As a traffic light turns green, a waiting car starts with a constant acceleration of 6.0 m/second squared. At the instant the car begins to accelerate, a truck with the constant velocity of 21 m/ second squared passes in the next lane. HINT:Set the 2 distance equations equal to each other. How far will the car travel before it overtakes the truck? How fast will the car be traveling when it overtakes the truck?

Question

Brandon · Accepted Answer

please can u answer me i am stressing out

bobpursley · Answer

The "Hint" is the solution. distancecar1=1/2 a*t^2 distancecar2=vo*t + 1/2 a t^2 but car2 has a=0 set distances equal, so 1/2 at^2=vot and solve for t.

Barndon · Answer

can u go back to my problem and explain it differently because my teacher has only taught us 4 equations of motion and they r d=(v intial +v final)/2 times t, v final=v intial+at, d= v intial(t)+1/2at^2, v final^2=v intial^s + 2ad

bobpursley · Answer

No, I cant. consider your third equation, isn't it what I used?

Brandon · Answer

ohhhhhhhhhhh i get it now thanks