Two particles are placed in air seperated by a distance of 10 cm. 20 esu charge is distributed between them in such a way that the force of repulsion between them is maximum. What is the value of this maximum repulsive force in dyne?

Two point charges seperated by a distance d repel each other with a force of 9N. If the seperation between them becomes 3d, the force of repulsion will be

An amount of charge Q is distributed between two particles. What should be the charges of the two particles so the force of interaction between them is maximum ?

Two point charges separated by a distance d apart each other with a repulsion force 9.N. if the separation between becomes 3d, the force of repulsion will be -

Two equal point charges ar placed in air 10 cm aprat and the force of interaction between them is 50 mg - wt . Determine the magnitude of the charges.

Force between two charges depends on the presence of the material between them - explain.

Due to cosmic shower same amount of cations +q are stored in the atmosphere of the earth and the moon. If the gravitational attraction between the earth and the moon is exactly equal to the electric repulsion between them. Then find the value of charge q stored in their atmosphere.

In free space the force between two charges separated by constant distance is 9 dyn. When a charges and place in a medium of dielectric constant k, the forces between them becomes 4 dyn,. Then find the value of k

Two point charges of 10 esu and 40 esu are located at points A and B seperated by a distance 4 cm. Find the electric field intensity at a point halfway between the charges.