[0001] This invention relates to an explosive small arms projectile, that is a projectile
filled with an explosive charge.
[0002] In this specification, the subject of the invention will be referred to as a "projectile",
although strictly speaking a bullet or missile is a projectile only while in flight.
The term "projectile" is, however, commonly used to denote the bullet or missile while
at rest or whilst in flight, and will be so used in the specification.
[0003] Such projectiles are used mainly in combating crime, particularly international terrorism,
where, on an aircraft, for instance, an explosive projectile may be used to take out
a target from within a group of innocent bystanders. Complete penetration of the target
may result in harm to the bystanders and it is therefore an object of explosive projectiles
to eliminate or at least minimize, total penetration of the target while maximizing
the shock from the projectile within the target.
[0004] The objective of the inclusion of high explosives (taken to include primary explosives
such as Mercury Fulminate or Lead Azide, and secondary explosives such as pentaerythritol
tetranitrate (PETN) or mannitol hexanitrate) in small arms projectiles may be conceived
of primarily as enhancing the shocking effect of the projectile in the target and
the prevention of the projectile's penetration to any point beyond the intended objective
where the projectile may cause unintended injury or damage.
[0005] Known small arms projectiles are commonly constructed with a jacket of a relatively
light weight yet strong material such as steel and gilding metal, and a core of a
relatively heavy material which may be partly filled with explosive.
[0006] The jacket of a conventional explosive small arms projectile is typically of a wear-resistant
material such as steel which is gilded or clad with gilding metal, the steel providing
mechanical strength to withstand the pressures and high temperatures resulting from
burning propellants and the gilding metal being provided for the purpose of reducing
friction. On known explosive small arms projectiles, the steel jacket is normally
thin and largely non-structural, the functions thereof being containment of the lead
core more than maintaining the integrity of the projectile on impact. This results
in limited penetration of a target with the result that light armour is often sufficient
to prevent penetration. Limited penetration of the target should be distinguished
from eliminating or minimising total penetration of the target. In order to maximize
the shock from the projectile within the target as mentioned above, it is necessary,
firstly, to penetrate the target whereafter, ideally, the total energy of the projectile
should be expended within the target. If, however, the projectile penetrates the target
completely or totally, in other words, if the projectile passes through the target,
the energy of the projectile remaining after passage thereof through the target, is
effectively wasted.
[0007] In prior art small arms explosive projectiles, the explosive is normally carried
within a narrow central bore formed in the lead core. The explosive may comprise a
simple explosive train of an impact sensitive primary explosive, such as, for example,
lead azide, or a more complicated version comprising three stages: a first stage constituted
by an impact sensitive mechanism; an initiating or primary explosive such as, for
example, mercury fulminate as second stage; terminating in a third state of a secondary
high explosive such as PETN. Some designs have employed, as the high explosive, a
poly-basic glycerol trinitrate/pyrocellulose smokeless propellant powder which is
a combustible solid and an explosive, and which 'burns to detonation', but without
optimal explosive utilisation.
[0008] The deficiencies in the effect of prior art explosive small arms projectiles lie
in failure to effect and maintain optimal required ballistic rotational stabilisation,
owing to limitations of conventional explosive projectile mass and mass distribution,
thus leading to deficiencies in long range performance and accuracy; deficiencies
in penetration owing to diminished mass; and perhaps most significantly, deficiencies
in the propagation of the secondary high explosive shock wave within the necessarily
narrow (5 mm diameter (3/16") in a .38 caliber projectile) conventional explosive
column. This last deficiency results from the relatively restricted diameter of the
explosive which is constrained to function in a high velocity rotational mode within
a lead sheath of low strength which is subject to plastic deformation on impact. An
efficient 3-stage .38 caliber projectile containing a 5 mm diameter PETN explosive
column initiated in flight may suffer non-detonation of 10-14% of its PETN column
when detonation occurs within an airfilled space.
[0009] French Patent No. 1,212,390-Levine-relates to a "perforating core" for an armour
piercing projectile, bullet or projectile the material of which is a metal with a
specific gravity in excess of 17, such as sintered tungsten or uranium 238 residue.
The primary concern of the inventor is the hardening of the penetrator which is obtained
by mechanical, chemical or thermal treatment of the projectile or penetrator structure
or by forming a layered structure by heating powders of different compositions once
or successively. A specific example is given of a body of sintered tungsten and an
ogive of sintered tungsten carbide which are spot or compression welded and maintained
under pressure until cooled. They are then annealled or heat treated at a lower temperature.
The primary purpose of the use of high density metal is to increase the penetrating
strength of the projectile.
[0010] German Patent No. 737 734-Rheinmetall Borsig AG-relates to steel alloys for armour
piercing projectiles which find particular application to smaller calibers of projectiles.
The specification and the claims mention the addition to the alloy of a small percentage
(up to 1%) of one or more heavy metals such as molybdenum, vanadium, titanium, tantalum
or berylium. The primary purpose of the invention, once again, is to increase the
penetrating power of the projectile which is solid.
[0011] It is an object of this invention to provide an explosive small arms projectile with
the mass thereof re-distributed to the periphery so as to be subject to investment
with a higher rotational stabilizing energy than was possible with prior art projectiles,
resulting in improved accuracy upon chosen targets at an increased range as well as
an increase in penetrational power, and more particularly resulting in the in-flight
ballistic rotational stabilizing force and energy of the projectile being improved
with respect to known high explosive projectiles of similar total mass and configuration.
[0012] It is a further object of this invention to provide an explosive small arms projectile
in which the explosive column diameter is increased as a means of reducing explosive
non-utilisation. It should be kept in mind that, with explosive projectiles, substantially
all of the energy of the projectile will be transferred to the target in virtually
every case, keeping in mind that explosive non-utilisation is manifested both as non-detonation
and inefficient propagation of the secondary high explosive shock wave within the
explosive column. The latter may result in a delay in detonation to the extent that
a part of the detonation occurs after passage of the projectile through the target
with a resultant wastage of total projectile energy. Upon detonation, the projectile
jacket is exploded and often fragmented. This results in a rapid velocity loss due
to increase friction within the target and often also to the diversion of the material
of fragments of the material within the target. An increase in explosive efficiency,
therefore, contributes towards the retention of the material of the projectile and
the maximisation of the shock from the projectile, within the target.
[0013] In a preferred embodiment the invention provides an explosive small arms projectile,
the explosive containing envelope of which shows an increase in tensile and inertial
characteristics over the conventional lead or copper or steel jacketed lead projectiles
which, once again, improves the penetrational power of the projectile.
[0014] In accordance with the present invention, an explosive small arms projectile comprises
a jacket of metal or an aggregate and an explosive charge located therein, the jacket
defining a cavity for the explosive charge and the material of the jacket having a
specific gravity greater than 13, characterised in that the material of the jacket
occupies a minor proportion of the total volume of the projectile, and accounts for
a major proportion of the total mass of the projectile, the major proportion of the
total volume of the projectile being occupied by the cavity for the explosive charge.
[0015] The mass of the projectile is thus largely concentrated in the jacket which, to this
end, is relatively thick.
[0016] The jacket is of metal or an aggregate. By "aggregate" is included alloys, mixtures
or compounds of metals.
[0017] Preferably, the metal or aggregate of the jacket is tantalum or a tantalum/tungsten
alloy, the densities of which approximate 16.6 to 16.9 g.cm-
3, or includes tantalum or a tantalum/ tungsten alloy as a principal component, the
object being to provide a projectile the jacket of which has a mass equal to the entire
conventional explosive or other projectile.
[0018] Alternatively, the metal or aggregate of the jacket may be chosen from amongst the
elements hafniuum, uranium, rhenium, osmium, platinum, iridium or gold, or alloys,
mixtures or compounds of the said elements, which alloys, mixtures or compounds may
include tantalum or tungsten or both.
[0019] As with prior art projectiles the projectiles of the invention may be coated or gilded
or, alternatively, the jacket may be metal-plated or metal clad on one or both sides.
[0020] The invention is further described with reference to the accompanying drawings in
which:
Figure 1 is a section through a prior art explosive projectile; and
Figure 2 is a section through an explosive projectile according to the invention.
[0021] The projectile 10 shown in Figure 1 comprises a relatively thin steel jacket 12 with
gilding metal 14 and 16 plated on both the inside and outside thereof. The projectile
10 is provided with a lead core 18 formed with a central bore 20 which serves as a
receptacle for the explosive.
[0022] The explosive may be loaded in any one of a number of ways, but for the sake of clarity
is shown as comprising a charge of explosive powder 22, a commercially available small
arms percussion primer 24 and a closure of resin 26.
[0023] As already explained, the purpose of the jacket is to withstand the pressures and
high temperatures resulting from the burning propellants and to withstand the frictional
forces between the lands and grooves of the barrel, of the firing weapon and the accelerating
projectile. The lead core 18 functions to increase the mass of the projectile whereby
the momentum of the projectile may be increased. The primer 24 is intended to detonate
the explosive 22 on impact, but it will be appreciated that the projectile 10 will
have penetrated the target to a certain extent by the time detonation occurs due to
the velocity of the projectile.
[0024] The projectile shown in the drawing is enlarged for clarity and in a .38 caliber
projectile the central bore 20 will have a diameter of 5 mm. A .38 caliber projectile
containing a three-stage explosive column in which detonation is initiated in flight
has been found to suffer non-detonation of 10-14% of its explosive column when detonation
occurs within an air-filled space. The reason for this is that the conventional explosive
projectile can sacrifice only a limited proportion of its total volume to explosive
content in order to retain the mass thereof thus leading to an explosive column of
relatively narrow diameter, in which the explosive shock wave front is propagated
inefficiently particularly under the high velocity rotational condition of actual
use. As has also been mentioned, the thin steel jacket 12 performs a containment function
more than anything else and possesses sufficient mechanical strength merely to withstand
the frictional forces existing between the projectile and the lands and grooves of
the barrel during firing. The jacket is not possessed of the mechanical strength required
to maintain optimal integrity of the projectile when the projectile penetrates the
target.
[0025] The disadvantages of the projectile 10 described above are therefore firstly, the
sacrifice of a significant proportion of the mass, as much as 20% of the leaden mass,
to accommodate a certain amount of explosive, secondly, the use of a narrow diameter
explosive column, thirdly, the relatively limited tensile strength and unsatisfactory
inertial characteristics of the jacket or envelope and fourthly, the unsatisfactory
mass distribution thereof resulting in relatively low rotational stabilising energy
values compared to the projectile of the present invention. It will be seen that,
in a conventional small arms explosive projectile as described above, a compromise
must be struck between the core mass which is normally represented by the amount of
lead in the core and the diameter of the explosive column. It is not possible, with
conventional small arms explosive projectiles, to combine both the attributes of high
mass and a large amount of explosive or at least an explosive column of a larger diameter.
[0026] A solution of these deficiencies may be found in the projectile 100 of the invention
which is shown in Figure 2. The projectile 100 comprises a jacket 102 of a Tantalum/Tungsten
alloy (TaW) although other metals of suitably high specific gravity may be used. Because
of the high specific gravity of the jacket 102 no internal high density core is required
and the whole of the internal space can be filled with explosive. A three-stage explosive
column is shown comprising a commercially available small arms percussion primer 104,
a lead azide primary explosive layer 106, a secondary high explosive layer of PETN
108, and a sealing cap of resin 110.
[0027] The eventual mass of the projectile 100 is arranged to be at least equivalent to
that of the projectile 10 described above. In projectiles of equivalent mass the provision
of the heavy metal jacket 102 may not remedy entirely the mass lost in providing the
projectile 10 with the explosive core, but the diminished mass is at least distributed
more efficiently so as to render the mass of the projectile susceptible to investment
with a higher level of rotational stabilizing energy than is possible with the projectile
10.
[0028] It will be immediately evident that the explosive column has been increased in volume
by approximately 250% whereby explosive non-utilization is reduced from the 10-40%
non-utilization of the prior art projectiles to a point such that it is not readily
detectable and is assumed to be significantly below 1% if not effectively complete.
[0029] The tensile and inertial characteristics of the Tantalum/Tungsten alloy jacket 102
are increased with respect to the prior art jackets to a point potentially approximating
the tensile characteristics of steel or alloy steel and with an improved inertial
characteristic approximating 46% in excess of a lead envelope (calculated on a density
basis of 16.6 g.cm-
3 for TaW and 11.4 g.cm-
3 for Pb so that (16.6/11.4)-1=0.46).
[0030] In addition the projectile mass is efficiently redistributed away from the rotational
axis of the projectile and closer to its periphery in contact with the bore of the
weapon so as to equal and exceed, in flight, the ballistic rotational stabililiz-
ing force and energy present in conventional small arms high explosive projectiles
of similar total mass and configuration. This re-distribution and increased rotational
stabilizing force provides for improved accuracy at longer range.
[0031] These results can be confirmed by a rough comparison, based on calculation, of the
projectile of the invention with a prior art explosive projectile with reference to
two longstanding American military service weapons, namely, the US Model 1911 .45
ACP (Colt Automatic Pistol), firing a 230 grain (14.9g) projectile and the (30-06)
US Caliber 30 (M1A2 Ball) rifle firing a 150 grain (9.7g) projectile.

[0032] From the above table, it may be seen that, whereas the conventional small arms explosive
projectile is bracketed, in terms of muzzle energy, between the conventional non-explosive
bullet as fired from a pistol and a conventional non-explosive bullet as fired from
a rifle, an explosive pistol bullet according to the present invention is bracketed
between a conventional non-explosive projectile as fired from a rifle and a conventional
non-explosive projectile as fired from a big game- hunting rifle. It will, however,
be appreciated that the present invention provides, in a highly manoeuverable .45
Calibre hand-gun, muzzle energies 50% in excess of those provided by a heavy service
rifle such as the US Caliber .30 M1, and nearly ten times that of the non-explosive
.45 Caliber ACP Projectile when both are compared by firing from an identical .45
Caliber Automatic Pistol.
[0033] The term "muzzle energy" is used here to denote the maximum theoeretical energy the
projectile can deliver to the target. In instances where a non-explosive projectile
is retained in the target, thereby communicating the total energy thereof to the target,
the energy expended in the targetwill, discounting frictional and gravitational energy
loss, be more or less equal to the energy of the projectile at the muzzle of the weapon.
If the projectile penetrates the target, substantially less of the energy of the projectile
will be communicated to the target depending on the nature of the penetration; with
explosive projectiles, however, the projectile will, in virtually every case, transfer
all of its energy to the target.
[0034] In the prior art, explosive projectile 10 shown in Figure 1, any increase in jacket
thickness will have to be made at the expense of a decrease in the core mass leading
inevitably to a decrease in the total projectile mass. In the projectile 100 of the
present invention, the jacket 102 can, within certain limits, be increased to any
desired thickness to increase the tensile and mass characteristics of the jacket according
to specific requirements, for instance, to increase the penetrational ability of the
projectile. In this manner, within the space limited small arms context, the twin
functions of energy absorption by a heavy mass and the jacket features of mechanical,
structural and tensile strength, are condensed into a single entity. In the past,
the energy absorbing heavy mass was provided by the lead core and structural integrity
was provided, to a limited extent, by the steel or copper jacket. The improved stability
achieved by the projectile of the present application, provides increased accuracy
and this combined with the greater structural strength of the jacket provides for
better penetration of light armour.
[0035] While the projectile of the present invention is described above with specific reference
to a hand gun projectile, it is evidently adaptable to the entire range of small arms
projectiles, the term "small arms" being taken to indicate any weapon whether mounted
or not, which is portable.
1. An explosive small arms projectile (100) comprising a jacket (102) of metal or
an aggregate and an explosive charge (104, 106, 108) located therein, the jacket (102)
defining a cavity for the explosive charge (104, 106, 108) and the material of the
jacket (102) having a specific gravity greater than 13, characterised in that the
material of the jacket (102) occupies a minor proportion of the total volume of the
projectile (100), and accounts for a major proportion of the total mass of the projectile
(100), the major proportion of the total volume of the projectile (100) being occupied
by the cavity for the explosive charge (104, 106, 108).
2. A projectile according to claim 1, characterised in that the metal or aggregate
of the jacket is tantalum or a tantalum/tungsten alloy or includes tantalum or a tantalum/tungsten
alloy as principal component.
3. A projectile according to claim 1, characterised in that the metal or aggregiate
of the jacket is chosen from amongst the elements hafnium, uranium, rhenium, osmium,
platinum, iridium or gold, or alloys, mixtures or compounds of the said elements,
which alloys, mixtures or compounds may include tantalum or tungsten or both.
1. Ein Explosivgeschoß (100) für Handfeuerwaffen, umfassend einen Mantel (102) aus
Metall oder einem Aggregat und eine darin untergebrachte Explosivladung, wobei der
Mantel (102) einen Hohlraum für die Explosivladung (104, 106, 108) begrenzt und das
Material des Mantels (102) eine spezifische Schwere von mehr als 13 aufweist, dadurch
gekennzeichnet, daß das Material des Mantels (102) einen kleineren Teil des Gesamtvolumens
des Geschosses (100) einnimmt und zu der Gesamtmasse des Geschosses (100) einen größeren
Teil beitgrät, wobei der größere Teil des Gesamtvolumens des Geschosses (100) von
dem Hohlraum für die Explosivladung (104, 106, 108) eingenommen wird.
2. Ein Geschoß nach Anspruch 1, dadurch gekennzeichnet, daß das Metall oder Aggregat
des Mantels Tantal oder eine Tantal-WolframLegierung ist oder Tantal oder eine Tantal-Wolfram-Legierung
als Hauptkomponente enthält.
3. Ein Geschoß nach Anspruch 1, dadurch gekennzeichnet, daß das Metall oder Aggregat
des Mantels aus den Elementen Hafnium, Uran, Rhenium, Osmium, Platin, Iridium oder
Gold ausgewählt ist, oder Legierungen, Gemischen oder Zusammensetzungen dieser Elemente,
welche Legierungen, Gemische oder Zusammensetzungen Tantal oder Wolfram oder beide
enthalten können.
1. Un projectile du type explosif pour arme légère (100) comprenant une enveloppe
(102) faite 06 métal ou d'un agrégat et une charge explosive (104, 106, 108) située à l'intérieur,
l'enveloppe (102) constituant le logement de la charge explosive (104, 106, 108) et
le matériau de l'enveloppe (102) ayant une densité supérieure à 13, caractérisé en
ce que le matériau de l'enveloppe (102) occupe une partie minime du volume total du
projectile (100) et constitue la plus grand partie de la masse totale du projectile
(100), la plus grande partie du volume total du projectile (100) étant occupée par
le logement de la charge explosive (104, 106, 108).
2. Un projectile selon la revendication 1, caractérisé en ce que le métal ou l'agrégat
constituant l'enveloppe est du tantale ou un alliage tantale/tungstène ou comprend
comme principal composant du tantale ou un alliage tantale/ tungstène.
3. Un projectile selon la revendication 1, caractérisé en ce que le métal ou l'agrégat
constituant l'enveloppe est choisi parmi les éléments hafnium, uranium, rhénium, osmium,
platine, iridium ou or, ou des alliages, mélanges ou composés desdits éléments, lesquels
alliages, mélanges ou composés peuvent comprendre du tantale ou du tungstène ou les
deux.