The disclosure generally relates to the field of communications technologies, and more specifically, to an integrated wave-absorbing and wave-transparent apparatus and a radome.
With continuous development of modern electromagnetic technologies, electromagnetic spectrums are divided in an increasingly fine-grained manner, and a boundary is increasingly unclear. In addition, the development of the electromagnetic technologies also leads to electromagnetic pollution that threatens human existence. Currently, wave absorption is an important means to ensure electromagnetic compatibility and control electromagnetic pollution between different frequency bands. However, wave absorption also faces some problems. A wave-absorbing structure usually has no wave-transparent capability, thereby causing a particular degree of interference to operating of a radio device that should operate properly.
Currently, common integrated wave-absorbing and wave-transparent structures are in a plurality of forms. Metal narrowbands are applied to metal strips loaded on a lumped resistor to manufacture a capacitor and an inductor, so that this LC circuit can localize energy in the LC circuit at a specific frequency, to isolate the resistor and achieve a wave-transparent effect.
This structure can implement integration of wave-absorbing and wave-transparent functions. However, because sizes of the capacitor and the inductor manufactured by using the metal narrowbands are very small, a very high requirement is imposed on processing. In addition, a capacitance and an inductance change accordingly after an incident angle changes. Consequently, loop resonance changes, thereby affecting wave-absorbing and wave-transparent performance.
For the disadvantages of the related art, the disclosure provides an integrated wave-absorbing and wave-transparent structure that achieves a high wave transmittance in an L band and a high absorption rate in a Ku band within a wide angular-domain range, and a radome including the structure.
According to an embodiment of the disclosure, an integrated wave-absorbing and wave-transparent apparatus is provided, including: a wave-transparent structure, including a first substrate and a metal patch unit located on opposite surfaces of the first substrate; and a wave-absorbing structure, disposed on the wave-transparent structure and including a first wave-absorbing unit and a second wave-absorbing unit that are perpendicular to each other, where the first wave-absorbing unit and the second wave-absorbing unit each includes: a second substrate; and a plurality of metal sections and a plurality of stop-bands that are located on surfaces of the second substrate, where the plurality of metal sections and the plurality of stop-bands are connected alternately to form an absorption ring, and the metal patch unit is configured to be perpendicular to each of an absorption ring of the first wave-absorbing unit and an absorption ring of the second wave-absorbing unit.
Preferably, the plurality of stop-bands include a first stop-band and a second stop-band that are the same; and the plurality of metal sections include a first metal section and a second metal section, where the first metal section, the second metal section, the first stop-band, and the second stop-band are connected to jointly form an absorption ring, the first stop-band is located between a first end of the first metal section and a first end of the second metal section, and the second stop-band is located between a second end of the first metal section and a second end of the second metal section.
Preferably, the first metal section and the second metal section each include a semicircular ring and parallel metal sections that extend from two ends of the semicircular ring.
Preferably, the metal patch unit includes a metal solid patch or a metal ring patch.
Preferably, a length of a center line of the metal ring patch is an integer multiple of a wavelength corresponding to a resonance frequency of the metal patch unit.
Preferably, the metal ring patch further includes an inner ring and an outer ring that are concentric; the inner ring is located on a first surface of the first substrate; and the outer ring is located on a second surface of the first substrate, where the first surface is opposite to the second surface, and the length of the center line of the metal ring patch is an average value of a length of the inner ring and a length of the outer ring.
Preferably, the wave-transparent structure further includes: a first dielectric layer, located on the first surface of the first substrate and covering the inner ring; and a second dielectric layer, located on the second surface of the first substrate and covering the outer ring.
Preferably, the inner ring and the outer ring each is a square ring, a rectangular ring, a circular ring, or a hexagonal ring.
Preferably, the stop-band further includes an inductor and/or a capacitor.
According to another aspect of the disclosure, a radome is provided, wherein the radome includes the integrated wave-absorbing and wave-transparent apparatus according to any one of the foregoing aspects.
In the disclosure, a three-dimensional metamaterial and a simple two-dimensional frequency selection surface are cascaded, and a structure is simple. The integrated wave-absorbing and wave-transparent apparatus according to the embodiments of the disclosure can achieve a high wave transmittance in an L band and a high absorption rate in a Ku band within a wide angular-domain range. The integrated wave-absorbing and wave-transparent apparatus may be used as a protection cover of a device such as a communications antenna or a radar, and can ensure absorption in a wide frequency band and a wide angular domain while ensuring normal operating of an antenna, thereby ensuring a good operating environment for the antenna.
To describe the technical solutions in the embodiments of the disclosure or in the related art more clearly, the following briefly describes the accompanying drawings required for describing the embodiments or the related art. Apparently, the accompanying drawings in the following description show some embodiments of the disclosure, and persons of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
To make the objectives, technical solutions, and advantages of the embodiments of the disclosure clearer, the following clearly and completely describes the technical solutions in the embodiments of the disclosure with reference to the accompanying drawings in the embodiments of the disclosure. Apparently, the described embodiments are some but not all of the embodiments of the disclosure. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments of the disclosure without creative efforts shall fall within the protection scope of the disclosure.
In the disclosure, a wave-absorbing structure and a wave-transparent structure are separately designed and then cascaded to implement an integrated wave-absorbing and wave-transparent apparatus. A currently used method is: superposing an incident wave and a reflected wave that is produced after an incident wave undergoes resonant reflection on the wave-transparent structure, and after the superposition, disposing a resistor at a position with relatively strong electric field intensity to absorb electromagnetic waves. Therefore, the wave-transparent structure needs to have a high wave transmittance in a low L band and have a high cut-off feature in a Ku band. In addition, for the wave-absorbing structure, a resistor needs to be disposed at a position with relatively strong electric field intensity after an incident wave and a reflected wave are superposed in the Ku band, and needs to have a high wave transmittance in the L band. The L band is a radio band including a frequency ranging from 1 GHz to 2 GHz, and the Ku band is a frequency band ranging from 12.75 GHz to 18.1 GHz.
Referring to
According to this embodiment of the disclosure, the wave-transparent structure has a high wave transmittance in an L band, and the wave-absorbing structure has a high absorption rate in a Ku band. Therefore, the integrated wave-absorbing and wave-transparent apparatus including the cascaded wave-transparent structure and wave-absorbing structure can implement high wave transmission in the L band and high absorption in the Ku band, to effectively improve an operating environment of a radio device.
The following describes in detail the wave-absorbing structure with reference to
Referring to
The following describes in detail the wave-transparent structure with reference to
In a specific example of the disclosure, the wave-transparent structure needs to have a high wave transmittance in an L band and have a high cut-off feature in a Ku band. Therefore, a frequency selection surface (FSS) may be used for implementation. However, it is difficult for a single metal patch or metal ring structure to implement cut-off in such a wide frequency band as the entire Ku band. Therefore, multi-layer band-stop microstructures at different resonance frequencies may be superposed for implementation. In addition, a length of a center line of a simple metal ring patch unit, that is, an average value of lengths of an inner ring and an outer ring of the unit, and a wavelength corresponding to a resonance frequency of the unit are in an integer multiple relationship, and a wavelength corresponding to order-1 resonance of the unit may be made to approach the length of the center line, to well control the resonance frequency. Therefore, in the technical solutions in the disclosure, the metal ring patch unit is used to implement the wave-transparent structure.
In a specific example of the wave-absorbing structure, the wave-absorbing structure needs to have a high wave transmittance at a low frequency and have a high absorption feature in a Ku band. In the technical solutions in the disclosure, a used wave absorption manner is: reflecting electromagnetic waves at a frequency at which absorption is required, and absorbing the electromagnetic waves at a position in which incident waves and reflected waves are superposed. In addition, a three-dimensional wave-absorbing structure is further used. Resistors are designed at positions that correspond to the two stop-bands of the wave-absorbing structure and in which an electric field is enhanced through superposition of incident waves and reflected waves. Metal semicircular rings and metal structure extensions are used to connect the two resistors in an incident direction to form a loop, so as to convert energy into internal energy of the resistors and achieve an objective of absorption. This can meet a wave absorption requirement of the entire Ku band.
The following gives description by using an example. As shown in
For clarity,
It can be learned from
The disclosure may be used as a protection cover of a device such as a communications antenna or a radar, and can ensure absorption in a wide frequency band and a wide angular domain while ensuring normal operating of an antenna, thereby ensuring a good operating environment for the antenna.
According to an embodiment of the disclosure, a radome is further provided. The radome includes the foregoing integrated wave-absorbing and wave-transparent apparatus. The integrated wave-absorbing and wave-transparent apparatus includes: a wave-transparent structure, including a first substrate and a metal patch unit located on opposite surfaces of the substrate; and a wave-absorbing structure, located above the wave-transparent structure and including a first wave-absorbing unit and a second wave-absorbing unit that are perpendicular to each other, where the first wave-absorbing unit and the second wave-absorbing unit each includes: a second substrate; a plurality of metal sections located on surfaces of the second substrate; and a plurality of stop-bands located on the surfaces of the second substrate and at positions in which a reflected wave produced by an incident wave on the wave-transparent structure is superposed with the incident wave for enhancement, where the plurality of metal sections and the plurality of stop-bands are connected alternately to form an absorption ring, and the metal patch unit is configured to be perpendicular to each of an absorption ring of the first wave-absorbing unit and an absorption ring of the second wave-absorbing unit.
In the disclosure, a three-dimensional metamaterial and a simple two-dimensional frequency selection surface are cascaded, and a structure is simple. The integrated wave-absorbing and wave-transparent apparatus according to the embodiments of the disclosure can achieve a high wave transmittance in an L band and a high absorption rate in a Ku band within a wide angular-domain range. The integrated wave-absorbing and wave-transparent apparatus may be used as a protection cover of a device such as a communications antenna or a radar, and can ensure absorption in a wide frequency band and a wide angular domain while ensuring normal operating of an antenna, thereby ensuring a good operating environment for the antenna.
Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the disclosure, but not for limiting the disclosure. Although the disclosure is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some or all technical features thereof, without departing from the scope of the technical solutions of the embodiments of the disclosure.
Number | Date | Country | Kind |
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201810842877.3 | Jul 2018 | CN | national |
201821205561.5 | Jul 2018 | CN | national |
Number | Date | Country | |
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Parent | PCT/CN2018/125126 | Dec 2018 | US |
Child | 17157206 | US |