmm at 25° C.
  • the hydrocarbon resin has a softening point within a range of from about 120° C. to about 175° C.
  • FIG. 1 is a perspective view of an example of a clay pigeon that can be made from a composition according to the invention.
  • the projectable targets of the invention are made from a composition comprising a filler material and a binder for the filler material as described below.
  • the composition can include any suitable filler material or combinations of different filler materials.
  • suitable filler material include clay, calcium carbonate (limestone), other ground rocks such as mica powder, asbestos powder or pumice powder, metal powders, in particular metal sulfates or sulfites, non-metallic sulfates or sulfites, metal oxides, talc, silicates such as sand, gypsum, fly ash, glass powder, magnesium carbonate, and titanium oxide.
  • the filler may be in any suitable form, such as powdered or granulated.
  • the filler material can be included in any suitable amount in the composition.
  • the composition includes from about 20 wt % to about 65 wt % filler material and from about 35 wt % to about 80 wt % binder.
  • the binder for use in the composition is a mixture of asphalt and an asphalt modifier selected from polymers, waxes, asphaltites, and combinations thereof.
  • the asphalt modifier is a combination of polymer and wax.
  • the asphalt modifier is wax or asphaltite.
  • the binder is substantially free of pitch.
  • the binder has physical properties that in combination with the filler allow the production of a projectable target having desirable properties.
  • these properties may include the hardness (penetration), softening point and viscosity of the binder.
  • the binder has physical properties including at least one of a penetration within a range of from 0 dmm to about 5 dmm at 25° C., a softening point within a range of from about 80° C. to about 175° C., and a viscosity within a range of from about 1,000 centipoise to about 25,000 centipoise at 163° C.
  • the penetration, viscosity and softening point of the binder are all within the defined ranges.
  • the penetration of the binder is within a range of from 0 dmm to about 3 dmm at 25° C., or more particularly from 0 dmm to about 1 dmm at 25° C.
  • the penetration can be measured by any suitable method, such as ASTM D-5.
  • the softening point of the binder is within a range of from about 90° C. to about 150° C., or more particularly from about 100° C. to about 120° C.
  • the softening point of the binder can be measured by any suitable method, such as the ring and ball method, ASTM D-36
  • the viscosity of the binder is within a range of from about 1,500 centipoise to about 10,000 centipoise at 163° C., or more particularly from about 2,000 centipoise to about 5,000 centipoise at 163° C.
  • the viscosity of the binder can be measured by any suitable method, such as ASTM D4402.
  • the asphalt can be a naturally occurring asphalt or a manufactured asphalt, for example, a petroleum-derived asphalt produced by a petroleum refining operation. Any type of asphalt can be used, such as a straight run asphalt, an oxidized asphalt, or an asphalt cement.
  • the asphalt is a relatively hard asphalt, e.g., an asphalt having a penetration of not greater than about 15 dmm at 25° C., not greater than about 5 dmm, not greater than about 2 dmm, or about 0 dmm depending on the particular embodiment.
  • the penetration can be measured by any suitable method, such as ASTM D-5.
  • a hardened asphalt can be obtained by oxidizing the asphalt and/or by the selection of the starting asphalt.
  • the oxidizing process comprises blowing air, oxygen or an oxygen-inert gas mixture through the asphalt at an elevated temperature for a time sufficient to increase the softening point and thereby harden the asphalt to the desired properties.
  • the oxidized asphalt has a softening point of at least about 100° C., at least about 120° C., at least about 140° C., or at least about 150° C. depending on the particular embodiment.
  • the softening point of the asphalt can be measured by any suitable method, such as the ring and ball method, ASTM D-36.
  • the asphalt is a solvent extracted asphalt.
  • Solvent extraction techniques are well-known in the art and typically employ the use of a C3-C5 alkane, usually propane. These techniques are variously referred to in the art as deasphalting or as producing a propane deasphalted asphalt (PDA), a propane washed asphalt (PWA), or a propane extracted asphalt (PEA). Typically such techniques involve treating normal crude oil and/or vacuum residue feedstock with such alkanes whereby a treated asphalt is obtained in which the percentages of asphaltenes and resins are increased. Any suitable solvent extracted asphalt can be used in the invention. Exemplary of the solvent extracted asphalts are PDA's sold by Alon USA Energy, Inc., Dallas, Tex., by Cenex Asphalt, Laurel, Mont., and by Murphy Refining, Meraux, La.
  • the asphalt modifier in the binder can include any suitable polymer, or a combination of different polymers.
  • suitable polymers or a combination of different polymers.
  • thermoplastic polymers known in the art may be suitable for use in the binder.
  • the polymer is a hydrocarbon resin.
  • the hydrocarbon resins are low molecular weight thermoplastic polymers synthesized via the thermal or catalytic polymerization of cracked petroleum distillates, coal-tar fractions, terpenes, or pure olefinic monomers.
  • the hydrocarbon resins include aliphatic, aromatic and alicyclic resins.
  • hydrocarbon resins include the LX® series of petroleum hydrocarbon resins sold by Neville Chemical Co., Pittsburgh, Pa. These hydrocarbon resins are mixed aromatic/alicyclic in content.
  • LX®-1035 has a softening point of about 170° C., an iodine number (Wijs) of about 170, a molecular weight (GPC) of about 605, and a viscosity (Gardner) at 25° C. of about 35 (70% in toluene).
  • hydrocarbon resins include the modified hydrocarbon resins sold by Neville Chemical Co. These are aromatic hydrocarbon resins.
  • AG-12-28 has a softening point of about 150° C., an iodine number (Wijs) of about 145, a molecular weight (GPC) of about 710, and a viscosity (Gardner) at 25° C. of about 52 (70% in toluene).
  • the polymer used in the binder has a relatively high softening point.
  • the softening point may be greater than about 100° C., greater than about 120° C., or within a range of from about 120° C. to about 180° C. depending on the particular embodiment.
  • the asphalt modifier in the binder can include any suitable wax, or a combination of different waxes.
  • suitable waxes include synthetic waxes, petroleum waxes such as microcrystalline waxes and paraffin waxes, and polyolefin waxes such as polyethylene waxes.
  • Fischer-Tropsch waxes are examples of suitable synthetic waxes.
  • the Fischer-Tropsch waxes are polymethylenes made by polymerizing carbon monoxide in the presence of hydrogen, using high pressure and unique catalysts.
  • Any suitable Fischer-Tropsch wax can be used, for example, a BARECO® PX-105 Polymer sold by Baker Petrolite Corp., Sugar Land, Tex. This wax has a softening point of about 105° C., a penetration of about 1 dmm (25° C., a viscosity of about 110 SUS@ 99° C., and a white color.
  • Petroleum waxes consist of mixtures of paraffinic, isoparaffinic and naphthenic hydrocarbons. The physical differences between various types of petroleum wax are due to the relative extent of the three types of hydrocarbons present and the molecular weight of the hydrocarbons. Microcrystalline waxes contain higher amounts of isoparaffinic hydrocarbons and naphthenic hydrocarbons than do paraffin waxes. Typical microcrystalline wax crystal structure is small and thin, making them more flexible than paraffin wax. Any suitable microcrystalline wax can be used, for example, any of the BARECO® microcrystalline waxes sold by Baker Petrolite Corp. Low melt brands of BARECO® Wax include BE SQUARE®, STARWAX®, VICTORY® AND ULTRAFLEX® Waxes.
  • waxes have softening points within a range of about 66° C. to about 93° C., a penetration ⁇ 6 dmm (25° C., 30-60% normal paraffins, and a dark brown to off white color.
  • a particular example is a BE SQUARE® 185, Amber Wax having a softening point of about 91° C. and a penetration of about 10 dmm@ 25° C.
  • the wax can have any suitable physical properties.
  • the wax has a softening point within a range of from about 65° C. to about 120° C. and a penetration within a range of from about 1 dmm to about 15 dmm@ 25° C.
  • the wax can be included in any suitable amount in the binder.
  • the binder includes asphalt and wax
  • the binder comprises from about 60 wt % to about 95 wt % asphalt and from about 5 wt % to about 40 wt % wax.
  • the binder includes asphalt, polymer and wax
  • the binder comprises from about 50 wt % to about 90 wt % asphalt, from about 5 wt % to about 30 wt % polymer and from about 5 wt % to about 20 wt % wax.
  • the asphalt modifier in the binder can include any suitable asphaltite, or a combination of different asphaltites.
  • the asphaltites are gilsonite, grahamite and glance pitch. These are naturally occurring hydrocarbon substances characterized by a high softening point (above 110° C.). They are mined much like other minerals and sold essentially in their native state. They are fully compatible with asphalt.
  • gilsonite is used as the asphalt modifier. Gilsonite is currently sold in the form of a dry bulk solid granular powder.
  • the asphaltite can be included in any suitable amount in the binder.
  • the binder comprises from about 60 wt % to about 95 wt % asphalt and from about 5 wt % to about 40 wt % asphaltite.
  • composition for making the projectable targets may also optionally include one or more additives.
  • additives may include sulfur, surfactants, release agents, set-controlling agents, antioxidants, pigments, lubricants and/or fire retardants.
  • the projectable target may be useful for trap or skeet shooting, for competition or sport shooting, or for any other type of activity using a projectable target.
  • the projectable target can have any shape and size suitable for its intended use.
  • clay pigeons include various shapes and sizes, including standard clay pigeons, a slightly different set of dimensions for “Olympic” targets, both of which are generally saucer-shaped, and a “running rabbit” target which has much different dimensions and shape (essentially a flat-disc).
  • the projectable target is usually shaped so that its trajectory is stable when it is propelled, and is manufactured to a specified size and weight.
  • FIG. 1 shows an example of a clay pigeon 10 that can be made from a composition according to the invention. It is recognized that the clay pigeon and other types of projectable targets can have other suitable shapes and sizes, and that the invention is not limited to any particular form.
  • the outside of the targets may optionally be coated with any suitable coating.
  • the coating is a colored coating such as a paint, finish or stain. Any suitable type of paint can be used, such as an enamel or lacquer paint.
  • the projectable target is strong enough to avoid breaking apart when it is launched into the air and also during normal transportation and handling.
  • the target has sufficient brittleness enabling it to disintegrate when hit by shotgun pellets.
  • the brittleness can be measured by any suitable method.
  • the target may have sufficient brittleness and dimensions such that when shot at with bird shot from a twelve gauge shotgun from a distance of 25 meters by shooters skilled enough to hit about 98% of the targets from that distance, less than about 10% of targets hit by at least one pellet will remain unbroken.
  • the projectable target can be manufactured by any suitable method.
  • Some examples of manufacturing methods that may be used, depending on the particular composition, include molding, casting or pressing.
  • Clay pigeons are often formed by mixing together the materials of the composition and then molding the mixture into the desired shape.
  • the materials may be mixed by using machines such as mixers, mixing rolls or kneaders.
  • the materials may be mixed under heated conditions to facilitate the mixing, for example by using a mixer having a heating device.
  • the mixed materials may then be molded using any suitable molding method, such as injection molding or compression molding.
  • the mixed materials may be powdered, granulated or pelletized before it is fed into the molding machine.
  • the heating and blending step may be accomplished in the molding process by using an injection molding machine having a premixing-preplasticizing device such as an injection molding machine with a blend-feeder.
  • a premixing-preplasticizing device such as an injection molding machine with a blend-feeder.
  • the outside of the targets may be coated with any suitable coloring material.
  • a projectable target is made by molding a composition including a filler material and a binder.
  • the binder is a mixture of asphalt, hydrocarbon resin and wax.
  • the asphalt is a solvent extracted asphalt which is oxidized to a softening point within a range of from about 140° C. to about 180° C., and more particularly from about 140° C. to about 160° C.
  • the asphalt has a penetration of about 0 dmm at 25° C.
  • the hydrocarbon resin has a softening point within a range of from about 120° C. to about 175° C.
  • the hydrocarbon resin is included in an amount within a range of from about 5% to about 40% by weight of the binder, more particularly from about 10% to about 30%.
  • the wax is included in an amount within a range of from about 1% to about 10% by weight of the binder, more particularly about 5%.
  • a projectable target is made by molding a composition containing 45 wt % bentonite clay and 55 wt % binder.
  • the binder contains 75 wt % PDA asphalt (from Alon) oxidized to a softening point of 149° C., 20 wt % hydrocarbon resin (LX-1035® from Neville), and 5 wt % Fischer-Tropsch wax (BARECO® PX-105 from Baker Petrolite).
  • Another projectable target is made by molding compositions containing 45 wt % bentonite clay and 55 wt % binder.
  • the binder contains 90 wt % PDA asphalt and 10 wt % Fischer-Tropsch wax.
  • Another projectable targets is made by molding compositions containing 45 wt % bentonite clay and 55 wt % binder.
  • the binder contains 90 wt % PDA asphalt and 10 wt % gilsonite.

Abstract

A projectable target is made from a composition including a filler material and a binder for the filler material. The binder includes a mixture of asphalt and an asphalt modifier selected from polymers, waxes, asphaltites, and combinations thereof. In one embodiment, the asphalt modifier is a combination of polymer and wax, and the binder has a penetration from 0 dmm to 5 dmm at 25° C., a softening point from 80° C. to 175° C., and a viscosity from 1000 centipoise to 25,000 centipoise at 163° C. The composition is formed into the shape of the projectable target and hardened.

Description

    BACKGROUND OF THE INVENTION
  • This invention relates in general to projectable shooting targets of the type commonly referred to as clay pigeons, and in particular to compositions for use in manufacturing the targets.
  • In trap and skeet shooting, saucer-shaped targets are projected into the air by means of an ejection device past the location of the marksmen. The marksman's intention is to hit the flying target by a shot from a shotgun causing it to disintegrate. In addition to being able to disintegrate when hit by shotgun pellets, the targets are also manufactured to withstand transportation and handling, and to withstand the strain they are subjected to when projected.
  • The properties of the shooting targets have typically been achieved by using as starting material a mass consisting of pitch (coal tar or a petroleum pitch) and a filler material such as limestone powder or clay. In this mixture, the pitch acts as a binder for the filler material.
  • Certain pitches have undesirable properties and are unsuitable for clay pigeons. Currently available supplies of acceptable pitch are becoming scarce and inadequate to meet demand. Prior efforts to find alternate materials have produced unsatisfactory results, such as the pigeons being too brittle, not acceptably frangible, too expensive, or otherwise failing to meet consumer requirements.
  • Accordingly, there is a need for improved compositions for making projectable targets such as clay pigeons and alternative sources for binders, which meet all functional requirements.
  • SUMMARY OF THE INVENTION
  • This invention relates to a projectable target made from a composition comprising a filler material and an improved binder for the filler material. The binder comprises a mixture of asphalt and an asphalt modifier selected from polymers, waxes, asphaltites, and combinations thereof. In one embodiment, the asphalt modifier is a combination of polymer and wax, and the binder has a penetration within a range of from 0 dmm to about 5 dmm at 25° C., a softening point within a range of from about 80° C. to about 175° C., and a viscosity within a range of from about 1000 centipoise to about 25,000 centipoise at 163° C. The composition is formed into the shape of the projectable target and hardened.
  • In a particular example, the projectable target is made from a composition comprising a filler material and a binder for the filler material. The binder comprises a mixture of solvent extracted asphalt, hydrocarbon resin and wax. The solvent extracted asphalt is oxidized to a softening point within a range of from about 140° C. to about 180° C., and the asphalt has a penetration of about 0 dmm at 25° C. The hydrocarbon resin has a softening point within a range of from about 120° C. to about 175° C.
  • Various aspects of the invention will become apparent to those skilled in the art from the following detailed description of the preferred embodiments along with the accompanying drawing.
  • BRIEF DESCRIPTION OF THE DRAWING
  • FIG. 1 is a perspective view of an example of a clay pigeon that can be made from a composition according to the invention.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • The projectable targets of the invention are made from a composition comprising a filler material and a binder for the filler material as described below.
  • Filler Material
  • The composition can include any suitable filler material or combinations of different filler materials. Some examples include clay, calcium carbonate (limestone), other ground rocks such as mica powder, asbestos powder or pumice powder, metal powders, in particular metal sulfates or sulfites, non-metallic sulfates or sulfites, metal oxides, talc, silicates such as sand, gypsum, fly ash, glass powder, magnesium carbonate, and titanium oxide. The filler may be in any suitable form, such as powdered or granulated.
  • The filler material can be included in any suitable amount in the composition. In one embodiment, the composition includes from about 20 wt % to about 65 wt % filler material and from about 35 wt % to about 80 wt % binder.
  • Binder
  • The binder for use in the composition is a mixture of asphalt and an asphalt modifier selected from polymers, waxes, asphaltites, and combinations thereof. In one embodiment, the asphalt modifier is a combination of polymer and wax. In another embodiment, the asphalt modifier is wax or asphaltite. In a further embodiment, the binder is substantially free of pitch.
  • The binder has physical properties that in combination with the filler allow the production of a projectable target having desirable properties. For example, these properties may include the hardness (penetration), softening point and viscosity of the binder. In one embodiment, the binder has physical properties including at least one of a penetration within a range of from 0 dmm to about 5 dmm at 25° C., a softening point within a range of from about 80° C. to about 175° C., and a viscosity within a range of from about 1,000 centipoise to about 25,000 centipoise at 163° C. In another embodiment, the penetration, viscosity and softening point of the binder are all within the defined ranges.
  • In a particular example, the penetration of the binder is within a range of from 0 dmm to about 3 dmm at 25° C., or more particularly from 0 dmm to about 1 dmm at 25° C. The penetration can be measured by any suitable method, such as ASTM D-5.
  • In another example, the softening point of the binder is within a range of from about 90° C. to about 150° C., or more particularly from about 100° C. to about 120° C. The softening point of the binder can be measured by any suitable method, such as the ring and ball method, ASTM D-36
  • In a further example, the viscosity of the binder is within a range of from about 1,500 centipoise to about 10,000 centipoise at 163° C., or more particularly from about 2,000 centipoise to about 5,000 centipoise at 163° C. The viscosity of the binder can be measured by any suitable method, such as ASTM D4402.
  • Asphalt
  • The asphalt can be a naturally occurring asphalt or a manufactured asphalt, for example, a petroleum-derived asphalt produced by a petroleum refining operation. Any type of asphalt can be used, such as a straight run asphalt, an oxidized asphalt, or an asphalt cement.
  • In some embodiments, the asphalt is a relatively hard asphalt, e.g., an asphalt having a penetration of not greater than about 15 dmm at 25° C., not greater than about 5 dmm, not greater than about 2 dmm, or about 0 dmm depending on the particular embodiment. The penetration can be measured by any suitable method, such as ASTM D-5. A hardened asphalt can be obtained by oxidizing the asphalt and/or by the selection of the starting asphalt.
  • The oxidizing process comprises blowing air, oxygen or an oxygen-inert gas mixture through the asphalt at an elevated temperature for a time sufficient to increase the softening point and thereby harden the asphalt to the desired properties. In some embodiments, the oxidized asphalt has a softening point of at least about 100° C., at least about 120° C., at least about 140° C., or at least about 150° C. depending on the particular embodiment. The softening point of the asphalt can be measured by any suitable method, such as the ring and ball method, ASTM D-36.
  • In some embodiments, the asphalt is a solvent extracted asphalt. Solvent extraction techniques are well-known in the art and typically employ the use of a C3-C5 alkane, usually propane. These techniques are variously referred to in the art as deasphalting or as producing a propane deasphalted asphalt (PDA), a propane washed asphalt (PWA), or a propane extracted asphalt (PEA). Typically such techniques involve treating normal crude oil and/or vacuum residue feedstock with such alkanes whereby a treated asphalt is obtained in which the percentages of asphaltenes and resins are increased. Any suitable solvent extracted asphalt can be used in the invention. Exemplary of the solvent extracted asphalts are PDA's sold by Alon USA Energy, Inc., Dallas, Tex., by Cenex Asphalt, Laurel, Mont., and by Murphy Refining, Meraux, La.
  • Polymer
  • The asphalt modifier in the binder can include any suitable polymer, or a combination of different polymers. For example, a wide variety of different thermoplastic polymers known in the art may be suitable for use in the binder.
  • In some embodiments, the polymer is a hydrocarbon resin. The hydrocarbon resins are low molecular weight thermoplastic polymers synthesized via the thermal or catalytic polymerization of cracked petroleum distillates, coal-tar fractions, terpenes, or pure olefinic monomers. The hydrocarbon resins include aliphatic, aromatic and alicyclic resins.
  • Some examples of hydrocarbon resins include the LX® series of petroleum hydrocarbon resins sold by Neville Chemical Co., Pittsburgh, Pa. These hydrocarbon resins are mixed aromatic/alicyclic in content. For example, LX®-1035 has a softening point of about 170° C., an iodine number (Wijs) of about 170, a molecular weight (GPC) of about 605, and a viscosity (Gardner) at 25° C. of about 35 (70% in toluene).
  • Other examples of hydrocarbon resins include the modified hydrocarbon resins sold by Neville Chemical Co. These are aromatic hydrocarbon resins. For example, AG-12-28 has a softening point of about 150° C., an iodine number (Wijs) of about 145, a molecular weight (GPC) of about 710, and a viscosity (Gardner) at 25° C. of about 52 (70% in toluene).
  • In some embodiments, the polymer used in the binder has a relatively high softening point. For example, the softening point may be greater than about 100° C., greater than about 120° C., or within a range of from about 120° C. to about 180° C. depending on the particular embodiment.
  • Wax
  • The asphalt modifier in the binder can include any suitable wax, or a combination of different waxes. Some examples include synthetic waxes, petroleum waxes such as microcrystalline waxes and paraffin waxes, and polyolefin waxes such as polyethylene waxes.
  • For example, Fischer-Tropsch waxes are examples of suitable synthetic waxes. The Fischer-Tropsch waxes are polymethylenes made by polymerizing carbon monoxide in the presence of hydrogen, using high pressure and unique catalysts. Any suitable Fischer-Tropsch wax can be used, for example, a BARECO® PX-105 Polymer sold by Baker Petrolite Corp., Sugar Land, Tex. This wax has a softening point of about 105° C., a penetration of about 1 dmm (25° C., a viscosity of about 110 SUS@ 99° C., and a white color.
  • Petroleum waxes consist of mixtures of paraffinic, isoparaffinic and naphthenic hydrocarbons. The physical differences between various types of petroleum wax are due to the relative extent of the three types of hydrocarbons present and the molecular weight of the hydrocarbons. Microcrystalline waxes contain higher amounts of isoparaffinic hydrocarbons and naphthenic hydrocarbons than do paraffin waxes. Typical microcrystalline wax crystal structure is small and thin, making them more flexible than paraffin wax. Any suitable microcrystalline wax can be used, for example, any of the BARECO® microcrystalline waxes sold by Baker Petrolite Corp. Low melt brands of BARECO® Wax include BE SQUARE®, STARWAX®, VICTORY® AND ULTRAFLEX® Waxes. These waxes have softening points within a range of about 66° C. to about 93° C., a penetration≧6 dmm (25° C., 30-60% normal paraffins, and a dark brown to off white color. A particular example is a BE SQUARE® 185, Amber Wax having a softening point of about 91° C. and a penetration of about 10 dmm@ 25° C.
  • The wax can have any suitable physical properties. In some embodiments the wax has a softening point within a range of from about 65° C. to about 120° C. and a penetration within a range of from about 1 dmm to about 15 dmm@ 25° C.
  • The wax can be included in any suitable amount in the binder. When the binder includes asphalt and wax, in one embodiment the binder comprises from about 60 wt % to about 95 wt % asphalt and from about 5 wt % to about 40 wt % wax. When the binder includes asphalt, polymer and wax, in one embodiment the binder comprises from about 50 wt % to about 90 wt % asphalt, from about 5 wt % to about 30 wt % polymer and from about 5 wt % to about 20 wt % wax.
  • Asphaltite
  • The asphalt modifier in the binder can include any suitable asphaltite, or a combination of different asphaltites. The asphaltites are gilsonite, grahamite and glance pitch. These are naturally occurring hydrocarbon substances characterized by a high softening point (above 110° C.). They are mined much like other minerals and sold essentially in their native state. They are fully compatible with asphalt. In some embodiments of the invention, gilsonite is used as the asphalt modifier. Gilsonite is currently sold in the form of a dry bulk solid granular powder.
  • The asphaltite can be included in any suitable amount in the binder. In one embodiment, the binder comprises from about 60 wt % to about 95 wt % asphalt and from about 5 wt % to about 40 wt % asphaltite.
  • Other Additives
  • In addition to the above-described materials, the composition for making the projectable targets may also optionally include one or more additives. For example, such additives may include sulfur, surfactants, release agents, set-controlling agents, antioxidants, pigments, lubricants and/or fire retardants.
  • Projectable Target
  • The projectable target may be useful for trap or skeet shooting, for competition or sport shooting, or for any other type of activity using a projectable target.
  • The projectable target can have any shape and size suitable for its intended use. As known in the art, clay pigeons include various shapes and sizes, including standard clay pigeons, a slightly different set of dimensions for “Olympic” targets, both of which are generally saucer-shaped, and a “running rabbit” target which has much different dimensions and shape (essentially a flat-disc). The projectable target is usually shaped so that its trajectory is stable when it is propelled, and is manufactured to a specified size and weight.
  • FIG. 1 shows an example of a clay pigeon 10 that can be made from a composition according to the invention. It is recognized that the clay pigeon and other types of projectable targets can have other suitable shapes and sizes, and that the invention is not limited to any particular form.
  • After the projectable target has been formed and hardened, the outside of the targets may optionally be coated with any suitable coating. In some embodiments, the coating is a colored coating such as a paint, finish or stain. Any suitable type of paint can be used, such as an enamel or lacquer paint.
  • Properties of the Projectable Target
  • The projectable target is strong enough to avoid breaking apart when it is launched into the air and also during normal transportation and handling. At the same time, the target has sufficient brittleness enabling it to disintegrate when hit by shotgun pellets. The brittleness can be measured by any suitable method. For example, the target may have sufficient brittleness and dimensions such that when shot at with bird shot from a twelve gauge shotgun from a distance of 25 meters by shooters skilled enough to hit about 98% of the targets from that distance, less than about 10% of targets hit by at least one pellet will remain unbroken.
  • Method of Manufacture
  • The projectable target can be manufactured by any suitable method. Some examples of manufacturing methods that may be used, depending on the particular composition, include molding, casting or pressing. Clay pigeons are often formed by mixing together the materials of the composition and then molding the mixture into the desired shape. For example, the materials may be mixed by using machines such as mixers, mixing rolls or kneaders. The materials may be mixed under heated conditions to facilitate the mixing, for example by using a mixer having a heating device. The mixed materials may then be molded using any suitable molding method, such as injection molding or compression molding. The mixed materials may be powdered, granulated or pelletized before it is fed into the molding machine. Further, the heating and blending step may be accomplished in the molding process by using an injection molding machine having a premixing-preplasticizing device such as an injection molding machine with a blend-feeder. After the projectable targets have been formed and hardened, the outside of the targets may be coated with any suitable coloring material.
  • EXAMPLES
  • A projectable target is made by molding a composition including a filler material and a binder. The binder is a mixture of asphalt, hydrocarbon resin and wax. The asphalt is a solvent extracted asphalt which is oxidized to a softening point within a range of from about 140° C. to about 180° C., and more particularly from about 140° C. to about 160° C. The asphalt has a penetration of about 0 dmm at 25° C. The hydrocarbon resin has a softening point within a range of from about 120° C. to about 175° C. The hydrocarbon resin is included in an amount within a range of from about 5% to about 40% by weight of the binder, more particularly from about 10% to about 30%. The wax is included in an amount within a range of from about 1% to about 10% by weight of the binder, more particularly about 5%.
  • A projectable target is made by molding a composition containing 45 wt % bentonite clay and 55 wt % binder. The binder contains 75 wt % PDA asphalt (from Alon) oxidized to a softening point of 149° C., 20 wt % hydrocarbon resin (LX-1035® from Neville), and 5 wt % Fischer-Tropsch wax (BARECO® PX-105 from Baker Petrolite).
  • Another projectable target is made by molding compositions containing 45 wt % bentonite clay and 55 wt % binder. The binder contains 90 wt % PDA asphalt and 10 wt % Fischer-Tropsch wax.
  • Another projectable targets is made by molding compositions containing 45 wt % bentonite clay and 55 wt % binder. The binder contains 90 wt % PDA asphalt and 10 wt % gilsonite.
  • In accordance with the provisions of the patent statutes, the principle and mode of operation of this invention have been explained and illustrated in its preferred embodiments. However, it must be understood that this invention may be practiced otherwise than as specifically explained and illustrated without departing from its spirit or scope.

Claims (20)

1. A projectable target made from a composition comprising a filler material and a binder for the filler material, the binder comprising a mixture of asphalt and an asphalt modifier selected from the group consisting of polymers, waxes, asphaltites, and combinations thereof, the composition being formed into the shape of the projectable target and hardened.
2. The projectable target defined in claim 1 wherein the binder has physical properties including at least one of a penetration within a range of from 0 dmm to about 5 dmm at 25° C., a softening point within a range of from about 80° C. to about 175° C., and a viscosity within a range of from about 1000 centipoise to about 25,000 centipoise at 163° C.
3. The projectable target defined in claim 2 wherein the penetration, viscosity and softening point of the binder are all within the defined ranges.
4. The projectable target defined in claim 1 wherein the penetration of the binder is within a range of from about 0 dmm to about 3 dmm at 25° C.
5. The projectable target defined in claim 1 wherein the softening point of the binder is within a range of from about 90° C. to about 150° C.
6. The projectable target defined in claim 1 wherein the viscosity of the binder is within a range of from about 1,500 centipoise to about 10,000 centipoise at 163° C.
7. The projectable target defined in claim 1 which has a brittleness enabling the target to disintegrate when hit by shotgun pellets.
8. The projectable target defined in claim 1 wherein the asphalt is a solvent extracted asphalt.
9. The projectable target defined in claim 1 wherein the asphalt modifier comprises a combination of polymer and wax.
10. The projectable target defined in claim 9 wherein the polymer is a hydrocarbon resin.
11. The projectable target defined in claim 9 wherein the binder comprises from about 50 wt % to about 90 wt % asphalt, from about 5 wt % to about 30 wt % polymer and from about 5 wt % to about 20 wt % wax.
12. The projectable target defined in claim 1 wherein the asphalt modifier comprises wax.
13. The projectable target defined in claim 12 wherein the wax has a softening point within a range of from about 50° C. to about 170° C.
14. The projectable target defined in claim 12 wherein the binder comprises from about 60 wt % to about 95 wt % asphalt and from about 5 wt % to about 40 wt % wax.
15. The projectable target defined in claim 1 wherein the asphalt modifier comprises asphaltite.
16. The projectable target defined in claim 15 wherein the binder comprises from about 60 wt % to about 95 wt % asphalt and from about 5 wt % to about 40 wt % asphaltite.
17. A projectable target made from a composition comprising a filler material and a binder for the filler material, the binder comprising a mixture of asphalt, polymer and wax, the binder having a penetration within a range of from 0 dmm to about 5 dmm at 25° C., a softening point within a range of from about 80° C. to about 175° C., and a viscosity within a range of from about 1000 centipoise to about 25,000 centipoise at 163° C., the composition being formed into the shape of the projectable target and hardened.
18. A projectable target made from a composition comprising a filler material and a binder for the filler material, the binder comprising a mixture of:
solvent extracted asphalt which is oxidized to a softening point within a range of from about 140° C. to about 180° C., the asphalt having a penetration of about 0 dmm at 25° C.;
hydrocarbon resin having a softening point within a range of from about 120° C. to about 175° C.; and
wax;
the composition being formed into the shape of the projectable target and hardened.
19. The projectable target defined in claim 18 wherein the hydrocarbon resin is included in an amount within a range of from about 5% to about 40% by weight of the binder.
20. The projectable target defined in claim 18 wherein the wax is included in an amount within a range of from about 1% to about 10% by weight of the binder.
US11/525,500 2006-09-22 2006-09-22 Asphalt-containing projectable targets Abandoned US20080073849A1 (en)

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Cited By (8)

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US20100227954A1 (en) * 2009-03-08 2010-09-09 Asphalt & Wax Innovations, LLC. Asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
FR2955176A1 (en) * 2010-01-11 2011-07-15 Laporte Ball Trap Device for automatic launching of target to archer during sporting entertainment, has barrel receiving target that is made of polymeric foam, where device is configured for automatic launching of target for archery
WO2011138342A1 (en) * 2010-05-05 2011-11-10 Laporte Holding Target launching device
US10294370B2 (en) 2009-03-08 2019-05-21 Lehigh Technologies, Inc. Polyolefin asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
US10479892B2 (en) 2009-03-08 2019-11-19 Lehigh Technologies, Inc. Functional group asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
US10487209B2 (en) 2009-03-08 2019-11-26 Lehigh Technologies, Inc. Micronized asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
USD900990S1 (en) * 2017-11-29 2020-11-03 Spigen Korea Co., Ltd. Car air freshener
USD913470S1 (en) * 2017-11-24 2021-03-16 Spigen Korea Co., Ltd. Car air freshener

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US20100227954A1 (en) * 2009-03-08 2010-09-09 Asphalt & Wax Innovations, LLC. Asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
US10294370B2 (en) 2009-03-08 2019-05-21 Lehigh Technologies, Inc. Polyolefin asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
US10479892B2 (en) 2009-03-08 2019-11-19 Lehigh Technologies, Inc. Functional group asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
US10487209B2 (en) 2009-03-08 2019-11-26 Lehigh Technologies, Inc. Micronized asphalt modifiers, methods of modifying asphalt, asphalt compositions and methods of making
FR2955176A1 (en) * 2010-01-11 2011-07-15 Laporte Ball Trap Device for automatic launching of target to archer during sporting entertainment, has barrel receiving target that is made of polymeric foam, where device is configured for automatic launching of target for archery
WO2011138342A1 (en) * 2010-05-05 2011-11-10 Laporte Holding Target launching device
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USD913470S1 (en) * 2017-11-24 2021-03-16 Spigen Korea Co., Ltd. Car air freshener
USD900990S1 (en) * 2017-11-29 2020-11-03 Spigen Korea Co., Ltd. Car air freshener

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