Answer:
9.04 miles
7.24 miles
Step-by-step explanation:
Using
S =[ (V+U)/2]t₀........................ Equation 1
Where S = distance, V = final velocity, U = initial velocity, t = time.
Between t = 0 and t = 0.1
U = 140 mi/hr, t₀ = 0.1 hr and
V = at, where a = acceleration
a = 1120(1+4t)⁻³ at t = 0.1 ( as the train is decelerating)
a = 1120(1+4×0.1)⁻³
a = 1120(1.4)⁻³ = -1120/1.4³
a = 408.16 mi/hr²
Therefore, V = 408.16(0.1)
V = 40.82 mi/hr.
Substituting these values into equation 1,
S = {(40.82+140)/2}0.1
S = 9.04 miles
Between t = 0.1 and t = 0.3,
U = 40.82 mi/hr, t₀ = 0.3 - 0.1 = 0.2 hr, v = at
a = -1120(1+4t)⁻³ at t = 0.3
a = 1120/[1+4(0.3)]³
a = 1120(2.2)³
a =105.18 mi/hr
V = 105.18×0.3
V = 31.55 mi/hr.
Also substituting into equation 1
S = [(31.55+40.82)/2]0.2
S = 7.24 miles
