A projectile is shot from the ground at an angle of #pi/8 # and a speed of #3/5 m/s#. When the projectile is at its maximum height, what will its distance from the starting point be?

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Answer 1 · 2017-12-10T08:21:50

The distance is #=0.013m#

Resolving in the vertical direction #uarr^+#

The initial velocity is #u_0=3/5sin(1/8pi)ms^-1#

Applying the equation of motion

#v^2=u^2+2as#

At the greatest height, #v=0ms^-1#

The acceleration due to gravity is #a=-g=-9.8ms^-2#

Therefore,

The greatest height is #h_y=s=(0-(3/5sin(1/8pi))^2)/(-2g)#

#h_y=(3/5sin(1/8pi))^2/(2g)=0.0028m#

The time to reach the greatest height is #=ts#

Applying the equation of motion

#v=u+at=u- g t #

The time is #t=(v-u)/(-g)=(0-3/5sin(1/8pi))/(-9.8)=0.023s#

Resolving in the horizontal direction #rarr^+#

The velocity is constant and #u_x=3/5cos(1/8pi)#

The distance travelled in the horizontal direction is

#s_x=u_x*t=3/5cos(1/8pi)*0.023=0.013m#

The distance from the starting point is

#d=sqrt(h_y^2+s_x^2)=sqrt(0.0028^2+0.013^2)=0.013m#