In the reaction $2NaOH+H_2SO_4 -> 2H_2O+Na_2SO_4$ , how many grams of sodium sulfate will be formed if you start with 200.0 grams of sodium hydroxide and you have an excess of sulfuric acid?

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Answer 1 · 2016-03-15T02:01:58

Use the mole analogy of the reactant with the product. and substitute with the mole definition.

Answer is 355 grams.

Given the molecular weights:

$Mr_(NaOH)=40 g/(mol)$
$Mr_(Na_2SO_4)=142 g/(mol)$

The analogy of the moles will be held constant:

$n_(NaOH)/n_(Na_2SO_4)=2/1$

$n_(NaOH)/n_(Na_2SO_4)=2$

For each one, substitute:

$n=m/(Mr)$

Therefore:

$n_(NaOH)/n_(Na_2SO_4)=2$

$(m_(NaOH)/(Mr_(NaOH)))/(m_(Na_2SO_4)/(Mr_(Na_2SO_4)))=2$

$(200/40)/(x/142)=2$

$(200*142)/(40x)=2$

$200*142=2*40x$

$x=(200*142)/(2*40)=(100*142)/40=10*142/4=1420/4=$

$=710/2=355grams$ (or just use a calculator)

Answer 2 · 2016-03-15T02:31:38

Through conversion method using mole ratio and formula masses the answer is $355$ g of $Na_2SO_4$

Equation is already balanced, therefore what you need to find are the formula masses of the involved compounds, $NaOH$ and $Na_2SO_4$ ;
Once known, start the calculation by converting $200$ g $NaOH$ to mole $NaOH$ by multiplying it with the ratio of the formula mass of $NaOH$ ;
The result from the above calculation, will then be multiplied by the mole ratio of $Na_2SO_4$ and $NaOH$ , which is $(1 mol Na_2SO_4)/(2 mol NaOH)$ ;
Since, we are asked to find the mass of $Na_2SO_4$ formed in this reaction, we need to multiply the answer of $step 3$ to the ratio of the formula mass of $Na_2SO_4$ .
Per calculation, the answer in mass is $355$ grams of $Na_2SO_4$ .

In the reaction 2NaOH+H_2SO_4 -> 2H_2O+Na_2SO_42NaOH+H_2SO_4 -> 2H_2O+Na_2SO_4, how many grams of sodium sulfate will be formed if you start with 200.0 grams of sodium hydroxide and you have an excess of sulfuric acid?