IP Library Granted Patent US 11,837,791
Granted Patent B2
US 11,837,791 · App. 17/940,376 · Granted Dec 5, 2023

Microstrip patch antenna with increased bandwidth

Inventor: Marat Patotski (Gdansk, PL)
Assignee: CARRIER CORPORATION
H01Q21/08H01Q9/045H01Q21/0075
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Quick Facts
Patent No.
US 11,837,791
App. No.
17/940,376
Granted
Dec 5, 2023
Kind
B2
Abstract

A microstrip antenna array including: a thin substrate; two or more microstrip radiating patches placed on a first side of the substrate, each radiating patch including: an input port; a radiating patch width (WRP) extending in a longitudinal direction; a radiating patch length (LRP) extending in a transverse direction, wherein the transverse direction is perpendicular to the longitudinal direction, and wherein the longitudinal and transverse directions are in the plane of the radiating patch; a radiating patch transverse axis (TRP) along the midpoint of the radiating patch width; and a radiating patch longitudinal axis along the midpoint of the radiating patch length, wherein the two or more radiating patches are spaced in the longitudinal direction such that the radiating patch longitudinal axis of each radiating patch is aligned along a common longitudinal axis (C); and one or more parasitic patches placed on the first side of the substrate.

Claims (15)

1. A microstrip antenna array ( 200 ; 300 ; 400 ) comprising: a substrate ( 204 ); three or more microstrip radiating patches ( 202 ; 302 ; 402 ) placed on a first side ( 208 ) of the substrate ( 204 ), wherein the three or more radiating patches are spaced in a longitudinal direction such that each radiating patch is aligned along a common longitudinal axis (C); and two or more parasitic patches ( 212 ; 312 ; 412 ) placed on the first side ( 208 ) of the substrate ( 204 ), wherein there is at least one fewer parasitic patches than there are radiating patches, wherein the two or more parasitic patches ( 212 ; 312 ; 412 ) are spaced in the longitudinal direction such that each parasitic patch is aligned along the common longitudinal axis (C), and wherein each parasitic patch is positioned between two radiating patches ( 202 ; 302 ; 402 ), wherein a parasitic patch width and gaps between radiating patches (Gp) are tuned to provide the certain strength of coupling k between radiating patches, wherein at least one parasitic patch comprises at least one VIA.

2. The array of claim 1 , wherein each radiating patch comprises an input port, optionally wherein the radiating patch input ports are positioned along a radiating patch transverse axis of each radiating patch.

3. The array of claim 1 , wherein each radiating patch comprises a radiating patch transverse axis along the midpoint of a radiating patch width, each radiating patch transverse axis being perpendicular to the common longitudinal axis.

4. The array of claim 1 , wherein each parasitic patch comprises a parasitic patch transverse axis along the midpoint of a parasitic patch width, each parasitic patch transverse axis being perpendicular to the common longitudinal axis.

5. The array of claim 1 , wherein the substrate has a thickness of 1.0 mm or less.

6. The array of claim 1 , wherein the radiating patches are regularly spaced along the common longitudinal axis.

7. The array of claim 3 , wherein radiating patch transverse axes of adjacent radiating patches are separated by about a half wavelength of an input signal, wherein the wavelength of the signal is modified by the substrate.

8. The array of claim 1 , wherein the parasitic patch length is about a half wavelength of an input signal, wherein the wavelength of the signal is modified by the substrate.

9. The array of claim 1 , wherein at least one of the two or more parasitic patches is symmetric about the common longitudinal axis.

10. The array of claim 4 , wherein at least one of the two or more parasitic patches is symmetric about its parasitic patch transverse axis.

11. The array of claim 3 , wherein at least one of the three or more radiating patches is symmetric about its radiating patch transverse axis.

12. The array of claim 1 , wherein the VIA is positioned along the common longitudinal axis.

13. The array of claim 1 , wherein the VIAs are positioned to divide the parasitic patch into two quarter wavelength, λ d /4 resonant portions.

14. The array of claim 1 , wherein one of the parasitic patches comprises two or more parasitic microstrip lines, the lines being spaced apart along the common longitudinal axis and between two radiating patches.

15. The array of claim 13 , wherein the gap between the two or more parasitic microstrip lines is tuned to provide necessary coupling between them.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2025
From: CARRIER CORPORATION; CARRIER GLOBAL CORPORATION; CARRIER FIRE & SECURITY EMEA; CARRIER FIRE & SECURITY, LLC; CARRIER CANADA CORPORATION; CLIMATE, CONTROLS & SECURITY ARGENTINA S.A.; KIDDE IP HOLDINGS , INC.; KIDDE LTD.; KIDDE PRODUCTS LTD.; CARRIER TRANSICOLD AUSTRIA GMBH; CARRIER TRANSICOLD FRANCE SCS
To: KIDDE FIRE PROTECTION, LLC
Reel/Frame 072829/0172 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2022
From: PATOTSKI, MARAT; UTC FIRE & SECURITY POLSKA SP. Z O.O.
To: CARRIER CORPORATION
Reel/Frame 061039/0867 →
Priority Claims (1)
EP 19208147 · Nov 8, 2019 · regional
Continuity (2)
Continuation 17089955 · Nov 5, 2020
Related Publication 20230026995A1 · Jan 26, 2023