WO2021033253A1 - Dispositif d'antenne - Google Patents

Dispositif d'antenne Download PDF

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Publication number
WO2021033253A1
WO2021033253A1 PCT/JP2019/032357 JP2019032357W WO2021033253A1 WO 2021033253 A1 WO2021033253 A1 WO 2021033253A1 JP 2019032357 W JP2019032357 W JP 2019032357W WO 2021033253 A1 WO2021033253 A1 WO 2021033253A1
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WO
WIPO (PCT)
Prior art keywords
conductor
plate
linear
ground
horizontal
Prior art date
Application number
PCT/JP2019/032357
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English (en)
Japanese (ja)
Inventor
崇 ▲柳▼
西岡 泰弘
Original Assignee
三菱電機株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 三菱電機株式会社 filed Critical 三菱電機株式会社
Priority to PCT/JP2019/032357 priority Critical patent/WO2021033253A1/fr
Priority to JP2021540626A priority patent/JP6952940B2/ja
Priority to PCT/JP2020/009089 priority patent/WO2021033350A1/fr
Publication of WO2021033253A1 publication Critical patent/WO2021033253A1/fr

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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/24Combinations of antenna units polarised in different directions for transmitting or receiving circularly and elliptically polarised waves or waves linearly polarised in any direction

Definitions

  • the present invention relates to an antenna device of a communication terminal.
  • a communication area is formed by a communication terminal master unit serving as an access point, and communication is performed with a communication terminal slave unit in the area. Further, in a sensor network, communication terminals may be connected to each other in a mesh pattern to generate a plurality of communication paths, and multi-hop communication may be performed between the communication terminals.
  • the communication terminal slave units are distributed in the communication area formed by one communication terminal master unit, the communication terminal master unit is required to have an omnidirectional radiation pattern in the horizontal plane. Further, when there are a plurality of communication areas, in order to improve the gain between the communication areas, each communication terminal master unit needs to have a radiation pattern that is directional to each other.
  • the communication terminal master unit is in a linear direction in which the communication area is adjacent, that is, in the communication area.
  • a bidirectional radiation pattern is required in the horizontal plane installed in.
  • Patent Document 1 discloses a configuration example of a polarized shared bidirectional antenna using a combination of a reverse phase excitation type planar antenna and a transmission line type antenna.
  • a rectangular linear conductor is provided on the ground conductor to obtain a figure-eight bidirectional vertically polarized radiation pattern in the horizontal plane, and cuts (dents) are formed on the two opposite sides of the flat conductor. It is disclosed that a bidirectional horizontally polarized radiation pattern is obtained in a horizontal plane by forming a reverse-phase excitation type plane antenna.
  • the present invention has been made to solve the above problems, and an object of the present invention is to obtain a small antenna device in which an omnidirectional antenna in a horizontal plane and a bidirectional antenna in a horizontal plane are integrated.
  • the antenna device is arranged in parallel with the flat ground conductor and the ground conductor, and is parallel to the flat ground conductor and the flat plate-shaped first conductor plate provided with the first hole and the second hole.
  • the first horizontal conductor which is arranged, intersects vertically so as to electrically connect with the first conductor plate, the first end connects with the ground conductor, and the second end is the first of the first horizontal conductors. It is inserted vertically into the first hole so as to have space with the first vertical conductor and the first conductor plate connected to the first end, and the first end connects with the second end of the first horizontal conductor.
  • a first linear conductor having a second vertical conductor whose second end connects to the first feeding point, a second horizontal conductor arranged parallel to the ground conductor, and a first conductor plate.
  • a second linear conductor composed of a fourth vertical conductor is arranged perpendicular to the first conductor plate, the first end is connected to the first conductor plate, and the second end is the second on the ground conductor side.
  • a third linear conductor to be connected to the feeding point of 3 is provided.
  • the present invention it is possible to realize a small antenna device in which an omnidirectional antenna in a horizontal plane and a bidirectional antenna in a horizontal plane are integrated.
  • FIG. 5 is a sectional view taken along the line AA of FIG. 1 showing an example of a first linear conductor. It is BB sectional view of FIG. 1 which shows an example of the 2nd linear conductor. It is a CC sectional view of FIG. 1 which shows an example of the 3rd linear conductor.
  • FIG. 5 is a cross-sectional view taken along the line CC of FIG. 1 showing an example of a microstrip antenna with a short-circuit conductor configured in an antenna device. It is a graph which showed the radiation pattern in the horizontal plane (in the xy plane) at the frequency f1 of the omnidirectional antenna of the antenna device which concerns on Embodiment 1.
  • FIG. It is a graph which showed the radiation pattern in the horizontal plane (in the xy plane) at the frequency f2 of the bidirectional antenna of the antenna device which concerns on Embodiment 1.
  • FIG. It is a block diagram which shows the antenna device which concerns on Embodiment 2.
  • FIG. It is a block diagram which shows the antenna device which concerns on Embodiment 3.
  • FIG. 9 is a sectional view taken along line DD of FIG. 9 showing an example of a fourth linear conductor. It is a block diagram which shows the modification of the antenna device which concerns on Embodiment 3. It is a DD cross-sectional view of FIG. 11 which shows an example of the 2nd conductor plate.
  • FIG. 1 is a configuration diagram showing an antenna device according to a first embodiment of the present invention.
  • the antenna device includes a ground conductor 1, a conductor plate (first conductor plate) 2, a first linear conductor 3, a second linear conductor 4, a first hole 5, and a second hole. It includes a 6 and a third linear conductor 7.
  • the ground conductor 1 is made of a metal such as copper or aluminum and operates as a ground for an antenna device.
  • the ground conductor 1 is shown in the shape of a circular plate, but any shape can be appropriately selected as long as the operation as the ground of the antenna device can be obtained. For example, it may be a square.
  • the ground conductor 1 is composed of a disk-shaped conductor as shown in FIG. 1 will be described as an example.
  • the conductor plate 2 is a flat-plate conductor arranged parallel to the main surface of the ground conductor 1. Any shape can be selected as the planar shape of the conductor plate 2 as long as it is designed to resonate at a predetermined frequency f1, but usually, a circular shape, a square shape, a polygonal shape, or the like is used. In the present embodiment, a case where the conductor plate 2 is composed of a disc-shaped conductor as shown in FIG. 1 will be described as an example. It is desirable that the center of the ground conductor 1 and the center of the conductor plate 2 be arranged so as to coincide with the normal direction of the ground conductor 1.
  • the first linear conductor 3 includes a horizontal conductor (first horizontal conductor) 3a, a vertical conductor (first vertical conductor) 3b connected to one end (first end) of the horizontal conductor 3a, and the horizontal conductor 3a. It is a conductor composed of a vertical conductor (second vertical conductor) 3c connected to an end (second end).
  • the total length of the first linear conductor 3 is the sum of the lengths of the horizontal conductor 3a, the vertical conductor 3b, and the vertical conductor 3c.
  • the parallel conductor 3a is parallel to the ground conductor 1 and the conductor plate 2, and these are arranged in the order of the ground conductor 1, the conductor plate 2, and the parallel conductor 3a at predetermined intervals.
  • the vertical conductor 3b is arranged perpendicular to the ground conductor 1 and the conductor plate 2, one end (first end) is connected to the ground conductor 1, and the other end (second end) is one end (second end) of the parallel conductor 3a. It is connected to the first end). At this time, the vertical conductor 3b vertically intersects with the conductor plate 2 so as to be electrically connected.
  • the vertical conductor 3c is arranged perpendicular to the ground conductor 1 and the conductor plate 2, and one end (the first end is connected to the other end (second end) of the parallel conductor 3a).
  • the other end (second end) of the vertical conductor 3c is arranged in the vicinity of the ground conductor 1, and a high frequency voltage is applied between the ground conductor 1 and the other end (second end) of the vertical conductor 3c.
  • the vertical conductor 3c is inserted vertically into the first hole 5 provided in the conductor plate 2 so as to have a space with the conductor plate 2.
  • a sectional view taken along the line AA of FIG. 1 is shown in FIG.
  • the same reference numerals as those in FIG. 1 indicate the same or corresponding parts.
  • Reference numeral 21 denotes a feeding point (first feeding point) connected to the other end of the vertical conductor 3c.
  • the second linear conductor 4 includes a horizontal conductor (second horizontal conductor) 4a, a vertical conductor (third vertical conductor) 4b connected to one end (first end) of the horizontal conductor 4a, and the horizontal conductor 4a. It is a conductor composed of a vertical conductor (fourth vertical conductor) 4c connected to an end (second end).
  • the total length of the second linear conductor 4 is the sum of the lengths of the horizontal conductor 4a, the vertical conductor 4b, and the vertical conductor 4c.
  • the parallel conductor 4a is parallel to the ground conductor 1 and the conductor plate 2, and these are arranged in the order of the ground conductor 1, the conductor plate 2, and the parallel conductor 4a at predetermined intervals.
  • the vertical conductor 4b is arranged perpendicular to the ground conductor 1 and the conductor plate 2, one end (first end) is connected to the ground conductor 1, and the other end (second end) is one end (second end) of the parallel conductor 4a. It is connected to the first end). At this time, the vertical conductor 4b intersects the conductor plate 2 vertically so as to be electrically connected to the conductor plate 2.
  • the vertical conductor 4c is arranged perpendicular to the ground conductor 1 and the conductor plate 2, and one end (first end) is connected to the other end (second end) of the parallel conductor 4a.
  • the other end (second end) of the vertical conductor 4c is arranged in the vicinity of the ground conductor 1, and a high frequency voltage is applied between the ground conductor 1 and the other end (second end) of the vertical conductor 4c.
  • the vertical conductor 4c is inserted vertically into the second hole 6 provided in the conductor plate 2 so as to have a space with the conductor plate 2.
  • a sectional view taken along line BB of FIG. 1 is shown in FIG.
  • the same reference numerals as those in FIG. 1 indicate the same or corresponding parts.
  • Reference numeral 22 denotes a feeding point (second feeding point) connected to the other end of the vertical conductor 4c.
  • the total length of the first linear conductor 3 and the total length of the second linear conductor 4 are designed so that the first linear conductor 3 and the second linear conductor 4 resonate at a predetermined frequency f2. ..
  • the frequency at which the conductor plate 2 resonates is f1
  • the frequency at which the first linear conductor 3 and the second linear conductor 4 resonate is f2
  • the frequency f1 and the frequency f2 are the same. It may be different.
  • the parallel conductor 3a of the first linear conductor 3 and the parallel conductor 4a of the second linear conductor 4 are parallel to each other with a predetermined interval, and are opposite to each other with respect to the center of the conductor plate 2. It is arranged so as to be. It is desirable that the first linear conductor 3 and the second linear conductor 4 are arranged so as to be rotationally symmetric (point symmetric) by 180 degrees with respect to the center of the conductor plate 2. Further, when the conductor plate 2 has a rotationally symmetric shape such as a circle or a square, the vertical conductors 3b and 3c of the first linear conductor 3 and the vertical conductors 4b and 4c of the second linear conductor 4 are the ground conductors 1. It is desirable to arrange it at a position that is 90 degrees rotationally symmetrical with respect to the center.
  • the third linear conductor 7 is a conductor arranged perpendicular to the ground conductor 1 and the conductor plate 2 and having one end (first end) connected to the conductor plate 2.
  • the other end (second end) of the third linear conductor 7 is arranged in the vicinity of the ground conductor 1, and a high frequency voltage is applied between the ground conductor 1 and the other end of the third linear conductor 7. ..
  • a cross-sectional view taken along the line CC of FIG. 1 is shown in FIG.
  • the same reference numerals as those in FIG. 1 indicate the same or corresponding parts.
  • Reference numeral 23 denotes a feeding point (third feeding point) connected to the other end of the third linear conductor 7. In FIG.
  • connection point between one end of the third linear conductor 7 and the connection point of the conductor plate 2 coincide with the center of the conductor plate 2, but it is desired between the third linear conductor 7 and the conductor plate 2. If impedance matching is obtained, the connection point between one end of the third linear conductor 7 and the conductor plate 2 does not necessarily have to coincide with the center of the conductor plate 2.
  • the conductor plate 2 is designed to resonate at a predetermined frequency f1, when a high frequency voltage is applied to the feeding point 23, the conductor plate 2 and the ground conductor 1 pass through the third linear conductor 7. A high-frequency voltage is applied between them, and charge transfer occurs between them, causing an alternating current to flow. Further, in the antenna device according to the present embodiment, the ground conductor 1 and the conductor plate 2 are electrically connected by the vertical conductor 3b of the first linear conductor 3 and the vertical conductor 4b of the second linear conductor 4. Therefore, a microstrip antenna with a short-circuit conductor is constructed.
  • FIG. 5 shows a cross-sectional view taken along the line CC of FIG. 1 focusing only on this microstrip antenna with a short-circuit conductor.
  • the same reference numerals as those in FIG. 1 indicate the same or corresponding parts.
  • the ground conductor 1 and the conductor plate 2 are electrically connected by the vertical conductor 3b of the first linear conductor 3 and the vertical conductor 4b of the second linear conductor 4, and the conductor plate 2 is centered. Since the current flows radially from to the outside, an omnidirectional radiation pattern is generated in the horizontal plane of the conductor plate 2 as in the capacitively loaded monopole antenna with a short-circuit conductor. Therefore, the ground conductor 1 and the conductor plate 2 provide an omnidirectional antenna in the horizontal plane.
  • the vertical conductor 3b of the first linear conductor 3 is connected not only to the ground conductor 1 but also to the conductor plate 2, but when the first linear conductor 3 resonates at a predetermined frequency f2, the first is Since the stationary wave node on the linear conductor 3 of 1 is generated on the vertical conductor 3b, even if the vertical conductor 3b is connected to the conductor plate 2, the influence on the operation as a loop antenna is small.
  • the vertical conductor 3c of the first linear conductor 3 is also arranged so as to penetrate the conductor plate 2, but is arranged so as to pass through the hole 5 provided in the conductor plate 2 and has no electrical connection, and is a vertical conductor.
  • the second linear conductor 4 Since the first linear conductor 3 operates as a loop antenna arranged perpendicular to the ground conductor 1, its radial directivity in the horizontal plane is 8-shaped, and the direction orthogonal to the parallel conductor 3a (+ x in FIG. 1). , -X direction) directivity occurs.
  • the second linear conductor 4 has a figure eight-shaped radiation directivity that maximizes the gain in the + x and ⁇ x directions.
  • the first linear conductor 3 and the second linear conductor 4 are arranged so as to be opposite to each other with respect to the center of the conductor plate 2, the voltage applied to the first linear conductor 3 And the phase difference ⁇ of the voltage applied to the second linear conductor 4 is 180 °, the radio wave radiated from the first linear conductor 3 in the + x and ⁇ x directions in the horizontal plane and the second linear The radio waves radiated from the conductor 4 strengthen each other. Therefore, the ground conductor 1, the first linear conductor 3, and the second linear conductor 4 provide a bidirectional antenna in the horizontal plane.
  • first linear conductor 3 and the second linear conductor 4 are arranged so as to be opposite to each other with respect to the center of the conductor plate 2
  • first linear conductor 3 has been described
  • second linear conductor 4 are preferably point-symmetrical with respect to the center of the conductor plate 2.
  • FIG. 6 is a graph showing the emission pattern in the horizontal plane (in the xy plane) at the frequency f1 of the omnidirectional antenna in the horizontal plane of the antenna device of the present embodiment.
  • the thick line in the figure shows the strength in the XY plane.
  • the distance between the ground conductor 1 and the conductor plate 2 is 0.024 ⁇ 1
  • the diameter of the conductor plate 2 is 0.29 ⁇ 1
  • the distance from the center of the conductor plate 2 of the third linear conductor 3 is 0. It was set to .06 ⁇ 1.
  • ⁇ 1 is a wavelength with respect to the frequency f1.
  • FIG. 6 it can be seen that the ground conductor 1 and the conductor plate 2 provide an omnidirectional antenna in the horizontal plane.
  • FIG. 7 is a graph showing the emission pattern in the horizontal plane (in the xy plane) at the frequency f2 of the bidirectional antenna in the horizontal plane of the antenna device of the present embodiment.
  • the length of the horizontal conductor 3a of the first linear conductor 3 is 0.28 ⁇ 2
  • the length of the vertical conductors 3b and 3c is 0.12 ⁇ 2.
  • ⁇ 2 is a wavelength with respect to the frequency f2.
  • a second linear conductor 4 is provided so as to be point-symmetrical with the center of the conductor plate 2 with respect to the first linear conductor 3, and the distance between the first linear conductor 3 and the second linear conductor 4 is set. It was set to 0.28 ⁇ 2.
  • the frequency f1 and the frequency f2 are different values, and f1 ⁇ f2 ( ⁇ 1> ⁇ 2).
  • the bidirectional antenna in the horizontal plane of the antenna device according to the present embodiment has a bidirectional radiation pattern having directivity in the ⁇ x direction. Therefore, it can be seen that the bidirectional antenna in the horizontal plane is obtained by the ground conductor 1, the first linear conductor 3, and the second linear conductor 4.
  • the ground conductor 1 and the conductor plate 2 form an omnidirectional antenna in the horizontal plane, and the ground conductor 1, the first linear conductor 3, and the second linear are formed.
  • a horizontal bidirectional antenna is formed by the conductor 4, and the vertical conductor 3a of the first linear conductor 3 and the vertical conductor 4a of the second linear conductor 4 are shared with the short-circuit conductor of the omnidirectional antenna in the horizontal plane.
  • the omnidirectional antenna in the horizontal plane and the bidirectional antenna in the horizontal plane are integrated. As a result, it is possible to realize an omnidirectional radiation pattern in the horizontal plane and a bidirectional radiation pattern in the horizontal plane without increasing the number of installed antennas, and to obtain an antenna device having a small installation area.
  • Embodiment 2 In the first embodiment, a case where an air layer is formed between the conductor field 2 arranged parallel to the main surface of the ground conductor 1 has been described. In the present embodiment, a case where a dielectric is sandwiched between the ground conductor 1 and the conductor plate 2 will be described.
  • FIG. 8 is a configuration diagram showing an antenna device according to the present embodiment. In FIG. 8, the same configurations as those in the first embodiment are designated by the same reference numerals, and the description thereof will be omitted. The difference between the antenna device according to the present embodiment and the first embodiment is that the dielectric plate 8 is newly arranged between the ground conductor 1 and the conductor plate 2.
  • the dielectric plate 8 is a flat-plate-shaped dielectric having a predetermined relative permittivity, and a ground conductor 1 is formed on one plane and a conductor plate 2 is formed on the other surface.
  • the dielectric plate 8 has a disk shape having a predetermined thickness, but is arbitrary within the design range, such as a square plate shape or a polygonal plate shape. The shape can be selected.
  • the ground conductor 1 is represented as having the same shape so as to coincide with the entire one plane of the dielectric plate 8, but as described above, the ground conductor 1 is grounded only on a part of one surface of the dielectric plate 8.
  • the conductor 1 may be formed.
  • the conductor plate 2 is designed in consideration of the relative permittivity and the thickness of the dielectric plate 8 so as to resonate at a predetermined frequency f1 as in the first embodiment.
  • the dielectric plate 8 for example, a dielectric substrate in which copper foil is attached to both sides can be used.
  • the ground conductor 1 and the conductor plate 2 can be processed into a predetermined shape by etching both sides of the dielectric plate 8.
  • a through hole (not shown) is formed in a portion where the vertical conductor 3b of the first linear conductor 3 and the vertical conductor 4b of the second linear conductor 4 are arranged. Can be passed through the dielectric plate 8 and the electrical connection between the ground conductor 1 and the conductor plate 2 can be secured.
  • the dielectric plate 8 by forming holes (not shown) in the portions where the vertical conductors 3c and the vertical conductors 4c are arranged, these conductors can be penetrated through the dielectric plate 8.
  • the antenna device by using the dielectric plate 8 between the ground conductor 1 and the conductor plate 2, a manufacturing method suitable for mass production such as etching processing of the dielectric substrate Can be used, and an antenna device can be obtained at low cost.
  • FIG. 9 is a configuration diagram showing an antenna device according to the present embodiment.
  • the same configurations as those in FIG. 1 are designated by the same reference numerals, and the description thereof will be omitted.
  • the difference between the antenna device according to the present embodiment and the first embodiment is that a third hole 10 is newly provided in the conductor plate 2 and a fourth linear conductor 9 is newly arranged.
  • the fourth linear conductor 9 is a conductor arranged perpendicular to the ground conductor 1 and the conductor plate 2 along the central axis of the conductor plate 2.
  • One end (first end) of the fourth linear conductor 9 is vertically inserted into a third hole 10 provided in the conductor plate 2 so as to have a space with the conductor plate 2, and the other end (second end).
  • the end) is arranged in the vicinity of the ground conductor 1, and a high frequency voltage is applied between the ground conductor 1 and the other end of the fourth linear conductor 9.
  • a sectional view taken along line DD of FIG. 9 is shown in FIG.
  • the same reference numerals as those in FIGS. 2 to 4 and 9 indicate the same or corresponding portions.
  • Reference numeral 24 denotes a feeding point (fourth feeding point) connected to the other end of the fourth linear conductor 9.
  • the third linear conductor 7 may be arranged at the center of the conductor plate 2, but in the antenna device according to the present embodiment, the fourth linear conductor 7 is arranged. Since the conductor 9 is arranged at the center of the conductor plate 2, the third linear conductor 7 needs to be arranged at a predetermined distance from the center of the conductor plate 2. The distance between the third linear conductor 7 and the center of the conductor plate 2 is appropriately designed at a position where desired impedance matching can be obtained.
  • the length of the fourth linear conductor 9 is designed to resonate at a predetermined frequency f3.
  • the frequency f3 may be the same as or different from the frequency f1 or the frequency f2.
  • the fourth linear conductor 9 operates as a monopole antenna that resonates at the frequency f3, and an omnidirectional radiation pattern in the horizontal plane is obtained.
  • a horizontal in-plane omnidirectional antenna (microstrip antenna with a short-circuit conductor) composed of a ground conductor 1 and a conductor plate 2, it occurs between the ground conductor 1 and the conductor plate 2 near the center of the conductor plate 2 due to structural symmetry.
  • the electric field strength becomes very small. Therefore, even if the fourth linear conductor 9 is newly arranged along the central axis of the conductor plate 2, it affects the operation of the omnidirectional antenna in the horizontal plane composed of the ground conductor 1 and the conductor plate 2.
  • a new in-horizontal omnidirectional antenna operating at the frequency f3 is provided. It can be integrally configured, and the number of elements can be increased without increasing the size of the antenna device.
  • the dielectric plate 8 according to the second embodiment with the antenna device according to the present embodiment.
  • a manufacturing method excellent in mass production can be used, and the cost of the antenna device can be reduced.
  • FIG. 11 shows a modified example of the antenna device according to this embodiment.
  • reference numeral 11 denotes a second conductor plate.
  • the same reference numerals as those in FIG. 8 indicate the same or corresponding parts.
  • the second conductor plate 11 is electrically connected to one end (first end) of the fourth linear conductor 9. Any shape can be selected as long as the shape of the second conductor plate 11 is designed together with the fourth linear conductor 9 so as to resonate at a predetermined frequency f3, but the fourth linear conductor 9 A shape having rotational symmetry with respect to the axial direction of is desirable. For example, a circle, a square, a regular polygon, or the like is selected.
  • the first linear conductor 3, the second linear conductor 4, the fourth linear conductor 9, and the second conductor plate 11 are described as self-supporting conductors.
  • a structure that supports these conductors can be used within the scope of the design, or a predetermined conductor pattern can be formed on the resin surface by a method such as a three-dimensional patterning technique.

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Abstract

La présente invention concerne un dispositif d'antenne comprenant : un conducteur de mise à la terre 1 ; une première plaque conductrice 2 qui est disposée en parallèle avec le conducteur de mise à la terre 1 et qui comporte un premier trou 5 et un second trou 6 ; un premier conducteur linéaire 3 ayant un premier conducteur horizontal 3a disposé en parallèle avec le conducteur de mise à la terre 1, un premier conducteur vertical 3b dont une extrémité est connectée au conducteur de mise à la terre 1 et l'autre extrémité est connectée à une extrémité du premier conducteur horizontal 3a, et un deuxième conducteur vertical 3c qui est inséré dans le premier trou 5 et a une extrémité reliée à l'autre extrémité du premier conducteur horizontal 3a et l'autre extrémité reliée à un premier point d'alimentation ; un deuxième conducteur linéaire 4 comprenant un second conducteur horizontal 4a disposé en parallèle avec le conducteur de mise à la terre, un troisième conducteur vertical 4b dont une extrémité est connectée au conducteur de mise à la terre 1 et l'autre extrémité est connectée à une extrémité du second conducteur horizontal 4a, et un quatrième conducteur vertical 4c qui est inséré dans le second trou 6 et a une extrémité reliée à l'autre extrémité du second conducteur horizontal 4a et l'autre extrémité est reliée à un deuxième point d'alimentation ; et un troisième conducteur linéaire 7 qui est disposé perpendiculairement à la première plaque conductrice 2 et qui a une extrémité connectée à la première plaque conductrice 2 et l'autre extrémité connectée à un troisième point d'alimentation sur le côté conducteur de mise à la terre 1.
PCT/JP2019/032357 2019-08-20 2019-08-20 Dispositif d'antenne WO2021033253A1 (fr)

Priority Applications (3)

Application Number Priority Date Filing Date Title
PCT/JP2019/032357 WO2021033253A1 (fr) 2019-08-20 2019-08-20 Dispositif d'antenne
JP2021540626A JP6952940B2 (ja) 2019-08-20 2020-03-04 アンテナ装置
PCT/JP2020/009089 WO2021033350A1 (fr) 2019-08-20 2020-03-04 Dispositif antenne

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Application Number Priority Date Filing Date Title
PCT/JP2019/032357 WO2021033253A1 (fr) 2019-08-20 2019-08-20 Dispositif d'antenne

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PCT/JP2020/009089 WO2021033350A1 (fr) 2019-08-20 2020-03-04 Dispositif antenne

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Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008193655A (ja) * 2007-01-12 2008-08-21 Advanced Telecommunication Research Institute International 低姿勢型アンテナ構造体
US20190140354A1 (en) * 2017-03-10 2019-05-09 Llc "Topcon Positioning Systems" Patch antenna with wire radiation elements for high-precision gnss applications
JP2019092151A (ja) * 2017-10-19 2019-06-13 フバ オートモティブ エレクトロニクス ゲーエムベーハーFuba Automotive Electronics Gmbh 車両上の円偏波衛星無線信号用のアンテナ構造

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2005252927A (ja) * 2004-03-08 2005-09-15 Matsushita Electric Ind Co Ltd アンテナ装置及びこれを用いた無線通信装置
US11196175B2 (en) * 2017-09-29 2021-12-07 Mitsubishi Electric Corporation Antenna device

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008193655A (ja) * 2007-01-12 2008-08-21 Advanced Telecommunication Research Institute International 低姿勢型アンテナ構造体
US20190140354A1 (en) * 2017-03-10 2019-05-09 Llc "Topcon Positioning Systems" Patch antenna with wire radiation elements for high-precision gnss applications
JP2019092151A (ja) * 2017-10-19 2019-06-13 フバ オートモティブ エレクトロニクス ゲーエムベーハーFuba Automotive Electronics Gmbh 車両上の円偏波衛星無線信号用のアンテナ構造

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