zahraaa1
contestada

A subway train starting from rest leaves a
station with a constant acceleration. At the
end of 8.06 s, it is moving at 21.0366 m/s.
What is the train’s displacement in the first
5.41632 s of motion?
Answer in units of m

Respuesta :

sqdancefan

Answer:

  38.2842 m

Step-by-step explanation:

The acceleration is given by ...

  a = ∆v/∆t

and the distance traveled is given by ...

  d = 1/2at^2

So the distance we're looking for is ...

  d = (1/2)(21.0366 m/s)/(8.06 s)(5.41632 s)^2 = 32.2842 m

abigailmartinez2025

Answer:

38.2842m

Step-by-step explanation:

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