SlideShare una empresa de Scribd logo
1 de 33
6.1 Work Done by a Constant Force
( )sFW θcos=
1180cos
090cos
10cos
−=
=
=



6.1 Work Done by a Constant Force
Example 1 Pulling a Suitcase-on-Wheels
Find the work done if the force is 45.0-N, the angle is 50.0
degrees, and the displacement is 75.0 m.
( ) ( )[ ]( )
J2170
m0.750.50cosN0.45cos
=
== 
sFW θ
6.1 Work Done by a Constant Force
( ) FssFW == 0cos
( ) FssFW −== 180cos
6.1 Work Done by a Constant Force
Example 3 Accelerating a Crate
The truck is accelerating at
a rate of +1.50 m/s2
. The mass
of the crate is 120-kg and it
does not slip. The magnitude of
the displacement is 65 m.
What is the total work done on
the crate by all of the forces
acting on it?
6.1 Work Done by a Constant Force
The angle between the displacement
and the normal force is 90 degrees.
The angle between the displacement
and the weight is also 90 degrees.
( ) 090cos == sFW
The angle between the displacement
and the friction force is 0 degrees.
( )( ) N180sm5.1kg120 2
=== mafs
( )[ ]( ) J102.1m650cosN180 4
×==W
6.2 The Work-Energy Theorem and Kinetic Energy
6.2 The Work-Energy Theorem and Kinetic Energy
THE WORK-ENERGY THEOREM
When a net external force does work on and object, the kinetic
energy of the object changes according to
2
2
12
f2
1
of KEKE omvmvW −=−=
DEFINITION OF KINETIC ENERGY
The kinetic energy KE of and object with mass m
and speed v is given by
2
2
1
KE mv=
6.2 The Work-Energy Theorem and Kinetic Energy
Example 4 Deep Space 1
The mass of the space probe is 474-kg and its initial velocity
is 275 m/s. If the 56.0-mN force acts on the probe through a
displacement of 2.42×109
m, what is its final speed?
6.2 The Work-Energy Theorem and Kinetic Energy
2
2
12
f2
1
W omvmv −=
( )[ ]sF θcosW ∑=
( )[ ] 2
2
12
f2
1
cosF omvmvs −=∑ θ
( ) ( ) ( ) ( )( )2
2
12
f2
192-
sm275kg474kg474m1042.20cosN105.60 −=×× v
sm805=fv
6.2 The Work-Energy Theorem and Kinetic Energy
In this case the net force is kfmgF −=∑ 
25sin
6.3 Gravitational Potential Energy
( )sFW θcos=
( )fo hhmgW −=gravity
6.3 Gravitational Potential Energy
( )fo hhmgW −=gravity
6.3 Gravitational Potential Energy
Example 7 A Gymnast on a Trampoline
The gymnast leaves the trampoline at an initial height of 1.20 m
and reaches a maximum height of 4.80 m before falling back
down. What was the initial speed of the gymnast?
6.3 Gravitational Potential Energy
2
2
12
f2
1
W omvmv −=
( )fo hhmgW −=gravity
( ) 2
2
1
ofo mvhhmg −=−
( )foo hhgv −−= 2
( )( ) sm40.8m80.4m20.1sm80.92 2
=−−=ov
6.3 Gravitational Potential Energy
fo mghmghW −=gravity
DEFINITION OF GRAVITATIONAL POTENTIAL ENERGY
The gravitational potential energy PE is the energy that an
object of mass m has by virtue of its position relative to the
surface of the earth. That position is measured by the height
h of the object relative to an arbitrary zero level:
mgh=PE
( )Jjoule1mN1 =⋅
6.4 Conservative Versus Nonconservative Forces
6.4 Conservative Versus Nonconservative Forces
Version 1 A force is conservative when the work it does
on a moving object is independent of the path between the
object’s initial and final positions.
( )fo hhmgW −=gravity
6.4 Conservative Versus Nonconservative Forces
Version 2 A force is conservative when it does no work
on an object moving around a closed path, starting and
finishing at the same point.
fo hh =( )fo hhmgW −=gravity
6.4 Conservative Versus Nonconservative Forces
An example of a nonconservative force is the kinetic
frictional force.
( ) sfsfsFW kk −=== 
180coscosθ
The work done by the kinetic frictional force is always negative.
Thus, it is impossible for the work it does on an object that
moves around a closed path to be zero.
The concept of potential energy is not defined for a
nonconservative force.
6.4 Conservative Versus Nonconservative Forces
In normal situations both conservative and nonconservative
forces act simultaneously on an object, so the work done by
the net external force can be written as
ncc WWW +=
KEKEKE of ∆=−=W
PEPEPE fogravity ∆−=−=−== foc mghmghWW
6.4 Conservative Versus Nonconservative Forces
ncc WWW +=
ncW+∆−=∆ PEKE
THE WORK-ENERGY THEOREM
PEKE ∆+∆=ncW
6.5 The Conservation of Mechanical Energy
( ) ( )ofof PEPEKEKEPEKE −+−=∆+∆=ncW
( ) ( )ooff PEKEPEKE +++=ncW
of EE −=ncW
If the net work on an object by nonconservative forces
is zero, then its energy does not change:
of EE =
6.5 The Conservation of Mechanical Energy
THE PRINCIPLE OF CONSERVATION OF
MECHANICAL ENERGY
The total mechanical energy (E = KE + PE) of an object
remains constant as the object moves, provided that the net
work done by external nononservative forces is zero.
6.5 The Conservation of Mechanical Energy
6.5 The Conservation of Mechanical Energy
Example 8 A Daredevil Motorcyclist
A motorcyclist is trying to leap across the canyon by driving
horizontally off a cliff 38.0 m/s. Ignoring air resistance, find
the speed with which the cycle strikes the ground on the other
side.
6.5 The Conservation of Mechanical Energy
of EE =
2
2
12
2
1
ooff mvmghmvmgh +=+
2
2
12
2
1
ooff vghvgh +=+
2
2
12
2
1
ooff vghvgh +=+
( ) 2
2 ofof vhhgv +−=
( )( ) ( ) sm2.46sm0.38m0.35sm8.92
22
=+=fv
6.6 Nonconservative Forces and the Work-Energy Theorem
Example 11 Fireworks
Assuming that the nonconservative force
generated by the burning propellant does
425 J of work, what is the final speed
of the rocket. Ignore air resistance.
( )
( )2
2
1
2
2
1
oo
ffnc
mvmgh
mvmghW
+
−+=
6.6 Nonconservative Forces and the Work-Energy Theorem
2
2
12
2
1
ofofnc mvmvmghmghW −+−=
( )( )( )
( ) 2
2
1
2
kg20.0
m0.29sm80.9kg20.0J425
fv+
=
( ) 2
2
1
fofnc mvhhmgW +−=
sm61=fv
6.7 Power
DEFINITION OF AVERAGE POWER
Average power is the rate at which work is done, and it
is obtained by dividing the work by the time required to
perform the work.
t
W
P ==
Time
Work
(W)wattsjoule =
6.7 Power
Time
energyinChange
=P
watts745.7secondpoundsfoot550horsepower1 =⋅=
vFP =
6.7 Power
6.8 Other Forms of Energy and the Conservation of Energy
THE PRINCIPLE OF CONSERVATION OF ENERGY
Energy can neither be created not destroyed, but can
only be converted from one form to another.
6.9 Work Done by a Variable Force
( )sFW θcos=
Constant Force
Variable Force
( ) ( ) +∆+∆≈ 2211 coscos sFsFW θθ

Más contenido relacionado

La actualidad más candente

1 mechanical work-and-power
1  mechanical work-and-power 1  mechanical work-and-power
1 mechanical work-and-power
SAI RAMANA
 
Kinetics of particles work and energy
Kinetics of particles work and energyKinetics of particles work and energy
Kinetics of particles work and energy
Grace Palermo
 
Kinetics of partikelsenergi dan momentum
Kinetics of partikelsenergi dan momentumKinetics of partikelsenergi dan momentum
Kinetics of partikelsenergi dan momentum
restuputraku5
 
Virtual work modified [compatibility mode](1)
Virtual work modified [compatibility mode](1)Virtual work modified [compatibility mode](1)
Virtual work modified [compatibility mode](1)
sharancm2009
 
Chapter 7 Powerpoint
Chapter 7 PowerpointChapter 7 Powerpoint
Chapter 7 Powerpoint
Mrreynon
 
6161103 11 virtual work
6161103 11 virtual work6161103 11 virtual work
6161103 11 virtual work
etcenterrbru
 

La actualidad más candente (16)

1 mechanical work-and-power
1  mechanical work-and-power 1  mechanical work-and-power
1 mechanical work-and-power
 
9789810682446 slides chapter 11
9789810682446 slides chapter 119789810682446 slides chapter 11
9789810682446 slides chapter 11
 
Work and energy part a
Work and energy part aWork and energy part a
Work and energy part a
 
Kinetics of particles work and energy
Kinetics of particles work and energyKinetics of particles work and energy
Kinetics of particles work and energy
 
Kinetics of partikelsenergi dan momentum
Kinetics of partikelsenergi dan momentumKinetics of partikelsenergi dan momentum
Kinetics of partikelsenergi dan momentum
 
B conservative and non conservative forces
B conservative and non conservative forcesB conservative and non conservative forces
B conservative and non conservative forces
 
Virtual work modified [compatibility mode](1)
Virtual work modified [compatibility mode](1)Virtual work modified [compatibility mode](1)
Virtual work modified [compatibility mode](1)
 
Chapter 7 Powerpoint
Chapter 7 PowerpointChapter 7 Powerpoint
Chapter 7 Powerpoint
 
Power only g6 ppt
Power only g6  pptPower only g6  ppt
Power only g6 ppt
 
Lecture13
Lecture13Lecture13
Lecture13
 
6161103 11 virtual work
6161103 11 virtual work6161103 11 virtual work
6161103 11 virtual work
 
Power
PowerPower
Power
 
Ecp5
Ecp5Ecp5
Ecp5
 
Gravitational field and potential, escape velocity, universal gravitational l...
Gravitational field and potential, escape velocity, universal gravitational l...Gravitational field and potential, escape velocity, universal gravitational l...
Gravitational field and potential, escape velocity, universal gravitational l...
 
1. newton's second law ghumare s m
1. newton's second law ghumare s m1. newton's second law ghumare s m
1. newton's second law ghumare s m
 
Chapter 4 work, energy and power
Chapter 4 work, energy and powerChapter 4 work, energy and power
Chapter 4 work, energy and power
 

Destacado

Principles organization and_operation_of_a_dna_bank
Principles organization and_operation_of_a_dna_bankPrinciples organization and_operation_of_a_dna_bank
Principles organization and_operation_of_a_dna_bank
Espirituanna
 
Court white paper
Court white paperCourt white paper
Court white paper
Havas PR
 
E uam male-fin_lr
E uam male-fin_lrE uam male-fin_lr
E uam male-fin_lr
Havas PR
 
132945752 pro-forma-bcn3110
132945752 pro-forma-bcn3110132945752 pro-forma-bcn3110
132945752 pro-forma-bcn3110
Siok Yee Wong
 
E ukenmore fut_home_05lowres
E ukenmore fut_home_05lowresE ukenmore fut_home_05lowres
E ukenmore fut_home_05lowres
Havas PR
 
Dse control prevention_in_dental_1_
Dse control prevention_in_dental_1_Dse control prevention_in_dental_1_
Dse control prevention_in_dental_1_
Espirituanna
 
E uam male-fin_hr
E uam male-fin_hrE uam male-fin_hr
E uam male-fin_hr
Havas PR
 
Me llamo tarianna
Me llamo tariannaMe llamo tarianna
Me llamo tarianna
lakahaywood
 

Destacado (15)

Prelesson
PrelessonPrelesson
Prelesson
 
Principles organization and_operation_of_a_dna_bank
Principles organization and_operation_of_a_dna_bankPrinciples organization and_operation_of_a_dna_bank
Principles organization and_operation_of_a_dna_bank
 
Anatomy 1
Anatomy 1 Anatomy 1
Anatomy 1
 
33333
3333333333
33333
 
Court white paper
Court white paperCourt white paper
Court white paper
 
E uam male-fin_lr
E uam male-fin_lrE uam male-fin_lr
E uam male-fin_lr
 
132945752 pro-forma-bcn3110
132945752 pro-forma-bcn3110132945752 pro-forma-bcn3110
132945752 pro-forma-bcn3110
 
E ukenmore fut_home_05lowres
E ukenmore fut_home_05lowresE ukenmore fut_home_05lowres
E ukenmore fut_home_05lowres
 
Dse control prevention_in_dental_1_
Dse control prevention_in_dental_1_Dse control prevention_in_dental_1_
Dse control prevention_in_dental_1_
 
Sound Sound - Parent info night presentation
Sound Sound - Parent info night presentationSound Sound - Parent info night presentation
Sound Sound - Parent info night presentation
 
Easy automation choices for landscape businesses
Easy automation choices for landscape businessesEasy automation choices for landscape businesses
Easy automation choices for landscape businesses
 
Icai 17.02.2017 Taxation of foreign remmitances
Icai 17.02.2017 Taxation of foreign remmitancesIcai 17.02.2017 Taxation of foreign remmitances
Icai 17.02.2017 Taxation of foreign remmitances
 
E uam male-fin_hr
E uam male-fin_hrE uam male-fin_hr
E uam male-fin_hr
 
Health care
Health careHealth care
Health care
 
Me llamo tarianna
Me llamo tariannaMe llamo tarianna
Me llamo tarianna
 

Similar a 8389 ch06

Lecture Ch 06
Lecture Ch 06Lecture Ch 06
Lecture Ch 06
rtrujill
 
Work and energy
Work and energyWork and energy
Work and energy
Pratiksha
 

Similar a 8389 ch06 (20)

Chapter 6-powerpoint-1224302877703008-9
Chapter 6-powerpoint-1224302877703008-9Chapter 6-powerpoint-1224302877703008-9
Chapter 6-powerpoint-1224302877703008-9
 
Work and Energy
Work and EnergyWork and Energy
Work and Energy
 
physics
physicsphysics
physics
 
PHY300 Chapter 6 physics 5e
PHY300 Chapter 6 physics 5ePHY300 Chapter 6 physics 5e
PHY300 Chapter 6 physics 5e
 
work energy theorem and kinetic energy
work energy theorem and kinetic energywork energy theorem and kinetic energy
work energy theorem and kinetic energy
 
Chapter 7-powerpoint-1225339266570076-9
Chapter 7-powerpoint-1225339266570076-9Chapter 7-powerpoint-1225339266570076-9
Chapter 7-powerpoint-1225339266570076-9
 
Lecture Ch 06
Lecture Ch 06Lecture Ch 06
Lecture Ch 06
 
Work and energy
Work and energyWork and energy
Work and energy
 
Lecture10
Lecture10Lecture10
Lecture10
 
Lecture10
Lecture10Lecture10
Lecture10
 
dyn-part3.ppt
dyn-part3.pptdyn-part3.ppt
dyn-part3.ppt
 
Do Work!
Do Work!Do Work!
Do Work!
 
Ch04 ssm
Ch04 ssmCh04 ssm
Ch04 ssm
 
Chapter 6 Work And Energy
Chapter 6 Work And EnergyChapter 6 Work And Energy
Chapter 6 Work And Energy
 
Every Equation
Every EquationEvery Equation
Every Equation
 
Work power-energy
Work power-energyWork power-energy
Work power-energy
 
Ch06 ssm
Ch06 ssmCh06 ssm
Ch06 ssm
 
formula sheet.pdf
formula sheet.pdfformula sheet.pdf
formula sheet.pdf
 
6-a-work-energy-power.ppt
6-a-work-energy-power.ppt6-a-work-energy-power.ppt
6-a-work-energy-power.ppt
 
Chapter 06
Chapter 06Chapter 06
Chapter 06
 

Más de Espirituanna (20)

Ethical principles law_and_cultural_diversity
Ethical principles law_and_cultural_diversityEthical principles law_and_cultural_diversity
Ethical principles law_and_cultural_diversity
 
Dental care journal
Dental care journalDental care journal
Dental care journal
 
Bioethics defined
Bioethics definedBioethics defined
Bioethics defined
 
Ana phyev oandanatomist_1_
Ana phyev oandanatomist_1_Ana phyev oandanatomist_1_
Ana phyev oandanatomist_1_
 
8389 work 1
8389 work 18389 work 1
8389 work 1
 
genetics
geneticsgenetics
genetics
 
skeletal system
skeletal systemskeletal system
skeletal system
 
Introduction to cytology
Introduction to cytologyIntroduction to cytology
Introduction to cytology
 
Disease
DiseaseDisease
Disease
 
the urinary system
the urinary systemthe urinary system
the urinary system
 
respiratory system
respiratory systemrespiratory system
respiratory system
 
Human acts
Human actsHuman acts
Human acts
 
Histology
HistologyHistology
Histology
 
Hierarchy of beings_emotions
Hierarchy of beings_emotionsHierarchy of beings_emotions
Hierarchy of beings_emotions
 
Forensic dentistry
Forensic dentistryForensic dentistry
Forensic dentistry
 
Dental ethics
Dental ethicsDental ethics
Dental ethics
 
Dental care journal
Dental care journalDental care journal
Dental care journal
 
Circulatory system
Circulatory systemCirculatory system
Circulatory system
 
Urogenital
UrogenitalUrogenital
Urogenital
 
The nervoussystem
The nervoussystemThe nervoussystem
The nervoussystem
 

Último

Artificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and MythsArtificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and Myths
Joaquim Jorge
 

Último (20)

TrustArc Webinar - Unlock the Power of AI-Driven Data Discovery
TrustArc Webinar - Unlock the Power of AI-Driven Data DiscoveryTrustArc Webinar - Unlock the Power of AI-Driven Data Discovery
TrustArc Webinar - Unlock the Power of AI-Driven Data Discovery
 
🐬 The future of MySQL is Postgres 🐘
🐬  The future of MySQL is Postgres   🐘🐬  The future of MySQL is Postgres   🐘
🐬 The future of MySQL is Postgres 🐘
 
Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...Driving Behavioral Change for Information Management through Data-Driven Gree...
Driving Behavioral Change for Information Management through Data-Driven Gree...
 
Finology Group – Insurtech Innovation Award 2024
Finology Group – Insurtech Innovation Award 2024Finology Group – Insurtech Innovation Award 2024
Finology Group – Insurtech Innovation Award 2024
 
The 7 Things I Know About Cyber Security After 25 Years | April 2024
The 7 Things I Know About Cyber Security After 25 Years | April 2024The 7 Things I Know About Cyber Security After 25 Years | April 2024
The 7 Things I Know About Cyber Security After 25 Years | April 2024
 
GenCyber Cyber Security Day Presentation
GenCyber Cyber Security Day PresentationGenCyber Cyber Security Day Presentation
GenCyber Cyber Security Day Presentation
 
Understanding Discord NSFW Servers A Guide for Responsible Users.pdf
Understanding Discord NSFW Servers A Guide for Responsible Users.pdfUnderstanding Discord NSFW Servers A Guide for Responsible Users.pdf
Understanding Discord NSFW Servers A Guide for Responsible Users.pdf
 
TrustArc Webinar - Stay Ahead of US State Data Privacy Law Developments
TrustArc Webinar - Stay Ahead of US State Data Privacy Law DevelopmentsTrustArc Webinar - Stay Ahead of US State Data Privacy Law Developments
TrustArc Webinar - Stay Ahead of US State Data Privacy Law Developments
 
Data Cloud, More than a CDP by Matt Robison
Data Cloud, More than a CDP by Matt RobisonData Cloud, More than a CDP by Matt Robison
Data Cloud, More than a CDP by Matt Robison
 
Handwritten Text Recognition for manuscripts and early printed texts
Handwritten Text Recognition for manuscripts and early printed textsHandwritten Text Recognition for manuscripts and early printed texts
Handwritten Text Recognition for manuscripts and early printed texts
 
Real Time Object Detection Using Open CV
Real Time Object Detection Using Open CVReal Time Object Detection Using Open CV
Real Time Object Detection Using Open CV
 
Axa Assurance Maroc - Insurer Innovation Award 2024
Axa Assurance Maroc - Insurer Innovation Award 2024Axa Assurance Maroc - Insurer Innovation Award 2024
Axa Assurance Maroc - Insurer Innovation Award 2024
 
GenAI Risks & Security Meetup 01052024.pdf
GenAI Risks & Security Meetup 01052024.pdfGenAI Risks & Security Meetup 01052024.pdf
GenAI Risks & Security Meetup 01052024.pdf
 
Powerful Google developer tools for immediate impact! (2023-24 C)
Powerful Google developer tools for immediate impact! (2023-24 C)Powerful Google developer tools for immediate impact! (2023-24 C)
Powerful Google developer tools for immediate impact! (2023-24 C)
 
AWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of TerraformAWS Community Day CPH - Three problems of Terraform
AWS Community Day CPH - Three problems of Terraform
 
Artificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and MythsArtificial Intelligence: Facts and Myths
Artificial Intelligence: Facts and Myths
 
Tech Trends Report 2024 Future Today Institute.pdf
Tech Trends Report 2024 Future Today Institute.pdfTech Trends Report 2024 Future Today Institute.pdf
Tech Trends Report 2024 Future Today Institute.pdf
 
Apidays New York 2024 - The value of a flexible API Management solution for O...
Apidays New York 2024 - The value of a flexible API Management solution for O...Apidays New York 2024 - The value of a flexible API Management solution for O...
Apidays New York 2024 - The value of a flexible API Management solution for O...
 
A Domino Admins Adventures (Engage 2024)
A Domino Admins Adventures (Engage 2024)A Domino Admins Adventures (Engage 2024)
A Domino Admins Adventures (Engage 2024)
 
How to Troubleshoot Apps for the Modern Connected Worker
How to Troubleshoot Apps for the Modern Connected WorkerHow to Troubleshoot Apps for the Modern Connected Worker
How to Troubleshoot Apps for the Modern Connected Worker
 

8389 ch06

  • 1. 6.1 Work Done by a Constant Force ( )sFW θcos= 1180cos 090cos 10cos −= = =   
  • 2. 6.1 Work Done by a Constant Force Example 1 Pulling a Suitcase-on-Wheels Find the work done if the force is 45.0-N, the angle is 50.0 degrees, and the displacement is 75.0 m. ( ) ( )[ ]( ) J2170 m0.750.50cosN0.45cos = ==  sFW θ
  • 3. 6.1 Work Done by a Constant Force ( ) FssFW == 0cos ( ) FssFW −== 180cos
  • 4. 6.1 Work Done by a Constant Force Example 3 Accelerating a Crate The truck is accelerating at a rate of +1.50 m/s2 . The mass of the crate is 120-kg and it does not slip. The magnitude of the displacement is 65 m. What is the total work done on the crate by all of the forces acting on it?
  • 5. 6.1 Work Done by a Constant Force The angle between the displacement and the normal force is 90 degrees. The angle between the displacement and the weight is also 90 degrees. ( ) 090cos == sFW The angle between the displacement and the friction force is 0 degrees. ( )( ) N180sm5.1kg120 2 === mafs ( )[ ]( ) J102.1m650cosN180 4 ×==W
  • 6. 6.2 The Work-Energy Theorem and Kinetic Energy
  • 7. 6.2 The Work-Energy Theorem and Kinetic Energy THE WORK-ENERGY THEOREM When a net external force does work on and object, the kinetic energy of the object changes according to 2 2 12 f2 1 of KEKE omvmvW −=−= DEFINITION OF KINETIC ENERGY The kinetic energy KE of and object with mass m and speed v is given by 2 2 1 KE mv=
  • 8. 6.2 The Work-Energy Theorem and Kinetic Energy Example 4 Deep Space 1 The mass of the space probe is 474-kg and its initial velocity is 275 m/s. If the 56.0-mN force acts on the probe through a displacement of 2.42×109 m, what is its final speed?
  • 9. 6.2 The Work-Energy Theorem and Kinetic Energy 2 2 12 f2 1 W omvmv −= ( )[ ]sF θcosW ∑= ( )[ ] 2 2 12 f2 1 cosF omvmvs −=∑ θ ( ) ( ) ( ) ( )( )2 2 12 f2 192- sm275kg474kg474m1042.20cosN105.60 −=×× v sm805=fv
  • 10. 6.2 The Work-Energy Theorem and Kinetic Energy In this case the net force is kfmgF −=∑  25sin
  • 11. 6.3 Gravitational Potential Energy ( )sFW θcos= ( )fo hhmgW −=gravity
  • 12. 6.3 Gravitational Potential Energy ( )fo hhmgW −=gravity
  • 13. 6.3 Gravitational Potential Energy Example 7 A Gymnast on a Trampoline The gymnast leaves the trampoline at an initial height of 1.20 m and reaches a maximum height of 4.80 m before falling back down. What was the initial speed of the gymnast?
  • 14. 6.3 Gravitational Potential Energy 2 2 12 f2 1 W omvmv −= ( )fo hhmgW −=gravity ( ) 2 2 1 ofo mvhhmg −=− ( )foo hhgv −−= 2 ( )( ) sm40.8m80.4m20.1sm80.92 2 =−−=ov
  • 15. 6.3 Gravitational Potential Energy fo mghmghW −=gravity DEFINITION OF GRAVITATIONAL POTENTIAL ENERGY The gravitational potential energy PE is the energy that an object of mass m has by virtue of its position relative to the surface of the earth. That position is measured by the height h of the object relative to an arbitrary zero level: mgh=PE ( )Jjoule1mN1 =⋅
  • 16. 6.4 Conservative Versus Nonconservative Forces
  • 17. 6.4 Conservative Versus Nonconservative Forces Version 1 A force is conservative when the work it does on a moving object is independent of the path between the object’s initial and final positions. ( )fo hhmgW −=gravity
  • 18. 6.4 Conservative Versus Nonconservative Forces Version 2 A force is conservative when it does no work on an object moving around a closed path, starting and finishing at the same point. fo hh =( )fo hhmgW −=gravity
  • 19. 6.4 Conservative Versus Nonconservative Forces An example of a nonconservative force is the kinetic frictional force. ( ) sfsfsFW kk −===  180coscosθ The work done by the kinetic frictional force is always negative. Thus, it is impossible for the work it does on an object that moves around a closed path to be zero. The concept of potential energy is not defined for a nonconservative force.
  • 20. 6.4 Conservative Versus Nonconservative Forces In normal situations both conservative and nonconservative forces act simultaneously on an object, so the work done by the net external force can be written as ncc WWW += KEKEKE of ∆=−=W PEPEPE fogravity ∆−=−=−== foc mghmghWW
  • 21. 6.4 Conservative Versus Nonconservative Forces ncc WWW += ncW+∆−=∆ PEKE THE WORK-ENERGY THEOREM PEKE ∆+∆=ncW
  • 22. 6.5 The Conservation of Mechanical Energy ( ) ( )ofof PEPEKEKEPEKE −+−=∆+∆=ncW ( ) ( )ooff PEKEPEKE +++=ncW of EE −=ncW If the net work on an object by nonconservative forces is zero, then its energy does not change: of EE =
  • 23. 6.5 The Conservation of Mechanical Energy THE PRINCIPLE OF CONSERVATION OF MECHANICAL ENERGY The total mechanical energy (E = KE + PE) of an object remains constant as the object moves, provided that the net work done by external nononservative forces is zero.
  • 24. 6.5 The Conservation of Mechanical Energy
  • 25. 6.5 The Conservation of Mechanical Energy Example 8 A Daredevil Motorcyclist A motorcyclist is trying to leap across the canyon by driving horizontally off a cliff 38.0 m/s. Ignoring air resistance, find the speed with which the cycle strikes the ground on the other side.
  • 26. 6.5 The Conservation of Mechanical Energy of EE = 2 2 12 2 1 ooff mvmghmvmgh +=+ 2 2 12 2 1 ooff vghvgh +=+ 2 2 12 2 1 ooff vghvgh +=+ ( ) 2 2 ofof vhhgv +−= ( )( ) ( ) sm2.46sm0.38m0.35sm8.92 22 =+=fv
  • 27. 6.6 Nonconservative Forces and the Work-Energy Theorem Example 11 Fireworks Assuming that the nonconservative force generated by the burning propellant does 425 J of work, what is the final speed of the rocket. Ignore air resistance. ( ) ( )2 2 1 2 2 1 oo ffnc mvmgh mvmghW + −+=
  • 28. 6.6 Nonconservative Forces and the Work-Energy Theorem 2 2 12 2 1 ofofnc mvmvmghmghW −+−= ( )( )( ) ( ) 2 2 1 2 kg20.0 m0.29sm80.9kg20.0J425 fv+ = ( ) 2 2 1 fofnc mvhhmgW +−= sm61=fv
  • 29. 6.7 Power DEFINITION OF AVERAGE POWER Average power is the rate at which work is done, and it is obtained by dividing the work by the time required to perform the work. t W P == Time Work (W)wattsjoule =
  • 32. 6.8 Other Forms of Energy and the Conservation of Energy THE PRINCIPLE OF CONSERVATION OF ENERGY Energy can neither be created not destroyed, but can only be converted from one form to another.
  • 33. 6.9 Work Done by a Variable Force ( )sFW θcos= Constant Force Variable Force ( ) ( ) +∆+∆≈ 2211 coscos sFsFW θθ