4. A car engine with the dimensions 0.6 m high, 0.50 m-wide, and 0.8-m- long. The bottom surface of the engine block is at a temperature of 80°C and has an emissivity of 0.95. The ambient air is at 20°C, and the road surface is at 25°C. Determine the rate of heat transfer from the bottom surface of the engine block by convection and radiation as the car travels at a velocity of 80 km/h. Assume the flow to be turbulent over the entire surface. k = 0.02735 W/m.°C L= 0.8 m v =1.798×10$ m²/s Engine block Pr = 0.7228 Air T; = 80°C ɛ = 0.95 V½ = 80 km/h T = 20°C

Elements Of Electromagnetics
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ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Sadiku, Matthew N. O.
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4. A car engine with the dimensions 0.6 m high, 0.50 m-wide, and 0.8-m-
long. The bottom surface of the engine block is at a temperature of
80°C and has an emissivity of 0.95. The ambient air is at 20°C, and
the road surface is at 25°C. Determine the rate of heat transfer from
the bottom surface of the engine block by convection and radiation
as the car travels at a velocity of 80 km/h. Assume the flow to be
turbulent over the entire surface.
k = 0.02735 W/m.°C
L = 0.8 m
v =1.798×10$ m²/s
Engine block
Pr = 0.7228
Air
Væ = 80 km/h
T = 20°C
T; = 80°C
ɛ = 0.95
Transcribed Image Text:4. A car engine with the dimensions 0.6 m high, 0.50 m-wide, and 0.8-m- long. The bottom surface of the engine block is at a temperature of 80°C and has an emissivity of 0.95. The ambient air is at 20°C, and the road surface is at 25°C. Determine the rate of heat transfer from the bottom surface of the engine block by convection and radiation as the car travels at a velocity of 80 km/h. Assume the flow to be turbulent over the entire surface. k = 0.02735 W/m.°C L = 0.8 m v =1.798×10$ m²/s Engine block Pr = 0.7228 Air Væ = 80 km/h T = 20°C T; = 80°C ɛ = 0.95
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