For Exercises 53-54, use the model d = a e − c t cos ω t or d = a b k t cos w t to represent damped harmonic motion. A pendulum is pulled π 18 radians to one side and then released. The angular displacement θ follows a pattern of damped harmonic motion with each cycle lasting 2 sec . If the maximum displacement for each cycle decreases by 20 % , find a function that models the angular displacement t sec after being released.
For Exercises 53-54, use the model d = a e − c t cos ω t or d = a b k t cos w t to represent damped harmonic motion. A pendulum is pulled π 18 radians to one side and then released. The angular displacement θ follows a pattern of damped harmonic motion with each cycle lasting 2 sec . If the maximum displacement for each cycle decreases by 20 % , find a function that models the angular displacement t sec after being released.
Solution Summary: The author explains the function that models the angular displacement of the pendulum after time, t, following a pattern of damped harmonic motion.
For Exercises 53-54, use the model
d
=
a
e
−
c
t
cos
ω
t
or
d
=
a
b
k
t
cos
w
t
to represent damped harmonic motion.
A pendulum is pulled
π
18
radians to one side and then released. The angular displacement
θ
follows a pattern of damped harmonic motion with each cycle lasting
2
sec
. If the maximum displacement for each cycle decreases by
20
%
, find a function that models the angular displacement
t
sec
after being released.
A 20 foot ladder rests on level ground; its head (top) is against a vertical wall. The bottom of the ladder begins by being 12 feet from the wall but begins moving away at the rate of 0.1 feet per second. At what rate is the top of the ladder slipping down the wall? You may use a calculator.
Explain the focus and reasons for establishment of 12.4.1(root test) and 12.4.2(ratio test)
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, calculus and related others by exploring similar questions and additional content below.