дано
m(CH3COOH) = 120 g
+C2H5OH
η(CH3COOC2H5) = 90%
m практ (CH3COOC2H5) = ?
CH3COOH+C2H5OH-->CH3COOC2H5+H2O
M(CH3COOH) = 60 g/mol
n(CH3COOH) = m(CH3COOH) / M(CH3COOH) = 120 / 60 = 2 mol
n(CH3COOH) = n(CH3COOC2H5) = 2 mol
M(CH3COOC2H5) = 88 g/mol
m теор(CH3COOC2H5) = n(CH3COOC2H5) * M(CH3COOC2H5)
m теор(CH3COOC2H5)= 2*88 = 176 g
m практ (CH3COOC2H5) = m теор(CH3COOC2H5) * η(CH3COOC2H5) / 100%
m практ (CH3COOC2H5) = 176*90% / 100% = 158.4 г
ответ 158.4 гр
Решал: Овчинников Алексей Володимирович
Объяснение:
дано
m(CH3COOH) = 120 g
+C2H5OH
η(CH3COOC2H5) = 90%
m практ (CH3COOC2H5) = ?
CH3COOH+C2H5OH-->CH3COOC2H5+H2O
M(CH3COOH) = 60 g/mol
n(CH3COOH) = m(CH3COOH) / M(CH3COOH) = 120 / 60 = 2 mol
n(CH3COOH) = n(CH3COOC2H5) = 2 mol
M(CH3COOC2H5) = 88 g/mol
m теор(CH3COOC2H5) = n(CH3COOC2H5) * M(CH3COOC2H5)
m теор(CH3COOC2H5)= 2*88 = 176 g
m практ (CH3COOC2H5) = m теор(CH3COOC2H5) * η(CH3COOC2H5) / 100%
m практ (CH3COOC2H5) = 176*90% / 100% = 158.4 г
ответ 158.4 гр
Решал: Овчинников Алексей Володимирович
Объяснение: