The invention relates to an electronic device, and particularly to an electronic device with an antenna.
Due to the increasing demands to the quality, reliability, and speed of transmission of wireless communication signal, some multiple-antenna systems have been developed, such as the technological developments of the pattern switchable or beam-steering antenna system or the multi-input multi-output (MIMO) antenna system. For example, the current MIMO antenna technology (IEEE 802.11n) at the frequency band (2400-2484 MHz, 84 MHz) of the wireless local area network (WLAN) system has been successfully employed in products such as notebook computers, hand-held communication devices, or wireless access points. In the conventional design of notebook computers, a MIMO antenna system is configured at an upper part of the display screen, and the display screen is formed of a non-metallic material, such that the two antennas are kept in a distance to meet the need of high isolation and avoid the mutual interference between the two antennas having the same resonate frequency.
However, there are recently some notebook computers having a case formed of a metallic and conductive material at the base and cover of the notebook computers, and the MIMO antenna of the notebook computers are usually disposed at a position at which the base and cover are pivoted based on the design needs. Under such disposition, since the base and the cover are conductive and are capable of transmit signals, signals of the two antennas having the same resonate frequency interfere with each other through the base and the cover. Therefore, even if the distance between the two antennas is increased, the need of high isolation cannot be met.
The invention provides an electronic device that allows an antenna unit of the electronic device to meet the need of high isolation.
The invention provides an electronic device, including a first shell, a second shell, a connecting unit, an antenna unit, and an isolating unit. A material of the first shell includes a conductive material. A material of the second shell includes a conductive material. The connecting unit includes two connecting portions that are connected to the first shell and the second shell. The antenna unit includes a first antenna and a second antenna. The first antenna and the second antenna respectively correspond to the two connecting portions and are disposed on the first shell or the second shell. The isolating unit is disposed between the first antenna and the second antenna and includes at least one isolating conductor. The isolating conductor is connected to the first shell and extends toward the second shell, such that the first shell and the second shell form a conducting circuit through the isolating conductor.
In an embodiment of the invention, the electronic device includes a base and a cover that are mutually pivoted, wherein one of the first shell and the second shell is an upper cover of the cover or a lower cover of the cover, and the other of the first shell and the second shell is an upper shell of the base or a lower shell of the base.
In an embodiment of the invention, two ends of the isolating conductors are respectively connected to the first shell and the second shell.
In an embodiment of the invention, one end of the isolating conductor is connected to the first shell, another end of the isolating conductor keeps a distance from the second shell, and the isolating conductor and the second shell are equivalent to a capacitor.
In an embodiment of the invention, the isolating conductor is L-shaped.
In an embodiment of the invention, the first antenna and the second antenna have the same resonate frequency.
In an embodiment of the invention, a number of the at least one isolating conductor is more than one, and the isolating conductors are disposed separately.
Based on the above, the isolating conductors of the invention is disposed between the first antenna and the second antenna, and the first shell and second shell of the electronic device form a conducting circuit through the isolating conductor. Thereby, even if the first shell and the second shell are conductive and are capable of transmitting signals, signals of the first antenna and the second antenna do not interfere with each other due to isolation of the conducting circuit. In this way, the antenna unit meets the need of high isolation.
To make the aforementioned and other features and advantages of the invention more comprehensible, several embodiments accompanied with figures are described in detail below.
The accompanying drawings are included to provide further understanding, and are incorporated in and constitute a part of this specification. The drawings illustrate exemplary embodiments and, together with the description, serve to explain the principles of the invention.
The antenna unit 130 includes a first antenna 132 and a second antenna 134. The first antenna 132 and the second antenna 134 respectively correspond to the connecting portion 152 and the connecting portion 154, and are disposed on the first shell 110. In other embodiments, the first antenna 132 and the second antenna 134 may be disposed on the second shell 120 as well. There invention is not limited thereto. The first antenna 132 and the second antenna 134 have the same resonate frequency. The isolating unit 140 is disposed between the first antenna 132 and the second antenna 134 and includes at least one isolating conductor 142 (shown in a plural number).
To make the drawings clearer, the isolating conductors 142 are illustrated as being exposed from the cover 100a and the base 100b and explicitly shown in
Referring to
In this embodiment, a number of the isolating conductors 142 is, for example, three. In addition, the isolating conductors 142 are disposed separately with an appropriate interval. The number and interval of the isolating conductors 142 may be adjusted based on the needs, such that the isolating conductors 142 render a preferable effect of signal isolation. In addition, in this embodiment, each of the isolating conductors 142 is L-shaped, as illustrated in
The antenna unit 230 includes a first antenna 232 and a second antenna 234. The first antenna 232 and the second antenna 234 respectively correspond to the connecting portion 252 and the connecting portion 254, and are disposed on the first shell 210. In other embodiments, the first antenna 232 and the second antenna 234 may be disposed on the second shell 220 as well. There invention is not limited thereto. The antenna unit 230 includes a first antenna 232 and a second antenna 234. The first antenna 232 and the second antenna 234 have the same resonate frequency. The isolating unit 240 is disposed between the first antenna 232 and the second antenna 234 and includes at least one isolating conductor 242 (shown in a plural number).
To make the drawings clearer, the isolating conductors 242 are illustrated as being exposed from the cover 200a and the base 200b and explicitly shown in
Referring to
In this embodiment, a number of the isolating conductors 242 is, for example, three. In addition, the isolating conductors 242 are disposed separately with an appropriate interval. The number and interval of the isolating conductors 242 may be adjusted based on the needs, such that the isolating conductors 242 render a preferable effect of signal isolation. In addition, in this embodiment, each of the isolating conductors 242 is L-shaped, as illustrated in
The first antenna 310 and the second antenna 320, for example, have the same resonate frequency. In addition, the isolating conductor 330 has a specified length that meet the resonate frequency. When a signal of the first antenna 310 is transmitted toward the second antenna 320 through the case 340, the signal is transmitted to the isolating conductor 330 instead of being transmitted to the second antenna 320, thereby avoiding the interference of the signal of the first antenna 310 to the second antenna 320. Similarly, when a signal of the second antenna 320 is transmitted toward the first antenna 310 through the case 340, the signal is transmitted to the isolating conductor 330 instead of being transmitted to the first antenna 310, thereby avoiding the interference of the signal of the second antenna 320 to the first antenna 310. In this embodiment, the isolating conductor 340 may be in a L shape, a T shape, or other shapes that are appropriately bent, so as to have a sufficient length to meet the resonate frequency given a limited space for disposition.
Based on the above, the isolating conductor of the invention is disposed between the first antenna and the second antenna, and the case of the electronic device forms a conducting circuit through the isolating conductor. Thereby, even if the case of the electronic device is conductive and is capable of transmitting signals, signals of the first antenna and the second antenna do not interfere with each other due to isolation of the conducting circuit. In this way, the antenna unit meets the need of high isolation.
Although the invention has been described with reference to the above embodiments, it is apparent to one of the ordinary skill in the art that modifications to the described embodiments may be made without departing from the spirit of the invention. Accordingly, the scope of the invention will be defined by the attached claims not by the above detailed descriptions.
This application claims the priority benefits of U.S. provisional application Ser. No. 61/643,369, filed on May 7, 2012. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
Number | Date | Country | |
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61643369 | May 2012 | US |