[0001] This invention relates to polymer bonded explosive compositions, their preparation
and use. In particular, the invention relates to polymer-bonded explosive compositions
for munitions.
[0002] Explosive compositions are generally shaped, the shape required depending upon the
purpose intended. Shaping can be by casting, pressing, extruding or moulding; casting
and pressing being the most common shaping techniques. However, it is generally desirable
to cast explosives compositions as casting offers greater design flexibility than
pressing.
[0003] Polymer-bonded explosives (also known as plastic-bonded explosives and PBX) are typically
explosive powders bound into a polymer matrix. The presence of the matrix modifies
the physical and chemical properties of the explosive and often facilitates the casting
and curing of high melting point explosives. Such explosives could otherwise only
be cast using melt-casting techniques. Melt casting techniques can require high processing
temperatures as they generally include a meltable binder. The higher the melting point
of this binder, the greater the potential hazard. In addition, the matrix can be used
to prepare polymer-bonded explosives which are less sensitive to friction, impact
and heat; for instance, an elastomeric matrix could provide these properties.
[0004] The matrix also facilitates the fabrication of explosive charges which are less vulnerable
in terms of their response to impact, shock, thermal and other hazardous stimuli.
Alternatively, a rigid polymer matrix could allow the resulting polymer-bonded explosive
to be shaped by machining, for instance using a lathe, allowing the production of
explosive materials with complex configurations where necessary.
[0005] Conventional casting techniques require the polymerisation step to have commenced
during the fill stage which often results in a solidified composition which retains
air bubbles introduced during mixing of the material, non-homogenous crosslinking,
and in certain cases solidification of the "pot" of explosive before all munitions
or moulds have been filled.. The non-homogenous cross linking can reduce the performance
of the composition as less explosive is present per unit volume. In addition, these
defects may affect the shock sensitivity of the composition, making the composition
less stable to impact or initiation from a shock wave.
[0006] The invention seeks to provide a cast explosive composition in which the stability
of the composition is improved. Such a composition would not only offer improved stability,
but also a reduced sensitivity to factors such as friction, impact and heat. Thus,
the risk of inadvertent initiation of the explosive is diminished.
[0007] According to a first aspect of the invention there is provided a precure castable
explosive composition comprising an explosive material, a polymerisable binder, a
cross linking reagent which comprises at least two reactive groups each of which is
protected by a labile blocking group.
[0008] Current processes used in the production of composite rubber materials involve mixing
a hydroxy-terminated aliphatic polymer with a cross linking reagent. Upon addition,
an immediate polymerisation reaction occurs, leading to the formation of a non-homogeneous
cross linked rubber matrix. Formation of a non-homogenous matrix leads to material
being rejected or the mixture fully polymerising before all munitions or moulds have
been filled. This leads to the rejected material requiring disposal, a process that
has both cost and hazard associated.
[0009] The use of a labile blocking group to protect the reactive groups of the cross linking
reagent allows uniform distribution of the cross linking reagent within the precure
composition, thereby allowing control of when the curing reaction may be initiated.
Upon application of an external stimulus, the blocking group may be removed such that
the reactive groups may be free, so as to allow the cross linking reaction to commence
with the polymerisable binder, and permit the formation of a uniform PBX polymeric
matrix, when desired.
[0010] The labile blocking group may on each of the at least two reactive groups on the
cross linking reagent, may be the same group, or independently selected. The labile
blocking groups may be independently selected so as to be removed at different deblocking
temperature, or in response to different external stimuli.
[0011] The enhanced control of the start of the cross linking reactions allows the recovery
of the precure composition in the event of process equipment failure. In a conventional
cure process many tonnes of material would end up solidifying/curing in the reaction
vessel, as one the reaction has started it cannot be readily stopped. Further, the
delay of the cure reaction allows product quality to be confirmed, before the reaction
is allowed to commence, thereby a poor quality composition, may be prevented from
being filled into moulds or munitions. The use of labile blocking groups on the reactive
groups of the cross linking reagent may reduce the exposure to operators of hazardous
cross linking reagents.
[0012] In a further arrangement the polymerisable binder may be partially polymerised with
the cross linking reagent, such that at least one of the at least two reactive groups
on the cross linking reagent has formed a bond with the polymerisable binder, and
at least one of the at least two reactive groups may protected by a labile blocking
group, such that on removal of the remaining labile blocking group(s) substantially
complete polymerisation with the polymerisable binder may occur.
[0013] In a preferred arrangement the polymerisable binder and cross linking reagent are
partially reacted together to provide a partially polymerised binder-cross linking
reagent, wherein at least one of the at least two reactive groups of the cross linking
reagent is protected by a labile blocking group.
[0014] Where the cross linking reagent has low or poor solubility in the polymerisable binder
or explosive material, the formation of a partially polymerised polymerisable binder/cross
linking reagent may provide a means of increasing homogeneity of the binder in the
explosive composition.
[0015] The partially polymerised polymerisable binder/cross linking reagent may be extracted
and purified, to provide a reduced mass of removed labile protecting group in the
final cured PBX.
[0016] The explosive component of the polymer-bonded explosive may, in certain embodiments,
comprise one or more heteroalicyclic nitramine compounds. Nitramine compounds are
those containing at least one N-NO
2 group. Heteroalicyclic nitramines bear a ring containing N-NO
2 groups. Such ring or rings may contain for example from two to ten carbon atoms and
from two to ten ring nitrogen atoms. Examples of preferred heteroalicyclic nitramines
are RDX (cyclo-1,2,3-trimethylene-2,4,6-trinitramine, Hexogen), HMX (cyclo-1,3,5,7-tetramethylene-2,4,6,8-tetranitramine,
Octogen), and mixtures thereof. The explosive component may additionally or alternatively
be selected from TATND (tetranitro-tetraminodecalin), HNS (hexanitrostilbene), TATB
(triaminotrinitrobenzene), NTO (3-nitro-1,2,4-triazol-5-one), HNIW (2,4,6,8,10,12-hexanitrohexaazaisowurtzitane),
GUDN (guanyldylurea dinitride), FOX-7 (1,1-diamino-2, 2-dinitroethene), and combinations
thereof.
[0017] Other highly energetic materials may be used in place of or in addition to the compounds
specified above. Examples of other suitable known highly energetic materials include
picrite (nitroguanidine), aromatic nitramines such as tetryl, ethylene dinitramine,
and nitrate esters such as nitroglycerine (glycerol trinitrate), butane triol trinitrate
or pentaerythritol tetranitrate, DNAN (dinitroanisole), trinitrotoluene (TNT), inorganic
oxidisers such as ammonium salts, for instance, ammonium nitrate, ammonium dinitramide
(ADN) or ammonium perchlorate, and energetic alkali metal and alkaline earth metal
salts.
[0018] Polymer-bonded explosives include a polymeric binder which forms a matrix bonding
explosive particles within. The polymerisable binder thus may be selected from a wide
range of polymers, depending upon the application in which the explosive will be used.
However, in general at least a portion of the polymerisable binder will be selected,
when cross linked to form polyurethanes, cellulosic materials such as cellulose acetate,
polyesters, polybutadienes, polyethylenes, polyisobutylenes, PVA, chlorinated rubber,
epoxy resins, two-pack polyurethane systems, alkyd/melanine, vinyl resins, alkyds,
, thermoplastic elastomers such as butadiene-styrene block copolymers, and blends,
copolymers and/or combinations thereof.
[0019] Energetic polymers may also be used either alone or in combination, these include
polyNIMMO (poly(3-nitratomethyl-3-methyloxetane), polyGLYN (poly glycidyl nitrate)
and GAP (glycidyl azide polymer). It is preferred that the polymerisable binder component
be entirely selected from the list of polymerisable binders and/or energetic binders
above either alone or in combination.
[0020] Polyurethanes are highly preferred polymerisable binders for PBX formation. In some
embodiments the polymerisable binder will comprise at least partly polyurethane, often
the binder will comprise 50 - 100 wt% polyurethane, in some instances, 80 - 100 wt%.
[0021] The cross linking reagents may be selected from a variety of commonly known, cross
linking reagents, the selection of which depends on the functionality of the polymerisable
binders.
[0022] The highly preferred polyurethanes may typically be prepared by reacting polyol-terminated
monomers or polymers with polyisocyanates. In a preferred arrangement a monomer or
polymer diol may be cross linked with a cross linking reagent such as a diisocyanate.
[0023] The diisocyanate may be such as, for example, MDI (methylene diphenyl diisocyanate)
and TDI (toluene diisocyanate) and IPDI (isophorone diisocyanate). IPDI is generally
preferred as it is a liquid and hence easy to dispense; it is relatively slow to react,
providing a long pot-life and slower temperature changes during reaction; and it has
a relatively low toxicity compared to most other isocyanates. It is also preferred
that, where the polymerisable binder comprises polyurethane, the polyurethane polymerisable
binder includes a hydroxyterminated polybutadiene.
[0024] The labile blocking group may be any reversible blocking group that may be furnished
on the at least two reactive groups on the cross linking reagent, but which can be
removed at a selected time by a stimulus, preferably an external stimulus.
[0025] The labile blocking group may be removed by a stimulus, such as, for example one
or more of, heat, pressure, ultrasound, EM radiation, catalyst, or a shear force.
[0026] In a preferred arrangement the labile blocking group is a thermally labile blocking
group, one that ruptures when subjected to elevated temperatures.
[0027] The blocking group may comprise at least one nitro group, preferably at least two
nitro groups or at least one sterically hindered branched chain hydrocarbyl group.
[0028] The use of nitro, dinitro or trinitro groups on the aryl rings provides increased
exothermic energy of the blocking group, and hence increased energy to the explosive
composition.
[0029] In a highly preferred arrangement the cross linking reagent is a diisocyanate group,
with two blocking groups B, one on each isocyanate reactive group.

[0030] The labile blocking group B may comprise at least one nitro group, preferably at
least two nitro groups or at least one sterically hindered branched chain hydrocarbyl
group.
[0031] The use of nitro, dinitro or trinitro groups, such as for example on an aromatic
ring, such as for example an aryl, phenyl or phenolic rings provides increased exothermic
energy of the blocking group B, and hence increased energy to the explosive composition.
[0032] It has been found that for labile blocking group B, an increase in steric hindrance
of the labile blocking group B, reduces the deblocking temperature, ie the reverse
reaction to the free isocyanate.
[0033] In a highly preferred arrangement the diisocyanate blocking group B is selected from
B is
- I. NHR2R3, wherein R2 and R3 are alkyl, alkenyl, branched-chain alkyl, C(O)R12, aryl, phenyl, or together form a heterocycle.
R12 is alkyl, alkenyl, branched chain alkyl aryl, phenyl, or R2 and R3 together form a lactam.
- II. OR15, O-N=CR9R10
wherein R15 is aryl, phenyl, benzyl, provided that there are at least two nitro group on the
ring;
wherein R9 and R10 are independently selected from alkyl, alkenyl, branched chain alkyl, aryl, phenyl,
provided that at least one of R9 or R10 is a branched chain alkyl or aryl, or phenyl.
[0034] For PBX formulations it has been found that blocked diisocyanates may be selected
to provide de-blocking temperatures in a range that occurs below the temperature of
initiation of high explosive materials and above the temperatures that are generated
during the mixing of the precure reagents. Thereby, there is a specific stimulus of
heat which may be applied to the precure to cause the rupture of the microcapsule
walls.

[0035] In a preferred arrangement
R
4- R
8 may be selected from halo, nitro, lower chain C
1-6 alkyl, In a preferred arrangement the substituted phenol comprises at least two nitro
groups.
R
2, R
3, R
9, and R
10 may be selected from, nitro, aryl, phenyl, lower chain C
1-6 alkyl, branched chain C
1-8 alkyl, preferably isopropyl or tert-butyl.
[0036] It has been found that for blocking groups B an increase in steric hindrance of ,
R
2, R
3, R
9, and R
10 reduces the deblocking temperature, ie the reverse reaction to the free isocyanate.
[0037] In a highly preferred arrangement the thermal release of the blocking group may be
in the range of from 50°C to 150°C, more preferably in the range of from 80°C to 120°C,
such that the un-blocking occurs above current processing temperatures and well below
the ignition temperature of the explosive.
[0038] According to a further aspect of the invention there is provided a batch process
for filling a munition with a cross linked polymer bonded explosive composition comprising
the steps of:
- i) forming an admixture of precure castable explosive composition, comprising an explosive
material, a polymerisable binder, and a cross linking reagent which comprises at least
two reactive groups each of which is protected by a labile blocking group,,
- ii) filling the munition,
- iii) causing the removal of the blocking group to furnish said cross linking reagent;
optionally
- iv) comprising the step of causing the cure of said polymerisable binder to form a
polymer bonded cast explosive composition.
[0039] Further reagents or further stimuli may be added to the composition to cause the
curing reaction to commence, after the cross linking reagent has been de-blocked.
In a highly preferred arrangement, the curing reaction will commence directly as a
result of causing the removal of the blocking group to furnish said reactive group
on the cross linking reagent.
[0040] The step of causing the removal of the blocking group to furnish the cross linking
reagent, may be provided by applying at least one chemical stimulus and/or physical
stimulus. The stimulus may be one or more of heat, pressure ,ultrasound, EM radiation
(e-beam, UV, IR), catalyst, shear force, preferably heat.
[0041] According to a further aspect of the invention there is provided a cured explosive
product comprising a polymer bonded explosive composition and a protonated blocking
group; preferably the protonated blocking group comprises at least 1 nitro group,
more preferably at least 2 nitro groups.
[0042] The explosive component of the polymer-bonded explosive may be in admixture with
a metal powder which may function as a fuel or which may be included to achieve a
specific terminal effect. The metal powder may be selected from a wide range of metals
including aluminium, magnesium, tungsten, alloys of these metals and combinations
thereof. Often the fuel will be aluminium or an alloy thereof; often the fuel will
be aluminium powder.
[0043] In some embodiments, the polymer-bonded explosive comprises RDX. The polymer-bonded
explosive may comprise RDX as the only explosive component, or in combination with
a secondary explosive component, such as HMX. Preferably, RDX comprises 50 - 100 wt%
of the explosive component.
[0044] In many cases the polymerisable binder will be present in the range about 5 - 20
wt% of the polymer-bonded explosive, often about 5 - 15 wt%, or about 8 - 12 wt%.
The polymer-bonded explosive may comprise about 88 wt% RDX and about 12 wt% polyurethane
binder. However, the relative levels of RDX to polyurethane binder may be in the range
about 75 - 95 wt% RDX and 5 - 25 wt% polyurethane binder. Polymer-bonded explosives
of this composition are commercially available, for example, Rowanex 1100™.
[0045] Many defoaming agents are known and in general any defoaming agent or combination
thereof which does not chemically react with the explosive may be used. However, often
the defoaming agent will be a polysiloxane. In many embodiments, the polysiloxane
is selected from polyalkyl siloxanes, polyalkylaryl siloxanes, polyether siloxane
co-polymers, and combinations thereof. It is often preferred that the polysiloxane
be a polyalkylsiloxane; polydimethylsiloxane may typically be used. Alternatively,
the defoaming agent may be a combination of silicone-free surface active polymers,
or a combination of these with a polysiloxane. Such silicone-free polymers include
alkoxylated alcohols, triisobutyl phosphate, and fumed silica. Commercially available
products which may be used include, BYK 088, BYK A500, BYK 066N and BYK A535 each
available from BYK Additives and Instruments, a subdivision of Altana; TEGO MR2132
available from Evonik; and BASF SD23 and SD40, both available from BASF. Of these,
BYK A535 and TEGO MR2132 are often used as they are solventless products with good
void reduction properties.
[0046] Often the defoaming agent is present in the range about 0.01 - 2 wt%, in some instances
about 0.03 - 1.5 wt%, often about 0.05 - 1 wt%, in many cases about 0.25 or 0.5 -
1 wt%. At levels below this (i.e. below 0.01 wt%) there is often insufficient defoaming
agent in the composition to significantly alter the properties of the polymer-bonded
explosive, whereas above this level (i.e. above 2 wt%) the viscosity of the cast solution
may be so low that the composition becomes non-homogenous as a result of sedimentation
and segregation processes occurring within the mixture.
[0047] The explosive composition may include a solvent, any solvent in which at least one
of the components is soluble and which does not adversely affect the safety of the
final product may be used, as would be understood by the person skilled in the art.
However, it is preferred, for the reasons described above, that in some embodiments
that solvent be absent.
[0048] Where present, the solvent may be added as a carrier for the components of the composition.
The solvent will typically be removed from the explosive composition during the casting
process, however some solvent residue may remain due to imperfections in the processing
techniques or where it becomes uneconomical to remove the remaining solvent from the
composition. Often the solvent will be selected from diisobutylketone, polypropylene
glycol, isoparaffins, propylene glycol, cyclohexanone, butyl glycol, ethylhexanol,
white spirit, isoparaffins, xylene, methoxypropylacetate, butylacetate, naphthenes,
glycolic acid butyl ester, alkyl benzenes and combinations thereof. In some instances,
the solvent is selected from diisobutylketone, polypropylene glycol, isoparaffins,
propylene glycol, isoparaffins, and combinations thereof.
[0049] The composition may also contain minor amounts of other additives commonly used in
explosives compositions. Examples of these include microcrystalline wax, energetic
plasticisers, non-energetic plasticisers, antioxidants, catalysts, curing agents,
metallic fuels, coupling agents, surfactants, dyes and combinations thereof. Energetic
plasticisers may be selected from eutectic mixtures of alkylnitrobenzenes (such as
dinitro- and trinitro-ethyl benzene), alkyl derivatives of linear nitramines (such
as an N-alkyl nitratoethyl-nitramine, for instance butyl-NENA), and glycidyl azide
polymers.
[0050] Casting the explosive composition offers a greater flexibility of process design
than can be obtained with pressing techniques. This is because the casting of different
shapes can be facilitated through the simple substitution of one casting mould for
another. In other words, the casting process is backwards-compatible with earlier
processing apparatus. Conversely, where a change of product shape is required using
pressing techniques, it is typically necessary to redesign a substantial portion of
the production apparatus for compatibility with the mould, or the munition to be filled,
leading to time and costs penalties. Further, casting techniques are less limited
by size than pressing techniques which depend upon the transmission of pressure through
the moulding powder to cause compaction. This pressure falls off rapidly with distance,
making homogeneous charges with large length to diameter ratios (such as many shell
fillings) more difficult to manufacture.
[0051] In addition, the casting process of the invention offers a moulded product (the cast
explosive compositions described) with a reliably uniform fill regardless of the shape
required by the casting. This may be partly attributed to the use of a delayed curing
technique, Casting can occur in situ with the housing (such as a munition) to be filled
acting as the mould; or the composition can be moulded and transferred into a housing
in the munition in a separate step. Often casting will occur in situ.
[0052] Further, compositions including polymer-bonded explosives and hydroxyterminated polybutadiene
binders in particular, are more elastomeric when cast than when pressed. This makes
them less prone to undergoing a deflagration-to-detonation transition when exposed
to accidental stimuli. Instead, such systems burn without detonating, making them
safer to use than pressed systems.
[0053] Additionally, the shapes that pressing processes can be reliably applied to are more
limited. For instance, it is often a problem achieving a complete fill of a conical
shape using pressing techniques as air is often trapped at or towards the tip of the
cone. Casting processes, being intrinsically "fluid" processes, are not limited in
this way.
[0054] In some instances the explosive component is desensitized with water prior to formation
of the premix, a process known as wetting or phlegmatization. However, as retention
of water within the precure is generally undesirable it will typically be removed
from the premix prior to further processing, for instance by heating during the mixing
of the explosive component and the plasticiser.
[0055] In some cases the plasticiser will be absent; however the plasticiser will typically
be present in the range 0 - 10 wt% of the plasticiser and explosive premix, often
in the range 0.01 - 8 wt%, on occasion 0.5 - 7 wt% or 4 - 6 wt%. The plasticiser will
often be a non-energetic plasticiser, many are known in the art; however energetic
plasticisers may also be used in some instances. The cast explosive composition of
the invention has utility both as a main charge or a booster charge in an explosive
product. Often the composition will be the main charge. The composition of the invention
may be used in any "energetic" application such as, for example, uses include mortar
bombs and artillery shells as discussed above. Additionally, the inventive composition
may be used to prepare explosives for gun-launch applications, explosive filings for
bombs and warheads, propellants, including composite propellants, base bleed compositions,
gun propellants and gas generators.
[0056] Except in the examples, or where otherwise explicitly indicated, all numbers in this
description indicating amounts of material or conditions of reaction, physical properties
of materials and/or use are to be understood as modified by the word "about." All
amounts are by weight of the final composition, unless otherwise specified. Further,
the cast explosive composition may comprise, consist essentially of, or consist of
any of the possible combinations of components described above and in the claims except
for where otherwise specifically indicated.
[0057] The following non-limiting examples illustrate the invention.
Examples
General synthesis of blocked IPDI
[0058] Blocking group B and isophorone diisocyanate were dissolved in THF or CHCl
3 and refluxed until reaction has reached completion. The solvent was removed
in vacuo to leave the blocked IPDI as a white solid. The yields are given in Table 1 below.
General deblocking method for compounds in Table 1.
[0059] Blocked IPDI (8.68 wt %) was evenly dispersed in a composition of hydroxyl-terminated
polybutadiene (91.1 wt %) and dibutyltin dilaurate (0.22 wt %) at 60 °C over a period
of 2 hours. The mixture was poured into a cast and cured between 90 - 120 °C over
a period of several days to achieve a cross linked rubber. It was found for all examples
there was no reaction between the blocked isocyanate and HTPB in the presence of the
catalyst, at 55°C, even when left overnight.
[0060] This indicates that the blocking group was not removed until temperatures above 90°C
were employed. Therefore general processing of the precure castable explosive composition
may proceed to be mixed, even with slight heating to aid mixing, and that the deblocking
only occurs when significant heat is employed to specifically activate and deblock
the diisocyanate, such that the cross linking reaction may only proceed once the temperature
is raised, to the deblocking temperature.
[0061] An embodiment of the invention will now be described by way of example only and with
reference to the accompanying drawings of which:-
Figure 1 shows a schematic of the fill process
[0062] Turning to fig 1 there is a general scheme 1, for filling a munition 6. The premix
formulation 2, is a mixture of the explosive, HTBP polymerisable binder and other
processing aids, and optionally a catalyst. The premix formulation 2 is agitated such
as by a stirrer 3. A blocked cross linking reagent 4, (either as a solid or dissolved
in a minimal aliquot of solvent), is added to the premix to form the precure formulation
5. The blocked cross linking reagent 4 may be a diisocyanate such as IPDI. The resultant
precure admixture 5 is thoroughly mixed and is transferred to a munition 6 or mould
(not shown) for later insertion into a munition. The munition 6 when filled with the
precure 5 may then be exposed to an external stimuli, such as heat, which removes
the thermally labile blocking group on the blocked cross linking reagent 4, furnishing
the cross linking reagent. The cross linking reagent and HTPB polymerisable binder
may then polymerise and form a polymer bonded explosive 7.
[0063] It should be appreciated that the compositions of the invention are capable of being
incorporated in the form of a variety of embodiments, only a few of which have been
illustrated and described above.
1. A precure castable explosive composition comprising an explosive material, a polymerisable
binder, and a cross linking reagent which comprises at least two reactive groups each
of which is protected by a labile blocking group.
2. A composition according to claim 1 wherein the polymerisable binder is selected, such
that it will from polyurethanes, cellulosic materials such as cellulose acetate, polyesters,
polybutadienes, polyethylenes, polyisobutylenes, PVA, chlorinated rubber, epoxy resins,
two-pack polyurethane systems, alkyd/melanine, vinyl resins, alkyds, , butadiene-styrene
block copolymers, polyNIMMO, polyGLYN, GAP, and blends, copolymers and/or combinations
thereof.
3. A composition according to claim 1 or claim 2, wherein the explosive material is selected
from RDX, HMX, FOX-7, TATND, HNS, TATB, NTO, HNIW, GUDN, picrite, aromatic nitramines
such as tetryl, ethylene dinitramine, nitroglycerine, butane triol trinitrate, pentaerythritol
tetranitrate, DNAN trinitrotoluene, inorganic oxidisers such as ammonium nitrate,
ADN, ammonium perchlorate, energetic alkali metal salts, energetic alkaline earth
metal salts, and combinations thereof.
4. A composition according to any one of the preceding claims wherein the labile blocking
group comprises at least two nitro groups or at least one sterically hindered branched
chain hydrocarbyl group.
5. A composition according to any one of the preceding claims wherein the polymerisable
binder and cross linking reagent are partially reacted together to provide a partially
polymerised binder-cross linking reagent, wherein at least one of the at least two
reactive groups of the cross linking reagent is protected by a labile blocking group.
6. A composition according to any one of the preceding claims wherein the polymerisable
binder is selected, such that it will from polyurethane.
7. A composition according to any one of the preceding claims, wherein the cross linking
reagent comprises a diisocyanate.
8. A composition according to claim 7 wherein the diisocyanate blocking group B is selected
from
B is
I. NHR2R3, wherein R2 and R3 are alkyl, alkenyl, branched-chain alkyl, C(O)R12, aryl, phenyl, or together form a heterocycle.
R12 is alkyl, alkenyl, branched chain alkyl aryl, phenyl, or R2 and R3 together form a lactam.
II. OR15, O-N=CR9R10
wherein R15 is aryl, phenyl, benzyl, provided that there are at least two nitro group on the
ring;
wherein R9 and R10 are independently selected from alkyl, alkenyl, branched chain alkyl, aryl, phenyl,
provided that at least one of R9 or R10 is a branched chain alkyl or aryl, or phenyl.
9. A composition according to any preceding claim, wherein a defoaming reagent is present
in the range of from 0.01 - 2 wt%
10. A batch process for filling a munition with a cross linked polymer bonded explosive
composition comprising the steps of:
i) forming an admixture of precure castable explosive composition, comprising an explosive
material, a polymerisable binder, and a cross linking reagent which comprises at least
two reactive groups each of which is protected by a labile blocking group,
ii) filling the munition
iii) causing the removal of the blocking group to furnish said cross linking reagent.
11. A process according to claim 10 comprising the further step iv) of causing the cure
of said polymerisable binder to form a polymer bonded cast explosive composition.
12. A process according to claim 10 or 11, wherein the cross linking reagent comprises
a diisocyanate.
13. A process according to claim 12 wherein the diisocyanate blocking group B is selected
from
I. NHR2R3, wherein R2 and R3 are alkyl, alkenyl, branched-chain alkyl, C(O)R12, aryl, phenyl, or together form a heterocycle.
R12 is alkyl, alkenyl, branched chain alkyl aryl, phenyl, or R2 and R3 together form a lactam.
II. OR15, O-N=CR9R10
wherein R15 is aryl, phenyl, benzyl, provided that there are at least two nitro group on the
ring;
wherein R9 and R10 are independently selected from alkyl, alkenyl, branched chain alkyl, aryl, phenyl,
provided that at least one of R9 or R10 is a branched chain alkyl or aryl, or phenyl
14. A cured explosive product comprising a polymer bonded explosive composition and protonated
blocking group.
15. A munition comprising a polymer bonded explosive composition and protonated blocking
groups.