The present invention relates to a configuration of a multi-beam antenna device utilizable for a vehicle-mounted millimeter-wave radar.
To begin with, a conventional multi-bean antenna device using a Rotman lens will be explained with its exploded perspective view illustrated in
In the conventional antenna device configured as above, when one of the input ports (221), (222), - - - (22m) is excited, electric power is fed into the Rotman lens (201). The electric power in the Rotman lens (201) is extracted from each of the output ports (231), (232), - - - (223n), and transmitted to a corresponding one of the antenna elements (241), (242), - - - (24n) through a respective one of the feeder lines (261), (262), - - - (26n). Each of an excitation amplitude and an excitation phase of the array antenna (205) depends on which of the input ports (221), (222), - - - (22m) is excited, and the spatial beam direction depends on the excitation phase of the array antenna (205).
In the conventional Rotman lens pattern illustrated in
x=[2w(1−g)−b02η2]/2(g−a0) (1)
y=η(1−w) (2)
w=[−b−√{square root over ((b2−4ac))}]/2a (3)
In the above Formulas 1 to 3,
Further, the radius R is expressed in the following formula:
R=[(Fa0−G)2+F2b02]/[2(G−Fa0)] (4)
In the Formula 4, G is a size of the Rotman lens defined by a distance between S2 and S3. Further, F is a distance between the input port (221) and S2, and 2 Ln is an aperture length of the array antenna (205). In the basic design process, it is commonly considered that it is desirable to set η approximately in the following range: 0.8<η<1, i.e., set F in a range of about 1 to 1.25 times Ln, and set g to about 1.137, under a defined condition of β=α, in view of an advantage of being able to reduce an error in excitation phase at each of the output ports (231), (232), - - - (23n).
Meanwhile, as means for achieving a pencil beam antenna capable of radiating two orthogonally polarized waves in a single antenna unit, a structure formed by electromagnetically coupling two-layer triplate antennas as illustrated in
Patent Document 1: JP 57-93701A
Patent Document 2: JP 2000-124727A
Patent Document 3: JP 05-152843A
In the multi-beam antenna device for use in a vehicle-mounted radar, etc., a distant detection requires fine beam scanning in a relatively narrow angle range, and a proximal detection requires beam scanning in a relatively wide angle range. Thus, there has been an increasing need for performing such two functions independently. However, if two radar devices having different multi-beam characteristics are installed, problems, such as an increase in cost, and difficulty in ensuring an installation space, will occur.
Although
Further, in the conventional multi-beam antenna device illustrated in
b2−4ac≧0 (5)
As a prerequisite to satisfying the Formula 5, η=Ln/F has to be equal to or less than 1 (η=Ln/F≦1). This means that, in cases where the aperture 2 Ln of the array antenna (205) becomes larger due to an increase in the number of the antenna elements (241), (242), - - - (24n), it is necessary to increase the distance F between the input port (221) and S2 in proportion to the aperture 2 Ln of the array antenna (205), resulting in an increase in the size G of the Rotman lens. Therefore, when the number of the antenna elements (241),(242), - - - (24n) is increased, it is necessary to increase the size G of the Rotman lens in conformity to an increasing rate of the antenna elements, which causes a problem that, even though the number of the antenna elements is increased, an appropriate gain enhancement effect cannot be obtained.
The present invention is directed to providing a low-loss multi-beam antenna device capable of: achieving two independent multi-beam characteristics using a single antenna unit; and, under a condition that β with respect to α is set to satisfy the following relation: β<α, where: β is a spatial beam-forming angle of an array antenna (205); and α is an angle between a center line (208) and a line segment which connects one of a plurality of input ports and an intersecting point S2 of the center line (208) with a curve segment having a plurality of output ports (231), (232), - - - , (23n) arranged thereon, reducing G which is a size of a Rotman lens, to less than a value of G set out through a basic design process, i.e., a basic value of G when designed under a defined condition of β=α, and thereby suppressing an increase in loss of the Rotman lens so as to achieve enhanced gain.
The present invention provides a multi-beam antenna device comprising a first antenna section (101), a second antenna section (102), a first Rotman lens section (103) and a second Rotman lens section (104), which are laminated together in this order to form a planar antenna module. The first antenna section (101) includes a first antenna substrate (4), a first ground conductor (6), a second ground conductor (9), a third ground conductor (13) and a fourth ground conductor (10), wherein: the first antenna substrate (4) has a plurality of first radiation elements (1) and a plurality of first parasitic elements (67), which are located at positions corresponding to respective ones of a plurality of second radiation elements (16) of the second antenna section (102), in such a manner that a plurality of antenna groups is formed therein in combination with a first feeder line (2) connected to the first radiation elements (1) and a first connection portion (3) electromagnetically coupled to the second Rotman lens section (104); the first ground conductor (6) has a plurality of first slots (5) located at positions corresponding to respective ones of the first radiation elements (1) and the first parasitic elements (67); the second ground conductor (9) has a first dielectric (7) located between the first antenna substrate (4) and the first ground conductor (6), and a first coupling hole-defining portion (8) located at a position corresponding to the first connection portion (3); the third ground conductor (13) has a second dielectric (11) located between the first antenna substrate (4) and the fourth ground conductor (10), and a second coupling hole-defining portion (12) located at a position corresponding to the first connection portion (3); and the fourth ground conductor (10) has a first slit (14) located at a position corresponding to the first connection portion (3), and a plurality of second slits (15) located at positions corresponding to the respective ones of the first radiation elements (1) and the first parasitic elements (67). The second antenna section (102) includes a second antenna substrate (19), the fourth ground conductor (10), a fifth ground conductor (23), a sixth ground conductor (28) and a seventh ground conductor (24), wherein: the second antenna substrate (19) has a plurality of antenna groups formed in combination with a second feeder line (17) connected to the second radiation elements (16) and a second connection portion (18) electromagnetically coupled to the first Rotman lens section (103); the fifth ground conductor (23) has a third dielectric (20) located between the second antenna substrate (19) and the fourth ground conductor (10), a third coupling hole-defining portion (21) located at a position corresponding to the second connection portion (18), and a third slit (22) located at a position corresponding to the first connection portion (3); the sixth ground conductor (28) has a fourth dielectric (25) located between the second antenna substrate (19) and the seventh ground conductor (24), a fourth coupling hole-defining portion (26) located at a position corresponding to the second connection portion (18), and a fourth slit (27) located at a position corresponding to the first connection portion (3); and the seventh ground conductor (24) has a fifth slit (29) located at a position corresponding to the second connection portion (18), and a sixth slit (30) located at positions corresponding to the first connection portion (3). The first Rotman lens section (103) includes a first Rotman lens substrate (37), the seventh ground conductor (24), an eighth ground conductor (42), a ninth ground conductor (47) and a tenth ground conductor (34), wherein: the first Rotman lens substrate (37) has a first Rotman lens (31), a third feeder line (32), a third connection portion (33) electromagnetically coupled to the second connection portion (18) of the second antenna section (102), and a fourth connection portion (36) electromagnetically coupled to a first waveguide opening portion (35) of the tenth ground conductor (34); the eighth ground conductor (42) has a fifth dielectric (38) located between the first Rotman lens substrate (37) and the seventh ground conductor (24), a fifth coupling hole-defining portion (39) located at a position corresponding to the third connection portion (33), a sixth coupling hole-defining portion (40) located at a position corresponding to the fourth connection portion (36), and a seventh slit (41) located at a position corresponding to the first connection portion (3); the ninth ground conductor (47) has a sixth dielectric (43) located between the first Rotman lens substrate (37) and the tenth ground conductor (34), a seventh coupling hole-defining portion (44) located at a position corresponding to the third connection portion (33), an eighth coupling hole-defining portion (45) located at a position corresponding to the fourth connection portion (36), and an eighth slit (46) located at a position corresponding to the first connection portion (3); and the tenth ground conductor (34) has the first waveguide opening portion (35) located at a position corresponding to the fourth connection portion (36), and a ninth slit (48) located at a position corresponding to the first connection portion (3). The second Rotman lens section (104) includes a second Rotman lens substrate (55), the tenth ground conductor (34), an eleventh ground conductor (60), a twelfth ground conductor (65) and a thirteenth ground conductor (52), wherein: the second Rotman lens substrate (55) has a second Rotman lens (49), a fourth feeder line (50), a fifth connection portion (51) electromagnetically coupled to the first connection portion (3) of the first antenna section (101), and a sixth connection portion (54) electromagnetically coupled to a second waveguide opening portion (53) of the thirteenth ground conductor (52); the eleventh ground conductor (60) has a seventh dielectric (56) located between the second Rotman lens substrate (55) and the tenth ground conductor (34), a ninth coupling hole-defining portion (57) located at a position corresponding to the fifth connection portion (51), a tenth coupling hole-defining portion (58) located at a position corresponding to the sixth connection portion (54), and a third waveguide opening portion (59) located at a position corresponding to the fourth connection portion (36); the twelfth ground conductor (65) has an eighth dielectric (61) located between the second Rotman lens substrate (55) and the thirteenth ground conductor (52), an eleventh coupling hole-defining portion (62) located at a position corresponding to the fifth connection portion (51), a twelfth coupling hole-defining portion (63) located at a position corresponding to the sixth connection portion (54), and a fourth waveguide opening portion (64) located at a position corresponding to the fourth connection portion (36); and the thirteenth ground conductor (52) has the second waveguide opening portion (53) located at a position corresponding to the sixth connection portion (54), and a fifth waveguide opening portion (66) located at a position corresponding to the fourth connection portion (36). In the multi-beam antenna device, the first ground conductor (6), the second ground conductor (9) with the first dielectric (7), the first antenna substrate (4), the third ground conductor (13) with the second dielectric (11), the fourth ground conductor (10), the fifth ground conductor (23) with the third dielectric (20), the second antenna substrate (19), the sixth ground conductor (28) with the fourth dielectric (25), the seventh ground conductor (24), the eighth ground conductor (42) with the fifth dielectric (38), the first Rotman lens substrate (37), the ninth ground conductor (47) with the sixth dielectric (43), the tenth ground conductor (34), the eleventh ground conductor (60) with the seventh dielectric (56), the second Rotman lens substrate (55), the twelfth ground conductor (65) with the eighth dielectric (61), and the thirteenth ground conductor (52), are laminated together in this order.
In the multi-beam antenna device of the present invention, at least one of the first to ninth slits may be formed as a slot.
In The multi-beam antenna of the present invention, each of the first and second Rotman lenses may be configured as illustrated in
The present invention can provide a low-loss multi-beam antenna device capable of: achieving two independent multi-beam characteristics using a single antenna unit; and, under a condition that β with respect to α is set to satisfy the following relation: β<α, where: β is a spatial beam-forming angle of an array antenna (205); and α is an angle between a center line (208) and a line segment which connects one of a plurality of input ports and an intersecting point S2 of the center line (208) with a curve segment having a plurality of output ports (231), (232), - - - , (23n) arranged thereon, reducing G which is a size of a Rotman lens, to less than a value of G set out through a basic design process, i.e., a basic value of G when designed under a defined condition of β=α, and thereby suppressing an increase in loss of the Rotman lens so as to achieve enhanced gain.
(First Embodiment)
A multi-beam antenna according to the present invention is characterized in that: it is configured to achieve two independent multi-beam characteristics using a single antenna unit; and, under a condition that β with respect to α is set to satisfy the following relation: β<α, where: β is a spatial beam-forming angle of an array antenna (205); and α is an elevation angle between a center line (208), and a line segment which connects one of a plurality of input ports and an intersecting point S2 of the center line (208) with a curve segment having a plurality of output ports (231), (232), - - - , (23n) arranged thereon, a shape of a Rotman lens is set to satisfy the Formula 6, and reduce G to less than a basic value of G when designed under a defined condition of β=α, where: F is a distance between the one input port (221) and S2; G is a size of the Rotman lens, and defined as a distance between S2 and S3; and 2 Ln is an aperture length of the array antenna (205).
Specifically, in cases where a Rotman lens is designed under the defined condition of β=α, as a prerequisite to satisfying the Formula 5, η=Ln/F has to be equal to or less than 1 (η=Ln/F≦1). Further, it is generally considered that it is desirable to set η approximately in the following range: 0.8<η<1, i.e., set F in a range of about 1 to 1.25 times Ln, and set g to about 1.137, in view of an advantage of being able to reduce an error in excitation phase at each of the output ports (231), (232), - - - (23n). Thus, it is preferable to set F and G in the following respective ranges with respect to Ln:
Differently, in the present invention, for example, assuming that β=α/2, as a prerequisite to satisfying the Formula 5, η=Ln/2 F has to be equal to or less than 1 (η=Ln/2F≦1), and it is desirable to set F in a range of about 0.5 to 0.625 times Ln, and set g to about 1.137, in view of an advantage of being able to reduce an error in excitation phase at each of the output ports (231), (232), - - - (23n). Thus, desirable design can be achieved when F and G are set in the following respective ranges with respect to Ln:
In addition, in the multi-beam antenna of the present invention which is designed based on respective coordinates (x, y) of the output ports (231), (232), - - - , (23n) and respective electrical lengths w of the feeder lines (261),(262), - - - (26n), each calculated using the Formulas 1 to 3, when electric power is fed from a given one of the input ports which has an elevation angle α when viewed from S2, a phase inclination of a line representing respective excitation phases at the antenna elements (241), (242), - - - (24n) on the basis of that at an aperture center of the array antenna (205), as indicated by the straight line 2 in
Thus, in the present invention, under the condition of β<α, a shape of the Rotman lens is set to satisfy the relation of the Formula 6, so that it becomes possible to design a small-sized Rotman lens having a size which is β/α times a basic value of G when designed under the defined condition of β=α. This makes it possible to suppress an increase in loss of the Rotman lens which would otherwise occur in proportion to a size thereof. In addition, even if the aperture 2 Ln of the array antenna (205) becomes larger due to an increase in the number of the antenna elements (421), (242), - - - (24n), and thereby the distance F between the input port (221) and S2 is increased in proportion to 2 Ln, a small-sized Rotman lens having a size reduced to β/α times the basic value of G when designed under the defined condition of β=α can be designed so as to make up a multi-beam antenna device having a spatial beam-forming direction β of the array antenna (205).
As shown in
The above description has been made on an assumption that the present invention is applied to a commonly-used hollow parallel-plate Rotman lens, or a triplate structure in which a first or second Rotman lens substrate (37 or 55) is supported by a dielectric having a low ε approximately equal to that of air. In a parallel plate or a triplate structure using a dielectric having a relative permittivity εr, it is apparent that the Formula 6 in the present invention may be handled as the following Formula 7.
η=(1/√{square root over (εr)})·(β/α)·(Ln/F)<1 (7)
In the multi-beam antenna device according to the first embodiment, a first radiation element (1) formed in the first antenna substrate (4) and a second radiation element (16) formed in the second antenna substrate (19) illustrated in
In the above multi-beam antenna device, as shown in
In order to stably hold the first and second antenna substrates (4), (19) and the first and second Rotman lens substrates (37), (55), each of the spaces may be filled with a respective one of first to eighth dielectrics (7), (11), (20), (25), (38), (43), (56), (61).
As for each of a fourth connection portion (36) and a sixth connection portion (54) serving as an input port portion of the antenna device, a metal wall is formed therearound based on a respective one of a combination of a sixth coupling hole-defining portion (40) of the eighth ground conductor (42) and an eighth coupling hole-defining portion (45) of the ninth ground conductor (47), and a combination of a tenth coupling hole-defining portion (40) of the eleventh ground conductor (60) and a twelfth coupling hole-defining portion (63) of the twelfth ground conductor (65), which contributes to efficiently transmitting electric power a fifth waveguide opening portion (66) and a second waveguide opening portion (53) each formed in the thirteenth ground conductor (52), without leakage to the surroundings, so as to achieve low-loss characteristics even at high frequencies.
In addition, based on the simple laminated structure of the components, transmission/receiving of electric power is performed by means of electromagnetic coupling, so that it is not necessary to ensure high positional accuracy during assembly at a level of conventional assembly accuracy.
Preferably, in the multi-beam antenna device according to the first embodiment, as each of the first and second antenna substrates (4), (19) and the first and second Rotman lens substrates (37), (55), a flexible substrate prepared by laminating a copper foil to a polyimide film is employed, wherein each of the first and second radiation elements (1), (16), first and second feeder lines (2), (17), the first and second connection portions (3), (18), first and second Rotman lenses (31), (49), the third and fourth feeder lines (32). (50), and the third and fifth connection portions (33), (51) and the fourth and sixth connection portions (36), (54), is formed by etchingly removing an unnecessary part of the copper foil.
The flexible substrate may be prepared by employing a film as a base material and laminating a metal foil, such as a copper foil, onto the film. In this case, a plurality of the radiation elements and a plurality of the feeder lines connecting therebetween may be formed by etchingly removing an unnecessary part of the copper foil (metal foil). Alternatively, the flexible substrate may be made up using a copper-cladded laminate prepared by laminating a copper foil on a thin resin sheet consisting of a glass cloth impregnated with resin. The film may be made of a material, such as polyethylene, polypropylene, polytetrafluoroethylene, ethylene fluoride-polypropylene copolymer, ethylene-tetrafluoroethylene copolymer, polyamide, polyimide, polyamide-imide, polyarylate, thermoplastic polyimide, polyetherimide, polyether ether ketone, polyethylene terephthalate, polybutylene terephthalate, polystyrene, polysulfone, polyphenylene ether, polyphenylene sulfide, or polymethylpentene. An adhesive may be used for lamination between the film and the metal foil. In view of thermal resistance, dielectric characteristics and versatility, it is preferable to use a flexible substrate prepared by laminating a copper foil to a polyimide film. In view of dielectric characteristics, a fluorine-based film is preferably used.
As the ground conductor or the metal spacer for use in the multi-beam antenna device according to the first embodiment, a metal plate or a coated plastic plate may be used. Particularly, it is preferable to use an aluminum plate in view of an advantage of being able to produce the ground conductor or the metal spacer in a low weight and at a low cost. Alternatively, the ground conductor or the metal spacer may be made up using a flexible substrate prepared by employing a film as a base material and laminating a copper foil onto the film, or a copper-cladded laminate prepared by laminating a copper foil on a thin resin sheet consisting of a glass cloth impregnated with resin. A slot or coupling hole-defining portion formed in the ground conductor may be formed by punching based on mechanical press or by etching. In view of simplicity, productivity, etc., the punching based on mechanical press is preferable.
For example, as the each of the first to eighth dielectrics (7), (11), (20), (25), (38), (43), (56), (61) for use in the multi-beam antenna device according to the first embodiment, it is preferable to use a foamed material having a small relative permittivity with respect to air. The foamed material may include: a polyolefin-based foamed material such as polyethylene or polypropylene; a polystyrene-based foamed material; a polyurethane-based foamed material; a polysilicone-based foamed material; and a rubber-based foamed material. Among them, a polyolefin-based foamed material is preferable, because it is lower in the relative permittivity with respect to air.
(Second Embodiment)
The multi-beam antenna device according to the first embodiment will be further viewed in terms of dimensions of each member, etc., and described as a second embodiment with reference to
In this embodiment, each of the first and second radiation elements (1), (16) is formed in a square shape having a side length of 1.5 mm which is about 0.38 times a free space wavelength (λo=3.95 mm) at a frequency of 76 GHz. Further, each of a plurality of first slots (5) formed in the first ground conductor (6) and a plurality of second slits (15) formed in the fourth ground conductor (10) is formed in a square shape having a side length of 2.3 mm which is about 0.58 times the free space wavelength (λo=3.95 mm) at a desired frequency of 76 GHz (or an oblong shape having a long-side length of 2.3 mm), and each of a first slit (14) formed in the fourth ground conductor (10), a third slit (22) formed in the fifth ground conductor (23), a fourth slit (27) formed in the sixth ground conductor (28), the sixth slit (30) formed in the seventh ground conductor (24), a seventh slit (41) formed in the eighth ground conductor (42), an eighth slit (46) formed in the ninth ground conductor (47), and a ninth slit (48) and a first waveguide opening portion (35) formed in the tenth ground conductor (34), is formed as a waveguide opening having a size of 1.25 mm length×2.53 mm width. As illustrated in
In this embodiment, the second Rotman lens (49) having the eight output ports to be formed in the second Rotman lens substrate (55) illustrated in
The above members were actually laminated in order as illustrated in
Further, the first Rotman lens (37) having the twenty four output ports to be formed in the first Rotman lens substrate (37) illustrated in
The above members were actually laminated in order as illustrated in
On the other hand, in a conventional Rotman lens designed in the following range: 1.137 Ln<G<1.42 Ln, while satisfying the condition of the Formula 5 under the defined condition of β=α, i.e., η=Ln/F<1, it is at least necessary that G=1.137, Ln=10.5 λo, so that the size G of the conventional Rotman lens is set to a value which is about 10.5 times the free space wavelength (λo=3.95 mm) at a desired frequency of 76 GHz, i.e., to 41.5 mm. In this case, an insertion loss of the Rotman lens (1) was about 5 dB.
As above, the multi-beam antenna device according to the second embodiment is improved in relative gain by 2.5 dB or more, in comparison on the basis of a loss in a multi-beam antenna device formed by the conventional design process, so that it can achieve excellent characteristics.
(Third Embodiment)
With reference to
In this embodiment, the first Rotman lens (37) having the twenty four output ports to be formed in the first Rotman lens substrate (37) illustrated in
The above members were actually laminated in order as illustrated in
On the other hand, in a conventional Rotman lens designed in the following range: 1.137 Ln<G<1.42 Ln, while satisfying the condition of the Formula 5 under the defined condition of β=α, i.e., η=Ln/F<1, it is at least necessary that G=1.137, Ln=10.5 λo, so that the size G of the conventional Rotman lens is set to a value which is about 10.5 times the free space wavelength (λo=3.95 mm) at a desired frequency of 76 GHz, i.e., to 41.5 mm. In this case, an insertion loss of the Rotman lens (1) was about 5 dB.
As above, the multi-beam antenna device according to the third embodiment is improved in relative gain by 2.5 dB or more, in comparison on the basis of a loss in a multi-beam antenna device formed by the conventional design process, so that it can achieve excellent characteristics, as with the embodiments 1 and 2.
In the multi-beam antenna device illustrated in
In the multi-beam antenna device illustrated in
The second embodiment is particularly useful as a vehicle-mounted antenna, and the second embodiment is usable as a wireless LAN transceiving antenna having a transmitting antenna and a receiving antenna in the form of a single antenna unit.
The following description will be added just to make sure. The seventh ground conductor 24 is redundantly illustrated between
The fourth ground conductor 10 is redundantly illustrated between
The tenth ground conductor 34 is redundantly illustrated between
Number | Date | Country | Kind |
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2009-018320 | Jan 2009 | JP | national |
2010-018219 | Jan 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/051273 | 1/29/2010 | WO | 00 | 7/29/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/087453 | 8/5/2010 | WO | A |
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20110285598 A1 | Nov 2011 | US |