Technical Field
[0001] The present invention relates generally to radio frequency directed energy (RFDE)
systems, and more particularly to multifunctional type RFDE systems.
Background of the Invention
[0002] Radio frequency directed energy (RFDE) systems are known in the art for directing
high power RF, microwave and/or millimeter wave electromagnetic energy to destroy
or disrupt a target. Although RFDE systems typically serve as military weapons, RFDE
systems need not be limited to weapon systems. For example, RFDE systems of the present
invention may be used for non-military purposes such as destroying or disrupting foreign
objects, contaminants, undesirable atmospheric conditions, or other types of targets.
[0003] As for weapon systems, it is important to distinguish between an RFDE weapon system
and an electronic warfare system. A primary difference between an RFDE weapon and
an electronic warfare system is power and kill mode. An electronic warfare system
makes use of a
priori knowledge of a target it is designed to jam or disrupt. An electronic warfare system
uses such a
priori knowledge of a target's characteristics (e.g., frequency of operation, method of
operation, etc.) to disrupt or confuse the target with "finesse", or a relatively
low amount of power.
[0004] On the other hand, an RFDE weapon system can go after a broad range of targets (electronics,
biological, ordinance, structures, etc.) due to its relatively large radiated power.
A priori knowledge of the intended target characteristics is typically not required because
the RFDE weapon either burns-out or overwhelms its target by the shear amount of power
it radiates.
[0005] An ongoing problem with RFDE systems is targeting-accurately pointing the RF directed
energy beam at the intended target and establishing an accurate range from the system
to the target. To date, the RFDE system targeting problem has been addressed by using
what may be referred to as auxiliary add-on systems. These add-on systems could include
a stand-alone radar system, a stand-alone laser range finder, stand-alone optical
or infrared imaging system, etc. However, these add-on systems add significant cost
to the RFDE system. In addition, these add-on systems add significant complexity by
requiring calibration of the alignment between the RFDE system and the stand-alone
targeting system.
[0006] Fig. 1 is a block diagram of a typical RFDE system 10. In its simplest form, the
system 10 includes a high power transmitter 12 transmitting thru a high power antenna
14. The transmitter 12 operates at RF, microwave or millimeter wave frequencies. The
system 10 operates based on a prime power source 16, such as an AC mains, generator,
high capacity battery system, etc. A power conditioning block 18 conditions power
delivered from the power source 16 so as to be suitable for powering the transmitter
12. A cooling system 20 provides appropriate cooling to the power conditioning block
18 and the high power transmitter 12 as needed. A control block 22 provides appropriate
control among the various sub-systems.
[0007] The RFDE weapon system 10 further includes an antenna pointing system 24 for aiming
the high power antenna 14, and thus the high power electromagnetic energy beam transmitted
therefrom, at the target. The pointing system 24 typically is driven by coordinate
data identifying the direction and range of the intended target. Such coordinate data
is provided by a stand-alone targeting system 26. As is noted above, the targeting
system 26 is an add-on often in the form of a stand-alone radar system, a stand-alone
laser range finder, stand-alone optical or infrared imaging system, etc. As is also
noted above, however, these add-on systems add significantly to the cost and complexity
of the RFDE system.
US 2004/0075884 A1 discloses a phase conjugate relay mirror apparatus for high energy laser system and
method.
US 2006/0082488 A1 discloses advanced electromagnetic location of electronic equipment.
[0008] In view of the aforementioned shortcomings associated with conventional RFDE systems,
there is a strong need in the art for an RFDE system which is not subject to the cost
and complexity associated with conventional targeting systems.
Summary of the Invention
[0009] The RFDE system of the present invention eliminates the need for a separate, stand-alone
targeting system by integrating a targeting system within the RFDE system itself.
The RFDE system is multi-functional in that all or part of the RFDE system hardware
that functions to direct high power electromagnetic energy also functions to obtain
and provide targeting information to aim the high power electromagnetic energy beam.
For example, the RFDE transmitter is not only used as the source of the directed electromagnetic
energy, but is also used as a radar transmitter for targeting an object. A relatively
simple radar receiver may then be added to the RFDE system. The cost of the overall
system is substantially reduced since an expensive radar transmitter is not required.
Moreover, the complexity of the system is reduced as calibration of the alignment
between the RFDE system and a stand-alone targeting system becomes unnecessary.
[0010] The invention relates to a multi-functional radio frequency directed energy (RFDE)
system according to claim 1 of the appended set of claims.
[0011] The invention also relates to a method of operating a multi-functional radio frequency
directed energy (RFDE) system according to claim 13 of the appended set of claims.
[0012] To the accomplishment of the foregoing and related ends, the invention, then, comprises
the features hereinafter fully described and particularly pointed out in the claims.
The following description and the annexed drawings set forth in detail certain illustrative
embodiments of the invention. These embodiments are indicative, however, of but a
few of the various ways in which the principles of the invention may be employed.
Other objects, advantages and novel features of the invention will become apparent
from the following detailed description of the invention when considered in conjunction
with the drawings.
Brief Description of the Drawings
[0013]
Fig. 1 is a block diagram of a conventional RFDE system;
Fig. 2 is a block diagram of a multi-functional RFDE system in accordance with a first
embodiment of the present invention;
Fig. 3 is a block diagram of a multi-functional RFDE system in accordance with a second
embodiment of the present invention;
Fig. 4 is a block diagram of a multi-functional RFDE system in accordance with a third
embodiment of the present invention;
Fig. 5 is a block diagram of a multi-functional RFDE system in accordance with a fourth
embodiment of the present invention;
Fig. 6 is a block diagram of a multi-functional RFDE system in accordance with a fifth
embodiment of the present invention;
Fig. 7 illustrates a multi-functional RFDE system mounted within an aircraft in accordance
with an embodiment of the present invention;
Fig. 8 illustrates a multi-functional RFDE system mounted within a wheeled vehicle
in accordance with an embodiment of the present invention; and
Fig. 9 is a schematic diagram of a multi-functional RFDE system incorporating a reflector-type
antenna in accordance with an embodiment of the present invention.
Detailed Description of the Invention
[0014] The present invention will now be described with reference to the drawings, in which
like reference numerals are provided to refer to like elements throughout.
[0015] The RFDE system of the present invention integrates a targeting system, such as a
radar targeting system, into an otherwise conventional RFDE system. There are several
ways that the targeting system can be integrated into the RFDE system as explained
herein. The particular embodiments described below are meant to be merely exemplary.
The present invention contemplates not only the particular embodiments described herein,
but any system in which a targeting system is integrated in part or in whole within
the RFDE system.
[0016] Referring to Fig. 2, an RFDE system 30 is shown in accordance with an embodiment
of the present invention. Since many of the elements of the RFDE system 30 in Fig.
2 are similar to those in the conventional system 10 discussed above with respect
to Fig. 1, only the relevant differences with be discussed herein for sake of brevity.
In this particular embodiment, a portion of an otherwise conventional RFDE system
(notably the high power transmitter 12 and/or the transmit antenna 14) forms part
of the targeting system. Specifically, during a targeting mode, the high power RFDE
transmitter 12 is controlled by the control block 22 to transmit standard radar tracking
signals thru the antenna 14. The radar tracking signals may be any type of conventional
radar signal such a pulse or continuous wave radar. The power level of the tracking
signals may be a high powered signal, such as the RFDE signal itself, or a relatively
low powered signal as more typical in radar tracking applications.
[0017] In the embodiment of Fig. 2, a separate radar receiver 32 and radar receive antenna
34 are used in conjunction with the integrated RFDE/radar transmitter 12. In one embodiment,
the RFDE high power output beam intended to destroy or disturb a target is transmitted
using the RFDE/radar transmitter 12 and antenna 14. The radar receive antenna 34 receives
portions of the RFDE output beam reflected by the target back towards the system 30.
The radar receiver 32 processes the reflected return signals using conventional techniques
in order to identify the location of the target. For example, the radar receiver 32
can be coherently linked to the transmitted RFDE output waveform (represented by line
36) so that Doppler processing can be achieved and the direction and range of the
target identified.
[0018] The radar receiver 32 provides the target location information to an integrated targeting
system block 38 which feeds the location information to the antenna pointing system
24. Such operation allows the antenna 14 to be directed in both search and track radar
functions.
[0019] As will be appreciated, the RFDE system 30 in Fig. 2, as with the various other embodiments
of the invention described herein, can operate in both an RFDE mode and a tracking
mode. Both modes may be carried out simultaneously as described above, for example,
where the high power electromagnetic energy output waveform of the RFDE system also
serves as the radar tracking system transmit signal. Alternatively, the RFDE system
30 may switch between the RFDE mode and the tracking mode using a separate RFDE high
power beam and lower power radar transmit signals, respectively. So long as the system
30 switches between the two modes rapidly enough so as not to lose track of the target,
operation between RFDE mode and tracking mode may be time-division multiplexed.
[0020] Typically the radar transmitter is one of the most expensive portions of a radar
tracking system. Therefore, by using the RFDE transmitter 12 and antenna 14 to function
as the radar transmitter and antenna for targeting, the cost of the targeting system
can be drastically reduced. Also, using the radar return of the RFDE high power beam
itself to determine the target location can substantially improve the beam pointing
accuracy of the RFDE system 30. By using the RFDE high power beam to determine the
location of the target, the power density on target will be maximized when standard
radar tracking techniques are employed (e.g., monopulse, continuous scan, etc.).
[0021] Those of ordinary skill will appreciate that the RFDE transmitter 12 can be any transmitter
suitable for transmitting an RFDE high power beam. For example, the RFDE transmitter
12 may be a single or multiple tube source, or solid state source. Moreover, it will
be appreciated that the antenna 14 can be any type of suitable high power antenna
which can be mechanically and/or electronically pointed and scanned via the antenna
pointing system 24. The transmitter/antenna can also be comprised of an active electronically
steered array (AESA), for example, where an array of high power amplifiers/antennas
is utilized. The radar receive antenna 34 can be any type of suitable antenna for
receiving the radar return signals. As with the antenna 14, the radar receive antenna
34 is mechanically and/or electronically pointed and scanned via the antenna pointing
system 24. The antenna pointing system 24 can be a mechanical gimbal or a beam steering
computer controlling phase shifters in an electronically steerable array.
[0022] Fig. 3 illustrates another embodiment representing how a tracking system can be integrated
with an RFDE system. The embodiment of Fig. 3, as with the other embodiments described
herein, shares many of the same elements as Fig. 2, and thus again only the relevant
differences between the embodiments will be discussed for sake of brevity.
[0023] Specifically, Fig. 3 illustrates an RFDE system 40 in which the power amplifier of
the tracking system is integrated within the power amplifier of the RFDE system. More
particularly, the RFDE transmitter 12 includes a low power RFDE signal source 42 operating
at a first frequency and input to an adder 44. The output of the adder 44 is input
to a power amplifier 46 which amplifies the output before being radiated by the transmit
antenna 14. A low power radar signal source 48 at a second frequency is also input
to the adder 44. In addition, the low power radar signal source 48 is input to the
radar receiver 32 to provide for coherent processing. The adder 44 thus outputs the
combined RFDE signal source and radar signal source to the power amplifier 46. The
power amplifier 46 can be any suitable type of amplifier including, for example, an
injection locked magnetron, a klystron, a solid-state amplifier, etc., or an array
of any of these types of amplifiers in an AESA embodiment.
[0024] In the embodiment of Fig. 3, a separate low power radar signal from the signal source
48 is used. This signal is combined with the RFDE signal from the RFDE signal source
42 prior to the combined signal being amplified by the power amplifier 46. The frequencies
of the RFDE signal and the radar signal do not have to be at the same frequency. In
fact, they can be completely Independent of each other within the bandwidth constraints
of the power amplifier 46 and the RFDE transmit antenna 14. It will be appreciated
that significant isolation can be achieved between the RFDE and radar signals by filtering
out the RFDE signal at the receive antenna 34 and/or radar receiver 32.
[0025] Again, it will be appreciated that the RFDE system 40 of Fig. 3 may operate in an
RFDE mode and a targeting mode. As in the other embodiments described herein, such
modes may be carried out simultaneously or in time-multiplexed fashion. In the case
where the RFDE signal source 42 and radar signal source 48 are different, one may
consider such operation as frequency-multiplexed as will be appreciated.
[0026] Fig. 4 illustrates yet another embodiment of the present invention. In this embodiment,
the RFDE system 50 integrates the radar receive antenna into the same antenna 14 serving
as the RFDE and radar transmit antenna. This is accomplished by means of a high power
circulator 52 which routes the RFDE/radar transmit signals from the shared transmitter
12 through to the antenna 14. Reflected signals received by the antenna are routed
by the circulator 52 to the receiver 32 for processing. In this example, as in the
others discussed herein, the RFDE transmit signal may also be the radar transmit signal.
The return signal is received by the same antenna 14 and coupled through the circulator
52 to the receiver 32. The radar system thus can provide target information feedback
to the antenna pointing system 24.
[0027] The high power circulator 52 can be problematic in that it can be difficult to design
a circulator that can handle the typical total power radiated by an RFDE system. Nevertheless,
with improvements in materials and technologies such a circulator may someday be commercially
feasible. Furthermore, the embodiment of Fig. 4 certainly is very suitable for an
AESA system where the output power is broken-up among an array of transmit elements
as discussed in more detail below.
[0028] In some integrated RFDE/targeting applications it may be desirable only to share
the antenna between the RFDE and targeting systems. The RFDE system and the targeting
system otherwise operate independently. An example of such an embodiment is shown
in Fig. 5.
[0029] Specifically, the embodiment of Fig. 5 illustrates a radar system 32' which functions
essentially independently of the RFDE system 60 with the exception of sharing a dual
polarized antenna 14. The RFDE system transmits the RFDE high power beam from the
transmitter 12 via the dual polarized antenna 14 using one polarization (e.g., vertical,
right hand circular, etc.). The radar system 32', with its own transmitter/receiver,
transmits the radar transmit signal via the antenna 14 using the orthogonal polarization
(e.g., horizontal, left hand circular, etc.). The reflected radar return signal received
by the antenna 14 is processed by the radar system 32' to provide target location
information, again using conventional techniques. As in the other embodiments, the
location information is provided to the integrated targeting system 38 which provides
the information to the antenna pointing system 24. The embodiment of Fig. 5 can be
used to provide tracking information and/or is especially suitable for providing range
information for the RFDE system.
[0030] Fig. 6 illustrates an embodiment in which AESAs or phased array antennas may be incorporated
within the present invention. The embodiment of Fig. 6 is fundamentally the same as
the embodiment of Fig. 3, with the exception that the power amplifier 46 is represented
by an array of power amplifiers 46' included with the RFDE/radar transmit AESA antenna
14. The radar receive antenna 34 may similarly comprise an AESA antenna.
[0031] As is shown in Fig. 6, the combined signal from the adder 44 is input to a power
splitter 72 within the AESA antenna 14. The power splitter 72 separates the signal
and provides the split signal to respective phase shifters 74 and power amplifiers
46' corresponding to respective radiator elements 14' in the antenna 14. The antenna
pointing system 24 may steer the antenna 14 by adjusting the phase of the phase shifters
74, as will be appreciated.
[0032] Continuing to refer to Fig. 6, it will further be appreciated that the radar source
48 and RFDE source 42 can be at different frequencies and still radiate in the same
direction. As long as the phase shifters 74 are selected to provide a true time delay
(which is fairly common in the art), the antenna 14 may be steered concurrently for
both frequencies.
[0033] A multifunctional RFDE system of the present invention can be employed on a variety
of platforms. For example, Fig. 7 illustrates an embodiment in which the system is
employed on an aircraft. The combined RFDE/radar transmitter 12 and antenna 14 (not
shown), for example, are mounted to radiate out the side of the aircraft. A pod is
then mounted beneath the aircraft, containing the radar receiver 32 and receive antenna
34 (also not shown).
[0034] Fig. 8 shows an embodiment in which the RFDE system of the present invention can
be employed on a wheeled vehicle. For example, the RFDE and radar systems are mounted
in the back of the vehicle and share a common antenna. One possible such system 80
is shown in Fig. 9. A high power RFDE source 12 radiates into a beam transport system
comprised of mirrors (e.g., 82) suitable for the frequency of operation. A cross-polarized
radar transmit signal from the radar system 32' is then injected into the RFDE beam
path by means of a beam combiner/splitter 84. The RFDE and radar transmit signal are
then simultaneously transmitted from the common antenna 14, in this embodiment a reflector-type
antenna. The radar return signal is received by the antenna 14 and directed back to
the cross-polarized radar system 32' via the mirrors 82 and beam combiner/splitter
84.
1. A multi-functional radio frequency directed energy (RFDE) system (30, 40, 50, 80),
comprising:
an RFDE transmitter (12) and at least one RFDE antenna (14, 14') for directing high
power electromagnetic energy towards a target sufficient to cause high energy damage
or disruption of the target;
a targeting system (38) for locating the target, the targeting system including a
radar transmitter (48) and at least one radar antenna (14, 34) for transmitting and
receiving electromagnetic energy to locate the target; and
an antenna pointing system (24) for aiming the at least one RFDE antenna (14, 14')
at the target based on the location of the target as ascertained by the targeting
system (38),
wherein at least a portion of the radar transmitter (48) or the at least one radar
antenna (14, 34) is integrated within at least a portion of the RFDE transmitter (12)
or the at least one RFDE antenna (14, 14'),
wherein the radar transmitter (48) is embodied at least partially within the RFDE
transmitter (12), and wherein the radar transmitter (48) and the RFDE transmitter
comprise a common RF power amplifier (46)
2. The multi-functional RFDE system of claim 1, wherein the at least one radar antenna
(14, 34) is embodied at least partially within the at least one RFDE antenna (14,
14').
3. The multi-functional RFDE system of claim 1, wherein the electromagnetic energy for
locating the target is at a first frequency, and the high power electromagnetic energy
is at a second frequency different from the first.
4. The multi-functional RFDE system of claim 2, wherein the at least one radar antenna
(14, 34) functions to transmit the electromagnetic energy for locating the
5. The multi-functional RFDE system of claim 4 wherein the at least one radar antenna
(14, 34) includes a first radar antenna (14) that functions to transmit the electromagnetic
energy for locating the target and to transmit the high power electromagnetic energy,
and a second radar antenna (34) that functions to receive the electromagnetic energy
reflected from the target in order to locate the target.
6. The multi-functional RFDE system of claim 5, wherein the first radar antenna (14)
comprises a multi-element phased array.
7. The multi-functional RFDE system of claim 4, wherein the at least one radar antenna
(14) that functions to transmit the electromagnetic energy for locating the target
also functions to receive the electromagnetic energy reflected from the target in
order to locate the target.
8. The multi-functional RFDE system of claim 7, wherein the at least one radar antenna
(14) comprises a dual-polarized antenna.
9. The multi-functional RFDE system of claim 1, wherein the system comprises a beam combiner
(84) for combining the high power electromagnetic energy with the electromagnetic
energy for locating the target in a path between the RFDE transmitter and the RFDE
antenna.
10. The multi-functional RFDE system of claim 1, wherein the system is configured for
operation in a mobile vehicle.
11. The multi-functional RFDE system of claim 10, wherein the mobile vehicle is a wheeled-vehicle.
12. The multi-functional RFDE system of claim 10, wherein the mobile vehicle is an aircraft.
13. A method of operating a multi-functional radio frequency directed energy (RFDE) system,
comprising the steps of:
utilizing an RFDE transmitter (12) and at least one RFDE antenna (14,14') to direct
high power electromagnetic energy towards a target sufficient to cause high energy
damage or disruption of the target;
utilizing a targeting system (38) to locate the target, the targeting system including
a radar transmitter (48) and at least one radar antenna (14,34) for transmitting and
receiving electromagnetic energy to locate the target;
aiming the at least one RFDE antenna (14,14') at the target based on the location
of the target as ascertained by the targeting system (38); and
integrating at least a portion of the radar transmitter or the at least one radar
antenna (14,34) within at least a portion of the RFDE transmitter or the at least
one RFDE antenna (14,14'), wherein the radar transmitter (48) is embodied at least
partially within the RFDE transmitter (12), wherein the radar transmitter (48) and
the RFDE transmitter comprise a common RF power amplifier (46).
14. The method of claim 13, wherein the at least one radar antenna (14,34) is embodied
at least partially within the at least one RFDE antenna (14,14').
15. The method of claim 13, wherein the electromagnetic energy for locating the target
is at a first frequency, and the high power electromagnetic energy is at a second
frequency different from the first.
1. Multifunktionales Funkfrequenzrichtenergiesystem (RFDE-System) (30, 40, 50, 80), das
Folgendes umfasst:
einen RFDE-Sender (12) und wenigstens eine RFDE-Antenne (14, 14') zum Richten elektromagnetischer
Energie von hoher Leistung zu einem Ziel, die ausreichend ist, um eine energiereiche
Beschädigung oder Unterbrechung des Ziels zu verursachen;
ein Zielermittlungssystem (38) zum Orten des Ziels, wobei das Zielermittlungssystem
einen Radarsender (48) und wenigstens eine Radarantenne (14, 34) zum Senden und Empfangen
von elektromagnetischer Energie umfasst, um das Ziel zu orten; und
ein Antennenausrichtungssystem (24) zum Ausrichten der wenigstens einen RFDE-Antenne
(14, 14') auf das Ziel auf der Grundlage des Zielortes, der durch das Zielermittlungssystem
(38) ermittelt wurde,
wobei wenigstens ein Abschnitt des Radarsenders (48) oder der wenigstens einen Radarantenne
(14, 34) in wenigstens einen Abschnitt des RFDE-Senders (12) oder der wenigstens einen
RFDE-Antenne (14, 14') integriert ist,
wobei der Radarsender (48) wenigstens teilweise innerhalb des RFDE-Senders (12) ausgeführt
ist, und
wobei der Radarsender (48) und der RFDE-Sender (12) einen gemeinsamen RF-Leistungsverstärker
(46) umfassen.
2. Multifunktionales RFDE-System nach Anspruch 1, wobei die wenigstens eine Radarantenne
(14, 34) wenigstens teilweise innerhalb der wenigstens einen RFDE-Antenne (14, 14')
ausgeführt ist.
3. Multifunktionales RFDE-System nach Anspruch 1, wobei die elektromagnetische Energie
zum Orten des Ziels eine erste Frequenz hat und die elektromagnetische Energie von
hoher Leistung eine zweite Frequenz hat, die von der ersten verschieden ist.
4. Multifunktionales RFDE-System nach Anspruch 2, wobei die wenigstens eine Radarantenne
(14, 34) so arbeitet, dass sie die elektromagnetische Energie zum Orten des Ziels
sendet.
5. Multifunktionales RFDE-System nach Anspruch 4, wobei die wenigstens eine Radarantenne
(14, 34) eine erste Radarantenne (14), die so arbeitet, dass sie die elektromagnetische
Energie zum Orten des Ziels sendet und die elektromagnetische Energie von hoher Leistung
sendet, und eine zweite Radarantenne (34), die so arbeitet, dass sie die vom Ziel
reflektierte elektromagnetische Energie empfängt, um das Ziel zu orten, umfasst.
6. Multifunktionales RFDE-System nach Anspruch 5, wobei die erste Radarantenne (14) eine
aus mehreren Elementen bestehende phasengesteuerte Gruppe umfasst.
7. Multifunktionales RFDE-System nach Anspruch 4, wobei die wenigstens eine Radarantenne
(14), die so arbeitet, dass sie die elektromagnetische Energie zum Orten des Ziels
sendet, außerdem so arbeitet, dass sie die vom Ziel reflektierte elektromagnetische
Energie empfängt, um das Ziel zu orten.
8. Multifunktionales RFDE-System nach Anspruch 7, wobei die wenigstens eine Radarantenne
(14) eine dualpolarisierte Antenne umfasst.
9. Multifunktionales RFDE-System nach Anspruch 1, wobei das System einen Strahlkombinierer
(84) umfasst, um die elektromagnetische Energie von hoher Leistung mit der elektromagnetischen
Energie zum Orten des Ziels in einem Weg zwischen dem RFDE-Sender und der RFDE-Antenne
zu kombinieren.
10. Multifunktionales RFDE-System nach Anspruch 1, wobei das System für den Betrieb in
einem mobilen Fahrzeug konfiguriert ist.
11. Multifunktionales RFDE-System nach Anspruch 10, wobei das mobile Fahrzeug ein Radfahrzeug
ist.
12. Multifunktionales RFDE-System nach Anspruch 10, wobei das mobile Fahrzeug ein Luftfahrzeug
ist.
13. Verfahren zum Betreiben eines multifunktionalen Funkfrequenzrichtenergiesystems (RFDE-System),
das folgende Schritte umfasst:
Verwenden eines RFDE-Senders (12) und wenigstens einer RFDE-Antenne (14, 14') zum
Richten elektromagnetischer Energie von hoher Leistung zu einem Ziel, die ausreichend
ist, um eine energiereiche Beschädigung oder Unterbrechung des Ziels zu verursachen;
Verwenden eines Zielermittlungssystems (38) zum Orten des Ziels, wobei das Zielermittlungssystem
einen Radarsender (48) und wenigstens eine Radarantenne (14, 34) zum Senden und Empfangen
von elektromagnetischer Energie umfasst, um das Ziel zu orten; und
Ausrichten der wenigstens einen RFDE-Antenne (14, 14') auf das Ziel auf der Grundlage
des Zielortes, der durch das Zielermittlungssystem (38) ermittelt wurde;
Integrieren wenigstens eines Abschnitts des Radarsenders (48) oder der wenigstens
einen Radarantenne (14, 34) in wenigstens einen Abschnitt des RFDE-Senders (12) oder
der wenigstens einen RFDE-Antenne (14, 14'),
wobei der Radarsender (48) wenigstens teilweise innerhalb des RFDE-Senders (12) ausgeführt
ist,
wobei der Radarsender (48) und der RFDE-Sender (12) einen gemeinsamen RF-Leistungsverstärker
(46) umfassen.
14. Verfahren nach Anspruch 13, wobei die wenigstens eine Radarantenne (14, 34) wenigstens
teilweise innerhalb der wenigstens einen RFDE-Antenne (14, 14') ausgeführt ist.
15. Verfahren nach Anspruch 13, wobei die elektromagnetische Energie zum Orten des Ziels
eine erste Frequenz hat und die elektromagnetische Energie von hoher Leistung eine
zweite Frequenz hat, die von der ersten verschieden ist.
1. Système à énergie dirigée radiofréquence (RFDE) multifonctionnel (30, 40, 50, 80),
comprenant :
un émetteur RFDE (12) et au moins une antenne RFDE (14, 14') servant à diriger vers
une cible de l'énergie électromagnétique de forte puissance suffisante pour occasionner
un endommagement énergétique ou une perturbation énergétique importants de la cible
;
un système de repérage de cible (38) servant à localiser la cible, le système de repérage
de cible comportant un émetteur radar (48) et au moins une antenne radar (14, 34)
servant à émettre et à recevoir de l'énergie électromagnétique en vue de localiser
la cible ; et
un système de pointage d'antenne (24) servant à pointer ladite au moins une antenne
RFDE (14, 14') sur la cible en fonction de la position de la cible établie par le
système de repérage de cible (38),
au moins une partie de l'émetteur radar (48) ou de ladite au moins une antenne radar
(14, 34) étant intégrée à au moins une partie de l'émetteur RFDE (12) ou de ladite
au moins une antenne RFDE (14, 14'),
l'émetteur radar (48) étant réalisé au moins partiellement dans l'émetteur RFDE (12),
et
l'émetteur radar (48) et l'émetteur RFDE (12) comprenant un amplificateur de puissance
RF commun (46).
2. Système RFDE multifonctionnel selon la revendication 1, laquelle au moins une antenne
radar (14, 34) est réalisée au moins partiellement dans ladite au moins une antenne
RFDE (14, 14').
3. Système RFDE multifonctionnel selon la revendication 1, laquelle énergie électromagnétique
servant à localiser la cible possède une première fréquence, et laquelle énergie électromagnétique
de forte puissance possède une deuxième fréquence différente de la première.
4. Système RFDE multifonctionnel selon la revendication 2, laquelle au moins une antenne
radar (14, 34) fonctionne pour émettre l'énergie électromagnétique servant à localiser
la cible.
5. Système RFDE multifonctionnel selon la revendication 4, laquelle au moins une antenne
radar (14, 34) comporte une première antenne radar (14) qui fonctionne pour émettre
l'énergie électromagnétique servant à localiser la cible et pour émettre l'énergie
électromagnétique de forte puissance, et une deuxième antenne radar (34) qui fonctionne
pour recevoir l'énergie électromagnétique réfléchie par la cible afin de localiser
celle-ci.
6. Système RFDE multifonctionnel selon la revendication 5, laquelle première antenne
radar (14) comprend un réseau à commande de phase à plusieurs éléments.
7. Système RFDE multifonctionnel selon la revendication 4, laquelle au moins une antenne
radar (14) qui fonctionne pour émettre l'énergie électromagnétique servant à localiser
la cible fonctionne également pour recevoir l'énergie électromagnétique réfléchie
par la cible afin de localiser celle-ci.
8. Système RFDE multifonctionnel selon la revendication 7, laquelle au moins une antenne
radar (14) comprend une antenne bipolarisée.
9. Système RFDE multifonctionnel selon la revendication 1, lequel système comprend un
mélangeur de faisceaux (84) servant à mélanger l'énergie électromagnétique de forte
puissance à l'énergie électromagnétique servant à localiser la cible sur un trajet
allant de l'émetteur RFDE à l'antenne RFDE.
10. Système RFDE multifonctionnel selon la revendication 1, lequel système est conçu pour
fonctionner dans un véhicule mobile.
11. Système RFDE multifonctionnel selon la revendication 10, lequel véhicule mobile est
un véhicule à roues.
12. Système RFDE multifonctionnel selon la revendication 10, lequel véhicule mobile est
un aéronef.
13. Procédé de fonctionnement d'un système à énergie dirigée radiofréquence (RFDE) multifonctionnel,
le procédé comprenant les étapes consistant à :
utiliser un émetteur RFDE (12) et au moins une antenne RFDE (14, 14') pour diriger
vers une cible de l'énergie électromagnétique de forte puissance suffisante pour occasionner
un endommagement énergétique ou une perturbation énergétique importants de la cible
;
utiliser un système de repérage de cible (38) pour localiser la cible, le système
de repérage de cible comportant un émetteur radar (48) et au moins une antenne radar
(14, 34) servant à émettre et à recevoir de l'énergie électromagnétique en vue de
localiser la cible ;
pointer ladite au moins une antenne RFDE (14, 14') sur la cible en fonction de la
position de la cible établie par le système de repérage de cible (38) ; et
intégrer au moins une partie de l'émetteur radar (48) ou de ladite au moins une antenne
radar (14, 34) à au moins une partie de l'émetteur RFDE (12) ou de ladite au moins
une antenne RFDE (14, 14'),
l'émetteur radar (48) étant réalisé au moins partiellement dans l'émetteur RFDE (12),
l'émetteur radar (48) et l'émetteur RFDE (12) comprenant un amplificateur de puissance
RF commun (46).
14. Procédé selon la revendication 13, laquelle au moins une antenne radar (14, 34) est
réalisée au moins partiellement dans ladite au moins une antenne RFDE (14, 14').
15. Procédé selon la revendication 13, laquelle énergie électromagnétique servant à localiser
la cible possède une première fréquence, et laquelle énergie électromagnétique de
forte puissance possède une deuxième fréquence différente de la première.