You use a horizontal, 4 mm diameter, 100 mm long heater rod to boil water under atmospheric pressure. The rod material is of emissivity 0.5 and maintains its surface temperature at 455˚C during operation. Estimate the power dissipation of the heater rod (W).

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tochjosh tochjosh · Answer 1 · 2020-07-02T04:39:30+02:00

Answer:

0.01 W

Explanation:

diameter d of rod = 4 mm

radius r of the rod = d/2 = 4/2 =0.002 m

length L of rod = 100 mm = 0.1 m

temperature of rod = 455 °C

temperature in kelvin = 455 + 273.3 = 728.3 K

emissivity ε of rod = 0.5

external radiative surface area of rod is calculated as

A = [tex]\pi r^{2} L[/tex] = 3.142 x [tex]0.002^{2}[/tex] x 0.1 = 1.26 x [tex]10^{-6}[/tex] m^2

Power dissipiation P = εσA([tex]T^{4}[/tex])

where σ Stefan's constant = 5.67 x [tex]10^{-8}[/tex] W-[tex]m^{2}[/tex]-[tex]K^{4}[/tex]

P = 0.5 x 5.67 x [tex]10^{-8}[/tex] x 1.26 x [tex]10^{-6}[/tex] x [tex]728.3^{4}[/tex] = 0.01 W