In above question after formation of NaC...

In above question after formation of NaCl, further 0.1 N HCl is added, the volume of which is double to that of the first portion added, the conductivity increases to 0.018 `Scm^(-1)`. The value of `bidwedge__(eq)(HCl)` is [assume no change in equivalent conductivity of NaCl(aq)]:

Similar Questions

Explore conceptually related problems

10 ml of 0.1 N HCl is added to 990 ml solution of NaCl the P^(H) of resulting solution

1 c.c of 0.1 N HCl is added to 1 litres of 0.1 N NaCl solution. The pH of the resulting solution will be

1 mL of 0.1 N HCl is added to 999 mL solution of NaCl. The pH of the resulting solution will be :

1 ml of 0.1 N Hcl is added to 999 ml solution of NaCl . The PH of the resulting solution will be :

1 c.c. of 0.1N HCl is added to 99 CC solution of NaCl. The pH of the resulting solution will be

The conductivity of 0.1 N NaOH solution is 0.022 S cm^(-1) .When equal volume of 0.1 N HCl solution is added, the conductivity of resultant solution is decreased to 0.0055 S cm^(-1) . The equivalent conductivity of NaCl solution is :

The conductivity of 0.1 n NaOH solution is 0.022 S cm^(-1) .When equal volume of 0.1 N HCl solution is added, the conductivity of resultant solution is decreased to 0.0055 S cm^(-1) . The equivalent conductivity of NaCl solution is :

1 c.c. of 0.01 M HCl is added to 99.9 cc of NaCl solution . PH of resulting solution will be :

In above question after formation of NaCl, further 0.1 N HCl is added, the volume of which is double to that of the first portion added, the conductivity increases to 0.018 `Scm^(-1)`. The value of `bidwedge__(eq)(HCl)` is [assume no change in equivalent conductivity of NaCl(aq)]:

Similar Questions

Recommended Questions