In a conductivity cell the two platinum electrodes each of area 10 sq. cm are fixed 1.5 cm apart. The cell. Contained `0.05N` solution of a salt. If the two electrodes are just half dipped into the solution which has a resistance of 50 ohms, find equivalent conductance of the salt solution.

0.5N solution of a salt placed between two Pt electrodes 2.0 cm apart and having area of cross-section 2.5 cm^(2) has resistance of 25 ohms. Calculate the conductance and cell constant.

A conductivity cell has a cell constant of 0.5 cm^(-1) . This cell when filled with 0.01 M NaCl solution has a resistance of 384 ohms at 25^(@)C . Calculate the equivalent conductance of the given solution.

The conductivity of 0.01N KCl solution is 0.0014106 "ohm"^(-) cm^(-) at 298 K. When a conductivity cell was filled up with the same solution, it offered a resistance of 484 ohms at 298 K. The same cell was then filled with 0.001 N solution of NaCl at the same temperature which gave a resistance of 5496 ohms. Calculate the value of equivalent conductivity of 0.001 N NaCI solution.

A 0.1 M solution of monobasic acid at specific resistance of r ohms-cm, its molar conductivity is

One normal salt solution surrounding two platinum electrodes, 2.1 cm apart and 6.3 cm^(2) in area was found to offer a resistance of 50 ohm. Calculate the equivalent conductivity solution.

The resistance of 0.01 N solution of an electrolyte waw found to be 210 ohm at 298 K, when a conductivity cell with cell constant 0.66 cm^(-1) is used. The equivalent conductance of solution is:

The resistance of 0.01N solution of an electrolysis is 210 Omega at 298 K with a cell constant of 0.88 cm^(-1) . Calculate the conductivity and equivalent conducitivty of the solution.

The two Pt electrodes fitted in a conductance cell are 1.5 cm apart while the cross - sectional area of each electrode is 0.75cm . What is the cell constant?

The two Pt electrodes fitted in a conductance cell are 1.5 cm apart while the cross - sectional area of each electrode is 0.75cm . What is the cell constant?

Given l//a=0.5 cm^(-1), R= 50 "ohm", N= 1.0. The equivalent conductance of the electrolytic cell is .