A particle is projected from a point of an angle with the horizontal. At any instant t, if p is the linear momentum and E the kinetic energy, then which of the following graph is/are correct?

At any time t, `v=sqrt(u^2+g^2t^2-2ug tsintheta)`
`E=1/2mv^2=1/2m(u^2+g^2t^2-2ug t sin theta)`
Hence, `E-T` graph is parabolic `E=(p^2)/(2m)`
Hence, `E-p^2` graph is straight line through origin
`E=1/2m u^2-mgy`
Putting `y=xtantheta-(gx^2)/(2u^2cos^2theta)` we get
`E=1/2m u^2-mg x tan theta+(mx^2x^2)/(2u^2cos^2theta)`
Hence, `E-y` graph is a straight line and `E-x` graph is parabolic.