In your own words, explain why the presence of a ferromagnetic core increases the inductance of a coil. Calculate the inductance of a coil wound on a ferromagnetic cylinder of 2 mm diameter and 10 mm length. There are 200 turns on the coil and the relative permeability of the core is 600. How does a real inductor differ from an ideal component?
In your own words, explain why the presence of a ferromagnetic core increases the inductance of a coil. Calculate the inductance of a coil wound on a ferromagnetic cylinder of 2 mm diameter and 10 mm length. There are 200 turns on the coil and the relative permeability of the core is 600. How does a real inductor differ from an ideal component?
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
Transcribed Image Text:In your own words, explain why the presence of a ferromagnetic
core increases the inductance of a coil.
Calculate the inductance of a coil wound on a ferromagnetic
cylinder of 2 mm diameter and 10 mm length. There are 200
turns on the coil and the relative permeability of the core is 600.
How does a real inductor differ from an ideal component?
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