reakcija sagorevanja
Submitted by lanas on Sat, 05/24/2014 - 19:23
Forums:
koliko se toplote oslobadja u reakciji sagorevanja 3,4g amonijaka u azot(I)oksidu?
deltafH (NH3)= -46,1 deltafH (N2O)=90,5 deltafH(H2O)= -285,8kJ/mol resenje:67,64 hvala
2NH3+2O2--------------------
2NH3+2O2-------------------->N2O+3H2O
deltaH=deltaH(N2O)+3*deltaH(H2O)-2*deltaH(O2)-2*deltaH(NH3)
deltaH(O2)=0 kJ
deltaH=90.5+3*(-285.8)-2*0-2*(-46.1)= -674.7 kJ/mol
n(NH3)=m/Mr=3.4/17=0.2 mol
n1=n(NH3)/2=0.2/2=0.1 mol
Q=deltaH*n1= -674.7*0.1= -67.47 kJ