A spectrally accurate algorithm for

electromagnetic scattering in three dimensions

M. Ganesh  and S. C. Hawkins

(Numerical Algorithms, 43:25-60, 2006)

Figures from the paper by GH


NASA almond targetOgive target

NASA almond and ogive benchmark targets for validation of the electromagnetic scattering scattering algorithm.

Bean shaped ObstacleFount shaped obstacle

    Bean and fountain shaped obstacles for validation of the electromagnetic scattering scattering algorithm.

Normalized echo area (low frequency)

Normalized echo area of the unit sphere  with HH-polarization (low frequency;  o, exact; +, numerical).

Normalized echo area (medium/high frequency)

Normalized echo area of the unit sphere  with HH-polarization (medium/high frequency;  o, exact; +, numerical).

Bistatic RCS of the unit sphere at 1GHz

Bistatic RCS of the Unit  sphere at 1.0GHz with H-H polarization at
observed angles  $\theta = pi/2,  \phi \in [0,180]$. (o, exact;  +, numerical.)


Bistatic RCS of the unit sphere a 3.0GHz

Bistatic RCS of the Unit  sphere at 1.0GHz with H-H polarization at
observed angles  $\theta = pi/2,  \phi \in [0,180]$. (o, exact;  +, numerical.)

Monostatic RCS of bean shaped obstacle

Monostatic RCS  for bean shaped obstacle (of electromagnetic size 24 times the incident wavelength)
at 1.8GHz with H-H polarization.

Bistatic RCS of bean shaped obstacle
              

Bistatic RCS for bean shaped obstacle (of electromagnetic size 24 times the incident wavelength)
at 1.8GHz with H-H polarization.

Electric field induced by bean shaped obstacle

 Exterior electric field induced by a plane wave  impinging on  bean shaped obstacle
(of electromagnetic size  24 times the incident wavelength) at frequency w = 1.8GHz

 with direction
d_0 = (1, 0, 0) and poliarzation p_0=-(0,0,1) at time t = 0.61/w.

Intensity and surface field - bean

Intensity of the total  electric field and surface current (left colorbar values)
induced by a plane wave  impinging on  bean
shaped obstacle
(of electromagnetic size  24 times the incident wavelength) at frequency w = 1.8GHz

 with direction
d_0 = (1, 0, 0) and poliarzation p_0=(0,0,-1) at time t = 0.61/w.

Monostatic RCS of fount at 3GHz

Monostatic RCS  for fountain shaped obstacle (of electromagnetic size 24 times the incident wavelength)
at 3.0GHz with V-V polarization.

Bistatic RCS - fount

Bistatic RCS for fountain shaped obstacle (of electromagnetic size 24 times the incident wavelength)
at 3.0GHz with H-H polarization.

Exterior field - fount

Exterior electric field induced by a plane wave  impinging on  fountain shaped obstacle
(of electromagnetic size  24 times the incident wavelength) at frequency w = 3.0GHz

 with direction
d_0 = (1, 0, 0) and poliarzation p_0=(0,0,-1) at time t = 0.61/w.


Intensity of electric and surface fields - fountain

Intensity of the total  electric field and surface current (left colorbar values)
induced by a plane wave  impinging on  fount
shaped obstacle
(of electromagnetic size  24 times the incident wavelength) at frequency w = 3.0GHz

 with direction
d_0 = (1, 0, 0) and poliarzation p_0=(0,0,-1) at time t = 0.61/w.


MOnostatic almond at 1.19 Ghz

Monostatic RCS  for benchmark NASA almond target (of electromagnetic size one incident wavelength)
at 1.19GHz with H-H and V-V polarization 
at observed angles  $\phi \in [0,180]$.

Monostatic RCS - Ogive at 3.0GHz

Monostatic RCS  for benchmark NASA almond target (of electromagnetic size 2.5 times the incident wavelength)
at 3.0GHz with H-H and V-V polarization 
at observed angles  $\phi \in [0,180]$.

Monostatic RCS NASA almond

Monostatic RCS  for benchmark NASA almond target (of electromagnetic size 5.9 times the incident wavelength)
at 3.0GHz with V-V  polarization 
at observed angles  $\phi \in [0,180]$.

Monostatic RCS of ogive at 1GHz

Monostatic RCS  for benchmark ogive target (of electromagnetic size one incident wavelength)
at 1.18GHz with H-H  and V-V polarization 
at observed angles  $\phi \in [0,180]$.

9GHZ
Monostatic RCS  for benchmark ogive target (of electromagnetic size 7.6 times the incident wavelength)
at 9.0GHz with H-H  and V-V polarization 
at observed angles  $\phi \in [0,180]$.