Asked by Jennifer
A ball is thrown from ground level up in the air at 61m/s. How fast is the ball going 1s after being thrown.
This problem wants you to use the formula
v = (-1/2)gt^2 + v_0
g=9.8m/s^2 and v_0 = 61m/s so
v = (-1/2)g*(1s)^2 + 61m/s at t = 1.
I wrote the formula wrong. It should be
v = -gt + v_0
I mixed the velocity formula and the distance formula.
You need the formula: velocity (finall) = velocity (initial) + at.
Here, the velocity initial is 61, and the t (time) is 1s. Remember, since the ball is decelerating (the acceleration is in the oppostie direction to which the ball is thrown), the a is -9.8m/s^2. Just plug 'em in!
This problem wants you to use the formula
v = (-1/2)gt^2 + v_0
g=9.8m/s^2 and v_0 = 61m/s so
v = (-1/2)g*(1s)^2 + 61m/s at t = 1.
I wrote the formula wrong. It should be
v = -gt + v_0
I mixed the velocity formula and the distance formula.
You need the formula: velocity (finall) = velocity (initial) + at.
Here, the velocity initial is 61, and the t (time) is 1s. Remember, since the ball is decelerating (the acceleration is in the oppostie direction to which the ball is thrown), the a is -9.8m/s^2. Just plug 'em in!
Answers
There are no human answers yet.
There are no AI answers yet. The ability to request AI answers is coming soon!
Submit Your Answer
We prioritize human answers over AI answers.
If you are human, and you can answer this question, please submit your answer.