The subject matter herein generally relates to an antenna structure and a wireless communication device using the antenna structure.
Antennas are important elements of wireless communication devices, such as mobile phones, or personal digital assistants. Many wireless communication devices further employ metal housings for improving heat dissipation or other purposes.
Implementations of the present technology will now be described, by way of example only, with reference to the attached figures, wherein:
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale and the proportions of certain parts have been exaggerated to better illustrate details and features of the present disclosure.
Several definitions that apply throughout this disclosure will now be presented.
The term “substantially” is defined to be essentially conforming to the particular dimension, shape or other word that substantially modifies, such that the component need not be exact. For example, substantially cylindrical means that the object resembles a cylinder, but can have one or more deviations from a true cylinder. The term “comprising” when utilized, means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in the so-described combination, group, series and the like.
The antenna structure 50 includes a metal member 51, at least one electronic member 52, a first antenna 53, a second antenna 55, a third antenna 57, and a fourth antenna 59. The first antenna 53, the third antenna 57, and the fourth antenna 59 are all electronically connected to the metal member 10. The first antenna 53, the second antenna 55, the third antenna 57, and the fourth antenna 59 are all electronically connected to the circuit board 20.
The metal member 51 can be a part of a metal housing of the wireless communication device 100. In this embodiment, the metal member 51 includes a sidewall 511, a first end wall 513, and a second end wall 515. The first end wall 513 and the second end wall 515 are perpendicularly positioned at two opposite ends of the sidewall 511, respectively. A gap 516 is defined at a substantially middle position of the sidewall 511 to divide the sidewall 511 into a first combining portion 5111 and a second combining portion 5113. The first combining portion 5111 is coupled to the first end wall 513, to jointly form a first frame assembly 517. The second combining portion 5113 is coupled to the second end wall 515, to jointly form a second frame assembly 518. As illustrated, the first frame assembly 517 and the second frame assembly 518 cooperatively form a receiving space 519.
In this embodiment, the at least one electronic element 52 includes a microphone 521, a speaker 523, a front camera 525, and a back camera 527. The microphone 521, the speaker 523, the front camera 525, and the back camera 527 are all received in the receiving space 519 and are electronically connected to a corresponding function module mounted on the circuit board 20.
The first radiating section 533 is positioned in a plane substantially parallel to a plane in which the circuit board 20 is positioned. In this embodiment, the first radiating section 533 is coplanar with the second portion of the first feed portion 531. The first radiating section 533 has a first end perpendicularly connected to an end of the first feed portion 531 and a second end perpendicularly connected to the first end wall 513. In this embodiment, the first radiating section 533 is a substantially rectangular strip and is parallel with the first combining portion 5111.
The second radiating section 535, the third radiating section 537, and the fourth radiating section 539 are coplanar with the first radiating section 533. The second radiating section 535 is a substantially rectangular strip. The second radiating section 535 is perpendicularly connected to an end of the first feed portion 531 opposite to the first radiating section 533 and is collinear with the first radiating section 533. In this embodiment, an end of the second radiating section 535 away from the first radiating section 533 is also collinear with an edge of the gap 516. The third radiating section 537 is electronically connected to an end of the second radiating section 535 away from the first radiating section 533 and extends away from the sidewall 511 parallel with the first end wall 513. The fourth radiating section 539 is electronically connected to an end of the third radiating section 537 away from the second radiating section 535 and extends towards the first end wall 513 parallel with the sidewall 511.
The second antenna 55 includes a second feed portion 551, a ground portion 553, a transitional portion 555, a connecting portion 557, and a coupling portion 559. The second feed portion 551, the ground portion 553, and the transitional portion 555 cooperatively form a substantially U-shaped structure. The second feed portion 551, the ground portion 553, and the transitional portion 555 are positioned in a plane substantially perpendicular to the plane in which the circuit board 20 is positioned and are positioned between the speaker 523 and the front camera 525. The second feed portion 551 is parallel to and spaced from the ground portion 553. The second feed portion 551 is electronically connected to the second feed pin 23 of the circuit board 20 to feed current to the second antenna 50. The ground portion 553 is electronically connected to the ground pin 29 of the circuit board 20 to ground the second antenna 55. One end of the transitional portion 555 is substantially perpendicularly connected to an end of the second feed portion 551 away from the second feed pin 23. Another end of the transitional portion 555 is substantially perpendicularly connected to an end of the second ground portion 553 away from the ground pin 29.
The connecting portion 557 and the coupling portion 559 are positioned in a plane parallel to the plane in which the circuit board 20 is positioned. In this embodiment, the connecting portion 557 and the coupling portion 559 are coplanar with the first radiating section 533. The connecting portion 557 is a substantially L-shaped strip. The connecting portion 557 is electronically connected to a junction between the second feed portion 551 and the transitional portion 555, then extends towards the second combining portion 5113 parallel to the first end wall 513, and extends towards the second end wall 515 parallel to the sidewall 511. The coupling portion 559 is a substantially L-shaped strip. The coupling portion 559 is electronically connected to an end of the connecting portion 557 away from the junction between the second feed portion 551 and the transitional portion 555, then extends towards the second combining portion 5113 parallel to the first end wall 513, and extends towards the first end wall 513 parallel to the sidewall 511 until exceeds the fourth radiating section 539.
The third antenna 57 is a substantially rectangular strip and is positioned above the front camera 525. In this embodiment, the third antenna 57 is coplanar with the connecting portion 557 and the coupling portion 559. A first end of the third antenna 57 is perpendicularly connected to the third feed pin 25 of the circuit board 20 to feed current to the third antenna 57. A second end of the third antenna 57 is perpendicularly connected to the second combining portion 5113.
The fourth antenna 59 is positioned between the front camera 525 and the second end wall 515. The fourth antenna 59 includes a third feed portion 591, an extending portion 593, and a resonance portion 595. The third feed portion 591 is a substantially L-shaped sheet. The third feed portion 591 has a first portion which is coplanar with the circuit board 20 and is electronically connected to the fourth feed pin 27 of the circuit board 20 to feed current to the fourth antenna 59. The third feed portion 591 also has a second portion which is positioned in a plane perpendicular to the plane in which the circuit board 20 is positioned and is electronically connected to the extending portion 593. The extending portion 593 is a substantially L-shaped sheet and is coplanar with the third antenna 57. The extending portion 593 is perpendicularly connected to the second portion of the third feed portion 591, then extends towards the second combining portion 5113 parallel to the second end wall 515, and extends towards the second end wall 515 parallel to the second combining portion 5113 until which is electronically connected to the second end wall 515. The resonance portion 595 is a substantially rectangular strip and is positioned between the second end wall 515 and the front camera 525. The resonance portion 595 is parallel to the second combining portion 5113 and is electronically connected between the front camera 525 and the second end wall 515.
When current is input to the antenna structure 50 via the first feed pin 21, the second feed pin 23, the third feed pin 25, and the fourth feed pin 27, the first antenna 53, the second antenna 55, the third antenna 57, and the fourth antenna 59 receive the current. The current flows through the first antenna 53, the first combining portion 5111, a junction between the first antenna 53 and the first combining portion 5111, the group of electronic elements 52, and the gap 516 to respectively obtain a low-frequency mode and a first high-frequency mode. The current flows through the second antenna 55, the group of electronic elements 52, and the gap 516 to obtain a second high-frequency mode. The current flows through the third antenna 57, the second combining portion 5113, the fourth antenna 59, a junction between the third antenna 57 and the second combining portion 5113, the group of electronic elements 52, the resonance portion 595, and the gap 516 to obtain a third high-frequency mode. The current flows through the fourth antenna 59, the second combining portion 5113, a junction between the fourth antenna 59 and the second combining portion 5113, the group of electronic elements 52, the resonance portion 595, and the gap 516 to obtain a fourth high-frequency mode. In this embodiment, the low-frequency mode has a frequency band of about 880-960 MHz. The first high-frequency mode has a frequency band of about 1710-1880 MHz. The second high-frequency mode has a frequency band of about 2400-2480 MHz. The third high-frequency mode has a frequency band of about 1850-2690 MHz. The fourth high-frequency mode has a central frequency of about 1575 MHz.
The embodiments shown and described above are only examples. Therefore, many such details are neither shown nor described. Even though numerous characteristics and advantages of the present technology have been set forth in the foregoing description, together with details of the structure and function of the present disclosure, the disclosure is illustrative only, and changes may be made in the details, especially in matters of shape, size and arrangement of the parts within the principles of the present disclosure up to, and including the full extent established by the broad general meaning of the terms used in the claims. It will therefore be appreciated that the embodiments described above may be modified within the scope of the claims.
Number | Date | Country | Kind |
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201310749270.8 | Dec 2013 | CN | national |