The specific conductance of a 0.1 N KCl solution at `23^(@)C` is 0.012 `"ohm"^(-1)"cm"^(-1)`. The resistance of the cell containing the solution at the same temperature was found to be 55 ohm. The cell constant will be

The specific conductance of a 0.1 N KCI solution at 25^@ C is 0.015 ohm^ (-1) cm^(-1) . The resistances of the cell containing the solution at the same temperature was found to be 60 Omega . The cell constant (in cm^(-1)) will be

The specific conductivity of N/10 KCl solution at 20^(@)C is 0.0212 ohm^(-1) cm^(-1) and the resistance of the cell containing this solution at 20^(@)C is 55 ohm. The cell constant is :

The specific conductance of a N//10 KCI solution at 18^(@)C is 1.12 xx 10^(-2) mho cm^(-1) . The resistance of the solution contained in the cell is found to be 65 ohms. Calculate the cell constant.

The specific conductivity of 0.1 N KCl solution is 0.0129Omega^(-1)cm ^(-1) . The cell constant of the cell is 0.01 cm^(-1) then conductance will be:

At 25°C the specific conductance of a 1N solution of KCl is 0.002765 mho. The resistance of cell is 400 Omega . The cell constant is:

The specific conductivity of 0.5N solution is 0.01287 ohm^(-1) cm^(-1) . What would be its equivalent conductance?

The resistacnce of a conductivity cell filled with 0.01 N KCI at 25^(@)C was found to be 500 Omega The specific conductance of 0.01 N KCI at 25^(@)C is 1.41xx10^(-3) Omega^(-) cm^(-1) The resistance of same cell filled with 0.3 N ZnSO_(4) at 25^(@)C was found to be 69 Omega Calculate the cell constant equivalent and molar conductivities of ZnSO_(4) solution

Specific conductance of 0.1M nitric acid is 6.3xx10^(-2)ohm^(-1)cm^(-1) . The molar conductance of the solution is:

The conductivity of 0.02 N solution of a cell of KCl at 25^@C" is "2.765 xx 10^(-3) Scm^(-1) . If the resistance of a cell containing this solution is 4000 ohm, what will be the cell constant?