This invention relates generally to a multi-band antenna structure and methods for forming multi-band antenna structures.
A dipole antenna is a resonant antenna which consists of two identical bilaterally symmetrical conductive elements coupled to a feed line. Signals are applied to (for a transmitter) or taken from (for a receiver) between the two elements of the antenna via the feed line. A common form of dipole is two straight rods or wires oriented end to end on the same axis, with the feed line connected to the two adjacent ends. Since a dipole antenna is a resonant antenna, the length of the conductive elements are related to the wavelength of the radio waves to be transmitted or received. Similarly, a monopole antenna is also a resonant antenna which consists of a single conductive element coupled to one side of the feed line, with the other side of the feed line connected to a ground connection. A feed line is transmission line that has a specific characteristic impedance and which must be designed to match the characteristics of particular antenna and transmitter in use in order to transfer power efficiently to the antenna.
A slot antenna consists of a metal surface, e.g., a flat plate, having a hole (slot) formed in a middle portion thereof. When the metal surface is driven at a predetermined frequency across the slot (set by the shape and size of the slot), the slot radiates electromagnetic waves in a manner similar to a dipole antenna.
Most antennas, e.g., monopole, dipole and slot, are designed to transmit (or receive) a particular single frequency range. Thus, in order to transmit signals having different frequency ranges (e.g., in a multi-band radio), separate antennas are needed for each of the different frequency ranges, each requiring associated separate feed lines. This requires added space and expense.
The present invention addresses the problems of the prior art by providing a more compact structure. The compact structure includes overlapping elements that are similar to the growth rings on a tree, also called tree rings. In one embodiment, a multi-band antenna has a first conductive element, a second conductive element and a first conductive member. The first conductive element has a central axis, a predetermined cross-sectional shape, and a predetermined first length. The second conductive element is hollow and has a central axis, a predetermined cross-sectional shape, and a predetermined second length which is less than the predetermined length of the first conductive element. The predetermined cross-sectional shape of the second conductive element is sized to allow the second conductive element to fit over the first conductive element without contact between the first conductive element and the second conductive element. The second conductive element is aligned over the first conductive element such that the central axis of the first conductive element coincides with the central axis of the second conductive element and such that a first end of the first conductive element is in the same plane as a first end of the second conductive element. The first conductive member is coupled to the first end of the first conductive element and to the first end of the second conductive element such that electrical connection to both elements is possible. A spacing of air or dielectric material between the first conductive element and the second conductive element ensures these elements are not in direct contact except at the first end where the first conductive member contacts both elements. Preferably, the predetermined cross-sectional shape of the first conductive element of the first conductive element is the same as the predetermined cross-sectional shape of the second conductive element. In a preferred embodiment, the predetermined cross-sectional shape may be a circle. In other embodiments, the predetermined cross-sectional shape may be a square, triangular, oval, or other shape. Preferably, the first conductive element and the second conductive element form straight rods. In other embodiments, the first conductive element and the second conductive element form looped rods, spiral rods, or other shapes. A feed line is coupled to the first conductive member such that the first and second conductive elements coupled to the feed line through the conductive member are fed in phase.
In a further embodiment, the multi-band antenna further includes a third conductive element that is hollow and has a central axis, a predetermined cross-sectional shape and a predetermined third length. The predetermined cross-sectional shape of the third conductive element is sized to allow the third conductive element to fit over the second conductive element without contact between the second conductive element and the third conductive element. The third conductive element is aligned over the second conductive element such that the central axis of the second conductive element coincides with the central axis of the third conductive element and such that a first end of the second conductive element is in the same plane as a first end of the third conductive element. In this further embodiment, the first conductive member is coupled to the first end of the first, second, and third conductive elements. In the further embodiment, the predetermined length of the third conductive element is less than the predetermined length of the second conductive element. A feed line is coupled to the first conductive member such that the first, second and third conductive elements coupled to the feed line through the conductive member are fed in phase.
In a still further embodiment, the multi-band antenna further includes a third conductive element, a fourth conductive element and a second conductive member. The third conductive element has a central axis, a predetermined cross-sectional shape the same as the predetermined cross-sectional shape of the first conductive element, and a predetermined third length. The third conductive element is aligned adjacent to the first conductive element so that the central axis of the first conductive element is in line with the central axis of the third conductive element and so that the first end of the first conductive element is adjacent to but spaced apart from a first end of the third conductive element. The fourth conductive element is hollow and has a central axis, a predetermined cross-sectional shape the same as the predetermined cross-sectional shape of the second conductive element and a predetermined fourth length. The predetermined cross-sectional shape of the fourth conductive element is sized to allow the fourth conductive element to fit over the third conductive element without contact between the third conductive element and the fourth conductive element. The fourth conductive element is aligned over the third conductive element such that the central axis of the third conductive element coincides with the central axis of the fourth conductive element and such that the first end of the third conductive element is in the same plane as a first end of the fourth conductive element. The second conductive member is coupled to the first end of the third conductive element and to the first end of the fourth conductive element. In the still further embodiment, the predetermined second length is preferably less than the predetermined first length and the predetermined fourth length is preferably less than the predetermined third length. A first feed line is coupled to the first conductive member such that the first and second conductive elements coupled to the first feed line through the first conductive member are fed in phase. A second feed line is coupled to the second conductive member such that the third and fourth elements coupled to the second feed line through the second conductive member are fed in phase.
In another further embodiment, the multi-band antenna also includes a fourth conductive element, a fifth conductive element, a sixth conductive element and a second conductive member. The fourth conductive element has a central axis, a predetermined cross-sectional shape the same as the predetermined cross-sectional shape of the first conductive element, and a predetermined fourth length. The fourth conductive element is aligned adjacent to the first conductive element so that the central axis of the first conductive element is in line with the central axis of the fourth conductive element and so that the first end of the first conductive element is adjacent to but spaced apart from a first end of the fourth conductive element. The fifth conductive element is hollow and has a central axis, a predetermined cross-sectional shape the same as the predetermined cross-sectional shape of the second conductive element and a predetermined fifth length. The predetermined cross-sectional shape of the fifth conductive element is sized to allow the fifth conductive element to fit over the fourth conductive element without contact between the fourth conductive element and the fifth conductive element. The fifth conductive element is aligned over the fourth conductive element such that the central axis of the fourth conductive element coincides with the central axis of the fifth conductive element and such that the first end of the fourth conductive element is in the same plane as a first end of the fifth conductive element. The sixth conductive element is hollow and has a central axis, a predetermined cross-sectional shape and a predetermined sixth length. The predetermined cross-sectional shape of the sixth conductive element is sized to allow the sixth conductive element to fit over the fifth conductive element without contact between the fifth conductive element and the sixth conductive element. The sixth conductive element is aligned over the fifth conductive element such that the central axis of the fifth conductive element coincides with the central axis of the sixth conductive element and such that a first end of the fifth conductive element is in the same plane as a first end of the sixth conductive element. The second conductive member is coupled to the first end of the fourth conductive element, to the first end of the fifth conductive element, and to the first end of the sixth conductive element. A first feed line is coupled to the first conductive member such that the first, second and third conductive elements coupled to the first feed line through the first conductive member are fed in phase. A second feed line is coupled to the second conductive member such that fourth, fifth and sixth conductive elements coupled to the second feed line through the second conductive member are fed in phase.
In another embodiment, the multi-band antenna includes a first helical element, a second helical element and a first conductive member. The first helical element has a central axis, a predetermined cross-sectional outer diameter, and a predetermined first length. The second helical element has a central axis, a predetermined cross-sectional inner diameter and a predetermined second length. The predetermined cross-sectional inner diameter of the second helical element is greater than the predetermined cross-sectional outer diameter of the first helical element so that the second helical element fits over the first helical element without contact between the first helical element and the second helical element. The second helical element is aligned over the first helical element such that the central axis of the first helical element coincides with the central axis of the second helical element and such that a first end of the first helical element is in the same plane as a first end of the second helical element. The first conductive member is coupled to the first end of the first helical element and to the first end of the second helical element. A single feed line having a first conductor is coupled to the first conductive member such that the first and second helical elements coupled to the first conductive member are fed in phase.
In another embodiment, the multi-band antenna includes a first slot antenna, a second slot antenna, a first conductive member and a second conductive member. The first slot antenna is formed from a first metal plate. The first metal plate has an aperture formed therein. The aperture has a predetermined first size corresponding to a particular first resonant frequency. The first slot antenna has a first tine and a second tine. The first tine has a first end and a second end. The first end of the first tine is electrically coupled to the second metal plate at a first side of the aperture and the second end of the first tine is positioned in a middle portion of the aperture. The second tine has a first end and a second end. The first end of the second tine is electrically coupled to the second metal plate at a second side of the aperture opposite the first side and the second end of the second tine is positioned in the middle portion of the aperture. The second end of the first tine is separate from and not electrically coupled to the second end of the second tine. The second slot antenna is formed from a second metal plate. The second metal plate has an aperture formed therein. The aperture has a predetermined second size corresponding to a particular second resonant frequency. The second slot antenna has a first tine and a second tine. The first tine has a first end and a second end. The first end of the first tine is electrically coupled to the second metal plate at a first side of the aperture and the second end of the first tine is positioned in a middle portion of the aperture. The second tine has a first end and a second end. The first end of the second tine is electrically coupled to the second metal plate at a second side of the aperture opposite the first side and the second end of the second tine is positioned in the middle portion of the aperture. The second end of the first tine is separate from and not electrically coupled to the second end of the second tine. The first slot antenna is positioned over but spaced apart from the second slot antenna such that the second end of the first tine of the first slot antenna is adjacent to the second end of the first tine of the second slot antenna and the second end of the second tine of the first slot antenna is adjacent to the second end of the second tine of the second slot antenna. The first conductive member is coupled to the second end of the first tine of the first slot antenna and to the second end of the first tine of the second slot antenna. The second conductive member is coupled to the second end of the second tine of the first slot antenna and to the second tine of the second slot antenna. A feed line is coupled to the first and second conductive members such that first and second slot elements coupled to the first feed line through the conductive members are fed in phase.
The following detailed description, given by way of example and not intended to limit the present invention solely thereto, will best be understood in conjunction with the accompanying drawings in which:
In the present disclosure, like reference numbers refer to like elements throughout the drawings, which illustrate various exemplary embodiments.
According to an illustrative embodiment, an antenna structure includes overlapping cylindrical tubes, with each tube separated by a dielectric and each tube a different length. Although cylindrical tubes are preferably used, other types of rods (solid or hollow, depending on the position) may be used, including but not limited to rods with square or oval cross-sections. The tube lengths are preferably arranged in descending order of length, such that the innermost tube is the longest and the outermost tube is the shortest. Each of the tubes is fed in phase simultaneously. A first end of each of the tubes is electrically connected with wires or a sector shaped disc and coupled to a feed line. As a results, each tube is impedance-matched to the source at its respective wavelength, while other tubes are poorly impedance-matched at that wavelength. The resonant tube radiation dominates the aggregate far field pattern, with a pattern shape identical to a standard dipole. As discussed with respect to
Referring now to
Each tube 101 to 106 has a fixed length and a fixed diameter, with tube pairs 101 and 102, 103 and 104, and 105 and 106 each having the same length and diameter. As discussed below, the tube lengths are pre-selected to set the three desired frequency bands.
Tubes 101, 103, 105 are positioned with their respective left ends aligned (as shown in
A dipole antenna is one of the most common forms of an antenna, and the most common form of a dipole antenna is a half-wave dipole. In such form, each of the arms has a length equal to one-quarter of the wavelength corresponding to the desired frequency of transmission (or reception). Applying this to the embodiment of
A standard half-wave dipole antenna constructed of infinitesimally thin cylindrical wires has a radiation resistance of 73 ohms (i.e., an input impedance of 73+j42.5 ohms) and a toroidal radiation pattern. The bandwidth of a standard half-wave dipole antenna varies according to its length and the diameter of its cylindrical arms. A ratio of length to diameter of 250 provides a 30% bandwidth, while a ratio of 5000 provides a 3% bandwidth. For example, a standard half-wave dipole antenna of 36.5″ length and 0.8″ diameter resonates at 144 MHz and an input impedance of approximately 70 ohms. At frequencies lower than 144 Mhz, the input impedance is lower than 70 ohms and at frequencies higher than 144 MHz (but lower than the second harmonic) the input impedance is higher than 70 ohms. Simulation shows that the input impedance for the dipole antenna shown in
An equivalent circuit 400 of the dipole antenna shown in
As discussed above, the structure disclosed herein may be used to create a multi-band monopole or bipole antenna that uses much less space than conventional antennas, with the amount of space saved proportional to the number of bands used for a particular antenna.
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Although the present invention has been particularly shown and described with reference to the preferred embodiments and various aspects thereof, it will be appreciated by those of ordinary skill in the art that various changes and modifications may be made without departing from the spirit and scope of the invention. It is intended that the appended claims be interpreted as including the embodiments described herein, the alternatives mentioned above, and all equivalents thereto.