Answer:
[tex]m_{CuO}=93.6gCuO[/tex]
Explanation:
Hello,
In this case, the undergoing chemical reaction is:
[tex]CuS+\frac{3}{2} O_2\rightarrow CuO+SO_2[/tex]
Thus, given the 1.00-kg of 12.5% ore, we can compute the theoretical yield of copper (II) oxide via stoichiometry:
[tex]m_{CuO}^{theoretical}=1.00kgCuS*\frac{1000gCuS}{1kgCuS} *\frac{12.5gCuS}{100gCuS} *\frac{1molCuS}{95.6gCuS} *\frac{1molCuO}{1molCuS} *\frac{79.5gCuO}{1molCuO} \\\\m_{CuO}^{theoretical}=103.95gCuO[/tex]
Whereas the third factor accounts for the percent purity of the covellite. Then, given the percent yield, we can compute the actual yield by:
[tex]m_{CuO}=103.95gCuO*0.9\\\\m_{CuO}=93.6gCuO[/tex]
Regards.
