A point charge .Q. is placed at a point inside the cone as shown. The flux due to the charge through the curved surface is given as `(2 Q)/(3 epsilon_(0))`. Now another charge .Q. is placed vertically above at the same distance from the base. The flux through the curved surface due to both charges is .

Find the flux of point charge q through the square surface ABCD as shown

A point charge Q is placed at the corner of a square of side a. Find the flux through the square.

A charge Q is placed at the centre of a cube. Find the flux of the electric field through the six surfaced of the cube.

A point charge q is placed at the origin . How does the electric field due to the charge very with distance r from the origin ?

If a charge q is placed at the centre of a hemispherical body as shown below then the flux linked with the curved surface is

A point charge Q is kept at point 'A' the flux through the inclined surface of cone is (3Q)/(5epsilon_(0)) . Now another charge -Q is also placed at point B . If net flux through the inclined surface (nQ)/(5epsilon_(0)) is Find n .

A point charge q is placed at a distance a//2 directly above the centre of a square of side a . The electric flux through the square is

A point charge +q is placed at the centre of curvature of a hemisphere. Find flux through the hemispherical surface.

A position charge Q is placed at a distance of 4R above the centre of a disc of radius R. The magnitude of flux through the disc is phi . Now a hemispherical shell of radius R is placed over the disc such that it forms a closed surface. The flux through the curved surface (taking direction of area vector along outward normal as positive), is -

A charge q is placed at the centre of the open end of a cylindrical vessel . The flux of the electric field through the surface of the vessel is