Question

A moderate wind accelerates a pebble over a horizontal xy plane with a constant acceleration a with arrow = (4.60 m/s2)i hat + (7.00 m/s2)j. At time t = 0, the velocity is (4.3 m/s)i hat. What are magnitude and angle of its velocity when it has been displaced by 11.0 m parallel to the x axis?

Answer 1

Step-by-step explanation:

Given

Acceleration of the pebble is

At t=0, velocity is

considering horizontal motion

`\Rightarrow x=ut+0.5at^2 \\\Rightarrow 11=4.3t+0.5(4.6)t^2\\\Rightarrow 2.3t^2+4.3t-11=0\\\Rightarrow (t-1.4435)(t+3.3131)=0\\\Rightarrow t=1.44\ s\quad [\text{Neglecting negative time}]\\`

Velocity acquired during this time

`\Rightarrow v_x=4.3+4.6* 1.44\\\Rightarrow v_x=4.3+6.624\\\Rightarrow v_x=10.92\ s`

Consider vertical motion

`\Rightarrow v_y=0+7(1.44)\\\Rightarrow v_y=10.08\ m/s`

Net velocity is

`\Rightarrow v=√(10.92^2+10.08^2)\\\Rightarrow v=√(220.85)\\\Rightarrow v=14.86\ m/s`

Angle made is

`\Rightarrow \tan \theta =(10.08)/(10.92)\\\\\Rightarrow \tan \theta =0.92307\\\\\Rightarrow \theta =42.7^(\circ)`