BACKGROUND OF THE INVENTION
1. Field of the Invention
[0001] The present invention relates to an antenna, and in particular to a relatively compact
patch antenna assembly.
2. Description of Prior Art
[0002] Nowadays, automotive satellite navigation systems rapidly become more and more popular.
In addition to be combined with an in-car AV system, many kinds of GPS products are
developed in which the satellite navigation system is integrated with a PDA, Notebook
or mobile phone. The GPS product which is most closely related to the car owner is
the portable automobile GPS. As to the car owner whose car is not originally equipped
with a GPS, it is good for him/her to choose a portable automobile GPS because the
price thereof is reasonable and the portability thereof allows to be used out of the
car. Further, even the car owner buys a new car in the future, he/she can still use
this portable automobile GPS.
[0003] When the GPS is integrated with various electronic products such a PDA, Notebook
or mobile phone, a GPS signal-receiving antenna assembly is necessarily built in the
electronic device. With reference to Fig. 1, the antenna comprises a substrate 1A,
a radiation metal pieces 2A, a grounded metal pieces 3A and a signal-inputting body
4A. The substrate of this kind of antenna is made of ceramic materials having a high
dielectric constant (8-150). The resonant frequency of the circularly polarized patch
antenna is 1575.42MHz
[0004] Recently, since the volume of the PDA or mobile phone is made more and more compact,
when the GPS is to be integrated with the PDA or mobile phone, a phenomenon may occurs
that the existing circularly polarized patch antenna shown in Fig. 1 cannot be mounted
therein. Moreover, it is difficult for this kind of circularly polarized patch antenna
to further reduce the size thereof because the area of the radiation metal piece 2A
connected on the surface of the substrate 1 A will be reduced accordingly when the
volume of the substrate 1A is reduced. On the condition that the substrate dielectric
constant is not changed, once the area of the radiation metal piece 2A is reduced,
the resonant frequency of the antenna will rise to depart from the frequency band
that can be received by the GPS, which causes the GPS unable to receive the signals.
Although the antenna can be mounted in a small-volume PDA or mobile phone, the function
of receiving satellite signals may not be obtained. Therefore, it is an important
issue in the field of the present invention to reduce the area and volume of the circularly
polarized patch antenna.
[0005] KR 10-2004-0072974 describes a circularly polarized wave patch antenna having a upper radiation metal
sheet and a lower ground electrode, wherein a substrate is provided therebetween.
A second ground electrode extends from the first ground electrode, wherein one or
more adjustment electrodes are arranged at portions extending from the second ground
electrode on the side surface of the surfaces of the substrate.
[0006] US 2002/0033770 A1 describes a circularly polarizes wave antenna device having an upper radiation metal
piece and a lower ground electrode. Between the upper and the lower electrode there
are capacity loading conductors on the side surfaces of a substrate.
[0007] EP 1 536 511 A1 describes an antenna device having an upper radiating conductor plate, which is connected
to a ground conductor plate via a supporting member, wherein the upper radiating conductor
plate has extending portions arranged perpendicular to the upper radiating conductor
plate.
[0008] EP 1 531 517A1 describes a circularly polarized wave antenna made of a sheet metal with high reliability
having an upper radiating conductor plate and a ground conductor arranged on top of
a substrate. The substrate is arranged below the upper radiating conductor plate and
the ground conductor.
[0009] EP 0 400 872 A1 describes a flat-plate antenna for use in mobile communications having a table shape
frame and a lower ground plate, which is connected via connecting members with the
table shape frame.
[0010] EP 1 536 514 A1 describes an antenna device having a dialectical substrate formed on a ground conductor
plate and a plurality of electrodes, which are provided on the dielectric substrate.
Each electrode form capacitor with a substrate. A radiating conductor plate is arranged
with a distance to the substrate and having a plurality of leg pieces passing through
the substrate.
[0011] JP 2004-312532 describes patch antenna having a substrate, a radiation metal piece, and a grounded
metal piece. A signal inputting body penetrates through the substrate. Metal pins
are spaced apart and separated from the top face and the side faces of the substrate.
[0012] EP 0 993 069A2 describes a circularly polarized wave antenna having a first ground electrode, a
feeding electrode at a side face and a second ground electrode. On top of the substrate,
there is a radiation electrode having two diagonally arranged chamfers.
SUMMARY OF THE INVENTION
[0013] The present invention is characterized in that the side face of the patch antenna
is additionally provided with a frequency down-conversion metal piece, so that the
volume of the circularly polarized patch antenna having the same dielectric constant
can be reduced by 10% to 50% while maintaining the original resonant frequency and
circularly polarized property.
[0014] In order to achieve the above objects, the present invention provides a circularly
polarized patch antenna assembly according to the independent claim 1, in which a
plurality of frequency down-conversion metal pieces extends from the grounded metal
piece. The frequency down-conversion metal pieces are adhered on the side face of
the substrate made of dielectric materials, so that the frequency down-conversion
metal piece on one side face is arranged diagonally with respect to the frequency
down-conversion metal piece on the opposite side face. When the resonant frequency
of the antenna is to be reduced, the position and the area of the frequency down-conversion
metal piece can be adjusted but the increased area of the frequency down-conversion
metal piece cannot be larger than a half area of the side face of the substrate. Alternatively,
the length of the frequency down-conversion metal piece can be increased.
BRIEF DESCRIPTION OF THE DRAWINGS
[0015]
Fig. 1 is a schematic view showing a conventional circularly polarized patch antenna
assembly;
Fig. 2 is a perspective view showing the patch antenna assembly of the first embodiment
of the present invention;
Fig. 3 is an exploded view showing the patch antenna assembly of the first embodiment
of the present invention;
Fig. 4 is a top view showing the patch antenna assembly of the first embodiment of
the present invention;
Fig. 5 is a side view showing the patch antenna assembly of the first embodiment of
the present invention;
Fig. 6 is a top view showing the patch antenna assembly of the second embodiment of
the present invention;
Fig. 7 is a side view showing the patch antenna assembly of the second embodiment
of the present invention;
Fig. 8 is a schematic view showing the patch antenna assembly of the third embodiment
of the present invention;
Fig. 9 is a schematic view showing the patch antenna assembly of the fourth embodiment
of the present invention;
Figs. 10A and 10B are schematic views showing the patch antenna assembly of the fifth
embodiment of the present invention;
Fig. 11 is a schematic view showing the patch antenna assembly according to an example;
and
Figs. 12A and 12B are schematic views showing the patch antenna assembly according
to an other example.
DETAILED DESCRIPTION OF THE INVENTION
[0016] The technical contents and detailed description of the present invention will be
explained with reference to the accompanying drawings.
[0017] Fig. 2 is a perspective view showing the patch antenna assembly of the first embodiment
of the present invention, and Fig. 3 is an exploded view showing the patch antenna
assembly of the first embodiment of the present invention. The miniaturized circularly
polarized patch antenna assembly shown in these figures includes a substrate 1, a
radiation metal piece 2, a grounded metal piece 3 and a signal inputting body 4. The
above components are combined to form a miniaturized antenna assembly that can be
built and used in a portable GPS satellite navigation system.
[0018] The above substrate 1 is a cubical body and made of ceramic materials having a high
dielectric constant (8-150). The upper surface of the substrate has a penetrating
hole 11 for penetrating the substrate 1.
[0019] The radiation metal piece 2 is a square sheet provided on the surface of the substrate
1, and provided thereon with a through hole 21 corresponding to the above penetrating
hole 11. The radiation metal piece 2 has four corners. Any two diagonal chamfers 22
can form a dextrorotary or levorotary circularly polarized patch antenna. In the figures,
the chamfers 22 on the radiation metal piece 2 are provided in the right-upper portion
and the corresponding left-lower portion thereof. Therefore, it belongs to a dextrorotary
circularly polarized patch antenna.
[0020] With reference to Fig. 4, the grounded metal piece 3 is a square sheet and has a
sheet 31 connected to the bottom of the substrate 1. The sheet 31 has a penetrating
hole 32 whose inner diameter is larger than that of the penetrating hole 11. Further,
a plurality of frequency down-conversion metal pieces in a form of an elongated sheet
extends from four sides of the sheet 31. The frequency down-conversion metal piece
33 is adhered onto the side face 12 of the substrate 1, so that the frequency down-conversion
metal piece 33 on the one side face 12 is diagonally arranged with respect to the
frequency down-conversion metal piece 33' on the opposite side face 12'. In this figure,
the frequency down-conversion metal piece 33 is used to reduce the resonant frequency
of the antenna. When the volume of the substrate 1 of the antenna is reduced, the
area of the radiation metal piece 2 is also reduced, which causes the increase of
the resonant frequency of the antenna. Therefore, the frequency down-conversion metal
piece 33 can be used to recover the resonant frequency of the antenna to a desired
frequency band.
[0021] The signal-inputting body 4 is formed into a T-lettered shape and has a pillared
solid or tubular hollow conductor body 41. One end of the body 41 has a head portion
42. After the body 41 of the signal-inputting body 4 penetrates through the penetrating
hole 11, the through hole 21 and the penetrating hole 32, the head portion 42 at one
end of the body 41 is electrically connected with the radiation metal piece 2. When
the radiation metal piece 2 receives signals, the signal-inputting body 4 forms a
signal-inputting point.
[0022] Owing to the design of the frequency down-conversion metal piece 33, the volume of
the antenna made of the material having the same dielectric constant can be reduced
by 10% to 50%. Therefore, the thus-formed antenna can be built in the current compact
portable electronic device.
[0023] Fig. 4 and Fig. 5 are a top view and a side view of the patch antenna of the present
invention. As shown in these figures, when the chamfers 22 of the radiation metal
piece 2 on the substrate 1 of the patch antenna are arranged in the right-upper portion
and the corresponding left-lower portion thereof, the frequency down-conversion metal
piece 33 extending from the grounded metal piece 3 is arranged on the left side face
121 of the side face 12, thereby to form a dextrorotary circularly polarized patch
antenna for receiving and transmitting a dextrorotary circularly polarized electronic
wave.
[0024] When the resonant frequency of the antenna is to be further reduced, the area of
the frequency down-conversion metal piece 33 can be increased. However, the increased
area of the frequency down-conversion metal piece 33 cannot be larger than a half
area of the side face 12 of the substrate 1. If the area of the frequency down-conversion
metal piece 33 is larger than a half area of the side face of the substrate 1, the
radiation gain and efficiency of the antenna will be seriously affected.
[0025] Fig. 6 and Fig. 7 are a top view and a side view of the patch antenna of the second
embodiment of the present invention. As shown in these figures, when the chamfers
22 of the radiation metal piece 2 on the substrate 1 of the patch antenna are arranged
in the left-upper portion and the corresponding right-lower portion thereof, the frequency
down-conversion metal piece 33 extending from the grounded metal piece 3 is arranged
on the right side face 122 of the side face 12, thereby to form a levorotary circularly
polarized patch antenna for receiving and transmitting a levorotary circularly polarized
electronic wave.
[0026] When the resonant frequency of the antenna is to be reduced, the area of the frequency
down-conversion metal piece 33 can be increased. However, the increased area of the
frequency down-conversion metal piece 33 cannot be larger than a half area of the
side face 12 of the substrate 1. If the area of the frequency down-conversion metal
piece 33 is larger than a half area of the side face of the substrate 1, the radiation
gain property of the antenna will be seriously affected.
[0027] Fig. 8 is a schematic view showing the patch antenna assembly of the third embodiment
of the present invention. As shown in this figure, the frequency down-conversion metal
piece 33 of the circularly polarized patch antenna shown in Figs. 8A to 8D can be
formed into any one of triangle, oblique stripe, wave, L-lettered shape or the like.
By means of coating or adhesion, the frequency down-conversion metal piece 33 can
be adhered onto the left side face 121 or right side face 122 of the side face 12
of the substrate 1, or extending from the left side face 121 to the right side face
122, or vice versa. However, the coated or adhered area of the frequency down-conversion
metal piece 33 cannot be larger than a half area of the side face 12.
[0028] Fig. 9 is a schematic view showing the patch antenna assembly of the fourth embodiment
of the present invention. As shown in the figure, when the resonant frequency of the
antenna is to be reduced, in addition to increase the area of the frequency down-conversion
metal piece 33, the length thereof can be alternatively increased. The length of the
frequency down-conversion metal piece 33 can be extended on the surface substrate
1 but not contact with the radiation metal piece 2.
[0029] Figs. 10A and 10B are schematic views showing the patch antenna assembly of the fifth
embodiment of the present invention. As shown in the figures, the radiation metal
piece 2 is formed into a circular shape. The circumference of the radiation metal
piece 2 is provided with bumps or notches 23 arranged in the left-upper portion and
the corresponding right-lower portion thereof. The frequency down-conversion metal
piece 33 extending from the grounded metal piece 3 is provided on the right side face
122 of the side face 12, thereby to form a levorotary circularly polarized patch antenna
for receiving and transmitting a levorotary circularly polarized electronic wave.
[0030] Fig. 11 is a schematic view of the patch antenna of the sixth embodiment according
to an example. As shown in this figure, when the substrate 1 and the grounded metal
piece 3 are both formed into a circular shape, and the chamfers 22 of the radiation
metal piece 2 on the surface are arranged in the right-upper portion and the corresponding
left-lower portion thereof, the frequency down-conversion metal piece 33 extending
from the grounded metal piece 3 is arranged on the circumferential surface 14, thereby
to form a dextrorotary circularly polarized patch antenna for receiving and transmitting
a dextrorotary circularly polarized electronic wave.
[0031] Fig. 12A and Fig. 12B are schematic views of the patch antenna according to an other
example. As shown in theses figures, when the substrate 1, the radiation metal piece
2 and the grounded metal piece 3 of the patch antenna are formed into a circular shape,
and the circumference of the radiation metal piece 2 is provided with bumps or notches
23 in the left-upper portion and the corresponding right-lower portion thereof, the
frequency down-conversion metal piece 33 extending from the grounded metal piece 3
is provided on the circumferential surface 14, thereby to form a levorotary circularly
polarized patch antenna for receiving and transmitting a levorotary circularly polarized
electronic wave.
[0032] Although the present invention has been described with reference to the foregoing
preferred embodiments, it will be understood that the invention is not limited to
the details thereof. Various equivalent variations and modifications can still be
occurred to those skilled in this art in view of the teachings of the present invention.
Thus, all such variations and equivalent modifications are also embraced within the
scope of the invention as defined in the appended claims.
1. A circularly polarized patch antenna assembly, comprising:
- a substrate (1) having a substrate penetrating hole (11) penetrating the substrate
(1), the substrate (1) having a bottom face, a top face opposite to the bottom face,
and four side faces (12) connected between the bottom face and the top face;
- a radiation metal piece (2) attached on the top surface of the substrate (1) and
provided with a through hole (21) corresponding to the substrate penetrating hole
(11);
- a grounded metal piece (3) attached on the bottom surface of the substrate (1) and
having a sheet (31), wherein the sheet (31) has a sheet penetrating hole (32) corresponding
to the through hole (21), wherein the sheet penetrating hole (32) has an inner diameter
larger than that of the substrate penetrating hole (11),
- a signal-inputting body (4) penetrating the substrate penetrating hole (11), the
through hole (21) and sheet penetrating hole (32), the signal-inputting body (4) is
electrically connected with the radiation metal piece (2) to form a signal-inputting
point,
- a plurality metal pieces (33) for down converting the resonant frequency of the
antenna, the plurality of metal pieces extend from four sides of the sheet (31), wherein
metal pieces (33) are adhered on the side faces (12) of the substrate (1),
characterized in that the metal piece (33) on any one side face (12) is arranged diagonally with respect
to the opposite metal piece (33') on the opposite side face (12'), such that a projection
of said opposite metal piece (33') on said one side face (12) is symmetrical to said
one metal piece (33) with respect to the centre vertical line of said side face (12).
- the metal pieces (33) further extend to the top face of the substrate (1), wherein
the area of the portion of the metal piece (33) on the side face (12) of the substrate
(1) is smaller than half area of the corresponding side face (12),
- the signal-inputting body (4) has a body (41) and a head portion (42) at one end
of the body (41), wherein the head portion (42) has a diameter larger than that of
the through hole (21) and is in contact with the radiation metal piece (2), wherein
the body (41) penetrates the through hole (21), the substrate penetrating hole (11)
and the sheet penetrating hole (32) and exposes out of the sheet penetrating hole
(32) when the signal-inputting body (4) is placed on the radiation metal piece (2),
whereby a signal can be transmitted from the radiation metal piece (2) to the exposed
end of the body (41).
2. The circularly polarized patch antenna assembly according to claim 1, wherein the
metal pieces (33) are formed as an elongated sheets.
3. The circularly polarized patch antenna assembly according to one of the claims 1-2,
wherein the length of the metal pieces (33) extend onto the top surface of the substrate (1) without connecting with the radiation metal piece (2).
4. The circularly polarized patch antenna assembly according to one of the claims 1-3,
wherein the substrate (1) is formed as a cubical shape.
5. The circularly polarized patch antenna assembly according to one of the claims 1-4,
wherein the radiation metal piece (2) is formed as a square sheet.
6. The circularly polarized patch antenna assembly according to one of the claims 1-5,
wherein the grounded metal piece (3) is formed as a square sheet.
7. The circularly polarized patch antenna assembly according to one of the claims 1,
wherein each of the metal pieces (33) is formed as a triangular sheet.
8. The circularly polarized patch antenna assembly according to one of the claims 1,
wherein each of the metal pieces (33) is formed as an oblique strip.
9. The circularly polarized patch antenna assembly according to one of the claims 1,
wherein each of the metal pieces (33) is formed as a waved sheet.
10. The circularly polarized patch antenna assembly according to one of the claims 1,
wherein each of the metal pieces (33) has an L-shape.
11. The circularly polarized patch antenna assembly according to claim 1, wherein the
radiation metal piece (2) is formed as a circular sheet.
12. The circularly polarized patch antenna assembly according to claim 11, wherein the
circumference of the radiation metal piece (2) is provided with any one of bumps and
notches (23) in a diagonal position thereof.
13. The circularly polarized patch antenna assembly according to claim 1, wherein the
grounded metal piece (3) is formed as a circular sheet.
14. The circularly polarized patch antenna assembly according to claim 5, wherein the
radiation metal piece (2) has four corners, two diagonal corners are provided respectively
with a symmetrical chamfer (22).
1. Zirkular polarisierte Patch-Antennenanordnung, die umfasst:
- ein Substrat (1) mit einem Substratdurchdringungsloch (11), das das Substrat (1)
durchdringt, wobei das Substrat (1) eine untere Fläche, eine obere Fläche gegenüber
der unteren Fläche und vier Seitenflächen (12), die zwischen der unteren Fläche und
der oberen Fläche verbunden sind, besitzt;
- ein Strahlungsmetallstück (2), das an der oberen Oberfläche des Substrats (1) angebracht
ist und mit einem Durchgangsloch (21) ausgestattet ist, das dem Substratdurchdringungsloch
(11) entspricht;
- ein geerdetes Metallstück (3), das an der unteren Oberfläche des Substrats (1) angebracht
ist und eine Folie (31) besitzt, wobei die Folie (31) ein Foliendurchdringungsloch
(32) besitzt, das dem Durchgangsloch (21) entspricht, wobei das Foliendurchdringungsloch
(32) einen inneren Durchmesser besitzt, der größer als der des Substratdurchdringungslochs
(11) ist,
- einen Signaleingabekörper (4), der das Substratdurchdringungsloch (11), das Durchgangsloch
(21) und das Foliendurchdringungsloch (32) durchdringt, wobei der Signaleingabekörper
(4) mit dem Strahlungsmetallstück (2) elektrisch verbunden ist, um einen Signaleingabepunkt
zu bilden,
- mehrere Metallstücke (33) zum Abwärtsumsetzen der Resonanzfrequenz der Antenne,
wobei sich die mehreren Metallstücke von vier Flächen der Folie (31) erstrecken, wobei
Metallstücke (33) an den Seitenflächen (12) des Substrats (1) haften,
dadurch gekennzeichnet, dass das Metallstück (33) auf einer Seitenfläche (12) diagonal in Bezug auf das gegenüberliegende
Metallstück (33') auf der gegenüberliegenden Fläche (12') derart angeordnet ist, dass
eine Projektion des gegenüberliegenden Metallstücks (33') auf die eine Seitenfläche
(12) in Bezug auf die mittlere vertikale Linie der Seitenfläche (12) symmetrisch zu
dem einen Metallstück (33) ist,
- sich die Metallstücke (33) ferner zu der oberen Fläche des Substrats (1) erstrecken,
wobei die Fläche des Teils des Metallstücks (33) auf der Seitenfläche (12) des Substrats
(1) kleiner als die halbe Fläche der entsprechenden Seitenfläche (12) ist,
- der Signaleingabekörper (4) einen Körper (41) und einen Kopfteil (42) an einem Ende
des Körpers (41) besitzt, wobei der Kopfteil (42) einen Durchmesser besitzt, der größer
als der des Durchgangslochs (21) ist, und in Kontakt mit dem Strahlungsmetallstück
(2) ist, wobei der Körper (41) das Durchgangsloch (21), das Substratdurchdringungsloch
(11) und das Foliendurchdringungsloch (32) durchdringt und aus dem Foliendurchdringungsloch
(32) freiliegt, wenn der Signaleingabekörper (4) auf dem Strahlungsmetallstück (2)
positioniert ist, wobei ein Signal von dem Strahlungsmetallstück (2) zu dem freiliegenden
Ende des Körpers (41) gesendet werden kann.
2. Zirkular polarisierte Patch-Antennenanordnung nach Anspruch 1, wobei die Metallstücke
(33) als langgestreckte Folien gebildet sind.
3. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1-2, wobei
sich die Länge der Metallstücke (33) auf die obere Oberfläche des Substrats (1) erstreckt,
ohne sich mit dem Strahlungsmetallstück zu verbinden.
4. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1-3, wobei
das Substrat (1) als eine kubische Form gebildet ist.
5. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1-4, wobei
das Strahlungsmetallstück (2) als eine quadratische Folie gebildet ist.
6. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1-5, wobei
das geerdete Metallstück (3) als eine quadratische Folie gebildet ist.
7. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1, wobei jedes
der Metallstücke (33) als eine dreieckige Folie gebildet ist.
8. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1, wobei jedes
der Metallstücke (33) als ein schräger Streifen gebildet ist.
9. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1, wobei jedes
der Metallstücke (33) als eine gewellte Folie gebildet ist.
10. Zirkular polarisierte Patch-Antennenanordnung nach einem der Ansprüche 1, wobei jedes
der Metallstücke (33) eine L-Form besitzt.
11. Zirkular polarisierte Patch-Antennenanordnung nach Anspruch 1, wobei das Strahlungsmetallstück
(2) als eine kreisförmige Folie gebildet ist.
12. Zirkular polarisierte Patch-Antennenanordnung nach Anspruch 11, wobei der Umfang des
Strahlungsmetallstücks (2) mit Erhebungen oder Aussparungen (23) in einer diagonalen
Position von ihm ausgestattet ist.
13. Zirkular polarisierte Patch-Antennenanordnung nach Anspruch 1, wobei das geerdete
Metallstück (3) als eine kreisförmige Folie gebildet ist.
14. Zirkular polarisierte Patch-Antennenanordnung nach Anspruch 5, wobei das Strahlungsmetallstück
(2) vier Ecken besitzt, wobei zwei diagonale Ecken jeweils mit einer symmetrischen
Abschrägung ausgestattet sind.
1. Ensemble d'antenne à plaque à polarisation circulaire, comprenant :
- un substrat (1) comportant un trou de pénétration de substrat (11) pénétrant dans
le substrat (1), le substrat (1) comportant une face inférieure, une face supérieure
à l'opposé de la face inférieure, et quatre faces latérales (12) reliées entre la
face inférieure et la face supérieure ;
- une pièce de métal de rayonnement (2) attachée à la surface supérieure du substrat
(1) et pourvue d'un trou traversant (21) correspondant au trou de pénétration de substrat
(11) ;
- une pièce de métal mise à la masse (3) attachée à la surface inférieure du substrat
(1) et comportant une feuille (31), dans lequel la feuille (31) comporte un trou de
pénétration de feuille (32) correspondant au trou traversant (21), dans lequel le
trou de pénétration de feuille (32) présente un diamètre intérieur supérieur à celui
du trou de pénétration de substrat (11),
- un corps d'entrée de signal (4) pénétrant dans le trou de pénétration de substrat
(11), le trou traversant (21) et le trou de pénétration de feuille (32), le corps
d'entrée de signal (4) étant électriquement relié à la pièce de métal de rayonnement
(2) pour constituer un point d'entrée de signal,
- une pluralité de pièces de métal (33) pour convertir à la baisse la fréquence résonante
de l'antenne, la pluralité de pièces de métal s'étendant de quatre côtés de la feuille
(31), dans lequel des pièces de métal (33) adhèrent aux faces latérales (12) du substrat
(1),
caractérisé en ce que la pièce de métal (33) sur n'importe quelle face latérale (12) est agencée diagonalement
par rapport à la pièce de métal opposée (33') sur la face latérale opposée (12'),
de sorte qu'une projection de ladite pièce de métal opposée (33') sur ladite face
latérale (12) soit symétrique avec ladite pièce métallique (33) par rapport à la ligne
verticale centrale de ladite face latérale (12),
- les pièces de métal (33) s'étendent davantage vers la face supérieure du substrat
(1), dans lequel la superficie de la portion de la pièce de métal (33) sur la face
latérale (12) du substrat (1) est inférieure à la moitié de la superficie de la face
latérale correspondante (12),
- le corps d'entrée de signal (4) comporte un corps (41) et une portion de tête (42)
à une extrémité du corps (41), dans lequel la portion de tête (42) présente un diamètre
supérieur à celui du trou traversant (21) et est en contact avec la pièce de métal
de rayonnement (2), dans lequel le corps (41) pénètre dans le trou traversant (21),
le trou de pénétration de substrat (11) et le trou de pénétration de feuille (32)
et est exposé hors du trou de pénétration de feuille (32) lorsque le corps d'entrée
de signal (4) est placé sur la pièce de métal de rayonnement (2), de telle manière
qu'un signal puisse être transmis de la pièce de métal de rayonnement (2) à l'extrémité
exposée du corps (41).
2. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel les pièces de métal (33) sont constituées sous forme de feuilles allongées.
3. Ensemble d'antenne à plaque à polarisation circulaire selon l'une des revendications
1 et 2, dans lequel la longueur des pièces de métal (33) s'étend sur la surface supérieure
du substrat (1) sans liaison avec la pièce de métal de rayonnement (2).
4. Ensemble d'antenne à plaque à polarisation circulaire selon l'une des revendications
1 - 3, dans lequel le substrat (1) présente une forme cubique.
5. Ensemble d'antenne à plaque à polarisation circulaire selon l'une des revendications
1 - 4, dans lequel la pièce de métal de rayonnement (2) est constituée sous la forme
d'une feuille carrée.
6. Ensemble d'antenne à plaque à polarisation circulaire selon l'une des revendications
1 - 5, dans lequel la pièce de métal mise à la masse (3) est constituée sous la forme
d'une feuille carrée.
7. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel chacune des pièces de métal (33) est constituée sous la forme d'une feuille
triangulaire.
8. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel chacune des pièces de métal (33) est constituée sous la forme d'une bande oblique.
9. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel chacune des pièces de métal (33) est constituée sous la forme d'une feuille
ondulée.
10. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel chacune des pièces de métal (33) présente une forme en L.
11. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel la pièce de métal de rayonnement (2) est constituée sous la forme d'une feuille
circulaire.
12. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 11, dans
lequel la circonférence de la pièce de métal de rayonnement (2) est pourvue de l'une
quelconque de bosses et d'encoches (23) dans une position diagonale de celle-ci.
13. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 1, dans
lequel la pièce de métal mise à la masse (3) est constituée sous la forme d'une feuille
circulaire.
14. Ensemble d'antenne à plaque à polarisation circulaire selon la revendication 5, dans
lequel la pièce de métal de rayonnement (2) comporte quatre coins, deux coins diagonaux
étant respectivement pourvus d'un biseau symétrique (22).