Answered

Discover new perspectives and gain insights with IDNLearn.com's diverse answers. Ask your questions and get detailed, reliable answers from our community of experienced experts.

A ball is thrown at 60 degrees and lands in 18.5 seconds what is the velocity of the ball at the start

Sagot :

Onyebuchinnajiidn

Answer:

the initial velocity of the ball is 104.67 m/s.

Explanation:

Given;

angle of projection, θ = 60⁰

time of flight, T = 18.5 s

let the initial velocity of the ball, = u

The time of flight is given as;

[tex]T = \frac{2u\times sin(\theta)}{g} \\\\2u\times sin(\theta) = Tg\\\\u = \frac{Tg}{2\times sin(\theta)} \\\\u = \frac{18.5 \times 9.8}{2\times sin(60^0)} \\\\u = 104.67 \ m/s[/tex]

Therefore, the initial velocity of the ball is 104.67 m/s.

We value your participation in this forum. Keep exploring, asking questions, and sharing your insights with the community. Together, we can find the best solutions. IDNLearn.com has the solutions you’re looking for. Thanks for visiting, and see you next time for more reliable information.