ANTENNA ELEMENT WITH FILTERING FUNCTION, FILTERING RADIATION UNIT, AND ANTENNA
20220393361 · 2022-12-08
Assignee
Inventors
- Zhonglin WU (Zhongshan City, CN)
- Wei ZHAO (Zhongshan City, CN)
- Cailong YUE (Zhongshan City, CN)
- Zhenxing TANG (Zhongshan City, CN)
Cpc classification
H01Q13/12
ELECTRICITY
H01Q19/108
ELECTRICITY
International classification
H01Q13/12
ELECTRICITY
H01Q21/06
ELECTRICITY
Abstract
An antenna element with a filtering function, a filtering radiation unit, and an antenna. The antenna element is tubular, with a spiral slit arranged around the periphery of the tubular antenna element and extending in an axial direction. The filtering radiation unit includes a support column, and an upper part of the support column is electrically connected to at least one antenna element. The antenna includes a reflecting plate, and at least one filtering radiation unit is fixedly arranged on the reflecting plate. The antenna element with a filtering function has functions of radiating signals and suppressing interference simultaneously. The filtering radiation unit can cooperate with a high-frequency radiation element during use to achieve the aim of radiating a high-frequency signal and a low-frequency signal simultaneously. The antenna is good in performance, small in size, and high in integration degree.
Claims
1. An antenna element with a filtering function, wherein the antenna element is tubular, and the tubular antenna element is provided with a spiral slit arranged around the periphery of the tubular antenna element and extending in an axial direction.
2. The antenna element with a filtering function according to claim 1, wherein the antenna element is in a shape of a circular tube.
3. A filtering radiation unit, comprising a support column, wherein an upper part of the support column is electrically connected to at least one antenna element according to claim 1.
4. The filtering radiation unit according to claim 3, wherein the upper part of the support column is electrically connected to at least one element pair, and the element pair comprises two antenna elements that are arranged coaxially.
5. The filtering radiation unit according to claim 4, wherein the upper part of the support column is electrically connected to two element pairs, and axes of the two element pairs are perpendicular to each other.
6. An antenna, comprising a reflecting plate, wherein at least one filtering radiation unit according to claim 3 is fixedly arranged on the reflecting plate.
7. The antenna according to claim 6, wherein several high-frequency radiation units are arranged on a peripheral side of each filtering radiation unit, and the high-frequency radiation units are fixedly arranged on the reflecting plate.
8. The antenna according to claim 7, wherein the upper part of the support column is electrically connected to at least one element pair, the element pair comprises two antenna elements that are arranged coaxially, and one high-frequency radiation unit is arranged laterally below each antenna element.
9. The antenna according to claim 8, wherein the upper part of the support column is electrically connected to two element pairs, axes of the two element pairs are perpendicular to each other, four high-frequency radiation units are arranged on the peripheral side of each filtering radiation unit, and the four high-frequency radiation units are distributed uniformly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025] Description of drawings: 1. Slit, 2. Support column, 3. High-frequency radiation unit, and 4. Reflecting plate.
DETAILED DESCRIPTION
[0026] The following clearly and completely describes the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are merely some embodiments of the present invention rather than all of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by a person of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0027] Referring to
[0028] A hollow tube body provided with one round of spiral slit on each section may be equivalent to an LC parallel resonant circuit, as shown in
[0029] where j is an imaginary number, C.sub.1 and C.sub.2 are equivalent capacitance values, L.sub.1 is an equivalent resistance value, f.sub.h is a high-frequency current frequency, and f.sub.l is a low-frequency current frequency.
[0030] At a resonant frequency, an antenna element circuit is in an open-circuit state for an external electric field, and an impedance tends to be infinite. In this case, the external electric field does not generate an induced current. When the frequency is much lower than the resonant frequency, a hollow tube body provided with a spiral slit is in a state of low inductive reactance and high capacitive reactance, which has only a small impact on the low-frequency radiation and impedance matching.
[0031] Under the condition of a high-frequency current frequency f.sub.h, the antenna element appears as an open circuit, and under the condition of a low-frequency current frequency f.sub.l, the antenna element appears as a short circuit. Based on this, an inner diameter of the antenna element is defined as d, a thickness is defined as h, a width of the slit 1 is defined as g, and a distance between two adjacent spirals of the slit 1 is defined as w. By adjusting w, g, and d, suppression of a high-frequency current can be maximized, and interference in a low-frequency current can be minimized, to achieve an effect of transmitting the low-frequency current forwardly and radiating a low-frequency signal while reversely suppressing a high-frequency induced current. In addition, because the slit 1 is spiral, w is fixed, that is, in an effective action area of the antenna element where the slit 1 is located, the antenna element is uniform and continuous, thereby ensuring that the antenna element can obtain a sufficient bandwidth. Further, a relationship between parameters is that g is directly proportional to C.sub.1. When g increases, the resonant frequency of the equivalent circuit increases. As shown in
[0032] In addition, it should be noted that, when w, g, and d are adjusted, overall requirements of the antenna need to be met, or adaptive adjustments are made to the antenna to ensure smooth installation.
[0033] Further, the antenna element is in the shape of a circular tube, which can reduce processing difficulty. In other embodiments of the present invention, the antenna element may be set in other shapes, for example, in a shape of a square tube, as long as the size is changed according to an actual needed radiation frequency.
[0034] Referring to
[0035] On one hand, the support column 2 is configured to support the antenna element, to control a distance between reflecting plates 4 of remaining antennas, so that needs of installing other components are met, and on the other hand, the support column is further configured to feed the antenna element. The quantity of antenna elements may be flexibly selected according to an actual use need.
[0036] With a feature that the antenna element conducts the low-frequency current and meanwhile suppresses the interference from the high-frequency current, the filtering radiation unit can be used in conjunction with the high-frequency radiation unit, to radiate the high-frequency signal and the low-frequency signal simultaneously. For example, the filtering radiation unit may be configured to radiate a low-frequency 4G signal, and the high-frequency radiation element may be configured to radiate a high-frequency 5G signal. The induced current formed by the 5G signal on the filtering radiation unit is suppressed, thereby preventing the interference of the 4G signal to the 5G signal.
[0037] Further, the upper part of the support column 2 is electrically connected to at least one element pair, and the element pair includes two antenna elements that are arranged coaxially.
[0038] One element pair is configured to complete a signal transmission task in one polarization direction, and a vertically polarized signal or a horizontally polarized signal may be transmitted according to an actual need. It should be noted that, insulating treatment is needed between two antenna elements. During practical application, a gap may be kept between two composite elements, and then power is fed to the two antenna elements respectively. In this case, the support column 2 may be implemented by a balancer. With the help of the balancer, unbalanced coaxial feeding may be converted into a feature of balanced feeding, and symmetry of a pattern of the filtering radiation unit can be ensured.
[0039] Further, the upper part of the support column 2 is electrically connected to two element pairs, and axes of the two element pairs are perpendicular to each other. In this case, the filtering radiation unit may transmit the vertically polarized signal and the horizontally polarized signal simultaneously, to improve signal transmission efficiency.
[0040] Referring to
[0041] Further, several high-frequency radiation units 3 are arranged on a peripheral side of each filtering radiation unit, and the high-frequency radiation units 3 are fixedly arranged on the reflecting plate 4.
[0042] The high-frequency radiation unit 3 is configured to radiate the high-frequency signal. Because the filtering radiation unit may conduct the low-frequency current to radiate the low-frequency signal while suppressing the high-frequency current, to prevent the high-frequency signal from being interfered with by the low-frequency signal, such a combination can transmit the low-frequency signal and the high-frequency signal simultaneously, thereby effectively improving the integration of the antenna and reducing the volume of the antenna. For example, the filtering radiation unit is configured to transmit a low-frequency 4G signal, and a high-frequency radiation unit 3 is configured to transmit a high-frequency 5G signal.
[0043] Further, the upper part of the support column 2 is electrically connected to at least one element pair, the element pair includes two antenna elements that are arranged coaxially, and one high-frequency radiation unit 3 is arranged laterally below each antenna element.
[0044] Further, the upper part of the support column 2 is electrically connected to two element pairs, axes of the two element pairs are perpendicular to each other, four high-frequency radiation units 3 are arranged on the peripheral side of each filtering radiation unit, and the four high-frequency radiation units 3 are distributed uniformly.
[0045] All filtering radiation units are arrayed to form a low-frequency antenna, and all high-frequency radiation units 3 are arrayed to form a high-frequency antenna. For example, the low-frequency antenna may be applied as an FDD antenna, and the high-frequency antenna may be applied as a TDD antenna. Therefore, an impact of beams of the FDD antenna on those of the TDD antenna may be effectively weakened, a beam coverage index of the TDD antenna is met, and a port isolation index is greatly improved to realize the FDD+TDD antenna.
[0046] The above description of the disclosed embodiments enables a person skilled in the art to implement or use the present invention. Various modifications to these embodiments are obvious to a person skilled in the art, and the general principles defined in this specification may be implemented in other embodiments without departing from the spirit and scope of the present invention. Therefore, the present invention is not intended to be limited to these embodiments illustrated in this specification, but shall be construed in the widest scope consistent with the principles and novel features disclosed in this specification.