Asked by lucy
if 8.100 grams of C6H6 is burned and heat is produced from the burning is added to 5691 grams of water at 21 degrees celsius what is the final temp of the water?
2C6H6+15O2=12CO2+6H2O+6524kj
2C6H6+15O2=12CO2+6H2O+6524kj
Answers
Answered by
DrBob222
2C6H6 + 15O2 ==> 12CO2 + 6H2O
Then heat from 8.1 g will be
6524 kJ x (8.100g/2*molar mass C6H6) = y kJ.
Substitute y into
y = mass H2O x specific heat H2O x (Tfinal-Tinitial). Tf is the only unknown.
Then heat from 8.1 g will be
6524 kJ x (8.100g/2*molar mass C6H6) = y kJ.
Substitute y into
y = mass H2O x specific heat H2O x (Tfinal-Tinitial). Tf is the only unknown.
Answered by
Chem
C6H12 = 6x12 + 6x1 = 78.
The equation indicates that 2x78 = 156g benzene will produce 6542kJ.
Using proportions you can then calculate that
x/6542kJ = 8.1g / 156g
x = 339.7kJ = 339700J.
heat = mass x ΔT x 4.18J/g°
ΔT = 339700J / (5691g x 4.18J/g°) = 14.3°
final temp = 21 + 14.3° = 35.3°C
The equation indicates that 2x78 = 156g benzene will produce 6542kJ.
Using proportions you can then calculate that
x/6542kJ = 8.1g / 156g
x = 339.7kJ = 339700J.
heat = mass x ΔT x 4.18J/g°
ΔT = 339700J / (5691g x 4.18J/g°) = 14.3°
final temp = 21 + 14.3° = 35.3°C
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