IP Library Granted Patent US 8,416,138
Granted Patent B2
US 8,416,138 · App. 12/345,492 · Granted Apr 9, 2013

Multiband antenna including antenna elements connected by a choking circuit

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Quick Facts
Patent No.
US 8,416,138
App. No.
12/345,492
Granted
Apr 9, 2013
Kind
B2
Abstract

Multiband antennas are disclosed that incorporate a high frequency antenna element connected to a low frequency antenna element by a choking circuit. The choking circuit couples the high frequency antenna element to the low frequency antenna at a low frequency band and decouples the high frequency antenna element at a high frequency band. The connection created by the choking circuit can be a direct connection or can be an indirect connection via coupling elements that are capactively coupled to the high frequency antenna element and/or the low frequency element to increase the bandwidth of the multiband antenna. One embodiment includes a high frequency antenna element including a feed, and a low frequency antenna element connected to the high frequency antenna element via a choking circuit.

Claims (58)

1. A multiband antenna, comprising:

a printed circuit board having a first edge and a second edge, where the first edge and the second edge are parallel to each other and on opposite sides of the printed circuit board;

a high frequency antenna element configured to receive a feed, where the resonance of the multiband antenna in a high frequency mode is determined by the width and shape of the high frequency antenna element, the high frequency antenna element is formed along the first edge of the printed circuit board, the high frequency antenna element is of a substantially elongated shape having a long axis and a short axis;

a low frequency antenna element connected to the high frequency antenna element via a choking circuit, where the low frequency antenna element is formed along the second edge of the printed circuit board parallel to the high frequency antenna element, the low frequency antenna element is of a substantially elongated shape having a long axis and a short axis, where the long axis of the low frequency antenna element is parallel to the long axis of the high frequency antenna element;

wherein the choking circuit comprises a meander line circuit trace formed on the printed circuit board substantially perpendicular to the long axis of the high frequency antenna element and the long axis of the low frequency antenna element, where:

the choking circuit is configured to act as an inductive component;

the meander line circuit trace extends between the high frequency antenna element and the low frequency antenna element; and

the substantially perpendicular orientation relative to the long axis of the high frequency antenna element of the meander line circuit trace limits cross coupling between the high frequency antenna element and the meander line circuit trace;

wherein the choking circuit is configured to couple the low frequency antenna element to the high frequency antenna element in a low frequency band and decouple the high frequency antenna element from the low frequency antenna element in a high frequency band; and

wherein the low frequency antenna element is positioned to increase the width of the multiband antenna in a low frequency mode and the resonance of the multiband antenna in the low frequency mode is determined by the length and position of the low frequency antenna element relative to the high frequency antenna element.

2. The multiband antenna of claim 1 , wherein the choking circuit is a low pass filter with a cut off between the low frequency band and the high frequency band.

3. The multiband antenna of claim 1 , wherein the high frequency antenna element is directly fed by a microstrip transmission line.

4. The multiband antenna of claim 1 , wherein the choking circuit is a low pass filter with a cut off between the low frequency band and the high frequency band.

5. The multiband antenna of claim 1 , wherein the choking circuit further comprises a resistor mounted to the printed circuit board and connected in parallel with the meander line circuit trace.

6. The multiband antenna of claim 1 , wherein the choking circuit is directly connected to the high frequency antenna element.

7. The multiband antenna of claim 1 , wherein the choking circuit is directly connected to the low frequency antenna element.

8. The multiband antenna of claim 1 , further comprising at least one coupling element capacitively coupled to the high frequency antenna element, where the capacitive coupling of the coupling element increases the bandwidth of the multiband antenna in at least the high frequency band.

9. The multiband antenna of claim 1 , further comprising:

at least one coupling element capacitively coupled to the high frequency antenna element;

at least one coupling element capacitively coupled to the low frequency antenna element;

wherein the choking circuit is directly connected to one of the coupling elements capacitively coupled to the high frequency antenna element and one of the coupling elements capacitively coupled to the low frequency antenna element.

10. The multiband antenna of claim 1 , wherein the high frequency antenna element forms a ground plane independent floating antenna in the high frequency band.

11. The multiband antenna of claim 10 , wherein the high frequency antenna element, the choking circuit and the low frequency antenna element form a ground plane independent floating antenna in the low frequency band.

12. The multiband antenna of claim 1 , further comprising:

at least one coupling element capactively coupled to the high frequency antenna element;

wherein the high frequency antenna element and the at least one coupling element form a ground plane independent floating antenna in the high frequency band.

13. The multiband antenna of claim 12 , wherein the high frequency antenna element, the at least one coupling element, the choking circuit, and the low frequency antenna element form a ground plane independent floating antenna in the low frequency band.

14. The multiband antenna of claim 12 , further comprising:

at least one coupling element capacitively coupled to the low frequency antenna element;

wherein the high frequency antenna element, the at least one coupling element capacitively coupled to the high frequency antenna element, the choking circuit, the low frequency antenna element, and the at least one coupling element capactively coupled to the low frequency antenna element form a ground plane independent floating antenna in the low frequency band.

15. The multiband antenna of claim 14 , wherein the choking circuit indirectly couples the high frequency antenna element and the low frequency antenna element via one of the coupling elements capactively coupled to the high frequency antenna element and one of the coupling elements capactively coupled to the low frequency antenna element.

16. The multiband antenna of claim 1 , wherein:

the choking circuit comprises an inductive component; and

the choking circuit is located on the printed circuit board to avoid cross coupling between an inductive component and the choking circuit.

17. A multiband antenna, comprising:

a printed circuit board;

a high frequency antenna element formed on the printed circuit board and configured to receive a feed, where the high frequency antenna element is of a substantially elongated shape having a long axis and a short axis;

a low frequency antenna element formed on the printed circuit board, connected to the high frequency antenna element via a choking circuit and aligned in a straight line with the high frequency antenna element, where the low frequency antenna element is of a substantially elongated shape having a long axis and the long axis of the low frequency antenna element is parallel to the long axis of the high frequency antenna element;

wherein the choking circuit comprises a meander line circuit trace formed on a printed circuit board configured to act as an inductive component;

wherein the choking circuit is configured to couple the low frequency antenna element to the high frequency antenna element in a low frequency band and decouple the high frequency antenna element from the low frequency antenna element in a high frequency band; and

wherein the meander line circuit trace is positioned away from and parallel to the straight line formed by the long axis of the high frequency antenna element and the long axis of the low frequency antenna element to provide negligible cross coupling between the high frequency antenna element and the meander line circuit trace.

18. The multiband antenna of claim 17 , wherein the choking circuit is a low pass filter with a cut off between the low frequency band and the high frequency band.

19. The multiband antenna of claim 17 , wherein the choking circuit further comprises a resistor mounted to a printed circuit board and connected in parallel with the meander line circuit trace.

20. The multiband antenna of claim 19 , wherein the choking circuit is directly connected to at least one of the high frequency antenna element and the low frequency antenna element.

21. The multiband antenna of claim 19 , further comprising at least one coupling element capacitively coupled to the high frequency antenna element, where the capacitive coupling of the coupling element increases the bandwidth of the multiband antenna in at least the high frequency band.

22. The multiband antenna of claim 19 , further comprising:

at least one coupling element capacitively coupled to the high frequency antenna element; and

at least one coupling element capacitively coupled to the low frequency antenna element.

23. The multiband antenna of claim 22 , wherein the choking circuit indirectly couples the high frequency antenna element and the low frequency antenna element via one of the coupling elements capacitively coupled to the high frequency antenna element and one of the coupling elements capacitively coupled to the low frequency antenna element.

24. A multiband antenna, comprising:

a high frequency antenna element configured to receive a feed, where the resonance of the multiband antenna in a high frequency mode is determined by the width and shape of the high frequency antenna element;

a low frequency antenna element connected to the high frequency antenna element via a choking circuit;

wherein the choking circuit comprises a meander line circuit trace formed on a printed circuit board configured to act as an inductive component;

wherein the choking circuit is configured to couple the low frequency antenna element to the high frequency antenna element in a low frequency band and decouple the high frequency antenna element from the low frequency antenna element in a high frequency band;

wherein the low frequency antenna element is positioned to increase the width of the multiband antenna in a low frequency mode and the resonance of the multiband antenna in the low frequency mode is determined by the length and position of the low frequency antenna element relative to the high frequency antenna element;

wherein the meander line circuit trace extends between the high frequency antenna element and the low frequency antenna element;

wherein the direction in which the meander line circuit trace extends is configured to avoid cross coupling between the high frequency antenna element and the meander line circuit trace; and

wherein the capacitively coupled high frequency antenna element and the low frequency antenna element are configured to resonate in a third frequency band separate from the low frequency band and the high frequency band.

Assignments (10)
RELEASE OF SECURITY INTEREST Recorded Aug 14, 2024
From: THE BANK OF NEW YORK MELLON TRUST COMPANY, N.A.
To: CALAMP CORP.; CALAMP WIRELESS NETWORKS CORPORATION; SYNOVIA SOLUTIONS LLC
Reel/Frame 068604/0284 →
RELEASE OF SECURITY INTEREST Recorded Aug 14, 2024
From: THE BANK OF NEW YORK MELLON TRUST COMPANY, N.A.
To: CALAMP CORP.; CALAMP WIRELESS NETWORKS CORPORATION; SYNOVIA SOLUTIONS LLC
Reel/Frame 068604/0595 →
RELEASE OF SECURITY INTEREST Recorded Dec 18, 2023
From: PNC BANK, NATIONAL ASSOCIATION
To: CALAMP CORP
Reel/Frame 066059/0252 →
PATENT SECURITY AGREEMENT Recorded Dec 18, 2023
From: CALAMP CORP.; CALAMP WIRELESS NETWORKS CORPORATION; SYNOVIA SOLUTIONS LLC
To: LYNROCK LAKE MASTER FUND LP [LYNROCK LAKE PARTNERS LLC, ITS GENERAL PARTNER]
Reel/Frame 066061/0946 →
PATENT SECURITY AGREEMENT Recorded Dec 18, 2023
From: CALAMP CORP.; CALAMP WIRELESS NETWORKS CORPORATION; SYNOVIA SOLUTIONS LLC
To: THE BANK OF NEW YORK MELLON TRUST COMPANY, N.A.
Reel/Frame 066062/0303 →
SECURITY INTEREST Recorded Jul 14, 2022
From: CALAMP CORP.; CALAMP WIRELESS NETWORKS CORPORATION; SYNOVIA SOLUTIONS LLC
To: PNC BANK, NATIONAL ASSOCIATION
Reel/Frame 060651/0651 →
SECURITY INTEREST Recorded Apr 4, 2018
From: CALAMP CORP.
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 045853/0023 →
RELEASE OF SECURITY INTEREST Recorded Dec 1, 2017
From: PACIFIC WESTERN BANK
To: CALAMP CORP.
Reel/Frame 044275/0347 →
SECURITY INTEREST Recorded Jun 2, 2016
From: CALAMP CORP.
To: PACIFIC WESTERN BANK
Reel/Frame 038789/0183 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2009
From: QUDDUS, MOMIN
To: CALAMP CORP.
Reel/Frame 022061/0399 →