This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2010-172209, filed Jul. 30, 2010; the entire contents of which are incorporated herein by reference.
Embodiments described herein relate generally to an antenna device applied to, for example, a personal computer with a wireless communication function.
In recent years, an easy-to-carry, battery-powered, notebook-size personal computer has become widely used. Public wireless local area network (LAN) services known as hot spot services are beginning to be offered in various regions. Against this background, many personal computers of this type include a wireless communication function of executing wireless communication with a wireless LAN access point (AP). In addition, nowadays, it is becoming common practice for a personal computer to be equipped with a wireless communication function of executing wireless communication with an external device according to a third-generation (3G) mobile communication method.
As the number of types of wireless communication methods increases, the wireless communication functions of personal computers of this type are required to support a plurality of wireless communication methods. To meet the requirement, various mechanisms for covering a plurality of resonant frequency bands with a single antenna (for multiple resonance) have been proposed.
For example, an antenna device that covers three resonant frequency bands is well known. The antenna device includes a first antenna element connected to a feeding point and a second antenna element connected to the first antenna element at a point located near the feeding point. In the antenna device with such a configuration, (1) antenna current flows mostly over the first antenna element at a first resonant frequency, (2) antenna current flows mostly over the second antenna element at a second resonant frequency, and (3) antenna current flows mostly over the first antenna element at a third resonant frequency. The third resonant frequency is a triple harmonic of the first resonant frequency.
Therefore, when the length of the first antenna element is changed, not only the first resonant frequency but also the third resonant frequency changes. That is, an antenna device with the aforementioned configuration has the problem of being incapable of adjusting the first and third resonant frequencies independently.
A general architecture that implements the various features of the embodiments will now be described with reference to the drawings. The drawings and the associated descriptions are provided to illustrate the embodiments and not to limit the scope of the invention.
Various embodiments will be described hereinafter with reference to the accompanying drawings.
In general, according to one embodiment, an antenna device includes a linear first antenna element, a linear second antenna element and a linear third antenna element. One end of the first antenna element is connected to a feeding point. One end of the second antenna element is connected to the feeding point. A length of the second antenna element is shorter than a length of the first antenna element. One end of the third antenna element is connected onto the first antenna element. A length of the third antenna element is shorter than the length of the first antenna element.
The display unit 12 is arranged on the computer main body 11 so as to turn freely via a hinge unit 20. The hinge unit 20 is a coupling unit that couples the display unit 12 with the computer main body 11. That is, the display unit 12 is supported by the hinge unit 20 arranged at the back-end part of the computer main body 11. The display unit 12 is arranged on the computer body with the hinge unit 20 so as to turn freely between an open position at which the top face of the computer main body 11 is exposed and a closed position at which the top face of the computer body is covered with the display unit 12.
The antenna device 1 of the embodiment is arranged in the display unit 12. The antenna device 1 covers a first to a third resonance frequency band. A signal line 2 directed from a wireless communication module 112 arranged in the computer main body 11 into the display unit 12 via the hinge unit 2 is connected to the antenna device 1.
The computer main body 11 is a base unit that has a thin box chassis. On the top face of the computer main body 11, there are arranged a keyboard 13, a power button 14 for turning on and off the computer 10, an input operation panel 15, a touchpad 16, speakers 18A, 18B, and others. On the input operation panel 15, various operation buttons are arranged. In the computer main body 11, there is arranged a system board (also referred to as a motherboard) on which various electronic parts are mounted. The wireless communication module 112 is arranged on the system board. The wireless communication module 112 is a module that executes wireless communication with an external device according to, for example, a third-generation (3G) mobile communication method.
The mounting position of the antenna device 1 is, for example, in the top end part of the display unit 12. Arranging the antenna device 1 in the top end part of the display unit 12 enables the wireless communication module 112 to execute wireless communication with an external device, with the antenna device 1 located in a relatively high position.
On the right side surface of the computer main body 11, there is arranged a Universal Serial Bus (USB) connector 19 for connecting a USB cable or a USB device complying with, for example, the USB 2.0 standard.
As shown in
The CPU 101 is a processor that controls the operation of each component of the computer 10. The CPU 101 executes an operating system (OS) and various application programs loaded from the HDD 109 into the main memory 103. The CPU 101 further executes a BIOS stored in the BIOS-ROM 107. The BIOS is a program for hardware control.
The north bridge 102 is a bridge device that connects a local bus of the CPU 101 and the south bridge 104. The north bridge 102 includes a memory controller that executes access control of the main memory 103. The north bridge 102 includes the function of communicating with the GPU 105 via a serial bus or the like conforming to, for example, the PCI EXPRESS standard.
The GPU 105 is a display controller that controls the LCD 17 used as a display monitor of the computer 10. A display signal generated by the GPU 105 is sent to the LCD 17.
The south bridge 104 controls the various peripheral devices 113 on a Peripheral Component Interconnect (PCI) bus. The south bridge 104 includes an Integrated Drive Electronics (IDE) controller for controlling the HDD 109 and ODD 110. In addition, the south bridge 104 includes the function of communicating with the LAN controller 108, USB controller 111, and the wireless communication module 112.
The sound controller 106, which is a sound source device, outputs audio data to be reproduced to the speakers 18A, 18B. The LAN controller 108 is a wired communication device that executes wire communication complying with, for example, the IEEE 802.3 standard. The USB controller 111 executes communication with an external device (which is connected via the USB connector 19) conforming to, for example, the USB 2.0 standard.
The wireless communication module 112 includes an antenna terminal for transmitting and receiving a radio-frequency (RF) signal. The signal line 2 is connected to the antenna terminal. The wireless communication module 112 is coupled with the antenna device 1 via the signal line 2.
The EC/KBC 114 is a single-chip microcomputer into which an embedded controller for power management and a keyboard controller for controlling the keyboard 13 and touchpad 16 have been integrated. The EC/KBC 114 includes the function of turning on or off the computer 10 according to the user operation of the power button 14.
Next, the configuration of the antenna device 1 of the embodiment mounted on the computer 10 which has the aforementioned system configuration will be explained.
In
As shown in
The length of each of the first element 201, second element 202, and third element 203 is set so as to satisfy the following requirements (1 to 3): (1) the length of the first element is about ¼ the wavelength of the first resonant frequency, (2) the length of the second element is about ¼ the wavelength of the second resonant frequency, and (3) the length from the tip of the first element to the tip of the third element via the branch point x is about ½ the wavelength of the third resonant frequency.
As described above, the antenna device 1 covers the first to third resonant frequency bands. In
The configuration of a general antenna device which covers a first to a third resonant frequency band (without a third element) is shown in
As shown in
Therefore, when the length of the first element 201 is changed, not only the first resonant frequency but also the third resonant frequency changes. That is, the general antenna device cannot adjust the first resonant frequency and third resonant frequency independently.
As shown in
In
As shown in “A” of
Therefore, with the configuration of the antenna device 1 of the embodiment (to which the third element 203 has been added), the first to third resonant frequencies can be adjusted independently by adjusting the length of each of the elements (201, 202, 203).
The length of the first element 201 is about ¼ the wavelength of the first resonant frequency, the length of the second element 202 is about ¼ the wavelength of the second resonant frequency, and the length from the tip of the first element 201 to the tip of the third element 203 via the branch point x is about ½ the wavelength of the third resonant frequency.
Next, a case where the second resonant frequency is made higher than the third resonant frequency will be explained with reference to
As shown in “A” of
As shown in “B” of
In the case of
As described above, with the antenna device 1 of the embodiment, the second resonant frequency and the third resonant frequency can be replaced with each other by adjusting the length of the second element 202 and that of the third element 203.
Therefore, with the antenna device 1 of the embodiment, the first to third resonant frequencies can be adjusted independently by adding the third element 203 to a halfway point (or branch point x) of the first element 201. That is, a small, easy-to-adjust antenna device 1 can be realized.
While in the explanation, the configuration of
For example, as shown in
In addition, as shown in
Furthermore, as shown in
Moreover, as shown in
Still furthermore, as shown in
The various modules of the systems described herein can be implemented as software applications, hardware and/or software modules, or components on one or more computers, such as servers. While the various modules are illustrated separately, they may share some or all of the same underlying logic or code.
While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions. Indeed, the novel embodiments described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the embodiments described herein may be made without departing from the spirit of the inventions. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the inventions.
Number | Date | Country | Kind |
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2010-172209 | Jul 2010 | JP | national |