In January 2025
Answer to Question #206108 in General Chemistry for johnny
Determine the specific heat of lead if :
a- A 150 g sample of lead is heated to the temperature of boiling water (100 oC).
b- A 50 g sample of water is added to a thermally isolated beaker, and its temperature is found to be 20 oC.
c- The hot lead is dumped into cold water, and the final lead-water mixture has a temperature of 28.8 oC.
Let c be the specific heat of Pb
Heat lost by Pb = mass x specific heat x temperature change of Pb
= 100.0 x c x (100.0 - 26.4) = 7360c J
Heat gained by water = mass x specific heat x temperature change of water
= 150 x 4.184 x (26.4 - 25.0) = 878.64 J
Total heat lost = total heat gained
7360c = 878.64
Specific heat of capacity of Pb = c = 878.64/7360
= 0.119 J/g C
Molar heat capacity of Pb = specific heat capacity x molar mass of Pb
= 0.119 x 207.2
= 24.7 J/mol C
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