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According to the above disclosure, the antenna module 110 and a wireless communication device 100 using the same of the invention achieves a quasi-omnidirectional antenna by the characteristics of the above technology.
Examples of the wireless communication device 100 include wireless access point device, router, radio base station, TV, TV receiver and portable communication device such as notebook, personal digital assistant (PDA), mobile phone and global positioning system (GPS) reception device. The wireless communication device 100 has a large variety, and the invention is applicable to various electronic devices for receiving/transmitting a wireless signal.
The antennas 111, 112 and 113 are coaxial monopole antennas or coaxial dipole antennas with single band or dual band. In the present embodiment of the invention, the antennas 111, 112 and 113 are dual-band antennas capable of receiving/transmitting a number of first wireless signals S1 and second wireless signals S2. Examples of the frequency band of the first wireless signal S1 and the frequency band of the second wireless signal S2 include industrial, scientific and medical (ISM) band. The frequency band of the first wireless signals S1 ranges from 2.4 GHz to 2.5 GHz, and the frequency band of the second wireless signals S2 ranges from 4.9 GHz to 5.9 GHz.
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According to the results of experiments, when the included angles θ11, θ112 and θ113 between the antennas 111, 112 and 113 and the surface 130a are substantially the same and range from 60° to 70°, the antenna module 110 and the wireless communication device 100 using the same achieves optimized reception and transmission of wireless signals.
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To the contrary, the processing unit 120 can transmit the processed special signals to the Internet 500 via the antennas 111, 112 and 113. The antennas 111, 112 and 113 are capable of transmitting signals at the same time and avoiding the intensity of the first wireless signal S1 or the second wireless signal S2 being faded by a particular obstacle.
The antenna module 110 forms a multiple input/multiple output (MIMO) antenna module by incorporating the antennas 111, 112 and 113, not only reducing dead zone in the transmission and reception of wireless signals but also assuring the stability in the transmission and reception of wireless signals through the mutual support of the antennas.
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Moreover, the antennas 111, 112 and 113 may respectively swing around the bottom ends B111, B112 and B113 in the directions C12, C22 and C32. When the antennas 111, 112 and 113 stay close to the surface 130a and rotate in the directions C12, C22 and C32, the antennas 111, 112 and 113 are received inwardly to the surface 130a of the housing 130.
Referring to both
Despite the antennas 111, 112 and 113 of the present embodiment of the invention are exemplified by dual-band antennas, the antennas 111, 112 and 113 can be single-band antennas. The antennas 111, 112 and 113 can be used only for receiving or transmitting a number of first wireless signals S1 or only for receiving or transmitting a number of second wireless signals S2. Any designs of quasi-omnidirectional antenna achieved by enabling the bottom ends of three antennas to be arranged in the shape of a regular triangle, the distances between the neighboring bottom ends to be larger than a quarter of the wavelength of the wireless signal and the included angle between each of the center lines and the surface to range from 50° to 80° are within the scope of the technology of the invention.
The wireless communication device 100 may further have another housing inside which the antennas 111, 112 and 113 are positioned. The other housing is made from a non-metallic material. For example, if the wireless communication device 100 is a TV, then the other housing is a housing of the TV in which the antennas 111, 112 and 113 are enclosed. The housing is made from a non-metallic material and will not affect the wireless transmission function of the antennas 111, 112 and 113.
According to the antenna module and the wireless communication device using the same disclosed in the above embodiments of the invention, the bottom ends of three antennas are substantially arranged in the shape of a regular triangle, and each distance between two neighboring bottom ends is larger than a quarter of the wavelength of the wireless signal. The included angle between each of the center lines and the plane substantially ranges from 50° to 80°, such that the antenna module become a quasi-omnidirectional antenna and the antenna module and the wireless communication device using the same are equipped with the following advantages:
Firstly, the dead zone in the reception and transmission of wireless signals is reduced. The three antennas are tilted outwards and radially from the central point of a regular triangle. The antenna module is capable of receiving and transmitting signals in multiple angles, so there is almost no dead zone in the reception and transmission of signals.
Secondly, the stability in the reception and transmission of wireless signals is assured. Since the distances between the bottom ends of the three antennas of the invention are larger than a quarter of the wavelength of the wireless signal, no mutual interference exists among the three antennas, the stability in the reception and transmission of wireless signals is enhanced, and stability is maintained during the reception and transmission of wireless signals
Thirdly, the reception/transmission rate of wireless signals is increased. The invention uses the above three antennas to transmit/receive wireless signal at the same time in a particular angle, and has a quasi-omnidirectional performance in reception and transmission. The amount of the data received/transmitted by the antenna module and the wireless communication device using the same disclosed in the invention within a unit time is largely increased. In other words, the reception and transmission rate of wireless signals is increased.
Fourthly, the signal intensity in the reception and transmission of wireless signals is enhanced. The reflected or scattered wireless signals are transmitted to the three antennas in different angles and with different level of signal fading. After having received the wireless signals, the three antennas collect the scattered wireless signals to a processing unit or the other way round, such that the signal-to-noise ratio in the reception and transmission of wireless signals is increased significantly.
While the invention has been described by way of example and in terms of a preferred embodiment, it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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95209434 | May 2006 | TW | national |