IP Library › Granted Patent US 12,656,451
Granted Patent B2
US 12,656,451 · App. 18/521,238 · Granted Jun 16, 2026

Dimensionally-tolerant, compact, wideband, waveguide-to-monolithic microwave integrated circuit upward vertical transition

Inventors: Roshin Rose George (Carmel, IN); Marlow Rumreich (Fishers, IN)
Assignee: APTIV TECHNOLOGIES AG
G01S7/032H01P3/08G01S2013/93275
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Quick Facts
Patent No.
US 12,656,451
App. No.
18/521,238
Granted
Jun 16, 2026
Kind
B2
Abstract

A radar sensor includes: a waveguide interface configured to contact a waveguide including a first aperture that is at least partially vertically aligned with a second aperture in the waveguide; a radio frequency (RF) feed; a first wing that is coplanar with the RF feed and the waveguide interface and that electrically connects the RF feed with the waveguide interface; a first electrically conductive layer that is connected to a ground potential, that includes a third aperture that is at least partially aligned with the first and second apertures, and that includes a second wing that forms a portion of the third aperture.

Claims (32)

1 . A radar sensor comprising:

a waveguide interface that is electrically conductive, that is configured to contact a waveguide, and that includes a first aperture that is at least partially vertically aligned with a second aperture in the waveguide;

a radio frequency (RF) feed that is electrically conductive;

a first wing that is coplanar with the RF feed and the waveguide interface and that electrically connects the RF feed with the waveguide interface;

a first electrically conductive layer that is electrically connected to a ground potential, that includes a third aperture that is at least partially aligned with the first and second apertures, and that includes a second wing that forms a portion of the third aperture,

wherein the first wing extends away from a line through an axis of the RF feed in a direction toward a first surface of the first aperture, and

wherein the second wing:

extends away from the line toward a second surface of the first aperture that is opposite the first surface; and

extends from the second surface further toward the first surface than a closest side of the RF feed to the first surface.

2 . The radar sensor of claim 1 , wherein the first wing and the second wing are asymmetrical.

3 . The radar sensor of claim 1 , wherein the first wing includes a tapered portion.

4 . The radar sensor of claim 3 , wherein the tapered portion incudes at least one curve.

5 . The radar sensor of claim 1 , wherein the second wing includes a convex portion and a concave portion.

6 . The radar sensor of claim 1 , wherein the second wing includes at least two curved portions.

7 . The radar sensor of claim 1 , wherein the second wing includes a linear portion that extends between the second surface toward the first surface to a point that is closer to the first surface than the closest side of the RF feed.

8 . The radar sensor of claim 1 , further comprising a substrate and a second electrically conductive layer disposed on a first surface of the substrate,

wherein the RF feed, the first wing, and the waveguide interface directly contact the second electrically conductive layer, and

wherein the first electrically conductive layer contacts a second surface of the substrate that is opposite the first surface.

9 . The radar sensor of claim 1 , further comprising the waveguide.

10 . The radar sensor of claim 9 , wherein the waveguide includes an electrically conductive material on exterior surface of the waveguide.

11 . The radar sensor of claim 9 , further comprising an electrically insulative material disposed within the second aperture.

12 . The radar sensor of claim 1 , wherein the waveguide interface includes a C-shape and the RF feed extends into an opening in the C-shape.

13 . The radar sensor of claim 12 , wherein the first aperture is within the C-shape.

14 . The radar sensor of claim 1 , further comprising electrically conductive vias that electrically connect the first electrically conductive layer to the ground potential.

15 . The radar sensor of claim 14 , further comprising a third electrically conductive layer that is electrically connected to the ground potential,

wherein the electrically conductive vias electrically connect the first electrically conductive layer to the third electrically conductive layer.

16 . The radar sensor of claim 15 , wherein the third electrically conductive layer includes a first electrically conductive portion, a second electrically conductive portion, and an electrically insulative portion that electrically isolates the first electrically conductive portion from the second electrically conductive portion.

17 . The radar sensor of claim 16 , wherein the first electrically conductive portion is disposed within the second electrically conductive portion, and

wherein the electrically conductive vias electrically connect the first electrically conductive layer to the first electrically conductive portion.

18 . The radar sensor of claim 15 , further comprising a second substrate disposed between the first electrically conductive layer and the third electrically conductive layer.

19 . The radar sensor of claim 1 , wherein the line through the axis of the RF feed is perpendicular to second axes of the first and second apertures.

20 . The radar sensor of claim 1 , wherein the second wing includes at least one linear portion and at least one curved portion.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 28, 2023
From: GEORGE, ROSHIN ROSE; RUMREICH, MARLOW
To: APTIV TECHNOLOGIES AG
Reel/Frame 065690/0673 →
Continuity (1)
Related Publication 20250172655A1 · May 29, 2025
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