A conductance cell has platinum electrodes, each with `5 cm^(2)` area and separated by 0.5 cm distance. What is the cell constant?

The two platinum electrodes fitted in a conductance cell are 1.5 cm apart while the cross sectional area of each electrode is 0.75 cm^(2) . The cell constant is :

The resistance of solution of salt occupying a volume of between two platinum electrodes 1.8 cm apart and 5.4 cm^(2) in area was found to be 32 ohms. Calculate the conductivity of the solution.

The resistance of solution of a salt occupying a volume between two platinum electrode 1.8cm apart and 5.4cm^(2) in area was found to be 30 ohm. Calculate the conductivity of the solutions.

The resistance of decinormal solution of a salt occupying a volume between two platinum electrodes 1.80 cm apart and 5.4 cm^(2) area was found to be 32 ohm . Calculate k and wedge _(eq) .

A conductivity cell has been callibrated with a 0.01 M 1 : 1 electropyte solution (specific conductance, k = 1.25 xx 10^(-3) S cm^(-1) ) in the cell and the measured resistance was 800 ohms at 25^@C . The cell constant will be :

The resistance of a 0.01 N solution of an electrolyte was found to 210 ohm at 25^(@)C using a conductance cell with a cell constant 0.88 cm^(-1) . Calculate the specific conductance and equivalent conductance of the solution.