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Large Hadron Collider went online on Sept. 10 2008 Counter propagating proton beams accelerated to 7x10 12 eV make 11,000 revolutions per second and collide.

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Presentation on theme: "Large Hadron Collider went online on Sept. 10 2008 Counter propagating proton beams accelerated to 7x10 12 eV make 11,000 revolutions per second and collide."— Presentation transcript:

1 Large Hadron Collider went online on Sept. 10 2008 Counter propagating proton beams accelerated to 7x10 12 eV make 11,000 revolutions per second and collide in four points 27 km ring

2 CMS detector

3 Era of Discovery with CMS Detector TAMU Group Teruki Kamon, Alexei Safonov, David Toback Special Colloquium, LHC… Alexei Safonov 09/17/08 (Next Wednesday)

4 Some goals of LHS: To discover the Higgs boson responsible for the origin of mass To discover the dark matter particle To confirm the Supersymmetry theory

5 Matter is effected by forces or interactions (the terms are interchangeable) There are four fundamental forces in the Universe: gravitation (between particles with mass) electromagnetic (between particles with charge) strong nuclear force (between quarks) weak nuclear force (that changes quark types)

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7 The Standard Model (SM) describes all these particles and 3 of 4 forces. We have confirmed the existence of those in the laboratory experiments. The Standard Model + Higgs boson Higgs has not yet been discovered The mass is constrained from LEP and Tevatron data: 114 GeV<M H <154 GeV Precision Cosmology at the LHC 7

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9 Dark matter dominates in all galaxies! > 90% of mass is invisible Dark matter corona

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11 Newton’s Laws 1st Law: A body acted on by no net force moves with constant velocity (which may be zero) 2st Law: The acceleration of an object is directly proportional to the net force acting on it and is inversely proportional to its mass. The direction of the acceleration is in the direction of the net force acting on the object. 3rd Law: For every action there is an equal, but opposite reaction

12 Galileo Galilei 1564-1642 Laws of physics (and everything in the Universe) look the same for all observers who move with a constant velocity with respect to each other. Galilean principle of relativity (Galileo’s ship!) First Law is identical to Galilean Principle of relativity

13 The First Law states that an object will remain at rest or in uniform motion in a straight line unless acted upon by an external force. It may be seen as a statement about inertia, that objects will remain in their state of motion unless a force acts to change the motion. The First Law contains implications about the fundamental symmetry of the universe in that a state of motion in a straight line must be just as "natural" as being at rest. If an object is at rest in one frame of reference, it will appear to be moving in a straight line to an observer in a reference frame which is moving by the object. There is no way to say which reference frame is "special", so all constant velocity reference frames must be equivalent. Aristotle: a natural state of an object is at rest; a force is necessary to keep an object in motion. It follows from common sense. Galileo: was able to identify a hidden force of friction behind common-sense experiments, abstracted from it a fundamental law of inertia

14 2 nd Law From experiments we know: 1.A force is needed to change the state of motion 2.Force is a vector 3.The direction of acceleration vector is the same as the direction of the force vector 4.The magnitude of the force and acceleration are related by a constant which intuitively is a “quantity of matter”.

15 Newton’s 2 nd Law of Motion 2.The acceleration a of a body is inversely proportional to its mass m, directly proportional to the net force F, and in the same direction as the net force. a = F/m  F = m a

16 Newton’s 3 rd Law of Motion 3.To every action, there is an equal and opposite reaction. The same force that is accelerating the boy forward, is accelerating the skateboard backward.

17 Clockwork universe

18 Types of forces Gravity Spring force Friction “contact” force Fundamental “forces”

19 Gravity is a strange force. It has a unique property: M m R All bodies in the same point in space experience the same acceleration! Galileo, about 1600

20 Force exerted by a spring: Hooke’s law: If spring is stretched or compressed by some small amount it exerts a force which is linearly proportional to the amount of stretching or compressing. The constant of proportionality is called the spring constant. - is deviation from the natural length “stress is proportional to strain”

21 Hooke’s law is an approximation for small strain Steel

22 Weight, the force of gravity, and the normal force

23 Friction Two types of friction: 1.Kinetic: The friction force that slows things down 2.Static: The force that makes it hard to even get things moving

24 Refrigerator If you push a refrigerator when there is no friction what happens? In the real world what happens? Especially when it’s fully loaded and on a sticky kitchen floor? –When does static friction kick in? –When does kinetic friction kick in?

25 Friction There is some maximum value the friction force can achieve, and once we apply a force greater than this maximum there is a net force on the object, so it accelerates. The maximum of the force of friction varied linearly with the amount that the block pushes on the table.  - coefficient of friction, is the vertical force exerted by the block on the table The friction force only exists when there is another force trying to move an object

26 Kinetic Friction For kinetic friction, it turns out that the larger the Normal Force the larger the friction. We can write F Friction =  Kinetic F Normal Here  is a constant Warning: –THIS IS NOT A VECTOR EQUATION!

27 Static Friction This is more complicated For static friction, the friction force can vary F Friction   Static F Normal Example of the refrigerator: –If I don’t push, what is the static friction force? –What if I push a little?

28  Pulling Against Friction A box of mass m is on a surface with coefficient of kinetic friction . You pull with constant force F P at angle  The box does not leave the surface and moves to the right. 1.What is the magnitude of the acceleration? 2.What angle maximizes the acceleration?

29 A Recipe for Solving Problems 1.Sketch Isolate the body (only external forces but not forces that one part of the object exert on another part) 2. Write down 2 nd Newton’s law Choose a coordinate system Write 2 nd Newton’s law in component form: 3. Solve for acceleration

30 Box on an inclined plane A box with mass m is placed on a frictionless incline with angle  and is allowed to slide down. a)What is the normal force? b)What is the acceleration of the box? 


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