IP Library Granted Patent US 12700671
Granted Patent B2
US 12700671 · App. 18/817,088 · Granted Aug 4, 2026

Antenna assembly, dual-frequency wideband antenna, and electronic device

Inventor: Zhengdong Yong (Dongguan, CN)
Assignee: GUANGDONG OPPO MOBILE TELECOMMUNICATIONS CORP., LTD.
H01Q5/25H01Q1/48H01Q5/50H01Q9/0414H01Q9/26H01Q9/42
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Quick Facts
Patent No.
US 12700671
App. No.
18/817,088
Granted
Aug 4, 2026
Kind
B2
Abstract

An antenna assembly, a dual-frequency wideband antenna, and an electronic device are provided. The antenna assembly includes an antenna radiator, a grounding point, and a feeding point. The grounding point is arranged on a middle portion of the antenna radiator. The feeding point is arranged on the antenna radiator and spaced from the grounding point. The feeding point is fed by a feeding source, such that the antenna radiator supports a first frequency band and a second frequency band. The first frequency band is different from the second frequency band.

Claims (46)

1 . An antenna assembly, comprising:

an antenna radiator;

a grounding point, arranged on a middle portion of the antenna radiator; and

a feeding point, arranged on the antenna radiator and spaced from the grounding point;

wherein the feeding point is fed by a feeding source, such that the antenna radiator supports a first frequency band and a second frequency band, wherein the first frequency band is different from the second frequency band;

wherein the antenna assembly further comprises an impedance matching circuit electrically connected between the feeding point and the feeding source, and the impedance matching circuit comprises an inductor L 1 , a capacitor C 1 , an inductor L 2 , and an inductor L 3 ;

the inductor L 1 and the capacitor C 1 are connected in series between the feeding point and the feeding source;

one end of the inductor L 2 is electrically connected to a connection point between the inductor L 1 and the capacitor C 1 , and the other end of the inductor L 2 is grounded;

one end of the inductor L 3 is electrically connected between the capacitor C 1 and the feeding source, and the other end of the inductor L 3 is grounded.

2 . The antenna assembly as claimed in claim 1 , wherein a monopole antenna mode and a dipole antenna mode are excited on the antenna radiator under excitation of the feeding source;

the monopole antenna mode is configured to support the first frequency band, and the dipole antenna mode is configured to support the second frequency band.

3 . The antenna assembly as claimed in claim 1 , further comprising:

an antenna bracket; wherein the antenna radiator is arranged on the antenna bracket.

4 . The antenna assembly as claimed in claim 3 , wherein the antenna radiator is arranged on the antenna bracket through laser-direct-structuring (LDS) or laser reconstructed print (LRP) technology.

5 . The antenna assembly as claimed in claim 3 , wherein the antenna radiator is a metal radiation patch and the metal radiation patch is in a shape of a line, a “U”, a zigzag, or an arc.

6 . The antenna assembly as claimed in claim 5 , wherein in response the metal radiation patch of the antenna radiator being in the shape of the line and the shape of the line being a rectangle, the middle portion is a center point of a long side of the rectangle.

7 . The antenna assembly as claimed in claim 5 , wherein in response the metal radiation patch of the antenna radiator being in the shape of the “U”, the shape of the “U” comprises a first portion, a second portion, and a third portion, the first portion and the third portion are connected to the second portion, the middle portion is a center point of a long side of the second portion, and the feeding point is located at the long side of the second portion and spaced from the grounding point.

8 . The antenna assembly as claimed in claim 7 , wherein the third portion has a length greater than or equal to that of the first portion.

9 . The antenna assembly as claimed in claim 8 , wherein in response to the third portion having a length greater than that of the first portion, the third portion defines the slot.

10 . The antenna assembly as claimed in claim 1 , wherein the antenna radiator is arranged on a printed circuit board (PCB) of an electronic device where the antenna assembly is located, and the antenna radiator is a metal radiation patch.

11 . The antenna assembly as claimed in claim 1 , wherein the feeding point is electrically connected to the feeding source through an elastic sheet, and the grounding point is grounded through another elastic sheet.

12 . A dual-frequency wideband antenna, comprising:

an antenna assembly, comprising:

an antenna radiator;

a grounding point, arranged on a middle portion of the antenna radiator; and

a feeding point, arranged on the antenna radiator and spaced from the grounding point;

wherein the feeding point is fed by a feeding source, such that the antenna radiator supports a first frequency band and a second frequency band, wherein the first frequency band is different from the second frequency band;

wherein the antenna assembly further comprises an impedance matching circuit electrically connected between the feeding point and the feeding source, and the impedance matching circuit comprises an inductor L 1 , a capacitor C 1 , an inductor L 2 , and an inductor L 3 ;

the inductor L 1 and the capacitor C 1 are connected in series between the feeding point and the feeding source;

one end of the inductor L 2 is electrically connected to a connection point between the inductor L 1 and the capacitor C 1 , and the other end of the inductor L 2 is grounded;

one end of the inductor L 3 is electrically connected between the capacitor C 1 and the feeding source, and the other end of the inductor L 3 is grounded.

13 . The dual-frequency wideband antenna as claimed in claim 12 , wherein a monopole antenna mode and a dipole antenna mode are excited on the antenna radiator under excitation of the feeding source;

the monopole antenna mode is configured to support the first frequency band, and the dipole antenna mode is configured to support the second frequency band.

14 . The dual-frequency wideband antenna as claimed in claim 13 , wherein a length of the antenna radiator is 8 mm, a width of the antenna radiator is 2 mm, a distance between the feeding point and the grounding point is 2 mm.

15 . An electronic device, comprising a dual-frequency wideband antenna; wherein the dual-frequency wideband antenna comprises:

an antenna assembly, comprising:

an antenna radiator;

a grounding point, arranged on a middle portion of the antenna radiator; and

a feeding point, arranged on the antenna radiator and spaced from the grounding point;

wherein the feeding point is fed by a feeding source, such that the antenna radiator supports a first frequency band and a second frequency band, wherein the first frequency band is different from the second frequency band;

wherein the antenna assembly further comprises an impedance matching circuit electrically connected between the feeding point and the feeding source, and the impedance matching circuit comprises an inductor L 1 , a capacitor C 1 , an inductor L 2 , and an inductor L 3 ;

the inductor L 1 and the capacitor C 1 are connected in series between the feeding point and the feeding source;

one end of the inductor L 2 is electrically connected to a connection point between the inductor L 1 and the capacitor C 1 , and the other end of the inductor L 2 is grounded;

one end of the inductor L 3 is electrically connected between the capacitor C 1 and the feeding source, and the other end of the inductor L 3 is grounded.

16 . The electronic device as claimed in claim 15 , wherein a monopole antenna mode and a dipole antenna mode are excited on the antenna radiator under excitation of the feeding source;

the monopole antenna mode is configured to support the first frequency band, and the dipole antenna mode is configured to support the second frequency band.