rastvori
Submitted by CileOle on Sat, 01/18/2014 - 11:08
Forums:
Vodeni rastvor amonijum-sulfata ciji je molalitet 0,656 molkg-1 ima gustinu na 20oC ro=1,05 kg/dm3 . Izrazi sastav ovog rastvora :
a) kolicinskom koncentracijom - rez: c(NH4)2SO4 = 0,634mol/dm3
b)masenim udjelom - rez: w((NH4)2SO4 = 0,0797
c) molskim razlomkom - rez: x(NH4)2SO4= 0,0117
a) b=n/m(rastvaraca)
a) b=n/m(rastvaraca)
V=1 l pa je
mr=ro*V=1.05*1=1.05 kg
m(rastvaraca)=mr-ms
b=ms/Mr*(mr-ms)
0.656=ms/0.132*(1.05-ms)
0.091=1.086*ms
ms=0.091/1.086=0.084 kg
n=ms/Mr=0.084/0.132=0.636 mol
c=n/V=0.636 mol/l (NH4)2SO4
b) w=ms/mr=0.084/1.05=0.08 (NH4)2SO4
c) nu=n(vode)+n
n(vode)=m(vode)/Mr=0.966/0.018=53.67 mol jer je voda rastvarac
nu=53.66+0.636=54.296 mol
x=0.636/54.296=0.0117 (NH4)2SO4