s(t) = 1/4 t^3 - 5/3 t^3 + c
The displacement is s(6)-s(-1)
The distance traveled is the arc length. So, what steps did you follow?
The velocity function (in meters per second) for a particle moving along a line is given by v(t)=t3−5t2. Find the displacement and the distance traveled by the particle during the time interval [-1,6].
Distance traveled = ??
I got 2089/12m as answer but it was incorrect please help me!
2 answers
if v(t) = t^3 - 5t^2
s(t) = (1/4)t^4 - (5/3)t^3 + c
s(6) = (1/4)6^4 - (5/3)6^3 = -36 + c
s(-1) = (1/4)(-1)^4 - (5/3)(-1)^3 = 23/12 + c
distance traveled = 23/12+c - (-36+c) = 4550/12
s(t) = (1/4)t^4 - (5/3)t^3 + c
s(6) = (1/4)6^4 - (5/3)6^3 = -36 + c
s(-1) = (1/4)(-1)^4 - (5/3)(-1)^3 = 23/12 + c
distance traveled = 23/12+c - (-36+c) = 4550/12