kinematics of rotation of rigid bodies angle of rotation angular displacement Δθ = θ – θ 0...
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Kinematics of Rotation of Rigid Bodies
Angle of rotationAngular displacement Δθ = θ – θ0
Δθ > 0 if rotation is counterclockwiseΔθ < 0 if rotation is clockwise
z
Angle of rotation θ is a dimensionless quantity, but it is a vector
zi
r
s
Radius
lengthArcradiansin )( If θ is in radians, then
s=rθ and s’=r’θ with the same θ.
r
s
r’
s’
00
0 3.572
36013602
21
radradr
rrevolution
Example:A total eclipseof the sun
Average angular velocityAngular Velocity and Acceleration
rpmrev
ors
rad
ttt zz
min
,0
0
Instantaneous angular velocity
zz idt
d
t
,lim0t
z z
ωz>0 ωz<0
Average angular acceleration
2
0
0 ,s
rad
ttt zzzz
z
Instantaneous angular acceleration
zzzz
z idt
d
dt
d
t
,lim2
2
0t
Instantaneous angular speed is a scalar .||
Kinematic Equations of Linear and Angular Motionwith Constant Acceleration
(1)
(3)
(4)
(2)
Rotational motion Quantity Linear motion
θ Displacement x
ω0z Initial velocity v0x
ωz Final velocity vx
αz Acceleration ax
t Time t
Relations between Angular and Tangential Kinematic Quantities
Ice-skating stunt“crack-the-whip”
dt
dr
dt
dvdt
dr
dt
ds
rs
Centripetal and Tangential Accelerations in Rotational Kinematics
Exam Example 22: Throwing a Discus (example 9.4)
Rotational Kinetic Energy and Moment of Inertia
Kinetic energy of one particle222
2
1
2
1 mrmvK T Rotational kinetic energy is the kinetic energy of the entire rigid body rotating with the angular speed ω
222
2
1
2
1 IKrmK Ri
iiR
Definition of the moment of inertia i V
ii dVrrmI 22
Total mechanical energy
UIMvE cmcm 22
2
1
2
1
Translationalkinetic energy
Rotational kinetic energy cmr
r
'r
cmv
0cm
Parallel-Axis Theorem 2cmcm MrII
Proof:
i
iicmi i
cmii
iicmi rmrrmrmrrmI '2)(')'( 222 =0
Potentialenergy
ω
vh
Rotation about an Axis Shifted from a Center of Mass Position
Exam Example 23: Blocks descending over a massive pulley (problem 9.83)
Rm1
m2
gm
2
gm1
1NF
2T
1T
2T
1T
x
y
F
ay
ω
0
Δy
Data: m1, m2, μk, I, R, Δy, v0y=0
Find: (a) vy; (b) t, ay; (c) ω,α; (d) T1, T2
kf
Solution: (a) Work-energy theoremWnc= ΔK + ΔU, ΔU = - m2gΔy,
Wnc = - μk m1g Δy , since FN1 = m1g,ΔK=K=(m1+m2)vy
2/2 + Iω2/2 = (m1+m2+I/R2)vy2/2 since vy = Rω
221
1212
2221 /
)(2)(
2
1
RImm
mmygvmmygv
R
Imm k
yky
(b) Kinematics with constant acceleration: t = 2Δy/vy , ay = vy2/(2Δy)
(c) ω = vy/R , α = ay/R = vy2/(2ΔyR)
(d) Newton’s second law for each block:
T1x + fkx = m1ay → T1x= m1 (ay + μk g) ,
T2y + m2g = m2ay → T2y = - m2 (g – ay)
Moments of Inertia of Various Bodies
Scaling law and order of magnitude I ~ ML2
22
2
3
1
212
1ML
LMMLI
Moment of Inertia Calculations
Cylinder rotating about axis of symmetry
2122
21
22
41
42
32
242
2)2(2
1
2
1
RRRRLRR
L
drrLrLdrrIR
R
R
R
The total mass of the cylinder is
)( 21
22 RRLVM
Result: )(2
1 22
21 RRMI
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