This documentation describes the Representational State Transfer (REST) API and resources provided by First Data. Our reliable system is designed to be simple with fast performance and scalability.
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If a user is unwilling to accept the GDPR, he should email us and request to erase his account. Many thanks for your understanding. It's inducing into a tertiary. I suspect that the combined poles will have to flee the core, and it might as well be 2 solenoids with cores in parallel wrapped with a 3rd coil. But you should post that question on that thread. I keep linking this document I hope people are reading it.
Last paragraph of the quote is the really relevant part. When a load is placed on the transformer the extra current goes directly to the secondary, it does not make more flux. In fact when the transformer is loaded the flux decreases only due to core losses ect.
The secondary is not tapping the core flux. It take a bit to wrap the head around but it makes sense to me.
The transformer would work without the core but the core manipulates a lot more the inductance ect. Anyway when I run my toroidal transformer I can detect definite magnetic effects from the ends of the four coils wound on it. With Tesla's transformers and motors that have no pole projections there is still a magnetic effect between where the four coils meet each other. I think that is where the 'poles' appear and alternate as they are shifted by the way they are excited. On top of that there is direct transformer action to the rotor from the coil I think in generators and motors. Even squirrel cages have 'wires' in them.
There is another document that explains how the flux cuts the windings in the process of engaging the core or something, you'll need to read it, it is a theory I think, not proven fact as far as I can tell. Linked below. Have you tried using the transformer in a counter intuitive way? By using a high voltage exciter coil as the primary and a heavy coil on the secondary you are changing the paradigm. A Tesla solenoid to raise the voltage to higher potentials feeding a high voltage cap that discharges trough a spark gap that can be electromagnetically controlled.