Connect a Battery to a Solenoid - Current through a rectangular coil

In summary: I'll use the more general approach, rather than plugging numbers in until I get the right answer.1. Find the current in the circuit at t = 0. 1. Find the current in the circuit at t = 0.I(0) = emf / (R + Rcoil) = 9 V / (20 Ω + 150 Ω) = 0.045 A.2. Find the current through the solenoid at t = 0 using the above formula.2. Find the current through the solenoid at t = 0 using the above formula.I(0) = emf / R = 9 V / 20 Ω
  • #1
LordessCass
11
0

Homework Statement



Connect a battery to a solenoid
A cylindrical solenoid 40 cm long with a radius of 8 mm has 250 tightly-wound turns of wire uniformly distributed along its length (see the figure). Around the middle of the solenoid is a two-turn rectangular loop 3 cm by 2 cm made of resistive wire having a resistance of 105 ohms. One microsecond after connecting the loose wire to the battery to form a series circuit with the battery and a 20 resistor, what is the magnitude of the current in the rectangular loop and its direction (clockwise or counter-clockwise in the diagram)? (The battery has an emf of 9 V.)

23-086-solenoid2.jpg


Homework Equations



emf = IR
For a solenoid,
N = Number of turns
I = Current
L = Solenoid Length
B = μ0*N*I/L
n = perpendicular unit vector
[itex]\Phi[/itex] = ∫B*nDA
emf = d[itex]\Phi[/itex]/dt

The Attempt at a Solution


I began by finding the current in the solenoid.

9 V/20 [itex]\Omega[/itex] = .45

Then, I used this current to solve for the magnetic field the solenoid produces.

μ0*250*.45/.4 = 3.53*10^-4

Once I found this, I used it to find the magnetic flux.

[itex]\Phi[/itex] = 3.53*10^-4*∏*.008^2 = 7.106*10^-8

Then I found d[itex]\Phi[/itex]/dt, which is just the flux over the change in time since starting flux was 0.

7.106*10^-8/(10^-6) = 7.106 * 10^-2

This was the emf, so this *2 is the emf of the rectangular coil (since the rectangular coil has two turns).

So emf(coil) = .142122

And the current through the rectangular coil equals this emf divided by its resistance.

.142122/105 = .13535

But this wasn't correct.
 
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  • #2
Welcome to PF!

Hi LordessCass! Welcome to PF! :smile:
LordessCass said:
Connect a battery to a solenoid
A cylindrical solenoid 40 cm long with a radius of 8 mm has 250 tightly-wound turns of wire uniformly distributed along its length (see the figure). Around the middle of the solenoid is a two-turn rectangular loop 3 cm by 2 cm made of resistive wire having a resistance of 105 ohms. One microsecond after connecting the loose wire to the battery to form a series circuit with the battery and a 20 resistor, what is the magnitude of the current in the rectangular loop and its direction (clockwise or counter-clockwise in the diagram)? (The battery has an emf of 9 V.)

I began by finding the current in the solenoid.

9 V/20 [itex]\Omega[/itex] = .45

But isn't this an inductor, in an RL ciruit?
 
  • #3
Hi there! Thanks for the welcome! :)

So does that mean that I'd need to use the formula:

I = emf(battery)/R (1-e^(-R/L*t))

instead? Where R is the resistance of the resistor and L is the inductance proportionality constant?
 
  • #4
Yup! :biggrin:
 
  • #5
Thanks! I tested that out, though, and it doesn't look like that's my only problem because I still got the answer wrong. Is there anything else I'm doing incorrectly?
 
  • #6
What expression are you using for the magnetic flux on the outside of the solenoid? :wink:
 
  • #7
Hmm. I was using B*A, but there wouldn't be an A of the outside of a solenoid. I tried a slightly different tact where I found the current using the formula I listed above, and then used:

emf(inducted) = μ0*N^2/d*∏R^2*dI/dt

And then divided the result by the resistance of the rectangular coil, but that didn't produce the right answer either. Is the answer dependent on the number of turns in the rectangular coil, maybe?

EDIT: Oh, I realized perhaps I should use the area of the rectangular coil, or maybe that area minus the area enclosed in the solenoid, as my A for the magnetic flux. Is that on the right track?
 
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  • #8
I really can't figure this out. I've tried using the area of the rectangle as my area for the flux instead of inside the solenoid, I've tried using the current equation given for an RL circuit, and other associated things. I even looked up some problems I thought were comparable and solved this one the same way, but I'm not coming up with the right answer. Here's a different-numbers version of the same problem which I do have the answer to (but I have no idea how they're getting it, since my methods aren't working):

A cylindrical solenoid 39 cm long with a radius of 7 mm has 350 tightly-wound turns of wire uniformly distributed along its length (see the figure). Around the middle of the solenoid is a two-turn rectangular loop 3 cm by 2 cm made of resistive wire having a resistance of 150 ohms. One microsecond after connecting the loose wire to the battery to form a series circuit with the battery and a 20 resistor, what is the magnitude of the current in the rectangular loop and its direction (clockwise or counter-clockwise in the diagram)? (The battery has an emf of 9 V.)

The answer to this one ended up being 0.000247 A.
 
  • #9
LordessCass said:
I really can't figure this out. I've tried using the area of the rectangle as my area for the flux instead of inside the solenoid, I've tried using the current equation given for an RL circuit, and other associated things. I even looked up some problems I thought were comparable and solved this one the same way, but I'm not coming up with the right answer. Here's a different-numbers version of the same problem which I do have the answer to (but I have no idea how they're getting it, since my methods aren't working):

A cylindrical solenoid 39 cm long with a radius of 7 mm has 350 tightly-wound turns of wire uniformly distributed along its length (see the figure). Around the middle of the solenoid is a two-turn rectangular loop 3 cm by 2 cm made of resistive wire having a resistance of 150 ohms. One microsecond after connecting the loose wire to the battery to form a series circuit with the battery and a 20 resistor, what is the magnitude of the current in the rectangular loop and its direction (clockwise or counter-clockwise in the diagram)? (The battery has an emf of 9 V.)

The answer to this one ended up being 0.000247 A.

Let's do this one with the known answer step-by-step then, and maybe we can spot where things are going awry.

To begin with, what are your calculations for the inductance of the solenoid and the time constant for the current?
 
  • #10
Okay! So first I'll find the current going through the solenoid so I can find its inductance. I'll use the formula for an RL circuit current:

I = emf(battery)/R*(1-e^(-R/L)t)

L = μ0N^2/d*∏R^2

So I'll find L first because I'll need it for I:
L = 4∏*10^-7*(350)^2/.39*∏(.007)^2 = 6.07613 * 10^-5

So then to plug into find the current I get:

I = 9/20*(1-e^(-20/(6.07613*10^-5)*10^-6) = .12621 A

With this current, I plug into the induced emf formula of

emf(ind) = L * dI/dt

dI/dt is just the current I found since it was 0 before, so I get:

6.07613 * 10^-5 * .12621 = 7.6688 * 10^-6 V as my inductance of the solenoid.
 
  • #11
LordessCass said:
Okay! So first I'll find the current going through the solenoid so I can find its inductance. I'll use the formula for an RL circuit current:

I = emf(battery)/R*(1-e^(-R/L)t)

L = μ0N^2/d*∏R^2

So I'll find L first because I'll need it for I:
L = 4∏*10^-7*(350)^2/.39*∏(.007)^2 = 6.07613 * 10^-5

So then to plug into find the current I get:

I = 9/20*(1-e^(-20/(6.07613*10^-5)*10^-6) = .12621 A

With this current, I plug into the induced emf formula of

emf(ind) = L * dI/dt

dI/dt is just the current I found since it was 0 before, so I get:
Ah. Here's a problem: You want the instantaneous rate of change of the current, not the average over the time. How can you find dI/dt at t=1μs?
 
  • #12
Ah, so it's what I got for my emf, but also divided by the change in time, which is 10^-6 seconds?

So for my emf instead of 7.6688 * 10^-6 V, I'll have 7.6688 V?

I don't think that was my only problem, but if that was one of them, I'm glad to know.
 
  • #13
LordessCass said:
Ah, so it's what I got for my emf, but also divided by the change in time, which is 10^-6 seconds?

So for my emf instead of 7.6688 * 10^-6 V, I'll have 7.6688 V?

I don't think that was my only problem, but if that was one of them, I'm glad to know.

Well, you shouldn't need the emf across the coil at all; You already determined the inductance of the coil when you wrote: L = 4∏*10^-7*(350)^2/.39*∏(.007)^2 = 6.07613 * 10^-5.
L is the inductance of the coil.

You also wrote a formula for the coil current with respect to time: I = emf(battery)/R*(1-e^(-R/L)t). Why not find dI/dt from that?
 
  • #14
Oh, so dI/dt is:

dI/dt = emf(battery)/R(R/L * e^((-R/L)t)) = emf(battery)/L * e^((-R/L)t)

So dI/dt is

9/(6.07613*10^-5) * e^((-20/(6.07613*10^-5))*10^-6) = 106577.23 A/s

So now that I have dI/dt and I have L, how do I use that to find the current if it doesn't involve the emf?
 
  • #15
LordessCass said:
Oh, so dI/dt is:

dI/dt = emf(battery)/R(R/L * e^((-R/L)t)) = emf(battery)/L * e^((-R/L)t)

So dI/dt is

9/(6.07613*10^-5) * e^((-20/(6.07613*10^-5))*10^-6) = 106577.23 A/s
That's excellent.
So now that I have dI/dt and I have L, how do I use that to find the current if it doesn't involve the emf?

That's easy: you don't need the current :smile: You need the rate of change of the current in order to find the rate of change of the magnetic field.

How might you use your rate of change of current in order to find the rate of change of B?
 
  • #16
Oh, so could I use the equation for B, but differentiate it so it's the equation for dB/dt, which becomes:

dB/dt = μ0/(4∏)*N*dI/dt /d

Which, if I plugged everything in, would give me:

dB/dt = 10 ^ -7 * 350 * 106577.23 /.39 = 9.5646 T/s
 
  • #17
LordessCass said:
Oh, so could I use the equation for B, but differentiate it so it's the equation for dB/dt, which becomes:

dB/dt = μ0/(4∏)*N*dI/dt /d
Why the ##4\pi##? Isn't B = μ0*N*I/L?
 
  • #18
Ah, right. So I would have to multiply what I got before by 4∏ for it to be accurate, which would give me:

120.192 = dB/dt

So I'll go out on a limb here and state that then I can find the emf (which is just d/dt(magnetic flux)) by multiplying this rate of change by the area encased by the solenoid, so

120.192*∏*.007^2 = .18502

And then divide this emf by the resistance, then multiply by 2 because there are 2 coils in the rectangle, so

.18502/150 = 1.2335 * 10^-4 *2 = 2.467 * 10^-4 or .0002467 = current of the rectangular coil. Is that accurate?
 
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  • #19
LordessCass said:
Ah, right. So I would have to multiply what I got before by 4∏ for it to be accurate, which would give me:

120.192 = dB/dt

So I'll go out on a limb here and state that then I can find the emf (which is just d/dt(magnetic flux)) by multiplying this rate of change by the area encased by the solenoid,
Correct
so

120.192*∏*.007^2 = .18502
You seem to have misplaced the decimal point. The digits are correct.
And then divide this emf by the resistance, then multiply by 2 because there are 2 coils in the rectangle
Correct procedure.
 
  • #20
Sweet! I just tried that out on another one too and that worked. Thanks so much!
 
  • #21
LordessCass said:
Sweet! I just tried that out on another one too and that worked. Thanks so much!

My pleasure. Good luck!
 

FAQ: Connect a Battery to a Solenoid - Current through a rectangular coil

What is a solenoid?

A solenoid is a coil of wire that produces a magnetic field when an electric current is passed through it. It is often used in electronic devices such as motors and switches.

What is a rectangular coil?

A rectangular coil is a type of coil that has a rectangular shape, as opposed to a circular or cylindrical shape. It is commonly used in solenoids and other electronic devices.

How do you connect a battery to a solenoid?

To connect a battery to a solenoid, you will need to attach the positive terminal of the battery to one end of the coil and the negative terminal to the other end. This will create a complete circuit and allow current to flow through the solenoid.

What is the purpose of connecting a battery to a solenoid?

The purpose of connecting a battery to a solenoid is to provide a source of electrical energy that can create a magnetic field within the solenoid. This is necessary for the solenoid to function and perform its intended task.

How does current flow through a rectangular coil?

When a battery is connected to a rectangular coil, the current will flow through the wire in a specific direction. This creates a magnetic field within the coil, which can then be used for various purposes such as generating motion or creating an electromagnet.

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