Question

g A particle starts moving from the origin of the coordinate system with the initial velocity v(0)=<0,0,2> and acceleration at time t given by a(t)=<1,2,0> find the moment of time t=T when the particle hits the plane 2x+y-z=4

Answer 1

Answer:

2s

Explanation:

The position function of the motion can be expressed as:

$s = s_0 + v_0t + at^2/2$

where $s_0 =$ is the origin where the particle starts off, $v_0 = m/s$ and a = <1,2,0> m/s2. In the 3-coordinate system it can be written as

$s = =$

For the particle to hit the 2x+y-z=4 plane then its coordinates must meet that criteria

$2t^2/2 +t^2-2t = 4$

$2t^2 - 2t -4 = 0$

$t^2 - t - 2 = 0$

$t= \frac{-b \pm \sqrt{b^2 - 4ac}}{2a}$

$t= \frac{1\pm \sqrt{(-1)^2 - 4*(1)*(-2)}}{2*(1)}$

$t= \frac{1\pm3}{2}$

t = 2 or t = -1

Since t can only be positive we will pick t = 2s