An inclined plane making an angle β with horizontal. A projectile projected from the bottom of the plane with a speed u at angle α with horizontal, then its maximum range Rm a x is

Question

An inclined plane making an angle β with horizontal. A projectile projected from the bottom of the plane with a speed u at angle α with horizontal, then its maximum range Rm a x is (A) Rm a x=(u2/g (1 - sin β )) (B) Rm a x=(u2/g (1 + sin β )) (C) Rm a x=(u/g (1 - sin β )) (D) Rm a x=(u/g (1 + sin β ))

Tardigrade Admin · Accepted Answer

The expression of horizontal Range R=(2 u2 sin (α - β ) cos â¡ α /g c o s2 β ) From identity 2sin Acos â¡ B=sin â¡ (A + B) + sin â¡ (A - B) 2sin (α - β ) cos â¡ α =sin â¡ (2 α - β )+sin â¡ (- β ) R=(u2/g cos2 β ) [sin (2 α - β ) - sin â¡ β ] Range R along incline is maximum if 2α -β =(π /2) (as Î² is fixed) text So, R max =(u2/g cos 2 β)[1- sin β] =(u2/g(1- sin 2 β))[1- sin β] =(u2/g(1+ sin β)(1- sin β))[1- sin β] =(u2/g(1+ sin β)) Solution

Q. An inclined plane making an angle $β$ with horizontal. A projectile projected from the bottom of the plane with a speed u at angle $α$ with horizontal, then its maximum range $R_{ma x}$ is

$R_{ma x} = \frac{u ^{2}}{g ( 1 - s in β )}$

$R_{ma x} = \frac{u ^{2}}{g ( 1 + s in β )}$

$R_{ma x} = \frac{u}{g ( 1 - s in β )}$

$R_{ma x} = \frac{u}{g ( 1 + s in β )}$

Q. An inclined plane making an angle β with horizontal. A projectile projected from the bottom of the plane with a speed u at angle α with horizontal, then its maximum range Rmax​ is

Rmax​=g(1−sinβ)u2​

Rmax​=g(1+sinβ)u2​

Rmax​=g(1−sinβ)u​

Rmax​=g(1+sinβ)u​

Q. An inclined plane making an angle $β$ with horizontal. A projectile projected from the bottom of the plane with a speed u at angle $α$ with horizontal, then its maximum range $R_{ma x}$ is

$R_{ma x} = \frac{u ^{2}}{g ( 1 - s in β )}$

$R_{ma x} = \frac{u ^{2}}{g ( 1 + s in β )}$

$R_{ma x} = \frac{u}{g ( 1 - s in β )}$

$R_{ma x} = \frac{u}{g ( 1 + s in β )}$