Asked by jay
From a height of 25 meters a ball is thrown vertically upwards at a velocity of 5 meters per second.
a. What time in seconds will the ball reach its maximum height?
b. What is its maximum height?
c. When will the ball strike the ground?
d. What will be the ball’s velocity when it strikes the ground?
can someone help me out with this?
a. What time in seconds will the ball reach its maximum height?
b. What is its maximum height?
c. When will the ball strike the ground?
d. What will be the ball’s velocity when it strikes the ground?
can someone help me out with this?
Answers
Answered by
Damon
a.
Vi = 5
v = Vi - 9.8 t
v = zero at top
t = 5/9.81 seconds to top
b.
h = Hi + Vi t -4.9 t^2
= 25+ 5 t - 4.9 t^2
c.
0 = 25 + 5 t - 4.9 t^2
solve quadratic for t
use the positive t
the negative t is before you threw it :)
d.
again v = Vi - 9.81 t
v = 5 - 9.81*t
use t from part c
v will be negative (down) of course
Vi = 5
v = Vi - 9.8 t
v = zero at top
t = 5/9.81 seconds to top
b.
h = Hi + Vi t -4.9 t^2
= 25+ 5 t - 4.9 t^2
c.
0 = 25 + 5 t - 4.9 t^2
solve quadratic for t
use the positive t
the negative t is before you threw it :)
d.
again v = Vi - 9.81 t
v = 5 - 9.81*t
use t from part c
v will be negative (down) of course
Answered by
Damon
oh, since this is calculus and not physics:
d^2h/dt^2 = -9.81
so
dh/dt = -9.81 t + constant
at t = 0, v = Vi
so
dh/dt = Vi -9.81 t
then
h = Vi t -(1/2)9.81 t^2 + constant
h = Hi when t = 0
so
h = Hi + Vi t -4.9 t^2
d^2h/dt^2 = -9.81
so
dh/dt = -9.81 t + constant
at t = 0, v = Vi
so
dh/dt = Vi -9.81 t
then
h = Vi t -(1/2)9.81 t^2 + constant
h = Hi when t = 0
so
h = Hi + Vi t -4.9 t^2
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