An 0.80-kg object is attached to one end of a spring, as in Figure, and the system is set into simple harmonic motion. The displacement x of the object as a function of time is shown in the drawing. With the aid of these data, determine (a) the amplitude A of the motion, (b) the angular frequency (omega) (c) the spring constant k, (d) the speed of the object at t = 0.7 s, and (e) the magnitude of the object’s acceleration at t = 0.5 s.

Principles of Physics: A Calculus-Based Text
5th Edition
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Raymond A. Serway, John W. Jewett
Chapter12: Oscillatory Motion
Section: Chapter Questions
Problem 13P: A 500-kg object attached to a spring with a force constant of 8.00 N/m vibrates in simple harmonic...
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An 0.80-kg object is attached to one end of a spring, as in Figure, and the system is set into simple harmonic motion. The displacement x of the object as a function of time is shown in the drawing. With the aid of these data, determine

(a) the amplitude A of the motion,

(b) the angular frequency (omega)

(c) the spring constant k,

(d) the speed of the object at t = 0.7 s, and

(e) the magnitude of the object’s acceleration at t = 0.5 s.

An 0.80-kg object is attached to one end of a spring, as in Figure, and the system is
set into simple harmonic motion. The displacement x of the object as a function of
time is shown in the drawing. With the aid of these data, determine
(a) the amplitude A of the motion,
(b) the angular frequency (omega)
(c) the spring constant k,
(d) the speed of the object at t = 0.7 s, and
(e) the magnitude of the object's acceleration at t = 0.5 s.
x (m)
0.080
2.0
4.0
1.0
3.0
Time (s)
-0.080
Transcribed Image Text:An 0.80-kg object is attached to one end of a spring, as in Figure, and the system is set into simple harmonic motion. The displacement x of the object as a function of time is shown in the drawing. With the aid of these data, determine (a) the amplitude A of the motion, (b) the angular frequency (omega) (c) the spring constant k, (d) the speed of the object at t = 0.7 s, and (e) the magnitude of the object's acceleration at t = 0.5 s. x (m) 0.080 2.0 4.0 1.0 3.0 Time (s) -0.080
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