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Đáp án:
$\text{Gọi a là số mol $SO_{3}$ cần thêm vào dd $H_{2}$$SO_{4}$ 10%}$
`→` $m_{SO_3}$ = `80x`
`Ta` `có` `:`
`PTPU`:
`SO_3` + $\text{$H_{2}$O}$ → `H_2“SO_4`
`x` `mol`
`→` $m_{H_2SO_4}$ `cần` `thêm` `là` `98x` `(g)`
⇒ $m_{H_2SO_4}$ `sau` `pư` = `98x` + 10 `(g)`
`Theo` `ĐLBTKL` `:`
`→` $m_{ddH_2SO_4}$ `sau` `pư` `=` `80x` `+` `100`
$m_{H_2SO_4}$ `(` `10%` `)` `=` `100` `×` `10%` `=` `10` `(` `g` `)`
$\text{Vì dung dịch $H_{2}$$SO_{4}$ 10%}$ $\text{sau phản ứng là 20%}$
`⇒` $\frac{m_{H_2SO_4}}{m_{ddH_2SO_4}}$ = $\frac{98x + 10}{80x + 100}$ = `20/100`
`⇒` $\text{a ≈ 0,122 ( g )}$
`⇒` $m_{SO_3}$ `cần` `thêm` `=` `0,122` `×` `80` = `9.756` `(g)`
$\text{Cho mk ctlhn!!}$