Mieszanina jodku i bromku potasu zawiera 26,9% K. Oblicz procentowa zawartość KI i KBr w mieszaninie
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Odpowiedź:
Wyjaśnienie:
Dane: Szukane:
zakładam masę mieszaniny, m= 100g m KI = x
czyli zawartość K, mK = 26,9g m KBr = y
M KI = 166g/mol % KBr=?
166g.............39g K
x g.................m₁ K
m₁ = 39*x/166
MKBr = 119g/mol
119g.............39g K
x g.................m₂K
m₂ = 39*x/119
m₁ + m₂ = 26,9g
czyli:
39x/166 + 39y/119 = 26,9
y = 100 - x
39x/166 + 39(100-x)/119 = 26,9
39x/166 + (3900 - 39x)/119 = 26,9 |*166*119
4641x + 647400 - 6474x = 531382,6
1833x = 116017,4
x = 63,3(g)
x = m₁ = mKI = 63,3g
% KI = 63,3g/100g *100% = 63,3%
y = 100 - x = m₂ = mKBr = 36,7g
% KBr = 36,7g/100g*100% = 36,7%