OBJECT OF THE INVENTION
[0001] The invention is related to wireless communication systems, and, in particular, to
digital cellular teleommunications networks, specifically referring to an antenna
system architecture that is intelligent modular and compatible, that is pluggable
to any Node B or Base Station as the antenna can be shared by several operators, so
that the different base stations of the latter can connect to said antenna. In addition,
the compatibility implies that the antenna system architecture can be plugged to the
radiofrequency (RF) interface (Fig 1a), b) & c))used together with the rest of the
base station's equipment, regardless of the manufacturer, which means that it is not
necessary to change or modify the base station when you wish to replace the conventional
antenna with the antenna that is the object of the invention.
BACKGROUND TO THE INVENTION
[0002] The use of intelligent antennas is a very promising solution for cellular communications
systems, since they allow for a substantial increase in the system's capacity. However,
these antennas are integrated in the base station and they do not allow either a total
modularization, in other words, increasing the number of channels in service as demand
for them grows by inserting new modules, or the installation of the intelligent antenna
independently from the rest of the base station. As a result, operators of a cellular
system network have to predict the number of channels they are going to provide service
to and if they are going to include an intelligent antenna or not, since if they decide
after the installation to include this type of antenna, they would be forced to replace
the entire base station by another with an antenna with these features and with the
appropriate number of channels.
[0003] Another serious drawback is that this network infrastructure cannot be shared by
several operators. They each have to install their own intelligent antenna, and the
result of this fact is a large urban and environmental impact.
[0004] Another problem they have is that they can only support one standard of cellular
communications, and an intelligent antenna cannot be shared by operators of different
systems, such as the Global System for Mobile Communications (GSM) standard, the Universal
Mobile Telecommunications System (UMTS) standard, the Multichannel Multipoint Distribution
System (MMDS) standard, the Local Multipoint Distribution Service (LMDS) standard,
and others.
DESCRIPTION OF THE INVENTION
[0005] The prior art, as described in documents (D1): "P.B. KENINGTON: Emerging technologies
for software radio. ELECTRONICS & COMMUNICATIONS ENGINEERING JOURNEL, vol. 11, no.2,
April 1999 (1999-04), pages 69 - 83."; and (D2): "USB-6,317,586 B1 (HAARDT MARTIN),
13 November 2001 (200111-13)", discloses in the first case (D1), software radio architectures
for receiver and transmitters applicable for handportable terminals and also for Base
Stations, and in the second case (D2), wireless data transmission methods applicable
for Base Stations. Clearly, in both this two cases is, as stated, applicable the prior
art for the base stations, and therefore can not be applied to an intelligent modular
compatiblentenna system equipment, object of this invention. Moreover, the object
of the present invention, though some ideas from the described prior art are used,
is to provide this intelligent modular compatible antenna system achieved by demodulating,
shaping he beam with the diagram adaptation criterion selected and modulating again,
and the process is the same in both transmission and reception (DEREM concept), which
is a standalone equipment not to be included internally to the Base Station or Node
B.
[0006] The problems described above are solved by using this invention. It consists of the
definition of a modular intelligent antenna system architecture that is compatible,
that is pluggable to the RF interface of any Node B or Base Station,with the rest
of the base station.
[0007] The intelligence refers to the possibility of the antenna having a variable radiation
diagram, being capable of generating or selecting directive beams focussed on the
required user.
[0008] It is modular in that it enables a gradual growth of the channels served and of the
frequency bands used when demand increases, by including new radio frequency modules.
It is modular in that it allows this intelligent antenna to be used by an increasing
number of new operators. Moreover, it is independent and compatible with the rest
of the base station, since the operator can set up one base station using a conventional
sectoral antenna first (without an intelligent antenna) and then, when an increase
in capacity is required, it can be replaced by the intelligent antenna that is the
object of this invention. The modularization concept is based on the use of combiners
(in transmission) and dividers (in reception) before and after each channel's transmission
and reception. The transmission and reception are separated by duplexers. Adding new
channels or using new bands can be carried out by adding new radio frequency modules
in both transmission and reception.
[0009] Furthermore, it can allow the antenna to be shared by several operators, so that
their different base stations connect to it. The radio software techniques also allow
the shared use of the intelligent antenna by different communication standards, such
as GSM, UMTS, MMDS, LMDS and others, including the processing modules required.
[0010] The compatibility refers to the possibility of using this antenna together with the
rest of the base station's equipment, regardless of the manufacturer, making it possible
to use it with base stations that are not prepared expressly to use the same. In other
words, it is not necessary to change the base station when you wish to replace the
conventional antenna by the antenna that is the object of this invention, enables
direct connection into the radiofrequency interface, both at the transmitter power
amplifier output as at the receiver low noise amplifier input with the Node B or Base
Station without performing any change or modification in its hardware or software.
That is the multistandard intelligent modular compatible antenna system allows the
direct substitution of the connventional antennas from the Node B or Base Station
by means of disconnecting its coaxial connectors of the later, and connecting instead
the ones from the antenna object of this invention. This property is achieved by demodulating,
shaping the beam with the diagram adaptation criterion selected and modulating again,
and the process is the same in both transmission and reception (DEREM concept). In
this way, the quality of the signal is improved with a processing that is transparent
to the rest of the base station's equipment (e.g., Node B in UMTS terminology).
[0011] With regard to the architecture of the compatible modular intelligent antenna for
cellular communications in multioperator multistandard environments, in accordance
with the object of the invention, it is basically formed of: an antenna subsystem
that includes the set of radiating elements, duplexers, low-noise amplifiers in reception,
combining networks in transmission and dividing networks in reception, and passive
control elements of the antenna diagram; an RF/IF subsystem, which includes all the
analogical components associated with the transmitter and the receiver, amplifiers,
frequency converters, filters, power amplifiers and A/D and D/A converters; a radio
software subsystem, which includes all the channel separation processes, modulation,
demodulation, filtering, coding and decoding, associated with the digital transmission
and reception processes; an adaptive algorithm subsystem, which includes the digital
processes associated with the signal control of the whole of the antenna, in both
reception and transmission. This subsystem is very related to the previous one.
[0012] These and other features, which will be explained throughout this specification,
will enable a configurable and very flexible system to be obtained, which is adaptable
to every user's requirements. In this way, it can be used in the following configurations:
- 1. One operator - one standard. By using this configuration, you can make the most
of the variable radiation diagram offered by intelligent antennas.
- 2. One operator - multistandard. For the case of an operator that has licences in
different bands and who wishes to reuse the intelligent antenna in the same site for
the systems of the different standards.
- 3. Multioperator - one standard. It enables several operators of a same communications
standard to share the same intelligent antenna.
- 4. Multioperator - multistandard. It enables several operators, whether they are of
the same or different communications standards, to share the same intelligent antenna.
DESCRIPTION OF THE DRAWINGS
[0013] In order to complement the description that is going to be made below and so that
the invention's characteristics can be better understood, this specification is accompanied
by a set of plans, as an integral par t of the same, in which the following has been
represented by way of example and non-limiting.
Figure 1a) shows the diagram of a conventional base station, which could belong to
any cellular communications standard (GSM, UMTS, MMDS, LMDS and others). Figure 1b)
shows the diagram of a connventional antenna disconnection from the Node B, or Base
Station, RF interface. Figure 1c) shows the connection of the antenna subject of this
invention into the Node B, or Base Station, RF interface.
Figure 2 shows the diagram of a multistandard compatible pluggable modular intelligent
antenna system for cellular communications in multioperator multistandard environments,
carried out in accordance with the object of the invention.
Figure 3 shows the diagram of the modular architecture of a a multistandard compatible
pluggable intelligent antenna systemarticularised to support different operators in
a certain standard, carried out in accordance with the object of the invention.
Figure 4 shows the diagram of the radio frequency subsystem.
Figure 5 shows the diagram of the hardware required for the digital receiver.
Figure 6 shows the diagram of the configuration of the beam shaping subsystem using
the case of the uplink for the UMTS standard as an example.
PREFERABLE EMBODIMENT OF THE INVENTION
[0014] Before going onto describing the antenna that is the object of this invention, the
diagram represented in figure 1 has to be described, which corresponds to a conventional
base station, including a system (1) of conventional antennas (not intelligent), a
link (2), by which the signal is taken from the antenna to the equipment (3) of the
base station (for example, Node B in UMTS terminology). Finally, the conventional
base station mentiodeis joined by a link (4) to the rest of the network (5).
[0015] However, in the same coverage area, normally in different sites, said typical base
station structure would have to be repeated as many times as there are different systems
and operators. For exampl if you wish to cover a specific area using three GSM operators,
another three UMTS operators and another three MMDS operators, you would need nine
different radiating structure systems. This fact causes a great urban and environmental
impact.
[0016] Solving this problem is the reason why the the multistandard compatible, that is
pluggable to the RF interface of any Node B or Base Station, modular intelligent antennasystem
for cellular communications in a multioperator, multistandard environment, the object
of this invention, has been devised, with the block (6) corresponding to the general
diagram of the system shown in figure 2, with reference (7) as the antenna array,
which is connected to a diplexer (8), which separates the signal into the different
bands used (9), with block (10) corresponding to the UMTS module, block (11) to the
GSM-1800 module, with (12) as the module corresponding to the n
th standard. Every one of these modules has a similar structure: an RF block (13), a
radio software block (14) and a beam shaping block (15). The output signals of modules
(10), (11) and (12) go to the rest of the equipment (16) of every one of the base
stations of the different operators of the different standards (Node B of UMTS, BTS
of GSM, etc.).
[0017] As can be seen from this figure 2, the architecture presented allows the same for
a multistandard compatible that is pluggable to the RF interface of any Node B or
Base Station, modular intelligent antenna system to be shared by different operators
that have different standards, so the architecture's modularity allows the number
of operators to increase and for them to be able to support the different communications
standards thanks to the flexibility provided by the radio software. Besides, given
a certain standard, the compatibility concept is achieved by demodulating, shaping
the beam with the criterion of adapting the diagram selected and then modulating again
(DEREM concept).
[0018] Figure 3 shows the modular architecture of the a multistandard compatible, that is
pluggable to the RF interface of any Node B or Base Station, intelligent antenna systemparticularised
to support different operators in a certain standard, in which you can see a set of
antennas (17) for every one of the orthogonal polarisations established in blocks
(18) and (19), so that each antenna (17) is attacked by a duplexer/combiner/divider
(20) which manages t separate the channels. The process for every one of them is as
follows: radio frequency (RF) conversion to intermediate frequency (IF) by the converters
(21); analog/digital (A/D) conversion by an analog/digital and digital/analog conversion
block (22); digital demodulation by a digital transmitter/receiver block (23), and
an optimum combination of the signals from the different antennas, in accordance with
the shaping criterion for every channel, by a beam shaper (24). After this, the process
for every channel is similar, in other words a digital modulation (23), a digital/analog
conversion (22) and a conversion from intermediate frequency to radio frequency (21).
Next, the channels are combined by means of a duplexer/combiner/divider (20) to be
able to provide the nodes (25) of the different operators with service. The transmission
process would be analogue to the reception process, which is the one that has been
explained, but the signals would flow in the opposite direction, in other words from
the nods of the different operators (25) to the antennas (17), in other words, the
signal of a specific node would be divided into its different channels (20), with
the process for every channel as follows: RF/IF conversion (21), A/D conversion (22),
digital demodulation (23), beam shaping (24), digital remodulation (23), D/A conversion
(22), IF/RF conversion (21). Then the channels (20) combine and they are transferred
to the antennas (17).
[0019] The area marked with the reference (26) in figure 3, does not break the modularity,
since it can be implemented by radio software techniques, and it is therefore a software
that can be updated, respecting all the hardware.
[0020] Figure 4 shows the corresponding elements of the RF system, which are as follows:
- 27. Antenna array with cross-polarisation.
- 28. Duplexer: the function of this component is to separate the transmission and the
reception signals that reach the antenna.
- 29. Low-Noise Amplifier (LNA): this is a low-noise amplifier for reception, which
will we located as close as possible to the antenna connector.
- 30. Power amplifiers: for the transmission, they amplify, at RF frequencies, a maximum
of two carriers to the level of power required. A very high linearity is required
to avoid intermodulation problems between the different carriers.
- 31. Divider: this will deal with dividing the signal and amplifying it to enter the
RF/IF stage with the power required.
- 32. Passive combiner: this is the component that deals with combining the signals
from the RF transmitters, to then amplify them.
- 33. RF/IF stage: this is the stage that deals with converting RF to IF. It has the
required filters, amplifiers, mixers and oscillators. For the case of the module of
the UMTS standard, the bandwidth of these circuits is 5 MHz (except for the RF filter).
In this stage a different design will be carried out for the Time Division Duplex
(TDD) application and for the Frequency Division Duplex (FDD) application.
- 34.A/D and D/A converters.
- 35. Digital processing module: it includes an In-phase / Quadrature (I/Q) demodulator
and the processing that will be carried out in radio software. At this point, there
are two options for implementation. The first carries out a combination process of
the two chains (main and diversity), to then reach the beam shaper. The second carries
out both operations simultaneously treating the signals as coming from two independent
antennas (process in diversity: it selects the optimum combination of the two input
signals to obtain the best signal to noise plus interference ratio (S/N+I))
- 36. Modulator, generator of diversity signals.
[0021] Figure 5 shows the diagram of the hardware required for the digital receiver, which
has to be accompanied by the digital process signal. Shown in said figure are the
A/D converter (37), the numeric oscillator (38) of fo frequency (39). The output signal
of said oscillator and its 90° phase shift by block (40), multiply the digital signal,
which after being decimated by the block (41), gives rise to inphase (42) and quadrature
(43) signals.
[0022] Figure 6 shows the configuration for the beam shaping subsystem using the case of
the uplink for the UMTS standard as an example. The adaptive process subsystem is
responsible for updating the array factor, using the synchronisation pilot reference
signal for the shaping, which is sent via the Dedicated Physical Control Channel (DPCCH)
for every one of the users. The elements this figure has are:
- (44), (45) and (46) represent the first (DPCCH_1), second (DPCCH_2) and nth (DPCCH_N) DPCCH channels, respectively.
- (47) Long code CDMA (Code Division Multiple Access) decoders. This simply consists
of a multiplication by the channelization code, which identifies a specific user within
a cell.
- (48) Short code CDMA decoders. This consists of a multiplication by the mix or random
code which identifies every cell.
- (49) Low-pass filters.
- (50), (51) and (52) show the multipliers by the shaping weight of the first (W_1),
second (W_2) and nth (W_N) array factor, respectively.
- The input signal multiplied by the array factor is subtracted from the pilot reference
signal, reference DPCCH (53).
- The result of the previous operation will be the input of the block (54) in which
the minimisation algorithm resides. The output of this block will be the updated weight
vector (55).
[0023] Below is a detailed explanation of the a multistandard compatible, that is pluggable
to the RF interface of any Node B or Base Station, modular intelligent antenna system
described, but applied to use with the UMTS standard:
[0024] An adaptive array is going to be used as the intelligent antenna. There are four
subsystems in this antenna, which are closely connected, even in some cases with regard
to hardware. Figure 3 shows the diagram of the system blocks. Four subsystems can
be identified in it:
- 1. Antenna subsystem. It includes the set of radiating elements, duplexers, low-noise
amplifiers in reception, combining networks in transmission and dividers in reception
and passive control elements of the antenna diagram.
- 2. RF/IF subsystem. It includes all the analog components associated with the transmitter
and the receiver. Amplifiers, frequency converters, filters, power amplifiers and
A/D and D/A.
- 3. Radio software subsystem. It includes all the channel separation processes, modulation,
demodulation, filtering and wide-band CDMA coding and decoding, associated with the
digital transmission and reception processes.
- 4. Adaptive algorithm subsystem. It includes the digital processes associated with
the signal control of the whole of the antenna, in both reception and transmission.
This subsystem is very related to the previous one.
[0025] The antenna subsystem for the UMTS adaptive array application is formed of a group
of vertical linear arrays formed by coincident or alternated dual-polarised antennas.
In principle, the base stations are formed of three sectors, so every one of the flat
groups would replace one of those with a 120° coverage. The base element of every
group will be a vertical panel of dual linear polarisation (±45° or V/H) with vertical
beam widths of around 7.5° and beam widths in the hor izontal plane of 65° or 90°.
For the case of a 65° beam width, the typical gain is 17 dBi.
[0026] The RF subsystem is the one that appears separated in more detail in the diagram
in figure 4, although it is understood that it would all go in the same module. The
components of the same are the ones mentioned in the description of the drawings.
[0027] The IF is chosen high to allow a better elimination of the image band, avoiding possible
interferences. The digital conversion is carried out in IF, avoiding filtering and
analog phase noise.
[0028] The radio software subsystem is formed of an A/D converter with a high capacity (e.g.
75 MHz, 12/14 bits) followed by a digital I/Q converter controlled by an NCO, such
as the one shown in figure 5, in which phase noise is not created and the features
are improved. The sampling is carried out at the required frequency (fs) depending
on the value of the IF to fulfil the Nyquist theorem. The NCO generates sine and cosine
signals corresponding to the fs frequency selected from the A/D converter. The frequency
change only consists of writing a numeric value in the register. The signal generated
does not modify its frequency, so no phase noise is introduced. Next, to decrease
the sampling frequency to the frequency required for the signal's bandwidth, the M
rate decimator is introduced. In our case, M should equal 16 (IF=70 MHz, fs=80 MHz
and Bandwidth = 5 MHz). Next, the signal process cards would be sited, where the processes
of spreading/unspreading would be carried out by software in order to separate every
one of the channel codes, and spreading/unspreading in order to regenerate the CDMA
signal again (FDD mode). Moreover, the signals separated by code multiply by the array
factor weights [w] for the beam shaping for every one of the channels.
[0029] The adaptive process subsystem is responsible for calculating those weights, using
the synchronisation pilot reference signal for the shaping, which is sent by the dedicated
physical control channel for every one of the users. The shaping algorithm proposed
here is a temporary reference one. A configuration example of this shaper for the
uplink is the content in figure 6. It does not include the RAKE (receiver structure
that behaves as a filter adapted to the multipath signal received, so that its detrimental
effect can be combated), so the system is simplified by making the intelligent antenna,
which is only directed towards the main path, responsible for the elimination.
[0030] The implementation of the downlink is carried out in the same way, bearing in mind
that the channels are modulated simultaneously, partly real and partly imaginary.
[0031] A first version of this intelligent antenna has been planned for use with the UMTS
standard. This implementation is modular, since it allows the number of channels used
to be increased. Modularity makes it possible to provide different operators with
service, and this fact means that this network infrastructure can be shared. This
results in a better use of the infrastructures, as well as less visual and environmental
impact. On the other hand, the system implemented enables it to be used together with
any system of base stations, in other words, the system is compatible with any manufacturer
of B Nodes.
1. Antenna system for cellular communications in multistandard multioperator environments,
the antenna system adapted to have a variable radiation diagram , characterised in that it includes an array (7) of antennas (17) and a diplexer (8) adapted to separate;
the signals at the array (7) in different bands corresponding to different communication
standards, the system further comprising a communication module (10),(11),(12) for
each one of said standards, each one of the communication modules (10), (11), (12)
adapted to have a RF subsystem (13), a radio software subsystem (14) and beam shaping
subsystem (15), wherein each one of the communication modules (10), (11), (12) is
connected to a base station (16) of operators using said standards, and wherein each
one of the antennas (17) is attached by a duplexer/combiner/divider (20) adapted to
separate the channels, and for each channel having a radio frequency to intermediate
frequency converter (21), a first analog/digital converter (22) and a digital demodulator
(23), the system further comprising beam shaper (24) common for the respective digital
demodulators (23) adapted to combine the signals from the antennas (17) in accordance
with a shaping criterion for every channel, wherein second digital/analog converters
(22) and intermediate frequency/radio frequency converters (21') for each channel
are combined in a second combiner (20) from which service is provided to different
nodes (25) of said different operators.
2. Antenna system according to claim 1, characterised in that the radio frequency subsystem includes: duplexers (28) as a means of separating the
transmission and reception signals that reach the antenna; low-noise amplifiers (29)
for reception; power amplifiers (30); dividers (31), responsible for dividing the
signal and amplifying it to enter the radio frequency/intermediate frequency stage
with the power required; passive combiners (32) by which the signals from the radio
frequency/intermediate frequency converters (33) are combined for later amplification;
analog/digital and digital/analog converters (34); a digital processing module (35)
with an in-phase and quadrature demodulator, and a modulator (36), generator of diversity
signals.
3. Antenna system according to claim 1 or 2, characterised in that the radio software subsystem for the digital receiver includes an analog/digital
converter (37), a numeric oscillator (38) of fo frequency (39), whose output signal
and 90 degrees phase shift by a phase shifter (40) multiply the digitalized input
signal, the signals then being decimated by (41), leading to in-phase (42) and quadrature
(43) signals.
4. Antenna system according to any of the preceding claims, characterised in that it is particularised for the UMTS standard, and in that the beam shaping subsystem (15) includes code division multiple access decoders (47)
of long code; code division multiple access decoders (48) of short code; low-pass
filters (49) and multipliers (50), (51) and (52) by the shaping weight of the array
factor and a block (54) where the minimisation algorithm resides, whose input is the
signal from the multipliers (50), (51) and (52) appropriately combined and subtracted
from the reference (53) and whose output (55) is the updated weight vector.
5. Antenna system according to claim 1 characterised in that, at least one of the communication modules (10), (11), (12) is adapted to transmit
and receive in the UMTS standard or in the GSM standard.
6. Operating method for an antenna system for cellular communications in multistandard
multioperator environments, in which directive beams focused on the required user
are generated or selected,
characterised in that the reception process for each standard comprises the following steps :
separation of the signal at an array of antennas in different bands corresponding
to different communication standards,
demodulation of the beam,
combination of the signals from the different antennas (17) and common shaping of
the beam,
modulation of the beam, and combination of the channels to provide service to nodes
of the different operators (25).
1. Antennensystem für Mobilfunkkommunikation in einer Multistandard-Multioperator-Umgebung,
wobei das Antennensystem ein variables Strahlungsmuster aufweist,
dadurch gekennzeichnet, dass
es ein Array (7) von Antennen (17) und einen Diplexer (8) zum Aufteilen der Signale
an dem Array (7) in unterschiedliche Bänder entsprechend unterschiedlichen Kommunikationsstandards
aufweist, wobei das System ferner ein Kommunikationsmodul (10,11,12) für jeden der
Standards aufweist, wobei jedes der Kommunikationsmodule (10,11, 12) ein RF-Subsystem
(13), ein Funk-Software-Subsystem (14) und ein Strahlformungs-Subsystem (15) aufweist,
wobei jedes der Kommunikationsmodule (10,11,12) mit einer Basisstation (16) von die
Standards benutzenden Operators verbunden ist, und wobei jede der Antennen (17) über
einen Duplexer/Combiner/Teiler (20) zum Aufteilen der Kanäle verbunden ist und jeder
Kanal einen Funkfrequenz/Zwischenfrequenz-Konverter (21), einen ersten Analog/Digital-Konverter
(22) und einen digitalen Demodulator (23) aufweist, wobei das System ferner einen
den jeweiligen digitalen Demodulatoren (23) gemeinsamen Strahlformer (24) zum Zusammenfassen
der von den Antennen (17) kommenden Signale gemäß einem Formungs-Kriterium für jeden
Kanal aufweist, wobei zweite Digital/Analog-Konverter (22') und Zwischenfrequenz/Funkfrequenz-Konverter
(21') für jeden Kanal in einem zweiten Combiner (20') zusammengefasst sind, von dem
aus unterschiedliche Knotenpunkte (25) der unterschiedlichen Operators bedient werden.
2. Antennensystem nach Anspruch 1, dadurch gekennzeichnet, dass das Funkfrequenz-Subsystem aufweist: Duplexer (28) als Einrichtungen zum Aufteilen
der die Antenne erreichenden Sende- und Empfangssignale; zum Empfangen vorgesehene
rauscharme Verstärker (29); Leistungsverstärker (30); Teiler (31) zum Aufteilen des
Signals und Verstärken des Signals zwecks Eintretens mit der erforderlichen Leistung
in die Funkfrequenz/Zwischenfrequenz-Stufe; passive Combiners (32) zum Zusammenfassen
der von den Funkfrequenz/Zwischenfrequenz-Konvertern (33) kommenden Signale zwecks
späterer Verstärkung; Analog/Digital- und Digital/Analog-Konverter (34); ein digitales
Verarbeitungsmodul (35) mit phasengleichem und Quadratur-Demodulator, und einen Modulator
(36), Generator von Diversity-Signalen.
3. Antennensystem nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass das Funk-Software-Subsystem für den Digitalempfänger aufweist: einen Analog/Digital-Konverter
(37), einen numerischen Oszillator (38) mit einer fo-Frequenz (39), dessen Ausgangssignal
und ein mittels eines Phasenschiebers (40) um 90-Grad verschobenes Signal das digitalisierte
Ausgangssignal multiplizieren, wobei die Signale dann von (41) dezimiert werden, was
zu phasengleichen (42) und Quadratur-(43) Signalen führt.
4. Antennensystem nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass es für den UMTS-Standard ausgelegt ist und dass das Strahlformungs-Subsystem (15)
aufweist: Codemultiplex-Vielfachzugriffs-Dekodierer (47) mit langem Code; Codemultiplex-Vielfachzugriffs-Dekodierer
(48) mit kurzem Code; Tiefpassfilter (49) und Multiplizierer (50,51,52) zum Multiplizieren
mit der Formungs-Gewichtung des Array-Faktors und einen Block (54), in dem sich der
Minimierungs-Algorithmus befindet, dessen Eingangssignal das Signal von den Multiplizierern
(50,51,52) ist, die auf geeignete Weise zusammengefasst und von der Referenz (53)
subtrahiert werden und deren Ausgangssignal (55) der aktualisierte Gewichtungsvektor
ist.
5. Antennensystem nach Anspruch 1, dadurch gekennzeichnet, dass mindestens eines der Kommunikationsmodule (10,11,12) zum Senden und Empfangen im
UMTS-Standard oder im GSM-Standard vorgesehen ist.
6. Betriebsverfahren für ein Antennensystem für Mobilfunkkommunikation in einer Multistandard-Multioperator-Umgebung,
bei dem auf den erforderlichen User fokussierte Richtstrahlen erzeugt oder ausgewählt
werden,
dadurch gekennzeichnet, dass
der Empfangsprozess für jeden Standard folgende Schritte umfasst:
Aufteilen des Signals an einem Array von Antennen in unterschiedliche Bänder entsprechend
unterschiedlichen Kommunikationsstandards,
Demodulieren des Strahls,
Zusammenfassen der von den unterschiedlichen Antennen (17) kommenden Signale und gemeinsames
Formen des Strahls,
Modulieren des Strahls und Zusammenfassen der Kanäle, um die Knotenpunkte der unterschiedlichen
Operators (25) zu bedienen.
1. Système d'antenne pour communication cellulaire dans un environnement multi-opérateur
multi-standard, le système d'antenne étant apte à présenter un diagramme de radiation
variable, caractérisé en ce qu'il inclut une matrice (7) d'antennes (17) et un duplexeur (8) apte à séparer les signaux
en la matrice (7) en différentes bandes correspondant à différents standards de communication,
le système comprenant en outre un module de communication (10), (11), (12) pour chacun
desdits standards, chacun desdits modules de communication (10), (11), (12) étant
apte à comprendre un sous-système (13) RF, un sous-système (14) logiciel radio, et
un sous-système (15) de formation de faisceau, tandis que chacun des modules de communication
(10), (11), (12) est relié à une station de base (16) d'opérateurs utilisant lesdits
standards, et tandis que chacune desdites antennes (17) est fixée à un diviseur/combineur
duplexeur (20) apte à séparer les canaux, et pour chaque canal ayant une fréquence
radio au convertisseur (21) de fréquence intermédiaire, un premier convertisseur (22)
analogique/numérique et un démodulateur (23) numérique, le système comprenant en outre
un conformateur de rayon (24) commun avec les démodulateurs (23) numériques respectifs
aptes à combiner les signaux provenant des antennes (17) selon un critère de forme
pour chaque canal, tandis que les seconds convertisseurs (22') numériques/analogiques
et les convertisseurs fréquence intermédiaire/fréquence radio pour chaque canal sont
combinés dans un second combineur (20') à partir duquel le service est pourvu aux
différents noeuds (25) des différents opérateurs.
2. Système d'antenne selon la revendication 1, caractérisé en ce que le sous-système de radio fréquence inclut : des duplexeurs (28) en tant que moyens
de séparation des signaux de transmission et de réception qui atteignent l'antenne
; des amplificateurs (29) à bas bruit pour la réception, des amplificateurs de puissance
(30), des diviseurs (31), sont responsables pour la division du signal et l'amplification
de celui-ci pour entrer dans l'étape de fréquence radio / fréquence intermédiaire
avec la puissance requise ; des combineurs (32) passifs par lesquels les signaux à
partir des convertisseurs (33) fréquence radio/fréquence intermédiaire sont combinés
pour amplification ultérieure ; des convertisseurs (34) analogiques/numériques et
numériques/analogiques, un module (35) de processus numérique avec un démodulateur
en phase et en quadrature, et un modulateur (36), générateur de signaux de diversité.
3. Système d'antenne selon la revendication 1 ou 2, caractérisé en ce que le sous-système logiciel radio ou le récepteur numérique inclut un convertisseur
(37) analogique/numérique, un oscillateur (38) numérique de fréquence fo (39), dont
le signal de sortie est en phase décalée de 90 degrés par un décaleur de phase (40)
et multiplie le signal d'entrée numérique, les signaux étant ensuite soumis à décimation
par (41), conduisant à des signaux en phase (42) et en quadrature (43).
4. Système d'antenne selon l'une des revendications précédentes, caractérisé en ce qu'il est conçu pour le standard UMTS et en ce que le sous-système (15) de formation de rayon inclut des décodeurs (47) d'accès multiple
de division de code de codes longs, des décodeurs (48) d'accès multiple de division
de code de codes courts ; des filtres passe-bas (49) et des multiplicateurs (50),
(51) et (52) par le poids de conformation du facteur de matrices et un bloc (54) où
réside l'algorythme de minimisation, et dont la sortie est le signal des multiplicateurs
(50), (51) et (52) combiné de manière appropriée et soustrait de la référence (53)
et dont la sortie (55) est le vecteur de poids mis à jour.
5. Système d'antenne selon la revendication 1, caractérisé en ce qu'au moins un des modules de communication (10), (11), (12) est apte à transmettre et
recevoir dans le standard UMTS ou dans le standard GSM.
6. Méthode opératoire pour le système d'antenne pour des communications cellulaires dans
des environnements multi-opérateurs multi-standards, dans laquelle des rayons directifs,
focalisés sur l'utilisateur, sont engendrés ou choisis,
caractérisé en ce que le processus de réception pour chacun des standards comporte les étapes suivantes
:
- séparation du signal en une matrice d'antenne dans différentes bandes correspondant
à différents standards de communication,
- démodulation du rayon,
- combinaison des signaux provenant des différentes antennes (17) et conformation
commune du rayon,
- modulation du rayon, et combinaison des canaux pour réaliser le service en des noeuds
des différents opérateurs (25).