Will an EMF be Induced in a Stationary Coil in a Constant Magnetic Field?

In summary, the emf is induced by a change in flux through the coil. If the magnetic field is constant and the coil doesn't rotate, can the flux change?
  • #1
chukie
80
0
I know that rotating the loop in a constant magnetic field induces an emf in the coils, but supposing the magnetic field is constant, will an emf be induced in the coil when the motion of the coil through it is without rotation?
 
Physics news on Phys.org
  • #2
The emf is induced by a change in flux through the coil. If the magnetic field is constant and the coil doesn't rotate, can the flux change?
 
  • #3
Dick said:
The emf is induced by a change in flux through the coil. If the magnetic field is constant and the coil doesn't rotate, can the flux change?

Oh so the coil must rotate in order for the flux to change. If there is no rotation there would be no induced emf?
 
  • #4
If there is no change in flux, there is no induced emf. You tell me what the answer is.
 
  • #5
Dick said:
If there is no change in flux, there is no induced emf. You tell me what the answer is.

Thanks, I get it now. I just didn't know that you had to rotate in order for a change in flux. I got a bit confused by the textbook I'm reading.
 
  • #6
chukie said:
Thanks, I get it now. I just didn't know that you had to rotate in order for a change in flux. I got a bit confused by the textbook I'm reading.

Sounds like you don't fully understand what (a change in) flux actually is...

(Magnetic) Flux could be described as the quantity of magnetism. In simple conditions (constant magnetic field, constant area) the flux is just the magnetic field strength (B) multiplied by the area (A). If the conditions are less simple (for example suppose the magnetic field has different values in different places in the area) then you have to integrate.

A change in magnetic flux is therefore achieved by either a change in the magnetic field strength, or a change in the area (or both).

In the case of a loop in a constant magnetic field, is the area the same for each orientation of the loop? No! If you rotate the loop slightly the area changes. Suppose you are looking in the direction of the magnetic field, and you are looking down on a loop. If you rotate it, the area you see will get smaller, until the loop is upright (parallel to the field). Then the area is even 0. If you rotate it further it increases again until it is again perpendicular to the field, where the area is at a maximum.

So rotating the loop will change the area in question, which changes the flux, which induces an emf.
 
  • #7
I hope I'm not taking this out of context...
Nick89 said:
A change in magnetic flux is therefore achieved by either a change in the magnetic field strength, or a change in the area (or both)..

Nick89 said:
A change in magnetic flux is therefore achieved by either a change in the magnetic field strength, or a change in the area (or both).

I'm not disagreeing with the above. But am I to understand that.. If you took a permanet magnet(PM) and rotated it within a cylindercal coil an EMF will not be realized since the flux field is moving parrallel to the wires but now if I move that same PM perpendicular to the wire it will set up an EMF. Will there be an EMF if you move the magnet across the open end of the coil, which is bisecting the wire at a perpendicular angle? I would imagine that the EMF in the later question would be very much less in strength...Yes?

Thanks
Robin07
 

1. What is a magnetic field rotation?

A magnetic field rotation refers to the change in the orientation or direction of a magnetic field. This can occur naturally due to the movement of charged particles, or it can be artificially induced through various methods.

2. How does a magnetic field rotation occur?

A magnetic field rotation occurs when there is a change in the flow of electrons or charged particles in a magnetic field. This can happen due to the rotation of the Earth, movement of objects with magnetic properties, or through the use of electromagnets.

3. What is the significance of magnetic field rotation?

Magnetic field rotation plays a crucial role in many natural and artificial processes. It helps to regulate the Earth's climate, guides the migration of animals, and is essential in various technologies such as electric motors and generators.

4. Can we control the rotation of a magnetic field?

Yes, we can control the rotation of a magnetic field through the use of electromagnets. By manipulating the electric current in the electromagnets, we can change the direction and strength of the magnetic field, causing it to rotate.

5. How do scientists study magnetic field rotation?

Scientists study magnetic field rotation through various methods, including satellite observations, laboratory experiments, and computer simulations. They also use specialized tools such as magnetometers to measure the strength and direction of magnetic fields in different locations.

Similar threads

  • Introductory Physics Homework Help
Replies
5
Views
201
  • Introductory Physics Homework Help
Replies
4
Views
1K
  • Introductory Physics Homework Help
Replies
2
Views
806
  • Introductory Physics Homework Help
Replies
3
Views
1K
  • Introductory Physics Homework Help
Replies
1
Views
147
Replies
49
Views
3K
  • Introductory Physics Homework Help
Replies
6
Views
734
  • Introductory Physics Homework Help
Replies
9
Views
1K
  • Introductory Physics Homework Help
Replies
3
Views
1K
  • Introductory Physics Homework Help
Replies
11
Views
1K
Back
Top