Answer:[tex]24.70 ^{\circ}C[/tex]
Explanation:
Given
mass of lead piece [tex]m_l=234 gm\approx 0.234 kg[/tex]
mass of water in calorimeter [tex]m_w=611 gm\approx 0.611 kg[/tex]
Initial temperature of water [tex]T_w=24^{\circ}C[/tex]
Initial temperature of lead piece [tex]T_l=24^{\circ}C[/tex]
we know heat capacity of lead and water are [tex]125.604 J/kg-k[/tex] and [tex]4.184 kJ/kg-k[/tex] respectively
Let us take [tex]T ^{\circ}C[/tex] be the final temperature of the system
Conserving energy
heat lost by lead=heat gained by water
[tex]m_lc_l(T_l-T)=m_wc_w(T-T_w)[/tex]
[tex]0.234\times 125.604(86-T)=0.611\times 4.184\times 1000(T-24)[/tex]
[tex]86-T=\frac{0.611\times 4.184\times 1000}{29.391}(T-24)[/tex]
[tex]86-T=86.97T-2087.49[/tex]
[tex]T=\frac{2173.491}{87.97}=24.70^{\circ}C[/tex]
