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Chapter 7 Energy and Work
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Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Jan 05, 2016

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Page 1: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Chapter 7

Energy and Work

Page 2: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Goals for Chapter 7

• Overview energy.• Study work as defined in physics.• Relate work to kinetic energy.• Consider work done by a variable force.• Study potential energy.• Understand energy conservation.• Include time and the relationship of work to

power.

Page 3: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Energy

• Energy is conserved.• Kinetic Energy describes motion and relates to the

mass of the object and it’s velocity squared.• Energy on earth originates from the sun.• Energy on earth is stored thermally and chemically.• Chemical energy is released by metabolism.• Energy is stored as potential energy in object height

and mass and also through elastic deformation.• Energy can be dissipated as heat and noise.

Page 4: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Energy Transfer and Transformation

Energy is transformed from one form

to another, but it is not created or destroyed.

Page 5: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Mechanical energy—the energy associated with motion, position, and deformation of objects.

Kinetic Energy.Elastic Potential Energy.Gravitational Potential Energy.

Page 6: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 7: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 8: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

• Energy can be dissipated by heat (motion transferred at the molecular level. This is referred to as dissipation.

Page 9: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

WORK

Page 10: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

What is “work” as defined in Physics? •Formally, work is the product of a constant force F through a parallel displacement s.

W = F.s W is N.m

1 Joule (J) = (1N.m)

Page 11: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

•Forces applied at angles must be resolved into components.

Parallel component = along the displacement

Page 12: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

W > 0

W < 0

W = 0

Page 13: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Sliding on a ramp

Page 14: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Work done be several forces

Page 15: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Work done be several forces

Page 16: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Work Done by a Varying Force

Page 17: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 18: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Work Done by a Varying Force

Page 19: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 20: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 21: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

•Energy may be stored in compressed springs.

Page 22: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Work and Kinetic Energywork-energy theorem

W = Kf - Ki

Page 23: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Work done be several forces

Vi = 2.0 m/s

Page 24: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Gravitational Potential Energy (Near Earth’s surface)

U = mgy

Page 25: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 26: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 27: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Gravitational Potential Energy

• U = mgh

• Independently of the path

Page 28: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.
Page 29: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Sliding on a ramp

Vf ?M= 100kg, angle = 30 degrees, h =3m

Page 30: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Uel = (1/2) kx2

Page 31: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

• Work-Energy TheoremWtotal = Kf – Ki

• Conservatives force Kf + Uf = Ki + Ui

• Non-conservative forcesKf + Uf = Ki + Ui + Wother

• PowerPav = ΔW/Δt

The unit is Watt (J/s)

Page 32: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

A 1.50 kg book is sliding along a rough horizontal surface. At point A it is moving at 3.21m/s  , and at point B it has slowed to 1.25 m/s .

How much work was done on the book between A and B ?

If -0.750J of work is done on the book from B to C, how fast is it moving at point C?

How fast would it be moving at C if +0.750 of work were done on it from B to C?

Page 33: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

For its size, the common flea is one of the most accomplished jumpers in the animal world. A 2.0 mm  long, 0.50 mg  critter can reach a height of 20.0 cm  in a single leap.

Neglecting air drag, what is the takeoff speed of such a flea?

Calculate the kinetic energy of this flea at takeoff and its kinetic energy per kilogram of mass.

If a 65.0 Kg , 2.00 m -tall human could jump to the same height compared with his length as the flea jumps compared with its length, how high could he jump, and what takeoff speed would he need?

Page 34: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

A 1.50  kg box moves back and forth on a horizontal frictionless surface between two different springs, as shown in the accompanying figure. The box is initially pressed against the stronger spring, compressing it 4.00  cm, and then is released from rest.

a) By how much will the box compress the weaker spring?

b) What is the maximum speed the box will reach?

Page 35: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Problems with non-conservative forces

Page 36: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

You slam on the brakes of your car in a panic and skid a distance d on a straight and level road. If you had been traveling twice as fast, what distance would the car have skidded under the same conditions?

Use work energy theorem

A) 4d B)2d C) d 2 D) (1/2) d

Page 37: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

Consider two frictionless inclined planes with the same vertical height. Plane 1 makes an angle of 25.0o with the horizontal, and plane 2 makes an angle of 55.0o with the horizontal. Mass m1 is placed at the top of plane 1, and mass m2 is placed at the top of plane 2. Both masses are released at the same time. At the bottom, which mass is going faster?

A) m1 B) m2 C) neither (both same speed)

Page 38: Chapter 7 Energy and Work. Goals for Chapter 7 Overview energy. Study work as defined in physics. Relate work to kinetic energy. Consider work done by.

The stone in the accompanying figure can be carried from the bottom to the top of a cliff by various paths.  

Which path requires more work?

A) AC B) ABC C) same work for both paths