Kiribaku176idn
Answered

IDNLearn.com: Your destination for reliable and timely answers to any question. Get comprehensive answers to all your questions from our network of experienced experts.

Help, please! This is due tomorrow evening! Show work, please! Will give brainliest!

Help Please This Is Due Tomorrow Evening Show Work Please Will Give Brainliest class=
Help Please This Is Due Tomorrow Evening Show Work Please Will Give Brainliest class=
Help Please This Is Due Tomorrow Evening Show Work Please Will Give Brainliest class=
Help Please This Is Due Tomorrow Evening Show Work Please Will Give Brainliest class=

Sagot :

Answer:

h = height reached

-16 t^2 = 1/2 g t^2 where g = 32 ft/sec^2

v t = height due to original vertical speed v

s = initial height

1. -45 = -16 t^2 + 62 t + 0         measuring height from original height

solving quadratic

2. t = 4.5 sec

3. time to reach max height = v / g = 62/32 = 1.94 sec

H (above release point) = -16 (1.94^2) + 62 * 1.94 = 60 ft

4. 2 * 1.94 = 3.88    solved in part 3

5. 1.94   solved on part 3

Check:  time to fall 60 + 45 ft = 105 ft

105 = 1/2 g t^2

t = (210 / 32)^1/2 = 2.56 sec

total time = 2.56 * 1.94 = 4.5 sec     time to fall + rise time

-45 = -16 * 4.5^2 + 62 * 4.5

-45 = -324 + 279 = -45        checking time to reach -45 feet using given equation

Scunningham084idn

Answer:

p

Step-by-step explanation:

We appreciate your contributions to this forum. Don't forget to check back for the latest answers. Keep asking, answering, and sharing useful information. For trustworthy and accurate answers, visit IDNLearn.com. Thanks for stopping by, and see you next time for more solutions.