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Mechanics 105 Kinematics – answers the question “how?” Statics and dynamics answer the question “why?” Force Newton’s 1 st law (object at rest/motion stays.

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Presentation on theme: "Mechanics 105 Kinematics – answers the question “how?” Statics and dynamics answer the question “why?” Force Newton’s 1 st law (object at rest/motion stays."— Presentation transcript:

1 Mechanics 105 Kinematics – answers the question “how?” Statics and dynamics answer the question “why?” Force Newton’s 1 st law (object at rest/motion stays that way) Inertial mass Newton’s 2 nd law (F=ma) Gravity Newton’s 3 rd law (Action-reaction) The laws of motion (chapter four)

2 Mechanics 105 Force Intuitive concept of force Contact and field forces Most of the forces we experience are due to gravitational or electromagnetic Vector nature of forces – acceleration will be in same direction as net force Notation: F 12 is the force exerted by object 1 on object 2

3 Mechanics 105 Newton’s 1 st law “In the absence of external forces, an object at rest remains at rest and an object in motion continues in motion with a constant velocity (that is, with a constant speed in a straight line).” In other words, objects accelerate only if there is a net force on them ConcepTest

4 Mechanics 105 Inertial frames & inertial mass Inertial frame of reference = frame in which 1 st law is valid – at rest or at constant velocity Inertial mass is the resistance of an object to a change in motion in response to an external force (basically it’s defined by F=ma) SI unit: kg not the same as weight (=force due to gravitational attraction of earth)

5 Mechanics 105 Newton’s 2 nd law “The acceleration of an object is proportional to the net force acting on it and inversely proportional to its mass.” i.e. the net (vector) force on an object is proportional to the (vector) acceleration of the object Units: “Newton” (N) = kgm/s 2

6 Mechanics 105 Example An object of mass m slides down a frictionless inclined plane (angle  with respect to the horizontal). What is its acceleration?  m

7 Mechanics 105 Example An object of mass m slides down a frictionless inclined plane (angle  with respect to the horizontal). What is its acceleration?  N FgFg Step one - draw the force vectors acting on the object

8 Mechanics 105 Example An object of mass m slides down a frictionless inclined plane (angle  with respect to the horizontal). What is its acceleration?  N FgFg Component along direction of motion = F g sin   Along this axis F g sin  =ma, or a= F g sin  /m what happens along the direction perpendicular to the direction of motion?

9 Mechanics 105 2 nd law - ConcepTests

10 Mechanics 105 Gravitational force and weight What we call weight is the force of gravity on an object at sea level, it is proportional to the mass of the object Note: this equation is valid even for no acceleration – so the gravitational mass and the inertial mass don’t have to be the same, but they are.

11 Mechanics 105 A neutron walks into a bar; he asks the bartender, 'How much for a beer?' The bartender looks at him, and says 'For you, no charge.‘ "We cannot learn without pain." -Aristotle "The only thing that interferes with my learning is my education." -Albert Einstein "Do not worry about your problems with mathematics, I assure you mine are far greater." -Albert Einstein

12 Mechanics 105 Newton’s 3 rd law (action-reaction) If two objects interact, the force F 12 exerted by object 1 on object 2 is equal in magnitude but opposite in direction to the force F 21 exerted by object 2 on object 1, i.e., Conceptually, a little hard to grasp. Even for an accelerating object, there are always equal and opposite forces. Even when it seems like there is only a single object, i.e., an object in space, there must be a corresponding object which “receives” the reaction force.

13 Mechanics 105 Applications of Newton’s laws Statics Block on the incline from earlier, now being held up by a force F If the block doesn’t move, the acceleration must be zero  y x  Free body diagram

14 Mechanics 105 Applications of Newton’s laws After making the free body diagram write out components of force vectors, then apply Newton’s second law along each axis

15 Mechanics 105 Applications of Newton’s laws Atwood machine assume m 2 >m 1 m1m1 m2m2 +y m1m1 m2m2

16 Mechanics 105 Applications of Newton’s laws One block pushing others F m1m1 m2m2 m3m3

17 Mechanics 105 Applications of Newton’s laws Pulley’s m2m2 m1m1

18 Mechanics 105 Applications of Newton’s laws Combination with circular motion m1m1 m2m2


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