Respuesta :
Answer:
1)H=714 Watts of energy is given out.
2)614.34 KCal energy is burnt in an hour in the room
3)In freezing conditions, 1337.09 KCal is spent in an hour.
Explanation:
The formula for thermal conductivity states that the rate of heat loss H is as follows:
H=[tex]\frac{KA (T_{1}-T_{2})}{x}[/tex] where,
K=Coefficient of thermal conductivity
A=Area of Cross Section
H=Rate of heat loss
x=Thickness of the material
[tex]T_{1}-T_{2}[/tex]=Temperature difference between the two surfaces of the body in context
[tex]T_{1}[/tex]=37°C ie. Body Temperature
[tex]T_{2}[/tex]=20°C ie. Room Temperature
For first case, [tex]T_{1}-T_{2}[/tex]=17°C or 17°F
K for fat= 0.21 [tex]Wm^{-1}K^{-1}[/tex]
A=2[tex]m^{2}[/tex]
x=0.01 m
H=[tex]\frac{0.21 * 2* 17}{0.01}[/tex]
H=714 Watts of energy is given out.
2) [tex]Power[/tex]×[tex]Time(in seconds) = Energy[/tex]
Energy= 714 × 60 × 60=2570400 J
2570400 J=614.3403442 KCal
Therefore, 614.3403442 KCal energy is burnt in an hour.
3) Only the temperature difference becomes 37°C from 17°C , rest everything remains the same, therefore the energy will also vary due to the temperature factor and more energy will be spent as in freezing climate [tex]T_{2}=0[/tex] °C
E=[tex]\frac{614.34*37}{17}[/tex]=1337.09 KCal
In freezing conditions, 1337.09 KCal is spent in an hour.
