100 mL of 20.8% BaCl(2) solution and 5...

100 mL of 20.8% `BaCl_(2)` solution and 50 mL of 9.8% `H_(2)SO_(4)` solution will form `BaSO_(4)` (Ba = 137, Cl = 35.5, S = 32, H = 1, O = 16) Calculate the weight of `BaSO_(4)` formed.
`BaCl_(2) + H_(2)SO_(4) rarr BaSO_(4) + 2HCl`

A

33.2 g

B

11.65g

C

23.3 g

D

30.6g

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The correct Answer is:

B

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The amount of BaSO_(4) formed upon mixing 100mL of 20.8% BaCl_(2) solution with 50mL of 9.8% H_(2)SO_(4) solution will be : (Ba = 137, Cl = 35.5, S = 32, H = 1 and O =16)

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100 mL of 20.8% `BaCl_(2)` solution and 50 mL of 9.8% `H_(2)SO_(4)` solution will form `BaSO_(4)` (Ba = 137, Cl = 35.5, S = 32, H = 1, O = 16) Calculate the weight of `BaSO_(4)` formed. `BaCl_(2) + H_(2)SO_(4) rarr BaSO_(4) + 2HCl`

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ALLEN- CONCENTRATION TERMS-Exercise Jee-Mains

100 mL of 20.8% `BaCl_(2)` solution and 50 mL of 9.8% `H_(2)SO_(4)` solution will form `BaSO_(4)` (Ba = 137, Cl = 35.5, S = 32, H = 1, O = 16) Calculate the weight of `BaSO_(4)` formed.
`BaCl_(2) + H_(2)SO_(4) rarr BaSO_(4) + 2HCl`