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 In Chap. 6 we studied the equilibrium of point- objects (mass m) with the application of Newton’s Laws  Therefore, no linear (translational) acceleration,

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Presentation on theme: " In Chap. 6 we studied the equilibrium of point- objects (mass m) with the application of Newton’s Laws  Therefore, no linear (translational) acceleration,"— Presentation transcript:

1  In Chap. 6 we studied the equilibrium of point- objects (mass m) with the application of Newton’s Laws  Therefore, no linear (translational) acceleration, a=0 Static Equilibrium

2  For rigid bodies (non-point-like objects), we can apply another condition which describes the lack of rotational motion  If the net of all the applied torques is zero, we have no rotational (angular) acceleration,  =0 (don’t need to know moment of inertia)  We can now use these three relations to solve problems for rigid bodies in equilibrium (a=0,  =0) Example Problem The wheels, axle, and handles of a wheelbarrow weigh 60.0 N. The load chamber and its contents

3 weigh 525 N. It is well known that the wheel- barrow is much easier to use if the center of gravity of the load is placed directly over the axle. Verify this fact by calculating the vertical lifting load required to support the wheelbarrow for the two situations shown. FLFL L1L1 L2L2 L3L3 FwFw FDFD FLFL L2L2 L3L3 FwFw FDFD L 1 = 0.400 m, L 2 = 0.700 m, L 3 = 1.300 m

4  First, draw a FBD labeling forces and lengths from the axis of rotation L1L1 L2L2 FwFw L3L3 FDFD FLFL axis Choose a direction for the rotation, CCW being positive is the convention a)

5 L2L2 FwFw FDFD FLFL axis  Apply to case with load over wheel  Torque due to dirt is zero, since lever arm is zero b)

6  Who? What is carrying the balance of the load?  Consider sum of forces in y-direction FwFw FDFD FLFL FNFN a) b)  We did not consider the Normal Force when calculating the torques since its lever arm is zero

7 Center of Gravity FDFD  The point at which the weight of a rigid body can be considered to act when determining the torque due to its weight  Consider a uniform rod of length L. Its center of gravity (cg) corresponds to its geometric center, L/2.  Each particle which makes up the rod creates a torque about cg, but the sum of all torques due L L/2cg

8 to each particle is zero  So, we treat the weight of an extended object as if it acts at one point  Consider a collection of point-particles on a massless rod  The sum of the torques m1gm1g m2gm2g m3gm3g x3x3 x2x2 x1x1  Mg x cg

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