Horn antenna array
10840601 ยท 2020-11-17
Assignee
Inventors
- Takanori Ochiai (Kawagoe, JP)
- Hiroyuki Tanaka (Kawagoe, JP)
- Tatsuya Kawano (Kawagoe, JP)
- Masakazu Ogasawara (Kawagoe, JP)
Cpc classification
H01Q17/00
ELECTRICITY
H01Q21/08
ELECTRICITY
H01Q17/001
ELECTRICITY
International classification
H01Q21/08
ELECTRICITY
H01Q21/06
ELECTRICITY
Abstract
A horn antenna array is provided with a plurality of horn antennas arranged in one direction. Each of the plurality of horn antennas includes two pairs of inclined planes, which define a frustum-shape horn, and on an electromagnetic wave incident side of the horn, ends of a pair of inclined planes arranged in the one direction out of the two pairs of inclined planes project from ends of the other pair of inclined planes out of the two pairs of inclined planes.
Claims
1. A horn antenna array comprising a plurality of horn antennas arranged in one direction, wherein each of the plurality of horn antennas includes: a first side, a second side, a first pair of inclined planes, and second pair of inclined planes, the first and second pairs of inclined planes extending from the first side toward the second side, which define a frustum-shape horn, and ends of the first pair of inclined planes are arranged in the one direction and extend beyond ends of the second pair of inclined planes.
2. The horn antenna array according to claim 1, wherein an angle made by the first pair of inclined planes arranged in the one direction is equal to an angle made by the second pair of inclined planes.
3. The horn antenna array according to claim 2, wherein the horn antenna array further comprises a biconvex cylindrical lens extending in the one direction, and the ends of the first pair of inclined planes arranged in the one direction are arranged to be brought into contact with or close to a convex surface of the cylindrical lens.
4. The horn antenna array according to claim 3, wherein an angle made by the pair of inclined planes arranged in the one direction corresponds to a converging angle of the cylindrical lens.
5. The horn antenna array according to claim 1, wherein the horn antenna array further comprises a biconvex cylindrical lens extending in the one direction, and the ends of the first pair of inclined planes arranged in the one direction are arranged to be brought into contact with or close to a convex surface of the cylindrical lens.
6. The horn antenna array according to claim 5, wherein an angle made by the first pair of inclined planes arranged in the one direction corresponds to a converging angle of the cylindrical lens.
7. The horn antenna array according to claim 1, further comprising a pair of common inclined planes each made up of portions of the first pair of inclined planes of each of the plurality of horn antennas that extend from the ends of the second pair of inclined planes of each of the plurality of horn antennas to the ends of the first pair of inclined planes of the plurality of horn antennas.
Description
BRIEF DESCRIPTION OF DRAWINGS
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(3)
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(5)
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DESCRIPTION OF EMBODIMENTS
(9) A horn antenna array according to embodiments of the present invention will be explained.
(10) A horn antenna array according to an embodiment is provided with a plurality of horn antennas arranged in one direction. Each of the plurality of horn antennas includes two pairs of inclined planes, which define a frustum-shape horn. On an electromagnetic wave incident side of the horn, ends of a pair of inclined planes arranged in the one direction out of the two pairs of inclined planes project from ends of the other pair of inclined planes out of the two pairs of inclined planes.
(11) The inclined plane means a plane that is inclined to an incident direction of an electromagnetic wave that enters perpendicularly to a detector of the horn antenna. The pair of inclined planes arranged in the one direction means a pair of inclined planes that is parallel to or that is regarded as being substantially parallel to an axis extending in the one direction.
(12) According to studies by the present inventors, the following matter has been found; namely, as a parameter for defining detection characteristics of the horn antenna, for example, there are an opening size of the horn (i.e., a size of the horn on the electromagnetic wave incident side) and a length of the horn.
(13) If the length of the horn is constant, in order to efficiently detect an electromagnetic wave that enters obliquely, the opening size of the horn may be increased. After a certain degree of the opening size of the horn, however, detection efficiency of an electromagnetic wave that enters perpendicularly to the detectors of the horn antennas may be reduced. In addition, it is hard to densely arrange the detectors of the horn antennas due to the opening size of the horn antenna, and resolution associated with the horn antenna array may be deteriorated.
(14) If the opening size of the horn is constant, in order to efficiently detect the electromagnetic wave that enters obliquely, the length of the horn may be reduced. After a certain degree of the length of the horn, however, the detection efficiency of the electromagnetic wave that enters perpendicularly may be reduced.
(15) Here, changing the opening size of the horn while the length of the horn is set constant has the same meaning as changing an opening angle of the horn.
(16) Therefore, if the opening angle of the horn corresponding to the optimum opening size and the optimum length of the horn is realized so that both the detection efficiency of the electromagnetic wave that enters perpendicularly and the detection efficiency of the electromagnetic wave that enters obliquely can be improved to some extent, even a horn that is smaller to some extent than a horn that has the optimum opening size and the optimum length is expected to obtain the same detection efficiency.
(17) In the horn antenna array according to the embodiment, as described above, on the electromagnetic wave incident side of the horn of each horn antenna, the ends of the pair of inclined planes arranged in the one direction (i.e., an arrangement direction) out of the two pairs of inclined planes project from the ends of the other pair of inclined planes.
(18) In other words, the size (or width) in the one direction of each horn antenna (i.e., a distance between the ends of the other pair of inclined planes) is shorter than the size (or width) in a direction that crosses the one direction of each horn antenna (i.e., a distance between the ends of the pair of inclined planes arranged in the one direction). As a result, it is possible to arrange the horn antennas relatively densely. It is thus possible to prevent the deterioration in the resolution associated with the horn antenna array.
(19) Moreover, a distance in a length direction of the horn of the other pair of inclined planes is shorter than a distance in a length direction of the horn of the pair of inclined planes arranged in the one direction. Thus, even if the distance between the ends of the other pair of inclined planes is shorter than the distance between the ends of the pair of inclined planes arranged in the one direction, an angle made by the other pair of inclined planes (i.e., an opening angle) can be set similar to an angle made by the pair of inclined planes arranged in the one direction. It is thus possible to prevent the reduction in the detection efficiency caused by a relatively short distance between the ends of the other pair of inclined planes.
(20) On the other hand, the distance between the ends of the pair of inclined planes arranged in the one direction can be set to improve to some extent both the detection efficiency of the electromagnetic wave that enters perpendicularly and the detection efficiency of the electromagnetic wave that enters obliquely. It is thus possible to improve the detection efficiency of the electromagnetic wave that enters obliquely, as an entire horn antenna.
(21) As a result, according to the horn antenna array in the embodiment, it is possible to efficiently detect the electromagnetic wave that enters obliquely while preventing the deterioration in the resolution.
(22) In one aspect of the horn antenna array according to the embodiment, an angle made by the pair of inclined planes arranged in the one direction is equal to an angle made by the other pair of inclined planes.
(23) According to this aspect, it is possible to prevent the reduction in the detection efficiency caused by the relatively short distance between the ends of the other pair of inclined planes.
(24) In another aspect of the horn antenna array according to the embodiment, the horn antenna array is further provided with a biconvex cylindrical lens extending in the one direction, and the ends of the pair of inclined planes arranged in the one direction are arranged to be brought into contact with or close to a convex surface of the cylindrical lens.
(25) According to this aspect, it is possible to improve the detection efficiency associated with the horn antenna array.
(26) In this aspect, an angle made by the pair of inclined planes arranged in the one direction may correspond to a converging angle of the cylindrical lens.
(27) By virtue of such a configuration, it is possible to efficiently detect an electromagnetic wave that passes through the cylindrical lens, which is extremely useful in practice. The sentence the angle made by the pair of inclined planes arranged in the one direction may correspond to the converging angle of the cylindrical lens conceptually includes not only when the angle made by the pair matches the converging angle, but also when the angle made by the pair is greater or less than the converging angle by a minute angle.
EXAMPLES
(28) Hereinafter, a horn antenna array according to examples of the present invention will be explained with reference to the drawings.
First Example
(29) Firstly, a horn antenna array according to a first example of the present invention will be explained with reference to
(30) (Configuration of Horn Antenna Array)
(31) A configuration of the horn antenna array according to the first example will be explained with reference to
(32) In
(33) The inner upper surface 11a and the inner lower surface 11b according to the first example and the inner side surfaces 12a and 12b are respectively an example of the pair of inclined planes arranged in the one direction and the other pair of title planes according to the present invention.
(34) Now, characteristics of the horn antenna will be explained with reference to
(35) Firstly, as illustrated in an upper part of
(36) Regarding the front signal, until a certain degree of the opening size a, the front signal easily enters the detector. The gain thus increases in proportion to the opening size a (refer to a solid line in a lower part of
(37) On the other hand, regarding the obliquely incident signal, as the opening size a is increased, the gain increases so that the gain asymptotically approaches a certain value (refer to a dashed line in the lower part of
(38) If only the gain of the front signal is considered, the opening size a may be set to A.sub.1 in the lower part of
(39) Next, as illustrated on a left side of
(40) Regarding the front signal, as the length L of the horn is increased, the gain increases so that the gain asymptotically approaches a certain value (refer to a solid line on a right side of
(41) On the other hand, regarding the obliquely incident signal, as the length L of the horn is reduced, the gain increases so that the gain asymptotically approaches a certain value (refer to a dashed line on the right side of
(42) If only the gain of the front signal is considered, it is desirable to increase the length L of the horn. If, however, both the gain of the front signal and the gain of the obliquely incident signal are considered, it is desirable to set the length L of the horn to B.sub.1 on the right side of
(43) By the way, in studying gain characteristics of each of the front signal and the obliquely incident signal illustrated in
(44) Based on the above, the present inventors have intended to set the length L of the horn to be long to some extent, and have intended to increase the opening angle , thereby to achieve both the gain of the front signal and the gain of the obliquely incident signal.
(45) According to the studies by the present inventors, it has been found that when the length L of the horn is changed while the opening size a of the horn is constant, if the length L of the horn is longer than six times a wavelength of the electromagnetic wave that is a measurement target, the gain of the front signal is substantially maximal.
(46) It is thus possible to realize both the gain of the front signal and the gain of the obliquely incident signal, by setting 6 as the length L of the horn and by obtaining the opening size a corresponding to A.sub.2 in
(47) Back in
(48) In
(49) As illustrated in
(50) On the other hand, a distance in a z-axis direction of each horn antenna can be set long to some extent because it does not influence the resolution. As illustrated in the lower part of
(51) Thus, in the first example, an opening size a.sub.1 in
(52) The size of the horn antenna array 1 described above is an example, and is not limited to this example. The opening angles .sub.1 and .sub.2 may be different from each other.
Technical Effect
(53) Next, a technical effect of the horn antenna array 1 according to the first example will be explained in comparison with a horn antenna array 50 according to a comparative example (refer to
(54) In the horn antenna array 50 according to the comparative example, on an electromagnetic wave incident side, ends of an inner upper surface 51a and an inner lower surface 51b of a horn are aligned with ends of inner side surfaces 52a and 52b of the horn. Thus, an angle made by the inner side surfaces 52a and 52b (i.e., an opening angle ) is smaller than an angle made by the inner upper surface 51a and the inner lower surface 51b (i.e., the opening angle .sub.1).
(55) On an x-y plane, the horn antenna array 1 has a remarkably higher gain of the electromagnetic wave that enters obliquely to the detectors of the horn antennas than the horn antenna array 50. This is because the opening angle is smaller than the opening angle .sub.1 (refer to
(56) The resolution associated with the horn antenna array 1 is equivalent to the resolution associated with the horn antenna array 50. In other words, the horn antenna array 1 can efficiently detect the electromagnetic wave that enters obliquely, while preventing the deterioration in the resolution.
(57) Regarding the gain of the electromagnetic wave that enters perpendicularly to the detectors of the horn antennas, there is little difference between the horn antenna array 1 and the horn antenna array 50. Moreover, on a y-z plane, there is also little difference between the horn antenna array 1 and the horn antenna array 50 regarding the gain of the electromagnetic wave that enters obliquely to the detectors of the horn antennas.
Second Example
(58) A horn antenna array according to a second example of the present invention will be explained mainly with reference to
(59) As illustrated in
(60) In the horn antenna array 2, an inner upper surface 11a and an inner lower surface 11b of a horn (refer to
(61) Thus, in particular, on the y-z plane, it is possible to increase an electromagnetic wave that is led to the detectors via the horns and the cylindrical lens 20, out of the electromagnetic wave that enters obliquely to the detectors of the horn antennas, in comparison with the horn antenna array according to the comparative example (refer to
(62) Moreover, even regarding the electromagnetic wave that enters perpendicularly to the detectors of the horn antennas, it is possible to improve the gain of the electromagnetic wave that enters perpendicularly, because light is converged by the cylindrical lens 20. It is possible to further improve the gain of the electromagnetic wave that enters perpendicularly, particularly by associating a converging angle of the cylindrical lens 20 with the opening angle .sub.1.
(63) The present invention is not limited to the aforementioned embodiments and examples, but various changes may be made, if desired, without departing from the essence or spirit of the invention which can be read from the claims and the entire specification. A horn antenna array that involves such changes is also intended to be within the technical scope of the present invention.
DESCRIPTION OF REFERENCE NUMERALS AND LETTERS
(64) 1, 2, 50 horn antenna array 11a, 51a inner upper surface 11b, 51b inner lower surface 12a, 12b, 52a, 52b inner side surface 20 cylindrical lens