CN102856659B - Artificial composite material and artificial composite material antenna - Google Patents

Artificial composite material and artificial composite material antenna Download PDF

Info

Publication number
CN102856659B
CN102856659B CN201110183471.7A CN201110183471A CN102856659B CN 102856659 B CN102856659 B CN 102856659B CN 201110183471 A CN201110183471 A CN 201110183471A CN 102856659 B CN102856659 B CN 102856659B
Authority
CN
China
Prior art keywords
composite material
artificial composite
theta
refractive index
described artificial
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN201110183471.7A
Other languages
Chinese (zh)
Other versions
CN102856659A (en
Inventor
刘若鹏
季春霖
岳玉涛
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Kuang Chi Institute of Advanced Technology
Kuang Chi Innovative Technology Ltd
Original Assignee
Kuang Chi Institute of Advanced Technology
Kuang Chi Innovative Technology Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Kuang Chi Institute of Advanced Technology, Kuang Chi Innovative Technology Ltd filed Critical Kuang Chi Institute of Advanced Technology
Priority to CN201110183471.7A priority Critical patent/CN102856659B/en
Priority to PCT/CN2011/082290 priority patent/WO2013004063A1/en
Priority to US13/522,958 priority patent/US9142891B2/en
Priority to EP11855266.0A priority patent/EP2731197A4/en
Publication of CN102856659A publication Critical patent/CN102856659A/en
Application granted granted Critical
Publication of CN102856659B publication Critical patent/CN102856659B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Abstract

The invention relates to an artificial composite material and an artificial composite material antenna. The artificial composite material is oppositely arranged in the electromagnetic wave propagation direction of a radiation source, wherein the included angle between the line connecting the radiation source and a point on a first surface of the artificial composite material and a straight line vertical to the artificial composite material is supposed to be theta; the included angle theta only corresponds to a curved surface in the artificial composite material; the refractive index of each part on the curved surface is the same; the generatrix of the curved surface is an elliptic arc; the refractive index of the artificial composite material gradually decreases along with increase of the included angle theta; and the electromagnetic waves are jetted from the top surface of each torus in parallel after passing through the artificial composite material. The artificial composite material and the artificial composite material antenna have the following beneficial effects that by designing the jump of the refractive index of the artificial composite material into a curved surface, the refraction, diffraction and reflection effects in the jump positions are greatly reduced and the problems caused by mutual interference are reduced, so that the artificial composite material and the artificial composite material antenna have more excellent performances.

Description

A kind of artificial composite material and manual composite material antenna
Technical field
The present invention relates to electromagnetic arts, more particularly, relate to a kind of artificial composite material and manual composite material antenna.
Background technology
In the optics of routine, utilize lens that plane wave can be made after lens reflection to become spherical wave, this spherical wave seems give off from the point-source of light lens virtual focus.Dispersing of current lens relies on the refraction of the spherical shape of lens to realize.Inventor, in enforcement process of the present invention, finds that lens antenna at least exists following technical problem: the volume of lens is large and heavy, is unfavorable for miniaturized use; Lens have very large dependence for shape, need the direction propagation that more precisely could realize antenna; Reflection of electromagnetic wave interference and loss ratio are comparatively serious, and electromagnetic energy reduces.And the saltus step of the refractive index of most lens antenna is simple and perpendicular to the straight line of lens surface along one, causes electromagnetic wave comparatively large through the refraction of lens, diffraction and reflection, have a strong impact on lens performance.
Summary of the invention
The technical problem to be solved in the present invention is, the defect comparatively large for the above-mentioned refraction of prior art, diffraction and reflection, lens performance is poor, provides a kind of high performance artificial composite material and manual composite material antenna.
The technical solution adopted for the present invention to solve the technical problems is: construct a kind of artificial composite material, be relatively arranged on electromagnetic wave propagation direction, plane electromagnetic wave incides the first surface of described artificial composite material and penetrates with the form of spherical wave at the second surface relative with described first surface; Injection electromagnetic wave oppositely extend intersect at described artificial composite material virtual focus on;
If on virtual focus and described artificial composite material second surface any line and perpendicular to artificial composite material straight line between angle be θ, a curved surface in the unique corresponding described artificial composite material of angle theta, the set with the point of identical angle theta forms the border of the unique corresponding curved surface of angle theta, and the refractive index of everywhere is all identical on the unique corresponding curved surface of angle theta, the bus of described curved surface is elliptic arc; The refractive index of described artificial composite material increases gradually along with the increase of angle theta.
In artificial composite material of the present invention, the refraction index profile of described curved surface meets:
n ( θ ) = 1 S ( θ ) [ ( F + d ) cos θ - ( F + d ) + n min d ] ;
Wherein S (θ) arc length that is described elliptic arc, F is the distance of described virtual focus to described artificial composite material, and d is the thickness of described artificial composite material; n minfor the minimum refractive index of described artificial composite material.
In artificial composite material of the present invention, with through the center of described artificial composite material second surface and perpendicular to the straight line of described artificial composite material for axis of abscissas, to be parallel to the straight line of described second surface for axis of ordinates through the center of described artificial composite material second surface, the elliptic equation at described elliptic arc place is:
( x - d ) 2 a 2 + ( y - c ) 2 b 2 = 1 ;
And a, b, the c in above formula meets following relation:
d 2 a 2 + [ ( F + d ) tan θ - c ] 2 b 2 = 1 ;
sin θ n 2 ( θ ) - sin 2 ( θ ) = b 2 a 2 d ( F + d ) tan θ - c .
In artificial composite material of the present invention, the ellipse at described elliptic arc place be centrally located on described first surface, coordinate is (d, c).
In artificial composite material of the present invention, the refraction angle of the point on the second surface corresponding to angle theta is θ ', and the refractive index of this point is n (θ), meets:
n ( θ ) = sin θ sin θ ′ .
The present invention also provides a kind of manual composite material antenna, comprises radiation source and is arranged on the artificial composite material on Electromagnetic Wave Propagation direction; Plane electromagnetic wave incides the first surface of described artificial composite material and penetrates with the form of spherical wave at the second surface relative with described first surface; Injection electromagnetic wave oppositely extend intersect at described artificial composite material virtual focus on;
If on virtual focus and described artificial composite material second surface any line and perpendicular to artificial composite material straight line between angle be θ, a curved surface in the unique corresponding described artificial composite material of angle theta, the set with the point of identical angle theta forms the border of the unique corresponding curved surface of angle theta, and the refractive index of everywhere is all identical on the unique corresponding curved surface of angle theta, the bus of described curved surface is elliptic arc; The refractive index of described artificial composite material increases gradually along with the increase of angle theta.
In manual composite material antenna of the present invention, the refraction index profile of described curved surface meets:
n ( θ ) = 1 S ( θ ) [ ( F + d ) cos θ - ( F + d ) + n min d ] ;
Wherein S (θ) arc length that is described elliptic arc, F is the distance of described virtual focus to described artificial composite material, and d is the thickness of described artificial composite material; n minfor the minimum refractive index of described artificial composite material.
In manual composite material antenna of the present invention, with through the center of described artificial composite material second surface and perpendicular to the straight line of described artificial composite material for axis of abscissas, to be parallel to the straight line of described second surface for axis of ordinates through the center of described artificial composite material second surface, the elliptic equation at described elliptic arc place is:
( x - d ) 2 a 2 + ( y - c ) 2 b 2 = 1 ;
And a, b, the c in above formula meets following relation:
d 2 a 2 + [ ( F + d ) tan θ - c ] 2 b 2 = 1 ;
sin θ n 2 ( θ ) - sin 2 ( θ ) = b 2 a 2 d ( F + d ) tan θ - c .
In manual composite material antenna of the present invention, the ellipse at described elliptic arc place be centrally located on described first surface, coordinate is (d, c).
In manual composite material antenna of the present invention, the refraction angle of the point on the second surface corresponding to angle theta is θ ', and the refractive index of this point is n (θ), meets:
n ( θ ) = sin θ sin θ ′ .
Implement technical scheme of the present invention, there is following beneficial effect: the saltus step of the refractive index of artificial composite material is designed to the curved that bus is elliptic arc, thus greatly reduce the refraction of saltus step place, diffraction and reflection effect, alleviate the problem interfering with each other and bring, make artificial composite material and manual composite material antenna have more excellent performance.
Accompanying drawing explanation
Below in conjunction with drawings and Examples, the invention will be further described, in accompanying drawing:
Fig. 1 is that the artificial composite material of foundation one embodiment of the invention is to electromagnetic disperse function schematic diagram;
Fig. 2 is the schematic shapes of the unique corresponding curved surface of an angle theta in the artificial composite material 10 shown in Fig. 1;
Fig. 3 show in Fig. 2 the end view of artificial composite material 10;
Fig. 4 is the elliptic arc schematic diagram shown in Fig. 3;
Fig. 5 is the schematic diagram of variations in refractive index;
Fig. 6 is the coordinate schematic diagram of elliptic arc;
Fig. 7 is the refractive index profile in yx plane.
Embodiment
Fig. 1 is that artificial composite material 10 is relatively arranged on the Electromagnetic Wave Propagation direction of radiation source according to the artificial composite material 10 of one embodiment of the invention to electromagnetic disperse function schematic diagram.Plane electromagnetic wave incides the first surface A of described artificial composite material and penetrates with the form of spherical wave at the second surface B relative with first surface A.The electromagnetic wave of injection oppositely extends and intersects on the virtual focus J of described artificial composite material.
As common practise, we are known, electromagnetic refractive index with proportional, when a branch of electromagnetic wave by a kind of Medium Propagation to another medium time, electromagnetic wave can reflect, when the refraction index profile of material inside is non-homogeneous, electromagnetic wave will to the larger position deviation of refractive index ratio, by the electromagnetic parameter of every bit in design artificial composite material, just can adjust the refraction index profile of artificial composite material, and then reach the object changing electromagnetic wave propagation path.
Fig. 2 is the schematic shapes of the unique corresponding curved surface of an angle theta in the artificial composite material 10 shown in Fig. 1.As shown in the figure, if virtual focus J and artificial composite material 10 second surface B (surface relative with A) upper any line and through artificial composite material 10 first surface A center O and perpendicular to artificial composite material 10 straight line between angle be θ, a curved surface Cm in the unique corresponding described artificial composite material 10 of angle theta, the set with the point of identical angle theta forms the border (being illustrated as circle 11) of the unique corresponding curved surface Cm of angle theta, and the refractive index of everywhere is all identical on the unique corresponding curved surface Cm of angle theta, the bus of this curved surface is elliptic arc m.The refractive index of artificial composite material 10 increases gradually along with the increase of angle theta.
As shown in Figure 2, the bus of curved surface Cm is elliptic arc m, and curved surface Cm to be rotated around L by elliptic arc m straight line and forms.Fig. 3 shows the end view of artificial composite material 10.The thickness of artificial composite material 10 is as shown in figure d, and L represents the straight line perpendicular to artificial composite material.The side cross-sectional, view of the curved surface that refractive index is identical is two sections of elliptic arcs, symmetrical relative to L.Elliptic arc shown in solid line is the bus of a virtual curved face in artificial composite material 10.In order to the refractive index more clearly described on identical curved surface is identical, the virtual curved face (reality does not exist, and is for convenience, the curved surface fictionalized) of artificial composite material inside is also set forth.As shown in Figure 4, radiation source and upper 1 O1 of artificial composite material second surface B line and through first surface center O and perpendicular to artificial composite material 10 straight line L between angle be θ 1, corresponding elliptic arc is m1, and on the virtual curved face that this elliptic arc m1 rotates, the refractive index of everywhere is all identical.In like manner, the angle on radiation source and artificial composite material second surface between the line of 1 O2 and straight line L is θ 2, corresponding elliptic arc is m2, and on the virtual curved face that this elliptic arc m2 rotates, the refractive index of everywhere is all identical.
The refraction index profile of virtual curved face meets: n ( θ ) = 1 S ( θ ) [ ( F + d ) cos θ - ( F + d ) + n min d ] . As shown in Figure 5, the wherein arc length of S (θ) bus (elliptic arc m) that is virtual curved face, F is the distance of virtual focus J to artificial composite material 10, and d is the thickness of artificial composite material 10; n minfor the minimum refractive index of artificial composite material.
As shown in Figure 6, with through artificial composite material 10 second surface center O and perpendicular to the straight line L of artificial composite material 10 for axis of abscissas, with through artificial composite material 10 second surface center O and be parallel to the straight line of second surface for axis of ordinates, on virtual focus J and B face, the line of any point O ' and the angle of x-axis are θ.The elliptic equation at the elliptic arc m place on ellipse shown in solid line is: oval is centrally located on first surface A, and coordinate is (d, c).This ellipse is through point (0, (F+d) tan θ), i.e. y (0)=(F+d) tan θ, substituting into ellipse formula can obtain when plane wave incidence is to artificial composite material, electromagnetic wave need be made parallel with x-axis at the tangent line of the elliptic arc of artificial composite material first surface A, namely ensure y ' (d)=0.Because on ellipse, the tangential equation at any point (x, y) place is y ' (d)=0 can be met thus.The direction of the electromagnetic exit direction of any point O ' to be the center of circle the be radius JO ' at center of circle J and this O ' place in the ball E of J on B face, also namely perpendicular to the direction on ball E surface.
The refraction angle of the some O ' on the second surface B corresponding to angle theta is θ ', and the refractive index of this point is n (θ), according to Snell's law: electromagnetic wave arrives the second surface B of artificial composite material 10 during from the external world, electromagnetic wave propagates (as shown in Figure 6) along the tangential direction of refraction angle θ ' correspondence, that is meets y ' (0 in the position of elliptic arc m infinite approach O ' +)=tan θ ', can obtain following relational expression thus:
y ′ ( 0 + ) = tan θ ′ = sin θ n 2 ( θ ) - sin 2 ( θ ) = b 2 a 2 d ( F + d ) tan θ - c ;
sin θ n 2 ( θ ) - sin 2 ( θ ) = b 2 a 2 d ( F + d ) tan θ - c .
A curved surface in the unique corresponding artificial composite material of angle theta, this curved surface is rotated around L (x-axis) by bus m, and on unique this corresponding curved surface of angle theta, the refractive index of everywhere is all identical.
Be understandable that, as a=b in ellipse, ovally just become real circle; And the elliptic arc of correspondence just becomes circular arc, curved surface is exactly the curved surface that circular arc rotates around L (x-axis).
Artificial composite material can be used for the plane wave-wave of radiation emission to be converted to spherical wave.Its refractive index is along with the increase of angle theta is from n minincrease to n max, as shown in Figure 7.Oval segmental arc on ellipse shown in solid line is the bus of a virtual curved face, and the refractive index on identical curved surface is identical.Be understandable that, artificial composite material provided by the invention also can be applicable to the situation that spherical wave is converted to plane wave, is also the reversible sight in Fig. 1, and the structure of artificial composite material itself is without the need to changing.Therefore, as long as the various application scenarioss applied principle of the present invention and carry out all belong to protection scope of the present invention.
Artificial composite material, when the structural design of reality, can be designed as multiple artificial composite material lamella, and each lamella comprises the substrate of sheet and multiple man-made microstructure of adhering on the substrate or artificial foramen structure.Refraction index profile demand fulfillment overall after multiple artificial composite material lamella combines or approximately meet above-mentioned formula, make the refraction index profile on same curved surface identical, the busbar of curved surface is elliptic arc.Certainly, when actual design, it is more difficult to be designed to accurate elliptic arc, and can be designed to the elliptic arc that is similar to or stepped as required, concrete levels of precision can be selected according to needs.Along with the continuous progress of technology, the mode of design also can be constantly updated, and may have better artificial composite material design technology to realize refractive index provided by the invention arrangement.
For man-made microstructure, each described man-made microstructure is the plane with geometrical pattern or stereochemical structure that are made up of wire, such as but not limited to " ten " font, plane flakes, stereo snow flake shape.Wire can be copper wire or filamentary silver, and the method for carving by etching, electroplating, bore quarter, photoetching, electronics quarter or ion is attached on substrate.In artificial composite material, multiple man-made microstructure makes the refractive index of Meta Materials increase along with the increase of angle theta.When incident electromagnetic wave is determined, by the topological pattern of appropriate design man-made microstructure and the arrangement of man-made microstructure in electromagnetic wave converging element of different size, just can adjust the refraction index profile of artificial composite material, and then the electromagnetic wave spherical wave formal transformation realizing plane form is the electromagnetic wave dispersed.
In order to represent artificial composite material lamella refractive index refractive index regularity of distribution on xy face more intuitively, unit identical for refractive index is connected into a line, and the size of refractive index is represented with the density of line, the closeer refractive index of line is larger, then meet the refraction index profile of the Meta Materials of above all relational expressions as shown in Figure 7.
The present invention also provides a kind of manual composite material antenna, except comprising artificial composite material 10 as depicted in figs. 1 and 2, also comprise the radiation source being arranged on artificial composite material 10 side, the concrete structure of artificial composite material 10 and variations in refractive index as described above, repeat no more herein.
Previously described artificial composite material can be the shape shown in Fig. 2, and can certainly be made into is that other desired shape is such as circular etc., as long as can meet previously described variations in refractive index rule.
When practical application, in order to make the performance of artificial composite material better, reducing reflection, in artificial composite material both sides, all impedance matching layer can be set.Content about impedance matching layer see prior art data, can repeat no more herein.
The present invention is designed to curved in the saltus step of the refractive index of artificial composite material, thus greatly reduces the refraction of saltus step place, diffraction and reflection effect, alleviates the problem interfering with each other and bring, makes artificial composite material have more excellent performance.
By reference to the accompanying drawings embodiments of the invention are described above; but the present invention is not limited to above-mentioned embodiment; above-mentioned embodiment is only schematic; instead of it is restrictive; those of ordinary skill in the art is under enlightenment of the present invention; do not departing under the ambit that present inventive concept and claim protect, also can make a lot of form, these all belong within protection of the present invention.

Claims (6)

1. an artificial composite material, is characterized in that, is relatively arranged on electromagnetic wave propagation direction, and plane electromagnetic wave incides the first surface of described artificial composite material and penetrates with the form of spherical wave at the second surface relative with described first surface; Injection electromagnetic wave oppositely extend intersect at described artificial composite material virtual focus on;
If on virtual focus and described artificial composite material second surface any line and perpendicular to artificial composite material straight line between angle be θ, a curved surface in the unique corresponding described artificial composite material of angle theta, the set with the point of identical angle theta forms the border of the unique corresponding curved surface of angle theta, and the refractive index of everywhere is all identical on the unique corresponding curved surface of angle theta, the bus of described curved surface is elliptic arc; The refractive index of described artificial composite material increases gradually along with the increase of angle theta;
The refraction index profile of described curved surface meets:
n ( θ ) = 1 S ( θ ) [ ( F + d ) cos θ - ( F + d ) + n min d ] ;
Wherein S (θ) arc length that is described elliptic arc, F is the distance of described virtual focus to described artificial composite material first surface, and d is the thickness of described artificial composite material; n minfor the minimum refractive index of described artificial composite material;
With through the center of described artificial composite material second surface and perpendicular to the straight line of described artificial composite material for axis of abscissas, to be parallel to the straight line of described second surface for axis of ordinates through the center of described artificial composite material second surface, the elliptic equation at described elliptic arc place is:
( x - d ) 2 a 2 + ( y - c ) 2 b 2 = 1 ;
And a, b, the c in above formula meets following relation:
d 2 a 2 + [ ( F + d ) tan θ - c ] 2 b 2 = 1 ;
sin θ n 2 ( θ ) - sin 2 ( θ ) = b 2 a 2 d ( F + d ) tan θ - c .
2. artificial composite material according to claim 1, is characterized in that, the ellipse at described elliptic arc place be centrally located on described first surface, coordinate is (d, c).
3. artificial composite material according to claim 1, is characterized in that, the refraction angle being positioned at described artificial composite material at the some place on the second surface corresponding to angle theta is θ ', and the refractive index of this point is n (θ), meets:
n ( θ ) = sin θ sin θ ′ .
4. a manual composite material antenna, is characterized in that, comprises radiation source and is arranged on the artificial composite material on Electromagnetic Wave Propagation direction; Plane electromagnetic wave incides the first surface of described artificial composite material and penetrates with the form of spherical wave at the second surface relative with described first surface; Injection electromagnetic wave oppositely extend intersect at described artificial composite material virtual focus on;
If on virtual focus and described artificial composite material second surface any line and perpendicular to artificial composite material straight line between angle be θ, a curved surface in the unique corresponding described artificial composite material of angle theta, the set with the point of identical angle theta forms the border of the unique corresponding curved surface of angle theta, and the refractive index of everywhere is all identical on the unique corresponding curved surface of angle theta, the bus of described curved surface is elliptic arc; The refractive index of described artificial composite material increases gradually along with the increase of angle theta;
n ( θ ) = 1 S ( θ ) [ ( F + d ) cos θ - ( F + d ) + n min d ] ;
Wherein S (θ) arc length that is described elliptic arc, F is the distance of described virtual focus to described artificial composite material first surface, and d is the thickness of described artificial composite material; n minfor the minimum refractive index of described artificial composite material;
With through the center of described artificial composite material second surface and perpendicular to the straight line of described artificial composite material for axis of abscissas, to be parallel to the straight line of described second surface for axis of ordinates through the center of described artificial composite material second surface, the elliptic equation at described elliptic arc place is:
( x - d ) 2 a 2 + ( y - c ) 2 b 2 = 1 ;
And a, b, the c in above formula meets following relation:
d 2 a 2 + [ ( F + d ) tan θ - c ] 2 b 2 = 1 ;
sin θ n 2 ( θ ) - sin 2 ( θ ) = b 2 a 2 d ( F + d ) tan θ - c .
5. manual composite material antenna according to claim 4, is characterized in that, the ellipse at described elliptic arc place be centrally located on described first surface, coordinate is (d, c).
6. manual composite material antenna according to claim 5, is characterized in that, the refraction angle being positioned at described artificial composite material at the some place on the second surface corresponding to angle theta is θ ', and the refractive index of this point is n (θ), meets:
n ( θ ) = sin θ sin θ ′ .
CN201110183471.7A 2011-07-01 2011-07-01 Artificial composite material and artificial composite material antenna Active CN102856659B (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
CN201110183471.7A CN102856659B (en) 2011-07-01 2011-07-01 Artificial composite material and artificial composite material antenna
PCT/CN2011/082290 WO2013004063A1 (en) 2011-07-01 2011-11-16 Artificial composite material and antenna thereof
US13/522,958 US9142891B2 (en) 2011-07-01 2011-11-16 Man-made composite material and man-made composite material antenna
EP11855266.0A EP2731197A4 (en) 2011-07-01 2011-11-16 Artificial composite material and antenna thereof

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201110183471.7A CN102856659B (en) 2011-07-01 2011-07-01 Artificial composite material and artificial composite material antenna

Publications (2)

Publication Number Publication Date
CN102856659A CN102856659A (en) 2013-01-02
CN102856659B true CN102856659B (en) 2015-02-04

Family

ID=47403005

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201110183471.7A Active CN102856659B (en) 2011-07-01 2011-07-01 Artificial composite material and artificial composite material antenna

Country Status (1)

Country Link
CN (1) CN102856659B (en)

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN201515017U (en) * 2009-11-04 2010-06-23 东南大学 lens antenna
CN101978462A (en) * 2008-02-29 2011-02-16 希尔莱特有限责任公司 Electromagnetic cloaking and translation apparatus, methods, and systems

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP4669744B2 (en) * 2005-06-20 2011-04-13 独立行政法人理化学研究所 OPTICAL MATERIAL, OPTICAL ELEMENT USING SAME, AND MANUFACTURING METHOD THEREOF
US7733289B2 (en) * 2007-10-31 2010-06-08 The Invention Science Fund I, Llc Electromagnetic compression apparatus, methods, and systems

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101978462A (en) * 2008-02-29 2011-02-16 希尔莱特有限责任公司 Electromagnetic cloaking and translation apparatus, methods, and systems
CN201515017U (en) * 2009-11-04 2010-06-23 东南大学 lens antenna

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
Random Gradient Index Metamaterials;Ruopeng Liu, et al.;《Metamaterials, 2008 International Workshop on》;20081112;第248-250页 *

Also Published As

Publication number Publication date
CN102856659A (en) 2013-01-02

Similar Documents

Publication Publication Date Title
CN102738592B (en) Meta-material for realizing deflection of electromagnetic waves
CN102800976B (en) Metamaterial and metamaterial antenna
CN102790275B (en) Electromagnetic wave beam splitter
CN102904052B (en) Artificial composite and artificial composite antenna
CN102856659B (en) Artificial composite material and artificial composite material antenna
CN102810751B (en) Metamaterial and metamaterial antenna
CN102856660B (en) Artificial composite material and artificial composite material antenna
CN102904031B (en) Artificial composite material and antenna made of same
CN102904058B (en) Metamaterial
CN102904060B (en) Artificial composite material and artificial composite material antenna
CN102904054B (en) Artificial composite material and artificial composite material antenna
CN102904056B (en) Manual composite material and manual composite material antenna
CN102904059B (en) Artificial composite material and artificial composite material antenna
CN102810752B (en) Metamaterial and metamaterial antenna
CN102810750B (en) Metamaterial and metamaterial antenna
CN102904053B (en) Artificial composite material and artificial composite material antenna
US9142892B2 (en) Metamaterial and metamaterial antenna
CN102904062B (en) Convergence element
US9142891B2 (en) Man-made composite material and man-made composite material antenna
EP2728669A1 (en) Metamaterial and metamaterial antenna
CN102709693B (en) High-gain antenna housing and antenna system
CN102904067B (en) Antenna
CN102904029B (en) Metamaterial antenna
CN103036063B (en) A kind of lens antenna
CN102769193B (en) Metamaterial with electromagnetic wave divergent function

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C14 Grant of patent or utility model
GR01 Patent grant