The operating temperature of an incandescent bulb (with a tungsten filament) of power 60W is 3000K. If the surface area of the filament be 25mm2. Find its emissivity e.(σ=5.67×10−8W/m2−K4)
A
0.52
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B
0.48
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C
0.64
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D
0.36
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Solution
The correct option is A0.52 Given T=3000K; Power =dQdt=60W
Area A=25×10−6m2,e=?
Total radiation lost per second =dQdt=AeσT4, 60W=(25×10−6m2)e(5.67×10−8m−2−K−4)(3000)4K4 60=114.82e ϵ=0.52