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EP 0 351 040 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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13.07.1994 Bulletin 1994/28 |
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Date of filing: 05.05.1989 |
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Portable selfcontained explosives system
Tragbares, unabhängiges Explosivsystem
Système explosif, independent, et portatif
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Designated Contracting States: |
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AT BE CH DE FR GB LI SE |
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Priority: |
10.05.1988 US 192868
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Date of publication of application: |
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17.01.1990 Bulletin 1990/03 |
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Proprietor: DYNO NOBEL INC. |
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Salt Lake City
Utah 84144 (US) |
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Inventor: |
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- Miller, Kenneth A.
West Jordan
Utah 84088 (US)
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Representative: Charlton, Peter John et al |
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Elkington and Fife
Prospect House
8 Pembroke Road Sevenoaks, Kent TN13 1XR Sevenoaks, Kent TN13 1XR (GB) |
| (56) |
References cited: :
FR-A- 1 164 351 GB-A- 383 322 US-A- 3 580 171
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FR-A- 2 119 502 GB-A- 787 783 US-A- 4 657 534
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The present invention relates to a system for forming an explosive and more particularly
to a system that is portable, self-contained and is capable of mixing essentially
non-explosive ingredients from separate containers to form an explosive. The system
is particularly adaptable for military or tactical applications.
[0002] Common uses for explosives in military or tactical applications are for demolition
work, barrier creation, concrete breaching, concertina wire removal, etc. It often
is necessary for infantry to carry explosives on their persons for such purposes.
This creates a hazard for the person carrying the explosive as well as for those in
the person's vicinity, because the explosive, which necessarily must be relatively
sensitive to initiation in small quantity applications, may be susceptible to initiation
by rifle bullet or other projectile or munition. A need therefore exists for a tactical
explosive that can be carried by infantry in a non-explosive state and then rendered
detonable at the desired time. This need is satisfied by the system and unit of the
present invention which houses segregated non-explosive ingredients that can be readily
mixed together at the intended time of usage to form a sensitive, detonable explosive.
[0003] In addition, a tactical explosive for infantry use must be capable of being transported
in a backpack, must be able to be used with minimal preparation time and must be capable
of use in varied weather and battle conditions. The system and unit of the present
invention satisfy these requirements in that the unit can be sized to fit in a backpack;
the self-contained unit readily can form an explosive within, for example, one minute;
the mixing operation can be accomplished manually without any direct contact with
the ingredients or the final explosive; the containers protect the ingredients from
the environment; an inner container is housed within an outer container and thus the
handling of separate containers is not required; the unit can be operated under water
and the explosive composition itself can be designed to be flowable and waterproof
thereby making it adaptable for a variety of applications.
[0004] Finally, a tactical explosive must be capable of producing sufficient energy and
brisance to accomplish its intended purpose. Heretofore, a relatively powerful compound
explosive has been used such as TNT (trinitrotoluene), Composition B, pressed RDX
and C4. As explained more fully hereafter, the system of the present invention is
capable of forming an explosive of equal or greater energy and brisance than such
compound explosives but which is formed from non-detonable ingredients that can be
transported safely.
[0005] FR-A-2119502 describes a portable self-contained unit for transporting and mixing
ingredients to form an explosive comprising:
(a) a first container for holding one or more ingredients,
(b) a second container for holding one or more ingredients which when mixed with the
ingredient(s) in the first container form an explosive, the second container being
disposed within or contiguous to the first container, and
(c) a means for rupturing the second container. Following rupturing of the second
container the unit is held upside down or shaken to cause the ingredients to be mixed.
[0006] According to the present invention there is provided a unit of the type described
in FR-A-2119502, but characterised in that a mixing element is provided for mixing
together the ingredients in the first and second containers to form an explosive.
[0007] Preferably, one container holds an inorganic oxidizer salt solution and the other
a fuel. When these ingredients are mixed together an explosive is formed from preferably
non-explosive ingredients.
[0008] Referring to the FIGURE, there is shown one illustrative embodiment of a portable,
self-contained explosives mixing unit 1 constructed in accordance with the present
invention and including a first or outer container 2 for holding one or more ingredients
of the explosive. This outer container preferably is rigid or semi-rigid and can be
formed from any material compatible with the contained ingredients, such as plastic.
Housed or disposed within or contiguous to the outer container 2 is an inner or second
container 3 for holding one or more additional ingredients of the explosive which
when mixed with the ingredient(s) in the outer container 2 will form an explosive.
The inner container 3 has at its open end a flange 4 that abuts or sets upon a corresponding
surface at the top of the outer container 1. The flange 4 is secured against the outer
container 2 by means of a cap 5 that is threadibly engaged with outer container 1
by threads 6. The flange 4 is sealed with respect to the cap 5 by means of an o-ring
7. (A similar o-ring seal could be placed between the flange and the adjacent surface
of the outer container or the flange could be glued to such surface.) In this fashion,
the ingredients within the inner container are segregated from the ingredients in
the outer container.
[0009] The inner container 3 is composed of a material that is rupturable or frangible to
allow mixing of the ingredients in the inner container with those in the outer container
at the desired time. Such frangible materials include polystyrene or other plastics.
The cap 5 also could function as an inner container if, for example, inner container
3 were an integral part of cap 5 or if cap 5 otherwise were modified to hold ingredients
that were separated from the ingredients in the outer container by means of a rupturable
membrane. Thus the language "disposed within or contiguous to" includes configurations
in which the inner or second container is adjacent to the outer or first container
and separated therefrom by a rupturable membrane.
[0010] Slidably engaged with the cap 5 is a mixing element or plunger 8 in the form of a
rod and piston assembly having a handle 9, a shaft 10, a baffle plate 11 at the end
of the shaft opposite the handle and a base 12 disposed on the shaft 10 between the
baffle plate 11 and the closed end 13 of the inner container 3. The shaft 10 extends
through the axis of the inner container 3 and protrudes through its closed end 13.
[0011] Also shown is a port 14, through which ingredients may be loaded into the inner container
3 or through which a blasting cap may be inserted, and plug 15. A lid 16 is adapted
to be removably engaged with the cap 5 to cover and prevent premature movement of
the plunger 8.
[0012] Once the unit 1 is assembled as shown in the FIGURE with the separate explosive ingredients
present in both the inner and outer containers, the unit can be operated to mix the
ingredients together and produce an explosive as follows. The lid 16 first is removed
and then the handle 9 of the plunger 8 manually is pulled or forced upward or away
from the cap 5 and outer container 1. This causes the base 12 of the plunger to put
a compressive force on the closed end 13 of the frangible inner container 3, and as
the plunger 8 is continued to be pulled toward the top or opening of the outer container
1, the frangible inner container ruptures or breaks and the ingredients thereof are
allowed to mix with those ingredients in the outer container. The closed end 13 of
the inner container can have grooves or convolutions 17 as shown to ease or enhance
the rupturing of the inner container. As the plunger then is forced to reciprocate
within the confines of the outer container 1, the baffle plate 11 moves up and down
(or back and forth) along the axis of the outer container 1, much like a piston within
a cylinder, to mix uniformly the ingredients in the ruptured inner container with
those in the outer container. The orifices 18 in the baffle plate 11 enhance this
mixing action as the ingredients are forced to flow through the orifices. The ruptured
or broken inner container 3 may break apart into several or more separate pieces which
also enhance the mixing action, and it has been found that the presence of separate
pieces of inner container 3 does not adversely affect the detonation results of the
final mixed explosive.
[0013] The present invention can be further illustrated by reference to the examples given
below.
[0014] In a unit similar in construction to that shown in the FIGURE, explosive compositions
were formed under various conditions and were test detonated as follows:
| Formulation (parts by weight of the final composition): |
| Oxidizer Solution (outer container) |
Fuel (inner container) |
| Sodium perchlorate |
40.5 |
Atomized aluminum |
18.0 |
| Water |
31.0 |
Paint grade aluminum |
2.0 |
| Ethylene glycol |
8.0 |
|
|
| Xanthan gum |
.5 |
|
|
| |
80.0 |
|
20.0 |

[0015] In the above example, the inner container was a rigid polystyrene plastic which was
ruptured and broken into several pieces upon engagement of the mixing element (plunger
comprising a handle, shaft and baffle plate). The outer container was polyethylene,
the plunger assembly or mixing element was comprised of a polycarbonate shaft and
base, and the baffle plate was a high density polyethylene. The cap element, similar
in configuration to cap (5) shown in the FIGURE, was comprised of high density polyethylene,
and the lid (16) was medium density polyethylene. The inner container contained 1000
grams of the atomized and paint grade aluminum mixture and the outer container contained
3545 grams of the sodium perchlorate solution, which occupied about 2.36 liters of
the 3.79 liter capacity of the outer container. The mixing strokes were done manually
and each stroke occurred in less than 1 second. Thus all mixes except Mix 2 were formed
in less than 1 minute. As indicated in the detonation results, all of the mixes were
relatively sensitive to detonation even at a temperature of -10°C.
[0016] The mixing was accomplished by an individual who held the outer container on the
ground with one hand while he reciprocated the plunger assembly with the other hand.
Following completion of the indicated number of strokes, the resulting mixed explosive
was poured into the various charge diameters and plastic bottles for detonation testing.
[0017] As shown in the preceding example, explosive compositions for use with the system
and in the unit preferably are formed from a binary system of oxidizer and fuel, with
the oxidizer in one container and the fuel in the other. The oxidizer component preferably
is a solution of inorganic oxidizer salt selected from the group consisting of ammonium,
alkali and alkaline earth metal nitrates, chlorates and perchlorates or mixtures thereof.
Perchlorates are particularly preferred because they increase density and enhance
sensitivity in explosive compositions of this type.
[0018] The fuel component can be a liquid, a solid or combinations thereof. The fuel used
in the above example was a mixture of aluminum particles, with the paint grade aluminum
acting as both a fuel and a sensitizer. Other solid fuels include finely divided carbonaceous
materials such as gilsonite, finely divided vegetable grains such as wheat and potato
starch, and sulfur. Liquid fuels include water-immiscible organic liquids such as
mineral oil, waxes, paraffin oils, benzene, toluene, xylenes and petroleum distillates.
Water-miscible organic liquids that can be used as fuels include alcohols such as
methyl alcohol, glycols such as ethylene glycol, amides such as formamide, and analogous
nitrogen-containing liquids. As shown in the example, a portion of the fuel (ethylene
glycol) was contained in the oxidizer solution component, because ethylene glycol
is a solvent for the oxidizer and as a liquid was easier to handle in the solution
rather than in the dry (aluminum) component.
[0019] Water preferably is present in sufficient quantity to keep the oxidizer salt in solution
at intended temperatures of use to allow for a fluid mixing medium. The xanthan gum
thickening agent in the oxidizer solution renders the solution more viscous which
aids in suspending the aluminum particles uniformly throughout the composition following
mixing. Various thickening agents are well-known in the art. A density reducing agent,
such as hollow glass or plastic spheres, may be included in either the oxidizer or
fuel component to increase sensitivity.
[0020] The theoretically available energy of the formulation of the example is 1384 kcal/kg,
which compares favorably with that for TNT of 1235 kcal/kg.
[0021] Although in the above example the oxidizer solution was in the outer container, and
the aluminum fuel was in the inner container, this arrangement could have been reversed;
however, it was easier to mix the solids into the liquid.
[0022] A preferred size of the unit of the present invention is as follows: An outer container
capable of holding 4545 grams of mixed explosive and comprising a cylindrical container
approximately 15 centimeters in diameter and 20 centimeters in height. The inner container
would be about one-fourth of this size (if holding the fuel component). The size of
the unit and its various components, however, can be varied as desired.
[0023] The explosive should be fluid at the mixing temperature for ease of mixing and to
allow ease of removal from the outer container into a separate receptacle, if desired.
Further, a fluid explosive can be used advantageously in a variety of applications.
[0024] The positioning of the second container within or contiguous to the first container
is not critical; however, if the second container is axially positioned within or
contiguous to the first container, then uniformity of the final mixture is somewhat
easier to obtain. The concept of housing an inner container within or contiguous to
an outer container is advantageous in that it dispenses with the need to handle separate
containers. This prevents the possibility of separation or misplacement of one of
the containers, does not require the handling of separate containers (which is time
consuming and difficult if not impossible to accomplish under water) and prevents
potential errors in attempting to combine ingredients from separate containers.
1. A portable self-contained unit for transporting and mixing ingredients to form an
explosive comprising:
(a) a first container (1) for holding one or more ingredients,
(b) a second container (3) for holding one or more ingredients which when mixed with
the ingredient(s) in the first container form an explosive, the second container (3)
being disposed within or contiguous to the first container (1), and
(c) a means (12) for rupturing the second container;
characterised in that a mixing element (11) is provided for mixing together the ingredients
in the first and second containers to form an explosive.
2. A unit according to claim 1, wherein the mixing element (11) forms part of a manually
operable reciprocating plunger (8).
3. A unit according to claim 2, wherein the rupturing means (12) also forms part of the
plunger (8), whereby when the plunger is reciprocated the rupturing means ruptures
the inner container (3) and the mixing element (11) mixes uniformly the ingredient(s)
in the ruptured inner container with the ingredient(s) in the outer container (1)
to form an explosive.
4. A unit according to claim 2 or 3, wherein the plunger comprises a rod and piston assembly
(9, 10, 11, 12) and the piston is in the form of a baffle plate (11).
5. A unit according to claim 4, wherein the baffle plate (11) has one or more orifices
(18) through which at least part of the ingredients are forced to flow as the plunger
reciprocates.
6. A unit according to any preceding claim, wherein the ingredient in one of the containers
comprises a solution of inorganic oxidizer salt and at least one of the ingredients
in the other container is a fuel.
7. A unit according to claim 6, wherein the inorganic oxidizer salt solution comprises
water and salt selected from the group consisting of ammonium, alkali and alkaline
earth metal nitrates, chlorates and perchlorates or mixtures thereof and the fuel
is selected from the group consisting of solid fuels and liquid fuels.
8. A unit according to claim 7, wherein the fuel is selected from the group consisting
of aluminum particles, carbonaceous materials, finely divided vegetable grains, sulfur
and mixtures thereof.
9. A unit according to any one of claims 6 to 8, wherein at least one of the ingredients
in the other container is a sensitizer.
10. A system according to claim 9, wherein the sensitizer is selected from the group consisting
of compound explosives, particulate metals, density reducing agents and mixtures thereof.
11. A system according to claim 7 or 8, wherein the inorganic oxidizer solution comprises
a solution of sodium perchlorate and the fuel comprises aluminum particles.
12. A unit according to any preceding claim, wherein the first and second containers are
provided by a vessel having a rupturable membrane disposed therein so as to define
the first and second containers on opposite sides of the membrane.
1. Tragbare, in sich abgeschlossene Einheit zum Transportieren und Mischen von Bestandteilen,
um einen Sprengstoff zu bilden, mit:
a) eine ersten Behälter (1) zum Aufnehmen eines oder mehrerer Bestandteile,
b) eine zweiten Behälter (3) zum Aufnehmen eines oder mehrerer Bestandteile, die durch
Mischen mit dem (den) Bestandteil(en) im ersten Behälter einen Sprengstoff bilden,
wobei der zweite Behälter (3) innerhalb des oder benachbart zum ersten Behälter (1)
angeordnet ist, und
c) einem Mittel (12) zum Zerbrechen des zweiten Behälters,
dadurch gekennzeichnet,
daß ein Mischelement (11) zum Zusammenmischen der Bestandteile im ersten und zweiten
Behälter vorgesehen ist, um einen Sprengstoff zu bilden.
2. Einheit nach Anspruch 1, dadurch gekennzeichnet, daß das Mischelement (11) ein Teil
eines manuell betätigbaren, hin- und herbewegbaren Tauchkolbens (8) ist.
3. Einheit nach Anspruch 2, dadurch gekennzeichnet, daß das Zerbrechmittel (12) ebenfalls
ein Teil des Tauchkolbens (8) ist, wobei beim Hin- und Herbewegen des Tauchkolbens
das Zerbrechmittel den inneren Behälter (3) zerbricht und das Mischelement (11) den
(die) Bestandteil(e) im zerbrochenen inneren Behälter mit dem (den) Bestandteil(en)
im äußeren Behälter (1) gleichmäßig mischt, um einen Sprengstoff zu bilden.
4. Einheit nach Anspruch 2 oder 3, dadurch gekennzeichnet, daß der Tauchkolben eine Stangen-
und Kolbenanordnung (9, 10, 11, 12) und der Kolben die Form einer Verteilungsplatte
(11) aufweist.
5. Einheit nach Anspruch 4, dadurch gekennzeichnet, daß die Verteilungsplatte (11) eine
oder mehrere Öffnungen (18) aufweist, durch die wenigstens ein Teil der Bestandteile
hindurchfließen muß, wenn sich der Tauchkolben hin- und herbewegt.
6. Einheit nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß der Bestandteil
in einem der Behälter eine Lösung aus anorganischem Oxidationssalz aufweist und wenigstens
einer der Bestandteile im anderen Behälter ein Treibstoff ist.
7. Einheit nach Anspruch 6, dadurch gekennzeichnet, daß die anorganische Oxidationssalzlösung
Wasser und Salz aufweist, das aus der Gruppe aus Ammonium, Alkali und alkalischen
Erdmetallnitraten, Chloraten und Perchloraten oder Mischungen hiervon ausgewählt ist
und der Treibstoff aus der Gruppe aus Festtreibstoffen und Flüssigtreibstoffen ausgewählt
ist.
8. Einheit nach Anspruch 7, dadurch gekennzeichnet, daß der Treibstoff aus der Gruppe
aus Aluminiumpartikeln, kohlehaltigen Materialien, fein zerteilten pflanzlichen Körnern,
Schwefel und Mischungen hiervon ausgewählt ist.
9. Einheit nach einem der Ansprüche 6 bis 8, dadurch gekennzeichnet, daß wenigstens einer
der Bestandteile im anderen Behälter ein Sensibilisierungsmittel ist.
10. System nach Anspruch 9, dadurch gekennzeichnet, daß das Sensibilisierungsmittel aus
der Gruppe aus Mischsprengstoffen, aus Partikeln bestehenden Metallen, die Dichte
verringernden Mitteln und Mischungen hiervon ausgewählt ist.
11. System nach Anspruch 7 oder 8, dadurch gekennzeichnet, daß die anorganische Oxidationslösung
eine Lösung aus Natriumperchlorat und der Treibstoff Aluminiumpartikel umfassen.
12. Einheit nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, daß der erste
und zweite Behälter von einem Behälter mit einer darin angeordneten zerbrechbaren
Membran gebildet werden, so daß der erste und zweite Behälter auf den gegenüberliegenden
Seiten der Membran definiert ist.
1. Unité autonome portative pour transporter et mélanger des ingrédients afin de former
un explosif, comportant :
(a) un premier récipient (1) destiné à contenir un ou plusieurs ingrédients,
(b) un second récipient (3) destiné à contenir un ou plusieurs ingrédients qui, lorsqu'ils
sont mélangés à l'ingrédient ou aux ingrédients dans le premier récipient, forment
un explosif, le second récipient (3) étant disposé à l'intérieur du premier récipient
(1) ou étant contigu à celui-ci, et
(c) un moyen (12) pour rompre le second récipient ;
caractérisée en ce qu'un élément de mélange (11) est prévu pour mélanger ensemble
les ingrédients dans les premier et second récipients afin de former un explosif.
2. Unité selon la revendication 1, dans laquelle l'élément (11) de mélange fait partie
d'un plongeur (8) pouvant être animé manuellement d'un mouvement alternatif.
3. Unité selon la revendication 2, dans laquelle le moyen (12) du rupture fait également
partie du plongeur (8), grâce à quoi, lorsque le plongeur est animé d'un mouvement
alternatif, le moyen de rupture rompt le récipient intérieur (3) et l'élément (11)
de mélange mélange uniformément le ou les ingrédients dans le récipient intérieur
rompu avec le ou les ingrédients dans le récipient extérieur (1) pour former un explosif.
4. Unité selon la revendication 2 ou 3, dans laquelle le plongeur comporte un ensemble
à tige et piston (9, 10, 11, 12) et le piston se présente sous la forme d'une plaque
(11) à chicanes.
5. Unité selon la revendication 4, dans laquelle la plaque (11) à chicanes présente un
ou plusieurs orifices (18) à travers lesquels au moins une partie des ingrédients
sont forcés de s'écouler lorsque le plongeur exécute un mouvement alternatif.
6. Unité selon l'une quelconque des revendications précédentes, dans laquelle l'ingrédient
dans l'un des récipients comprend une solution d'un sel comburant inorganique et au
moins l'un des ingrédients dans l'autre récipient est un combustible.
7. Unité selon la revendication 6, dans laquelle la solution de sel comburant inorganique
comprend de l'eau et un sel choisi dans le groupe constitué de l'ammonium, d'un alcali
et de nitrate de métaux alcalino-terreux, des chlorates et des perchlorates ou des
mélanges de ceux-ci et le combustible est choisi dans le groupe constitué de combustibles
solides et de combustibles liquides.
8. Unité selon la revendication 7, dans laquelle le combustible est choisi dans le groupe
constitué de particules d'aluminium, de matières carbonées, de grains végétaux finement
divisés, de soufre et de mélanges de ceux-ci.
9. Unité selon l'une quelconque des revendications 6 à 8, dans laquelle au moins l'un
des ingrédients dans l'autre récipient est un sensibilisateur.
10. Système selon la revendication 9, dans lequel le sensibilisateur est choisi dans le
groupe constitué d'explosifs composés, de métaux en particules, d'agents de réduction
de densité et de mélanges de ceux-ci.
11. Système selon la revendication 7 ou 8, dans lequel la solution comburante inorganique
comprend une solution de perchlorate de sodium et le combustible comprend des particules
d'aluminium.
12. Unité selon l'une quelconque des revendications précédentes, dans laquelle les premier
et second récipients sont formés par une cuve dans laquelle est disposée une membrane
pouvant être rompue de façon à définir les premier et second récipients sur des côtés
opposés de la membrane.
