As a result of friction, the angular speed of a whorl changes with time according to d θ d t = ω σ e − σ t where ω 0 and σ are constants, The angular speed changes from 3.50 rad/s at t = 0 to 2.00 rad/s at t = 9.30 s. (a) Use this information to determine σ and ω 0 . Then determine (b) the magnitude of the angular acceleration at t = 3.00 s, (c) the number of revolutions the wheel makes in the first 2.50 s, and (d) the number of revolutions it makes before coming to rest.
As a result of friction, the angular speed of a whorl changes with time according to d θ d t = ω σ e − σ t where ω 0 and σ are constants, The angular speed changes from 3.50 rad/s at t = 0 to 2.00 rad/s at t = 9.30 s. (a) Use this information to determine σ and ω 0 . Then determine (b) the magnitude of the angular acceleration at t = 3.00 s, (c) the number of revolutions the wheel makes in the first 2.50 s, and (d) the number of revolutions it makes before coming to rest.
As a result of friction, the angular speed of a whorl changes with time according to
d
θ
d
t
=
ω
σ
e
−
σ
t
where ω0 and σ are constants, The angular speed changes from 3.50 rad/s at t = 0 to 2.00 rad/s at t = 9.30 s. (a) Use this information to determine σ and ω0. Then determine (b) the magnitude of the angular acceleration at t = 3.00 s, (c) the number of revolutions the wheel makes in the first 2.50 s, and (d) the number of revolutions it makes before coming to rest.
Definition Definition Rate of change of angular velocity. Angular acceleration indicates how fast the angular velocity changes over time. It is a vector quantity and has both magnitude and direction. Magnitude is represented by the length of the vector and direction is represented by the right-hand thumb rule. An angular acceleration vector will be always perpendicular to the plane of rotation. Angular acceleration is generally denoted by the Greek letter α and its SI unit is rad/s 2 .
(a)
Expert Solution
To determine
The value of
σ and
ω0 from the given information.
Answer to Problem 10.89CP
The value of
ω0 is
3.50rad/s and the value of
σ is
0.0602s−1.
Explanation of Solution
Given info: The initial angular speed of the wheel is
3.50rad/s at time
t=0 and the final angular speed of the wheel is
2.00rad/s at time
9.30s.
The given expression for the change in the angular in the angular speed of the wheel with respect to time is,
dθdt=ω0e−σtω=ω0e−σt (1)
Here,
σ and
ω0 are constant.
ω is the angular speed of the wheel.
Substitute
3.50rad/s for
ω and
0 for
t in the equation (1).
1.56 ⚫. Three horizontal ropes pull on a large stone stuck in the
ground, producing the vector forces A, B, and C shown in Fig. P1.56.
Find the magnitude and direction of a fourth force on the stone that will
make the vector sum of the four forces zero.
Figure P1.56
B(80.0 N)
30.0
A (100.0 N)
53.0°
C (40.0 N)
30.0°
1.39 Given two vectors A = -2.00 +3.00 +4.00 and
B=3.00 +1.00 -3.00k. (a) find the magnitude of each vector;
(b) use unit vectors to write an expression for the vector difference
A - B; and (c) find the magnitude of the vector difference A - B. Is
this the same as the magnitude of B - Ä? Explain.
5. The radius of a circle is 5.5 cm.
(a) What is the circumference in meters?
(b) What is its area in square meters?
6. Using the generic triangle below, solve the following:
0 = 55 and c = 32 m, solve for a and b.
a = 250 m and b = 180 m, solve for the angle and c.
b=104 cm and c = 65 cm, solve for a and the angle
b
a
7. Consider the figure below representing the Temperature (T in degrees Celsius) as a function of time
t (in seconds)
4
12
20
(a) What is the area under the curve in the figure below?
(b) The area under the graph can be calculated using integrals or derivatives?
(c) During what interval is the derivative of temperature with respect to time equal to zero?
Chapter 10 Solutions
Physics for Scientists and Engineers, Technology Update (No access codes included)
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