The equivalent conductance of 0.10 N solution of `MgCl_2` is 97.1 mho cm2 equi–1 at `25^(@)`C. a cell with electrode that are 1.5 cm2 in surface area and 0.5 cm apart is filled with 0.1 N `MgCl_2` solution. How much current will flow when potential difference between the electrodes is 5 volt.

The equivalent conductance of 0.10 N solution of MgCI_(2) is 97.1 mho cm^(2) eq^(-1) . A cell electrodes that are 1.50 cm^(2) in surface are and 0.50 cm apart is filled with 0.1N MgCI_(2) solution. How much current will flow when the potential difference between the electrodes is 5 volts?

The molar conductance of 0.05 M solution of MgCl_(2) is 194.5 Omega^(-1) cm^(2) mol^(-1) at 25^(@)C . A cell with electrodes having 1.50 cm^(2) surface area and 0.50 cm apart is filled with 0.05 M solution of MgCl_2 . How much current will flow when the potential difference between the electrodes is 5.0V?

molar conductivity (bidwedge_m) is defined as conducting power of the ions producedd by 1 mole of an electrolyte in a solution. bidwedge_m=K/C Where k is conductivity (Scm^2mol^(-1)) and C is molar concentration (in mol//cm^3) The molar conductivity of 0.04 M solution of MgCl_2 is 200 Scm^3mol^(-1) at 298 k. A cell with electrodes that are 2.0 cm^2 in surface area and 0.50cm apart is filled with MgCl_2 solution How much current will flow when the potential difference between the two electrodes is 5.0V?

wedge _(eq) of 0.10N solution of CaI_(2) is 100.0 Scm^(2)eq^(-1) at 298 K.G^(**) of the cell =0.25 cm^(-1) . How much current will flow potential difference between the electrode is 5V ?

The specific conductance of a 0.12 N solution of an electrolyte is 2.4xx10^(-2) S cm^(-1) . Calculate its equivalent conductance.

The equivalent conductance of solution is …… . [If cell constant is 1.25 cm^(-1) and resistance of N//10 solution is 2.5xx10^(3) Omega ].

What would be the equivalent conductivity of a cell in which 0.5 salt solution offers a resistance of 40 ohm whose electrodes are 2 cm apart and 5 cm^2 in area?

The equivalent conductance of a 0.2 n solution of an electrolyte was found to be 200Omega^(-1) cm^(2)eq^(-1) . The cell constant of the cell is 2 cm^(-1) . The resistance of the solution is