At the instant shown bar AB has a constant angular velocity

At the instant shown bar AB has a constant angular velocity. If w_ab = 4 rad/s (CW), w_bd 2.5 rad/s (Ccw)w_de = 6.67 rad/s (CW):Estimate the angular acceleration of bar BD. Estimate the angular acceleration of bar DE.

Solution

Relative position vectors

r B/A = - 0.2 j

r D/B = 0.16 i

r DE= -0.06 i – 0.12 j

Angular velocity: AB = 4 rad/s CW, DE = 2.5 rad/s CCW,         BD    = 6.67 rad/s CW

Angular acceleration: AB = 0 (As AB has the constant velocity),    BD = BDk, DE = DEk

Where “” is the angular acceleration and “” is in vector form

Now for Bar AB ( Rotation about A) :

aB = AB×r B/A- AB 2 × r B/A

= 0 – (42)(- 0.2 j )

= 3.2 j

Now for Bar BD ( Rotation about B + Translation with B)

aD = aB + BD×r D/B - BD 2 × r D/B

= 3.2 j + BDk × 0.16 i – (6.67)2 (0.16 i)

= 3.2 j + 0.16 BD j – 7.12 i

= – 7.12 i + (3.2 + 0.16 BD) j -------------------------------------------- (1)

Now for Bar DE ( Rotation about E)

aD         = DE×r D/E - DE 2 × r D/E

= DE k × (-0.06 i – 0.12 j) – (2.5)2 (-0.06 i – 0.12 j)

= -0.06 DE j + 0.12 DE i + 0.375 i + 0.75 j

= (0.12 DE + 0.375) i + (0.75 -0.06 DE) j                      -------------------------------------------- (2)

Now, equating like components of from equation 1 and 2

– 7.12 = 0.12 DE + 0.375

Or DE = - 62.46 rad/s2 (Angular acceleration of bar DE)

And

3.2 + 0.16 BD = 0.75 -0.06 DE

Or BD = - 38.75 rad/s2 (Angular acceleration of bar BD)

 At the instant shown bar AB has a constant angular velocity. If w_ab = 4 rad/s (CW), w_bd 2.5 rad/s (Ccw)w_de = 6.67 rad/s (CW):Estimate the angular accelerati

Get Help Now

Submit a Take Down Notice

Tutor
Tutor: Dr Jack
Most rated tutor on our site