Question #323205

200 grams metal at 1000C is placed on calorimeter which contains 300 grams water at 180C. If the specific heat of metal is 140 J/kg0C, determine the final temperature of the system!

1
Expert's answer
2022-04-04T09:03:35-0400

Given:

m1=200gm_1=200\:\rm g

t1=100Ct_1=100^\circ\rm C

m2=300gm_2=300\:\rm g

t2=18Ct_2=18^\circ\rm C

c1=140J/kgCc_1=140\:\rm J/kg^\circ\rm C

c2=4184J/kgCc_2=4184\:\rm J/kg^\circ\rm C

The heat balance equation says

c1m1(t1t3)=c2m2(t3t2)c_1m_1(t_1-t_3)=c_2m_2(t_3-t_2)

Hence, the final temperature of system

t3=c1m1t1+c2m2t2c1m1+c2m2t_3=\frac{c_1m_1t_1+c_2m_2t_2}{c_1m_1+c_2m_2}

t3=1400.2100+41840.3181400.2+41840.3=20Ct_3=\frac{140*0.2*100+4184*0.3*18}{140*0.2+4184*0.3}=20^\circ\rm C


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