[0001] The present invention relates to communications systems, and more particularly, to
an improved combination for sending a radio transmission between a fixed antenna on
the outside of a structure and a transceiver within the structure.
[0002] Radio transmission and reception is difficult when a transceiver unit is located
wholly within a structure that can act as a shield against radiation. For example,
the interior of a motor vehicle may be isolated from radio signals that originate
outside of the vehicle. Further, the transmission of radio signals from a transmitter
which is located inside the vehicle may be blocked, as well.
BACKGROUND OF THE INVENTION
[0003] Transceivers which are located inside vehicles are commonly connected to an antenna
which is mounted on the exterior of the vehicle by means of a coaxial cable or other
wire link. Frequently, the radiating and receiving element of the antenna, which is
located on the exterior of the vehicle, is capacitively coupled to the coaxial cable
termination through a glass window of the vehicle, thereby eliminating the necessity
of drilling holes in the body of the vehicle.
[0004] The increasingly common use of cellular telephones operating in the 800 to 1000 MHz
frequency range in motor vehicles has promoted the use of such through the glass antenna
units since the cellular telephone preferably utilizes an antenna whose mast extends
above the roof line of the vehicle for optimum reception and transmission. Through
the glass antennas are easily mounted near the top of the rear window and the antenna
mast can extend vertically above the roof line.
[0005] Several types of cellular telephones are common today. A permanently installed car
telephone has a direct power connection to the vehicle electrical supply and has a
coaxial link to the installed antenna. A so called "transportable" cellular telephone
is a similar telephone unit which includes a self contained power supply and a movable
antenna so that it can be carried in a brief case. The permanent and transportable
telephones are permitted to have a maximum transmitted power of 3.0 watts, which generally
mandates the use of a coaxial transmission line to an antenna.
[0006] In recent years, a smaller, compact and lightweight cellular telephone has been developed
which can be hand held. This hand held or "portable" telephone, which usually has
an integral antenna as a part of the unit, is permitted a radiated power level of
only .6 watts. Such devices can be quite small and can fit in one's pocket. When used
in an open space, the portable can easily communicate with a "cell" of the cellular
system. However, difficulties can be encountered if one wishes to use a portable when
inside a vehicle since the metal body of the vehicle acts as a shield to both incoming
and outgoing signals.
[0007] These difficulties can be overcome if the portable unit can be connected to an exterior
antenna or if the portable can be operated through an open window in the vehicle and
the metallic mass of the vehicle doesn't affect the receiving or radiation patterns
of the antenna. One approach has been marketed under the trademark LARSEN® ANTENNAS
by Larsen Electronics, Inc., of Vancouver, Washington, Model KGB-825. This unit is
described as a "passive repeater antenna" which passes signals to and from the externally
mounted gain antenna elements. US-A-4794,319 and FR-A-2,081,211 discloses an antenna
as described by the pre-characterising portion of Claim 1.
[0008] Such an approach, however, fails to consider the low power available from the portable
phone unit and the fact that the radiation pattern from the portable phone antenna
is omnidirectional. This generally results in a very small fraction of the radiated
power reaching the "repeater" and the external antenna unit. Similarly, the energy
received by the external antenna is transferred to the "repeater" and omnidirectionally
radiated within the vehicle. Only a small fraction of the received signal is acquired
by the portable phone antenna. Further, the external antenna and the internal dipole
repeater are coupled capacitively, through the glass window, thereby resulting in
some signal loss.
[0009] According to the present invention there is provided a directional passive repeater
having the features described in the characterising portion of Claim 1. Using this
arrangement, the radiated power reaching the repeater and external antenna unit is
significantly improved. Preferably, the rear window is utilized to affix the antenna
to the vehicle, since it does not create any significant visual obstruction to the
driver's field of view. It is, of course, possible to mount the antenna to the front
windshield or to any of the fixed glass side windows.
[0010] In the simplest embodiment of the present invention, the dipole is made of a sheet
material to increase the surface area that faces the interior of the vehicle. This
increases the gain in a direction orthogonal to the surface by about 2 dB over conventional
round wires. It is then possible for a portable unit on the interior of the vehicle
to "see" the externally mounted dipole and communicate with it both in the sending
and receiving modes.
[0011] In order to create more "gain" in the direction of the portable phone unit and its
antenna, one or more parasitic elements may be added. For example, a "reflector" radial,
that is approximately .58 wavelength, is spaced at least 1/10 wavelength (or multiples
thereof) away from the dipole in a direction that is substantially orthogonal to the
axis of the mast and the axis of the dipole and which creates gain for signals being
exchanged between the dipole and the antenna of the portable unit. This reflector
dipole can also be mounted on the exterior of the vehicle and is in communication
with the portable unit by radiation through the glass.
[0012] In another embodiment, a second parasitic radial, or "director" that is at least
.45 wavelength, is mounted on the interior of the vehicle, on the opposing surface
of the glass and at least 1/10 wavelength from the dipole. In yet other embodiments,
additional parasitic elements acting as directors and/or reflectors can be added to
increase the directionality of the array and to increase the gain, as well, with respect
to signals between the repeater and the antenna of the portable unit. In adding additional
elements, it is important that each element be spaced at least 1/10 wavelength from
the next adjacent element.
[0013] At the radio frequencies of operation, the glass has no shielding effect and a capacitative
coupling through the glass is unnecessary. The resulting combination according to
the present invention is a passive array which can be highly directional and can effectively
impart "gain" to signals which are passed between the portable phone antenna and the
external mast.
[0014] In alternative embodiments, additional parasitic elements can be provided inside
or outside of the vehicle to improve the gain and directionality of the array. Because
there is no capacitative coupling through the glass, there are no "coupling" losses.
[0015] The novel features which are characteristic of the invention, both as to structure
and method of operation thereof, together with further objects and advantages thereof,
will be understood from the following description, considered in connection with the
accompanying drawings, in which the preferred embodiment of the invention is illustrated
by way of example. It is to be expressly understood, however, that the drawings are
for the purpose of illustration and description only, and they are not intended as
a definition of the limits of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
FIG. 1 is a front view of a repeater according to the present invention;
FIG. 2 is a front view of an alternative repeater;
FIG. 3 is a side view of the repeater of FIG. 2;
FIG. 4 is a diagram of a passive repeater array according to the present invention;
FIG. 5 is a side view of an alternative embodiment including a parasitic element on
each side of the vehicle glass;
FIG. 6 is a side view of a preferred embodiment with two parasitic elements on one
side of the glass and one on the other; and
FIG. 7 is an electrical diagram of the repeater of the present invention.
DETAILED DESCRIPTION OF THE DRAWINGS
[0017] Turning first to FIG. 1, there is shown a cellular repeater 10 according to a primitive
embodiment of the present invention. As shown, the repeater 10 includes a mast radiator
12 and a base 14 which is adhesively affixed to the exterior of a glass window element
16 of a vehicle. The glass window element 16 is preferably the rear window of the
vehicle, but can be any of the non conductive panels of the vehicle. While the rear
window or back light is the mounting place of choice, the side windows or the front
windshield of the vehicle can serve, as well.
[0018] Embedded in the base 14 and extending substantially (but not necessarily) at right
angles to the axis of the mast radiator 12 are a pair of quarter wave radials 18 that
are connected to serve as a 1/2 wave dipole. The radials 18 are coupled to the mast
radiator 12 and aid in the passive repeater function with respect to signals received
by the mast radiator 12 and with respect to signals that are received from a portable
transmitter (not shown) in the near vicinity.
[0019] To improve the efficiency of the radials 18, a modified antenna 20 is shown in FIGS.
2 and 3. Rather than using a small diameter round wire as the radial element, flat
elongated plates 22 in the base 14' extend approximately one quarter wave from the
mast radiator 12 and serve as the dipole. Using the plates 22 permits slightly higher
gain in the horizontal plane and thus better communication between the portable telephone
24 antenna on the interior of the vehicle and the dipole plates 22 which are mounted
on the exterior of the vehicle.
[0020] To further improve the gain, an additional parasitic element can be added to the
base to create another alternative repeater 30 as is shown in FIG. 4. A base 14" is
modified to include two pairs of elements. A first dipole made up of one quarter wave
segments 22 is positioned adjacent the glass 16 while a second pair of elements 26
are spaced at least 1/10 wavelength from the dipole pair and function as a reflector
with a sensitive gain axis in the direction toward the front of the vehicle where
the portable unit is most likely to be found.
[0021] In the embodiment of FIG. 5, a similar result is achieved in repeater 40 by utilizing
a parasitic element on the interior of the vehicle. As shown, the base 14' containing
the quarter wave segments 22 is affixed to the exterior of a glass plate 16 and an
interior base 42 has a similar pair of parasitic elements 44 which function as a director.
The combination is then more sensitive to radiation in the horizontal plane along
a line generally parallel to the vehicular axis when the base 14' is affixed to the
rear window.
[0022] Generally, the director element 44 should be less than one quarter wave length and
should be spaced apart from the dipole segments 22 by at least 1/10 wavelength, which
includes the thickness of the glass 16.
[0023] A preferred embodiment of the invention has been shown in FIG. 6. Here, the alternative
antenna 30 of FIG. 4 is combined with the interior base 42 of FIG. 5 to form a repeater
combination 50 that includes dipole segments 22, reflector elements 26 and, on the
interior base 42, director elements 44. This arrangement more nearly approximates
a passive dipole array that is highly directional and which exhibits considerable
gain along the sensitive axis which is orthogonal to the parasitic elements.
[0024] As in the other embodiments, the spacing between adjacent elements is at least 1/10
wavelength and the effective length of the director is less than 1/2 wavelength while
the reflector is more than 1/2 wavelength. In one experimental model, the director
was set at .45 wave length while the radiator was set at .58 wave length
[0025] FIG. 7 is an electrical diagram of the dipole 18 of FIG. 1 connected to the radiating
mast 12. As shown, the connection to one arm of the dipole 18 is through a capacitive
element 46 and through an inductive element 48 to the other arm of the dipole 18.
The impedance values are selected for optimum electrical coupling between the radiator
mast 12 and the dipole 18 at the frequencies of interest. Since the dipole elements
of the other embodiments are electrically equivalent to the dipole of FIG. 1, the
electrical interconnection would be similar.
[0026] Thus there has been shown a passive antenna repeater for a portable cellular telephone
which is to be used in the interior of a vehicle. The repeater unit in its simplest
embodiment includes a passive dipole which is coupled to a mast radiator that has
unobstructed communication with a "cell". The portable telephone is operated within
the vehicle which would otherwise effectively shield the telephone antenna from the
"cell".
[0027] As a result, the telephone antenna and the dipole are now in direct, line of sight
communication for transmission and reception of electrical signals. The signals received
by the passive dipole are radiated from the radiator mast and the signals received
by the radiator mast are radiated from the dipole to the interior telephone antenna
at power levels which are sufficiently low to pose no human health hazard.
[0028] In alternative embodiments, additional parasitic elements are added, either to the
externally mounted device or to an internally mounted device which is placed on the
inner surface of the vehicle glass opposite the externally mounted device.
1. A repeater assembly (10,20,30,40,50) for use with a transceiver (24) located within
a shielding environment having areas (16) that are transparent to electromagnetic
radiation, comprising in combination:
an antenna, including a radiator (12) having an axis, said antenna being mounted to
the exterior of the shielding environment in a radiation transparent area (16) thereof;
and tuning means (46,48) electrically coupling a dipole element (18,22) to said antenna
radiator (12); characterised by the dipole element (18,22) being exterior of the shielding
environment and attached to said antenna and extending in a direction to maximise
transmission and reception in a plane that intersects said antenna axis;
whereby the transceiver (24) within the shielding environment is in radiant energy
communication with said dipole element (18,22) and, by means of said radiator (12),
communicates with remote transmitters and receivers that are in radiant energy communication
with said radiator (12).
2. A repeater assembly as claimed in Claim 1, wherein the antenna is coupled to a first
base member (14, 14', 14"), adapted to be mounted to the exterior of the shielding
environment in a radiation-transparent area (16) thereof.
3. A repeater assembly as in Claim 2, further including a parasitic element (26) in the
first base member substantially parallel to said dipole (22) for enhancing transmission
and reception in a selected direction whereby gain is imparted to signals transmitted
in the selected direction between the repeater assembly (10,20,30,40,50) and a transceiver
(24) within the shielded environment.
4. A repeater assembly as in Claim 1 or Claim 2, further including a parasitic element
(44) mounted on the interior of the shielding environment in the transparent area
(16) thereof adjacent said antenna, said parasitic element (44) being spaced at least
1/10 wavelength from said dipole (22) and arranged to be substantially parallel thereto
for enhancing transmission and reception in a selected direction, whereby gain is
imparted to signals transmitted in the selected direction between the repeater assembly
and a transceiver (24) within the shielded environment.
5. A repeater assembly as claimed in Claim 4 wherein the parasitic element (44) mounted
on the interior of the shielding environment is contained within a second base member
(42).
6. A repeater assembly as claimed in Claim 5 when dependent upon Claim 2, wherein the
second base member (42) is adjacent the first base member (14).
7. A repeater assembly as in Claim 3, further including a parasitic element (44) mounted
on the interior of the shielding environment in the transparent area (16) thereof
adjacent said antenna, said parasitic element (44) being spaced at least 1/10 wavelength
from said dipole (22) and arranged to be substantially parallel thereto for enhancing
transmission and reception in a selected direction, whereby gain is imparted to signals
transmitted in the selected direction between the repeater assembly and a transceiver
(24) within the shielded environment.
8. A repeater assembly as claimed in Claim 7 wherein the parasitic element (44) mounted
on the interior of the shielding environment is contained within a second base member
(42) that is adapted to be installed on the interior of the shielding environment
in the transparent area (16) thereof, and adjacent to the first base member (14).
1. Zwischenverstärkeranordnung (10, 20, 30, 40, 50) zur Verwendung bei einem Sender-Empfänger
(24), der sich innerhalb einer Abschirmungsumgebung mit Bereichen (16), die elektromagnetischer
Strahlung gegenüber durchlässig sind, befindet, die in Kombination aufweist:
eine Antenne, einschließlich eines Strahlers (12) mit einer Achse, wobei die Antenne
außen an der Abschirmungsumgebung in einem Strahlung gegenüber durchlässigen Bereich
(16) davon angebracht ist, und eine Abstimmungseinrichtung (46, 48), die elektrisch
ein Dipolelement (18, 22) an den Antennenstrahler (12) koppelt, dadurch gekennzeichnet, daß sich das Dipolelement (18, 22) außenseitig der Abschirmungsumgebung befindet und
an der Antenne befestigt ist und sich in einer Richtung erstreckt, um die Übertragung
und den Empfang in einer Ebene zu maximieren, die die Antennenachse schneidet,
wodurch der Sender-Empfänger (24) innerhalb der Abschirmungsumgebung in Strahlungsenergieverbindung
mit dem Dipolelement (18, 22) und mittels des Strahlers (12) mit den fernen Sendern
und Empfängern in Verbindung steht, die in Strahlungsenergieverbindung mit dem Strahler
(12) stehen.
2. Zwischenverstärkeranordnung nach Anspruch 1, dadurch gekennzeichnet, daß die Antenne mit dem ersten Basiselement (14, 14', 14") gekoppelt ist, das zum Anbau
außen an die Abschirmungsumgebung in einem Strahlung gegenüber durchlässigen Bereich
(16) davon geeignet ist.
3. Zwischenverstärkeranordnung nach Anspruch 2, die weiterhin ein parasitäres Element
(26) in dem ersten Basiselement umfaßt, das im wesentlichen parallel zu dem Dipol
(22) ist, um die Übertragung und den Empfang in einer ausgewählten Richtung zu verstärken,
wodurch die in der ausgewählten Richtung zwischen der Zwischenverstärkeranordnung
(10, 20, 30, 40, 50) und einem Sender-Empfänger (24) innerhalb der abgeschirmten Umgebung
übertragenen Signale verstärkt werden.
4. Zwischenverstärkeranordnung nach Anspruch 1 oder Anspruch 2, die weiterhin ein parasitäres
Element (44) umfaßt, das im Inneren der Abschirmungsumgebung in dem durchlässigen
Bereich (16) davon in der Nähe der Antenne angebracht ist, wobei das parasitäre Element
(44) mindestens 1/10 Wellenlänge von dem Dipol (22) beabstandet und angeordnet ist,
um im wesentlichen parallel dazu zu sein, um die Übertragung und den Empfang in einer
ausgewählten Richtung zu verstärken, wodurch die in der ausgewählten Richtung zwischen
der Zwischenverstärkeranordnung und einem Sender-Empfänger (24) innerhalb der abgeschirmten
Umgebung übertragenen Signale verstärkt werden.
5. Zwischenverstärkeranordnung nach Anspruch 4, dadurch gekennzeichnet, daß das parasitäre Element (44), das an dem Inneren der Abschirmungsumgebung angebracht
ist, innerhalb eines zweiten Basiselements (42) enthalten ist.
6. Zwischenverstärkeranordnung nach Anspruch 5 bei Abhängigkeit von Anspruch 2, dadurch gekennzeichnet, daß das zweite Basiselement (42) dem ersten Basiselement (14) benachbart ist.
7. Zwischenantenneneinheit nach Anspruch 3, die weiterhin ein parasitäres Element (44)
besitzt, das in dem Inneren der Abschirmungsumgebung in dem durchlässigen Bereich
(16) davon in der Nähe der Antenne angebracht ist, wobei das parasitäre Element (44)
mindestens 1/10 Wellenlänge von dem Dipol (22) beabstandet und angeordnet ist, um
im wesentlichen parallel dazu zu verlaufen, um die Übertragung und den Empfang in
einer ausgewählten Richtung zu verstärken, wodurch die in der ausgewählten Richtung
zwischen der Zwischenverstärkeranordnung und einem Sender-Empfänger (24) innerhalb
der abgeschirmten Umgebung übertragenen Signale verstärkt werden.
8. Zwischenverstärkeranordnung nach Anspruch 7, dadurch gekennzeichnet, daß das parasitäre Element (44), das an dem Inneren der Abschirmungsumgebung angebracht
ist, innerhalb eines zweiten Basiselements (42) enthalten ist, das geeignet ist, am
Inneren der Abschirmungsumgebung in dem durchlässigen Bereich (16) davon benachbart
dem ersten Basiselement (14) angebracht zu werden.
1. Ensemble répéteur (10, 20, 30, 40, 50), destiné à être utilisé avec un émetteur-récepteur
(24), situé à l'intérieur d'un environnement de blindage, comportant des zones (16)
qui sont transparentes au rayonnement électromagnétique, comprenant en association:
une antenne, comportant un radiateur (12) ayant un axe, ladite antenne étant montée
à l'extérieur de l'environnement de blindage, dans une zone de celui-ci transparente
au rayonnement (16); et des moyens d'accord (46, 48), couplant électriquement un élément
dipôle (18, 22) audit radiateur d'antenne (12) ; caractérisé par le fait que l'élément
dipôle (18, 22) est extérieur à l'environnement de blindage, et fixé à ladite antenne,
et s'étendant dans une direction qui maximise l'émission et la réception dans un plan
qui coupe ledit axe de l'antenne;
de façon que l'émetteur-récepteur (24) situé à l'intérieur de l'environnement de blindage
soit en communication avec rayonnement d'énergie avec ledit élément dipôle (18, 22),
et communique, au moyen dudit radiateur (12), avec des émetteurs et des récepteurs
éloignés, qui sont en communication par rayonnement d'énergie avec ledit radiateur
(12).
2. Ensemble répéteur selon la revendication 1, dans lequel l'antenne est couplée à un
premier organe de base (14, 14', 14"), susceptible d'être monté à l'extérieur de l'environnement
de blindage, dans une zone de celui-ci transparente au rayonnement (16).
3. Ensemble répéteur selon la revendication 2, comportant en outre un élément parasite
(26) situé dans le premier organe de base, sensiblement parallèle audit dipôle (22),
pour renforcer l'émission et la réception dans une direction sélectionnée, de façon
qu'un gain soit communiqué aux signaux transmis dans la direction sélectionnée, entre
l'ensemble répéteur (10, 20, 30, 40, 50) et un émetteur-récepteur (24) situé à l'intérieur
de l'environnement de blindage.
4. Ensemble répéteur selon la revendication 1 ou la revendication 2, comportant en outre
un élément parasite (44) monté à l'intérieur de l'environnement de blindage, dans
la zone transparente (16) de celui-ci, à côté de ladite antenne, ledit élément parasite
(44) étant espacé dudit dipôle (22) de 1/10 de longueur d'onde au moins, et agencé
de façon à être sensiblement parallèle à celui-ci, pour renforcer l'émission et la
réception dans une direction sélectionnée, de façon qu'un gain soit communiqué aux
signaux transmis dans la direction sélectionnée, entre l'ensemble répéteur et un émetteur-récepteur
(24) situé à l'intérieur de l'environnement de blindage.
5. Ensemble répéteur selon la revendication 4, dans lequel l'élément parasite (44) monté
à l'intérieur de l'environnement de blindage, est contenu à l'intérieur d'un second
organe de base (42).
6. Ensemble répéteur selon la revendication 5, lorsqu'elle dépend de la revendication
2, dans lequel le second organe de base (42) est adjacent au premier organe de base
(14).
7. Ensemble répéteur selon la revendication 3, comportant en outre un élément parasite
(44) monté à l'intérieur de l'environnement de blindage, dans la zone transparente
(16) de celui-ci, à côté de ladite antenne, ledit élément parasite (44) étant espacé
dudit dipôle (22) de 1/10 de longueur d'onde au moins, et agencé de façon à être sensiblement
parallèle à celui-ci, pour renforcer l'émission et la réception dans une direction
sélectionnée, de façon qu'un gain soit communiqué aux signaux transmis dans la direction
sélectionnée, entre l'ensemble répéteur et un émetteur-récepteur (24) situé à l'intérieur
de l'environnement de blindage.
8. Ensemble répéteur selon la revendication 7, dans lequel l'élément parasite (44) monté
à l'intérieur de l'environnement de blindage, est contenu à l'intérieur d'un second
organe de base (42), qui est susceptible d'être monté à l'intérieur de l'environnement
de blindage, dans la zone transparente (16) de celui-ci, et à côté du premier organe
de base (14).