Answer:
34.17°C
Explanation:
Given:
mass of metal block = 125 g
initial temperature [tex]T_i[/tex] = 93.2°C
We know
[tex]Q = m c \Delta T[/tex] ..................(1)
Q= Quantity of heat
m = mass of the substance
c = specific heat capacity
c = 4.19 for H₂O in [tex]J/g^{\circ}C[/tex]
[tex] \Delta T[/tex] = change in temperature
Now
The heat lost by metal = The heat gained by the metal
Heat lost by metal = [tex]125\times 0.9\times (93.2-T_f)[/tex]
Heat gained by the water = [tex]100\times 4.184\times(T_f -18.3)[/tex]
thus, we have
[tex]125\times 0.9\times (93.2-T_f)[/tex] = [tex]100\times 4.184\times(T_f -18.3)[/tex]
[tex]10485-112.5T_f = 418.4T_f - 7656.72[/tex]
⇒ [tex]T_f = 34.17^oC[/tex]
Therefore, the final temperature will be = 34.17°C
