2. A glider moves in simple harmonic motion on a horizontal, frictionless track by connecting it to a spring of stiffness 250 N/m. The phone accelerometer detected the motion of the glider by recording its acceleration as a function of time, as shown in the figure below ax (m/s²) 12.0 6.0 O -6.0 -12.0 t (s) 0.10 0.20 0.30 0.40 From the graph [note: this is an acceleration vs. time plot], compute for the following quantities: h. the phase angle ; i. the expression for the position vs. time, x(); j. the expression for the velocity vs. time, v(t);

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Chapter1: Units, Trigonometry. And Vectors
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2. A glider moves in simple harmonic motion on a horizontal, frictionless track by connecting it to a spring of
stiffness 250 N/m. The phone accelerometer detected the motion of the glider by recording its acceleration
as a function of time, as shown in the figure below
ax (m/s²)
12.0
6.0
0
-6.0
-12.0
t(s)
0/10 0.20 0.30 0.40
From the graph [note: this is an acceleration vs. time plot], compute for the following quantities:
h. the phase angle ;
i. the expression for the position vs. time, x();
j. the expression for the velocity vs. time, v(t);
Transcribed Image Text:2. A glider moves in simple harmonic motion on a horizontal, frictionless track by connecting it to a spring of stiffness 250 N/m. The phone accelerometer detected the motion of the glider by recording its acceleration as a function of time, as shown in the figure below ax (m/s²) 12.0 6.0 0 -6.0 -12.0 t(s) 0/10 0.20 0.30 0.40 From the graph [note: this is an acceleration vs. time plot], compute for the following quantities: h. the phase angle ; i. the expression for the position vs. time, x(); j. the expression for the velocity vs. time, v(t);
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