IP Library Granted Patent US 10,651,567
Granted Patent B2
US 10,651,567 · App. 16/660,845 · Granted May 12, 2020

Method of producing a horn antenna array and antenna array

Inventors: Hiroyuki Kamo (Kyoto, JP); Hideki Kirino (Kyoto, JP)
Assignees: NIDEC CORPORATION; WGR CO., LTD.
H01Q21/064H01P3/12H01Q13/02H01Q19/08H01P3/123H01Q1/3233
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Quick Facts
Patent No.
US 10,651,567
App. No.
16/660,845
Granted
May 12, 2020
Kind
B2
Abstract

A method of producing a horn antenna array includes: a step of providing a first die and a second die; a step of assembling the first die and the second die, filling an internal space surrounded by the first die and the second die with a fluid material, and solidifying the fluid material; and a step of, after the material has solidified, separating the first die and the second die. In a portion corresponding to each horn antenna element, the first die has a pair of protrusions and a groove between the pair of protrusions, and the second die has a protrusion. In a state where the first die and the second die are assembled, a gap exists between a tip end of each protrusion of the second die and a bottom face of each groove.

Claims (96)

1. A method of producing a horn antenna,

each horn antenna including

a horn, and

a base having a slot extending along a second direction which intersects the first direction, the base closing the horn at one end,

the horn including

a pair of electrically-conductive first inner walls each intersecting the first direction,

a pair of electrically-conductive second inner walls each intersecting the second direction, and

a bridge being continuous with the pair of second inner walls and extending along the second direction, the bridge having two electrically conductive faces respectively opposing the pair of first inner walls,

the production method of the horn antenna comprising:

providing a first die and a second die;

assembling the first and second dies, filling an internal space surrounded by the first and second dies with a fluid material, and solidifying the fluid material; and,

after the material has solidified, separating the first and second dies and retrieving a molding therefrom, wherein,

in a portion corresponding to each horn antenna element, the first die has a pair of protrusions and a groove between the pair of protrusions;

in a portion corresponding to each horn antenna element, the second die has a protrusion; and,

in a state where the first and second dies are assembled,

at least a portion of the protrusion of the second die is located in the groove of the first die, and

a gap exists between a tip end of the protrusion of the second die and a bottom face of the groove of the first die,

wherein,

the bottom face of the groove of the first die defines a front-side surface of the bridge of the horn of each horn antenna element;

two side faces which are continuous with the bottom face of the groove of the first die define the two electrically conductive faces of the bridge;

portions of the surface of the pair of protrusions of the first die define the pair of first inner walls of the horn; and

a tip-end surface of the protrusion of the second die defines a rear-side surface of the bridge.

2. The method of producing a horn antenna of claim 1 , wherein,

the first die includes

a first base portion having dents, and

a first insert being accommodated in each dent of the first base portion, the first insert having the pair of protrusions belonging in the portion of the first die corresponding to each horn antenna element; and

the second die includes

a second base portion having dents, and

a second insert being accommodated in each dent of the second base portion, the second insert having the protrusion belonging in the portion of the second die corresponding to each horn antenna element.

3. The method of producing a horn antenna of claim 2 , wherein,

each dent of the first die has a first aperture extending through the first base portion;

each first insert has a second aperture at a position which adjoins the first aperture; and,

in the portion corresponding to each horn antenna element, the first die includes a third insert being accommodated in the first and second apertures, and,

an end face of the third insert constitutes the bottom face of the groove of the first die.

4. The method of producing a horn antenna of claim 1 , further comprising applying machining to a portion of the molding retrieved from the first and second dies.

5. The method of producing a horn antenna of claim 2 , further comprising applying machining to a portion of the molding retrieved from the first and second dies.

6. The method of producing a horn antenna of claim 3 , further comprising applying machining to a portion of the molding retrieved from the first and second dies.

7. The method of producing a horn antenna of claim 1 , wherein,

the material is a resin in fluid state; and

the method further comprises plating a surface of the molding having been retrieved from the first and second dies.

8. The method of producing a horn antenna of claim 2 , wherein,

the material is a resin in fluid state; and

the method further comprises plating a surface of the molding having been retrieved from the first and second dies.

9. The method of producing a horn antenna of claim 3 , wherein,

the material is a resin in fluid state; and

the method further comprises plating a surface of the molding having been retrieved from the first and second dies.

10. The method of producing a horn antenna of claim 4 , wherein,

the material is a resin in fluid state; and

the method further comprises plating a surface of the molding having been retrieved from the first and second dies.

11. A radar device, comprising:

a transmission antenna;

a reception antenna;

a transmission/reception circuit configured to control radiation from the transmission antenna, and to process signals from the reception antenna; and

a waveguide device that allows an electromagnetic wave to propagate between the transmission antenna and reception antenna and the transmission/reception circuit,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 1 .

12. A radar device, comprising:

a transmission antenna;

a reception antenna;

a transmission/reception circuit configured to control radiation from the transmission antenna, and to process signals from the reception antenna; and

a waveguide device that allows an electromagnetic wave to propagate between the transmission antenna and reception antenna and the transmission/reception circuit,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 2 .

13. A radar device, comprising:

a transmission antenna;

a reception antenna;

a transmission/reception circuit configured to control radiation from the transmission antenna, and to process signals from the reception antenna; and

a waveguide device that allows an electromagnetic wave to propagate between the transmission antenna and reception antenna and the transmission/reception circuit,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 3 .

14. A radar system comprising:

a radar device of claim 11 ; and

a signal processing circuit connected to the transmission/reception circuit of the radar device.

15. A radar system comprising:

a radar device of claim 12 ; and

a signal processing circuit connected to the transmission/reception circuit of the radar device.

16. A radar system comprising:

a radar device of claim 13 ; and

a signal processing circuit connected to the transmission/reception circuit of the radar device.

17. A communication system comprising:

a transmitter comprising a transmission antenna;

a receiver comprising a reception antenna; and

a communication circuit connected to the transmission antenna and the reception antenna,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 1 .

18. A communication system comprising:

a transmitter comprising a transmission antenna;

a receiver comprising a reception antenna; and

a communication circuit connected to the transmission antenna and the reception antenna,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 2 .

19. A communication system comprising:

a transmitter comprising a transmission antenna;

a receiver comprising a reception antenna; and

a communication circuit connected to the transmission antenna and the reception antenna,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 3 .

20. A communication system comprising:

a transmitter comprising a transmission antenna;

a receiver comprising a reception antenna; and

a communication circuit connected to the transmission antenna and the reception antenna,

wherein at least one of the transmission antenna and the reception antenna is a horn antenna produced by the method of claim 4 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 23, 2019
From: KAMO, HIROYUKI; KIRINO, HIDEKI
To: NIDEC CORPORATION; WGR CO., LTD.
Reel/Frame 050797/0812 →
Priority Claims (2)
JP 2017-124555 · Jun 26, 2017 · national
JP 2018-007502 · Jan 19, 2018 · national
Continuity (2)
Continuation 16015342 · Jun 22, 2018
Related Publication 20200067200A1 · Feb 27, 2020
Cited By (12)
US 12,224,502 US 12,265,172 US 12,300,892 US 12,424,767 US 12,456,816 US 12,500,350 US 12,506,272 US 12,529,756 US 12,537,308 US 12,614,839 US 12,627,020 US 12,695,200