mCaCO3 = 500*80%= 400 (g)
nCaCO3 = 400/100 = 4 (mol)
nCaCO3(pư) = 4*70%=2.8 (mol)
CaCO3 -to-> CaO + CO2
2.8..................2.8
Chất rắn X : CaCO3 dư , CaO
mX = ( 4 -2.8 ) *100 + 2.8*56 = 276.8 (g)
%CaO = 2.8*56/276.8 * 100% = 56.64%
a)mCaCO3=500.80%=400(g) -> nCaCO3=400/100=4(mol)
PTHH: CaCO3 -to-> CaO + H2O
nCaO(LT)=nCaCO3=4(mol)
=> nCaO(TT)=4. 70%=2,8(mol)
=>mX=mCaO+ m(trơ)+ mCaCO3(chưa p.ứ)=2,8.56+100+ 1,2.100=376,8(g)
b) %mCaO= (156,8/376,8).100=41,614%