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The conductive tissues of the upper leg can be modeled as a 40- cm-long, 12-cm-diameter cylinder of muscle and fat. The resistivities of muscle and fat are 13 Ω m and 25 Ω m, respectively. One person’s upper leg is 82% muscle, 18% fat.
What current is measured if a 1.5 V potential difference is applied between the person’s hip and knee?

Respuesta :

Answer:

current = 0.0027 A

Explanation:

the resistivity of upper leg

[tex]\rho = 0.82 (13) + 0.18(25) = 15.16 ohm . m[/tex]

Resistance of upper leg

[tex]R = \frac{\rho L}{A}[/tex]

   [tex]= \frac{\rho L}{\pi R^2}[/tex]

  [tex]= \frac{15.16 \times 0.40}{\pi [\frac{0.12}{2}]^2}[/tex]

  = 551.27 ohm

current[tex] i = \frac{V}{R}[/tex]

[tex]current = \frac{1.5}{551.27}[/tex]

current = 0.0027 A

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