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EP 3 341 675 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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01.04.2020 Bulletin 2020/14 |
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Date of filing: 26.08.2016 |
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International Patent Classification (IPC):
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International application number: |
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PCT/GB2016/052671 |
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International publication number: |
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WO 2017/037439 (09.03.2017 Gazette 2017/10) |
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FIRING ARRANGEMENT
ABSCHUSSANORDNUNG
AGENCEMENT DE MISE À FEU
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
28.08.2015 GB 201515369
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Date of publication of application: |
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04.07.2018 Bulletin 2018/27 |
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Proprietor: E2V Technologies (UK) Limited |
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Chelmsford
Essex CM1 2QU (GB) |
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Inventor: |
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- Chudzicki, John
Lincoln LN1 1PZ (GB)
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Representative: Loveless, Ian Mark |
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Reddie & Grose LLP
The White Chapel Building
10 Whitechapel High Street London E1 8QS London E1 8QS (GB) |
| (56) |
References cited: :
EP-A1- 0 616 190 WO-A2-01/71272 US-A1- 2005 178 282
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WO-A1-2014/088663 US-A1- 2004 099 171 US-A1- 2014 000 470
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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).
|
FIELD OF THE INVENTION
[0001] This invention relates to a firing arrangement and more particularly, but not exclusively,
to a firing arrangement for use with an exploding foil initiator (EFI).
BACKGROUND
[0002] An exploding foil initiator (EFI) is a detonator that may be used to initiate explosives.
When a sufficiently large electrical charge is passed through it, a mechanical member
termed a flyer or slapper is caused to impact on an explosive charge with sufficient
energy to detonate it.
[0003] The firing arrangement used to activate an EFI, or other firing device or detonator,
often includes a capacitor in which charge is built up during an arming phase. Safety
breaks or switches are usually included to keep the system in a safe state and prevent
arming until required on receipt of an arming signal. Following arming, when the EFI
is required to be activated, a firing signal is applied to rapidly discharge the capacitor
through the EFI.
[0004] An example of a prior art firing arrangement is described in
EP 0 616 190 A1.
SUMMARY
[0005] According to a first aspect of the invention, a firing arrangement for an initiator
comprises: a capacitor; an arming arrangement for charging the capacitor on receipt
of an arming instruction; and a trigger device which, when a trigger condition is
achieved indicating sufficient charge on the capacitor, automatically generates a
trigger signal to trigger discharge of the capacitor through the initiator to activate
the initiator. Thus, by employing a firing arrangement in accordance with the invention,
it is not necessary to have a separate externally derived trigger signal as the trigger
signal is automatically generated when the trigger condition is achieved. This may
allow more consistent operation compared to previous firing arrangements because there
is effectively one event from which both the start of the arming phase and the subsequent
trigger signal are derived. The operation may be considered as a combined arming/firing
phase in contrast to prior firing arrangements in which there is an initial arming
phase followed by a separate firing phase which only occurs if and when a firing instruction
is given.
[0006] The arming arrangement further includes a sequence validator having a first input,
a second input and an output, the sequence validator generating the arming instruction
at its output only when a first arming signal is received on the first input followed
by a second arming signal being received on the second input. This provides a safety
break or condition as it requires two arming signals to be received in the correct
sequence for the arming instruction to be generated.
[0007] In an embodiment in accordance with the invention, one or more safety breaks may
thus be used to maintain the firing arrangement in a safe state up until the initiator
is required to be activated and during the safe state the capacitor is uncharged.
This is particularly advantageous for systems that have a long operational life during
which the firing arrangement must be ready to fire at short notice. In one embodiment,
it is possible to readily achieve arming and firing within 1ms of the arming instruction
being received.
[0008] There are advantages for both safety of the firing arrangement and also reliability
of the high voltage circuit in which the capacitor is included as the firing arrangement
spends almost all of its operational life in the dormant, unpowered state. Furthermore,
the firing arrangement can be immediately returned to the safe state if any safety
breaks are removed as no charge is accumulated in the capacitor prior to the arming
instruction being received. In contrast, a typical previous arrangement is in an unsafe
state from the start of the arming phase until and if activation is required.
[0009] A firing arrangement in accordance with the invention also may have the advantage
of an extremely consistent activation time, independent of temperature variation.
[0010] In one embodiment, the trigger condition is a predetermined time from when charging
the capacitor begins, this providing predictability of operation.
[0011] In one embodiment, a pulse counter is included to count a series of pulses to determine
when the predetermined time is reached. Once a fixed number of pulses have been counted,
a trigger signal may be automatically generated to discharge the capacitor into the
initiator. Other approaches for determining the predetermined time may be used instead.
[0012] In another embodiment, the trigger condition is when the voltage across the capacitor
reaches a threshold value. This gives a direct measure of when sufficient charge has
been accumulated to reliably activate the initiator and, in addition, also tends to
provide a predictable time of activation as the capacitor charges at a known rate.
[0013] The arrangement may be such, for example by using a latch-based sequence validator,
that the first and second arming signals must continue to be present at the first
and second outputs in order for the arming instruction to continue. If for any reason
one or both of the arming signals is removed, the arming instruction also ceases to
appear at the sequence validator output and the arming process is stopped.
[0014] In one embodiment, a first static switch and a second static switch may be included,
each of which, in an open state, interrupts the firing arrangement such that arming
is not possible and, in a closed state, completes part of the firing arrangement,
the first static switch and the second static switch being connected to close on receipt
of the first and second arming signal respectively. They thus act as safety breaks
within the arrangement. An arming signal may thus perform a dual function in both
generating the arming instruction and also readying the firing arrangement for arming
and firing. It allows a safety break to be used without requiring an additional separate
signal for operation of the safety break to be generated or applied.
[0015] One embodiment includes a low voltage capacitor arrangement, a dynamic switch and
a transformer, the dynamic switch being operative during arming to discharge the low
voltage capacitor arrangement via a transformer to charge the capacitor. The use of
a low voltage capacitor arrangement enables extremely high local peak current to be
achieved through the transformer with subsequent rapid charging of the capacitor.
The dynamic switch may in one embodiment have a frequency of operation of between
about 100kHz and 1MHz but it could be operated outside this range.
[0016] One embodiment includes a dynamic pulse generator connected to receive the arming
instruction and to output a series of pulses to operate the dynamic switch when the
arming instruction is received. If a pulse counter is included, the pulse counter
may be connected to receive the series of pulses from the dynamic pulse generator.
[0017] According to a second aspect of the invention, a firing system comprises a firing
arrangement in accordance with the first aspect and an initiator. The initiator may
be one of an Exploding Foil Initiator (EFI), a Pyrotechnic Ignitor, a Bridge Wire
(BW), a Film Bridge (FB), a Conducting Composition (CC), a Semiconductor Bridge (SCB)
or Semiconductor Initiator (SCI) or some other device operating on similar principles.
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Some embodiments of the present invention will now be described by of example only,
and with reference to the accompanying drawings, in which:
Figure 1 schematically illustrates a firing arrangement in accordance with the invention;
Figure 2 is a schematic timing diagram relating to the operation of the firing arrangement
shown in Figure 1; and
Figure 3 schematically illustrates operation of a prior art firing arrangement and
the firing arrangement of Figure 1.
DETAILED DESCRIPTION
[0019] With reference to Figure 1, a firing arrangement for activating an initiator, which
in this case is an EFI detonator 1, includes power supply lines 2 and 3 and a low
voltage capacitor bank 4 connected across them. To activate the EFI detonator 1, a
first arming signal is applied to a first input 5 of a sequence validator 6 and a
second arming signal is applied to a second input 7 of the sequence validator 6. The
sequence validator is latched to only generate an arming instruction at 8 when an
arming signal is received at both the first and second inputs and in the correct order.
If the arming signal on the second input 7 arrives before or simultaneously with that
on the first input 5 then no arming instruction signal is generated. Figure 2 shows
the first and second arming signals at 2(a) and 2(b) respectively when they arrive
in the correct sequence at the validator 6.
[0020] The first arming signal is also applied to a first static FET switch 9 to close it
and complete that part of the circuit. Similarly, the second arming signal is also
applied to a second FET switch 10 to complete another part of the circuit. In the
absence of an arming signal, the relevant static FET switch remains open, providing
a safety break in the circuit and preventing the EFI detonator 1 from being activated.
[0021] The arming instruction from the sequence validator 6 is applied to a dynamic pulse
generator 11. On receipt of the arming instruction, the dynamic pulse generator 11
starts to produce a series of pulses, shown at Figure 2 (c) and continues to generate
pulses providing the arming instruction is present at the sequence validator output
8. The series of pulses is applied to a dynamic FET switch 12 and also to a pulse
counter 13. The dynamic FET switch 12 repeatedly opens and closes in response to the
received pulses. This causes the low voltage capacitor bank 4 to discharge via the
primary winding of a transformer 14 at a frequency set by the pulse frequency with
a typical frequency of operation of between 100kHz and 1MHz. The secondary winding
of the transformer 14 is connected via a rectifier 15 across a high voltage capacitor
16 such that the charge on the high voltage capacitor 16 builds as shown in Figure
2(d). The use of low voltage storage capacitors of capacitor bank 4 enable extremely
high local peak current to be achieved through the transformer 14 and subsequent rapid
charging of the high voltage capacitor 16. The low voltage capacitor bank capacitance
is in the order of a few thousand micro-Farads (or a few milli-Farads) and the peak
current delivered during charging is in the order of a few hundred amps. The dynamic
pulse generator 11, dynamic FET switch 12 and transformer 14 can be considered to
form a high voltage converter circuit which may operate in a high frequency mode,
tuned for efficient conversion through the high voltage transformer 14.
[0022] If either or both of the first and second arming signals are removed, the sequence
validator 6 ceases to provide an arming instruction to the dynamic pulse generator
11 which no longer generates pulses and the arming procedure is thus halted.
[0023] The pulse counter 13 counts the number of pulses generated by the dynamic pulse generator
11. When a pre-determined number of pulses has been counted by the pulse counter 13,
a trigger condition is reached. The trigger condition thus represents a fixed time
period from when the arming instruction is received by the dynamic pulse generator
11. It also is indicative of the number of times the dynamic FET switch 12 has operated
and thus the amount of charge discharged through the primary winding of the transformer
14 and accumulated at the high voltage capacitor 16. When the trigger condition is
reached, the pulse counter 13 generates a trigger signal shown at Figure 2(e). The
trigger signal is applied to a trigger circuit 17 which in response closes a switch
18, causing the high voltage capacitor 16 to be discharged through the EFI detonator
1 to activate it, as shown at Figure 2(e). The trigger signal is thus generated automatically
after a predetermined time from receipt of the arming instruction and requires no
separate external input. Due to the relatively short period of time that is taken
to accumulate sufficient energy to fire reliably, it is not necessary to start the
arming sequence until firing is required.
[0024] Figure 3 provides a comparison in general terms of the operating stages of a prior
conventional arrangement, and that of the arrangement shown in Figure 1. In the conventional
arrangement shown at Figure 3(a), following application of power, there is a first
safety break or switch which must be activated before arming can be initiated. During
this period, the system is considered to be safe. When an arming signal is received,
a second safety break must be activated to allow arming to begin and charge is built
up in the system. During arming, the system is not deemed safe and the system is then
held in an armed state without any further safety breaks until and if a separate firing
signal is received. The system may thus be held in an unsafe condition for a relatively
long time and indeed, the firing signal may never be received. In contrast, the arrangement
shown in Figure 1, as shown at Figure 3(b), remains in a safe state until an arming
signal is received. The second safety break is activated at the same time as arming
is begun and then firing occurs automatically a known time thereafter. Thus it provides
a rapid arming and firing circuit that essentially eliminates the armed state but
instead transitions rapidly from the safe state to the fired state, maintaining the
safe state for almost all of a mission. Firing/arming times of less than 1ms are readily
achievable. A firing arrangement in accordance with the invention also has the advantage
of an extremely consistent activation time, independent of temperature variation.
Furthermore, the system can be immediately returned to the safe state if any safety
breaks are removed as no charge is accumulated in the high voltage capacitor prior
to the arming instruction.
[0025] In another firing arrangement, the pulse counter 13 is omitted. A voltage monitor
is applied across the high voltage capacitor 16, shown as a broken line at 19, and
the trigger condition is when the voltage and hence charge exceeds a pre-determined
threshold value. In this embodiment, the trigger signal is also automatically generated
following receipt of an arming instruction.
[0026] The firing arrangement of Figure 1 is used with an EFI detonator but could be used
with, for example, a pyrotechnic ignitor, bridge wire detonator or any electro-explosive
device.
[0027] Previous approaches to arming and firing generally involve a separate arming phase
after which the device is held in the armed state until required to fire. Figure 2
shows part of the arming circuit that takes an input to cause arming and a separate
input to cause firing. A separate circuit is used to control provide a fire pulse
after a fixed number of pulses have been applied to the arming input. This achieves
firing after a consistent time period. Due to the relatively short period of time
that is taken to accumulate sufficient energy to fire reliably, it is not necessary
to start the arming sequence until firing is required. It enables the system to remain
in the safe state for the majority of the operational sequence. This is particularly
advantageous for systems that have a long operational life during which the system
must be ready to fire at short notice. The advantage is both for safety of the system
and also reliability of the high voltage circuit as it spends almost all of its operational
life in the dormant, unpowered state.
1. A firing arrangement for an initiator comprising: a capacitor; an arming arrangement
for charging the capacitor on receipt of an arming instruction; and a trigger device
which, when a trigger condition is achieved indicating sufficient charge on the capacitor,
automatically generates a trigger signal to trigger discharge of the capacitor through
the initiator to activate the initiator;
wherein the arming arrangement includes a sequence validator having a first input,
a second input and an output, the sequence validator generating the arming instruction
at its output only when a first arming signal is received on the first input followed
by a second arming signal received on the second input.
2. The firing arrangement as claimed in claim 1 wherein the trigger condition is a predetermined
time from when charging the capacitor begins.
3. The firing arrangement as claimed in claim 2 and including a pulse counter to count
a series of pulses to determine when the predetermined time is reached.
4. The firing arrangement as claimed in claim 1 wherein the trigger condition is when
the voltage across the capacitor reaches a threshold value.
5. The firing arrangement as claimed in claim 1 and including a first static switch and
a second static switch each of which, in an open state, interrupts the firing arrangement
such that arming is not possible and, in a closed state, completes part of the firing
arrangement, the first static switch and the second static switch being connected
to close on receipt of the first and second arming signal respectively.
6. The firing arrangement as claimed in any preceding claim and including a low voltage
capacitor arrangement, a dynamic switch and a transformer, the dynamic switch being
operative during arming to discharge the low voltage capacitor arrangement via a transformer
to charge the capacitor.
7. The firing arrangement as claimed in claim 6 wherein the dynamic switch is operative
during arming at a frequency in the range 100kHz to 1MHz.
8. The firing arrangement as claimed in claim 6 or 7 and including a dynamic pulse generator
connected to receive the arming instruction and to output a series of pulses to operate
the dynamic switch when the arming instruction is received.
9. The firing arrangement as claimed in claim 8 when dependent on claim 2 wherein the
pulse counter is connected to receive the series of pulses from the dynamic pulse
generator.
10. The firing arrangement as claimed in any preceding claim wherein the time period from
receiving the arming instruction to generating the trigger signal is 1ms or less.
11. A firing system comprising a firing arrangement as claimed in any preceding claim
and an initiator.
12. The firing system as claimed in claim 11 wherein the initiator is one of: an Exploding
Foil Initiator (EFI); a Pyrotechnic Igniter; a Bridge Wire (BW); a Film Bridge (FB);
a Conducting Composition (CC); a Semiconductor Bridge (SCB); and a Semiconductor Initiator
(SCI).
1. Abschussanordnung für einen Zünder, die Folgendes umfasst: einen Kondensator; eine
Scharfmachanordnung zum Laden des Kondensators nach Empfang eines Scharfmachbefehls;
und eine Triggervorrichtung, die, wenn eine Triggerbedingung erreicht ist, die eine
ausreichende Ladung auf dem Kondensator anzeigt, automatisch ein Triggersignal zum
Triggern des Entladens des Kondensators durch den Zünder erzeugt, um den Zünder zu
aktivieren;
wobei die Scharfmachanordnung einen Sequenzvalidator mit einem ersten Eingang, einem
zweiten Eingang und einem Ausgang beinhaltet, wobei der Sequenzvalidator den Scharfmachbefehl
an seinem Ausgang nur dann erzeugt, wenn ein erstes Scharfmachsignal auf dem ersten
Eingang empfangen wird, gefolgt von einem am zweiten Eingang empfangenen zweiten Scharfmachsignal.
2. Abschussanordnung nach Anspruch 1, wobei die Triggerbedingung eine vorbestimmte Zeit
ist, ab der das Laden des Kondensators beginnt.
3. Abschussanordnung nach Anspruch 2 mit einem Pulszähler zum Zählen einer Serie von
Impulsen, um festzustellen, wenn die vorbestimmte Zeit erreicht ist.
4. Abschussanordnung nach Anspruch 1, wobei die Triggerbedingung die ist, wenn die Spannung
über den Kondensator einen Schwellenwert erreicht.
5. Abschussanordnung nach Anspruch 1 mit einem ersten statischen Schalter und einem zweiten
statischen Schalter, die jeweils in einem offenen Zustand die Abschussanordnung unterbrechen,
so dass Scharfmachen nicht möglich ist, und in einem geschlossenen Zustand einen Teil
der Abschussanordnung vollenden, wobei der erste statische Schalter und der zweite
statische Schalter so geschaltet sind, dass sie nach Empfang des ersten bzw. zweiten
Scharfmachsignals schließen.
6. Abschussanordnung nach einem vorherigen Anspruch mit einer Niederspannungskondensatoranordnung,
einem dynamischen Schalter und einem Transformator, wobei der dynamische Schalter
beim Scharfmachen die Aufgabe hat, die Niederspannungskondensatoranordnung über einen
Transformator zu entladen, um den Kondensator zu laden.
7. Abschussanordnung nach Anspruch 6, wobei der dynamische Schalter beim Scharfmachen
mit einer Frequenz im Bereich von 100 kHz bis 1 MHz operativ ist.
8. Abschussanordnung nach Anspruch 6 oder 7 mit einem dynamischen Pulsgenerator, so geschaltet,
dass er den Scharfmachbefehl empfängt und eine Serie von Pulsen zum Betätigen des
dynamischen Schalters ausgibt, wenn der Scharfmachbefehl empfangen wird.
9. Abschussanordnung nach Anspruch 8 in Abhängigkeit von Anspruch 2, wobei der Pulszähler
zum Empfangen der Serie von Pulsen von dem dynamischen Pulsgenerator verbunden ist.
10. Abschussanordnung nach einem vorherigen Anspruch, wobei die Zeitperiode vom Empfang
des Scharfmachbefehls bis zum Erzeugen des Triggersignals 1 ms oder weniger ist.
11. Abschusssystem, das eine Abschussanordnung nach einem vorherigen Anspruch und einen
Zünder umfasst.
12. Abschusssystem nach Anspruch 11, wobei der Zünder einer der Folgenden ist: ein Sprengfolien-Initiator
(EFI); ein pyrotechnischer Zünder; ein Überbrückungsdraht (BW); eine Filmbrücke (FB);
eine leitende Zusammensetzung (CC); eine Halbleiterbrücke (SCB) und ein Halbleiterinitiator
(SCI).
1. Agencement de mise à feu pour un initiateur comprenant : un condensateur ; un agencement
d'armement pour charger le condensateur à la réception d'une instruction d'armement
; et un dispositif de déclenchement qui, quand une condition de déclenchement indiquant
une charge suffisante du condensateur est satisfaite, génère automatiquement un signal
de déclenchement pour déclencher la décharge du condensateur à travers l'initiateur
pour activer l'initiateur ;
dans lequel l'agencement d'armement comporte un validateur de séquence ayant une première
entrée, une seconde entrée et une sortie, le validateur de séquence générant l'instruction
d'armement à sa sortie uniquement quand un premier signal d'armement est reçu sur
la première entrée suivi d'un second signal d'armement reçu sur la seconde entrée.
2. Agencement de mise à feu selon la revendication 1 dans lequel la condition de déclenchement
est un laps de temps prédéterminé à compter du début de la charge du condensateur.
3. Agencement de mise à feu selon la revendication 2 et comportant un compteur d'impulsions
pour compter une série d'impulsions pour déterminer quand le laps de temps prédéterminé
est atteint.
4. Agencement de mise à feu selon la revendication 1 dans lequel la condition de déclenchement
est quand la tension aux bornes du condensateur atteint une valeur de seuil.
5. Agencement de mise à feu selon la revendication 1 et comportant un premier commutateur
statique et un second commutateur statique qui chacun, dans un état ouvert, interrompent
l'agencement de mise à feu de manière à empêcher l'armement et, dans un état fermé,
réalisent une partie de l'agencement de mise à feu, le premier commutateur statique
et le second commutateur statique étant connectés pour se fermer à la réception des
premier et second signaux d'armement respectivement.
6. Agencement de mise à feu selon n'importe quelle revendication précédente et comportant
un agencement de condensateur basse tension, un commutateur dynamique et un transformateur,
le commutateur dynamique fonctionnant durant l'armement pour décharger l'agencement
de condensateur basse tension par l'intermédiaire d'un transformateur pour charger
le condensateur.
7. Agencement de mise à feu selon la revendication 6 dans lequel le commutateur dynamique
fonctionne durant l'armement à une fréquence dans la plage de 100 kHz à 1 MHz.
8. Agencement de mise à feu selon la revendication 6 ou 7 et comportant un générateur
d'impulsions dynamique connecté pour recevoir l'instruction d'armement et produire
en sortie une série d'impulsions pour actionner le commutateur dynamique quand l'instruction
d'armement est reçue.
9. Agencement de mise à feu selon la revendication 8 quand elle dépend de la revendication
2 dans lequel le compteur d'impulsions est connecté pour recevoir la série d'impulsions
en provenance du générateur d'impulsions dynamique.
10. Agencement de mise à feu selon n'importe quelle revendication précédente dans lequel
la période de temps à compter de la réception de l'instruction d'armement jusqu'à
la génération du signal de déclenchement est de 1 ms ou moins.
11. Système de mise à feu comprenant un agencement de mise à feu selon n'importe quelle
revendication précédente et un initiateur.
12. Système de mise à feu selon la revendication 11 dans lequel l'initiateur est un :
d'un initiateur à feuille explosive (EH); d'un allumeur pyrotechnique ; d'un fil d'amorce
(BW) ; d'une feuille chaude (FB) ; d'une composition conductrice (CC) ; d'un pont
à semi-conducteur (SCB) ; et d'un initiateur à semi-conducteur (SCI).
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description