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4.5 moles of calcium carbonate are reacted with dilute hydrochloric acid. (i) Write the equation for the reaction. (ii) What is the mass of 4.5 moles of calcium carbonate?

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Question

4.5 moles of calcium carbonate are reacted with dilute hydrochloric acid.

  1. Write the equation for the reaction.
  2. What is the mass of 4.5 moles of calcium carbonate? (Relative molecular mass of calcium carbonate is 100).
  3. What is the volume of carbon dioxide liberated at STP?
  4. What mass of calcium chloride is formed? (Relative molecular mass of calcium chloride is 111).
  5. How many moles of HCl are used in this reaction?
Answer in Brief
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Solution

(i) \[\ce{\underset{100}{CaCO3} + \underset{111}{2HCl} -> CaCl2 + H2O + CO2 ^}\]

(ii) 1 mole of calcium carbonate weighs 100 g

∴ 4.5 moles of calcium carbonate weighs 100 × 4.5 = 450 g

(iii) 1 mole of calcium carbonate liberates CO= 22.4 l

∴ 4.5 moles of calcium carbonate liberates CO= 22.4 × 4.5

= 100.8 litres

(iv) \[\ce{\underset{100}{CaCO3} + \underset{111}{2HCl} -> CaCl2 + H2O + CO2 ^}\]

From 100 g CaCO3; CaCl2 formed is 111 g

From 1 g of CaCO3; CaCl2 formed is `111/100`g

From 450 g of CaCO3; CaCl2 formed is `111/100 xx 450`

= 499.5 g of CaCl2

(v) 1 mole of CaCOuses 2 moles of HCI

∴ 4.5 moles of CaCOuse HCI = 2 × 4.5

= 9 moles

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Chapter 5: Mole Concept and Stoichiometry - Exercise 9 [Page 123]

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Frank Chemistry Part 2 [English] Class 10 ICSE
Chapter 5 Mole Concept and Stoichiometry
Exercise 9 | Q 6 | Page 123

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