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8. 5.92 g of sodium oxalate is reacted with 5.92 of calcium chloride Balanced Chemical Equation Reaction Type:At the completion of reactions: Formula of Reactant A: Grams of Reactant A: Formula of Reactant B: Grams of Reactant B: Formula of Product C: Grams of Product C: Formula of Product D: Grams of Product D:

User Kuldeep Kapade
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1 Answer

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17 votes

So,

First of all, remember that a chemical equation has the following general form:


A+B\to C+D

Compound A reacts with compound B, to form compounds C and D.

In this question, we have that 5.92 g of sodium oxalate is reacted with 5.92 of calcium chloride. So, we can identify the following:

Balanced chemical reaction:


Na_2C_2O_4+CaCl_2\to CaC_2O_4+2NaCl

This reaction is a displacement reaction.

The reaction tells us that sodium oxalate is reacted with calcium chloride to form calcium oxalate and sodium chloride.

Formula for reactant A: (Sodium oxalate)


Na_2C_2O_4

$$Na_2C_2O_4$$Grams of reactant A: 5.92g

Formula of reactant B: (Calcium chloride)


\text{CaCl}_2

Grams of reactant B: 5.92g

Formula of product C: (Calcium oxalate)


CaC_2O_4

Formula of product D: (Sodium chloride)


NaCl

To find the amount of grams of calcium oxalate produced (Product C), we could use the stoichiometry of the reaction. But first, we need to pass all the amounts of each reactant to moles (n). (This is the first step)

This is, just divide the amounts by the molar mass of each compound:


\begin{gathered} n_(Na_2C_2O_4)=\frac{\text{Mass }Na_2C_2O_4}{\text{Molar mass }Na_2C_2O_4} \\ \\ n_(Na_2C_2O_4)=\frac{5.92g\text{ }Na_2C_2O_4}{134moles\text{ }Na_2C_2O_4}=0.044179moles\text{ }Na_2C_2O_4 \\ \\ n_(CaCl_2)=\frac{\text{Mass }CaCl_2_{}}{\text{Molar mass }CaCl_2_{}} \\ \\ n_(CaCl_2)=\frac{5.92gCaCl_2_{}}{111g_(CaCl_2)}=0.0533\text{moles }CaCl_2 \end{gathered}

Now, let's apply the stoichiometry of the reaction using the limiting reactant. (In this reaction, the limiting reactant is the sodium oxalate).

In the reaction, we can clearly see that for each mol of sodium oxalate, two 1 mol of calcium oxalate is produced. So:


0.044179molesNa_2C_2O_4\cdot\frac{1molCaC_2O_4}{1\text{mol}Na_2C_2O_4}\cdot\frac{128gCaC_2O_4}{1\text{mol}CaC_2O_4}=5.65gCaC_2O_4

So, 5.65 grams of Calcium oxalate are produced.

We use the same process to find the grams of product D. But, notice that in the reaction, for each mol of sodium oxalate, two moles of NaCl reacts. Then,


0.044179molesNa_2C_2O_4\cdot\frac{2molesNaCl_{}}{1\text{mol}Na_2C_2O_4}\cdot\frac{58.44gNaCl_{}}{1\text{molNaCl}}=5.16gNaCl_{}

So, 5.16 g of NaCl are produced.

User CyberFonic
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