Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 23.

Slides:



Advertisements
Similar presentations
Chapter 10.
Advertisements

Potential Energy Curves
Energy Conservation 1. Mechanical energy conservation For closed isolated system 2. Open system 3. Conservative and nonconservative forces Forces such.
Physics 218, Lecture XV1 Physics 218 Lecture 15 Dr. David Toback.
Physics 111 Practice Problem Statements 07 Potential Energy & Energy Conservation SJ 8th Ed.: Chap 7.6 – 7.8, 8.1 – 8.5 Contents: 8-4, 8-5, 8-16, 8-19*,
Chapter 9:Linear Momentum 8-4 Problem Solving Using Conservation of Mechanical Energy 8-5 The Law of Conservation of Energy 8-6 Energy conservation with.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 18.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 19.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 31 Hw: Chapter 13 problems and exercises.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 23.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 16.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures
Instructor: Dr. Tatiana Erukhimova
Physics 218 Lecture 14 Dr. David Toback Physics 218, Lecture XIV.
Instructor: Dr. Tatiana Erukhimova
Chapter 7 All forces are CONSERVATIVE or NON-CONSERVATIVE.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 28.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 10.
Instructor: Dr. Tatiana Erukhimova
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 40.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures 27, 28.
ENGR 215 ~ Dynamics Sections 14.1 – Conservation of Energy Energy can neither be created nor destroyed during a process, it can only change forms.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 13.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 22.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 23.
Physics 218, Lecture XIII1 Physics 218 Lecture 13 Dr. David Toback.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 19.
Instructor: Dr. Tatiana Erukhimova
General Physics 1, Additional questions By/ T.A. Eleyan
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 29.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 27.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Sections 807, 808, 809 Lecture 8.
T101Q7. A spring is compressed a distance of h = 9.80 cm from its relaxed position and a 2.00 kg block is put on top of it (Figure 3). What is the maximum.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 26.
Mechanical Energy and Simple Harmonic Oscillator 8.01 Week 09D
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures 13, 14, 15.
1 7.4 Conservative Forces and Potential Energy Define a potential energy function, U, such that the work done by a conservative force equals the decrease.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures 13, 14, 15.
Conservative Forces: The forces is conservative if the work done by it on a particle that moves between two points depends only on these points and not.
Energy Examples Serway and Jewett 8.1 – 8.3 Physics 1D03 - Lecture 22.
Advanced Problems 3 These problems will contain:
WHITE BOARD TIME !! CONSERVE ENERGY. E T = PE G + KE + PE S When comparing the energy at two different positions on a system, the total energy at one.
Instructor: Dr. Tatiana Erukhimova
Work, Energy and Power Ms Houts AP Physics C Chapters 7 & 8.
Problem with Work done by “other” forces Relationship between force and potential energy Potential energy diagrams Lecture 12: Potential energy diagrams.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures 16, 17, 18.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 41 Hw: Chapter 15 problems and exercises.
PHYSICS 50: Lecture 6-1 RICHARD CRAIG. Today Exam Review Grades New Homework Chapter 6 Work, Energy and Power “Quiz”
SO FAR WE HAVE DEALT WITH TWO KINDS OF POTENTIAL ENERGY: GRAVITATIONAL (U=MGH) ELASTIC (U=1/2KX 2 ) POTENTIAL ENERGY GRAPHS CAN PROVIDE INFORMATION ABOUT.
Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lectures
Energy of Simple Harmonic Motion
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Ch. 10 slides WorkEnergy.ppt.
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Work and Kinetic Energy
Instructor: Dr. Tatiana Erukhimova
Work and Kinetic Energy
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Potential Potential Energy
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Instructor: Dr. Tatiana Erukhimova
Energy Problems.
Presentation transcript:

Physics 218: Mechanics Instructor: Dr. Tatiana Erukhimova Lecture 23

ENERGY DIAGRAMS

Stable vs. Unstable Equilibrium Points The force is zero at both maxima and minima but… –If I put a ball with no velocity there would it stay? –What if it had a little bit of velocity?

A particle moves along the x-axis while acted on by a single conservative force parallel to the x-axis. The force corresponds to the potential-energy function graphed in the Figure. The particle is released from rest at point A. a)What is the direction of the force on the particle when it is at point A? b) At point B?

c) At what value of x is the kinetic energy of the particle a maximum? d) What is the force on the particle when it is at point C?

e) What is the largest value of x reached by the particle during its motion? f) What value or values of x correspond to points of stable equilibrium? g) Of unstable equilibrium?

Quiz

A 2.00-kg block is pushed against a spring with negligible mass and force constant k=400 N/m compressing in m. When the block is released, it moves along a frictionless, horizontal surface and then up a frictionless incline with slope a) What is the speed of the block as it slides along the horizontal surface after having left the spring? b) How far does the block travel up the incline before starting to slide back down?

Have a great day! Reading: Chapter 9 Hw: All Chapter 9 problems and exercises