mechanical advantage and the inclined plane: more practice

25
Mechanical Advantage and the Inclined Plane: More Practice

Upload: cathy

Post on 05-Jan-2016

39 views

Category:

Documents


0 download

DESCRIPTION

Mechanical Advantage and the Inclined Plane: More Practice. Mechanical Advantage and the Inclined Plane: More Practice. Mechanical Advantage and the Inclined Plane: More Practice. Mechanical Advantage and the Inclined Plane: More Practice. - PowerPoint PPT Presentation

TRANSCRIPT

Page 1: Mechanical Advantage and the Inclined Plane: More Practice

Mechanical Advantage and the Inclined Plane: More Practice

Page 2: Mechanical Advantage and the Inclined Plane: More Practice

Mechanical Advantage and the Inclined Plane: More Practice

Page 3: Mechanical Advantage and the Inclined Plane: More Practice

Mechanical Advantage and the Inclined Plane: More Practice

Page 4: Mechanical Advantage and the Inclined Plane: More Practice

Mechanical Advantage and the Inclined Plane: More Practice

Page 5: Mechanical Advantage and the Inclined Plane: More Practice

Mechanical Advantage and the Inclined Plane: More Practice

Page 6: Mechanical Advantage and the Inclined Plane: More Practice

Levers and Torque: Student Learning GoalThe student will be able to solve problems

involving torque, force, load-arm length, and effort-arm length as they relate to levers (C2.5).

Page 7: Mechanical Advantage and the Inclined Plane: More Practice

Levers and Torque

SPH4C

Page 8: Mechanical Advantage and the Inclined Plane: More Practice

The Lever

A lever is a rigid bar that can rotate freely around a support called a fulcrum.

Page 9: Mechanical Advantage and the Inclined Plane: More Practice

Torque

When a force causes a rigid body to rotate, we say that a torque has been applied.

Torque is defined as the turning effect.

Page 10: Mechanical Advantage and the Inclined Plane: More Practice

Torque

Torque (T) increases as force (F) increases and also increases as distance (d) from the fulcrum increases:

Page 11: Mechanical Advantage and the Inclined Plane: More Practice

Torque

Torque (T) increases as force (F) increases and also increases as distance (d) from the fulcrum increases:

FdT

Page 12: Mechanical Advantage and the Inclined Plane: More Practice

Torque

Torque (T) increases as force (F) increases and also increases as distance (d) from the fulcrum increases:

Torque has units of N m.

FdT

Page 13: Mechanical Advantage and the Inclined Plane: More Practice

Torque: Example

A force of 84 N is used to turn a wrench of length 25 cm. What was the torque on the wrench?

Page 14: Mechanical Advantage and the Inclined Plane: More Practice

Torque: Example

A force of 84 N is used to turn a wrench of length 25 cm. What was the torque on the wrench?

Page 15: Mechanical Advantage and the Inclined Plane: More Practice

Torque: Example

A force of 84 N is used to turn a wrench of length 25 cm. What was the torque on the wrench?

?:

25.025

84:

TUnknown

mcmd

NFGivens

Page 16: Mechanical Advantage and the Inclined Plane: More Practice

Torque: Example

A force of 84 N is used to turn a wrench of length 25 cm. What was the torque on the wrench?

?:

25.025

84:

TUnknown

mcmd

NFGivens

Page 17: Mechanical Advantage and the Inclined Plane: More Practice

Torque: Example

A force of 84 N is used to turn a wrench of length 25 cm. What was the torque on the wrench?

?:

25.025

84:

TUnknown

mcmd

NFGivens

mNmNTSolve

FdTSelect

21)25.0)(84(:

:

Page 18: Mechanical Advantage and the Inclined Plane: More Practice

Load torque and Effort torqueFor any lever there are two torques: the load

torque (TL) and the effort torque (TE):

EEE

LLL

dFT

dFT

dL and dE are referred to as the load arm and effort arm, respectively.

Page 19: Mechanical Advantage and the Inclined Plane: More Practice

Static Equilibrium

If the load torque equals the effort torque, the lever is in static equilibrium.

Page 20: Mechanical Advantage and the Inclined Plane: More Practice

Static Equilibrium

If the load torque equals the effort torque, the lever is in static equilibrium.

EL TT

EELL dFdF

Page 21: Mechanical Advantage and the Inclined Plane: More Practice

Static Equilibrium: ExampleWhat force does your bicep need to exert to hold a

weight of 134 N (30 lbs)?

Remember that the human forearm is a lever.

Page 22: Mechanical Advantage and the Inclined Plane: More Practice

Static Equilibrium: ExampleWhat force does your bicep need to exert to hold a

weight of 134 N (30 lbs)?We will ignore the weight of the forearm itself.

?

:

05.05

3.030

134

:

E

E

L

L

F

Unknown

mcmd

mcmd

NF

Givens

Page 23: Mechanical Advantage and the Inclined Plane: More Practice

Static Equilibrium: ExampleWhat force does your bicep need to exert to hold a

weight of 134 N (30 lbs)?

?

:

05.05

3.030

134

:

E

E

L

L

F

Unknown

mcmd

mcmd

NF

Givens

Page 24: Mechanical Advantage and the Inclined Plane: More Practice

Static Equilibrium: ExampleWhat force does your bicep need to exert to hold a

weight of 134 N (30 lbs)?

?

:

05.05

3.030

134

:

E

E

L

L

F

Unknown

mcmd

mcmd

NF

Givens

N

m

mNFSolve

Fd

dFdFdFSelect

E

EE

LLEELL

80405.0

3.0134:

:

Or approximately 800 N

Page 25: Mechanical Advantage and the Inclined Plane: More Practice

More Practice

Levers and Torque Lab Activity