INVISIBILITY CLOAKING DEVICE
20200240752 ยท 2020-07-30
Inventors
Cpc classification
H01Q5/30
ELECTRICITY
F41H3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01Q15/0086
ELECTRICITY
H01Q15/006
ELECTRICITY
International classification
F41H3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to invisibility device in, particular to electromagnetic cloaking devices and their method of making the same. The present invention is related to designing the cloak device with a base made of first material and strips of second material placed on the said base. The present invention proposed a design strategy through which cloaking at multi band can be achieved even with single layer of cloaking device.
Claims
1) An invisibility cloaking device, comprising: a base made of first material and a plurality of arrays of one or morestrips placed over said base wherein strips are made of second material; and the arrays have any one of following characteristics: no strips placed in an array have a geometry similar to the strips placed in another array or arrays of strips are aperiodically placed or a combination thereof
2) The invisibility cloaking device as claimed in claim 1, wherein said device is an electromagnetic cloaking device.
3) The invisibility cloaking device as claimed in claim 1 or 2, wherein said device is a single layered multi band cloaking device.
4) The invisibility cloaking device as claimed in any one of claims 1 to 3, wherein first material is made out of dielectric material and second material is made out of conductivematerial or vice versa.
5) The invisibility cloaking device as claimed in any one of claims 1 to 4, scattered impedance of an object to be cloaked and the base is equal to impedances of the plurality of arrays of one or more strips placed over the base.
Description
BRIEF DESCRIPTION OF VISUAL ILLUSTRATION
[0006] The results and features of present invention are illustrated using graphs and drawings and are referred as FIG. followed by its numerical reference. Only figures that are most significant to illustrate the present invention are disclosed. However, the present disclosure is not limited to such figures alone. Following are the description or caption of those visual illustrations.
[0007]
[0008]
DETAILED DESCRIPTION
[0009] Hereinafter, the proposed electromagnetic (EM) cloaking will be explained in detail along with the method of making the same. The visual illustrations are referred wherever required while detailing the invention. It may be noted here that the invention thus disclosed is not limited either by following descriptions or embodiments.
[0010] The present disclosure is about an invisibility cloaking device, in particular, to an EM cloaking device. In an embodiment, the said cloaking device comprising a base and a plurality of arrays of one or more strips placed over said base wherein the strips are characterized by either different geometries or placing the strips aperiodically or a combination of both said characteristics.
[0011] In yet another embodiment, the device can be employed as a single layered multi-band cloaking device as the device can effectively cloak an object from radiation waves of sources operating at different frequencies. In yet another embodiment, the sources can be antennas of any type such as plane wave or directional antennas.
[0012] In yet another embodiment, the base and strips can be made out of either conductive or dielectric material but the materials used for both base and strips are not same.
Best Method of Performing
[0013] Hereinafter, the proposed electromagnetic (EM) cloaking will be described with the best method of performing the said invention. It may be noted here that the description thus disclosed is not limited either by following descriptions or embodiments.
[0014] The object to be cloaked can be made of either a conducting or dielectric to material and is covered by a base made of dielectric or conducting material (first material) respectively. This cloaked object is illuminated by a TM/TE wave source.
EXAMPLE 1
[0015] In this example, the base was made of first (dielectric) material and strips were made of second (conducting) material and the object made of conducting material was illuminated by TM wave sources using dipole antenna of 4 GHz.
[0016] The length and radius of the object which is to be cloaked is said to have 65 mm and 3.23 mm respectively. The total electric and magnetic fields including the incident and scattered field of the cloaked object in all its corresponding coordinate components were calculated. Applying the boundary conditions (for calculating unknown parameters), the scattered field impedance as the ratio of scattered electric and magnetic fields along the direction of propagation of incident wave was obtained as 390 .
[0017] To make the above said object to be invisible to TM source, the said scattered impedance was compensated by the impedances of the plurality of arrays of one or more strips placed over the said base. By introducing the variations in compensated impedances, cloaking at multi bands in a single layer of base can be achieved. The variations in impedances can be obtained by the series connection of possible combinations of parallel RLC values. These lumped RLC values were converted to its distributed form. Thus, the variable impedances can be pronounced by the plurality of arrays of one or more strips with variable geometry placed over the said base or by placing strips aperiodically or both. The geometry variation of one or more strips or in their spacing or both can create impedance difference that leads to changes in phase velocity which finally varies the propagation path of the incoming wave reaching this geometry surface.
[0018] In this example, the cloak was designed to cloak the object at two different frequencies 4 GHz and 5 GHz. The number of strips required to cover the cloak was 4 based on the scattered field impedance of 390. The clock radius was designed at 3.86 mm. The strips were placed over the base which is made up of dielectric material of dielectric constant as 10.2. The width of the strips is described as D1, D2, D3, and D4 as shown in
[0019] The cloaking device as designed in example 1 was placed before the antenna source of 4 GHz. The results obtained are provided in