Work and Energy An Introduction Monday, October 18, 2010 Introduction to Work.

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Transcript of Work and Energy An Introduction Monday, October 18, 2010 Introduction to Work.

Work and Energy

An Introduction

Monday, October 18, 2010

Introduction to Work

Work

Work tells us how much a force or combination of forces changes the energy of a system.

Work is the bridge between force (a vector) and energy (a scalar).

W = F r cos OR W = F x cos F: force (N) r : displacement (m) : angle between force and displacement

Units of Work

SI System: Joule (N m) 1 Joule of work is done when 1 N acts on a

body moving it a distance of 1 meter British System: foot-pound

(not used in Physics B) cgs System: erg (dyne-cm)

(not used in Physics B) Atomic Level: electron-Volt (eV)

Force and direction of motion both matter in defining work! There is no work done by a force if it causes

no displacement. Forces can do positive, negative, or zero work.

When an box is pushed on a flat floor, for example… The normal force and gravity do no work, since

they are perpendicular to the direction of motion.

The person pushing the box does positive work, since she is pushing in the direction of motion.

Friction does negative work, since it points opposite the direction of motion.

Conceptual Checkpoint Question: If a man holds a 50 kg box at arms

length for 2 hours as he stands still, how much work does he do on the box?

Conceptual Checkpoint Question: If a man holds a 50 kg box at arms

length for 2 hours as he walks 1 km forward, how much work does he do on the box?

Conceptual Checkpoint Question: If a man lifts a 50 kg box 2.0 meters,

how much work does he do on the box?

Work and Energy

Work changes mechanical energy! If an applied force does positive work on a

system, it tries to increase mechanical energy.

If an applied force does negative work, it tries to decrease mechanical energy.

The two forms of mechanical energy are called potential and kinetic energy.

Work - Sample problem #1Jane uses a vine wrapped around a pulley to lift a 70-kg Tarzan to a tree house 9.0 meters above the ground.

a)How much work does Jane do when she lifts Tarzan?

b)How much work does gravity (the Earth) do when Jane lifts Tarzan?

Work - Sample problem #2Joe pushes a 10-kg box and slides it across the floor at constant velocity of 3.0 m/s. The

coefficient of kinetic friction between the box and floor is 0.50. a) How much work does Joe do if he pushes the box for 15 meters?

b) How much work does friction do as Joe pushes the box?

Work - Sample problem #3A father pulls his child in a little red wagon with constant speed. If the father pulls with a force of 16 N for 10.0 m, and the handle of the wagon is inclined at an angle of 60o above the horizontal, how much work does the father do on the wagon?

Tuesday, October 17, 2010

Kinetic Energy

Announcements

Due today: Centripetal Acceleration FRQ

Kinetic Energy

Energy due to motion K = ½ m v2

K: Kinetic Energym: mass in kgv: speed in m/s

Unit: Joules Unit Confirmation: kgm2/s2 = Nm

Sample problemA 10.0 g bullet has a speed of 1.2 km/s.

a) What is the kinetic energy of the bullet?

b) What is the bullet’s kinetic energy if the speed is halved?

c) What is the bullet’s kinetic energy if the speed is doubled?

The Work-Energy Theorem

The net work due to all forces equals the change in the kinetic energy of a system.

Wnet = K

Wnet: work due to all forces acting on an object

K: change in kinetic energy (Kf – Ko)

Work – KE Theorem

Sample problemAn 80-g acorn falls from a tree through air and lands on the ground 10.0 m below with a speed of 11.0 m/s.

a) What would the speed of the acorn have been if there had been no air resistance?

b) Did air resistance do positive, negative or zero work on the acorn? Why?

Sample problemAn 80-g acorn falls from a tree and lands on the ground 10.0 m below

with a speed of 11.0 m/s.

c) How much work was done by air resistance?

d) What was the average force of air resistance?

Wednesday, October 20, 2010

Work done by variable forces

Announcements

Tonight’s HW:

Due Wednesday

Constant force and work The force shown is a

constant force. W = Fx can be used

to calculate the work done by this force when it moves an object from xa to xb.

The area under the curve from xa to xb can also be used to calculate the work done by the force when it moves an object from xa to xb

F(x)

xxa xb

Variable force and work The force shown is a

variable force. W = Fr CANNOT be

used to calculate the work done by this force!

The area under the curve from xa to xb can STILL be used to calculate the work done by the force when it moves an object from xa to xb

F(x)

xxa xb

Springs When a spring is stretched or compressed from its equilibrium

position, it does negative work, since the spring pulls opposite the direction of motion.

Ws = - ½ k x2

Ws: work done by spring (J)

k: force constant of spring (N/m) x: displacement from equilibrium (m)

The force doing the stretching does positive work equal to the magnitude of the work done by the spring.

Wapp = - Ws = ½ k x2

Springs: stretching

m

mx

0

Fs = -kx (Hooke’s Law)

100

0

-100

-200

200F(N)

0 1 2 3 4 5x (m)

Ws = negative area = - ½ kx2

Fs

Fs

Sample problemA spring with force constant 2.5 x 104 N/m is initially at its equilibrium length.

a) How much work must you do to stretch the spring 0.050 m?

b) How much work must you do to compress it 0.050 m?

Sample problemIt takes 130 J of work to compress a certain spring 0.10 m.

a) What is the force constant of the spring?

b) To compress the spring an additional 0.10 m, does it take 130 J, more than 130 J, or less than 130 J? Verify your answer with a calculation.

Sample Problem

How much work is done by the force shown when it acts on an object and pushes it from x = 0.25 m to x = 0.75 m?

Sample Problem

How much work is done by the force shown when it acts on an object and pushes it from x = 2.0 m to x = 4.0 m?

Wednesday, October 20, 2010

Power

Announcements

Homework due tomorrow

Power

Power is the rate of which work is done.

P = W/tW: work in Joulest: elapsed time in seconds

When we run upstairs, t is small so P is big.

When we walk upstairs, t is large so P is small.

Unit of Power

SI unit for Power is the Watt.1 Watt = 1 Joule/sNamed after the Scottish engineer

James Watt (1776-1819) who perfected the steam engine.

British systemhorsepower1 hp = 746 W

How We Buy Energy…

The kilowatt-hour is a commonly used unit by the electrical power company.

Power companies charge you by the kilowatt-hour (kWh), but this not power, it is really energy consumed.

1 kW = 1000 W 1 h = 3600 s 1 kWh = 1000J/s • 3600s = 3.6 x 106J

Sample problemA record was set for stair climbing when a man ran up the 1600 steps of the Empire State Building in 10 minutes and 59 seconds. If the height gain of each step was 0.20 m, and the man’s mass was 70.0 kg, what was his average power output during the climb? Give your answer in both watts and horsepower.

Sample problemCalculate the power output of a 1.0 g fly as it walks straight up a window pane at 2.5 cm/s.

Force types Forces acting on a system can be

divided into two types according to how they affect potential energy.

Conservative forces can be related to potential energy changes.

Non-conservative forces cannot be related to potential energy changes.

So, how exactly do we distinguish between these two types of forces?

Conservative forces Work is path independent.

Work can be calculated from the starting and ending points only.

The actual path is ignored in calculations. Work along a closed path is zero.

If the starting and ending points are the same, no work is done by the force.

Work changes potential energy. Examples:

Gravity Spring force

Conservation of mechanical energy holds!

Non-conservative forces Work is path dependent.

Knowing the starting and ending points is not sufficient to calculate the work.

Work along a closed path is NOT zero. Work changes mechanical energy. Examples:

Friction Drag (air resistance)

Conservation of mechanical energy does not hold!

Potential energy Energy of position or configuration “Stored” energy For gravity: Ug = mgh

m: massg: acceleration due to gravity h: height above the “zero” point

For springs: Us = ½ k x2

k: spring force constant x: displacement from equilibrium position

Conservative forces and Potential energy

Wc = -U If a conservative force does positive work on a

system, potential energy is lost. If a conservative force does negative work, potential

energy is gained. For gravity

Wg = -Ug = -(mghf – mghi)

For springs Ws = -Us = -(½ k xf

2 – ½ k xi2)

More on paths and conservative forces.

Q: Assume a conservative force moves an object along the various paths. Which two works are equal?

A: W2 = W3

(path independence)Q: Which two works, when added together, give a sum of zero?

A: W1 + W2 = 0 or

W1 + W3 = 0(work along a closed path is zero)

October, 2010

Conservative vs non-conservative forces

Announcements

Sample problem A box is moved in the closed path shown.

a) How much work is done by gravity when the box is moved along the path A->B->C?

b) How much work is done by gravity when the box is moved along the path A->B->C->D->A?

Solution a) WG = 0 + Fr

WG = 0 –mgh = -mgh

b) WG = 0 -mgh + 0 + mgh

= 0

The work in b) is zero because work along a closed path is zero for any conservative force.

Sample problemA box is moved in the closed path shown.

a) How much work would be done by friction if the box were moved along the path A->B->C?

b) How much work is done by friction when the box is moved along the path A->B->C->D->A?

Solution a) Wf = -kmgd - kmgd

Wf = -2kmgd

b) Wf = -kmgd - kmgd - kmgd - kmgd

= -4 kmgd

Because friction is a nonconservative force, work along the closed path in b) is not zero.

Sample problem (#8.6)As an Acapulco cliff diver drops to the water from a height of 40.0 m, his gravitational potential energy decreases by 25,000 J. How much does the diver weigh?

Sample problem (like #8.9)If 60.0 J of work are required to stretch a spring from a 2.00 cm elongation to a 5.00 cm elongation, how much work is needed to stretch it from a 5.00 cm elongation to a 8.00 cm elongation?

October, 2010

Conservation of Mechanical Energy

Announcements

Law of Conservation of Energy

In any isolated system, the total energy remains constant.

Energy can neither be created nor destroyed, but can only be transformed from one type of energy to another.

Law of Conservation of Mechanical Energy

E = K + U = ConstantK: Kinetic Energy (1/2 mv2)U: Potential Energy (gravity or spring)

E = U + K = 0K: Change in kinetic energyU: Change in gravitational or spring

potential energy

Roller Coaster Simulation

Roller Coaster Physics Simulation(demonstrates gravitational potential energy and kinetic energy)

Pendulums and Energy Conservation

Energy goes back and forth between K and U.

At highest point, all energy is U. As it drops, U goes to K. At the bottom , energy is all K.

h

Pendulum Energy

½mvmax2 =

mghFor minimum and maximum points of swing

K1 + U1 = K2 + U2 For any points 1 and 2.

Springs and Energy Conservation Transforms energy back and forth

between K and U. When fully stretched or extended, all

energy is U. When passing through equilibrium, all

its energy is K. At other points in its cycle, the energy

is a mixture of U and K.

Spring Energy

m

m -x

mx

0

½kxmax2 =

½mvmax2

For maximum and minimum displacements from equilibrium

K1 + U1 = K2 + U2

= E For any two points 1 and 2

All U

All U

All K

Spring Simulation

Spring Physics Simulation

Sample problemWhat is the speed of the pendulum bob at point B if it is released from rest at point A?

1.5 m

A

B

40o

Sample problem (#8.15)A 0.21 kg apple falls from a tree to the ground, 4.0 m below. Ignoring air resistance, determine the apple’s gravitational potential energy, U, kinetic energy, K, and total mechanical energy, E, when its height above the ground is each of the following: 4.0 m, 2.0 m, and 0.0 m. Take ground level to be the point of zero potential energy.

Sample problem (#8.18)A 1.60 kg block slides with a speed of 0.950 m/s on a frictionless, horizontal surface until it encounters a spring with a force constant of 902 N/m. The block comes to rest after compressing the spring 4.00 cm. Find the spring potential energy, U, the kinetic energy of the block, K, and the total mechanical energy of the system, E, for the following compressions: 0 cm, 2.00 cm, 4.00 cm.

November, 2010

Non-conservative forces and the Law of Conservation of Energy

Announcements

Due today:

Law of Conservation of Energy

E = U + K + Eint= Constant

Eint is thermal energy.

U + K + Eint = 0 Mechanical energy may be converted

to and from heat.

Work done by non-conservative forces

Wnet = Wc + Wnc

Net work is done by conservative and non-conservative forces

Wc = -U • Potential energy is related to conservative forces only!

Wnet = K• Kinetic energy is related to net force (work-energy theorem)

K = -U + Wnc • From substitution

Wnc = U + K = E Nonconservative forces change mechanical energy. If

nonconservative work is negative, as it often is, the mechanical energy of the system will drop.

Sample problem (#8.22)

Catching a wave, a 72-kg surfer starts with a speed of 1.3 m/s, drops through a height of 1.75 m, and ends with a speed of 8.2 m/s. How much non-conservative work was done on the surfer?

Solution (#8.22)

Wnc = U + K

= Uf – Ui + Kf – Ki

= mghf – mghi + ½ mvf2 – ½ m vi

2

= m[g(hf –hi) + ½ (vf2 –vi

2)]

= 72[(9.8)(0 - 1.75) + ½ (8.22 – 1.32)]

= 1125 J

Sample problem (#8.29)A 1.75-kg rock is released from rest at the surface of a pond 1.00 m deep. As the rock falls, a constant upward force of 4.10 N is exerted on it by water resistance. Calculate the nonconservative work, Wnc, done by the water resistance on the rock, the gravitational potential energy of the system, U, the kinetic energy of the rock, K, and the total mechanical energy of the system, E, for the following depths below the water’s surface: d = 0.00 m, d = 0.500 m, d = 1.00 m. Let potential energy be zero at the bottom of the pond.

Solution (#8.29) – for 0.00 m

Wnc = Fr = 0E = U + K = mgh + 0 = mgh = (1.75 kg)(9.8 m/s2)(1.00 m) = 17.15 JTherefore

Wnc = 0 (the rock hasn’t moved yet)

E = 17.15 J(will be reduced by the drag force of water)

U = 17.15 J (maximum value)

K = 0 (minimum value)

Solution (#8.29) – for 0.50 mWnc = Fr = (-4.10 N)(0.50 m) = -2.05 J = E E = 17.15 J – E = 17.15 J - 2.05 J = 15.1 JE = U + K = mgh + K15.1 J = (1.75 kg)(9.8 m/s2)(0.50 m) + K15.1 J = 8.6 J + KK = 15.1 – 8.6 J = 6.5 JTherefore

Wnc = -2.05 J

E = 15.1 J(reduced by the drag force of water)

U = 8.6 J (determined by height)

K = 6.5 J (reduced by the drag force of water)

Solution (#8.29) – for 1.00 m

Wnc = Fr = (-4.10 N)(1.00 m) = -4.10 J = E E = 17.15 J – E = 17.15 J - 4.10 J = 13.05 JE = U + K = 0 + K = K13.05 J = KTherefore

Wnc = -4.10 J E = 13.05 J (reduced by the drag force of water)

U = 0 (lowest point in problem)

K = 13.05 J (maximum value)

November, 2010

Conservation of Energy Laboratory

Announcements

Pendulum lab Figure out how to demonstrate conservation of energy with a

pendulum using the equipment provided.