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Question

If 20g of NaOH and 36.5g of HCl are added with 360gof water then weight of HCl present in resulting mixture is?


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Solution

Step 1: Given data
Mass of NaOH=20g

Mass of HCl=36.5g

Mass of water=360g

Step 2: Calculating the weight of HCl

Moles of NaOH=GivenmassMolecularmass20400.5mol

Moles of HCl=Givenmassmolecularmass36.536.51mol

Volume of water=0.36Litre

Writing a balanced equation for this reaction

NaOH(l)sodiumhydroxide+HCl(l)HydrochloricacidNaCl(l)Sodiumchloride+H2O(l)water

NaOH is the limiting reagent in this reaction,

0.5mol of NaOH reacts with 0.5mol of HCl

A remaining mole of HCl=0.5mol

Weight of HCl=0.5×36.518.25g

Mole of NaCl formed=0.5mol

Weight of NaCl=0.5×58.529.25g

Mole of water=0.5

Weight of water=0.5×189g

Total weight of the mixture=18.25+29.25+9+360416.5g

Weight of HCl=18.25416.5×1004.38%

Therefore, the weight of HCl=4.38%


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