| (19) |
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(11) |
EP 0 409 867 B1 |
| (12) |
EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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28.12.1994 Bulletin 1994/52 |
| (22) |
Date of filing: 23.03.1989 |
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| (86) |
International application number: |
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PCT/US8901/235 |
| (87) |
International publication number: |
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WO 8910/012 (19.10.1989 Gazette 1989/25) |
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| (54) |
BALANCED LOW PROFILE HYBRID ANTENNA
SYMMETRISCHE HYBRIDANTENNE MIT KLEINEM QUERSCHNITT
ANTENNE HYBRIDE EQUILIBREE A PROFILE BAS
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| (84) |
Designated Contracting States: |
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AT BE CH DE FR GB IT LI LU NL SE |
| (30) |
Priority: |
11.04.1988 US 179707
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| (43) |
Date of publication of application: |
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30.01.1991 Bulletin 1991/05 |
| (73) |
Proprietor: MOTOROLA, INC. |
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Schaumburg, IL 60196 (US) |
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| (72) |
Inventors: |
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- NGUYEN, Tuan, Kien
Boca Raton, FL 33433 (US)
- BALZANO, Quirino
Plantation, FL 33322 (US)
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| (74) |
Representative: Dunlop, Hugh Christopher |
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Motorola,
European Intellectual Property,
Midpoint,
Alencon Link Basingstoke,
Hampshire RG21 7PL Basingstoke,
Hampshire RG21 7PL (GB) |
| (56) |
References cited: :
EP-A- 0 331 486
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JP-A- 5 644 202
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| |
|
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- JOURNAL OF APPLIED PHYSICS, vol. 63, no. 6, 15th March 1988, pages 1820-1823,New York,
US; J.P. CASEY et al.: "Square loop antenna with a dielectric core"
- IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, vol. AP.18, no. 3, May 1970, USA, pages
389-391, A. Dion;
- DION,"Transmision of Step Functions by Loop Antennas",COMMUNICATIONS,Vol.AP18,No.3,May
1970,pp.389-91,see Fig.1.
- KING,"Characteristics of Body-Mounted Antennas for personal Radio Sets,IEEE TRANSACTIONS
ON ANTENNAS AND PROPAGATION,March 1975,pp.242-4 See the entire document.
|
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| |
|
| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
FIELD OF THE INVENTION
[0001] This invention relates to antennas for miniature portable communications receivers
and more particularly to a low profile hybrid antenna having balanced magnetic and
electric field response characteristics.
BACKGROUND OF THE INVENTION
[0002] Antennas used in miniature portable communications receivers, such as pagers, have
generally been magnetic loop antennas optimized only to respond to the H-field component
of an incident electromagnetic wave. Such prior art magnetic loop antennas were manufactured
with either round or flat conductors formed as single or multiple loop antennas, with
or without magnetic materials, such as a ferrite core. Examples of prior art loop
antennas are given in Japanese patent application JP-A-5644202 and in the IEE Transactions
on Antennas and Propagation, Vol. AP18, No. 3, May 1970, US; pages 389-391. The choice
of design, with or without the core, was primarily dictated by the frequency of operation
and the available space within the receiver housing to accommodate the antenna. Since
these miniature portable communications receivers were generally worn on the body,
such as in a shirt pocket or clipped to the belt, the loop was generally tuned so
as to couple to the magnetic fields which encircle a human body in an electromagnetic
field, thereby enhancing the sensitivity of the receiver. While such portable communication
receivers benefit from the "body enhancement" effect, this benefit was often at the
expense of degraded sensitivity when the receiver was removed from the body, or in
a free field mode of operation as would occur when the portable communications receiver
was placed on a table or desk.
[0003] While the prior art antenna designs have provided adequate performance in portable
communications receivers having a substantial loop cross-sectional area, these designs
have proved to be inadequate in portable communication receiver designs having extremely
low profiles, such as encountered in housings for thin sheet-like receivers as in
a "credit card" style pager. There is a need for an antenna that can be simply manufactured
and provides excellent performance in such a low profile portable communications receiver.
BRIEF SUMMARY OF THE INVENTION
[0004] It is therefore an object of the present invention to provide a low profile antenna
providing good sensitivity.
[0005] It is a further object of the present invention to provide a low profile antenna
operable over a wide range of frequencies.
[0006] It is yet another object of the present invention to provide a low profile antenna
providing good sensitivity on and off the body.
[0007] It is a further object of the present invention to provide a low profile antenna
optimizing both magnetic and electric field response characteristics.
[0008] These and other objects which will become apparent are provided in an antenna for
a low profile portable communications receiver. The antenna in accordance with the
present invention comprises a conductor having a first set of two parallel opposed
sides and a second set of two parallel opposed sides shorter than said first set of
sides, the conductor forming a single turn rectangular loop wrapped about a dielectric
core and terminating in connection tabs located symmetrically about the midpoint of
one of said first set of sides, for connection to the receiver, said antenna being
CHARACTERIZED BY:
the selected length of said first set of two parallel opposed sides and the selected
relative dielectric constant of said dielectric core such that when interposed within
and substantially filling said loop formed from said conductor, said loop functions
as a half-wave electric dipole symmetrical about said connection tabs at the operating
frequency.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The features of the invention which are believed to be novel are set forth with particularity
in the appended claims. The invention itself, together with its further objects and
advantages thereof, may be best understood by reference to the following description
when taken in conjunction with the accompanying drawings, in the several figures of
which like reference numerals identify identical elements, in which:
[0010] FIG. 1 is an isometric drawing showing a preferred embodiment of the present invention.
[0011] FIG. 2A is a further diagram showing the preferred embodiment of the present invention.
[0012] FIG. 2B is a sectional view taken along line A-A of FIG. 2A.
[0013] FIG. 2C is a sectional view taken along line B-B of Fig. 2A.
[0014] FIG. 3 is a schematic diagram showing an electrical connection of the preferred embodiment
of the present invention to a receiver.
[0015] FIG. 4 is a table comparing the performance of the preferred embodiment of the present
invention to other conventional antenna geometries.
[0016] FIG. 5 is a table comparing the performance of the preferred embodiment of the present
invention with and without a dielectric core.
DESCRIPTION OF A PREFERRED EMBODIMENT
[0017] With respect to the figures, FIGS. 1-5 illustrate a construction and performance
of a preferred embodiment of the present invention, a low profile hybrid antenna providing
a balanced response characteristics to the magnetic and electric field components
of an electromagnetic wave. Reference is directed to FIG. 1 which shows an isometric
view of the preferred embodiment of the present invention, a low profile antenna 10
capable of operating efficiently over a wide frequency range from 150 MHz to 1000
MHz. As shown, antenna 10 comprises a core 16 and a conductor 14. Conductor 14 is
formed into a single turn loop having substantially horizontal parallel opposed sides
15 and 17A-B and substantially vertical parallel opposed sides 19 and 21. Side 17A-B
terminates in integral connection tabs 18 which are located symmetrically about the
midpoint of side 17, thereby providing a center fed antenna configuration. This single
turn loop functions in a conventional manner as a magnetic dipole. However, as shown,
the loop geometry is somewhat unconventional in that it has an extremely low profile,
as is required in a thin sheet-like receiver, and that the connection to the antenna
is at the midpoint of the loop, rather then at an endpoint of the loop, as has been
typically done previously. The choice of the center fed configuration is not arbitrary,
but rather is based on the fact that a substantial improvement in antenna sensitivity
is obtained over the end fed configuration when the aspect ratio of the sides of the
loop, i.e. the horizontally positioned sides 15 and 17 are substantially longer than
the vertically positioned sides 19 and 21 as will be discussed with reference to FIG.
5.
[0018] Considering FIG. 1 in greater detail, conductor 14, with integral connection tabs
18, can be formed in a suitable manner, such as by a stamping from a flat sheet of
thin conductive material, or sheet metal, such as copper or beryllium copper. A round
conductor can be used. However, as will be appreciated by one of ordinary skill in
the art, the flat conductor allows a thinner profile antenna while maintaining the
lowest resistance. Conductor 14 may be suitably plated, such as with copper, nickel
and tin to provide a durable surface which is easily soldered to mating conductors
20 which provide connection to a receiver and which are shown for illustrative purposes
as being on printed circuit board (P.C.B.) 12. It should be noted the configuration
of connecting tabs 18 is not critical to the performance of antenna 10, and that other
configurations for connection, such as soldering or welding separate wires or conductors
to antenna 10 would work equally as well.
[0019] The core 16, having a substantially rectangular cross section normal to the plane
of the loop formed by conductor 14, is interposed within conductor 14 between sides
15 and 17 and also between 19 and 21. Core 16 may also have chamfered or radiused
edges to accommodate mounting or other physical requirements without affecting the
performance of antenna 10. Core 16 is made from a dielectric material, which provides
several functions with respect to the performance of antenna 10. The first function
provided by core 16 is minimizing the detuning, i.e. the shift of tuned center frequency,
of antenna 10 when the receiver is moved close to the body. By minimizing the detuning
of the antenna, the antenna can be tuned for optimum performance either on the body
or off the body. The resultant sensitivity loss due to operation of the receiver in
a condition other than for which the antenna was optimally tuned, would then not adversely
effect the antenna sensitivity. The second function performed by core 16 is to provide
a means of optimizing the impedance of antenna 10. Such optimization makes matching
of the antenna to a receiver easier than for a conventional loop antenna. The third
and most important function of core 16 is to optimize the electric field response
of the antenna, thereby enhancing the overall antenna performance. This is accomplished
by the generation of a half wavelength electric dipole having arms 23 and 25 symmetrical
about connection tabs 18. The electric dipole response can be optimized for any frequency
within the 150 MHz to 1000 MHz operating frequency range by properly selecting the
length of the arms 23 and 25 of the dipole and the relative dielectric constant of
core 16. These functions will be described in greater detail in the specification.
[0020] While not shown in FIG. 1, a thin adhesive film may be applied to conductor 14 so
as to securely position core 16 within conductor 14.
[0021] Reference is now directed to FIG. 2 which shows a top view of FIG. 1 illustrating
further details for the construction of the preferred embodiment of the present invention.
As shown in FIG. 2A, the core 16 is positioned inside conductor 14, forming antenna
10. Antenna 10 is further positioned within a cutout 13 in P.C.B. 12. P.C.B. 12, along
with antenna 10, are positioned inside a housing 11. The housing 11 can be composed
of a pliable material such as plastic, polycarbonate, or LEXAN. The cutout 13 minimizes
the thickness required for housing 11 as shown in FIG. 2B and further limits any interaction
of antenna 10 with the receiver. Connection tabs 18 are formed so as to allow antenna
10 to be positioned within cutout 13 while allowing contact to printed circuit conductors
20, as shown in FIG. 2C. It will be appreciated by one of ordinary skill in the art
that antenna 10 may be rotated horizontally 180 degrees, thereby bringing connection
tabs 18 to P.C.B. 12 from the top without affecting the antenna performance.
[0022] As shown in FIG. 2B, conductor 14 has a width 27 of 3.00 mm (.118 inches) and a thickness
29 of 0.25 mm (.010 inches) after being suitably plated. The internal dimension of
the loop formed by conductor 14 is 3.63 mm (.143 inches) (sides 19 or 21) by 76.13
mm (2.6 inches) (side 15), providing an aspect ratio of approximately 18 for the sides
of the loop. A dielectric core 16 of approximately the same dimension as the loop
is positioned within the loop. Dielectric core 16 has a cross section measuring 3.00
mm (.118 inches) by 6.22 mm (.245 inches), thus extending beyond the edges of conductor
14. Dielectric core 16 is a high dielectric constant material, such as Alsimag 192
manufactured by General Electric, having a relative dielectric constant, ε
r, of approximately 100. The loop length and core dielectric constant chosen provide
a half-wave electric dipole at the 280 MHz operating frequency, and results in an
antenna impedance of approximately 10 ohms. It will be appreciated by one of ordinary
skill in the art that as the operating frequency is increased, the dimensions of the
rectangular loop antenna constructed in view of the present invention would decrease,
given a constant relative dielectric constant core. Furthermore, a variety of dielectric
materials having relative dielectric constants between 3 and 250 are available to
allow tailoring the size of the antenna. The size of the antenna at any fixed operating
frequency would increase as lower relative dielectric constant cores are used, in
order to maintain equivalent antenna sensitivities. Furthermore the width of the core
need not extend beyond the width of conductor 14 when a core having a relative dielectric
constant greater than ε
r =3 is used. To prevent fringing, the width of core 16 has to be at least the width
of conductor 14. With the dielectric core in place, relative electric fields are substantially
confined between the sides of the loop, as occurs in a parallel strip line, and in
so doing, this greatly reduces the interaction generally noted when the receiver is
placed close to the body, as previously described.
[0023] For purposes of explanation, an antenna operating at a frequency of 280 MHz will
be used to describe the circuit of FIG. 3 as well as the performance characteristics
shown in FIGS. 4 and 5. However, it is important to note that antenna 10 operates
in the range 200 MHz to 1000 MHz with approximately the same characteristics. FIG.
3 shows the electrical schematic for the circuitry to tune and match antenna 10 to
the receiver. The operating frequency of antenna 10 is determined by variable capacitor
22 which couples across the output terminals, or connecting tabs 18, of antenna 10
and capacitor 24 which couples from a first output terminal of antenna 10 and ground.
Variable capacitor 22 is used to tune the exact center operating frequency. For a
280 MHz operating frequency, variable capacitor 22 ranges from 2 to 10 picofarads.
Capacitor 24 will range from 1 to 3 picofarads depending upon the actual antenna impedance
which varies depending upon the relative dielectric constant of core 16. Capacitor
26 which couples between the second output terminal of antenna 10 and ground, and
capacitor 28 which couples between the second output terminal of antenna 10 and the
input of RF amplifier 30 are used to match the output impedance of antenna 10 to the
input impedance of RF amplifier 30 in a manner well known to one of ordinary skill
in the art.
[0024] As previously described, the center fed rectangular loop configuration was found
to be better than an end fed rectangular loop configuration. FIG. 4 shows this comparison
for loops 31-33 without the dielectric core. A circular loop antenna 31 of the same
area is used as a reference for the comparison. All antennas compared had the same
cross-sectional area and were oriented in an electromagnetic field to maximize both
E-field and H-field responses, the H-field only or H dominant response, and the E-field
only or E dominant response. As shown in FIG. 4A, the circular loop antenna 31 response
was as expected, having good H-dominant sensitivity, and poor E-dominant sensitivity.
Also as expected, the combined E+H sensitivity reflected only the H dominant sensitivity.
The E+H sensitivity of the end fed rectangular loop antenna shown in Fig. 4C was found
to be 3.5 dB worse than the loop, while providing a similar E-field result. While
the H dominant sensitivity was not measured, the combined E+H sensitivity measurement
result is indicative of a poorer H dominant sensitivity. This result would be expected
due to the higher resistance of the rectangular loop due to the length of the conductor
compared to a circular loop of equivalent area. By comparison, the center fed rectangular
loop 14 shown in Fig. 4B provided an E+H sensitivity .5 dB better than the circular
loop, partly due to the substantially increased E-field sensitivity, even without
the dielectric core. It is also important to note that the degradation of the H dominant
sensitivity was significantly less than would otherwise be expected when compared
to the results of the end fed rectangular loop.
[0025] When dielectric core 16 is positioned within conductor 14, the electric dipole effect
can be optimized, as previously explained. By properly selecting a dielectric material,
the arms of the center fed rectangular loop can be made to perform as a one-half wavelength
electric dipole at 280 MHz, the operating frequency of the preferred embodiment. FIGS.
5A-C tabulate the resultant sensitivities obtained by optimizing the electric dipole
response. The orientations of the center fed rectangular loop for measurement of the
E+H, E-dominant and H-dominant field sensitivities are also shown in Figs. 5A-C, allowing
independent measurement of each of the sensitivities. By positioning antenna 10 vertically
in a vertically polarized electromagnetic field, both the magnetic and electric dipoles
are oriented to intercept the incident electromagnetic wave. As shown in FIG. 5A,
the measured E+H sensitivity is as shown, with a 1 dB improvement when the core is
present in the antenna. Rotating antenna 10 ninety degrees as shown in FIG. 5B, or
parallel, to the H-field places the antenna in the E-dominant position, results in
a substantial 2.5 dB improvement in E-field sensitivity. By rotating antenna 10 into
a horizontal position normal to the H-field, as shown in FIG. 5C, the H-dominant sensitivity
is measured, and as shown, shows only a small, .5 dB, reduction in H-field sensitivity.
It is also important to note the E-field and H-field sensitivities have been balanced
due to the optimization of the electric dipole effect, and that the overall E+H sensitivity
is 1.5 dB better than a circular loop of equivalent area.
[0026] While the preferred embodiment of the present invention described an antenna having
an aspect ratio of the sides of 18 to 1, equivalent performance characteristics can
be obtained for aspect ratios of 10 to 1 or greater. However, it will be appreciated,
the lower the aspect ratio then the thicker the antenna profile.
1. An antenna (10) for a thin portable communications receiver (12, 30), comprising a
conductor (14) having a first set of two parallel opposed sides (15, 17A, 17B) and
a second set of two parallel opposed sides (19, 21) shorter than said first set of
sides (15, 17A, 17B), the conductor (14) forming a single turn rectangular loop wrapped
about a dielectric core (16) and terminating in connection tabs (18) located symmetrically
about the midpoint of one of said first set of sides (17A, 17B), for connection to
the receiver (12, 30), said antenna (10) being CHARACTERIZED BY:
the selected length of said first set of two parallel opposed sides (15, 17A, 17B)
and the selected relative dielectric constant of said dielectric core (16), such that
when interposed within and substantially filling said loop formed from said conductor
(14), said loop functions as a half-wave electric dipole symmetrical about said connection
tabs (18) at the operating frequency.
2. The antenna (10) according to claim 1 wherein said conductor (14) is flat sheet metal.
3. The antenna (10) according to claim 2 wherein said metal sheet is beryllium copper.
4. The antenna (10) according to claim 1, 2 or 3 wherein said dielectric core (16) has
a substantially rectangular cross section normal to the plane of said loop.
5. The antenna (10) according to claim 4 wherein the width of said dielectric core (16)
is at least the width of said conductor (14).
6. The antenna (10) according to any preceding claim wherein said dielectric core (16)
has a relative dielectric constant of from 3 to 250.
7. The antenna (10) according to any preceding claim wherein said operating frequency
is greater than 150 MHz.
8. The antenna (10) according to claim 1, 2, 3, 4, 5, 6 or 7 wherein said antenna (10)
when operating in an incident electromagnetic wave has a predominantly magnetic field
response normal to the received incident electromagnetic wave.
9. The antenna (10) according to claim 1, 2, 3, 4, 5, 6 or 7 wherein said antenna (10)
when operating in an incident electromagnetic wave has a predominantly electric field
response parallel to the received incident electromagnetic wave.
10. The antenna (10) according to any preceding claim wherein the aspect ratio between
said first set of parallel opposed sides (15, 17A, 17B) and said second set of parallel
opposed sides (19, 21) is at least 10 to 1.
11. The antenna (10) according to claim 1, wherein said antenna (10) is tuned to center
frequency.
1. Antenne (10) für einen dünnen Kommunikationsempfänger (12, 30), die einen Leiter (14)
mit einer ersten Gruppe von zwei parallelen, einander gegenüberliegenden Seiten (15,
17A, 17B) und einer zweiten Gruppe von zwei parallelen, einander gegenüberliegenden
Seiten (19, 21), die kürzer sind als die erste Gruppe von Seiten (15, 17A, 17B), umfaßt,
wobei der Leiter (14) eine eingängige rechteckige Schleife bildet, die um einen dielektrischen
Kern (16) herum gewickelt ist und in Anschlußzungen (18) endet, die symmetrisch um
den Mittelpunkt einer der ersten Gruppe von Seiten (17A, 17B) angeordnet sind und
dem Anschluß an den Empfänger (12, 30) dienen, wobei die Antenne (10) dadurch gekennzeichnet
ist, daß:
die ausgewählte Länge der ersten Gruppe von zwei parallelen, einander gegenüberliegenden
Seiten (15, 17A, 17B) und die ausgewählte relative Dielektrizitätskonstante des dielektrischen
Kerns (16) so sind, daß, wenn er in die durch den Leiter (14) gebildete Schleife eingeführt
ist und sie im wesentlichen ausfüllt, die Schleife bei der Betriebsfrequenz als elektrischer
Halbwellendipol wirkt, der um die Anschlußzungen (18) herum symmetrisch ist. Ende.
2. Antenne (10) nach Anspruch 1, wobei der Leiter (14) flaches Blech ist.
3. Antenne (10) nach Anspruch 2, wobei das Blech Berylliumkupfer ist.
4. Antenne (10) nach Anspruch 1, 2 oder 3, wobei der dielektrische Kern (16) einen im
wesentlichen rechteckigen Querschnitt senkrecht zur Ebene der Schleife aufweist.
5. Antenne (10) nach Anspruch 4, wobei die Breite des dielektrischen Kern (16) wenigstens
der Breite des Leiters (14) entspricht.
6. Antenne (10) nach einem der vorangehenden Ansprüche, wobei der dielektrische Kern
(16) eine relative Dielektrizitätskonstante von 3 bis 250 hat.
7. Antenne (10) nach einem der vorangehenden Ansprüche, wobei die Betriebsfrequenz über
150 MHz liegt.
8. Antenne (10) nach Anspruch 1, 2, 3, 4, 5, 6 oder 7, wobei die Antenne (10), wenn sie
in einer auftreffenden elektromagnetischen Welle arbeitet, senkrecht zu der empfangenen
auftreffenden elektromagnetischen Welle vorwiegend auf das Magnetfeld anspricht.
9. Antenne (10) nach Anspruch 1, 2, 3, 4, 5, 6 oder 7, wobei die Antenne (10), wenn sie
in einer auftreffenden elektromagnetischen Welle arbeitet, parallel zu der empfangenen
auftreffenden elektromagnetischen Welle vorwiegend auf das elektrische Feld anspricht.
10. Antenne (10) nach einem der vorangehenden Ansprüche, wobei das Längenverhältnis zwischen
der ersten Gruppe paralleler, einander gegenüberliegender Seiten (15, 17A, 17B) und
der zweiten Gruppe paralleler, einander gegenüberliegender Seiten (19, 21) wenigstens
10 zu 1 trägt.
11. Antenne (10) nach Anspruch 1, wobei die Antenne (10) auf eine Mittenfrequenz abgestimmt
ist.
1. Antenne (10) pour un récepteur de communications portable plat (12, 30), comprenant
un conducteur (14) ayant un premier ensemble de deux brins opposés parallèles (15,
17A, 17B) et un second ensemble de brins opposés parallèles (19, 21) plus courts que
ledit premier ensemble de brins (15, 17A, 17B), ledit conducteur (14) formant un cadre
rectangulaire unifilaire autour d'un noyau diélectrique (16) et se terminant par des
pattes de raccordement (18) placées symétriquement par rapport au point central de
l'un dudit premier élément de brins (17A, 17B), aux fins de connexion au récepteur
(12, 30), ladite antenne (10) étant caractérisé par:
la longueur sélectionnée dudit premier ensemble de deux brins opposés parallèles
(15, 17A, 17B) et la constante diélectrique relative des brins dudit noyau diélectrique
(16), de sorte qu'une fois interposée dans une boucle formée à partir dudit conducteur
(14) et remplissant essentiellement celle-ci, ladite boucle fonctionne comme un dipôle
électrique demi-onde symétrique auxdites pattes de raccordement (18) à la fréquence
de travail.
2. Antenne (10) selon la revendication 1, dans laquelle ledit conducteur (14) est constitué
par une plaque métallique plate.
3. Antenne (10) selon la revendication 1, dans laquelle ladite plaque métallique est
du cuivre au béryllium.
4. Antenne (10) selon la revendication 1, 2, ou 3, dans laquelle ledit noyau diélectrique
(16) comporte une section essentiellement rectangulaire perpendiculaire au plan dudit
cadre.
5. Antenne (10) selon la revendication 4, dans laquelle la largeur dudit noyau diélectrique
(16) est au moins aussi large que ledit conducteur (14).
6. Antenne (10) selon l'une quelconque des revendications précédentes, dans laquelle
ledit noyau diélectrique (16) a une constante diélectrique relative comprise entre
3 et 250.
7. Antenne (10) selon l'une quelconque des revendications précédentes, dans laquelle
ladite fréquence de travail est supérieure à 150 MHz.
8. Antenne (10) selon la revendication 1, 2, 3, 4, 5, 6 ou 7, dans laquelle ladite antenne
(10), en fonctionnant dans une onde électromagnétique incidente, a une réponse en
champ électrique essentiellement perpendiculaire à l'onde électromagnétique incidente
reçue.
9. Antenne (10) selon la revendication 1, 2, 3, 4, 5, 6 ou 7, dans laquelle ladite antenne
(10), en fonctionnant dans une onde électromagnétique incidente, a une réponse en
champ électrique essentiellement parallèle à l'onde électromagnétique incidente reçue.
10. Antenne (10) selon l'une quelconque des revendications précédentes, dans laquelle
le rapport largeur/hauteur entre ledit premier ensemble de brins opposés parallèles
(15, 17A, 17B) et ledit second ensemble de brins opposés parallèles (19, 21) est au
moins de 10/1.
11. Antenne (10) selon la revendication 1, dans laquelle ladite antenne (10) est accordée
en fréquence centrale.