The molality of 1 L solution with x % H 2 SO 4( w / v ) is equal to 9 . The weight of solvent present in the solution is 910 g. The value of x is-

Question

The molality of 1 L solution with x % H 2 SO 4( w / v ) is equal to 9 . The weight of solvent present in the solution is 910 g. The value of x is- (A) 90 (B) 80.3 (C) 100 (D) 95.5

Tardigrade Admin · Accepted Answer

molality =9 which means, 9 moles of solute ( H 2 SO 4) are present per kg of solvent. So, no. of moles of solute in 1000 g solvent =9 no. of moles of solute in 910 g solvent =(9/1000) × 910 =(819/100) =8.19 moles wt. of 8.19 moles of H 2 SO 4=98 × 8.19=802.62 g % age ( w / v ) of H 2 SO 4=(802.62 g /1000 ml ) × 100=80.26 %

Q. The molality of $1 L$ solution with $x % H_{2} S O_{4} (w / v)$ is equal to $9.$ The weight of solvent present in the solution is $910 g$ . The value of $x$ is-

$90$

$80.3$

$100$

$95.5$

Q. The molality of 1L solution with x%H2​SO4​(w/v) is equal to 9. The weight of solvent present in the solution is 910g. The value of x is-

90

80.3

100

95.5

Q. The molality of $1 L$ solution with $x % H_{2} S O_{4} (w / v)$ is equal to $9.$ The weight of solvent present in the solution is $910 g$ . The value of $x$ is-

$90$

$80.3$

$100$

$95.5$