US20160341508A1 - Selectable kinetic energy of projectiles - Google Patents

Selectable kinetic energy of projectiles Download PDF

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Publication number
US20160341508A1
US20160341508A1 US15/228,799 US201615228799A US2016341508A1 US 20160341508 A1 US20160341508 A1 US 20160341508A1 US 201615228799 A US201615228799 A US 201615228799A US 2016341508 A1 US2016341508 A1 US 2016341508A1
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United States
Prior art keywords
projectile
charges
barrel
firing
propellant
Prior art date
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Abandoned
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US15/228,799
Inventor
James Michael O'Dwyer
Sean Patrick O'Dwyer
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Defendtex Pty Ltd
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Defendtex Pty Ltd
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Filing date
Publication date
Priority claimed from AU2003902103A external-priority patent/AU2003902103A0/en
Priority claimed from AU2003902556A external-priority patent/AU2003902556A0/en
Application filed by Defendtex Pty Ltd filed Critical Defendtex Pty Ltd
Priority to US15/228,799 priority Critical patent/US20160341508A1/en
Publication of US20160341508A1 publication Critical patent/US20160341508A1/en
Abandoned legal-status Critical Current

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41AFUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
    • F41A19/00Firing or trigger mechanisms; Cocking mechanisms
    • F41A19/58Electric firing mechanisms
    • F41A19/64Electric firing mechanisms for automatic or burst-firing mode
    • F41A19/66Electronic shot-velocity control
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41AFUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
    • F41A19/00Firing or trigger mechanisms; Cocking mechanisms
    • F41A19/58Electric firing mechanisms
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41AFUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
    • F41A19/00Firing or trigger mechanisms; Cocking mechanisms
    • F41A19/58Electric firing mechanisms
    • F41A19/60Electric firing mechanisms characterised by the means for generating electric energy
    • F41A19/61Inductive generators
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41AFUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
    • F41A19/00Firing or trigger mechanisms; Cocking mechanisms
    • F41A19/58Electric firing mechanisms
    • F41A19/60Electric firing mechanisms characterised by the means for generating electric energy
    • F41A19/62Piezo-electric generators
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F41WEAPONS
    • F41AFUNCTIONAL FEATURES OR DETAILS COMMON TO BOTH SMALLARMS AND ORDNANCE, e.g. CANNONS; MOUNTINGS FOR SMALLARMS OR ORDNANCE
    • F41A19/00Firing or trigger mechanisms; Cocking mechanisms
    • F41A19/58Electric firing mechanisms
    • F41A19/64Electric firing mechanisms for automatic or burst-firing mode
    • F41A19/65Electric firing mechanisms for automatic or burst-firing mode for giving ripple fire, i.e. using electric sequencer switches for timed multiple-charge launching, e.g. for rocket launchers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42BEXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
    • F42B5/00Cartridge ammunition, e.g. separately-loaded propellant charges
    • F42B5/02Cartridges, i.e. cases with charge and missile
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42BEXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
    • F42B5/00Cartridge ammunition, e.g. separately-loaded propellant charges
    • F42B5/02Cartridges, i.e. cases with charge and missile
    • F42B5/03Cartridges, i.e. cases with charge and missile containing more than one missile
    • F42B5/035Cartridges, i.e. cases with charge and missile containing more than one missile the cartridge or barrel assembly having a plurality of axially stacked projectiles each having a separate propellant charge
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42BEXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
    • F42B5/00Cartridge ammunition, e.g. separately-loaded propellant charges
    • F42B5/02Cartridges, i.e. cases with charge and missile
    • F42B5/08Cartridges, i.e. cases with charge and missile modified for electric ignition
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42BEXPLOSIVE CHARGES, e.g. FOR BLASTING, FIREWORKS, AMMUNITION
    • F42B5/00Cartridge ammunition, e.g. separately-loaded propellant charges
    • F42B5/02Cartridges, i.e. cases with charge and missile
    • F42B5/10Cartridges, i.e. cases with charge and missile with self-propelled bullet

Definitions

  • the present invention relates generally to projectiles. More particularly, this invention relates to projectiles with sealed propellant.
  • the kinetic energy (KE) of conventional projectiles may be varied by tailoring the amount of propellant that is associated with each projectile before firing. This may require different internal propellant loads produced during manufacture or the use of auxiliary propellant charges, where possible.
  • the projectiles and auxiliary propellant charges are generally separate from one another before firing.
  • the auxiliary propellant is typically provided in a number of small parcels that may be supplied in different volumes or in the same volume for incremental use.
  • the mortar operator manually attaches one or more parcels providing the appropriate amount of propellant to the mortar round before insertion into a tube or barrel for firing. This procedure also considerably slows the rate of fire that can be achieved by the weapon and is prone to human error when loading.
  • a projectile includes a body having a nose portion and a tail portion, a plurality of propellant charges contained within the body, a plurality of selectable initiators contained within the body for ignition of respective propellant charges, one or more ports for exit of ignition gases produced by the charges for propulsion of the projectile from the weapon, and one or more inductors for inducing a firing current, where at least one initiator only initiates on receiving a firing current which is different from the firing signal required to initiate the other initiators.
  • FIGS. 1A-1F show a first embodiment in which a projectile has forward ports for exit of propellant gases
  • FIGS. 2A-2D show a second embodiment in which a projectile has rearward ports for exit of propellant gases
  • FIGS. 3A, 3B show an inductive firing system for the projectiles
  • FIG. 4 is a sectional side elevational view of a projectile of another embodiment of the invention, prior to firing;
  • FIG. 5 is a sectional side elevational view of the projectile of the embodiment, after firing the third and fourth propellant charges;
  • FIG. 6 is a sectional side elevational view of the projectile of the embodiment, after firing the second, third and fourth propellant charges;
  • FIG. 7 is a sectional side elevational view of the projectile of the embodiment, after firing all propellant charges;
  • FIG. 8 is a sectional end elevational view of the projectile of the embodiment.
  • FIG. 9 is a sectional side elevational view of a variation to the projectile of the embodiment.
  • FIG. 10 is a sectional side elevational view of a projectile of another embodiment of the present invention, prior to firing;
  • FIG. 11 is a sectional end elevational view of the projectile of the embodiment.
  • FIG. 12 is a sectional side elevational view of a projectile of a embodiment of the present invention, subsequent to firing all propellant charges;
  • FIG. 13 is a sectional side elevational view of a projectile of a embodiment of the present invention.
  • FIG. 14 is a sectional end elevational view of the projectile of the embodiment.
  • FIGS. 15, 16 and 17 depict a projectile assembly of a embodiment of the present invention.
  • FIGS. 18, 19 and 20 depict a projectile assembly of another embodiment of the present invention.
  • the invention can be implemented in various ways for a variety of projectiles and purposes.
  • the invention may be provided as a single projectile, as a weapon containing projectiles, or as a barrel assembly containing stacked projectiles for insertion in a weapon, for example.
  • FIG. 1A shows a projectile having a body 10 with nose and tail portions 11 and 12 adapted to be stacked in a barrel with other similar projectiles.
  • the projectile typically includes a payload 13 which may be of various kinds such as explosive, flash-bang, smoke-generating or fire retardant for example.
  • Propellant charges 14 are contained by cavities within the projectile and are selectively ignited by respective initiators 15 , preferably inductive elements such as semiconductor bridges (SCBs), although a range of wired or wireless primer systems may be used.
  • SBCs semiconductor bridges
  • the charges are held in their cavities by plugs 16 which may be threaded or glued in place, for example.
  • Ports 17 are provided in the nose portion for exit of the gases produced by combustion of the charges.
  • the ports open forwards and propel a leading adjacent projectile from the barrel.
  • This projectile is in turn propelled by charges in a trailing adjacent projectile or by charges in the base of the barrel.
  • the nose portion is preferably shaped to fit the tail portion of the leading projectile and similarly the tail portion is shaped to fit the nose portion of the trailing projectile. This provides a degree of sealing between the projectiles and may be achieved in various ways.
  • FIGS. 1B and 1C are end views of the projectile in FIG. 1A showing the nose and tail portions.
  • the number and arrangement of the charges may be varied to suit the purpose of the particular projectile. It should be borne in mind however, that the flight characteristics of the projectile may change when the charges are selected and ignited, unless all of the charges are ignited before the projectile is fired from the barrel. The centre of mass of the projectile may shift for example.
  • FIG. 1D shows how two projectiles of this kind may be stacked in a barrel.
  • the nose portion 11 of the trailing projectile fits the tail portion 12 of the leading projectile, and preferably expands the tail portion 12 into a sealing contact with the inside of the barrel.
  • a convex curved surface of the nose portion matches a concave surface in the tail portion
  • the tail portion also includes a rim 18 that contacts the body of the trailing projectile.
  • One or more charges in the trailing projectile are selected and ignited to propel the leading projectile from the barrel with a required kinetic energy. Once the leading projectile has departed any charges remaining in the trailing projectile are ignited to produce a predetermined weight and centre of mass in the trailing projectile, which is now the leading projectile.
  • Each projectile therefore has reasonably standard and predictable characteristics for flight.
  • FIGS. 1E and 1F show how the last projectile in a stack of projectiles of this kind may be fired.
  • Propellant charges 14 may be provided in the base of the barrel as either a separate removable element 19 E, or as a fixed element 19 F of the barrel itself.
  • the charges 14 in each of these figures are contained and ignited in a manner similar to that of the charges in the projectiles.
  • the separate base element 19 E is preferably loaded down the barrel before the projectiles while the fixed base element while charges in the fixed element 19 F may be loaded as individual items from the rear of the barrel. These charges may be selected and fired to provide a predetermined kinetic energy to the last projectile.
  • FIG. 2A shows an alternative projectile having a body 20 with nose and tail portions 21 and 22 , adapted to be stacked in a barrel with other similar projectiles if required.
  • the projectile includes a payload 23 in this example.
  • Propellant charges 24 are contained by cavities within the projectile and are selectively ignited by respective initiators 25 , preferably inductive elements such as semiconductor bridges (SCBs), although a range of wired or wireless primer systems may be used.
  • the charges are held in their cavities by plugs 26 which may be threaded or glued in place, for example.
  • Ports 27 are provided in the tail portion for exit of the gases produced by combustion of the charges. In this example the ports open rearwards and propel the respective projectile from the barrel.
  • the nose portion is preferably shaped to fit the tail portion of the leading projectile and similarly the tail portion is shaped to fit the nose portion of the trailing projectile. This provides a degree of sealing between the projectiles and may be achieved in various ways.
  • FIGS. 2B and 2C are end views of the projectile in FIG. 2A showing the nose and tail portions.
  • the number and arrangement of the charges may be varied to suit the purpose of the particular projectile, bearing in mind that the flight characteristics of the projectile may change when the charges are selected and ignited.
  • the weight and centre of mass of the projectile may change for example.
  • the rearward exit ports are less likely to create drag.
  • FIG. 2D shows how two projectiles of this kind may be stacked in a barrel.
  • the nose portion 21 of the trailing projectile fits the tail portion 22 of the leading projectile, and preferably expands the tail portion 22 into a sealing contact with the inside of the barrel.
  • a convex curved surface of the nose portion matches a concave surface in the tail portion
  • the tail portion also includes a rim 28 that contacts the body of the trailing projectile.
  • One or more charges in each projectile are selected and ignited to propel the respective projectile from the barrel with a required kinetic energy.
  • the projectiles generally have less predictable flight characteristics than those of FIG. 1A .
  • FIG. 3A shows a typical propellant charge 14 or 24 from FIGS. 1 and 2 in more detail.
  • the charge material 300 is contained by a metal housing 301 , open fully at one end 302 and with a smaller aperture 303 at the other end 304 .
  • a disc 305 of composite material blocks the aperture 303 but is ruptured on ignition of the charge material so that combustion gases can pass through the aperture into a respective exit port.
  • An initiator 306 is threaded or press-fitted into end 302 , based on an SCB igniter in this example.
  • the initiator includes the SCB 307 connected across a coil 308 , both mounted in a fitting 309 of plastic for example.
  • a small amount of pyrotechnic material 310 surrounds the SCB to act as a booster in combustion of the charge material.
  • Many alternative structures could be used for the propellant charges and for the initiator, which could also be introduced directly to cavities in the projectile without need of the housing 301 for example.
  • Semiconductor bridges are known devices having the appearance of a microchip with two terminal wires, such as shown in U.S. Pat. No. 4,708,060 and subsequent US patents. If an electric potential is placed across these two wires, the semiconductor bridge releases a small amount of energy, most in the form of heat. The energy released by the SCB may in some cases be insufficient to ignite the propellant charges directly and the initiators may further require a set-up chemical compound (i.e. a compound which is capable of being initiated by an SCB and will, in turn, ignite the charge). SCBs can be designed and arranged such that a current induced between the two terminals can cause energy release.
  • FIG. 3B schematically shows an inductive firing system that may be used to launch the projectiles shown in FIGS. 1 and 2 .
  • a magnetic field suitable to activate an SCB can be induced using a signal transmitting coil 33 wrapped around the barrel 30 , suitably in the vicinity of projectiles 31 therein, i.e. one transmitting or primary coil 33 . 1 , 33 . 2 , etc. for each projectile 31 . 1 , 31 . 2 , etc.
  • the current in the primary coils 33 can be selectively turned on or off by a fire control unit (FCU) 39 and thus the resulting current in receiving or secondary coils 35 . 1 , 35 . 2 can be manipulated in the same fashion.
  • the primary coils may be connected separately to the FCU or in series.
  • the FCU may be operated in various ways to select the kinetic energy and therefore the charges to be ignited for the next projectile to be fired.
  • a manual user could operate a rotatable switch that simply indicates 1, 2, 3 . . . or all of the charges are to be ignited.
  • the user or an automated firing system determines the kinetic energy required for a particular projectile according to the environment in which the user or the automated system is located.
  • the FCU 39 applies firing signal current to the primary coil 33 . 2 wrapped around the barrel 30 for that projectile 35 . 2 .
  • the resultant magnetic field induces a current in the secondary coil 35 . 2 , which is applied to the two terminals of the initiators 32 , 33 , 34 .
  • Ignition of one or more propellant charges 36 a, 36 b, 36 c occurs in response to those initiators arranged to ignite upon receipt of the firing signal.
  • SCBs can also be designed such that they will not initiate due to a simple current but only when a particular “type” of current occurs. Indeed, SCB technology now offers the ability to manufacture SCBs that require various and distinct levels of energy of ignition signal to activate the energetic material. Encoders and decoders could also be used in conjunction with SCB technology, if required. Where encoders/decoders and other logic circuits are employed, a signal modulation scheme may comprise any pulse wave modulation (PWM), pulse code modulation (PCM) or pulse amplitude modulation (PAM) scheme, or in any other suitable encoding scheme. This allows the separate, smaller propellant charges 36 to be discretely ignited via the common induction coil pairs 33 , 35 .
  • PWM pulse wave modulation
  • PCM pulse code modulation
  • PAM pulse amplitude modulation
  • FIGS. 4 to 8 of the drawings depict a projectile 45 of another embodiment of the invention having a projectile body 46 with a cavity 49 wherein a plurality of propellant charges 50 are disposed longitudinally in the projectile.
  • the propellant charges of the embodiments discussed above were disposed laterally within the projectile.
  • the initiators and secondary or receiving coils have been omitted from these drawings.
  • the projectile 45 is depicted in FIG. 4 prior to ignition of any of the propellant charges 50 , which charges are separated from one another with the cavity 49 by wall members.
  • the propellant charges 50 are composed of a mouldable material in the present embodiment, whereby the rearmost charge 50 . 4 is exposed through the aperture 58 communicating with the exterior of the projectile adjacent a tail portion of the body 46 .
  • the wall members are in the form of sealing discs 51 having edge surfaces with profiles arranged to wedge into a shallow inwardly tapered wall of the cavity 47 . Accordingly, the shaped propellant charges and alternating sealing discs may be located into the cavity 49 via the aperture 58 from the tail 48 of the projectile 45 .
  • FIGS. 5, 6 and 7 show the consequences of igniting a selected propellant charge in the projectile 45 .
  • the third propellant charge 50 . 3 has been ignited resulting in the combustion of charges 50 . 3 and 50 . 4 .
  • the second propellant charge 50 . 2 has been ignited resulting in the combustion of charges 50 . 2 , 50 . 3 and 50 . 4 .
  • the first propellant charge 50 . 1 has been ignited, resulting in the combustion of all propellant charges.
  • the aperture includes means for resisting the expulsion of the sealing discs from the cavity, which take the form of a plurality of inwardly radially extending fingers or catch points 57 (as depicted in FIGS. 4 to 8 ) to stop or at least resist the sealing discs 51 from being expelled or otherwise leaving the projectile cavity 49 entirely.
  • catch points 57 disposed around the periphery of the aperture 58 , as will be apparent from the view of FIG. 8 .
  • a preferred alternative involves the catch points extending fully across the aperture in the form of a crossbar to ensure that the discs are contained within the projectile.
  • the wall members or sealing discs may be constructed of a combustible material which has an outer face treated in order to resist combustion, ie. consumption may only be initiated by propellant burning forward of the wall member.
  • the catch points 57 may be formed as a separate component 59 that is removably retained in the tail portion 48 ′, such as by cooperating screw threads (not shown), once the cavity 49 has been loaded with propellant charges 50 and respective sealing discs.
  • This component modification of the fourth embodiment is shown in FIG. 9 .
  • the entire cavity portion 49 including the rearward aperture 58 may be formed as a separate component and similarly removably retained in the projectile body 46 .
  • the separate component containing the cavity could alternatively be formed with the lateral arrangement of propellant charges and respective expansion bleed ports as described above.
  • a projectile 60 includes wall members 61 that are themselves screw threaded into place via cooperating threads 62 provided on the wall member edges and the interior wall of the propellant cavity 63 , respectively. Furthermore, as shown in FIG. 10 , the wall members 61 each include sealing plugs 64 that are wedged into place in the wall members in a similar fashion as the sealing discs discussed above.
  • the sealing plugs 64 are outfitted with a small T-shaped retaining member 65 that stops or at least resists the plugs from leaving the projectile cavity 63 entirely. It is presently expected that the sealing plugs 64 would need to be manufactured as two pieces (ie. plug and retaining member) and assembled in situ.
  • the T-shaped portion is made up of several small catch points, rather than using the entire ring.
  • the catch points are a plurality of radially outwardly extending fingers 66 of somewhat cruciform configuration.
  • FIG. 12 shows the end result of igniting the forwardmost propellant charge 67 . 1 in this scenario.
  • the individual propellant charges 67 may be ignited using only one induction coil per projectile (as discussed above in relation to FIGS. 1A and 1B ) with different coded SCBs for each propellant charge 67 . 1 , 67 . 2 , 67 . 3 , etc. Accordingly four (4) different kinds of code responsive SCBs would be required in the presently illustrated example of the fifth embodiment.
  • FIGS. 15 and 16 of the drawings there are shown components of a projectile assembly of the type described in the present applicant's International Patent Application No. PCT/AU02/00932.
  • the earlier invention was concerned with the staged or sequential ignition a plurality of propellant charges associated with each projectile in order to reduce in-barrel pressures whilst maintaining projectile muzzle velocity during firing.
  • each projectile assembly 80 includes a main projectile body 81 with a head portion 82 and a rearwardly extending tail portion 83 having a tapered skirt 84 , as depicted in FIG. 15 .
  • the projectile assembly 80 also includes a plurality of propellant cup members 85 which also include a tail portion 86 with tapered skirt 87 extending rearwardly from a transverse wall 88 similarly to the main body 81 , as depicted in FIG. 16 .
  • the wedging action on the tapered skirt portion effectively seals the respective tail portions against the barrel bore, as described in the applicant's earlier International Applications.
  • FIGS. 18, 19 and 20 A further embodiment of the invention is depicted in FIGS. 18, 19 and 20 , wherein the main projectile body 91 is of the type including a head portion 92 with rearwardly extending central spine 93 and a band or collar 94 disposed on the head portion 92 of the projectile body 91 , wherein the collar and head portion include complementary tapered surfaces 95 , 96 .
  • An auxiliary projectile body 97 also includes a central spine 98 and a similarly configured collar member 99 . In both cases, the collar members are arranged to provide an operative seal with the bore of a barrel (not shown).
  • individual propellant charges 101 , 102 , 103 , 104 , 105 and 106 may be selectively simultaneously ignited by receipt of firing signals by respective initiators 111 , 112 , 113 , 114 , 115 and 116 .
  • each initiator is integrated with a receiving means that can receive the firing signals directly from a signal transmitting coil disposed in the barrel (not shown), thus obviating the requirement for secondary receiving coils.
  • the embodiment illustrates how different propellant charge separating means may be employed together in a projectile assembly, in that a given pair of charges 103 104 is separated from other pairs 101 - 102 and 105 - 106 by transverse walls of the auxiliary projectiles 97 . 1 , 97 . 2 , whilst individual charges within the pair may be separated by respective enclosures in the form of non-metallic bags 121 , 122 , 123 , 124 , 125 and 126 .
  • any propellant charges remaining in the barrel after firing a particular projectile may be cleared from the barrel by separate initiation, prior to firing the next projectile in the stack of projectiles.
  • propellant division and selective initiation arrangement of the present invention may be used within many of the present applicant's other earlier projectile designs and barrel assembly configurations. Put more simply, there are existing designs and configurations not mentioned here that could use the method outlined above of separate smaller propellant loads and coded SCBs (or other ignition method) to achieve an electronically selectable range variable projectile.
  • the propellant charge 73 could be split into four loads 73 . 1 , 73 . 2 , 73 . 3 , 73 . 4 , using bags each containing a respective initiator 74 , 75 , 76 , 77 , as shown in FIG. 14 .

Abstract

Projectiles with sealed propellant are described herein. In one embodiment of the invention, a projectile includes a body having a nose portion and a tail portion, a plurality of propellant charges contained within the body, a plurality of selectable initiators contained within the body for ignition of respective propellant charges, one or more ports for exit of ignition gases produced by the charges for propulsion of the projectile from the weapon, and one or more inductors for inducing a firing current, where at least one initiator only initiates on receiving a firing current which is different from the firing signal required to initiate the other initiators.

Description

  • This is a divisional application of U.S. Ser. No. 13/846,484, filed Mar. 18, 2013, which is a continuation of U.S. patent application Ser. No. 12/346,600, filed Dec. 30, 2008, now U.S. Pat. No. 8,402,897, issued Mar. 26, 2013, which is a divisional application of U.S. patent application Ser. No. 10/545,206, filed Jun. 16, 2006, now U.S. Pat. No. 7,475,636, issued Jan. 13, 2009, which is a national phase application of International Application No. PCT/AU2004/000141, filed Feb. 10, 2004, which claims the priority from Australian Patent Application Nos.: 2003900572 filed Feb. 10, 2003; 2003902103 filed May 2, 2003; and 2003902556 filed May 23, 2003. The disclosures of the above-identified applications are incorporated by reference herein in their entirety.
  • FIELD
  • The present invention relates generally to projectiles. More particularly, this invention relates to projectiles with sealed propellant.
  • BACKGROUND
  • The kinetic energy (KE) of conventional projectiles, for example standard mortar rounds, may be varied by tailoring the amount of propellant that is associated with each projectile before firing. This may require different internal propellant loads produced during manufacture or the use of auxiliary propellant charges, where possible.
  • In mortar rounds, the projectiles and auxiliary propellant charges are generally separate from one another before firing. The auxiliary propellant is typically provided in a number of small parcels that may be supplied in different volumes or in the same volume for incremental use. Depending on the range that is required, the mortar operator manually attaches one or more parcels providing the appropriate amount of propellant to the mortar round before insertion into a tube or barrel for firing. This procedure also considerably slows the rate of fire that can be achieved by the weapon and is prone to human error when loading.
  • It will be appreciated that a more cost effective, convenient and reliable arrangement for varying the kinetic energy of projectiles is desirable, particularly where a high rate of fire is required. Particularly where the projectile firing weapon is of the type including a plurality of rounds stacked in a barrel for sequential firing and required to be remotely controlled. It would be of further advantage if the construction of individual rounds was substantially homogeneous.
  • SUMMARY
  • Projectiles with sealed propellant are described herein. In one embodiment of the invention, a projectile includes a body having a nose portion and a tail portion, a plurality of propellant charges contained within the body, a plurality of selectable initiators contained within the body for ignition of respective propellant charges, one or more ports for exit of ignition gases produced by the charges for propulsion of the projectile from the weapon, and one or more inductors for inducing a firing current, where at least one initiator only initiates on receiving a firing current which is different from the firing signal required to initiate the other initiators.
  • Other features of the present invention will be apparent from the accompanying drawings and from the detailed description which follows.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • In order that this invention may be more readily understood and put into practical effect, reference will now be made to the accompanying drawings which illustrate embodiments of the invention, wherein:
  • FIGS. 1A-1F show a first embodiment in which a projectile has forward ports for exit of propellant gases;
  • FIGS. 2A-2D show a second embodiment in which a projectile has rearward ports for exit of propellant gases;
  • FIGS. 3A, 3B show an inductive firing system for the projectiles;
  • FIG. 4 is a sectional side elevational view of a projectile of another embodiment of the invention, prior to firing;
  • FIG. 5 is a sectional side elevational view of the projectile of the embodiment, after firing the third and fourth propellant charges;
  • FIG. 6 is a sectional side elevational view of the projectile of the embodiment, after firing the second, third and fourth propellant charges;
  • FIG. 7 is a sectional side elevational view of the projectile of the embodiment, after firing all propellant charges;
  • FIG. 8 is a sectional end elevational view of the projectile of the embodiment;
  • FIG. 9 is a sectional side elevational view of a variation to the projectile of the embodiment;
  • FIG. 10 is a sectional side elevational view of a projectile of another embodiment of the present invention, prior to firing;
  • FIG. 11 is a sectional end elevational view of the projectile of the embodiment;
  • FIG. 12 is a sectional side elevational view of a projectile of a embodiment of the present invention, subsequent to firing all propellant charges;
  • FIG. 13 is a sectional side elevational view of a projectile of a embodiment of the present invention;
  • FIG. 14 is a sectional end elevational view of the projectile of the embodiment;
  • FIGS. 15, 16 and 17 depict a projectile assembly of a embodiment of the present invention; and
  • FIGS. 18, 19 and 20 depict a projectile assembly of another embodiment of the present invention.
  • DETAILED DESCRIPTION
  • In the following description, numerous details are set forth to provide a more thorough explanation of embodiments of the present invention. It will be apparent, however, to one skilled in the art, that embodiments of the present invention may be practiced without these specific details. In other instances, well-known structures and devices are shown in block diagram form, rather than in detail, in order to avoid obscuring embodiments of the present invention.
  • Reference in the specification to “one embodiment” or “an embodiment” means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the invention. The appearances of the phrase “in one embodiment” in various places in the specification do not necessarily all refer to the same embodiment.
  • Referring to the drawings it will be appreciated that the invention can be implemented in various ways for a variety of projectiles and purposes. The invention may be provided as a single projectile, as a weapon containing projectiles, or as a barrel assembly containing stacked projectiles for insertion in a weapon, for example.
  • The embodiments described herein relate to mortar rounds of up to about 60 mm caliber, it will be appreciated that the invention finds application in variety of projectile configurations. In particular, projectile configurations adapted for axial stacking in a barrel assembly and arranged for sequential firing, suitably by electronic means, as disclosed in earlier patent applications originating from either or both of these inventors.
  • FIG. 1A shows a projectile having a body 10 with nose and tail portions 11 and 12 adapted to be stacked in a barrel with other similar projectiles. The projectile typically includes a payload 13 which may be of various kinds such as explosive, flash-bang, smoke-generating or fire retardant for example. Propellant charges 14 are contained by cavities within the projectile and are selectively ignited by respective initiators 15, preferably inductive elements such as semiconductor bridges (SCBs), although a range of wired or wireless primer systems may be used. The charges are held in their cavities by plugs 16 which may be threaded or glued in place, for example. Ports 17 are provided in the nose portion for exit of the gases produced by combustion of the charges. In this example the ports open forwards and propel a leading adjacent projectile from the barrel. This projectile is in turn propelled by charges in a trailing adjacent projectile or by charges in the base of the barrel. The nose portion is preferably shaped to fit the tail portion of the leading projectile and similarly the tail portion is shaped to fit the nose portion of the trailing projectile. This provides a degree of sealing between the projectiles and may be achieved in various ways.
  • FIGS. 1B and 1C are end views of the projectile in FIG. 1A showing the nose and tail portions. There are four propellant charges 14 located symmetrically around the longitudinal axis of the projectile, retained by four plugs 16 and correspondingly provided with four ports 17 for exit of combustion gases. The number and arrangement of the charges may be varied to suit the purpose of the particular projectile. It should be borne in mind however, that the flight characteristics of the projectile may change when the charges are selected and ignited, unless all of the charges are ignited before the projectile is fired from the barrel. The centre of mass of the projectile may shift for example.
  • FIG. 1D shows how two projectiles of this kind may be stacked in a barrel. The nose portion 11 of the trailing projectile fits the tail portion 12 of the leading projectile, and preferably expands the tail portion 12 into a sealing contact with the inside of the barrel. In this example, a convex curved surface of the nose portion matches a concave surface in the tail portion, and the tail portion also includes a rim 18 that contacts the body of the trailing projectile. One or more charges in the trailing projectile are selected and ignited to propel the leading projectile from the barrel with a required kinetic energy. Once the leading projectile has departed any charges remaining in the trailing projectile are ignited to produce a predetermined weight and centre of mass in the trailing projectile, which is now the leading projectile. Each projectile therefore has reasonably standard and predictable characteristics for flight.
  • FIGS. 1E and 1F show how the last projectile in a stack of projectiles of this kind may be fired. Propellant charges 14 may be provided in the base of the barrel as either a separate removable element 19E, or as a fixed element 19F of the barrel itself. The charges 14 in each of these figures are contained and ignited in a manner similar to that of the charges in the projectiles. The separate base element 19E is preferably loaded down the barrel before the projectiles while the fixed base element while charges in the fixed element 19F may be loaded as individual items from the rear of the barrel. These charges may be selected and fired to provide a predetermined kinetic energy to the last projectile.
  • FIG. 2A shows an alternative projectile having a body 20 with nose and tail portions 21 and 22, adapted to be stacked in a barrel with other similar projectiles if required. The projectile includes a payload 23 in this example. Propellant charges 24 are contained by cavities within the projectile and are selectively ignited by respective initiators 25, preferably inductive elements such as semiconductor bridges (SCBs), although a range of wired or wireless primer systems may be used. The charges are held in their cavities by plugs 26 which may be threaded or glued in place, for example. Ports 27 are provided in the tail portion for exit of the gases produced by combustion of the charges. In this example the ports open rearwards and propel the respective projectile from the barrel. The nose portion is preferably shaped to fit the tail portion of the leading projectile and similarly the tail portion is shaped to fit the nose portion of the trailing projectile. This provides a degree of sealing between the projectiles and may be achieved in various ways.
  • FIGS. 2B and 2C are end views of the projectile in FIG. 2A showing the nose and tail portions. There are four propellant charges 24 located symmetrically around the longitudinal axis of the projectile, retained by four plugs 26 and correspondingly provided with four ports 27 for exit of combustion gases. The number and arrangement of the charges may be varied to suit the purpose of the particular projectile, bearing in mind that the flight characteristics of the projectile may change when the charges are selected and ignited. The weight and centre of mass of the projectile may change for example. On the other hand, the rearward exit ports are less likely to create drag.
  • FIG. 2D shows how two projectiles of this kind may be stacked in a barrel. The nose portion 21 of the trailing projectile fits the tail portion 22 of the leading projectile, and preferably expands the tail portion 22 into a sealing contact with the inside of the barrel. In this example, a convex curved surface of the nose portion matches a concave surface in the tail portion, and the tail portion also includes a rim 28 that contacts the body of the trailing projectile. It will be appreciated that a wide range of shapes and dimensions may be used in any of the projectiles described herein. One or more charges in each projectile are selected and ignited to propel the respective projectile from the barrel with a required kinetic energy. The projectiles generally have less predictable flight characteristics than those of FIG. 1A.
  • FIG. 3A shows a typical propellant charge 14 or 24 from FIGS. 1 and 2 in more detail. The charge material 300 is contained by a metal housing 301, open fully at one end 302 and with a smaller aperture 303 at the other end 304. A disc 305 of composite material blocks the aperture 303 but is ruptured on ignition of the charge material so that combustion gases can pass through the aperture into a respective exit port. An initiator 306 is threaded or press-fitted into end 302, based on an SCB igniter in this example. The initiator includes the SCB 307 connected across a coil 308, both mounted in a fitting 309 of plastic for example. A small amount of pyrotechnic material 310 surrounds the SCB to act as a booster in combustion of the charge material. Many alternative structures could be used for the propellant charges and for the initiator, which could also be introduced directly to cavities in the projectile without need of the housing 301 for example.
  • Semiconductor bridges are known devices having the appearance of a microchip with two terminal wires, such as shown in U.S. Pat. No. 4,708,060 and subsequent US patents. If an electric potential is placed across these two wires, the semiconductor bridge releases a small amount of energy, most in the form of heat. The energy released by the SCB may in some cases be insufficient to ignite the propellant charges directly and the initiators may further require a set-up chemical compound (i.e. a compound which is capable of being initiated by an SCB and will, in turn, ignite the charge). SCBs can be designed and arranged such that a current induced between the two terminals can cause energy release. It is considered that the various means of inducing a current in a coil of wire using a magnetic field (induction) are well enough understood by those proficient in the art that such details need not be discussed here, save one example. It is therefore to be taken that all such means of providing a suitable firing current, whether by inducing said current or otherwise, are within the ambit of this invention.
  • FIG. 3B schematically shows an inductive firing system that may be used to launch the projectiles shown in FIGS. 1 and 2. A magnetic field suitable to activate an SCB can be induced using a signal transmitting coil 33 wrapped around the barrel 30, suitably in the vicinity of projectiles 31 therein, i.e. one transmitting or primary coil 33.1, 33.2, etc. for each projectile 31.1, 31.2, etc. The current in the primary coils 33 can be selectively turned on or off by a fire control unit (FCU) 39 and thus the resulting current in receiving or secondary coils 35.1, 35.2 can be manipulated in the same fashion. The primary coils may be connected separately to the FCU or in series. The FCU may be operated in various ways to select the kinetic energy and therefore the charges to be ignited for the next projectile to be fired. A manual user could operate a rotatable switch that simply indicates 1, 2, 3 . . . or all of the charges are to be ignited. The user or an automated firing system determines the kinetic energy required for a particular projectile according to the environment in which the user or the automated system is located.
  • In order to fire the charges in a designated projectile (for example projectile 31.2), the FCU 39 applies firing signal current to the primary coil 33.2 wrapped around the barrel 30 for that projectile 35.2. The resultant magnetic field induces a current in the secondary coil 35.2, which is applied to the two terminals of the initiators 32, 33, 34. Ignition of one or more propellant charges 36 a, 36 b, 36 c occurs in response to those initiators arranged to ignite upon receipt of the firing signal.
  • SCBs can also be designed such that they will not initiate due to a simple current but only when a particular “type” of current occurs. Indeed, SCB technology now offers the ability to manufacture SCBs that require various and distinct levels of energy of ignition signal to activate the energetic material. Encoders and decoders could also be used in conjunction with SCB technology, if required. Where encoders/decoders and other logic circuits are employed, a signal modulation scheme may comprise any pulse wave modulation (PWM), pulse code modulation (PCM) or pulse amplitude modulation (PAM) scheme, or in any other suitable encoding scheme. This allows the separate, smaller propellant charges 36 to be discretely ignited via the common induction coil pairs 33, 35.
  • We now turn to consider the use of variations in current to embed an ignition signal as an example. In order to fire propellant charge 36 a for the designated (or any particular) projectile 35.2 the FCU 39 applies current (with the appropriate modulated variations embedded within it) to the primary coil 33.2 associated with that projectile. The resultant current in secondary coil 35.2 (induced by the magnetic field) thus varies in intensity in proportion to the variations in current the FCU has applied. The induced current that is delivered to the SCBs thus also varies in proportion with the variations in intensity of the magnetic field. Thus the appropriate SCB 32 in propellant load 36 a of the projectile 35.2 can be delivered the appropriate coded signal and therefore be initiated without the initiation of propellant charges 36 b or 36 c, through the use of a single induction coil 33 per projectile.
  • It will be appreciated that, upon initiation of a selected propellant charge or charges 36, the rapid combustion thereof operates to discharge the associated projectile from the barrel 30. Where only one propellant charge is initiated, eg. centre charge 36 b by SCB 33, the kinetic energy imparted to the projectile will be considerably lower than imparted when all three propellant charges 36 a, 36 b, 36 c are initiated.
  • FIGS. 4 to 8 of the drawings depict a projectile 45 of another embodiment of the invention having a projectile body 46 with a cavity 49 wherein a plurality of propellant charges 50 are disposed longitudinally in the projectile. In contrast, the propellant charges of the embodiments discussed above were disposed laterally within the projectile. For reasons of clarity, the initiators and secondary or receiving coils have been omitted from these drawings.
  • The projectile 45 is depicted in FIG. 4 prior to ignition of any of the propellant charges 50, which charges are separated from one another with the cavity 49 by wall members. The propellant charges 50 are composed of a mouldable material in the present embodiment, whereby the rearmost charge 50.4 is exposed through the aperture 58 communicating with the exterior of the projectile adjacent a tail portion of the body 46. Suitably the wall members are in the form of sealing discs 51 having edge surfaces with profiles arranged to wedge into a shallow inwardly tapered wall of the cavity 47. Accordingly, the shaped propellant charges and alternating sealing discs may be located into the cavity 49 via the aperture 58 from the tail 48 of the projectile 45.
  • Since the propellant cavity becomes smaller in diameter toward the head portion 47 of the projectile, if the first loaded sealing disc 51 is forced toward the head 47 of the projectile, wedging will occur between the band edge and the tapered interior wall of the cavity 47, and the disc will retain the forwardmost charge 50.1 in place. Accordingly, when a similarly directed force is applied during firing, e.g. the force resulting from combustion of the second propellant charge 50.2 being initiated, the sealing disc 51 will further be wedged into place with said interior wall 56. This “wedge-sealing” action aims to reduce the likelihood of ignition of propellant charge 50.2 causing any sympathetic or “blow-by” ignition of propellant charge 50.1.
  • Ignition of propellant volume 50.1 however will push the adjacent sealing band in the other direction, both unlocking it and forcing it toward the tail 48 of the projectile 45. The sealing disc 51 will not move far before the edge of the sealing disc loses contact with the cooperating interior wall 56 of the cavity, thereby allowing burning propellant 50.1 to reach rearward propellant charge 50.2. The next rearward propellant charge 50.2 is thus ignited and the process continues rapidly until propellant volume 50.4 is ignited. In summary, the ignition of a particular propellant charge 50 will not ignite a propellant charge that is closer to the nose of the projectile, as explained above.
  • FIGS. 5, 6 and 7 show the consequences of igniting a selected propellant charge in the projectile 45. In FIG. 5 the third propellant charge 50.3 has been ignited resulting in the combustion of charges 50.3 and 50.4. In FIG. 6, the second propellant charge 50.2 has been ignited resulting in the combustion of charges 50.2, 50.3 and 50.4. In FIG. 7, the first propellant charge 50.1 has been ignited, resulting in the combustion of all propellant charges.
  • The aperture includes means for resisting the expulsion of the sealing discs from the cavity, which take the form of a plurality of inwardly radially extending fingers or catch points 57 (as depicted in FIGS. 4 to 8) to stop or at least resist the sealing discs 51 from being expelled or otherwise leaving the projectile cavity 49 entirely. There are several small catch points 57 disposed around the periphery of the aperture 58, as will be apparent from the view of FIG. 8. A preferred alternative involves the catch points extending fully across the aperture in the form of a crossbar to ensure that the discs are contained within the projectile. In another form, the wall members or sealing discs may be constructed of a combustible material which has an outer face treated in order to resist combustion, ie. consumption may only be initiated by propellant burning forward of the wall member.
  • Since it may or may not be viable for the catch points to be conveniently manufactured as part of the projectile, the catch points 57 may be formed as a separate component 59 that is removably retained in the tail portion 48′, such as by cooperating screw threads (not shown), once the cavity 49 has been loaded with propellant charges 50 and respective sealing discs. This component modification of the fourth embodiment is shown in FIG. 9.
  • In a further modification, the entire cavity portion 49 including the rearward aperture 58 may be formed as a separate component and similarly removably retained in the projectile body 46. The separate component containing the cavity could alternatively be formed with the lateral arrangement of propellant charges and respective expansion bleed ports as described above.
  • In a fifth embodiment of the present invention depicted in FIGS. 10 and 12 (again omitting the initiators and secondary or receiving coils), a projectile 60 includes wall members 61 that are themselves screw threaded into place via cooperating threads 62 provided on the wall member edges and the interior wall of the propellant cavity 63, respectively. Furthermore, as shown in FIG. 10, the wall members 61 each include sealing plugs 64 that are wedged into place in the wall members in a similar fashion as the sealing discs discussed above.
  • The sealing plugs 64 are outfitted with a small T-shaped retaining member 65 that stops or at least resists the plugs from leaving the projectile cavity 63 entirely. It is presently expected that the sealing plugs 64 would need to be manufactured as two pieces (ie. plug and retaining member) and assembled in situ. In a similar fashion to the fourth embodiment discussed above, the T-shaped portion is made up of several small catch points, rather than using the entire ring. However, in this embodiment, the catch points are a plurality of radially outwardly extending fingers 66 of somewhat cruciform configuration. Also as above, this is so that when a T-shaped member 65 hits its respective wall member 61, it does not close off the propellant charge 67 to the exterior of the projectile 60, as shown in the enlarged cross-sectional view of the FIG. 11.
  • It is presently considered that the T-shaped retaining member 65 may only be necessary for the screwed-in wall member 61 closest to the rear of the projectile. FIG. 12 shows the end result of igniting the forwardmost propellant charge 67.1 in this scenario. The individual propellant charges 67 may be ignited using only one induction coil per projectile (as discussed above in relation to FIGS. 1A and 1B) with different coded SCBs for each propellant charge 67.1, 67.2, 67.3, etc. Accordingly four (4) different kinds of code responsive SCBs would be required in the presently illustrated example of the fifth embodiment.
  • The above embodiments of the invention all entail the use of separate (and generally volumetrically smaller) propellant charges. Typically the operator can elect or an automated fire control system can determine, to burn ¼ of the available propellant, ½, ¾ or all of the propellant available to a particular projectile. However, it is to be understood that propellant volumes need not be divided in this manner, and in fact can be divided in any way desired.
  • In FIGS. 15 and 16 of the drawings there are shown components of a projectile assembly of the type described in the present applicant's International Patent Application No. PCT/AU02/00932. The earlier invention was concerned with the staged or sequential ignition a plurality of propellant charges associated with each projectile in order to reduce in-barrel pressures whilst maintaining projectile muzzle velocity during firing.
  • The applicant has now realized that the present invention may also find a further application as discussed in relation to this sixth embodiment. Here each projectile assembly 80 includes a main projectile body 81 with a head portion 82 and a rearwardly extending tail portion 83 having a tapered skirt 84, as depicted in FIG. 15. The projectile assembly 80 also includes a plurality of propellant cup members 85 which also include a tail portion 86 with tapered skirt 87 extending rearwardly from a transverse wall 88 similarly to the main body 81, as depicted in FIG. 16. When assembled together in a barrel (not shown) and subject to an axial in-barrel load, the wedging action on the tapered skirt portion effectively seals the respective tail portions against the barrel bore, as described in the applicant's earlier International Applications.
  • With reference to FIG. 17, it will be seen that the assembled main projectile 81 and cooperating cup members 85.1, 85.2 effectively from a cavity that is divided by wall members formed by transverse walls 88 of the propellant cups. Thus by provision of coded firing signals to the initiators 90 disposed with the respective propellant charges 89, one, two or all three charges may be simultaneously fired to achieve a desired muzzle velocity.
  • A further embodiment of the invention is depicted in FIGS. 18, 19 and 20, wherein the main projectile body 91 is of the type including a head portion 92 with rearwardly extending central spine 93 and a band or collar 94 disposed on the head portion 92 of the projectile body 91, wherein the collar and head portion include complementary tapered surfaces 95, 96. An auxiliary projectile body 97 also includes a central spine 98 and a similarly configured collar member 99. In both cases, the collar members are arranged to provide an operative seal with the bore of a barrel (not shown).
  • With particular reference to FIG. 20, it will be appreciated that individual propellant charges 101, 102, 103, 104, 105 and 106 may be selectively simultaneously ignited by receipt of firing signals by respective initiators 111, 112, 113, 114, 115 and 116. In the present embodiment, each initiator is integrated with a receiving means that can receive the firing signals directly from a signal transmitting coil disposed in the barrel (not shown), thus obviating the requirement for secondary receiving coils.
  • Further, the embodiment illustrates how different propellant charge separating means may be employed together in a projectile assembly, in that a given pair of charges 103 104 is separated from other pairs 101-102 and 105-106 by transverse walls of the auxiliary projectiles 97.1, 97.2, whilst individual charges within the pair may be separated by respective enclosures in the form of non-metallic bags 121, 122, 123, 124, 125 and 126.
  • In the embodiments discussed above, it will be appreciated that any propellant charges remaining in the barrel after firing a particular projectile may be cleared from the barrel by separate initiation, prior to firing the next projectile in the stack of projectiles.
  • Furthermore, it is envisaged that the propellant division and selective initiation arrangement of the present invention may be used within many of the present applicant's other earlier projectile designs and barrel assembly configurations. Put more simply, there are existing designs and configurations not mentioned here that could use the method outlined above of separate smaller propellant loads and coded SCBs (or other ignition method) to achieve an electronically selectable range variable projectile.
  • For example in the barrel assembly 70 of FIG. 13, with projectiles 71 axially stacked with a barrel 72 as illustrated in sectional side elevation, the propellant charge 73 could be split into four loads 73.1, 73.2, 73.3, 73.4, using bags each containing a respective initiator 74, 75, 76, 77, as shown in FIG. 14.
  • With the addition of different coded SCBs to each bag and an induction coil pair (not shown) for each projectile we have a system similar to that of above. It is to be taken that the present invention is applicable to alternative configurations of projectile and barrel assemblies (not explicitly mentioned here), including but not necessarily limited to those of the applicant, which are to be considered within the ambit of this patent application.
  • It is to be understood that the above embodiments have been provided only by way of exemplification of this invention, and that further modifications and improvements thereto, as would be apparent to persons skilled in the relevant art, are deemed to fall within the broad scope and ambit of the present invention described above.

Claims (5)

What is claimed is:
1. A barrel assembly, comprising
a barrel containing a stack of projectiles arranged axially from nose to tail of, each projectile including
a body having a nose portion and a tail portion,
a plurality of propellant charges contained within the body,
a plurality of selectable initiators contained within the body for ignition of respective propellant charges,
one or more ports for exit of ignition gases produced by the charges for propulsion of the projectile from the weapon, and
one or more inductors for inducing a firing current, wherein at least one initiator only initiates on receiving a firing current which is different from the firing signal required to initiate the other initiators.
2. A barrel assembly as in claim 1, wherein the firing currents differ by energy level.
3. A method of firing projectiles from a barrel, comprising:
loading the barrel with a stack of projectiles arranged axially nose to tail;
sequentially selecting the leading projectile in the stack for firing;
determining a required kinetic energy or muzzle velocity of the leading projectile;
selecting one or a combination of inductively initiated propellant charges within the leading projectile to achieve the required energy or velocity;
selecting a firing signal or signals required to initiate the selected propellant charges; and
inductively triggering the selected propellant charges.
4. A method according to claim 3, further comprising:
determining a required kinetic energy or muzzle velocity of the last projectile;
selecting one or a combination of propellant charges within the barrel to achieve the required energy or velocity;
selecting a firing signal or signals required to initiate the selected propellant charges; and
triggering the selected propellant charges.
5. A method according to claim 4, further comprising triggering any remaining propellant charges in the barrel once the last projectile has been fired.
US15/228,799 2003-02-10 2016-08-04 Selectable kinetic energy of projectiles Abandoned US20160341508A1 (en)

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AU2003900572A AU2003900572A0 (en) 2003-02-10 2003-02-10 Electronically selectable kinetic energy projectile
AU2003900572 2003-02-10
AU2003902103 2003-05-02
AU2003902103A AU2003902103A0 (en) 2003-05-02 2003-05-02 Projectile launching system and projectile munitions
AU2003902556 2003-05-23
AU2003902556A AU2003902556A0 (en) 2003-05-23 2003-05-23 Projectile munitions
PCT/AU2004/000141 WO2004070307A1 (en) 2003-02-10 2004-02-10 Projectile with selectable kinetic energy
US10/545,206 US7475636B2 (en) 2003-02-10 2004-02-10 Projectile with selectable kinetic energy
US12/346,600 US8402897B2 (en) 2003-02-10 2008-12-30 Projectiles with sealed propellant
US13/846,484 US9448026B2 (en) 2003-02-10 2013-03-18 Selectable kinetic energy of projectiles
US15/228,799 US20160341508A1 (en) 2003-02-10 2016-08-04 Selectable kinetic energy of projectiles

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US11/800,481 Abandoned US20080022879A1 (en) 2003-02-10 2007-05-03 Projectiles with sealed propellant
US12/346,600 Active 2024-05-06 US8402897B2 (en) 2003-02-10 2008-12-30 Projectiles with sealed propellant
US13/846,484 Active 2024-11-08 US9448026B2 (en) 2003-02-10 2013-03-18 Selectable kinetic energy of projectiles
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US11/800,481 Abandoned US20080022879A1 (en) 2003-02-10 2007-05-03 Projectiles with sealed propellant
US12/346,600 Active 2024-05-06 US8402897B2 (en) 2003-02-10 2008-12-30 Projectiles with sealed propellant
US13/846,484 Active 2024-11-08 US9448026B2 (en) 2003-02-10 2013-03-18 Selectable kinetic energy of projectiles

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Families Citing this family (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
AUPS303702A0 (en) * 2002-06-20 2002-07-11 Metal Storm Limited A cartridge assembly for multiple projectiles
AU2003900572A0 (en) 2003-02-10 2003-02-20 Metal Storm Limited Electronically selectable kinetic energy projectile
US9151581B2 (en) * 2005-09-07 2015-10-06 Omnitek Partners Llc Actuators for gun-fired projectiles and mortars
US20070144393A1 (en) * 2005-12-22 2007-06-28 Maximillian Kusz Caseless ammunition with internal propellant
US20110030542A1 (en) * 2006-01-17 2011-02-10 Cronin Joseph F Projectile for a Stacked Projectile Weapon
US8424233B2 (en) * 2006-01-17 2013-04-23 Metal Storm Limited Projectile for a stacked projectile weapon
US7627401B2 (en) * 2006-02-07 2009-12-01 Glenbrook Associates, Inc. System and method for remotely regulating the power consumption of an electric appliance
AU2013206060B2 (en) * 2006-02-21 2017-05-11 Defendtex Pty Ltd Projectile for use in a barrel with a plurality of stacked projectiles
US7743705B2 (en) * 2006-02-21 2010-06-29 Metal Storm Limited Propellant sealing system for stackable projectiles
US7984675B2 (en) * 2006-02-21 2011-07-26 Metal Storm Limited Propellant sealing system for stackable projectiles
EP2102580A4 (en) * 2006-12-14 2012-10-24 Metal Storm Ltd Adaptor for stackable projectile
JP5165332B2 (en) * 2007-10-16 2013-03-21 株式会社Ihiエアロスペース Flying object
FI121554B (en) * 2008-01-31 2010-12-31 Patria Weapon Systems Oy Arrangement for supporting a grenade in the barrel of a rear loading weapon and a method for attaching a support to the grenade
WO2010088741A1 (en) 2009-02-06 2010-08-12 Metal Storm Limited Stacked projectile launcher and associated methods
DE102009030872A1 (en) * 2009-06-26 2010-12-30 Rheinmetall Waffe Munition Gmbh submunitions
US9068807B1 (en) 2009-10-29 2015-06-30 Lockheed Martin Corporation Rocket-propelled grenade
US9140528B1 (en) 2010-11-16 2015-09-22 Lockheed Martin Corporation Covert taggant dispersing grenade
US8951219B2 (en) 2011-04-29 2015-02-10 Medtronic, Inc. Fluid volume monitoring for patients with renal disease
US8738330B1 (en) * 2011-08-19 2014-05-27 The United States Of America As Represented By The Secretary Of The Army Scalable, inert munition data recorder and method to characterize performance of a weapon system
WO2013053016A1 (en) * 2011-10-14 2013-04-18 The Commonwealth Of Australia Cartridge and system for generating a projectile with a selectable launch velocity
US9506731B2 (en) 2013-03-14 2016-11-29 Ra Brands, L.L.C. Multiple projectile fixed cartridge
US9423222B1 (en) 2013-03-14 2016-08-23 Lockheed Martin Corporation Less-than-lethal cartridge
US9534876B2 (en) 2013-05-28 2017-01-03 Ra Brands, L.L.C. Projectile and mold to cast projectile
US9200876B1 (en) 2014-03-06 2015-12-01 Lockheed Martin Corporation Multiple-charge cartridge
US9895479B2 (en) 2014-12-10 2018-02-20 Medtronic, Inc. Water management system for use in dialysis
US9726466B2 (en) * 2015-02-13 2017-08-08 Dmd Systems, Llc Fuel/air concussion apparatus
US10677574B2 (en) * 2016-05-03 2020-06-09 Dimosthenis Panousakis Self contained internal chamber for a projectile
US11408717B2 (en) 2020-04-29 2022-08-09 Barnes Bullets, Llc Low drag, high density core projectile
CN112432563B (en) * 2020-10-30 2024-01-09 南京理工大学 Piston type multi-projectile series connection transmitting structure

Family Cites Families (49)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE208577C (en)
US1447023A (en) * 1922-02-03 1923-02-27 Great Falls Automatic Shell Co Projectile
FR613633A (en) 1925-06-20 1926-11-25 Anciens Ets Skoda Arrangement for firing any combination of charge parts in undivided ammunition
US2099993A (en) * 1933-09-15 1937-11-23 Tauschek Gustav Firearm
US2897757A (en) * 1955-07-15 1959-08-04 Jacob J Kulluck Gun cartridge
US3421244A (en) * 1962-03-02 1969-01-14 Us Army Firing mechanism for a rifle mounted auxiliary firearm
US3139795A (en) * 1962-05-24 1964-07-07 Altschuler Samuel Tandem loaded firing tubes
US3283719A (en) * 1965-06-03 1966-11-08 Andrew J Grandy Multiple purpose ammunition
US3427924A (en) * 1966-10-20 1969-02-18 Erich Cornelius Johnsen Electrically fired gun and cartridge therefor
US3486451A (en) * 1967-12-26 1969-12-30 Alvin E Moore Electrically-fired missile
US3621781A (en) * 1968-06-11 1971-11-23 Erich Cornelius Johnsen Hand weapon and cartridge therefor
US3854231A (en) * 1968-09-26 1974-12-17 H Broyles Electrically fired multiple barrel superimposed projectile weapon system
US3815271A (en) * 1972-11-13 1974-06-11 R Lynn Fire control mechanism for firearms
US3877381A (en) * 1973-07-16 1975-04-15 James E Mccoy Shotgun pellet arrangement
FR2278052A1 (en) 1974-07-09 1976-02-06 Europ Propulsion Automatic weapon using self propelled missiles - has projectiles held in magazine and fined in volley electrically
SE386735B (en) * 1974-11-22 1976-08-16 Philips Svenska Ab SYSTEM FOR SELECTIVE FIREWOOD OF SO-CIRCULAR TORCHES
US4135455A (en) * 1977-02-03 1979-01-23 Tracor, Inc. Multiple payload cartridge employing single pair of electrical connections
DE2723621A1 (en) 1977-05-25 1978-11-30 Rheinmetall Gmbh ADDITIONAL DEVICE FOR AIMING THROUGH SHOOTING FOR LARGE-CALIBRATED SHOULDER WEAPONS, IN PARTICULAR DISPOSABLE ARMS
DE2752844A1 (en) 1977-11-26 1982-08-19 Rheinmetall GmbH, 4000 Düsseldorf Missile warhead usable at various ranges - has propellant charge in sections which can be fired in part or fully
US4285153A (en) 1979-05-07 1981-08-25 Crouch Alferd H Weapon
US4313379A (en) * 1979-10-16 1982-02-02 Tracor, Inc. Voltage-coded multiple payload cartridge
GB2161675B (en) * 1984-05-10 1987-07-01 Plessey Co Plc Improvements relating to electrical firing systems
SE460872B (en) * 1986-09-05 1989-11-27 Kurt Goeran Andersson THE BASE FLOOD SAGGAT FOR GRANATES AND PROJECTILES
US4930421A (en) * 1988-07-11 1990-06-05 The Boeing Company Partitioned, fluid supported, high efficiency traveling charge for hyper-velocity guns
DE4035325A1 (en) 1990-11-07 1992-05-14 Wegmann & Co Missile or shell range control - by selective ignition of propellant charges in firing system
GB9216295D0 (en) * 1992-07-31 1998-05-06 Secr Defence Long range artillery range
AUPR757501A0 (en) 2001-09-11 2001-11-01 Metal Storm Limited Firearms
WO1994020809A1 (en) * 1993-03-12 1994-09-15 Dwyer James Michael O A barrel assembly
US6715398B2 (en) * 1994-03-14 2004-04-06 Metal Storm Limited Barrel assembly for firearms
US6142056A (en) * 1995-12-18 2000-11-07 U.T. Battelle, Llc Variable thrust cartridge
AUPO715897A0 (en) 1997-06-03 1997-06-26 O'dwyer, James Michael Firearms
US5880397A (en) * 1997-10-23 1999-03-09 Scientific Solutions Inc. Selectable cartridge
KR100863829B1 (en) 1999-04-07 2008-10-15 메탈 스톰 리미티드 Projectile firing apparatus
FR2792399B1 (en) 1999-04-19 2002-05-03 Giat Ind Sa METHOD OF LAUNCHING A VARIABLE-SPOT PROJECTILE, AMMUNITION AND LAUNCHER ASSOCIATED WITH SUCH A PROJECTILE
US6779461B1 (en) * 1999-09-21 2004-08-24 Olin Corporation Industrial ammunition
AUPQ779500A0 (en) 2000-05-26 2000-06-22 Metal Storm Limited Forming temporary airborne images
AUPR528001A0 (en) * 2001-05-25 2001-08-16 Metal Storm Limited Firearms
US7083690B2 (en) 2001-07-03 2006-08-01 Wiley Organics, Inc. Catalyst system for rendering organic propellants hypergolic with hydrogen peroxide
AUPR629901A0 (en) 2001-07-11 2001-08-02 Metal Storm Limited Multiple propellant initiation
AUPS182802A0 (en) 2002-04-19 2002-05-30 Metal Storm Limited Projectile sealing arrangement
AUPS303702A0 (en) 2002-06-20 2002-07-11 Metal Storm Limited A cartridge assembly for multiple projectiles
AU2002950004A0 (en) * 2002-07-05 2002-09-12 Metal Storm Limited Ignition arrangement for stacked projectiles
US6862996B2 (en) * 2002-10-15 2005-03-08 Mark Key Projectile for rapid fire gun
AU2003900572A0 (en) * 2003-02-10 2003-02-20 Metal Storm Limited Electronically selectable kinetic energy projectile
WO2004097326A1 (en) 2003-05-02 2004-11-11 Metal Storm Limited Combined electrical mechanical firing systems
DE10320731B4 (en) * 2003-05-08 2005-07-21 Nico-Pyrotechnik Hanns-Jürgen Diederichs GmbH & Co. KG Automatic weapon
AU2003902297A0 (en) 2003-05-13 2003-07-24 Metal Storm Limited External propellant initiation system and projectile
DE102004002471B4 (en) 2004-01-16 2007-12-13 Deutsch-Französisches Forschungsinstitut Saint-Louis, Saint-Louis Device and method for delivering a drive energy
US20110146522A1 (en) * 2009-12-18 2011-06-23 Paul Edward Wonsewitz Cartridge Assembly Containing Multiple Projectiles

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AU2003900572A0 (en) 2003-02-20
EP1595104A1 (en) 2005-11-16
KR20050103493A (en) 2005-10-31
US9448026B2 (en) 2016-09-20
JP2006517284A (en) 2006-07-20
US20080022879A1 (en) 2008-01-31
WO2004070307A1 (en) 2004-08-19
CA2515140A1 (en) 2004-08-19
BRPI0407222A (en) 2006-01-31
US20140317984A1 (en) 2014-10-30
AU2004209562A1 (en) 2004-08-19
US7475636B2 (en) 2009-01-13
US20070068414A1 (en) 2007-03-29
MXPA05008497A (en) 2005-11-17
AU2004209562B2 (en) 2011-02-17
IL170187A (en) 2015-06-30
US20090241795A1 (en) 2009-10-01
US8402897B2 (en) 2013-03-26
EP1595104A4 (en) 2010-07-28

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