The percentage of calcium phosphate in ore = 55. 9% so it means each 100g of ore contains 55.9 g of calcium phosphate
The formula of calcium phosphate = Ca3(PO4)3
As per molecular formula each mole of calcium phosphate contains three moles of phosphorous
mass of each mole of calcium phosphate = 310 g
for 31 g of P we need = 310 /3 g of calcium phosphate
= 103.33 g of calcium phosphate
for 1 g of P we need = 103.33 / 31 g of calcium phosphate = 3.33 g
So for 1000g of P we need = 3.33 X 1000g of calcium phosphate
= 3333.3 g of calcium phosphate
now for 55.9 g of Calcium phosphate we need = 100 g of ore
so for 3333.3 g of calcium phosphate we need = 100 X 3333.3 / 55.9 g
= 5963.03
Answer:
[tex]m_{ore}=8.94kgOre[/tex]
Explanation:
Hello,
To know the minimum mass of the ore, one must apply the following mole-mass relationship in which we consider there are two phosphorous atoms into the calcium phosphate and the 55.9% purity as a division since the pure calcium phosphate is just a fraction of the whole ore, taking into account that the calcium phosphate has the following formula:
[tex]Ca_3(PO_4)_2[/tex]
[tex]m_{ore}=1.00kg*\frac{1000gP}{1kgP}*\frac{1molP}{31gP}*\frac{1molCa_3(PO_4)_2}{2molP}*\frac{310gCa_3(PO_4)_2}{1molCa_3(PO_4)_2}*\frac{100gCa_3(PO_4)_2}{55.9gCa_3(PO_4)_2}\\m_{ore}=8944.54gOre\\m_{ore}=8.94kgOre[/tex]
Best regards.
