IP Library Granted Patent US 11,557,827
Granted Patent B2
US 11,557,827 · App. 17/479,703 · Granted Jan 17, 2023

Antennaless wireless device

Inventors: Jaume Anguera Pros (Vinaros, ES); Aurora Andujar Linares (Barcelona, ES); Carles Puente Baliarda (Barcelona, ES); Josep Mumbru (Asnières-sur-Seine, FR)
Assignee: IGNION, S.L.
H01Q1/243H01Q1/48H01Q1/50H01Q5/00H01Q5/335H01Q5/35H01Q5/50H01Q9/0407H05K999/99
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 11,557,827
App. No.
17/479,703
Granted
Jan 17, 2023
Kind
B2
Abstract

A radiating system of a wireless device transmits and receives electromagnetic wave signals in a frequency region and comprises an external port, a radiating structure, and a radiofrequency system. The radiating structure includes: a ground plane layer with a connection point; a radiation booster with a connection point and being smaller than 1/30 of a free-space wavelength corresponding to a lowest frequency of the frequency region; and an internal port between the radiation booster connection point and the ground plane layer connection point. The radiofrequency system includes: a first port connected to the radiating structure's internal port; and a second port connected to the external port. An input impedance at radiating structure's disconnected internal port has a non-zero imaginary part across the frequency region. The radiofrequency system modifies impedance of the radiating structure to provide impedance matching to the radiating system within the frequency region at the external port.

Claims (31)

1. A radiation booster for a wireless communication device comprising:

a conductive part on at least a surface of the radiation booster;

wherein a radiation booster is configured to be combined with a ground plane layer forming a radiating structure, the radiating structure being interconnected with a radiofrequency system;

wherein the wireless communication device operates in at least a first frequency region;

wherein the ratio between a side of the ground plane layer and a free-space wavelength corresponding to a lowest frequency of the first frequency region is greater than 0.1; and

wherein the radiating structure has a first resonance frequency at a frequency higher than the first frequency region when the radiating structure is disconnected from the radiofrequency system.

2. The radiation booster of claim 1 , wherein the conductive part features a polygonal shape.

3. The radiation booster of claim 1 , wherein the conductive part features a polyhedral shape comprising a plurality of faces.

4. The radiation booster of claim 1 , wherein the conductive part is disposed in a surface-mount technology (SMT) component.

5. The radiation booster of claim 1 , wherein the ratio between a side of the ground plane layer and the free-space wavelength corresponding to the lowest frequency of the first frequency region is greater than 0.2.

6. The radiation booster of claim 1 , wherein the ratio between a side of the ground plane layer and the free-space wavelength corresponding to the lowest frequency of the first frequency region is greater than 0.3.

7. The radiation booster of claim 1 , wherein the ratio between a side of the ground plane layer and the free-space wavelength corresponding to the lowest frequency of the first frequency region is greater than 0.4.

8. The radiation booster of claim 1 , wherein the ratio between the first resonance frequency of the radiating structure and the highest frequency of the first frequency region is greater than 3.0.

9. The radiation booster of claim 1 , wherein the ratio between the first resonance frequency of the radiating structure and the highest frequency of the first frequency region is greater than 3.8.

10. The radiation booster of claim 1 , wherein the ratio between the first resonance frequency of the radiating structure and the highest frequency of the first frequency region is greater than 4.2.

11. A radiation booster for a wireless communication device comprising:

a radiation booster configured to be combined with a ground plane layer forming a radiating structure, the radiating structure being interconnected with a radiofrequency system;

a gap defined in the ground plane layer and delimited by one or more segments defining a curve;

wherein the radiation booster comprises a connection point located at a first point along the curve, and the ground plane layer comprises a connection point located at a second point along the curve, the second point being different from the first point;

wherein the wireless device operates in at least a first frequency region;

wherein the ratio between a side of the ground plane layer and a free-space wavelength corresponding to a lowest frequency of the first frequency region is greater than 0.1; and

wherein the radiating structure has a first resonance frequency at a frequency higher than the first frequency region.

12. The radiation booster of claim 11 , wherein the gap intersects the perimeter of the ground plane layer so that the curve delimiting the gap is open.

13. The radiation booster of claim 11 , wherein the gap does not intersect the perimeter of the ground plane layer so that the curve delimiting the gap is closed.

14. The radiation booster of claim 11 , wherein the connection point of the radiation booster and the connection point of the ground plane layer are located on two segments that are on opposite sides of the gap of the radiation booster.

15. The radiation booster of claim 11 , wherein the gap has a polygonal shape.

16. The radiation booster of claim 11 , wherein the ratio between a side of the ground plane layer and the free-space wavelength corresponding to the lowest frequency of the first frequency region is greater than 0.2.

17. The radiation booster of claim 11 , wherein the ratio between a side of the ground plane layer and the free-space wavelength corresponding to the lowest frequency of the first frequency region is greater than 0.3.

18. The radiation booster of claim 11 , wherein the ratio between the first resonance frequency of the radiating structure and the highest frequency of the first frequency region is greater than 3.0.

19. The radiation booster of claim 11 , wherein the ratio between the first resonance frequency of the radiating structure and the highest frequency of the first frequency region is greater than 3.8.

20. The radiation booster of claim 11 , wherein the ratio between the first resonance frequency of the radiating structure and the highest frequency of the first frequency region is greater than 4.2.

Assignments (3)
CHANGE OF NAME Recorded Jun 11, 2025
From: FRACTUS ANTENNAS, S.L.
To: IGNION, S.L.
Reel/Frame 071511/0988 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 11, 2025
From: FRACTUS, S.A.
To: FRACTUS ANTENNAS, S.L.
Reel/Frame 071381/0416 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 11, 2025
From: ANGUERA, JAUME; ANDUJAR, AURORA; PUENTE, CARLES; MUMBRU, JOSEP
To: FRACTUS, S.A.
Reel/Frame 071381/0412 →
Priority Claims (4)
EP 08161722 · Aug 4, 2008 · regional
EP 08172925 · Dec 24, 2008 · regional
ES ESP200930444 · Jul 13, 2009 · national
ES ESP200930499 · Jul 24, 2009 · national
Continuity (10)
Continuation 16827048 · Mar 23, 2020
Continuation 15973124 · May 7, 2018
Division 15670872 · Aug 7, 2017
Continuation 15004151 · Jan 22, 2016
Continuation 14738115 · Jun 12, 2015
Continuation 13476503 · May 21, 2012
Continuation 12669147
Provisional Application 61142523 · Jan 5, 2009
Provisional Application 61086838 · Aug 7, 2008
Related Publication 20220077581A1 · Mar 10, 2022