What will be the equivalent weight of $K C l O_{3}$ $KClO_3$ in the following equation ?

Question

What will be the equivalent weight of $K C l O_{3}$ $KClO_3$ in the following equation ?

$3 K C l O_{3} + 3 H_{2} S O_{4} \to 3 K H S O_{4} + H C l O_{4} + 2 C l O_{2} + H_{2} O$ $3KClO_3 + 3H_2SO_4 → 3KHSO_4 + HClO_4 + 2ClO_2 + H_2O$

2 Answers

Impact of this question

19746 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2018-06-10T19:07:07

The equivalent weight is183.82 g.

Explanation:

The usual formula for calculating the equivalent weight ( $EW$ $"EW"$ ) of a substance in a redox equation is

$EW = \frac{MW}{n}$ $"EW" = "MW"/n$

where

$MW =$ $"MW ="$ the molecular weight of the substance and

$n m l =$ $n color(white)(ml)=$ the change in oxidation number

For a disproportionation reaction, as you have above, we must modify the formula to

$EW = \frac{MW}{N} = \frac{MW}{n_{1}} + \frac{MW}{n_{2}}$ $"EW" = "MW"/N = "MW"/n_1 + "MW"/n_2$

where

$n_{1}$ $n_1$ and $n_{2}$ $n_2$ are the $n$ $n$ -values for the two half-reactions and
$N$ $N$ is the equivalent $n$ $n$ -value for the overall reaction

We can factor out $MW$ $"MW"$ to get

$\frac{1}{N} = \frac{1}{n_{1}} + \frac{1}{n_{2}}$ $1/N = 1/n_1 + 1/n_2$

We can solve this equation to get

$color(blue)(bar(ul(|color(white)(a/a)N = (n_1n_2)/(n_1 + n_2)color(white)(a/a)|)))" "$

For the oxidation half-reaction

$"K"stackrelcolor(blue)("+5")("Cl")"O"_3 → "H"stackrelcolor(blue)("+7")("Cl")"O"_4$

$n = 2$

For the reduction half-reaction

$"K"stackrelcolor(blue)("+5")("Cl")"O"_3 → stackrelcolor(blue)("+4")("Cl")"O"_2$

$n = 1$

For the overall reaction

$N = (2 × 1)/(2 + 1) = 2/3$

∴ $"EW" = "MW"/(2/3) = "122.55 g"× 3/2= "183.82 g"$

Answer 2 · 2018-06-11T11:20:51

Here's another way to solve the problem.

Explanation:

The equivalent weight is the molecular weight ( $"MM"$ ) divided by the number of electrons transferred per mole of reactant ( $n$ ).

$color(blue)(bar(ul(|color(white)(a/a)"Equivalent weight" = "MM"/ncolor(white)(a/a)|)))" "$

We need the moles of electrons, so let's balance the equation by the ion-electron method.

Unbalanced equation: $"KClO"_3 → "KClO"_4 + "ClO"_2$

Reduction: $1 × ["KClO"_3 + "H"_2"O" → "KClO"_4 + "2H"^"+" + 2"e"^"-"]$
Oxidation: $2 × ul(["KClO"_3 + "2H"^"+" + "e"^"- "→ "K"^"+" + "ClO"_2 + "H"_2"O"]color(white)(mmm))$
Overall: $color(white)(mmm)3"KClO"_3 + "2H"^"+" → "KClO"_4 + 2"K"^"+" + "2ClO"_2 + "H"_2"O"$

We see that 2 mol of electrons are transferred in the reaction.

Since 3 mol of $"KClO"_3$ are involved, the number of electrons transferred per mole of $"KClO"_3$ is

$n = ("2 mol e"^"-")/("3 mol KClO"_3) = 2/3color(white)(l) "mol electrons per mole of KClO"_3"$

∴ $"Equivalent weight" = "MM"/n = "122.55 g"/(2/3) = "183.82 g"$

The equivalent weight of $"KClO"_3$ in this reaction is 183.82 g.

Science

Math

Humanities

... and beyond

What will be the equivalent weight of $K C l O_{3}$ $KClO_3$ in the following equation ?

$3 K C l O_{3} + 3 H_{2} S O_{4} \to 3 K H S O_{4} + H C l O_{4} + 2 C l O_{2} + H_{2} O$ $3KClO_3 + 3H_2SO_4 → 3KHSO_4 + HClO_4 + 2ClO_2 + H_2O$

2 Answers

Explanation:

Explanation:

Related questions

Impact of this question

Science

Math

Humanities

... and beyond

What will be the equivalent weight of KClO_3KClO3KClO_3 in the following equation ?

3KClO_3 + 3H_2SO_4 → 3KHSO_4 + HClO_4 + 2ClO_2 + H_2O 3KClO3+3H2SO4→3KHSO4+HClO4+2ClO2+H2O3KClO_3 + 3H_2SO_4 → 3KHSO_4 + HClO_4 + 2ClO_2 + H_2O

2 Answers

Explanation:

Explanation:

Related questions

Impact of this question

What will be the equivalent weight of $K C l O_{3}$ $KClO_3$ in the following equation ?

$3 K C l O_{3} + 3 H_{2} S O_{4} \to 3 K H S O_{4} + H C l O_{4} + 2 C l O_{2} + H_{2} O$ $3KClO_3 + 3H_2SO_4 → 3KHSO_4 + HClO_4 + 2ClO_2 + H_2O$