Tilt-activated laser aimed firearms ammunition
09568276 ยท 2017-02-14
Inventors
Cpc classification
F41G3/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G3/2616
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F41G3/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F41G1/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Sighting devices and cartridges for a firearm comprising an internal sighting and aiming system which incorporates and leverages electromagnetic radiation as the means for aiming the firearm. The sighting and aiming system must first be placed in the chamber of a firearm to be functional. It is activated and deactivated by the angle at which the firearm is held.
Claims
1. A laser aimed cartridge for a firearm, comprising: (a) a live cartridge capable of launching one or more projectiles at a target when fired from a firearm; (b) an electromagnetic radiation generating module and a power supply in an electronic circuit within said live cartridge capable of projecting a beam of electromagnetic radiation towards a target to aid in aiming the firearm, wherein said electronic circuit further comprises: (i) electricity conducting contact strips that extend through said live cartridge and touch metallic chamber walls in a bore of said firearm, and (ii) a normally open tilt switch to create a closed electronic circuit that initiates said beam of electromagnetic radiation when said switch is in a closed position and break said electronic circuit to deactivate said beam when said switch is in an open position; and (c) a non-electrically conducting insert to insulate the electromagnetic radiation generating module, power supply, positional switch and circuitry from metallic portions of the cartridge.
2. The cartridge of claim 1, wherein said cartridge is a shotgun cartridge and said firearm is a shotgun.
3. The cartridge of claim 1, wherein said cartridge is a metallic cartridge having a metallic jacket and said electronic circuit is integral with said one or more projectiles, the electromagnetic radiation generating module, positional switch, and power supply, yet insulated from said metallic jacket.
4. The cartridge of claim 1, wherein said electromagnetic radiation generating module is a laser module.
5. The cartridge of claim 4, wherein said laser module emits a laser that travels through the bore and out a muzzle of the firearm.
6. The cartridge of claim 1, wherein said electromagnetic radiation generating module produces visible light.
7. The cartridge of claim 1, wherein said electromagnetic radiation generating module produces infrared light.
8. The cartridge of claim 1, wherein said power supply is a battery.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing summary, as well as the following detailed description, may be better understood when read in conjunction with the appended drawings. For the purpose of assisting in the explanation of the invention, there are shown in the drawings representative embodiments which are considered illustrative. It should be understood, however, that the invention is not limited in any manner to the precise arrangements and instrumentalities shown.
(2) In the drawings:
(3)
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(14)
(15) TABLE-US-00001 Drawings - Reference Numerals 10 Insert 11 Laser Module Contact Strip Lug 12 Flanged Rim 13 Throat 14 Shot Chamber 15 Floor 16 Power Supply Chamber 17 Tubular Member 18 Laser Module Chamber 19 Battery Contact Strip Lug 20 Overshot Card 22 Shot 26 Hull 27 Hole 28 Lens 31 Negative Laser Module Contact Strip 32 Laser Module 34 Spring 36 Battery 39 Positive Battery Contact Strip 40 Wad 42 Powder 44 Primer 46 Chamber Wall 48 Firing Pin 50 Magazine Wall 52 Brass Cartridge Case 54 Metallic Bullet Core 60 Positional Switch 65 Alternative Positional Switch 66 Upper Conductive Cone 67 Lower Conductive Cone 68 Nonconductive Washer 69 Conductive Ball
DETAILED DESCRIPTION
First Embodiment
FIGS. 1, 2, 3A, 3B, 3C, 3D, 4A, 4B, 4C, and 5
(16) Referring now to
(17) Referring now to
(18) Referring again to
(19) The insert (10) holds the positional switch (60) in direct contact with the negative pole of the battery (36), and holds the positional switch (60) and laser module (32) in such a relationship that they are in direct contact only through the spring (34). In this way, the insert (10) holds the electrical components of the circuit electrically insulated from the metallic shot (22) in the shot chamber (14), thereby preventing a short circuit. In the same way, the insert (10) holds the electrical components of the circuit in such a way that the circuit is ultimately controlled by the positional switch (60) (i.e., whether the positional switch is open or closed), even after the cartridge is inserted into the chamber of a firearm.
(20) The insert (10) may be formed from any plastic or polymer material or combination of plastic or polymer materials that is firm enough to hold the battery (36), positional switch (60), and laser module (32) in place. The material from which the insert (10) is formed can be rigid or soft enough for the laser module contact strip (31) to be pressed through the exterior wall of the insert (10) into the laser module chamber (18) to contact the laser module (32). In one embodiment, the insert may comprise a preformed slot or hole through which the laser module contact strip (31) may be inserted to contact the laser module (32) during assembly of the cartridge. In some embodiments, the insert (10) is made from one or more of polyester, polyethylene terephthalate, polyethylene, high-density polyethylene, low-density polyethylene, polyvinyl chloride, polypropylene, high-impact polystyrene, polyamides (nylons), acrylonitrile butadiene styrene, and polycarbonate. Other suitable plastics and polymer materials will be known to the skilled artisan. In one embodiment, the insert (10) is injection molded of high-density polyethylene. In another embodiment, the insert (10) is made with 3D printing.
(21) The laser module (32), spring (34), positional switch (60) and battery (36) fit sequentially into the insert (10) from the bottom. The laser module (32) is prevented from slipping too far forward in the insert (24) by a throat (13) inside the tubular member (17) of said insert (10) as illustrated by the oblique view in
(22) The overshot card (20) is circular and sized to fit snugly inside the mouth of the hull (26). Said card (20) is pressed against the upper face of the insert (10) to retain shot (22) within the shot chamber (14) of the insert (10). The overshot card (20) is formed from a stiff but flexible transparent material, such as a clear acrylic or other plastic or polymer material, to allow the passage of electromagnetic radiation from the laser module (32) through said card. In some embodiments, the overshot card (20) is formed from a rigid transparent material. The overshot card (20) shatters when contacted by shot (22) expelled from the cartridge upon discharge of the firearm.
(23) Unlike existing devices, the present invention uses an overshot card (20) that contains no holes, perforations or other openings. This prevents the sort of extraneous matter to which shotgun cartridges are frequently exposed, such as pocket lint, gunpowder, dust, oils, and other debris, from entering the laser module chamber (18) and rendering the laser module (32) useless by obstructing the laser lens (28) and disrupting or blocking the passage of laser light. This feature of the present embodiment also simplifies maintenance and cleaning of the cartridge. Whereas removal of debris from the laser module lens (28) would require disassembly of the cartridge, which is inconvenient, unsafe, and renders the cartridge unusable, the use in the present embodiment of a thin, stiff overshot card (20) having a smooth surface overcomes this deficiency by preventing debris from entering the laser module chamber (18). This feature also maximizes the amount of laser light passed through the card, and facilitates quick, easy and one-handed removal of any smudges or debris that may accumulate on the overshot card (20). However, in alternate embodiments, the overshot card (20) may be formed of a translucent or opaque material. In such embodiments, the overshot card further comprises an off-center hole configured to be positioned directly over the laser module chamber (18) so that laser light may pass therethrough.
(24) Laser module (32) is an off the shelf item of various external dimensions, light frequencies, power requirements and outputs. Some outputs project shaped visible laser lights such as crosses, circles, or various sized dots. Some lasers output infrared light visible only with optical equipment such as night vision devices. Other laser modules output light in a steady beam or intermittent bursts. Laser modules are available pre-focused with lens (28) built in and the projected design or pattern pre-programmed.
(25) Spring (34) is attached to the base of laser module (32) and contacts a portion of the positional switch (60) that conducts electrical current to the spring (34) only when the positional switch is in a closed position. When the positional switch (60) is closed, said spring (34) conducts electrical current from the positional switch (60) to the laser module (32) circuitry. The spring (34) also applies spring pressure to the laser module (32) to urge said module against the throat (13) of the laser module chamber (18). It may be insulated or not depending on the specific application. No insulation is needed for the embodiment depicted in
(26) Positional switch (60) is an off the shelf, normally open, electromechanical, omnidirectional tilt switch in electrically conductive contact with the negative pole of the battery (36) and the spring (34). However, as explained below, said positional switch (60) only conducts electrical current to the spring (34) and then to the laser module (32) when the normally open switch is in a closed position. The positional switch (60) may be of various external dimensions, switching times, working angles (also known as activation or tilt angle), resistance, current and voltage capabilities, operating temperature, and lead type. In some embodiments, the positional switch (60) has an activation angle of from approximately 10 to approximately 80 degrees from vertical. In certain embodiments, the activation angle is from approximately 20 to approximately 70 degrees from vertical. In certain embodiments, the activation angle is from about 30 to about 60 degrees from vertical. In one embodiment, the activation angle is approximately 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 52, 53, 54, 55, 56, 57, 58, 59, or 60 degrees from vertical.
(27) Positional switches are used to automatically control an external electric circuit based on the motion of an internal actuator contained within the switch itself. At various points in its travel, the actuator opens or closes one or more sets of electrical contacts in the switch to cause an electrical signal to operate a device in circuit with the switch. A tilt switch is a positional switch that is sensitive to angular change. A normally open tilt switch is one in which the contacts are open and the switch non-conducting while the actuator is in a rest position. The contacts become closed and the switch conducting when the switch is tilted beyond a certain working angle so that the actuator touches the appropriate contacts. Omnidirectional tilt switches are those wherein the contacts become closed when the switch is tilted beyond a certain angle from vertical in any direction. Some positional switches employ one or more conductive metal balls as an actuator, while others rely on a conductive metal rod. Still others employ a small amount of liquid mercury as an actuator. Although mercury-based positional switches are functional in a cartridge of the present embodiment, the toxicity of mercury makes such switches unsuitable for use in small arms ammunition. Therefore, switches most suitable for use in the present embodiment are non-mercury contact switches.
(28)
(29) Battery (36) is an off the shelf item, but is preferably a button or coin battery having a long shelf life. In one embodiment, the battery is a CR1616 lithium battery.
(30) Electrical contact between the laser module (32) and the chamber wall (46), and later between the chamber wall (46) and battery (36) is provided by metallic positive and negative battery and laser module contact tape or strips (39), (31), respectively. These contact strips (39), (31) are made of a thin, electrically conducting material that can fold down the outside of the insert (10). In the present embodiment, these strips need not be insulated. There is no risk of excessive buildup of pressure in the chamber when the cartridge is fired and thus no need to mitigate said pressure by configuring said strips (39), (31) with breakaway notches or similar relief cuts because the strips (39), (31) do not overlap the exterior of the hull (26) when assembled into a cartridge of the present embodiment, as best shown in
(31) The shot (22) may be any size or gauge of shot commonly used in shotgun cartridges, including small metallic birdshot and large caliber buckshot depending on the intended use of the cartridge. Shot may also be comprised of a bag or other package containing lightweight, non-lethal material designed to stun an adversary. Exemplar non-lethal materials include bean bags, tear gas, and rubber bullets. Shot (22) is contained in the shot chamber (14) of the insert (10).
(32) The balance of the items drawn and listed are industry standard. Magazine wall (50) and firing pin (48) are standard firearm parts. Cartridge parts include cases (52), metal cores (54), primer (44), powder (42), and wads (40).
(33) Assembly of the shotgun cartridge of the present embodiment requires sequential placement of the laser module (32), spring (34), positional switch (60), and battery (36) into the insert (10) as described above. Strips (39) and (31) are installed into the insert (10) before the insert (10) is placed into the hull (26). Contact strips (39) and (31) are adhered to the exterior of the insert (10), and are supported at their upper ends by lugs (19) and (11), respectively. The lugs (19), (11) support the contact strips (39), (31) through two holes (27) cut in the hull (26) and against the chamber wall (46) as shown in
(34) The lower end of negative laser module contact strip (31) extends through an appropriately small slot or hole in the exterior wall of the insert (10) and the tubular member (17) to contact the brass exterior of the laser module (32). The lower end of positive battery contact strip (39) folds underneath the bottom of the insert (10) to make electrical contact with the bottom of battery (36). The positive battery contact strip (38) is adhered to the bottom of battery (36). When combined into the insert (10) as described herein, the laser module (32), spring (34), positional switch (60), battery (36), contact strips (39), (31) form a self-contained, drop-in laser sighting assembly which can be used in any commercially available shotgun shells and is suitable for use in home shotgun shell reloading. The wads (40), laser sighting assembly, shot (22), and overshot card (20) then fit sequentially into a primed hull (26) over an appropriate powder charge. The cartridge is then sealed and ready for use.
(35) The generally cylindrical shape and multi-chamber design of the insert (10) and completed laser sighting assembly simplifies and lowers the cost of manufacturing a cartridge of the present embodiment as compared to prior art cartridges by eliminating steps and compartmentalizing major component groups. Specifically, the configuration of contact strips (39), (31) and lugs (19),(11) on the insert (10) eliminates any need to first fit the insert into a hull (26) before piercing the hull with electrically conductive pins as taught in U.S. Pat. No. 8,544,203. The use of contact strips instead of pins also helps the electrical circuit in the laser aimed cartridges disclosed herein function more reliably than cartridges configured with pins. Additionally, the fact that the laser module (32), spring (34), positional switch (60), battery (36), and contact strips (39), (31) can be installed into the insert (10) independently of the remaining components of the completed cartridge, including the hull (26), powder (42), wad (40), shot (22), and overshot card (20) (collectively, shell components), to form a self-contained, drop-in laser sighting assembly allows for the separate manufacture of the laser sighting assembly component at a different location from where the shell components are manufactured or where the cartridge will be finally assembled. This advantage minimizes any special tooling needed to manufacture commercial quantities of the cartridges disclosed herein. It also makes the laser sighting assembly ideal for use with commercially available consumer reloading products, and provides a solution for shooters who prefer to load their own ammunition, as the only modification which must necessarily be made to the hull (26) is the creation of holes (27) through which the lugs (19), (11) and contact strips (39), (31) may pass.
Alternative Embodiments
FIGS. 6 and 7
(36)
(37) Use and Operation
(38) In use, a cartridge will ultimately be placed in the chamber of a firearm, whether the firearm is a breach loading firearm or a magazine fed firearm. However, because many firearms used today are magazine fed, it is important that the laser module remain off while the cartridge is present in a magazine. Accordingly, the tilt activated laser aimed ammunition of the present invention is designed to remain off while present in the magazine of a firearm.
(39) Referring now to
(40)
(41) As illustrated in
(42)
(43) When the trigger of the firearm is pulled, the firing pin (48) is released to contact and crush the primer (44) of the cartridge. Crushing the primer (44) causes a primary detonation that ignites the powder (42). The rapidly expanding gasses resulting from ignition of the powder (42) will impinge on the wads (40) and force the entire payload including wads (40), battery (36), positional switch (60), spring (34), laser module (32), insert (10), shot (22), and overshot card (20) down the barrel towards the target. The contact strips (39) and (31) slide easily out of contact with the chamber walls and over the edge of the holes (27) in the hull (26) to be sent downrange with the payload, eliminating any need for relief cuts in said strips (39), (31). As ignition and propulsion are almost instantaneous, the laser illumination becomes irrelevant once the trigger is pulled.
(44) If said cartridge is not fired, it can be stored in the chamber of the firearm with the laser deactivated and without loss of battery life while the firearm is stored in a generally upright position outside the working angle of the positional switch (60), for example, such as the position of a firearm leaning against a wall with the buttstock on the ground. The cartridge can remain in the chamber with the laser off in a roughly upright storage position for the life of the battery (approximately ten years). Alternatively, the cartridge can be removed from the chamber and stored until desired. The electrical circuit will be broken and the laser deactivate when the cartridge is removed from the chamber, regardless of the angle at which the cartridge is held. The cartridge can therefore be stored outside the chamber with the laser off in any position for the life of the battery. Should the battery lose its charge, the cartridge will continue to be useful as a normal cartridge for another thirty years or more.
(45) The utility of self-contained, tilt-activated laser aimed ammunition for firearms is readily apparent. Cartridges embodying the present disclosure are lightweight, reliable, inexpensive to manufacture and purchase, easy to use, require no training to use beyond normal firearms safety training, and offer significantly longer shelf-lives with greater convenience than existing devices. Tilt-activated laser aimed firearms ammunition also provides a marked increase in assistance to a shooter in life-threatening and stressful situations where one may need to protect one's own life or the life of another from an aggressor. The ammunition can be safely stored in the chamber of a firearm until needed, and activated without thought or the need to manually actuate a separate switch to place a brightly illuminated dot on an aggressor using only the normal motion inherent to pointing a firearm. This saves valuable time during stressful situations, where fine motor skills can be deficit. The present invention also protects a shooter from an aggressor, particularly in poorly lit defensive scenarios such as home invasions, by allowing the shooter to silently activate an accurate laser sighting device without cycling a cartridge into the chamber from a magazine and thereby revealing the shooter's position or the fact that the shooter is armed. This gives the shooter the considerable advantages of markedly increased stealth, better response time and faster target acquisition, all of which combine to provide the shooter the element of surprise.
(46) While the above descriptions contain much specificity, these should not be construed as limitations on the scope of the invention, but rather as an exemplification of one or more preferred embodiments thereof. Many other variations are possible. For example, the concepts described herein could also be directly transferred to larger caliber weapons such as tank or howitzers. A laser similar to the current embodiment could also be inserted in rocket propelled grenades or light anti-tank weapons. Another embodiment of this invention might use a micro-switch to complete the circuit when pressed by the close tolerances of the chamber walls.