Expanded waveguide including multilateral pillars forming multiple channels therein
10461391 ยท 2019-10-29
Assignee
Inventors
Cpc classification
H03F3/68
ELECTRICITY
International classification
H03F3/68
ELECTRICITY
Abstract
An expanded waveguide for providing uniform electromagnetic field is disclosed. The expanded waveguide comprises an expanded area expanded in the direction of the E-plane, an input transition area and an output transition area connected to both sides of the expanded area and configured to pass an electromagnetic wave, and entrance parts formed respectively to an end part of the input transition area and an end part of the output transition area, the electromagnetic wave being inputted and outputted through the entrance parts. Here, a plurality of multilateral pillars are arranged in constant space in the transition areas, and a channel is formed along between the multilateral pillars.
Claims
1. An expanded waveguide expanded in a direction of an E-plane to provide uniform electromagnetic field comprising: an expanded area expanded in the direction of the E-plane; an input transition area and an output transition area connected to both sides of the expanded area and configured to pass an electromagnetic wave; and entrance parts formed respectively to an end part of the input transition area and an end part of the output transition area, the electromagnetic wave being inputted and outputted through the respective entrance parts, wherein a plurality of multilateral pillars are arranged in constant space in the transition areas, and a channel is divided along between the multilateral pillars to form a plurality of paths in a tree shape, wherein the division of the plurality of paths begins from a path at a first entrance part, among the entrance parts, formed to the end part of the input transition area, wherein each of the plurality of paths from an inlet of the channel corresponding to the first entrance part to an outlet of the divided channel corresponding to the expanded area has the same length, wherein each of the plurality of multilateral pillars is a rectangular pillar having a cross section of rhombus shape, and wherein the plurality of multilateral pillars is arranged in different size so that the divided channel forms the tree shape in the input transition area.
2. The expanded waveguide of claim 1, wherein a space of the outlet of the channel is smaller than one wavelength.
3. The expanded waveguide of claim 1, wherein the electromagnetic wave inputted through the first entrance part passes through the plurality of paths, the electromagnetic wave is divided into a plurality of electromagnetic waves, and arrival times of the plurality of electromagnetic waves at the outlet of the divided channel are the same.
4. The expanded waveguide of claim 1, wherein the divided channel has a bend that is an angle smaller than 30.
5. The expanded waveguide of claim 1, wherein the inlet of the channel has a taper structure.
6. The expanded waveguide of claim 1, wherein a width of the input transition area reduces in the direction from the expanded area to the first entrance part, depending on a width difference between the expanded area and the first entrance part.
7. The expanded waveguide of claim 1, wherein a width of the divided channel is smaller than half wavelength (/2).
8. The expanded waveguide of claim 1, wherein semiconductor elements are installed in a one dimensional array in the expanded area.
9. The expanded waveguide of claim 1, wherein amplifier elements are installed in a one dimensional array in the expanded area to form an amplifier array, and a one dimensional spatial power combining amplifier is formed.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The aspects, features, advantages and embodiments of the invention will be more apparent from the following detailed description taken in conjunction with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
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(7)
DETAILED DESCRIPTION OF THE INVENTION
(8) In the present specification, an expression used in the singular encompasses the expression of the plural, unless it has a clearly different meaning in the context. In the present specification, terms such as comprising or including, etc., should not be interpreted as meaning that all of the elements or operations are necessarily included. That is, some of the elements or operations may not be included, while other additional elements or operations may be further included. Also, terms such as unit, module, etc., as used in the present specification may refer to a part for processing at least one function or action and may be implemented as hardware, software, or a combination of hardware and software.
(9) Hereinafter, embodiments of the invention will be described in detail with reference to accompanying drawings.
(10)
(11) In
(12) Particularly, in the expanded waveguide of the invention, the expanded area 10, where semiconductor elements are installed in a one dimensional array, is formed in middle position of the expanded waveguide, and input transition and output transition areas 20 through which inputted electromagnetic wave passes are connected to both sides of the expanded area 10. The entrance parts 30 through which an electromagnetic wave is inputted or outputted are formed at each of end parts of the input transition and output transition areas 20.
(13) For example,
(14) As shown in
(15) If a one dimensional metal waveguide is randomly expanded, various modes occur, and thus it is difficult to provide a plane wave. If an H-plane vertical to the E-plane is used, the E field parallel to a left metal wall and a right metal wall of a metal waveguide disappears, and thus uniform electromagnetic field distribution cannot be achieved.
(16)
(17) Now referring to
(18) A size of the transition area 20 reduces in a direction from the expanded area 10 to the entrance part 30, depending on size difference (i.e. horizontal width) of the expanded area 10 and the entrance part 30. That is, the horizontal width of the transition area 20 may reduce in the direction from the expanded area 10 to the entrance part 30. For example, the transition area 20 may have a triangular cross section in the direction of the E-plane. The entrance part 30 may be formed at one vertex of a triangle, and a line segment of the triangle corresponding to the vertex may be connected to the expanded area 10.
(19) Specifically, plural multilateral pillars 21 are arranged in constant space in the transition area 20, to realize uniform electromagnetic field distribution. As a result, a channel 25 is formed along between the multilateral pillars 21.
(20) Here, the channel 25 may be formed in a tree where each of paths is divided into two paths in a preset level, and the division of the paths begins from a path at the entrance part 30. Here, every path from an inlet of the channel 25 corresponding to the entrance part 30 to an outlet of the channel 25 corresponding to the expanded area 10 may have the same length. As a result, an electromagnetic wave inputted through the entrance part 30 passes every path from the inlet of the channel 25 corresponding to the entrance part 30 to the outlet of the channel 25 corresponding to the expanded area 10, and thus the electromagnetic wave is divided into plural electromagnetic waves. An arrival time of every divided electromagnetic wave at each of the outlets of the channel 25 may be the same.
(21) For example, as shown in
(22) If the channel 25 is formed in the tree so that every path to each of the outlets of the channel 25 has the same length, the multilateral pillar 21 may be a hexagonal pillar. That is, the multilateral pillar 21 may be the hexagonal pillar having hexagonal cross section formed by cutting a pair of facing edge parts in the rhombus to form bilateral symmetry.
(23) A variety of multilateral pillars 21 including the rectangular pillar or the hexagonal pillar may be formed by the method of cutting the edge parts.
(24) Hereinafter, an expanded waveguide according to another embodiment of the invention will be described in detail with reference to accompanying drawings
(25)
(26) The detailed design of the expanded waveguide may be performed about a width of the channel 25, bent degree of the channel 25, a space of an outlet of the channel 25, a structure of a division part of the channel 25 and a structure of an inlet before division in the channel 25.
(27) In
(28) In
(29) As shown in
(30) Accordingly, to keep a single mode, it is desirable that the width of the channel 25 is designed to have a length smaller than half wavelength (/2)
(31) Next, design for bent degree of the channel 25 will be described with reference to
(32) Referring to
(33) As shown in
(34) Accordingly, it is desirable that the bent degree of the channel 25 is designed to have an angle smaller than 30.
(35) Next, the structure of the division part of the channel 25 will be described with reference to
(36)
(37) The division part should be designed to overcome resistance difference occurred by one input channel and two output channels and the reflected wave.
(38) As shown in
(39) Next, the inlet structure before the division of the channel 25 will be described with reference to
(40)
(41) As shown in
(42) Next, design for the space of the outlet of the channel 25 will be described with reference to
(43) As shown in
(44) Accordingly, it is desirable that the space of the outlet of the channel 25 is designed to have a length smaller than the one wavelength, such as 0.8 and 0.95.
(45) As shown in
(46) The edge part of the multilateral pillar 21 is formed with the arrowhead structure as shown in
(47) The embodiments of the invention described above are disclosed only for illustrative purposes. A person having ordinary skill in the art would be able to make various modifications, alterations, and additions without departing from the spirit and scope of the invention, but it is to be appreciated that such modifications, alterations, and additions are encompassed by the scope of claims set forth below.