The present disclosure relates generally to a wireless communication technical field, and particularly relates to an integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter.
Differential dielectric resonator antenna employs two feeding ports to directly input differential signals, and is widely used in modern communication systems. As balanced circuits can greatly reduce crosstalk, RF front-end circuits tend to use differential technology. Differential feeding technology refers to the simultaneous feeding of two ports with a pair of differential signals having the same amplitude and opposite phases. Opposite to the differential signals, the common-mode signals, which are a pair of signals with the same amplitude and phase, are always from external noise interference. The single-ended antenna cannot be directly connected to differential communication units. Instead, a BALUN (Balance-unbalance) transformer should be introduced to convert the differential signal into a single-ended signal. The introduction of BALUN transformer, on the one hand, reduces the system integration, on the other hand, brings unnecessary loss to the system and reduces the system efficiency. The differential antenna solves these problems very well by using a pair of differential feeding ports to directly input differential signals, which eliminates the requirement of BALUN transformer, reduces the loss to a certain extent for the system, and also provides a higher integration level for the RF front-end. In addition, differential antennas also have a series of advantages, including common-mode signal inhibition ability, high isolation, relatively low cross-polarization, and the like. Dielectric resonators are widely used in the design of antennas and filters due to their low loss, high Q value, and volume reusability. The application of dielectric resonators is one of the research hotspots in high-performance wireless communication systems.
So far, there are no researches on the integrated design of filters based on differential dielectric resonator antennas. In fact, in addition to reflective ground, differential dielectric resonator antennas also have another kind of ground, called virtual ground, due to their differential feeding characteristics, and both grounds can be used simultaneously for multi-functional designs.
The present disclosure has provided an integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, which better satisfies the miniaturization requirements of modern communications.
According to a first aspect, an integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, is provided, which includes: a dielectric substrate; a top metal layer, which is arranged at the upper surface of the dielectric substrate; a first bottom metal strip, a second bottom metal strip and a third bottom metal strip, which are arranged at the lower surface of the dielectric substrate; a metal through-hole, which connects the first bottom metal strip and the top metal layer; a rectangular dielectric resonator; a first metal strip which is arranged at a first directional symmetry plane of the rectangular dielectric resonator; a second metal strip and a third metal strip which are arranged at a side wall of the rectangular dielectric resonator; a first metal column which connects the second bottom metal strip and the second metal strip; and a second metal column which connects the third bottom metal strip and the third metal strip; wherein the second bottom metal strip, the second metal strip and the first metal column are symmetrically arranged relative to the first directional symmetry plane of the rectangular dielectric resonator; the third bottom metal strip, the third metal strip, the second metal column and the first metal strip are symmetrically arranged relative to a second directional symmetry plane of the rectangular dielectric resonator.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the first directional symmetry plane of the rectangular dielectric resonator is a differential feeding virtual ground; the first metal strip is a resonator structure which constitutes a first passband of the independently controllable dual-band filter; the top metal layer is a reflective ground of the dielectric resonator antenna; and the first bottom metal strip is a resonator structure which constitutes the second passband of the independently controllable dual-band filter.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the first metal strip and the first bottom metal strip are bendable structures.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the first metal strip and the first bottom metal strip form a step impedance resonator through different width combinations.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the first metal strip and the first bottom metal strip are either a quarter-wavelength resonator with a short circuit at one end or a half-wavelength resonator.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the top metal layer is provided with a first through-hole corresponding to the first metal column and a second through-hole corresponding to the second metal column.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the second bottom metal strip serves as an antenna feed line, and the third bottom metal strip serves as a filter feed line.
Preferably, in an embodiment of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, the third bottom metal strip is provided with two open-circuit branches to provide a transmission zero of the independently controllable dual-band filter.
Compared to the prior art, embodiments of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the present disclosure, propose for the first time to use the virtual ground of the differential antenna to integrate and design a filter. In addition, a microstrip filter function can be further obtained using the reflective ground, thereby providing another independently controllable passband for the filter. This design has the characteristics of multi-function, small size, low loss, etc.
The present disclosure is further explained in conjunction with the accompanying drawings.
1. Dielectric substrate; 11. First bottom metal strip; 12. Second bottom metal strip; 13. Third bottom metal strip; 131. Open-circuit branch; 132. Fourth bottom metal strip; 14. Top metal layer; 141. First through-hole; 142. Second through-hole; 2. Rectangular dielectric resonator; 21. First metal strip; 22. Second metal strip; 23. Third metal strip; 212. Fourth metal strip; 3. Metal through-hole; 4. First metal column; 5. Second metal column.
The present disclosure is further explained in conjunction with the accompanying drawings and following embodiments.
In order to make the technical features, objectives, and effects of the present disclosure better understood, specific embodiments of the present disclosure are described in detail with reference to the accompanying drawings.
Referring to
Taking the embodiment of the present disclosure as an example, the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter is divided into two parts, namely, the antenna part and the filter part, for specific explanation according to
Ports 1-1′ are the differential ports of the differential antenna in the embodiment of the present disclosure, and are corresponding to the second bottom metal strip 12 which is arranged at the lower surface of the dielectric substrate 1. The ports 1-1′ are connected with the second metal strip 22 at a side wall of the rectangular dielectric resonator 2 through the first metal column 4 which passes through a first through-hole 141 which is etched at the top metal layer 14. Wherein the top metal layer 14 is located at the upper surface of the dielectric substrate 1. The second bottom metal strip 12 is a pair of 50Ω microstrip lines with a width of W0. The pair of 50Ω microstrip lines are symmetrically arranged at the first directional symmetry plane (xoz plane) of the rectangular dielectric resonator 2. The second metal strip 22 is a pair of T-shaped metal strips with dimensions of w1, l1 and h11. The pair of T-shaped metal strips are symmetrically arranged at both sides of the rectangular dielectric resonator 2 and parallel to the first directional symmetry plane. The ports 1-1′ are configured to excite the dominant mode TE11δ in the rectangular dielectric resonator. The electric field distribution of this mode is shown in
The virtual ground of the differential antenna of the embodiment of the present disclosure is used to design a bandpass filter.
In order to introduce a transmission zero between the passbands of the filter, two open-circuit branches 131 are added to the third bottom metal strip 13 at the feeding end of the dual passband filter.
The circuits of the first and second passbands of the dual-band filter function in the embodiment of the present disclosure are reflectively isolated, so that the two passbands can be independently controlled. Because the first passband of the filter is designed at the virtual ground, and there is a natural isolation of the reflective ground between the second passband and the antenna, the filter function and antenna function never affect each other and can work independently.
In order to clearly illustrate the partially independently controllable characteristics of the filter in the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter, according to the embodiment of the present disclosure, following parameter analysis is implemented. Wherein when one parameter changes, the other parameters remain unchanged.
The embodiment of the present disclosure optimizes dimension of each part, and the specific parameters are shown in the table below:
Software HFSS, Agilent E5230C network analyzer, and microwave anechoic chamber, are employed to simulate and measure the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter in the present disclosure. As shown in
Referring to
The simulated and measured results of the integrated structure of differential dielectric resonator antenna and independently controllable dual-band filter in the embodiment of the present disclosure, have achieved good consistency.
The embodiments of the present disclosure have been described above in conjunction with the accompanying drawings, but the present disclosure is not limited to the specific embodiments described above. The specific embodiments described above are only illustrative, not limiting. With the inspiration of the present disclosure, ordinary technical personnel in the art can also make many forms without departing from the scope protected by the purpose and claims of this disclose, all of which fall within the protection of the present disclosure.
In addition to the above embodiments, there may be other embodiments of the present disclosure. All technical solutions formed by equivalent replacement or equivalent transformation are within the protection scope required by the present disclosure.
Number | Date | Country | Kind |
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202011591320.0 | Dec 2020 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/134307 | 11/30/2021 | WO |