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Superconductors can carry very large currents with no resistance. If a superconducting wire is formed into a solenoid of length 20.0 cm with 691 turns, what is the magnetic field inside the solenoid when the current is 5.38 kA? (µ0 = 4π × 10−7 T⋅m/A)

Respuesta :

lublana

Answer:

23.36 T

Explanation:

We are given that

Length of solenoid=l=20 cm=[tex]\frac{20}{100}=0.2 m[/tex]

1 m=100 cm

Number of turns=N=691

Current=I=[tex]5.38kA=5.38\times 10^3 A[/tex]

[tex]1 kA=10^3 A[/tex]

[tex]\mu_0=4\pi\times 10^{-7}Tm/A[/tex]

We have to find the magnetic field inside the solenoid.

We know that the magnetic field of solenoid

[tex]B=\frac{\mu_0NI}{l}[/tex]

Substitute the values

[tex]B=\frac{4\pi\times 10^{-7}\times 691\times 5.38\times 10^3}{0.2}[/tex]

[tex]B=23.36 T[/tex]

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