Question

In: Physics

A magnetic field of 37.2 T has been achieved at the MIT Francis Bitter National Magnetic...

A magnetic field of 37.2 T has been achieved at the MIT Francis Bitter National Magnetic Laboratory. Find the current needed to achieve such a field
a) 2.00 cm from a long straight wire
b) At the centre of a circular coil of radius 42.0 cm that has 100 turns
c) Near the center of a solenoid with radius 2.40 cm, length 32.0 cm and 40000 turns

Solutions

Expert Solution

Concepts and reason

The given problem can be solved by using the expression of magnetic field due to straight current carrying conductor, at the center of circular coil and near the center of solenoid.

To get the value of current, rearrange the expression of magnetic field due to straight current carrying conductor, at the center of circular coil and near the center of solenoid.

Fundamentals

The expression of magnetic field due to straight current carrying conductor can be expressed as follows,

B=μ0i2πlB = \frac{{{\mu _0}i}}{{2\pi l}}

Here, μ0=(4π×107TmA1){\mu _0} = \left( {4\pi \times {{10}^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}}{\rm{ }}} \right) , ii is the current, ll is the length of the conductor.

The expression of magnetic field at the center of circular of coil can be expressed as follows,

B=μ0Ni2rB = \frac{{{\mu _0}Ni}}{{2r}}

Here, μ0=(4π×107TmA1){\mu _0} = \left( {4\pi \times {{10}^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}}{\rm{ }}} \right) , ii is the current and rr is the radius of circular coil.

The expression of magnetic field near the center of the solenoid can be expressed as follows,

B=μ0NilB = \frac{{{\mu _0}Ni}}{l}

Here, μ0=(4π×107TmA1){\mu _0} = \left( {4\pi \times {{10}^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}}{\rm{ }}} \right) , ii is the current and ll is the length of the solenoid.

(A)

The expression of magnetic field due to straight current carrying conductor can be expressed as follows,

B=μ0i2πlB = \frac{{{\mu _0}i}}{{2\pi l}}

Rearrange the expression to get the value of current.

i=B(2πl)μ0i = \frac{{B\left( {2\pi l} \right)}}{{{\mu _0}}}

Substitute 4π×107TmA14\pi \times {10^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}} for μ0{\mu _0} , 37.2T37.2{\rm{ T}} for BB and 2.00cm2.00{\rm{ cm}} for ll in the expression of current.

i=(37.2T)(2π(2.00cm)(1cm100m))4π×107TmA1=3.72×106A\begin{array}{c}\\i = \frac{{\left( {37.2{\rm{ T}}} \right)\left( {2\pi \left( {2.00{\rm{ cm}}} \right)\left( {\frac{{1{\rm{ cm}}}}{{100{\rm{ m}}}}} \right)} \right)}}{{4\pi \times {{10}^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}}}}\\\\ = 3.72 \times {10^6}{\rm{ A}}\\\end{array}

(B)

The expression of magnetic field at the center of circular of coil can be expressed as follows,

B=μ0Ni2rB = \frac{{{\mu _0}Ni}}{{2r}}

Rearrange the expression to get the value of current.

i=B(2r)μ0Ni = \frac{{B\left( {2r} \right)}}{{{\mu _0}N}}

Substitute 4π×107TmA14\pi \times {10^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}} for μ0{\mu _0} , 37.2T37.2{\rm{ T}} for BB , 100100 for NN and 42.0cm{\rm{42}}{\rm{.0 cm}} for rr in the expression of current.

i=(37.2T)(2(42.0cm)(1cm100m))(4π×107TmA1)(100)=2.49×105A\begin{array}{c}\\i = \frac{{\left( {37.2{\rm{ T}}} \right)\left( {2\left( {42.0{\rm{ cm}}} \right)\left( {\frac{{1{\rm{ cm}}}}{{100{\rm{ m}}}}} \right)} \right)}}{{\left( {4\pi \times {{10}^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}}} \right)\left( {100} \right)}}\\\\ = 2.49 \times {10^5}{\rm{ A}}\\\end{array}

(C)

The expression of magnetic field near the center of the solenoid can be expressed as follows,

B=μ0NilB = \frac{{{\mu _0}Ni}}{l}

Rearrange the expression to get the value of current.

i=Blμ0Ni = \frac{{Bl}}{{{\mu _0}N}}

Substitute 4π×107TmA14\pi \times {10^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}} for μ0{\mu _0} , 37.2T37.2{\rm{ T}} for BB , 4000040000 for NN and 32.0cm{\rm{32}}{\rm{.0 cm}} for ll in the expression of current.

i=(37.2T)((32.0cm)(1cm100m))(4π×107TmA1)(40000)=237A\begin{array}{c}\\i = \frac{{\left( {37.2{\rm{ T}}} \right)\left( {\left( {32.0{\rm{ cm}}} \right)\left( {\frac{{1{\rm{ cm}}}}{{100{\rm{ m}}}}} \right)} \right)}}{{\left( {4\pi \times {{10}^{ - 7}}{\rm{ T}} \cdot {\rm{m}} \cdot {{\rm{A}}^{ - 1}}} \right)\left( {40000} \right)}}\\\\ = 237{\rm{ A}}\\\end{array}

Ans: Part A

The value of current is 3.72×106A3.72 \times {10^6}{\rm{ A}} .

Part B

The value of current is 2.49×105A2.49 \times {10^5}{\rm{ A}} .

Part C

The value of current is 237A{\rm{237}}\,{\rm{A}} .


Related Solutions

A magnetic field has a magnitude of 1.2e-3 T, and an electric field has a magnitude...
A magnetic field has a magnitude of 1.2e-3 T, and an electric field has a magnitude of 5.1e3 N/C. Both fields point in the same direction. A positive -1.8 microC moves at a speed of 3.5e6 m/s in a direction that is perpendicular to both fields. Determine the magnitude of the net force that acts on the charge.
A generator rotates at 93 Hz in a magnetic field of 0.035 T . It has...
A generator rotates at 93 Hz in a magnetic field of 0.035 T . It has 650 turns and produces an rms voltage of 140 V and an rms current of 55.0 A . Part A What is the peak current produced? Express your answer to three significant figures and include the appropriate units. Part B What is the area of each turn of the coil? Express your answer to two significant figures and include the appropriate units.
A magnetic field has a magnitude of 0.038 T and is uniform over a circular surface...
A magnetic field has a magnitude of 0.038 T and is uniform over a circular surface whose radius is 24 cm. The field is oriented at an angle of 42° with respect to the normal to the surface. What is the magnetic flux through the surface?
A uniform magnetic field has an initial value of 0.45 T and a direction toward the...
A uniform magnetic field has an initial value of 0.45 T and a direction toward the right. A square loop of wire with side length 0.15 m is in the field and is oriented at 45° to the field direction. The magnetic field is decreased linearly to zero during a time interval of 0.13 s. A. What is the emf generated in the wire loop during this process? B. If the wire has a diameter of 8.4X10-4 m and a...
a) In the middle of a coil, the magnetic field induction is B0 = 0.5 T....
a) In the middle of a coil, the magnetic field induction is B0 = 0.5 T. Determine the magnetic field induction B along the axis of the coil at its edge. b) In the middle of a capacitor, the electric field intensity is E0 = 1000 V/m. Determine the electric field intensity E between the capacitor plates at the capacitor edge
The magnetic flux through a 10.0-cm2cm2 loop is 8.0 T⋅cm2T⋅cm2, and the magnetic field at the...
The magnetic flux through a 10.0-cm2cm2 loop is 8.0 T⋅cm2T⋅cm2, and the magnetic field at the location of the loop is uniform. Choose all correct answers. Check all that apply. A)If BB = 1.0 TT, then the angle between the B⃗ B→ field and the normal to the loop's surface is greater than 0∘∘. B)If the direction of B⃗ B→ field is parallel to the normal to the loop's surface, then BB = 0.8 T. C)The magnitude of the B⃗...
The loop in the figure below is being pushed into the 0.20 T magnetic field at...
The loop in the figure below is being pushed into the 0.20 T magnetic field at 50 m/s. The resistance of the loop is 0.10 , and its width d = 5.4 cm. What are the direction and the magnitude of the current in the loop? (in units of A) The loop in the figure below is being pushed into the 0.20 T magnetic field at 50 m/s. The resistance of the loop is 0.10 , and its width d...
Ignore the other questions in answering this one. If the magnetic field is 0.00546 T, the...
Ignore the other questions in answering this one. If the magnetic field is 0.00546 T, the accelerating voltage 150.7 V, and the radius of the electron orbit 0.750 cm, what is e/m from Equation 5?
A circular loop in the plane of the paper lies in a 0.78 T magnetic field...
A circular loop in the plane of the paper lies in a 0.78 T magnetic field pointing into the paper. A) If the loop's diameter changes from 16.6 cm to 6.4 cm in 0.63 s , what is the direction of the induced current? Clockwise or Counterclockwise? B) What is the magnitude of the average induced emf? Answer in V. C) If the coil resistance is 4.3 ohm , what is the average induced current? Answer in A
a.) Suppose that there is a constant magnetic field in the xy-plane with magnitude 0.5 T,...
a.) Suppose that there is a constant magnetic field in the xy-plane with magnitude 0.5 T, and a proton is moving with a speed of 3 × 10^5 m/s at a 45◦ angle relative to the field. What is the magnitude of the acceleration of the proton assuming it only experiences the force due to the magnetic field? b.) Inside of any microwave, there is a tube called a magnetron in which electrons orbit an approximately constant magnetic field. The...
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT