Q4.111CP

Question

Limestone (CaCO₃) is used to remove acidic pollutants from smokestack flue gases. It is heated to form lime (CaO), which reacts with sulfur dioxide to form calcium sulfite. Assuming a 70.% yield in the overall reaction, what mass of limestone is required to remove all the sulfur dioxide formed by the combustion of 8.510⁴ kg of coal that is 0.33 mass % sulfur?

Step-by-Step Solution

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Answer

You need to calculate the mass of limestone is required to remove all the sulfur dioxide formed by the combustion of 8.510⁴ kg of coal that is 0.33 mass % sulfur.

1Step 1: Chemical reactions

Calcium carbonate decomposes and forms calcium oxide and carbon dioxide. The balanced equation is like

${CaCO}_{3} (s) \overset{Δ}{\to} CaO (s) + {CO}_{2} (g) . ..................................... (1)$

Calcium oxide reacts with sulfur dioxide and forms calcium sulfite. The balanced equation is like

$CaO (s) + {SO}_{2} (g) \to {CaSO}_{3} (s) . ....................................... (2)$

Sulfur reacts with oxygen and forms sulfur dioxide. The balanced equation is like

$S (s) + O_{2} (g) \to {SO}_{2} (g) . ....................................... (3)$

2Step 2: Net balanced equation

Adding equation (1), (2) and (3); you will get

$\begin{matrix} {CaCO}_{3} (s) \overset{Δ}{\to} CaO (s) + {CO}_{2} (g) \\ CaO (s) + {SO}_{2} (g) \to {CaSO}_{3} (s) \\ S (s) + O_{2} (g) \to {SO}_{2} (g) \\ \bar{{CaCO}_{3} (s) + S (s) + O_{2} (g) \to {CaSO}_{3} (s) + {CO}_{2} (g)} \end{matrix}$

Hence, the net balanced equation is

${CaCO}_{3} (s) + S (s) + O_{2} (g) \to {CaSO}_{3} (s) + {CO}_{2} (g)$

3Step 3: Calculation of moles of sulfur

According to the question

Mass of coal = 8.510⁴ kg = 8.510⁷ g

Mass percent of sulfur = 0.33%

Molar mass of sulfur = 32.06g/mol.

Now you can write,

Moles of sulfur

$\begin{array}{l} = [\frac{mass (coal)}{{molar}_{mass} (S)}] \times [\frac{mass % (S)}{100 %}] \\ = [(\frac{8 .5 \times 10^{7}}{32 .06}) \times (\frac{0 .33 %}{100 %})] (mol) \\ = 8749 .22 (mol) \end{array}$

Hence, moles of sulfur are 8749.22mol.

4Step 4: Calculation of moles of CaCO 3

According to the net balanced equation

${CaCO}_{3} (s) + S (s) + O_{2} (g) \to {CaSO}_{3} (s) + {CO}_{2} (g)$

1 mol CaCO₃reacts with 1 mol sulfur.

Therefore, moles of CaCO₃

$\begin{array}{l} = (8749 .22 \times \frac{1}{1}) (mol) \\ = 8749 .22 (mol) \end{array}$

Hence, moles of CaCO₃ are 8749.22mol.

5Step 5: Calculation of mass of CaCO 3

According to the question,

Yield % = 70%

Molar mass of CaCO₃ = 100g/mol

Therefore, mass of CaCO₃

_{$\begin{array}{l} = [(8749 .22 \times \frac{100 %}{70 %}) \times 100] (g) \\ = (1 .24 \times 10^{6}) (g) \\ = (1 .24 \times 10^{3}) (kg) \end{array}$}

Hence, mass of CaCO₃ = 1.2410³ kg.

6Step 6: Conclusion

The mass of limestone required to remove all the sulfur dioxide formed by the combustion of 8.510⁴ kg of coal that is 0.33 mass % sulfur is 1.2410³ kg.

Q4.110CP

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