The present invention relates to the field of antenna technologies, and in particular, to an antenna and a mobile terminal.
As is well known, frequency bands commonly used in commerce at present include eight frequency bands in total, such as a Global System for Mobile Communication (GSM), GSM850 (824 MHz to 894 MHz), GSM900 (880 MHz to 960 MHz), a Global Positioning System (GPS) (1575 MHz), digital video broadcasting (DVB)-H (1670 MHz to 1675 MHz), a data communications subsystem (DCS) (1710 MHz to 1880 MHz), a personal communications service (PCS), a Universal Mobile Telecommunications System (UMTS) or a 3rd Generation Mobile Communications technology (3G) (1920 MHz to 2175 MHz), and Bluetooth or a Wireless Local Area Network (WLAN) 802.11b/g (2400 MHz to 2484 MHz). In addition, a Long Term Evolution (LTE) project is a currently popular operating frequency band, and operating frequency bands thereof include 698 MHz to 960 MHz and 1710 MHz to 2700 MHz.
An antenna is an apparatus used by a radio device to receive and transmit an electromagnetic wave signal. As the fourth generation mobile communications comes, there is an increasingly high requirement for a bandwidth of a terminal product. Because the antenna implements both signal propagation and energy radiation based on resonance of a frequency, an electrical length of the antenna is one fourth of a wavelength corresponding to a resonance frequency of the antenna, and terminal products at present become lighter and slimmer, how to design an antenna in smaller space is a problem to be urgently resolved.
Embodiments of the present invention provide an antenna and a mobile terminal, so that the antenna can be designed in relatively small space.
The following technical solutions are used in the embodiments of the present invention:
According to a first aspect, an embodiment of the present invention provides an antenna, including a first radiator and a first capacitor structure, where a first end of the first radiator is electrically connected to a signal feed end of a printed circuit board by means of the first capacitor structure, a second end of the first radiator is electrically connected to a ground end of the printed circuit board, the first radiator, the first capacitor structure, the signal feed end, and the ground end form a first antenna, configured to generate a first resonance frequency, and an electrical length of the first radiator is less than or equal to one eighth of a wavelength corresponding to the first resonance frequency.
With reference to the first aspect, in a first possible implementation manner, the antenna further includes a second capacitor structure, a first end of the second capacitor structure is electrically connected to the first radiator between the first end and the second end, and a second end of the second capacitor structure is electrically connected to the ground end of the printed circuit board.
With reference to the first aspect or the first possibility of the first aspect, in a second possible implementation manner, the first capacitor structure includes an E-shape component and a U-shape component, where the E-shape component includes a first branch, a second branch, a third branch, and a fourth branch, where the first branch and the third branch are connected to two ends of the fourth branch, the second branch is located between the first branch and the third branch, the second branch is connected to the fourth branch, a gap is formed between the first branch and the second branch, and a gap is formed between the second branch and the third branch. The U-shape component includes two branches, the two branches of the U-shape component are separately located in the two gaps of the E-shape component, and the E-shape component and the U-shape component are not in contact with each other.
With reference to the second possibility of the first aspect, in a third possible implementation manner, the first end of the first radiator is electrically connected to the first branch or the third branch of the first capacitor structure.
With reference to the first possibility of the first aspect, in a fourth possible implementation manner, the second capacitor structure includes an E-shape component and a U-shape component, where the E-shape component includes a first branch, a second branch, a third branch, and a fourth branch, where the first branch and the third branch are connected to two ends of the fourth branch, the second branch is located between the first branch and the third branch, the second branch is connected to the fourth branch, a gap is formed between the first branch and the second branch, and a gap is formed between the second branch and the third branch. The U-shape component includes two branches, the two branches of the U-shape component are separately located in the two gaps of the E-shape component, and the E-shape component and the U-shape component are not in contact with each other.
With reference to the first aspect or the first possibility of the first aspect, in a fifth possible implementation manner, the antenna further includes at least one second radiator, and one end of the second radiator is electrically connected to the first end of the first radiator.
With reference to the fifth possibility of the first aspect, in a sixth possible implementation manner, the antenna further includes an L-shape second radiator, and one end of the L-shape second radiator is electrically connected to the first end of the first radiator.
With reference to the fifth possibility of the first aspect, in a seventh possible implementation manner, the antenna further includes a [-shape second radiator, and one end of the [-shape second radiator is electrically connected to the first end of the first radiator.
With reference to the fifth possibility of the first aspect, in an eighth possible implementation manner, the antenna further includes two [-shape second radiators, and openings of the two [-shape second radiators are opposite to each other, where first ends of the second radiators are electrically connected to the first end of the first radiator, and second ends of the second radiators are opposite to each other and are not in contact with each other to form a coupling structure.
With reference to the second possibility of the first aspect, in a ninth possible implementation manner, the antenna further includes at least one second radiator, and one end of the second radiator is electrically connected to either of the first branch and the third branch.
With reference to the ninth possibility of the first aspect, in a tenth possible implementation manner, the antenna further includes an L-shape second radiator, and one end of the L-shape second radiator is electrically connected to the first branch.
With reference to the ninth possibility of the first aspect, in an eleventh possible implementation manner, the antenna further includes a [-shape second radiator, and a first end of the [-shape second radiator is electrically connected to either of the first branch and the third branch.
With reference to the ninth possibility of the first aspect, in a twelfth possible implementation manner, the antenna further includes two [-shape second radiators, and openings of the two [-shape second radiators are opposite to each other, where one of the second radiators is electrically connected to the first branch, the other of the second radiators is electrically connected to the third branch, and second ends of the second radiators are opposite to each other and are not in contact with each other to form a coupling structure.
With reference to any one of the first aspect to the first twelve possibilities of the first aspect, in a thirteenth possible implementation manner, the first radiator is located on an antenna support, and a distance between a plane on which the first radiator is located and a plane on which the printed circuit board is located is between 2 millimeters and 6 millimeters.
According to a second aspect, an embodiment of the present invention provides a mobile terminal, including a radio frequency processing unit, a baseband processing unit, and an antenna, where the antenna includes a first radiator and a first capacitor structure, where a first end of the first radiator is electrically connected to a signal feed end of a printed circuit board by means of the first capacitor structure, a second end of the first radiator is electrically connected to a ground end of the printed circuit board, the first radiator, the first capacitor structure, the signal feed end, and the ground end form a first antenna, configured to generate a first resonance frequency, and an electrical length of the first radiator is less than or equal to one eighth of a wavelength corresponding to the first resonance frequency. The radio frequency processing unit is electrically connected to the signal feed end of the printed circuit board by means of a matching circuit. The antenna is configured to transmit a received radio signal to the radio frequency processing unit or convert a transmitted signal of the radio frequency processing unit into an electromagnetic wave and send the electromagnetic wave; the radio frequency processing unit is configured to perform frequency selection, amplification, and down-conversion on the radio signal received by the antenna, convert the radio signal to an intermediate frequency signal or a baseband signal, and send the intermediate frequency signal or baseband signal to the baseband processing unit, or configured to perform up-conversion and amplification on a baseband signal or an intermediate frequency signal sent by the baseband processing unit and send the baseband signal or intermediate frequency by using the antenna; and the baseband processing unit performs processing on the received intermediate frequency or baseband signal.
With reference to the second aspect, in a first possible implementation manner, the antenna further includes a second capacitor structure, a first end of the second capacitor structure is electrically connected to the first radiator between the first end and the second end, and a second end of the second capacitor structure is electrically connected to the ground end of the printed circuit board.
With reference to the second aspect or the first possibility of the first aspect, in a second possible implementation manner, the first capacitor structure includes an E-shape component and a U-shape component, where the E-shape component includes a first branch, a second branch, a third branch, and a fourth branch, where the first branch and the third branch are connected to two ends of the fourth branch, the second branch is located between the first branch and the third branch, the second branch is connected to the fourth branch, a gap is formed between the first branch and the second branch, and a gap is formed between the second branch and the third branch. The U-shape component includes two branches, the two branches of the U-shape component are separately located in the two gaps of the E-shape component, and the E-shape component and the U-shape component are not in contact with each other.
With reference to the second possibility of the second aspect, in a third possible implementation manner, the first end of the first radiator is electrically connected to the first branch or the third branch of the first capacitor structure.
With reference to the second aspect or the first possibility of the second aspect, in a fourth possible implementation manner, the antenna further includes at least one second radiator, and one end of the second radiator is electrically connected to the first end of the first radiator.
With reference to the second possibility of the second aspect, in a fifth possible implementation manner, the antenna further includes at least one second radiator, and one end of the second radiator is electrically connected to either of the first branch and the third branch.
With reference to any one of the second aspect to the fifth possibility of the second aspect, in a sixth possible implementation manner, the first radiator is located on an antenna support, and a distance between a plane on which the first radiator is located and a plane on which the printed circuit board is located is between 2 millimeters and 6 millimeters.
In the antenna and the mobile terminal provided in the embodiments of the present invention, the antenna includes a first radiator and a first capacitor structure; a first end of the first radiator is electrically connected to a signal feed end of a printed circuit board by means of the first capacitor structure, a second end of the first radiator is electrically connected to a ground end of the printed circuit board, the first radiator, the first capacitor structure, the signal feed end, and the ground end form a first antenna, configured to generate a first resonance frequency, and an electrical length of the first radiator is less than or equal to one eighth of a wavelength corresponding to the first resonance frequency, so that the antenna can be designed in relatively small space.
To describe the technical solutions in the embodiments of the present invention more clearly, the following briefly describes the accompanying drawings required for describing the embodiments or the prior art. Apparently, the accompanying drawings in the following description show merely some embodiments of the present invention, and a person of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
The following clearly and completely describes the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are merely some but not all of the embodiments of the present invention. All other embodiments obtained by a person of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
This embodiment of the present invention provides an antenna, including a first radiator 2 and a first capacitor structure 3, where a first end 21 of the first radiator 2 is electrically connected to a signal feed end 11 of a printed circuit board 1 by means of the first capacitor structure 3, a second end 22 of the first radiator 2 is electrically connected to a ground end 12 of the printed circuit board 1, the first radiator 2, the first capacitor structure 3, the signal feed end 11, and the ground end 12 form a first antenna P1, configured to generate a first resonance frequency f1, and an electrical length of the first radiator 2 is less than or equal to one eighth of a wavelength corresponding to the first resonance frequency f1.
The antenna provided in this embodiment of the present invention includes a first radiator and a first capacitor structure; a first end of the first radiator is electrically connected to a signal feed end of a printed circuit board by means of the first capacitor structure, a second end of the first radiator is electrically connected to a ground end of the printed circuit board, the first radiator, the first capacitor structure, the signal feed end, and the ground end form a first antenna, configured to generate a first resonance frequency, and an electrical length of the first radiator is less than or equal to one eighth of a wavelength corresponding to the first resonance frequency, so that the antenna can be designed in relatively small space.
In actual design, different design positions of the first capacitor structure 3 may provide different schematic diagrams of the antenna. As shown in
To help understand how the antennas generate the first resonance frequency f1,
Specifically, the first radiator 2, the first capacitor structure 3, the signal feed end 11, and the ground end 12 form the first antenna P1, and a circuit diagram of an equivalent of the first antenna P1, as shown in
Further, as shown in
As shown in
To help understand the antenna,
Specifically, as regards the antennas shown in
Optionally, the first capacitor structure 3 may be an ordinary capacitor, and the first capacitor structure 3 may include at least one capacitor connected in series or in parallel in multiple forms (which may be referred to as a capacitor build-up assembly). The first capacitor structure 3 may also include an E-shape component and a U-shape component, where the E-shape component includes a first branch, a second branch, a third branch, and a fourth branch, where the first branch and the third branch are connected to two ends of the fourth branch, the second branch is located between the first branch and the third branch, the second branch is connected to the fourth branch, a gap is formed between the first branch and the second branch, and a gap is formed between the second branch and the third branch. The U-shape component includes two branches, the two branches of the U-shape component are separately located in the two gaps of the E-shape component, and the E-shape component and the U-shape component are not in contact with each other.
As shown in
Optionally, when the first capacitor structure 3 includes the E-shape component and the U-shape component, the first end 21 of the first radiator 2 is electrically connected to the first branch 31 or the third branch 33 of the first capacitor structure 3. As shown in
Optionally, the second capacitor structure 4 may be an ordinary capacitor, and the second capacitor structure 4 may include at least one capacitor connected in series or in parallel in multiple forms (which may be referred to as a capacitor build-up assembly). The second capacitor structure 4 may also include an E-shape component and a U-shape component, where the E-shape component includes a first branch, a second branch, a third branch, and a fourth branch, where the first branch and the third branch are connected to two ends of the fourth branch, the second branch is located between the first branch and the third branch, the second branch is connected to the fourth branch, a gap is formed between the first branch and the second branch, and a gap is formed between the second branch and the third branch. The U-shape component includes two branches, the two branches of the U-shape component are separately located in the two gaps of the E-shape component, and the E-shape component and the U-shape component are not in contact with each other.
As shown in
It should be noted that an “M”-shaped component also belongs to the E-shape component, that is, any structure including the first branch, second branch, third branch, and fourth branch, where the first branch and the third branch are connected to two ends of the fourth branch, the second branch is located between the first branch and the third branch, the second branch is connected to the fourth branch, a gap is formed between the first branch and the second branch, and a gap is formed between the second branch and the third branch, belongs to a scope claimed by this embodiment of the present invention; a “V”-shaped component also belongs to the U-shape component, that is, any component having two branches, where the two branches are separately located in the two gaps of the E-shape component, belongs to a scope claimed by this embodiment of the present invention, and the E-shape component and the U-shape component are not in contact with each other; for the convenience of drawing and description, in accompanying drawings of the first capacitor structure 3 and the second capacitor structure 4, only an “E” shape and a “U” shape are used for illustration.
Because the first capacitor structure 3 not only may be an ordinary capacitor build-up assembly, but also may include the E-shape component and the U-shape component, when the antenna further includes another radiator, different first capacitor structures lead to different connections of the another radiator.
When the first capacitor structure 3 is an ordinary capacitor build-up assembly, as shown in
Optionally, as shown in
Optionally, as shown in
Optionally, the antenna further includes two [-shape second radiators, and openings of the two [-shape second radiators are opposite to each other, where first ends of the second radiators are electrically connected to the first end of the first radiator, and second ends of the second radiators are opposite to each other and are not in contact with each other to form a coupling structure.
As shown in
When the first capacitor structure 3 includes the E-shape component and the U-shape component, the antenna may include one or more of the following.
Optionally, the antenna further includes at least one second radiator 5, and one end of the second radiator 5 is electrically connected to either of the first branch 31 and the third branch 33.
Optionally, as shown in
The L-shape second radiator 51 is configured to generate a third resonance frequency f3, where the third resonance frequency f3 covers LTE B7.
Optionally, the antenna further includes a [-shape second radiator 52, and one end of the [-shape second radiator 52 is electrically connected to either of the first branch 31 and the third branch 33. As shown in
When one end of the [-shape second radiator 52 is electrically connected to the first branch 31, the [-shape second radiator 52 is configured to generate a fourth resonance frequency f4, where the fourth resonance frequency f4 covers WCDMA 2100; when one end of the [-shape second radiator 52 is electrically connected to the first branch 31, the [-shape second radiator 52 is configured to generate a fifth resonance frequency f5, where the fifth resonance frequency f5 covers GSM850 (824 MHz to 894 MHz) and GSM900 (880 MHz to 960 MHz).
Optionally, the antenna further includes two [-shape second radiators, and openings of the two [-shape second radiators are opposite to each other, where one of the second radiators is electrically connected to the first branch, the other of the second radiators is electrically connected to the third branch, and second ends of the second radiators are opposite to each other and are not in contact with each other to form a coupling structure.
As shown in
In conclusion, the first resonance frequency f1 and the fifth resonance frequency f5 may cover low frequency bands of GSM/WCDMA/UMTS/LTE, the second resonance frequency f2 may cover LTE B21, and the third resonance frequency f3, the fourth resonance frequency f4, and the sixth resonance frequency f6 may cover high frequency bands of DCS/PCS/WCDMA/UMTS/LTE.
In the antenna provided by this embodiment, the first radiator 2 is located on an antenna support, and a distance between a plane on which the first radiator 2 is located and a plane on which the printed circuit board 1 is located is between 2 millimeters and 6 millimeters. In this way, a certain headroom area is reserved for designing the antenna, so as to improve performance of the antenna while implementing designing of a multi-resonance and bandwidth antenna in relatively small space.
Optionally, at least one second radiator 5 may also be located on the antenna support. The first capacitor structure 3 and/or the second capacitor structure 4 may also be located on the antenna support.
It should be noted that, when the antenna includes multiple radiators, different radiators in the antenna generate corresponding resonance frequencies, and generally, each radiator mainly transmits and receives the corresponding generated resonance frequency.
In this embodiment of the present invention, a simulation antenna model is established for the antenna in Embodiment 1 to perform simulation and practical testing.
As shown in
The first capacitor structure 3 includes an E-shape component and a U-shape component; the second capacitor structure 4 is an ordinary capacitor build-up assembly; a first end 21 of the first radiator 2 is connected to a third branch 33 of the first capacitor structure 3, one end of the second radiator 51 is connected to a first branch 31 of the first capacitor structure 3, a first end 53a of the second radiator 53 is connected to the first branch 31 of the first capacitor structure 3, a first end 54a of the second radiator 54 is connected to the third branch 33 of the first capacitor structure 3, and a second end 53b of the second radiator 53 and a second end 54b of the second radiator 54 are opposite to each other and are not in contact with each other to form a coupling structure.
To help understand the antenna,
As shown in
Because a return loss and a standing wave ratio can be converted into each other and represent a same meaning,
In conclusion, the antenna designed in this embodiment of the present invention can generate a low-frequency resonance and a high-frequency resonance, where a low frequency can cover 680 MHz to 960 MHz, and a high frequency can cover 1440 MHz to 2800 MHz; a resonance frequency may be controlled, by means of adjustment on a distributed inductor and a capacitor in series, to fall within special frequency bands: LTE B7 (2500 MHz to 2690 MHz) and LTE B21 (1447.9 MHz to 1510.9 MHz), so as to cover a frequency band required by a current 2G/3G/4G communication system.
In addition, because between the first end 21 and second end 22 of the first radiator 2, the ground end 12 of the printed circuit board 1 is electrically connected by means of the second capacitor structure 4, a position, between the first end 21 and second end 22 of the first radiator 2, of the second capacitor structure 4 may be adjusted, so that the antenna generates different resonance frequencies.
The antenna provided in this embodiment of the present invention includes a first radiator, a first capacitor structure, a second capacitor structure, and three second radiators; a first end of the first radiator is electrically connected to a signal feed end of a printed circuit board by means of the first capacitor structure, a second end of the first radiator is electrically connected to a ground end of the printed circuit board, the first radiator, the first capacitor structure, the signal feed end, and the ground end form a first antenna, configured to generate a first resonance frequency, and an electrical length of the first radiator is less than or equal to one eighth of a wavelength corresponding to the first resonance frequency, so that the volume of the antenna can be reduced. In addition, other resonance frequencies are generated by using the second radiator and the second capacitor structure, so that the antenna not only has multiple resonance bandwidth but also has a relatively small size, and a multi-resonance wideband antenna can be designed in relatively small space.
This embodiment of the present invention provides a mobile terminal. As shown in
The matching circuit is configured to adjust impedance of the antenna to match the impedance of the antenna with impedance of the radio frequency processing unit, so as to generate a resonance frequency satisfying a requirement. The first resonance frequency f1 may cover low frequency bands such as LTE B13, LTE B17, and LTE B20.
It should be noted that the first radiator 2 is located on an antenna support, and a distance between a plane on which the first radiator 2 is located and a plane on which the printed circuit board 1 is located is between 2 millimeters and 6 millimeters. In this way, a certain headroom area is designed for the antenna, so as to improve performance of the antenna while implementing designing of the antenna in relatively small space.
Certainly, the antenna in this embodiment may also include either antenna structure described in Embodiment 1 and Embodiment 2. For details, reference may be made to the antennas described in Embodiment 1 and Embodiment 2, and no further details are described herein again. The mobile terminal may be a communication device that is used during movement, may be a mobile phone, or may also be a tablet computer, a data card, or the like, and certainly, is not limited thereto.
Finally, it should be noted that the foregoing embodiments are merely provided for describing the technical solutions of the present invention, but not intended to limit the present invention. It should be understood by persons of ordinary skill in the art that although the present invention has been described in detail with reference to the foregoing embodiments, modifications can be made to the technical solutions described in the foregoing embodiments, or equivalent replacements can be made to some technical features in the technical solutions, as long as such modifications or replacements do not cause the essence of corresponding technical solutions to depart from the spirit and scope of the technical solutions according to the embodiments the present invention.
Number | Date | Country | Kind |
---|---|---|---|
201410049276.9 | Feb 2014 | CN | national |
This application is a continuation of U.S. patent application Ser. No. 15/118,323, filed on Aug. 11, 2016, now U.S. Pat. No. 10,069,193. The U.S. patent application Ser. No. 15/118,323 is a national stage of International Application No. PCT/CN2015/072407, filed on Feb. 6, 2015, which claims priority to Chinese Patent Application No. 201410049276.9, filed on Feb. 12, 2014. All of the aforementioned patent applications are hereby incorporated by reference in their entireties.
Number | Date | Country | |
---|---|---|---|
Parent | 15118323 | Aug 2016 | US |
Child | 16118926 | US |