Home
Class 11
CHEMISTRY
A solution of KCl has a density of 1.69 ...

A solution of `KCl` has a density of `1.69 g mL^(-1)` and is 67% by weight. Find the denisty of the solution if it is diluted so that the percentage by weight of `KCl` in the diluted solution is 30%`

Text Solution

Verified by Experts

Let the volume of the `KCl` solution be `100mL`
Weight of `KCl` solution `= 100 xx 1.69 = 169 g`
100 g of solution contains = 67 g of KCl
`169g` of solution `=(67)/(100) xx 169 = 113.23g`
Lex x mL of `H_(2)O` be added
New volume of solution `= (100 + x) mL`
New weight of solution `= (169 +x)g`
`("Since " x" " mL " of " H_(2)O = x" " g " of " H_(2)O,d_(H_(2_(O))) = 1)`
New percentage of the solution `=30%`
`%` by weight `=("weight of solute" xx 100)/("weight of solution")`
`30 = (113.23)/((169 xx x)) xx 100`
`x = 208.43mL = 208.43g`
New density = `("New weight of solution")/("New volume of solution")`
`=((169 +x))/((100+x))`
`=((169 + 208 .43))/((100 + 208.43))=(377.43)/(308.43)`
`:. d = 1.224` .
Promotional Banner

Topper's Solved these Questions

  • MOLE CONCEPT

    ALLEN|Exercise EXERCISE - 01|49 Videos
  • MOLE CONCEPT

    ALLEN|Exercise EXERCISE - 02|46 Videos
  • IUPAC NOMENCLATURE

    ALLEN|Exercise Exercise - 05(B)|7 Videos
  • QUANTUM NUMBER & PERIODIC TABLE

    ALLEN|Exercise J-ADVANCED EXERCISE|24 Videos

Similar Questions

Explore conceptually related problems

Find the molarity of 1.0 L solution of 90% H_2SO_4 by weight/volume. The density of the solution is 1.47

A 6.90 M solution of KOH contains 30% by weight of KOH . Calculate the density of the solution.

A 6.90 M solution of KOH contains 30% by weight of KOH . Calculate the density of the solution.

When 400 g of a 20% solution by weight was cooled, 50 g of solute precipitated. What is the percentage by mass of solute in the remaining solution ?

25.5 g of H_(2)O_(2) solution on decomposition gave 1.68 L of O_(2) at STP. The percentage strength by weight of the solution is

The density of 3 M solution of Na_2S_2O_3 is 1.25g/mL . What is % by weight of Na_2S_2O_3 ?

The acid solution has a specific gravity of 1.8, when it contains 62% by weight of the acid. The solution is diluted to such an extant this its specific gravity is lowered to 1.2. what is the % by weight of the acid new solution.

A solution of glucose ("molar mass"= 180g mol^(-1)) in water is labelled as 10% (by mass). What would be the molarity and molality of the solution? Given that the density of the solution is 1.2g mL^(-1) .

Given a solution of HNO_3 of density 1.4 g/mL and 63% w/w. Determine molarity of HNO_3 solution.

The density of NH_(4)OH solution is 0.6g//mL . It contains 34% by weight of NH_(4)OH . Calculate the normality of the solution: