In the mixture of `(NaHCO_(3)+Na_(2)CO_(3))` volume of HCl required is x mL with phenolphthalein indicator and then y mL with methyl orange indicator in same titration Hence, volume of HCl for complete reaction of `Na_(2)CO_(3)` isA. `2x`B. `y`C. `(x)/(2)`D. `(y-x)`

In the mixture of `(NaHCO_(3)+Na_(2)CO_(3))` volume of HCl required is

1.	In the mixture of `(NaHCO_(3)+Na_(2)CO_(3))` volume of HCl required is x mL with phenolphthalein indicator and then y mL with methyl orange indicator in same titration Hence, volume of HCl for complete reaction of `Na_(2)CO_(3)` isA. `2x`B. `y`C. `(x)/(2)`D. `(y-x)`
Answer» Correct Answer - D With phenolphthalein indicator: `NaHCO_(3)` does not react with HCl whereas `Na_(2)CO_(#)` reacts upto `NaHCO_(3)` stage `(50%` reaction). `V_(HCl)=x mL` (ii). With methyl orange indicator : `NaHCO_(3)` reacts completely with HCl and with `Na_(2)CO_(3)` is `100%` reaction. But y " mL of " HCl is added after `Na_(2)CO_(3)` has reacted upto `NaHCO_(3)`. (i.e., half titre value of `Na_(2)CO_(3)`) `V_(HCl)=` Full titre value of `NaHCO_(3)+` half titre value of `Na_(2)CO_(3)`. `ymL=` full titre value of `NaHCO_(3)+x mL` Full titre value of `NaHCO_(3)=(y-x)mL`

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In the mixture of `(NaHCO_(3)+Na_(2)CO_(3))` volume of HCl required is x mL with phenolphthalein indicator and then y mL with methyl orange indicator in same titration Hence, volume of HCl for complete reaction of `Na_(2)CO_(3)` isA. `2x`B. `y`C. `(x)/(2)`D. `(y-x)`

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