Chapter 11 fluids vic

43
Engr. Vicente Y. Buenconsejo, Jr., PECE, MT Area Head – ECE & CpE, College of Engineering Colegio San Agustin-Bacolod [email protected] FLUIDS Chapter 11

description

Chapter 11 Fluids by Cutnell and Johnson. Topics include mass density, pressure, pascals principle, archimeds principle and bernoulli's principle

Transcript of Chapter 11 fluids vic

Page 1: Chapter 11 fluids vic

Engr. Vicente Y. Buenconsejo, Jr., PECE, MT

Area Head – ECE & CpE, College of Engineering

Colegio San Agustin-Bacolod

[email protected]

FLUIDSChapter 11

Page 2: Chapter 11 fluids vic

11.1 Mass Density

DEFINITION OF MASS DENSITY

V

m====ρρρρ

SI Unit of Mass Density: kg/m3

Page 3: Chapter 11 fluids vic

Page 322

Page 4: Chapter 11 fluids vic

Example 1 Blood as a Fraction of Body Weight

The body of a man whose weight is 690 N contains

about 5.2x10-3 m3 of blood.

(a)Find the blood’s weight and

(b)express it as a percentage of the body weight.

(((( )))) (((( )))) kg 55mkg1060m1025Vm 333.. ====××××========

−−−−ρρρρ

11.1 Mass Density

Page 5: Chapter 11 fluids vic

(((( ))))(((( )))) N 54sm809kg 55mgW 2 ============ ..(a)

(b) %.% 87100N 690

N 54Percentage ====××××====

11.1 Mass Density

Page 6: Chapter 11 fluids vic

11.2 Pressure

A

FP =

SI Unit of Pressure: 1 N/m2 = 1Pa

Pascal

Page 7: Chapter 11 fluids vic

11.2 Pressure

Example 2 The Force on a Swimmer

Suppose the pressure acting on the backof a swimmer’s hand is 1.2x105 Pa. Thesurface area of the back of the hand is 8.4x10-3m2.

(a)Determine the magnitude of the forcethat acts on it.(b) Discuss the direction of the force.

Page 8: Chapter 11 fluids vic

11.2 Pressure

A

FP =

( )( )N 100.1

m104.8mN102.1

3

2325

×=

××== −PAF

Since the water pushes perpendicularly

against the back of the hand, the force

is directed downward in the drawing.

Page 9: Chapter 11 fluids vic

11.2 Pressure

Atmospheric Pressure at Sea Level: 1.013x105 Pa = 1 atmosphere

Page 10: Chapter 11 fluids vic

11.3 Pressure and Depth in a Static Fluid

012 =−−=∑ mgAPAPFy

mgAPAP += 12

ρVm =

Page 11: Chapter 11 fluids vic

11.3 Pressure and Depth in a Static Fluid

VgAPAP ρ+= 12

AhV =

AhgAPAP ρ+= 12

hgPP ρ+= 12

Page 12: Chapter 11 fluids vic

11.3 Pressure and Depth in a Static Fluid

Conceptual Example 3 The Hoover Dam

Lake Mead is the largest wholly artificial reservoir in the United States. The waterin the reservoir backs up behind the damfor a considerable distance (120 miles).

Suppose that all the water in Lake Meadwere removed except a relatively narrowvertical column.

Would the Hoover Dam still be neededto contain the water, or could a much lessmassive structure do the job?

Page 13: Chapter 11 fluids vic

11.3 Pressure and Depth in a Static Fluid

Example 4 The Swimming Hole

Points A and B are located a distance of 5.50 m beneath the surface of the water. Find the pressure at each of these two locations.

Page 14: Chapter 11 fluids vic

11.3 Pressure and Depth in a Static Fluid

( ) ( )( )( )

Pa 1055.1

m 50.5sm80.9mkg1000.1Pa 1001.1

5

233

pressure catmospheri

5

2

×=

×+×=

4484476

P

ghPP ρ+= 12

Page 15: Chapter 11 fluids vic

11.4 Pressure Gauges

ghPP ρ+= 12

ghPatm ρ=

( )( )( )

atm 1 mm 760m 760.0

sm80.9mkg1013.6

Pa 1001.1233

5

===

×

×==

g

Ph atm

ρ

Page 16: Chapter 11 fluids vic

11.4 Pressure Gauges

Page 17: Chapter 11 fluids vic

11.5 Pascal’s Principle

PASCAL’S PRINCIPLE

Any change in the pressure applied to a completely enclosed fluid is transmitted undiminished to all parts of the fluid and enclosing walls.

Page 18: Chapter 11 fluids vic

11.5 Pascal’s Principle

1

1

2

2

A

F

A

F=

=

1

212

A

AFF

Page 19: Chapter 11 fluids vic

11.5 Pascal’s Principle

Example 7 A Car Lift

The input piston has a radius of 0.0120 mand the output plunger has a radius of 0.150 m.

The combined weight of the car and the plunger is 20500 N. Suppose that the inputpiston has a negligible weight and the bottomsurfaces of the piston and plunger are atthe same level. What is the required inputforce?

Page 20: Chapter 11 fluids vic

11.5 Pascal’s Principle

( )( )( )

N 131m 150.0

m 0120.0N 20500

2

2

2 ==π

πF

=

1

212

A

AFF

Page 21: Chapter 11 fluids vic

Any fluid applies a buoyant force to an object that

is partially or completely immersed in it; the

magnitude of the buoyant force equals the weight

of the fluid that the object displaces:

{ 321

fluid displacedof Weight

fluid

force buoyantofMagnitude

B WF ====

11.6 Archimedes’ Principle

Page 22: Chapter 11 fluids vic

(((( ))))APPAPAPF 1212B −−−−====−−−−====

ghPP 12 ρρρρ====−−−−

ghAFB ρρρρ====

hAV ====

{gVF

fluiddisplaced

of mass

B ρρρρ====

11.6 Archimedes’ Principle

Page 23: Chapter 11 fluids vic

If the object is floating then

the magnitude of the

buoyant force is equal to

the magnitude of its

weight.

11.6 Archimedes’ Principle

Page 24: Chapter 11 fluids vic

Example 9

A Swimming Raft

The raft is made of solid

square pinewood. Determine

whether the raft floats in water and if so, how much of

the raft is beneath the surface.

11.6 Archimedes’ Principle

Page 25: Chapter 11 fluids vic

(((( ))))(((( ))))(((( ))))N 47000

sm809m84mkg1000

gVVgF

233

waterwaterB

====

====

========

..

ρρρρρρρρ

(((( ))))(((( ))))(((( )))) m 84m 300m 04m 04Vraft .... ========

11.6 Archimedes’ Principle

0WF

0Fy

raftB ====−−−−

====∑∑∑∑

VgWW displacedwaterraft ρρρρ========

Page 26: Chapter 11 fluids vic

11.6 Archimedes’ Principle

( )( )( )

N 47000N 26000

sm80.9m8.4mkg550 233

<=

=

== gVgmW raftpineraftraft ρ

The raft floats!

Page 27: Chapter 11 fluids vic

11.6 Archimedes’ Principle

gVwaterwaterρ=N 26000

Braft FW =

If the raft is floating:

( )( )( ) ( )23 sm80.9m 0.4m 0.4mkg1000N 26000 h=

( )( )( )( )m 17.0

sm80.9m 0.4m 0.4mkg1000

N 2600023

==h

Page 28: Chapter 11 fluids vic

11.6 Archimedes’ Principle

Conceptual Example 10 How Much Water is Needed

to Float a Ship?

A ship floating in the ocean is a familiar sight. But is all

that water really necessary? Can an ocean vessel float

in the amount of water than a swimming pool contains?

Page 29: Chapter 11 fluids vic

11.7 Fluids in Motion

In steady flow the velocity of the fluid particles at any point is constant

as time passes.

Unsteady flow exists whenever the velocity of the fluid particles at a

point changes as time passes.

Turbulent flow is an extreme kind of unsteady flow in which the velocity

of the fluid particles at a point change erratically in both magnitude and

direction.

Page 30: Chapter 11 fluids vic

11.7 Fluids in Motion

Fluid flow can be compressible or incompressible. Most liquids are

nearly incompressible.

Fluid flow can be viscous or nonviscous.

An incompressible, nonviscous fluid is called an ideal fluid.

Page 31: Chapter 11 fluids vic

11.8 The Equation of Continuity

The mass of fluid per second that flows through a tube is called

the mass flow rate.

Page 32: Chapter 11 fluids vic

11.8 The Equation of Continuity

222111 vAvA ρρ =

EQUATION OF CONTINUITY

The mass flow rate has the same value at every position along a tube that has a single entry and a single exit for fluid flow.

SI Unit of Mass Flow Rate: kg/s

Page 33: Chapter 11 fluids vic

11.8 The Equation of Continuity

Incompressible fluid: 2211 vAvA =

Volume flow rate Q: AvQ =

Page 34: Chapter 11 fluids vic

11.8 The Equation of Continuity

Example 12 A Garden Hose

A garden hose has an unobstructed openingwith a cross sectional area of 2.85x10-4m2. It fills a bucket with a volume of 8.00x10-3m3

in 30 seconds.

Find the speed of the water that leaves the hosethrough (a) the unobstructed opening and (b) an obstructedopening with half as much area.

Page 35: Chapter 11 fluids vic

11.8 The Equation of Continuity

AvQ =

( ) ( )sm936.0

m102.85

s 30.0m1000.824-

33

×==

A

Qv

(a)

(b) 2211 vAvA =

( )( ) sm87.1sm936.021

2

12 === v

A

Av

Page 36: Chapter 11 fluids vic

11.9 Bernoulli’s Equation

The fluid accelerates toward the

lower pressure regions.According to the pressure-depth

relationship, the pressure is lower

at higher levels, provided the area

of the pipe does not change.

Page 37: Chapter 11 fluids vic

11.9 Bernoulli’s Equation

( ) ( )2

2

221

1

2

121

nc mgymvmgymvW +−+=

( ) ( ) ( ) ( )VPPAsPsFsFW 12 −=∆=∆== ∑

Page 38: Chapter 11 fluids vic

11.9 Bernoulli’s Equation

( ) ( ) ( )2

2

221

1

2

121

12 mgymvmgymvVPP +−+=−

( ) ( ) ( )2

2

221

1

2

121

12 gyvgyvPP ρρρρ +−+=−

BERNOULLI’S EQUATION

In steady flow of a nonviscous, incompressible fluid, the pressure, the

fluid speed, and the elevation at two points are related by:

2

2

221

21

2

121

1 gyvPgyvP ρρρρ ++=++

Page 39: Chapter 11 fluids vic

11.10 Applications of Bernoulli’s Equation

Conceptual Example 14 Tarpaulins and Bernoulli’s Equation

When the truck is stationary, the tarpaulin lies flat, but it bulges outwardwhen the truck is speeding downthe highway.

Account for this behavior.

Page 40: Chapter 11 fluids vic

11.10 Applications of Bernoulli’s Equation

Page 41: Chapter 11 fluids vic

11.10 Applications of Bernoulli’s Equation

Page 42: Chapter 11 fluids vic

11.10 Applications of Bernoulli’s Equation

Page 43: Chapter 11 fluids vic

11.11 Viscous Flow

Flow of an ideal fluid.

Flow of a viscous fluid.