# 1. A plate is heated over its entire length and maintained at 140 F. Air at atmospheric pressure and

1. A plate is heated over its entire length and maintained
at 140 F. Air at atmospheric pressure and 80 F is flowing over the plate at
velocity of 6.6 ft/s. Find the heat transfer coefficient and the rate of heat
transfer from at a distance of 1.6 ft from the leading edge. The depth of plate
is 1 ft.

2. For flow over a flat plate, the average temperature
difference e (i.e., _ Ts T f) when the plate temperature is kept constant
is readily calculated. This is not the case if a constant heat flux to or from
the surface is imposed. Use the averaging scheme over the plate length as given
by:

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1. A plate is heated over its entire length and maintained
at 140 F. Air at atmospheric pressure and 80 F is flowing over the plate at
velocity of 6.6 ft/s. Find the heat transfer coefficient and the rate of heat
transfer from at a distance of 1.6 ft from the leading edge. The depth of plate
is 1 ft.

2. For flow over a flat plate, the average temperature
difference e (i.e., _ Ts T f) when the plate temperature is kept constant
is readily calculated. This is not the case if a constant heat flux to or from
the surface is imposed. Use the averaging scheme over the plate length as given
by:

to find the average temperature difference. [Hint:
Substitute for _T in the numerator from the Nu number and for Nu number
from Equation IVb.2.11 and integrate].

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