Difference between revisions of "EM.Cube Application Gallery"
From Emagtech Wiki
Kazem Sabet (Talk | contribs) |
Kazem Sabet (Talk | contribs) |
||
| Line 17: | Line 17: | ||
[[image:prop-ico.png | link=EM.Terrano]] </td> | [[image:prop-ico.png | link=EM.Terrano]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| − | [[image:Terrano L4 Fig title.png|90px | link=EM.Terrano Tutorial Lesson 4: Analyzing An Urban Canyon Propagation Scene]] | + | [[image:Terrano L4 Fig title.png|90px | link=EM.Terrano Tutorial Lesson 4: Analyzing An Urban Canyon Propagation Scene]] [[image:Terrano L6 Fig title.png|90px | link=EM.Terrano Tutorial Lesson 6: Simulating The Performance Of A Mobile Communications Link In A Multipath Urban Environment]] </td> |
| − | + | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| Line 29: | Line 28: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Evaluate platform effects on the radiation characteristics of antenna systems</td> | Evaluate platform effects on the radiation characteristics of antenna systems</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:fdtd-ico.png | link=EM.Tempo]] [[image:metal-ico.png | link=EM.Libera]] [[image:po-ico.png | link=EM.Illumina]] </td> | [[image:fdtd-ico.png | link=EM.Tempo]] [[image:metal-ico.png | link=EM.Libera]] [[image:po-ico.png | link=EM.Illumina]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 37: | Line 36: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Design multilayer planar RF, microwave and millimeter wave circuits</td> | Design multilayer planar RF, microwave and millimeter wave circuits</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:fdtd-ico.png | link=EM.Tempo]] [[image:planar-ico.png | link=EM.Picasso]] </td> | [[image:fdtd-ico.png | link=EM.Tempo]] [[image:planar-ico.png | link=EM.Picasso]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 45: | Line 44: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Analyze metallic and dielectric waveguide and resonator structures for microwave and millimeter wave applications</td> | Analyze metallic and dielectric waveguide and resonator structures for microwave and millimeter wave applications</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:fdtd-ico.png | link=EM.Tempo]] [[image:metal-ico.png | link=EM.Libera]] </td> | [[image:fdtd-ico.png | link=EM.Tempo]] [[image:metal-ico.png | link=EM.Libera]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 53: | Line 52: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Embed passive and active devices and circuits into your electromagnetic analysis</td> | Embed passive and active devices and circuits into your electromagnetic analysis</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:fdtd-ico.png | link=EM.Tempo]] [[image:planar-ico.png | link=EM.Picasso]] [[image:metal-ico.png | link=EM.Libera]] </td> | [[image:fdtd-ico.png | link=EM.Tempo]] [[image:planar-ico.png | link=EM.Picasso]] [[image:metal-ico.png | link=EM.Libera]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 61: | Line 60: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Model frequency response of multiport structures and generate S-parameter data for equivalent circuit models (for export to [[RF.Spice A/D]])</td> | Model frequency response of multiport structures and generate S-parameter data for equivalent circuit models (for export to [[RF.Spice A/D]])</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:fdtd-ico.png | link=EM.Tempo]] [[image:planar-ico.png | link=EM.Picasso]] [[image:metal-ico.png | link=EM.Libera]] </td> | [[image:fdtd-ico.png | link=EM.Tempo]] [[image:planar-ico.png | link=EM.Picasso]] [[image:metal-ico.png | link=EM.Libera]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 69: | Line 68: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Model transient propagation of arbitrary waveforms and signals in your circuits</td> | Model transient propagation of arbitrary waveforms and signals in your circuits</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:fdtd-ico.png | link=EM.Tempo]] </td> | [[image:fdtd-ico.png | link=EM.Tempo]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 93: | Line 92: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Compute low frequency electric and magnetic fields, capacitance and inductance of lumped circuit devices</td> | Compute low frequency electric and magnetic fields, capacitance and inductance of lumped circuit devices</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:static-ico.png | link=EM.Ferma]] </td> | [[image:static-ico.png | link=EM.Ferma]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
| Line 101: | Line 100: | ||
</tr> | </tr> | ||
<tr> | <tr> | ||
| − | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); padding: 10px; background-color: rgb(255, 255, 255);"> |
Compute quasi-static characteristic impedance and effective permittivity of physical transmission lines</td> | Compute quasi-static characteristic impedance and effective permittivity of physical transmission lines</td> | ||
| − | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255) | + | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> |
[[image:static-ico.png | link=EM.Ferma]] </td> | [[image:static-ico.png | link=EM.Ferma]] </td> | ||
<td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | <td style="border-color: rgb(153, 153, 204); background-color: rgb(255, 255, 255);"> | ||
Revision as of 00:43, 3 October 2016
EM.Cube provides the ultimate solution to all of your electromagnetic modeling needs. Using EM.Cube's computational modules, you can solve a wide range of EM analysis and RF design problems. These modules together cover the entire frequency spectrum from DC to light. The following table lists a few examples of electromagnetic modeling problems you can solve with one or more EM.Cube modules:
| Problem Type / Application | Suitable EM.Cube Module | Example Projects |
| Analyze directional communication links in high multipath urban environments |
|
|
| Model large, finite-sized, antenna arrays on the transmitter and receiver ends |
|
|
| Evaluate platform effects on the radiation characteristics of antenna systems |
|
|
| Design multilayer planar RF, microwave and millimeter wave circuits |
|
|
| Analyze metallic and dielectric waveguide and resonator structures for microwave and millimeter wave applications |
|
|
| Embed passive and active devices and circuits into your electromagnetic analysis |
|
|
| Model frequency response of multiport structures and generate S-parameter data for equivalent circuit models (for export to RF.Spice A/D) |
|
|
| Model transient propagation of arbitrary waveforms and signals in your circuits |
|
|
| Investigate the interaction of incident plane waves and focused Gaussian beams with complex geometries, biological environments or dispersive materials |
|
|
| Study reflection and transmission properties of periodic surfaces and metamaterial structures |
|
|
| Compute low frequency electric and magnetic fields, capacitance and inductance of lumped circuit devices |
|
|
| Compute quasi-static characteristic impedance and effective permittivity of physical transmission lines |
|
|
| Build complex structures using native standard geometric objects or custom expression-based curves & surface and import/export external CAD models |
|
|
| Compute radar cross section (RCS) of complex targets |
|
|
| Run parametric and random sweeps of design variables with complex interdependencies defined through mathematical functions and/or Python scripts |
|
|
| Optimize your design variables using classical and statistical methods including multi-objective Pareto genetic algorithms |
|
|
| Run lightning fast EM simulations on multicore CPU/GPU platforms using a variety of hardware and software accelerators |
|
|