Body
H Sven,
"I have now wrapped all power lines with aluminum foil and this one-sided grounded."
Just be careful how the grounds are connected. Here are some EMC tutorial articles: http://learnemc.com/emc-tutorials http://learnemc.com/emc-tutorials
The current paths may still induce currents into other circuit parts when the current carrying wires form loops having enough area (i.e. one turn coils). Shielding that way doesn't help for magnetic fields. The signal wires would probably improve if screened cable was used. But it all depends on how the wires are rigged up to avoid loops transmitting and receiving magnetic fields (magnetic coupling).
"...the high-power mosfets are very hot although they are used at most 10%. The cut-off voltage at the drain increases in the kilovolt range when the transverter is connected"
What do you mean by 'used at most 10%?' When getting hot they may need more cooling or they are used at their maximum power dissipation. Remember the power dissipation given in the datasheet is normally when the surface of the device is held at 20 degree Celsius which is only possible when using water cooling or heavy forced air cooling like pressurized air flow. If the drain-source voltage is reaching the avalanche breakdown voltage of the MOSFETs this will dissipate a lot of heat in them. Also switching high voltages at high current gives great switching loss if the switching transitions take too long. During switching transitions the MOSFETs are working in the linear region which means both voltage across and current through them at the same time. This dissipates heat as voltage times current gives power [V x A = W]. Multiply this by the transition time to get energy dissipation [W x s = J]. Look at the gate source signal as this controls the drain source channel.
Have you found out how to make free energy or is it still just reactive power?
I have made some simple experiments along the way of Pierre Cotnoir's device. I may have simplified it too much as I used a bunch of small transformers instead of a motor stator as in Pierre's device. No excess power output was observed. My next experiment is along the way of the Clemente Figuera patents (http://alpoma.net/tecob/?page_id=8258 http://alpoma.net/tecob/?page_id=8258). He may actually mix the fields the right way for coherence to occur. This could also be the way Alfred Hubbard's device worked.
Regards
Ole
---In [email protected], <s.friedrich@...> wrote :
Hello to all those interested, I have now built a push-pull inverter for the transverter anti-drive to drive it. From 37 Hz 650Hz is fully adjustable and the pulse width.
A simple square wave signal is generated and sent. It works wonderfully. The interference is a problem when switching 350V peaks. I have now wrapped all power lines with aluminum foil and this one-sided grounded. The boards I will install in an aluminum housing and also this ground, the disturbances are almost all gone. By shielding, the energy is no longer emitted and remains in the lines apparently, since the shielding, the high-power mosfets are very hot although they are used at most 10%. The cut-off voltage at the drain increases in the kilovolt range when the transverter is connected. The complete line to Transverter is also shielded. I now wanted to build an Energy Recovery Snubber to recycle that energy. First test show that you can drive the transverter so much more efficient. I have to build this inverter even more reliable or change.
Best regards
Sven