Can a Permanent Magnet Affect the Capacitance of a Coil?

In summary, an inductor has some inherent capacitance due to the distance between the individual windings.
  • #1
Jdo300
554
5
Hello,

I've learned from my study of oscillator circuits that an inductor has some inherent capacitance in it due to the distance between the individual windings. I've heard somewhere that if you place a permanent magnet close to a coil that it will behave like a capacitor and I was wondering if someone out there could confirm or correct me on that. If this is true, does it also work for air core coils as well?
 
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  • #2
I've never heard that. The coil will behave like like a capacitor, however, above a certain frequency.
 
  • #3
All inductors have parasitic parallel capacitance, and series resistance. I don't quite understand your magnet question, but I suppose maybe you're asking about the change in complex impedance of a ferrous-core inductor when it is artificially saturated by an external magnet. If so, then yes, the magnetizing inductance will drop, but the parasitic capacitance will stay the same. You can do the complex math to see what that does to the impedance phasor.
 
  • #4
berkeman said:
All inductors have parasitic parallel capacitance, and series resistance. I don't quite understand your magnet question, but I suppose maybe you're asking about the change in complex impedance of a ferrous-core inductor when it is artificially saturated by an external magnet. If so, then yes, the magnetizing inductance will drop, but the parasitic capacitance will stay the same. You can do the complex math to see what that does to the impedance phasor.

Thanks for the insight. Would you happen to know how the coil might be affected if it is wound around a non-magnetic core? To better explain my setup, I basically want to wind a coil around something like a dowel rod or anything non-magnetic. Then place a small ceramic magnet on the end of the coil to see how it effects the coil if I were to run an AC or DC signal through it, or pulse it. I'm essentually trying to see if the magnet can enhance the capacitence properties of the coil (without it being wrapped around a ferrous core).
 
  • #5
No, a magnet will not affect the properties of a coil if there is no ferrous material in the coil construction. Well, if you move the magnet, that will induce a pickup voltage in the coil of course, and if you hold the magnet close to the coil, the ferrous material of the magnet will slightly increase the inductance of the coil. But there will be no effect on the inductance or capacitance of the coil from the presence or absence of the external DC magnetic field.
 
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  • #6
Okay, thanks for clearing that up for me :-).
 
  • #7
ya there is capacitance in a coil, given by C(pF) = K*diameter(cm) as given by Medhurst formula.
but I was unable to know, how to calculate the value of K. can anyone will give me information about "K".
 
  • #8
If you have an oscillator and a scope, you can drive the coil via a high resistance and, when the L and self-C resonate (parallel), you will get a voltage peak (when Xc and Xl are equal and opposite). That will tell you the self capacitance of the coil if you already know the inductance at low frequency.
That's the basis of a Q meter, which used to be a good cheap and cheerful way of measuring component values. Your oscillator needs to provide a high enough output frequency to achieve resonance. If it doesn't, you can get smart and introduce a known value of capacitor and infer the self capacitance by the difference between measured and calculated resonance frequencies.
But if your coil is for audio frequency operation, it will probably have a self resonance in the order of tens of MHz, max -easy to achieve. Look up "Q meter" on the web and you'll find something to suit you. i.e. whatever your level of understanding of the topic, high or low.
 

1. What is capacitance and how does it affect a coil?

Capacitance is the ability of a system to store electrical charge. In the context of a coil, it refers to the ability of the coil to store electrical energy in the form of an electric field. This affects the performance of the coil by changing its electrical properties, such as impedance and resonance frequency.

2. How does the number of turns in a coil affect its capacitance?

The number of turns in a coil directly affects its capacitance. A coil with more turns will have a higher capacitance, as there is more surface area for the electric field to form and be stored. Conversely, a coil with fewer turns will have a lower capacitance.

3. What is self-capacitance and how does it differ from mutual capacitance?

Self-capacitance refers to the capacitance between different parts of the same coil. This is caused by the electric field that forms between the turns of the coil. Mutual capacitance, on the other hand, refers to the capacitance between two separate coils. It is caused by the electric field that forms between the two coils when they are in close proximity.

4. How can the capacitance of a coil be measured?

The capacitance of a coil can be measured using a variety of methods, such as using a capacitance meter or an LCR meter. Alternatively, it can also be calculated using the formula C = Q/V, where C is the capacitance, Q is the charge stored in the coil, and V is the voltage across the coil.

5. Can the capacitance of a coil be changed?

Yes, the capacitance of a coil can be changed by altering its physical properties, such as the number of turns, the diameter of the wire, and the distance between the turns. It can also be changed by introducing a dielectric material between the turns, which increases the capacitance by reducing the distance between the turns.

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