Physics Question on Motion in a plane

Question

A projectile is thrown in the upward direction making an angle of 60 $^{\circ}$ with the horizontal direction with a velocity of 147 $ms^{ - 1}$ Then the time after which its inclination with the horizontal is 45 $^{\circ}$ , is

Answer 1

Solution

Horizontal component of velocity at angle 60 $^{\circ}$
= horizontal component of velocity at 45 $^{\circ}$
ie, u cos 60 $^{\circ}$ = v sin 45 $^{\circ}$
or $147 \times \frac{ 1}{ 2} = v \times \frac{ 1}{ \sqrt 2 }$
or v = $\frac{ 147}{ \sqrt 2 } \, ms^{ - 1}$
Vertical component of u = usin 60 $^{\circ}$
$\frac{ 147 \sqrt 3 }{ 2 } \, m$
Vertical component of v = vsin 45 $^{\circ}$
$= \frac{ 147 }{ \sqrt 2 } \times \frac {1}{ \sqrt 2}$
$= \frac{ 147 }{ 2 } \, m$
but $v_y = u_y + at$
$\therefore \frac{ 147 }{ 2 } = \frac{ 147 \sqrt 3}{ 2 } - 9.8 t$
or 9.8 t = $\frac{ 147 }{ 2 } ( \sqrt 3 - 1)$
$\therefore t = 5.49$ s