This application claims priority from Korean Patent Application No. 10-2015-0191260, filed Dec. 31, 2015, in the Korean Intellectual Property Office. The entire contents of said application is incorporated herein by reference for all purposes.
Technical Field
The present invention relates to an apparatus to create the uniform electric-field and magnetic-field distribution as zeroth-order resonance in a waveguide and a cavity and a leaky-wave waveguide antenna for high directivity radiation from 1 slot as a small structure.
Background Art
The rectangular waveguide is a transmission line guiding high frequency signals. In particular, it has excellent properties as a microwave transmission line with low loss, high quality-factor and high-power handling.
Meanwhile, the general waveguide illustrated in
Therefore, in case of forming a microwave resonator by opening or shortening both the ends of the waveguide, there is a problem that the energy of the electric field and magnetic field change up and down or left to right, thereby failing to convey the equal power-density over the entire internal space of the cavity, which causes a microwave oven or RF heater not to have the desirable heat distribution.
Also, as for the existing slot-array travelling-wave or leaky-wave antenna used for radar detectors, etc., since a plurality of slits separated by half-wavelength intervals need to be formed in order to generate a beam for good directivity, there is a problem that its size gets bigger and experiences more insertion loss.
(Patent document 1) KR10-1238258 B1
(Non-patent document 1) CRLH rectangular waveguide with balanced condition above cut-off frequency (Journal of KIEES, Volume 22, Issue 9, September 2011)
It is an objective of the present invention to provide an apparatus to create the uniform electric-field and magnetic-field distribution as zeroth-order resonance in a waveguide and a cavity, capable of conveying the equal power density over the entire volume of the waveguide applicable to microwave ovens, TEM-cells, RF heaters.
It is another objective of the present invention to provide a leaky-wave waveguide antenna for high directivity radiation, capable of obtaining a radiation pattern of high directivity while being 0.5 times smaller than the size of the existing leaky-wave antenna due to breaking the restriction of half-wavelength distances of the slot array.
In order to achieve the above objectives, the apparatus to create the uniform electric and magnetic-field distribution as zeroth-order resonance in a waveguide and a cavity according to an embodiment of the present invention includes a rectangular waveguide, and a conductive helical wire inserted into the cavity of the waveguide, wherein the main body of the conductive helical wire does not contact the inner surfaces of the waveguide at a predetermined gap, and both ends of the conductive helical wire are short-circuited to the inner surface of the waveguide, wherein the number of the turns and spacing between the pitches of the conductive helical wire are predetermined.
With regard to the apparatus to create uniform electric and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, the target zeroth-order resonance frequency of the waveguide will change the evanescent mode below the cut-off frequency of the waveguide to metamaterial left-handed region propagation mode or resonance mode.
Also, with regard to the apparatus to create uniform electric and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, the conductive helical wire may be arranged in the longitudinal direction of the waveguide and arranged to rotate along the inner surfaces of the waveguide.
Also, with regard to the apparatus to create uniform electric and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, the conductive helical wire may include a metal helical wire.
Also, with regard to the apparatus to create uniform electric and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, the conductive helical wire may have a repeated structure as long as two wavelengths as a whole by making two turns at a half-wavelength distance of the target zeroth-order resonance frequency in the longitudinal direction of the waveguide. The total length of the helical wire can be much less than two wavelengths.
In order to achieve a small waveguide antenna, the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention includes a rectangular waveguide with a rectangular-shaped cross section including a cavity in the inside, and a conductive helical wire inserted into the cavity of the waveguide, wherein the main body of the conductive helical wire does not contact the inner surfaces of the waveguide at a predetermined gap, and both ends of the conductive helical wire are short-circuited to the inner surface of the waveguide, wherein the waveguide comprises a single and length-variable slit formed in the longitudinal direction penetrating the upper surface.
With regard to the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention, the target zeroth-order resonance frequency of the waveguide will change the evanescent mode below the cut-off frequency of the waveguide to metamaterial left-handed region propagation mode or resonance mode.
Also, with regard to the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention, the conductive helical wire may be arranged in the longitudinal direction of the waveguide and arranged to rotate along the inner surfaces of the waveguide.
Also, with regard to the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention, the conductive helical wire may include a metal helical wire.
Also, with regard to the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention, the conductive helical may have a repeated structure as long as two wavelengths as a whole by making two turns at a half-wavelength distance of the target zeroth-order resonance frequency in the longitudinal direction of the waveguide.
According to the apparatus to create uniform electric and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, uniform electric field and magnetic field may be generated throughout the entire waveguide. Also, according to the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention, a pattern of high directivity radiation may be obtained while being 0.5 times smaller than the size of the existing leaky-wave antenna.
The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description and preferred embodiments when taken in conjunction with the accompanying drawings.
First of all, terms or words used in the specification and the claims should not be interpreted as a general and dictionary meaning and should be interpreted as a meaning and a concept which conform to the technical spirit of the present invention based on a principle that an inventor can appropriately define a concept of a term in order to describe his/her own disclosure by the best method.
As for reference numerals associated with parts in the drawings, the same reference numerals will refer to the same or like parts throughout the drawings.
Also, it will be understood that, although the terms “first,” “second,” “one side,” “the other side,” etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another.
In the following description, detailed explanation on known related technologies may be omitted to avoid unnecessarily obscuring the subject matter of the present invention.
Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings.
Referring to
The target zeroth-order resonance frequency of the waveguide 100 is obtained by changing an evanescent mode of the metallic waveguide or cavity which is initially equal to or less than the cut-off frequency (fc) of the waveguide 100 into a propagation mode as the double negative or left-handed region.
The conductive helical wire 102 may be arranged in the longitudinal direction (DL) of the waveguide 100 and arranged to rotate along the inner surfaces of the waveguide 100.
The conductive helical wire 102 has a repeated structure as long as two wavelengths as a whole by making two turns at a half-wavelength distance of the target zeroth-order resonance frequency in the longitudinal direction (DL) of the waveguide 100. The total length of the helical wire can be much less than two wavelengths.
The waveguide 100 does not transmit waves unless the operating frequency is equal to or greater than the cut-off frequency (fc), and thus there is no wave propagating. Also, the metal waveguide and cavity present a negative effective permittivity property unique to the waveguide in an evanescent mode.
The apparatus to create uniform electric-field and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention sets the target resonance frequency in the evanescent mode region, which is a region below the cut-off frequency (fc) of the waveguide 100 so that the waveguide 100 presents a unique negative effective permittivity property.
By adjusting the length, pitch-spacing, turns and thickness of the conductive helical wire 102, and length between the parts formed of capacitance therebetween in the conductive helical wire 102, the resonance frequency may be set in the evanescent mode region, which is a region below the cut-off frequency of the waveguide 100.
In
The apparatus to create uniform electric-field and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention illustrated in
Thus, due to the conductive helical wire 102 arranged inside the waveguide 100, the apparatus to create uniform electric-field and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention has negative effective permittivity below the cut-off frequency (fc) of the waveguide 100.
As mentioned above, as the apparatus to create uniform electric-field and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention has a negative effective permittivity below the cut-off frequency (fc) due to the unique properties of the waveguide 100 and has a negative effective permittivity due to the conductive helical wire 102 arranged in the cavity of the waveguide 100, zeroth-order resonance of composite right/left-handed (CRLH) structure occurs in the target resonance frequency below the cut-off frequency (fc) of the waveguide 100.
As zeroth-order resonance of CRLH structure occurs in the apparatus to create uniform electric-field and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, inside the waveguide 100, a magnetic field is created in one direction as illustrated in
Thus, according to the apparatus to create uniform electric-field and magnetic-field distribution as zeroth-order resonance in the waveguide and cavity according to an embodiment of the present invention, zeroth-order resonance of CRLH structure is created to create a uniform electric field and magnetic field throughout the entire waveguide 100. Accordingly, it may be applied to a microwave oven evenly cooking food or to an apparatus for electromagnetic perturbation or EMI measurement.
Meanwhile,
In the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention illustrated in
Although not illustrated in the drawings, a conductive helical wire 102 as illustrated in
The waveguide 500 illustrated in
As illustrated in
The structure of the leaky-wave waveguide antenna for high directivity radiation according to another embodiment of the present invention illustrated in
As illustrated in
The existing leaky-wave antenna obtains a directivity radiation beam only by having a plurality of slits separated by half-wavelength intervals, which results in ordinary slot-array as very long structures. However, the leaky-wave waveguide antenna for high directivity radiation according to an embodiment of the present invention illustrated in
Although exemplary embodiments of the present invention have been disclosed for illustrative purposes, it will be appreciated that the present invention is not limited thereto, and those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and purpose of the invention.
Accordingly, any and all modifications, variations or equivalent arrangements should be considered to be within the scope of the invention, and the detailed scope of the invention will be disclosed by the accompanying claims.
Number | Date | Country | Kind |
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10-2015-0191260 | Dec 2015 | KR | national |