Answer:
28.16 °C
Explanation:
Considering that:-
Heat gain by water = Heat lost by metal
Thus,
[tex]m_{water}\times C_{water}\times (T_f-T_i)=-m_{metal}\times C_{metal}\times (T_f-T_i)[/tex]
Where, negative sign signifies heat loss
Or,
[tex]m_{water}\times C_{water}\times (T_f-T_i)=m_{metal}\times C_{metal}\times (T_i-T_f)[/tex]
For water:
Mass = 165 g
Initial temperature = 28 °C
Specific heat of water = 4.184 J/g°C
For metal:
Mass = 4.00 g
Initial temperature = 75 °C
Specific heat of water = 0.600 J/g°C
So,
[tex]165\times 4.184\times (T_f-28)=4.00\times 0.600\times (75-T_f)[/tex]
[tex]690360\left(T_f-28\right)=2400\left(75-T_f\right)[/tex]
[tex]692760T_f=19510080[/tex]
[tex]T_f = 28.16\ ^0C[/tex]
Hence, the final temperature is 28.16 °C
