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Typology: Lecture notes
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(4) v,
2
2
Variable Symbol Units Position X m
Displacement s m
Velocity (initial) Vo m/s
Accelerati on a (^) m/s^2
Time t s
For ce (Total) F N
Mass M kg
Spring stiffness k N/mm
C
2
C
Centrifugal Force Fe N
Work w J
Potential Energy PE J
Kinetic Energy K E J
Spring Energy SE J
Power p 'N
Conservation of Energy
(11)
(12)
(13)
(14)
(15)
(16)
2
1 (l)^
0
2
Rot Variable Symbol Units
Angula r Velocity (Initia l) COo rad/s
Time t s
Torsional Spring stiffness /Not used/ (Not used/
C
C
Centrifugal Force Fe N
2
Work w J
Kinetic Energy (rotary) KE J
l1llpnlse=Ft=Change of Illomentn1ll =Ill(v 1 -v 0 )
Coefficient of Restitution c =v 1 /v 0
'
To solve a linear or rotary problem: (1) Pick 3 known + 1 unknown variable
Trigonometric Rules
a^2 = b^2 + c^2 - 2bc cos A
a sin A
= b
C sin B sin C
Newton's Laws of Motion
How to do it (typical)
(2) If in equil, then I normal = 0 and I parallel = 0
n
once you have 2 unknowns
0
p w
thin hoop or ring of thick ring of inner radius solid cylinder or disc
solid sphere of radius thin-walled hollow sphere slender rod of length L
around center: (2/5)MR•2 (2/3)MR•2*^ (ML • 2)/
Shaft Power^ N^ = RPM
P=Tm=
21rNT 60
T = Torque (Nm)
V Belts (^) Pitch diameter
�
= e(μetsin /J)
Velocity Ratio
VR =SE /SL
Sheave outside diameter
S E = Distance moved by effort
SL = Distance moved by load
Mechanical Advantage
MA= FL / FE F E = Force of effort
FL = Force of load
Wedge angle Belt ride-out
Groove depth
C
flat plate with sides of length A and B and
GVG/Pl)/l, slender rod of length L and mass M, spinning around end: (ML • 2)/*
Ff
Ltt.r--t.11r25N