Question 9(ii)A piece of ice of mass 100 g is dropped into 450 g of water at 45°C. Calculate the final temperature of water after all of the ice has melted. (Specific heat capacity of water 4200 Jkg-1°C-1, specific heat of fusion of ice = 336 x 103 Jkg-1)

Question

Accepted Answer

Given,mi = 100 gConverting g to kg1000 g = 1 kgSo, 100 g = 1001000\dfrac{100}{1000}1000100​ = 0.1 kgmw = 450 gConverting g to kg1000 g = 1 kgSo, 450 g = 4501000\dfrac{450}{1000}1000450​ = 0.45 kgSpecific heat capacity of water = 4200 J kg-1 K-1specific latent heat of fusion of ice = 336 x 103 J kg-1final temperature of water = ?Let final temperature = tHeat energy given out by water when it cools from 45° C to t° C= m x c x Δt= 0.45 × 4200 × (45 – t)= 85050 – 1890tHeat energy taken by ice when it converts from ice into water at 0° C= m x L= 0.1 × 336 x 103 J= 33600 JHeat energy taken by water when it raises it's temperature from 0° to t° C= m x c x Δt= 0.1 × 4200 × (t – 0)= 0.1 × 4200 × t= 420tIf there is no loss of energy,Heat energy gained = heat energy lostSubstituting the values we get,33600+420t=85050−1890t1890t+420t=85050−336002310t=51450t=514502310t=22.27°C33600 + 420t = 85050 - 1890t \[0.5em] 1890t + 420t = 85050 - 33600 \[0.5em] 2310t = 51450 \[0.5em] t = \dfrac{51450}{2310} \[0.5em] t = 22.27° C33600+420t=85050−1890t1890t+420t=85050−336002310t=51450t=231051450​t=22.27°CHence, final temperature = 22.27°C

Solved Sample Paper 4 — Question 17

Question 9(ii)