91Ó°ÊÓ

The truth is that decomposition reactions rarely happen on their own. They usually require some sort of impetus to get started. The driving force in the transformation of water into hydrogen and oxygen is energy in the form of electricity.

The change in enthalpy and entropy of calcium carbonate breakdown are computed as,

$CaC{O}_3\left(s\right)\stackrel{∆}{→}CaO\left(s\right)+C{O}_2\left(g\right)$

$\begin{array}{rcl}∆{\mathrm{H}}_{\mathrm{rxn}}^{∘}& =& \left[\left(1\mathrm{mol}\right)×∆{\mathrm{H}}_{\mathrm{i}}^{∘}\left(\mathrm{CaO}\right)+\left(1\mathrm{mol}\right)×∆{\mathrm{H}}_{\mathrm{i}}^{∘}\left({\mathrm{CO}}_2\right)\right]-\left[\left(1\mathrm{mol}\right)×∆{\mathrm{H}}_{\mathrm{i}}^{∘}\left({\mathrm{CaCO}}_3\right)\right]\\ & =& \left[\left(1\mathrm{mol}\right)×\left(-631.5\mathrm{kJ}/\mathrm{mol}\right)+\left(1\mathrm{mol}\right)×\left(-393.5\mathrm{kJ}/\mathrm{mol}\right)\right]-\left[\left(1\mathrm{mo}\right)\mathrm{l}×\left(-1206.9\mathrm{kJ}/\mathrm{mol}\right)\right]\\ & =& 178.3\mathrm{kJ}\end{array}$

$\begin{array}{rcl}∆{\mathrm{S}}_{\mathrm{rxn}}^{∘}& =& \underset{}{\overset{}{∑\mathrm{m}∆{\mathrm{S}}_{\mathrm{products}}^{∘}-}}∑\mathrm{m}∆{\mathrm{S}}_{\mathrm{reactants}}^{∘}\\ & =& \left[\left(1\mathrm{mol}\right)×\left(38.2\mathrm{J}/\mathrm{Kmol}\right)+\left(1\mathrm{mol}\right)×\left(213.7\mathrm{J}/\mathrm{Kmol}\right)\right]-\left[\left(1\mathrm{mo}\right)\mathrm{l}×\left(92.9\mathrm{J}/\mathrm{Kmol}\right)\right]\\ & =& 150.9\mathrm{J}/\mathrm{K}\end{array}$

The rate of breakdown is computed as,

$$\begin{gathered} ∆{\mathrm{G}}_{\mathrm{rxn}}^{∘}=0=∆{\mathrm{H}}_{\mathrm{rxn}}^{∘}-\mathrm{T}∆{\mathrm{S}}_{\mathrm{rxn}}^{∘} \\ \mathrm{T}=\frac{∆{\mathrm{H}}_{\mathrm{ma}}^{∘}}{∆{\mathrm{S}}_{\mathrm{ma}}^{∘}}=\frac{178.3\mathrm{kJ}}{159.0\mathrm{J}/\mathrm{Kmol}}×\frac{1000\mathrm{J}}{1\mathrm{kJ}}=1121\mathrm{K}\mathrm{for}{\mathrm{CaCO}}_3 \end{gathered}$$

$MgC{O}_3\left(s\right)\stackrel{∆}{→}MgO\left(s\right)+C{O}_2\left(g\right)$

$\begin{array}{rcl}∆{\mathrm{H}}_{\mathrm{rxn}}^{∘}& =& \left[\left(1\mathrm{mol}\right)×∆{\mathrm{H}}_{\mathrm{i}}^{∘}\left(MgO\right)+\left(1\mathrm{mol}\right)×∆{\mathrm{H}}_{\mathrm{i}}^{∘}\left({\mathrm{CO}}_2\right)\right]-\left[\left(1\mathrm{mol}\right)×∆{\mathrm{H}}_{\mathrm{i}}^{∘}\left(Mg{\mathrm{CO}}_3\right)\right]\\ & =& \left[\left(1\mathrm{mol}\right)×\left(-601.2\mathrm{kJ}/\mathrm{mol}\right)+\left(1\mathrm{mol}\right)×\left(-393.5\mathrm{kJ}/\mathrm{mol}\right)\right]-\left[\left(1\mathrm{mo}\right)\mathrm{l}×\left(-1112.9\mathrm{kJ}/\mathrm{mol}\right)\right]\\ & =& 117.3\mathrm{kJ}\end{array}$

$\begin{array}{rcl}∆{\mathrm{S}}_{\mathrm{rxn}}^{∘}& =& \underset{}{\overset{}{∑\mathrm{m}∆{\mathrm{S}}_{\mathrm{products}}^{∘}-}}∑\mathrm{m}∆{\mathrm{S}}_{\mathrm{reactants}}^{∘}\\ & =& \left[\left(1\mathrm{mol}\right)×\left(26.9\mathrm{J}/\mathrm{Kmol}\right)+\left(1\mathrm{mol}\right)×\left(213.7\mathrm{J}/\mathrm{Kmol}\right)\right]-\left[\left(1\mathrm{mo}\right)\mathrm{l}×\left(65.86\mathrm{J}/\mathrm{Kmol}\right)\right]\\ & =& 174.74\mathrm{J}/\mathrm{K}\end{array}$

When the reaction is spontaneous, the standard free energy is zero. The temperature at which decomposition occurs is calculated as,

$$\begin{gathered} ∆{\mathrm{G}}_{\mathrm{rxn}}^{∘}=0=∆{\mathrm{H}}_{\mathrm{rxn}}^{∘}-\mathrm{T}∆{\mathrm{S}}_{\mathrm{rxn}}^{∘} \\ \mathrm{T}=\frac{∆{\mathrm{H}}_{\mathrm{ma}}^{∘}}{∆{\mathrm{S}}_{\mathrm{ma}}^{∘}}=\frac{117.3\mathrm{kJ}}{174.4.0\mathrm{J}/\mathrm{Kmol}}×\frac{1000\mathrm{J}}{1\mathrm{kJ}}=671\mathrm{K}\mathrm{for}{\mathrm{MgCO}}_3 \end{gathered}$$

Calculate the mass of calcium carbonate as follows:

$CaO\left(s\right)+Si{O}_2\left(s\right)→CaSi{O}_3\left(s\right)$

$\begin{array}{rcl}\mathrm{Mass}\mathrm{of}{\mathrm{CaCO}}_3& =& \left(\frac{2.236×{10}^6\mathrm{ton}}{\mathrm{weeks}}\right)\left(\frac{84\%}{100\%}\right)\left(\frac{52\mathrm{weeks}}{1\mathrm{year}}\right)\left(\frac{50\mathrm{kg}\mathrm{slug}}{1\mathrm{ton}}\right)\left(\frac{{10}^3\mathrm{g}}{1\mathrm{kg}}\right)\\ & =& \left(\frac{1\mathrm{mol}\mathrm{slag}}{116.1\mathrm{g}\mathrm{slag}}\right)\left(\frac{1\mathrm{mol}{\mathrm{CaCo}}_3}{1\mathrm{mol}\mathrm{slag}}\right)\left(\frac{100.09\mathrm{g}{\mathrm{CaCO}}_3}{1\mathrm{mol}{\mathrm{CaCO}}_3}\right)\left(\frac{1\mathrm{kg}}{{10}^3\mathrm{g}}\right)\\ & =& 4.2×{10}^9\mathrm{kg}{\mathrm{CaCO}}_3\end{array}$

Therefore, the mass of limestone is used is $4.2\mathrm{kg}$