Answer:
69.92°F
Step-by-step explanation:
Given:
Initial temperature ( i.e at time, t = 0) = 40°F
Temperature of the room = 70°F
Temperature after 10 minutes ( i.e at time t = 10 ) = 48°F
Now, from Newton's law of cooling
T'(t) = k(A - T(t))
T(t) temperature after time t
T'(t) = [tex]\frac{\textup{dT}}{\textup{dt}}[/tex]
here, A is the room temperature
thus,
[tex]\frac{\textup{dT}}{\textup{dt}}[/tex] = k(70 - T)
or
[tex]\frac{\textup{dT}}{\textup{70-T}}[/tex] = kdt
on solving the differential equation, we get
T = [tex]70-C^{-kt}[/tex] ............(1)
Now from the boundary conditions,
i.e at time, t = 0; T = 40°F
we get,
40 = [tex]70-C^{-k\times0}[/tex]
or
C = 30
and,
at time, t = 10; T = 48°F
thus,
48 = [tex]70-30^{-k\times10}[/tex]
or
k = [tex]\frac{\textup{-1}}{\textup{10}}ln\frac{11}{15}[/tex]
or
k = 0.03
Therefore,
for t = 25
from 1 we have
T = [tex]70-30^{-0.03\times25}[/tex]
or
T = 70 - 0.0780
or
T = 69.92°F
