1. Field of the Invention
The present invention relates to a directional antenna, and in particular to a directional antenna which is implemented in electronic devices.
2. Description of Related Art
Directional antennas are usually implemented in electronic devices or adapted in the electronic devices, and they can transmit or receive electromagnetic waves in a predetermined direction. After electrical signals of the electronic devices are converted into electromagnetic waves, the electromagnetic waves are transmitted through the directional antennas. In addition, the electromagnetic waves are received through the directional antennas, and then converted into electrical signals for electronic devices. Because the directional antennas transmit or receive electromagnetic waves much more in one direction than other directions, the directional antennas are suitable for signal transmission over a long distance. In this light, the directional antennas are usually used to transmit or receive electrical signals with satellites or long distance antennas.
For example, an electronic device with a global positioning system (GPS) utilizes a directional antenna to transmit/receive signals over long distance. The electronic device is usually a portable electronic device such as mobile phone. The position of the portable electronic device changes when user has different postures, and the satellite orbits around the earth. In addition, the directional antenna of GPS must be continuously directed toward the satellite so it is difficult in the prior art.
Users manually adjust the directional of the antenna in the prior art when the directional antenna does not performs very well so that the antenna is tuned to a better direction. To overcome this drawback, an omni-directional antenna is utilized and suitable for signal transmission over a long distance without manual adjustment to the antenna.
Thus, there is a need for a directional antenna which is implemented in an electronic device and properly directed toward a direction to overcome the above drawbacks.
It is an object of the present invention to provide a directional antenna which is implemented in an electronic device and properly adjusted toward a direction to achieve optimal performance. In addition, the directional antenna is adjusted or tuned toward a predetermined direction responsive to position of the electronic device to achieve optimal performance of signal transmission and receiving.
The present invention relates to a directional antenna and a portable electronic device using the same. The directional antenna is positioned at a substrate and includes at least one L-shaped radiator, at least one L-shaped oscillator, and at least one L-shaped reflector. At least one end of the L-shape radiator is fixedly positioned with the substrate and adjacent with and extends along edges of the substrate. At least one end of the L-shaped oscillator is fixedly positioned with the substrate and adjacent with and extends along edges of the substrate. The L-shaped reflectors are fixedly positioned at the substrate and adjacent with and extend along the L-shape radiator. With respect to the L-shaped main bodies and the L-shaped oscillators, the L-shaped reflectors are positioned near inner side of the projection of the upper surface and lower surface of the substrate.
In particular, when the directional antenna is implemented in a portable device such as cellular phone with navigation system or global positioning system, the directional antenna needs to be tuned.
According to the present invention, the substrate is metallic, and a feed line of the L-shaped radiator is positioned near a ground terminal where the L-shaped radiator is fixedly positioned at the substrate.
Two terminals of the L-shaped radiator are fixedly positioned at the substrate, and each terminal has a pair of feed points and a ground terminal. The directional antenna further includes two switches, a gravity sensor and a processor.
The two switches of the directional antenna are fixedly positioned at the two terminals of the L-shaped radiator, and each terminal is connected with one pair of the feed points and the ground terminal through one switch. The gravity sensor is used to sense orientation of the L-shaped radiator.
Responsive to orientation of the L-shaped radiator sensed by the gravity sensor, the processor is used to control one switch so that one terminal of the L-shaped radiator is electrically connected with the pair of the feed points and the ground terminal. Meanwhile, the processor is used to control the other switch so that the other terminal of the L-shaped radiator is electrically disconnected with the other pair of the feed points and the ground terminal. Thus, the directional antenna is oriented to a predetermined direction.
According to the present invention, the directional antennal for signal transmission over a long distance and the portable electronic device utilizing the directional antenna use L-shaped structure to achieve ideal performance of signal transmission over a long distance. In addition, with the gravity sensor, the processor and the switches, the directional antenna is automatically adjusted to a predetermined direction even though orientation of the electronic device is changed at any time. Thus, the optimal signal transmission is achieved.
The present invention can be fully understood from the following detailed description and preferred embodiment with reference to the accompanying drawings, in which:
The following detailed description is of the best presently contemplated modes of carrying out the invention. This description is not to be taken in a limiting sense, but is made merely for the purpose of illustrating general principles of embodiments of the invention. The scope of the invention is best defined by the appended claims.
Referring to
Refer to
At least one end of the L-shape radiator 40 is fixedly positioned with the substrate 34 and adjacent with and extends along edges of the substrate 34. As shown in
Furthermore, the L-shaped radiator 40 extends upright and away from the substrate 34 and turns, a predetermined distance between the L-shaped radiator 40 and the substrate is kept. When the L-shaped radiator 40 is implemented in vehicle or portable device with Global Positioning System (GPS), a receiving space is limited and it is preferred that the predetermined distance ranges from 3 mm to 5 mm. However, the directional antenna 32 is not only limited in use of the portable device, but also can be used in the notebook computer. If the L-shaped radiator 40 is implemented in a notebook computer, then the predetermined distance are allowed to be greater, unless 3-5 mm as mentioned above.
At least one end of the L-shaped oscillator 42 is fixedly positioned with the substrate 34 and adjacent with and extends along edges of the substrate 34. As shown in
As shown in
To have the directional antenna 32 firmly positioned at the substrate 34, the directional antenna 32 further includes a dielectric layer 46. As shown in
As shown in
As described above, gain (dBm) of the directional antenna 32 is significant when angle θ is less than 45 degrees, and gain (dBm) of the directional antenna 32 is positive when angle θ is less than 60 degrees. Until angle θ is larger than 60 degrees, gain (dBm) of the directional antenna 32 is negative. Thus, the directional antenna 32 tends to radiate in the direction of Z-axis.
Refer to
To be compatible with the L-shaped radiator 40A, the L-shaped oscillator 42 as shown in
Furthermore, when the directional antenna 32 is implemented an electronic device 30 such as mobile phone with navigation system or global positioning system, the directional antenna 32 must be tuned. Referring
The substrate 34 is made of metal, and the L-shaped radiator 40 is fixedly positioned at a ground terminal 52 of the substrate 34 and a feed line 50 of the L-shaped radiator 40 is positioned near the ground terminal 52.
Two terminals of the L-shaped radiator 40 are fixedly positioned at the substrate 34, and each terminal has a pair of feed points 50 and the ground terminal 52. The directional antenna 32 further includes two switches 60, a gravity sensor 62 and a processor 64.
The two switches 60 of the directional antenna 32 are respectively positioned at the two terminals of the L-shaped radiator 40, and each terminal is connected with one pair of the feed points 50 and the ground terminal 52 through one switch 60. The gravity sensor 62 is used to sense orientation of the electronic device 30 by the direction of gravitational force. Furthermore, the gravity sensor 62 is used to sense orientation of the L-shaped radiator 40 within the electronic device 30 by the direction of gravitational force.
Responsive to orientation of the L-shaped radiator 40 sensed by the gravity sensor 62, the processor 64 is used to control one switch of the switches 60 so that one terminal of the L-shaped radiator 40 is electrically connected with the pair of the feed points 50 and the ground terminal 52. Meanwhile, the processor 64 is used to control the other switch of the switches 60 so that the other terminal of the L-shaped radiator 40 is electrically disconnected with the other pair of the feed points 50 and the ground terminal 52. Thus, the directional antenna 32 is directed to a predetermined direction.
Referring to
Referring to
Referring to
The switches 60 correspond to the first directional antenna 3202 and the second directional antenna 3204, and are respectively positioned at four terminals of the L-shaped main bodies 40. Responsive to orientation of the L-shaped radiator 40 sensed by the gravity sensor 62, the processor 64 is used to control one switch 60 so that one terminal of the L-shaped radiator 40 is electrically connected with the pair of the feed points 50 and the ground terminal 52. Meanwhile, the processor 64 is used to control the other switches 60 so that the other terminal of the L-shaped radiator 40 is electrically disconnected with the other pair of the feed points 50 and the ground terminal 52. Thus, the directional antenna 32 is directed to a predetermined orientation.
Referring to
Therefore, according to the present invention, the directional antenna 32 for signal transmission over a long distance and the electronic device 30 utilizing the directional antenna 32 uses L-shaped structure to achieve ideal performance of signal transmission over a long distance. The electric device 30 can be a portable device such as the GPS, the smart phone, the cell phone, or the notebook computer. In addition, with the gravity sensor 62, the processor 64 and the switches 60, the directional antenna 32 is automatically adjusted to a predetermined direction even though orientation of the electronic device 30 is changing at any time. Thus, the optimal signal transmission is achieved.
While the invention has been described with reference to the preferred embodiments, the description is not intended to be construed in a limiting sense. It is therefore contemplated that the appended claims will cover any such modifications or embodiments as may fall within the scope of the invention defined by the following claims and their equivalents.
Number | Date | Country | Kind |
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096140955 | Oct 2007 | TW | national |