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Question

'50'g of CaCO3 is allowed to react with'70'g of H3PO4.

Calculate:

(i) Amount of Ca3(PO4)2formed

(ii) Amount of unreacted reagent


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Solution

When CaCO3 is allowed to react with H3PO4 the balanced chemical equation is

2H3PO4(l)Phosphoricacid+3CaCO3(aq)CalciumCarbonateCa3(PO4)2(aq)Tricalciumphosphate+3H2O(l)Water+3CO2(g)Carbondioxide

Molecular mass of CaCO3=100gm

Weight of CaCO3(taken) =50gm

Number of moles of CaCO3=MassofsubstancegivenMolecularmassofsubstance=50100=0.5mole

The molecular mass of H3PO4=98gm

Weight of H3PO4 (taken)=70gm

Number of moles of H3PO4= 70/98 = 0.71 mole

The molecular weight of Ca3(PO4)2 (produced) = 310 gm

(i) 3x100 gm of CaCO3 produce 310 gm of Ca3(PO4)2

1 gm of CaCO3 will produce 3103×100gm Ca3(PO4)2

50 gm of CaCO3 will produce 310×503×100gm Ca3(PO4)2

50 gm of CaCO3 will produce 51.66gm Ca3(PO4)2

(ii) 2x 98 gm H3PO4 required for 3x100gm of CaCO3

1 gm H3PO4 required for 3×1002×98gmCaCO3

70 gm H3PO4 required for 3×100×702×98gm CaCO3

70 gm H3PO4 required for 107.14gm CaCO3

But given the amount of CaCO3 is less than 107.14 So CaCO3is a limiting reagent.

3x100gm of CaCO3 is required for 2x98 gm H3PO4

1gm of CaCO3is required for 2×983×100gm H3PO4

50gm of CaCO3 is required for 2×98×503×100gmH3PO4

50gm of CaCO3 is required for 32.66gm H3PO4

Amount of unreacted H3PO4(70-32.66)=37.33gm

Therefore, (i) 51.66 gm of Ca3(PO4)2 formed

(ii) Amount of unreacted reagent(H3PO4 )=37.33 gm.


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