A 40.2-cm diameter disk rotates with aconstant angular acceleration of 2.3rad/s
ID: 1675917 • Letter: A
Question
A 40.2-cm diameter disk rotates with aconstant angular acceleration of 2.3rad/s2. It starts from rest at t = 0, and aline drawn from the center of the disk to a point P on therim of the disk makes an angle of 57.3° with the positivex-axis at this time. (a) Find the angular speed of the wheel att = 2.30 s.1 rad/s
(b) Find the linear velocity and tangential acceleration of P att = 2.30 s.
linear velocity 2 m/s tangential acceleration 3 m/s2
c) Find the position of P (in degrees, with respect to the positive x-axis) att = 2.30s.
4° (a) Find the angular speed of the wheel att = 2.30 s.
1 rad/s
(b) Find the linear velocity and tangential acceleration of P att = 2.30 s.
linear velocity 2 m/s tangential acceleration 3 m/s2
c) Find the position of P (in degrees, with respect to the positive x-axis) att = 2.30s.
4° linear velocity 2 m/s tangential acceleration 3 m/s2
Explanation / Answer
Given angularacceleration = 2.3 rad/s2 radiusofdisk r = d/2 = 0.402/ 2 = 0.201 m Initialangle 0 = 57.30 = 57.3* / 180 = 0.9996 rad = 57.3* / 180 = 0.9996 rad Initialangularspeed 0 = 0 a. first equation forangular motionis = 0 + * t = 0 + 2.3* 2.30 = 5.29 rad/s b. Linearvelocity v = r* = 0.201* 5.29 = 1.06 m/s tangentialacceleration a = r* = 0.201* 2.30 = 0.462 m/s2 c. Angular position = 0 + 0* t + (1/2) * *t2 = 0.9996 + 0* 2.3 + 0.5 * 2.3 *2.302 = 7.083 rad = 7.083* 180 / = 406.040 Sinceafter 3600, positions will be repeated, ( from + ve x axis) = 406.04 -360 = 46.040 Sinceafter 3600, positions will be repeated, ( from + ve x axis) = 406.04 -360 = 46.040Related Questions
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