Calcualate the total induction at a place where the horizontal component is `25xx10^(-6)T` , and the dip `45^(@)`

A magnet makes 12 oscillations per minutes at a place a where the horizontal component of earth's field is 3.2 xx 10^(-3)T . It is found to require 4 seconds per oscillation at another place B. Calculate the vertical component of earth's field at place B, if dip at B is 45^(@) .

What is the angle of dip at a place where horizontal and vertical components of earth's field are equal?

At a certain place the horizontal component of the earth's magnetic field is B_(0) and the angle of dip is 45^(@) . The total intensity of the field at that place will be

A magnet vibrating horizontally at a place where the angle of dip is 45^(@) and the total intensity of the earth's field is 40Am^(-1) , makes 10 oscillations that it would make per minute at another place where the dip is 60^(@) and the total intensity 50Am^(-1) .

A magnetic compass needl oscillates 30 times per minute at a place where the dip is 45^(@) and 40 times per minute where the dip is 30^(@) if B_(1) and B_(2) are respectively the total magnetic field due to the earth at the two places then the ratio B_(1)//B_(2) is best given by