1. Field of the Invention
The present invention relates to a kind of coupled-fed antenna device, more particularly a coupled-fed antenna device where its imaginary part of input impedance may be adjusted by disposing a coupling element serially connected to the signal feedline of inverted F antenna.
2. Description of the Prior Art
The application of wireless communication technology by the military and the private industry is becoming more extensive in recent years. It is also gaining popularity in personal devices. The trends of the future is to equip all electronic devices with the function of wireless communication, for example, computer peripherals, such as wireless mouse, wireless keyboard, and wireless network, or consumer electronics, such as mobile phone, PDA with mobile phone function, bluetooth earpiece, and bluetooth MP3, or even home appliance, such as refrigerator and television.
In products with wireless communication function nowadays, typically a printed antenna device is configured on the system -circuit board disposed with a plurality of electronic circuits for generating wireless signals to provide the function of wireless communication. Such antenna device is designed with a radiation conductor of specific shape and length to enhance the ability to transmit or receive wireless signals of predetermined frequency. Generally when integrating antenna devices to the system circuit board, the designer usually reserves space for an impedance matching circuit on the circuit board to compensate the input impedance of the antenna.
Referring to
As shown in
The first object of the present invention is to provide a coupled-fed antenna device, characterized in which the antenna device itself provides the compensatory function for both the real part and the imaginary part of input impedance without the need to reserve space for matching circuit on the system circuit board.
The second object of the present invention is to provide a coupled-fed antenna device, characterized in which a coupling element is serially connected to the signal feedline of antenna device to adjust the imaginary part of its input impedance, and the real part of input impedance is adjusted by shifting the position of attachment point between feedline and radiation conductor of antenna device.
To achieve the aforesaid objects, the present invention provides a coupled-fed antenna device comprising a substrate, a signal source, a ground plane, a radiation conductor and a coupling feedline. The substrate has at least a first surface and a second surface which are defined with a first direction and a second direction perpendicular to each other thereon. The signal source is disposed on the first surface to provide wireless signals. The ground plane is electrically grounded and covers at least a part of the area on the second surface of substrate. The radiation conductor is disposed on the second surface of substrate and extends from the ground plane a predetermined first length generally towards the first direction and then turns generally towards the second direction to extend a predetermined second length to form substantially an inverted F antenna configuration. The coupling feedline connects the signal source and the radiation conductor, and consists of at least a first feedline and a second feedline coupled together without contacting each other. One end of the second feedline is connected to a predetermined attachment point on the radiation conductor. The real part of the input impedance of antenna may be adjusted by shifting the attachment point. The first feedline and the second feedline are coupled together by a coupling element, which is substantially serially connected between the signal source and said attachment point. Thus the imaginary part of the antenna input impedance may be adjusted by changing the input impedance of an open stub of the coupling element. As such, a mechanism for adjusting the “real part of impedance” and “imaginary part of impedance” is disposed directly on the antenna by means of “serial connection” without disposing a matching circuit on the system circuit board to eliminate the effect of “imaginary part impedance”, thereby offering the advantages of simpler design, lower cost and space saving.
The details of the present invention will be more readily understood from a detailed description of the preferred embodiments taken in conjunction with the following Figures.
The substrate 21 is a flat panel made of dielectric material having at least a first surface 211 and a second surface 212. The surfaces 211, 212 of substrate 21 are respectively defined with a first direction 91 and a second direction 92 perpendicular to each other thereon. The first surface 211 and the second surface 212 are substantially the top surface and bottom surface of substrate 21, or an intermediate layer.
The signal source 22 is disposed on the first surface 211 of substrate 21 to provide high frequency signal for wireless communication. The signal source 22 consists of a plurality of electronic circuits (or integrated circuits) for generating wireless signals. Given that the circuit design of signal source 22 is not a technical feature of the invention, to which the prior art may apply, its detailed constitution will not be elaborated and this element is indicated only with a symbol 22.
The ground plane 23 is electrically grounded and covers at least a partial area on the second surface 212 of substrate 21. More particularly the part of second surface 212 with projection in the direction perpendicular to the first surface 211 that covers extensively the vicinities of source signal 22 is covered by the ground plane 23. In other words, the projection of signal source 22 in the direction perpendicular to the first surface 211 is covered by the ground plane 23 on second surface 212.
The radiation conductor 24 is disposed on the second surface 212 of substrate 21. In the first embodiment, one end of the radiation conductor 24 extends a predetermined first length from an attachment point 241 on the edge of ground plane 23 generally towards the first direction 91 and then turns generally towards the second direction 92 and extends a predetermined second length to form a L-shaped long strip structure.
The coupling feedline 25 connects the signal source 22 and radiation conductor 24 and consists of: a first feedline 251, a second feedline 252 and a coupling element 253. In the first embodiment, the first feedline 251, the second feedline 252 and the coupling element 253 are all disposed on the first surface 211, and their projections in the direction perpendicular to the first surface 211 are not covered by the ground plane 23 on second surface 212. The terminal end of first feedline 251 is connected to the signal source 22 via a signal transmission line 26. The front end of second feedline 252 is connected to a predetermined attachment point 242 on radiation conductor 24 through a via 27. The same as prior art, the antenna device 20 of the invention adjusts and matches the real part of its input impedance by moving the position of attachment point 242. Also, because the projections of coupling feedline 25 and radiation conductor 24 in the -direction perpendicular to the first surface 211 exhibits an inverted F structure, the antenna device 20 as shown in
The first feedline 251 and the second feedline 252 are coupled together by coupling element 253 without contacting each other. Thus the coupling element 253 is substantially “serially connected” between the signal source 22 and the predetermined attachment point 242. In the first embodiment of the invention as shown in
The coupling element 253 can be taken as an open stub. The input impedance of open stub at high frequency is generally expressed as Zs, where Zs=j(−Zo×cot ⊕l)=jXs; Xs=−Zo×cot βl. Its input port is located at where indicated as (f′, f) on
Thus the equivalent circuit of antenna device 20 of the invention can be viewed as the serial connection of impedance Zs and impedance Za as shown in
The other embodiments of the invention described below have identical or similar elements to those described earlier. Those elements are assigned the same names and numeral if they are exactly identical. Similar elements are assigned the same names and numeral with only an English letter suffix for distinction purpose, and their detailed constitutions will not be elaborated.
While the present invention has been shown and described with reference to the preferred embodiments thereof and in terms of the illustrative drawings, it should not be considered as limited thereby. Various possible modifications and alterations could be conceived of by one skilled in the art to the form and the content of any particular embodiment, without departing from the scope and the spirit of the present invention.