IP Library Granted Patent US 10,218,078
Granted Patent B2
US 10,218,078 · App. 16/002,221 · Granted Feb 26, 2019

Waveguide device, slot antenna, and radar, radar system, and wireless communication system including the slot antenna

Inventors: Hideki Kirino (Kyoto, JP); Hiroyuki Kamo (Kawasaki, JP)
Assignees: NIDEC CORPORATION; WGR CO., LTD.
H01Q13/106H01Q1/2291H01Q1/3208H01Q21/005H01Q21/0006H01Q21/0093
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,218,078
App. No.
16/002,221
Granted
Feb 26, 2019
Kind
B2
Abstract

A waveguide device includes a first electrically conductive member having a first electrically conductive surface; a second electrically conductive member having a second electrically conductive surface which opposes the first electrically conductive surface; and a ridge-shaped waveguide member on the second electrically conductive member. The second electrically conductive member has a throughhole which splits the waveguide member into first and second ridges. The first and second ridges each have an electrically conductive end face, the end faces opposing each other via the throughhole. The opposing end faces and the throughhole together define a hollow waveguide. The hollow waveguide is connected to a first waveguide extending between the waveguide face of the first ridge and the first electrically conductive surface, and to a second waveguide extending between the waveguide face of the second ridge and the first electrically conductive surface.

Claims (70)

1. A waveguide device comprising:

a first electrically conductive member having a first electrically conductive surface;

a second electrically conductive member having a second electrically conductive surface which opposes the first electrically conductive surface; and

a ridge-shaped waveguide member on the second electrically conductive member, the waveguide member having an electrically conductive waveguide face which extends along the first electrically conductive surface so as to oppose the first electrically conductive surface; and

a plurality of electrically conductive rods arranged on both sides of the waveguide member, each electrically conductive rod having a leading end opposing, via a gap, the first electrically conductive surface and a root connected to the second electrically conductive surface;

wherein,

the second electrically conductive member has a throughhole;

the waveguide member is split by the throughhole into a first ridge and a second ridge;

the first ridge and the second ridge each have an electrically conductive end face, the end faces opposing each other via the throughhole;

the opposing end faces of the first and second ridges and the throughhole together define a hollow waveguide;

the hollow waveguide is connected to a first waveguide extending between the waveguide face of the first ridge and the first electrically conductive surface, and to a second waveguide extending between the waveguide face of the second ridge and the first electrically conductive surface;

a length of the first waveguide and a length of the second waveguide are each longer than a distance between the first electrically conductive surface and the second electrically conductive surface; and

the plurality of electrically conductive rods include rods each having a width increasing toward the root.

2. The waveguide device of claim 1 , wherein

a portion of the second conductive surface between adjacent conductive rods has a cross section similar to U-shape or V-shape.

3. The waveguide device of claim 1 , wherein

the plurality of conductive rods include a rod having a inclined side surface, an inclination at an end portion thereof against a direction normal to the second surface is smaller than that at a root portion thereof.

4. The waveguide device of claim 2 , wherein

the plurality of conductive rods include a rod having a inclined side surface, an inclination at an end portion thereof against a direction normal to the second surface is smaller than that at a root portion thereof.

5. The waveguide device of claim 1 , wherein,

the rods each having the width increasing toward the root are adjacent to the waveguide member.

6. A slot antenna comprising:

a waveguide device of claim 1 , wherein,

the first electrically conductive member has a plurality of slots that are couple to the waveguide member;

two of the plurality of slots are adjacent along a direction that the waveguide member extends; and

the throughholes is between the two slot.

7. A slot antenna comprising:

a waveguide device of claim 2 , wherein,

the first electrically conductive member has a plurality of slots that are couple to the waveguide member;

two of the plurality of slots are adjacent along a direction that the waveguide member extends; and

the throughholes is between the two slot.

8. A slot antenna comprising:

a waveguide device of claim 3 , wherein,

the first electrically conductive member has a plurality of slots that are couple to the waveguide member;

two of the plurality of slots are adjacent along a direction that the waveguide member extends; and

the throughholes is between the two slot.

9. A slot antenna comprising:

a waveguide device of claim 4 , wherein,

the first electrically conductive member has a plurality of slots that are couple to the waveguide member;

two of the plurality of slots are adjacent along a direction that the waveguide member extends; and

the throughholes is between the two slot.

10. The slot antenna of claim 6 , wherein,

in a plan view projected along an axis of the throughhole, a distance between a center of the throughhole and a midpoint between the two slots is smaller than a distance between the opposing end faces.

11. The slot antenna of claim 7 , wherein,

in a plan view projected along an axis of the throughhole, a distance between a center of the throughhole and a midpoint between the two slots is smaller than a distance between the opposing end faces.

12. The slot antenna of claim 8 , wherein,

in a plan view projected along an axis of the throughhole, a distance between a center of the throughhole and a midpoint between the two slots is smaller than a distance between the opposing end faces.

13. The slot antenna of claim 9 , wherein,

in a plan view projected along an axis of the throughhole, a distance between a center of the throughhole and a midpoint between the two slots is smaller than a distance between the opposing end faces.

14. The slot antenna of claim 6 , wherein,

the first electrically conductive member has one or more other slots in addition to the two slots; and

the two slots and the one or more other slots are disposed at equal intervals along the direction that the waveguide member extends, or so that a distance between centers of any two adjacent slots among them differs only by amounts that are smaller than a distance between the opposing end faces.

15. The slot antenna of claim 8 , wherein,

the first electrically conductive member has one or more other slots in addition to the two slots; and

the two slots and the one or more other slots are disposed at equal intervals along the direction that the waveguide member extends, or so that a distance between centers of any two adjacent slots among them differs only by amounts that are smaller than a distance between the opposing end faces.

16. The slot antenna of claim 10 , wherein,

the first electrically conductive member has one or more other slots in addition to the two slots; and

the two slots and the one or more other slots are disposed at equal intervals along the direction that the waveguide member extends, or so that a distance between centers of any two adjacent slots among them differs only by amounts that are smaller than a distance between the opposing end faces.

17. The slot antenna of claim 12 , wherein,

the first electrically conductive member has one or more other slots in addition to the two slots; and

the two slots and the one or more other slots are disposed at equal intervals along the direction that the waveguide member extends, or so that a distance between centers of any two adjacent slots among them differs only by amounts that are smaller than a distance between the opposing end faces.

18. The waveguide device of claim 17 , wherein,

the waveguide device is used for at least one of transmission and reception of an electromagnetic wave of a predetermined band; and

a width of the waveguide member, a width of an electrically conductive rod which is adjacent to the waveguide member, a width of a space between the electrically conductive rod and the waveguide member, and a distance from the root of the electrically conductive rod to the first electrically conductive surface are all less than λm/2, where λm is a wavelength, in free space, of an electromagnetic wave of a highest frequency among electromagnetic waves of the predetermined band.

19. A radar comprising:

the slot antenna of claim 6 ; and

a microwave integrated circuit that is connected to the slot array antenna.

20. A radar comprising:

the slot antenna of claim 17 ; and

a microwave integrated circuit that is connected to the slot array antenna.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 13, 2021
From: NIDEC CORPORATION
To: NIDEC ELESYS CORPORATION
Reel/Frame 056834/0777 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2018
From: NIDEC ELESYS CORPORATION
To: NIDEC CORPORATION
Reel/Frame 046015/0838 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2018
From: KIRINO, HIDEKI; KAMO, HIROYUKI
To: NIDEC ELESYS CORPORATION; WGR CO., LTD.
Reel/Frame 046015/0845 →
Priority Claims (2)
JP 2015-251018 · Dec 24, 2015 · national
JP 2016-075684 · Apr 5, 2016 · national
Continuity (2)
Continuation 15387892 · Dec 22, 2016
Related Publication 20180294575A1 · Oct 11, 2018
Cited By (10)
US 12,224,502 US 12,265,172 US 12,424,767 US 12,456,816 US 12,500,350 US 12,506,272 US 12,537,308 US 12,614,839 US 12,627,020 US 12,695,200