The present invention relates to projectiles carrying payloads capable of being propelled by launch systems or apparatus. More specifically, the present invention relates to ammunition capable of being launched by compressed gas guns.
With increasing applicability of projectile ammunitions launched by gas-powered guns, projectiles with enhanced accuracy and distance are in high demand. For example, gas-powered guns such as paintball guns loaded with various types of paintballs are often used in many different settings and environments, such as paintball tournaments, police and military trainings, special effects on movie shootings, riot controls, et cetera. A conventional gas-powered gun such as a paintball gun uses carbon dioxide (CO2) or compressed air to propel ammunition such as a delivery shell or paintball from its chamber to a target or object via its barrel.
A delivery shell or a paintball typically carries colored paint or marker and it breaks upon a high speed impact. To accurately reach an intended target, both the design of projectile and the power of paintball guns are important factors.
A projectile such as a paintball including a ball-shaped or dome-shaped capsule and a round-shaped disc for improving accuracy and range of the projectile using gyroscopic approach is disclosed. The ball-shaped capsule, in one embodiment, having a head and a tail portion is able to store and deliver colored marker upon an impact between the projectile and an object. The round-shaped disc is positioned at a location to allow a portion of the round-shaped disc to extend above outer surface of the capsule. The disc is able to catch at least a portion of airflow when the projectile travels through the air after launching. The round-shaped disc, in one example, leverages airflows to facilitate and/or maintain travel direction of the projectile.
Additional features and benefits of the exemplary embodiment(s) of the present invention will become apparent from the detailed description, figures and claims set forth below.
Exemplary embodiment(s) of the present invention will be understood more fully from the detailed description given below and from the accompanying drawings of various embodiments of the invention, which, however, should not be taken to limit the invention to the specific embodiments, but are for explanation and understanding only.
Exemplary embodiment(s) of the present invention is described herein in the context of a method, system and apparatus of providing a delivery shell having a dome-shaped head portion and a disc capable of being launched by a gas-powered propelling system.
Those of ordinary skills in the art will realize that the following detailed description of the exemplary embodiment(s) is illustrative only and is not intended to be in any way limiting. Other embodiments will readily suggest themselves to such skilled persons having the benefit of this disclosure. Reference will now be made in detail to implementations of the exemplary embodiment(s) as illustrated in the accompanying drawings. The same reference indicators will be used throughout the drawings and the following detailed description to refer to the same or like parts.
References to “one embodiment,” “an embodiment,” “example embodiment,” “various embodiments,” “exemplary embodiment,” “one aspect,” “an aspect,” “exemplary aspect,” “various aspects,” etc., indicate that the embodiment(s) of the invention so described may include a particular feature, structure, or characteristic, but not every embodiment necessarily includes the particular feature, structure, or characteristic. Further, repeated use of the phrase “in one embodiment” does not necessarily refer to the same embodiment, although it may.
In the interest of clarity, not all of the routine features of the implementations described herein are shown and described. It will, of course, be understood that in the development of any such actual implementation, numerous implementation-specific decisions may be made in order to achieve the developer's specific goals, such as compliance with application- and business-related constraints, and that these specific goals will vary from one implementation to another and from one developer to another. Moreover, it will be understood that such a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking of engineering for those of ordinary skills in the art having the benefit of this disclosure.
Various embodiments of the present invention illustrated in the drawings may not be drawn to scale. Rather, the dimensions of the various features may be expanded or reduced for clarity. In addition, some of the drawings may be simplified for clarity. Thus, the drawings may not depict all of the components of a given apparatus (e.g., device) or method.
As used herein, the singular forms of article “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. Also, the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof. The term “and/or” includes any and all combinations of one or more of the associated listed items.
A delivery shell such as a projectile or a paintball including a ball-shaped capsule and a round-shaped disc for facilitating accuracy of projectile travel direction is disclosed. The ball-shaped or substantial ball-shaped capsule, in one embodiment, having a head and a tail is able to store and deliver colored markers upon an impact between the projectile and an object. The round-shaped disc is positioned at a place to allow a portion of the round-shaped disc to extend above outer surface of the capsule. The disc is able to catch airflow when the shell is launched. The round-shaped disc, in one example, uses airflows to facilitate travel direction of the projectile.
Capsule 102 has a head 108 and a tail 116 and has an approximately spherical or ball-shaped body. Depending on the applications, diameter 120 of capsule 102 should have a range of 0.40 to 0.75 inch or caliber. Inside of capsule 102 is hollow and is able to store or carry user defined substances, such as, but not limited to, non-lethal color marker, non-lethal payload, lethal payload, non-lethal chemical agent, combustible material, and the like. Depending on the payload, capsule 102 can be fabricated with stretchable semi-solid material, such as plastic, polymer, rubber, polyurethane, synthetic material, or a combination of plastic, polymer, rubber, polyurethane. Alternatively, capsule 102 can also be made by different synthetic as well as natural materials, such as plant/animal wax, paraffin wax, beeswax, and/or other biodegradable substances.
Disc 110 is configured to have a generally flat circular configuration, and it has a diameter 122 and a height 106. Diameters 120 and 122, in one example, are approximately the same. In one embodiment, disc 110 includes multiple blades or aerodynamic blades 124 wherein each of blades 124 has a blade tip edge, a blade body, and a blade exit edge. The blade tip edge, the blade body, the blade exit edge, and a portion of capsule surface form an air channel 104 for facilitating spinning motion for shell 100. In one aspect, the exit edges have curved shapes, wherein portions of the exit edges are commonly joined at a flat base plane.
Shell 100, in one embodiment, is a projectile capable of being launched by a paintball gun. Sell 100 includes a ball-shaped capsule 102 and round-shaped disc 110. Capsule 102 having a head 108 and a tail 116 is able to store and deliver colored markers upon an impact with an object. Disc 110 is coupled to tail 116 of capsule 102 in such a way that it allows a portion of disc 110 to extend above outer surface of capsule 102 to catch airflow when shell 100 moves in the air. Disc 110 is able to leverage direction of airflows to facilitate or adjust travel direction of shell 100. Disc 110, in one example, includes a coupler, not shown in
During operation, upon impact with a targeted object, capsule 102 breaks and delivers the payload such as colored marker to an area in the vicinity of the impact. It should be noted that when shell 100 moves in the air after it is launched by a paintball gun, airflow, for instance, may pass through air channels 104 which induces spinning motion of shell 100. The lift force, for example, may create a torque causing spinning motion for shell 100 with a spinning axis coincided with the travel direction (or forward motion). Note that the spinning motion increases the stability or gyroscopic guiding motion to shell 100 whereby accuracy for shell 100 to hit a target is enhanced.
To be compatible with ammunition cartridge and launchers, diameter 122 and height 106 of disc 110 can be adjusted. For example, diameter 122 is configured to have the approximately the same size as diameter 120 of capsule 102 and height 106 may be about the radius of capsule 102. Depending on the applications, other shell dimensions may be used.
A driving band, not shown in
Disc 200 includes eight (8) blades or aerodynamic blades 212, wherein each blade has an airflow surface 216 and an inner surface 222. Airflow surface 216 includes a blade tip 218, an exit edge 220, and a blade body wherein blade body is defined by an upper surface 230, a lower surface 234, and a side surface 232. Side surface 132 joins upper surface 230 and lower surface 234 and extends to exit edge 220. Note that blade exit edge 220, blade tip 218, blade body, and a portion of capsule surface form an air channel. When airflow travels through airflow surface 216, the curvature of blade 212 allows airflow to generate spinning motion for the shell or projectile. Note that exit edges 220 of blades 212 have curved shapes and are commonly joined to flat base plane 224. It should be noted that disc and capsule can be manufactured together as a single unit.
Each blade 212 is configured to have an aerodynamic shape for reducing air drag while redirecting airflow to generate spinning motion. Blades 212 as shown in
Inner surface 222 is configured to seat at least a portion of capsule such as a tail end of capsule 102 shown in
When a shell travels through the air, airflow surface 216 is shaped in such a way that it catches a portion of air stream. For example, when air stream passes through upper surface 230 and lower surface 234, different air pressures between the surfaces are exerted whereby a torque is induced. The torque introduces spin motion for the shell. It should be noted that blades 212 are arranged in a circular formation and they can cause the shell to spin in a direction indicated by arrow 228. The spin motion is created around an axis parallel to travel direction of shell through the air.
Disc 200 having a propeller-shaped tail portion is coupled to capsule 402. The propeller-shaped tail portion includes a set of curved blades which have aerodynamic surfaces capable of forming air channels between the curved blades and surface of capsule 402. The air channels, in one example, guide airflows when the projectile is launched and travels through the air. Note that the set of curved blades facilitates or generates spin motion for the projectile or shell 400 whereby the accuracy of projectile to hit a target is enhanced.
Driving bands 410, in one embodiment, are manufactured in circular rings with relatively flexible materials. Driving bands 410 are configured to fit into the installing grooves 410. The outer diameter of driving band 410 is configured to approximately match the bore diameter of the barrel of the projectile launcher or paintball gun. A function of driving bands 340 is to provide a seal effect between shell 400 and the wall of barrel to prevent or reduce gas leakage to the barrel during the launch. Single band may be used. In one embodiment, driving band 410 may be opening rings.
A spinning track, in one aspect, is imprinted on the wall of barrel for creating a spinning motion of shell inside of barrel as the shell moves from the firing chamber to the opening of barrel. The spinning track receives a portion of driving band 410 and uses driving band 410 to spin shell 400 as shell 400 travels through the barrel. An advantage of using a driving band is that it improves compression ability and launch efficiency with gas-powered guns. Another advantage of using a driving band is to provide gyroscopic stability to enhance accuracy and range. In one embodiment, the driving band is made of biodegradable materials, such as expanded corn foams, wheat, sugar, wood, or the like.
Disc 200 having a propeller-shaped tail portion is coupled to capsule 502. The propeller-shaped tail portion includes a set of curved blades which have aerodynamic surfaces capable of forming air channels between the curved blades and surface of capsule 502. The air channels, in one example, guide the airflows when the projectile is launched and travels through the air. Note that the set of curved blades facilitates a spinning motion for the projectile or shell 500 to enhance the accuracy of the projectile to hit a target.
Depending on the applications, various size or dimension of shell 500 may be fabricated. For example, to make shell 500 compatible with various types of existing launcher equipments, shell 500 may be configured to have height 506 of disc to be approximately the same as diameter 508 of capsule 502.
Shell 600, in one embodiment, includes a capsule 602, an annular base 632, pivot pins 640, and movable fins 616. Capsule 602 having a round head and a conical body is capable of storing and delivery payload such as colored marker upon breakage of capsule 602. Annular base 632 has an opening which is configured to allow a portion of capsule 602 to pass through such as a portion of the conical body. Pivot pins 640 are configured to anchor to annular base 632, and movable fins 616 are coupled to pivot pins 640. In one example, movable fins form a foldable curved propeller having four twisted blades able to form a substantially circular column around a cylindrical body 618 of annular base 632 before shell 600 is launched into air stream.
Movable fins 616, in one embodiment, are used to enhance accuracy and/or travelling distance of shell 600. Movable fins 616 can be configured as four twisted blades, wherein each blade has a helical surface 620-622 capable of generating a force in response to airflow that passes through the helical surface. When shell 600 is launched into the air stream, movable fins pivot open in operation position or mode capable of facilitating to cause or assist a spinning motion for shell 600. In one example, movable fins 616 are able to extend beyond the circumferential boundary of annular base 632 when they are in operation position. Alternatively, when movable fins 616 are in folding position, movable fins 616 are contained within a circumferential boundary of annular base 632.
Referring back to
Movable fin 616 includes a fin body 624 having a top flow surface 620 and a lower flow surface 622, and a pivoting base 630 connected to fin body 624. Top flow surface 620 and lower flow surface 622 are aerodynamic surfaces. Pivoting base 630 contains a pivot hole 642 for engaging with a pivot pin 640. Pivot pins 640 are attached to annular base 632 and are situated at equal or the same distance from cylindrical body 612. Pivot pins 640 are also equally spaced circumferentially in annular base 632. Movable fins 616 are pivotally attached to pivot pins 640 through pivot holes 642 in pivoting base 630. Fin 616 is in operation position when fin body 624 pivots away from cylindrical body 612. Fin 616 is in folding position when fin body 624 pivots to toward cylindrical body 612.
Pivot hole 642 and pivot base 630 are shaped in such a way that when fins 616 pivot to a desired operation position, a locking between fins 616 and cylindrical body 612 is created to prevent any further opening movement of the aerodynamic fins 616. Pivot hole 642, in one example, is an oblong shaped hole which allows fin 616 to move in a circumferential direction of annular base 632 while swiveling around pivot pin 640. In one aspect, a spring such as a torsional spring may be used to open fins 616 between pivot pin 640 and pivoting base 630. The torsional spring is in a winded state when fins 616 are in folding position or in closed status.
Disc 820 further includes a coupler 810 having a concave surface configured to receive tail 808 of capsule 802. A guiding ring 812 which can be part of disc 820 is coupled to coupler 810. Guiding ring 812, in one embodiment, has multiple openings 816 allowing air to pass through for guiding travel direction of the projection. Openings 816 of guiding ring 812 are configured to facilitate spinning motion of shell 800. The spinning motion, in one aspect, enhances travel distance and accuracy of projectile direction. The concave surface of coupler 810 contains a hole (not shown in figure) that allows a portion of tail 808 of ball-shaped capsule 802 to pass through.
Shells 902, in one embodiment, are similar to shell 100 shown in
While particular embodiments of the present invention have been shown and described, it will be obvious to those of ordinary skills in the art that based upon the teachings herein, changes and modifications may be made without departing from this exemplary embodiment(s) of the present invention and its broader aspects. Therefore, the appended claims are intended to encompass within their scope all such changes and modifications as are within the true spirit and scope of this exemplary embodiment(s) of the present invention.
This application is a divisional application of U.S. patent application Ser. No. 13/524,906, filed on Jun. 15, 2012 in the name of the same inventor and entitled “Delivery Shell Using Gyroscopic Guiding System and Methods of Making the Same,” hereby incorporated into the present application by reference.
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Number | Date | Country | |
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20150024881 A1 | Jan 2015 | US |
Number | Date | Country | |
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Parent | 13524906 | Jun 2012 | US |
Child | 14449938 | US |