Punchlinegirl
Nov10-05, 09:06 PM
A uniform rod of length 1.29 m is attached to a frictionless pivot at one end. It is released from rest from an angle q = 21.0° above the horizontal. Find the magnitude of the initial acceleration of the rod's center of mass.
I= (1/2)ML^2
I= (1/2)(1.29^2), since mass isn't given I just used 1 kg.
I=.832 kg*m^2
\tau= rFsin \theta =.645(9.8)(sin 21)= 2.27 Nm
\tau = I \alpha
2.27= .832 \alpha
\alpha = 2.73 rad/s^2
a= \alpha * r
a= 2.73 * .645
a= 1.76 m/s^2
This isn't right.. can someone help me?
I= (1/2)ML^2
I= (1/2)(1.29^2), since mass isn't given I just used 1 kg.
I=.832 kg*m^2
\tau= rFsin \theta =.645(9.8)(sin 21)= 2.27 Nm
\tau = I \alpha
2.27= .832 \alpha
\alpha = 2.73 rad/s^2
a= \alpha * r
a= 2.73 * .645
a= 1.76 m/s^2
This isn't right.. can someone help me?