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8 July, 06:19

The magnitude J (r) of the current density in a certain cylindrical wire is given as a function of radial distance from the center of the wire's cross section as J (r) = Br, where r is in meters, J is in amperes per square meter, and B = 2.34 * 105 A/m3. This function applies out to the wire's radius of 2.00 mm. How much current is contained within the width of a thin ring concentric with the wire if the ring has a radial width of 13.1 μm and is at a radial distance of 1.50 mm?

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  1. 8 July, 06:27
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    2.54 μA

    Explanation:

    The current I in the wire is I = ∫∫J (r) rdrdθ

    Since J (r) = Br, in the radial width of 13.1 μm, dr = 13.1 μm. r = 1.50 mm. We have a differential current dI. We remove the first integral by integrating dθ from θ = 0 to θ = 2π.

    So, dI = J (r) rdrdθ ⇒ dI/dr = ∫J (r) rdθ = ∫Br²dθ = Br²∫dθ = 2πBr²

    Now I = (dI/dr) dr evaluate at r = 1.50 mm = 1.50 * 10⁻³ m and dr = 13.1 μm = 0.013 mm = 0.013 * 10⁻³ m

    I = (2πBr²) dr = 2π * 2.34 * 10 A/m³ * (1.50 * 10⁻³ m) ² * 0.013 * 10⁻³ m = 2544.69 * 10⁻⁹ A = 2.54 * 10⁻⁶ A = 2.54 μA
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