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Question

Cho 114g dd H2SO4 20%vào 400g đ BaCl2 5,2%.Tính C% dd sau phản ứng

Gấp ạ !!

Nguyen · Accepted Answer

K/l H2SO4:

......mH2SO4=114.20%=22,8(g)

mBaCl2=400.5,2%=20,8(g)

PTHH: H2SO4+BaCl2--->2HCl+ BaSO4

Có: 22,8/(2+32+16.4)>20,8/(137+35,5.2)=> H2SO4 dư $13g$

PTHH: H2SO4+BaCl2--->2HCl+ BaSO4

.................9,8......20,8..........7,3.........23,3(g)

Có: m(dd sau p/ứ)=114+400=514(g)

$C\%_{H_2SO_4}=\frac{13}{514}.100=\frac{650}{257}\left(\%\right)$

$C\%_{HCl}=\frac{7,3}{514}.100=\frac{365}{257}\left(\%\right)$

$C\%_{BaSO_4}=\frac{23,3}{514}.100=\frac{1165}{257}\left(\%\right)$

#WalkerCâu trả lời: K/l H2SO4:

......mH2SO4=114.20%=22,8(g)

mBaCl2=400.5,2%=20,8(g)

PTHH: H2SO4+BaCl2--->2HCl+ BaSO4

Có: 22,8/(2+32+16.4)>20,8/(137+35,5.2)=> H2SO4 dư $13g$

PTHH: H2SO4+BaCl2--->2HCl+ BaSO4

.................9,8......20,8..........7,3.........23,3(g)

Có: m(dd sau p/ứ)=114+400=514(g)

$C\%_{H_2SO_4}=\frac{13}{514}.100=\frac{650}{257}\left(\%\right)$

$C\%_{HCl}=\frac{7,3}{514}.100=\frac{365}{257}\left(\%\right)$

$C\%_{BaSO_4}=\frac{23,3}{514}.100=\frac{1165}{257}\left(\%\right)$

#Walker

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