Answer
given,
v = (6 t - 3 t²) m/s
we know,
[tex]v = \dfrac{dx}{dt}[/tex]
[tex]a = \dfrac{dv}{dt}[/tex]
position of the particle
[tex]dx = v dt [/tex]
integrating both side
[tex]\int dx = (6t - 3 t^2)\int dt [/tex]
x = 3 t² - t³
Position of the particle at t= 3 s
x = 3 x 3² - 3³
x = 0 m
now, particle’s deceleration
[tex]a = \dfrac{dv}{dt}[/tex]
[tex]a = \dfrac{d}{dt}(6t - 3 t^2)[/tex]
a = 6 - 6 t
at t= 3 s
a = 6 - 6 x 3
a = -12 m/s²
distance traveled by the particle
x = 3 t² - t³
at t = 0 x = 0
t = 1 s , x = 3 (1)² - 1³ = 2 m
t = 2 s , x = 3(2)² - 2³ = 4 m
t = 3 s , x = 0 m
total distance traveled by the particle
D = distance in 0-1 s + distance in 1 -2 s + distance in 2 -3 s
D = 2 + 4 + 2 = 8 m
average speed of the particle
[tex]v_{avg} = \dfrac{distance}{time}[/tex]
[tex]v_{avg} = \dfrac{8}{3}[/tex]
[tex]v_{avg} =2.67\ m/s[/tex]
