Ask Question
18 August, 16:19

An athlete performing a long jump leaves the ground at a 27.0 degree angle and lands 7.80m away. What was the takeoff speed?

+5
Answers (1)
  1. 18 August, 16:32
    0
    =9.72 m/s

    Explanation:

    From the Newton's laws of motion;

    x=2 (v²cos∅sin∅) / g

    Using geometry we see that 2 cos∅sin∅ = sin 2∅

    Therefore, x = (v²sin 2∅) g, where v is the take off speed x the range and ∅ the launch angle.

    Making v the subject of the formula we obtain the following equation.

    v=√{xg / (sin 2∅) }

    x=7.80

    ∅=27.0

    v=√{7.8*9.8/sin (27*2) }

    v=√94.485

    v=9.72 m/s
Know the Answer?
Not Sure About the Answer?
Find an answer to your question 👍 “An athlete performing a long jump leaves the ground at a 27.0 degree angle and lands 7.80m away. What was the takeoff speed? ...” in 📗 Physics if the answers seem to be not correct or there’s no answer. Try a smart search to find answers to similar questions.
Search for Other Answers