1.01 * 10^7 grams/day
Given the reaction produced during the combustion of methane expressed as:
[tex]CH_4+2O_2\rightarrow CO_2+2H_2O[/tex]Calculate the moles of methane:
[tex]\begin{gathered} Moles=\frac{Mass}{molar\text{ mass}} \\ Moles\text{ of CH}_4=\frac{4.49\times10^6}{16.04} \\ moles\text{ of CH}_4=2.799\times10^5moles \end{gathered}[/tex]According to stochiometry, 1 mole of methane produces 2 moles of water. The moles of water produced at the end of the reaction will be:
[tex]\begin{gathered} moles\text{ of H}_2O=2_\times2.799\times10^5 \\ moles\text{ of }H_2O=5.598\times10^5moles \end{gathered}[/tex]Determine the mass of water produced in a day
[tex]\begin{gathered} Mass=moles\times molar\text{ mass} \\ Mass=5.598\times10^5\times18.02 \\ Mass\text{ of water = 100.88}\times10^5grams \\ Mass\text{ of water}=1.01\times10^7grams\text{/day} \end{gathered}[/tex]Hence the mass in grams of water produced by this reaction in one day is approximately 1.01 * 10^7 grams
