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9 November, 03:19

At a certain time a particle had a speed of 18 m/s in the positive x direction, and 2.4 s later its speed was 30 m/s in the opposite direction. What is the magnitude of the average acceleration of the particle during this 2.4 s interval?

m/s2

a) in the initial direction of motion

b) opposite the initial direction of motion

c) direction changes continuously

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Answers (1)
  1. 9 November, 04:39
    0
    (a) (18m/s/t₁) m/s²

    (b) - 12.5m/s²

    (c) - 20mls²

    Explanation:

    (a) Let t₁ be the initial time

    a = v-u/t

    acc = (18m/s/t₁) m/s²

    (b) acc = - 30m/s/2.4

    = - 12.5m/s²

    (c) The particle was at a speed of 18m/s in the positive x-direction and later after 2.4s ≡Δt, it was at speed of - 30m/s in the negative x-direction.

    so this imply that the velocity was first v₁ = 18m/s and later v₂ = - 30m/s.

    The average acceleration is then:

    Aavg = Δv

    Δt

    = v₂-v₁/Δt

    = - 30-18/2.4 = - 20mls²
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