Presentation is loading. Please wait.

Presentation is loading. Please wait.

AL Fluid P.44. V~ 1m x 0.4 m x 0.2m ~ 0.01 m 3 Density  = M/V ~ 100kg / 0.01 = 10000 kg m -3.

Published byTamsin Stone Modified over 9 years ago

Similar presentations

Presentation on theme: "AL Fluid P.44. V~ 1m x 0.4 m x 0.2m ~ 0.01 m 3 Density  = M/V ~ 100kg / 0.01 = 10000 kg m -3."— Presentation transcript:

1 AL Fluid P.44

2 V~ 1m x 0.4 m x 0.2m ~ 0.01 m 3 Density  = M/V ~ 100kg / 0.01 = 10000 kg m -3

3 P.44  =M/V, V=  (d/2) 2 L d=  (4M)/(  L) %d=(1/2)[ %M + %  + %L] %d=(1/2)[ 4% + 0% + 2%] = 3%

4 P.47

5

6 P.48 A 1 v 1 = A 2 v 2 By principle of continuity

7 P.48 Assume the fluid is incompressible and viscosity is neglected (P 1 – P 2 ) A 1 v 1 t = (1/2)  tA 1 v 1 (v 2 2 - v 1 2 ) +  gA 1 v 1 t(h 2 – h 1 ) Bernoulli’s Equation (P 1 – P 2 ) = (1/2)  (v 2 2 - v 1 2 ) +  g (h 2 – h 1 ) P 1 + (1/2)  v 1 2 +  gh 1 = P 2 + (1/2)  v 2 2 +  gh 2

8 P.49 P o + (1/2)  (0) 2 +  gh = P o + (1/2)  v 2 +  g(0) gh = (1/2) v 2 v =  2gh v =  2(10)(0.1) = 1.414 (m/s)

9 P.49 Flow rate are the same v large A large = v small A small (1.5) (2.4) = v small (20)(2x10 -2 ) v small = 9 (m/s)

10 P.50 P = P s + (1/2)  v 2 4.7 x 10 4 = 4.3 x 10 4 + (1/2) (1000)v 2 v =2.828 (m/s) dV/dt = A v =(20 x 10 -4 ) (2.828) = 5.656 x 10 -3 (m 3 /s)

11 P.50 P a + (1/2)  v a 2 +  gh a = P b + (1/2)  v b 2 +  gh b A a v a = A b v b dm/dt =  dV b /dt =  A b v b =180 (850)(0.2) v b =180 v b =1.0588 v a =0.2647 P b - P a = (1/2)  (v a 2 -v b 2 ) +  g(h a – h b ) P b - P a = 16553 (Pa) P b - P a = (1/2) (850)(0.2647 2 –1.0588 2 ) + (850)(10)(2)

12 P.50 P u + (1/2)  v u 2 +  gh u = P b + (1/2)  v b 2 +  gh b P u + (1/2)  v u 2 = P b + (1/2)  v b 2 P u - P b = F / A = (1/2)  (v b 2 - v u 2 ) F / A = (1/2)  v b 2 v b =  2F/(  A)

13 P.50 (1/2)  air (v Y 2 - v X 2 ) =  oil g(h X – h Y ) (1/2) (1.2)(v Y 2 ) = (800)(10)(0.01) v Y = 11.547 (m/s)

14 P.50 dV/dt = A dh/dt = 10 -3 – v(0.5 x 10 -3 )  gh = (1/2)  v 2 v 2 =2gh Set dV/dt = 0 => 10 -3 = v(0.5 x 10 -3 ) v = 2 (2) 2 =2(10)h h =0.2 (m)

15 P.50  oil gh 1 +  water gh2 = (1/2)  water v 2 (800)(10)(0.5) + (1000)(10)(3.5) = (1/2) (1000)v 2 v=8.8317 (m/s)

16 P.51

17 P.52

18

19 P.54

20

21

22 P u + (1/2)  v u 2 = P b + (1/2)  v b 2 P b - P u = 1000 = (1/2) (1.2) ((v b +16) 2 – (v b ) 2 ) 2000 = (1.2) ((v b +16)+ (v b ) ) ((v b +16)- (v b ) ) 2000 = (1.2) (2v b +16) (16) v b = 44.08 (m/s)

23 P.54 P a + (1/2)  v a 2 = P b + (1/2)  v b 2 P a - P b = (1/2)  (v b 2 - v a 2 ) A a v a = A b v b (20)(2) = (5)v b v b = 8 P a - P b = (1/2)(800)(8 2 - 2 2 )=24000 P a - P b should be 30000. There is energy loss. Energy loss =PV = (30000 – 24000) (10 x 10 -9 ) = 6 x 10 -5 (J)

24 P.55 (1/2)  (v b 2 - v a 2 ) =  g(h a – h b ) (1/2) (v b 2 - v a 2 ) = g(H) A a v a = A b v b v a = (0.25)v b (1/2) ((4v a ) 2 - v a 2 ) = g(H) (1/2) (15v a 2 ) = (10)(0.2)=2 v a = 0.516 (m/s) v b = 2.066 (m/s)

25 P.55 P d = P e +  water gh 2 = P e + 15800 P f = P b + (1/2)  water v b 2 c d e P c = P f +  water gh 1 = P f + 3000 f P e = P a + (1/2)  water v a 2 P c = P d +  Hg gh 3 = P d + 27200 v a A a = v b A b v a (0.02) = v b (0.08) v a = 4 v b

26 P.55 Total pressure P = static pressure + (1/2)  v 2 1 x 10 4 = 0.6 x 10 4 + (1/2) (1.2 x 10 3 ) v 2 v = 2.582 Volume flow rate = A v = (2.5 x 10 -3 )(2.582) = 6.5 x 10 -3

27 P.56 (1) For a steady and incompressible water flow, the flow rate is constant. Y Y N (2) Flow rate is constant. v X A X = v Y A Y, hence v X = v Y (3) P + (1/2)  v 2 +  gh = constant (1/2) (v Y 2 - v X 2 ) = g(h X – h Y ) Faster speed at point Y, hence h Y should be lower

28 P.56 (1) Terminal vel. related to the air resistance and the gravitational force only. Y N N (2) Spinning ball has pressure difference between two sides, thus a force is formed to change the direction of ball. (3) Due to the fluid is incompressible, not viscous and steady flow, Bernoulli’s equation can explain it.

29 P.56

30

31

Download ppt "AL Fluid P.44. V~ 1m x 0.4 m x 0.2m ~ 0.01 m 3 Density  = M/V ~ 100kg / 0.01 = 10000 kg m -3."

Similar presentations

Chapter 3 – Bernoulli’s Equation

Chapter 3 – Bernoulli’s Equation
How air and water move things

How air and water move things
The Bernoulli Equation - Work and Energy

The Bernoulli Equation - Work and Energy
Continuity of Fluid Flow & Bernoulli’s Principle.

Continuity of Fluid Flow & Bernoulli’s Principle.
Fluid Dynamics AP Physics B.

Fluid Dynamics AP Physics B.
Oct. 29, 2001 Dr. Larry Dennis, FSU Department of Physics1 Physics 2053C – Fall 2001 Chapter 10 Fluids.

Oct. 29, 2001 Dr. Larry Dennis, FSU Department of Physics1 Physics 2053C – Fall 2001 Chapter 10 Fluids.
Fluid in Motion.

Fluid in Motion.
Lecture 3 Bernoulli’s equation. Airplane wing Rear wing Rain barrel Tornado damage.

Lecture 3 Bernoulli’s equation. Airplane wing Rear wing Rain barrel Tornado damage.
Fluid Mechanics –For Civil Engineers is all about SMU Storing– Moving– Using ( Incompressible fluids - water) To design and manage these systems we need.

Fluid Mechanics –For Civil Engineers is all about SMU Storing– Moving– Using ( Incompressible fluids - water) To design and manage these systems we need.
CHAPTER-14 Fluids. Ch 14-2, 3 Fluid Density and Pressure  Fluid: a substance that can flow  Density  of a fluid having a mass m and a volume V is given.

CHAPTER-14 Fluids. Ch 14-2, 3 Fluid Density and Pressure  Fluid: a substance that can flow  Density  of a fluid having a mass m and a volume V is given.
Physics 151: Lecture 30 Today’s Agenda

Physics 151: Lecture 30 Today’s Agenda
Chapter 14 Fluids. Fluids at Rest (Fluid = liquid or gas)

Chapter 14 Fluids. Fluids at Rest (Fluid = liquid or gas)
PHY 231 1 PHYSICS 231 Lecture 22: fluids and viscous flow Remco Zegers Walk-in hour: Tue 4-5 pm Helproom.

PHY PHYSICS 231 Lecture 22: fluids and viscous flow Remco Zegers Walk-in hour: Tue 4-5 pm Helproom.
Fluid Flow. Streamline  Motion studies the paths of objects.  Fluids motion studies many paths at once.  The path of a single atom in the fluid is.

Fluid Flow. Streamline  Motion studies the paths of objects.  Fluids motion studies many paths at once.  The path of a single atom in the fluid is.
Chapter 14 Fluids Key contents Description of fluids

Chapter 14 Fluids Key contents Description of fluids
Unit 3 - FLUID MECHANICS.

Unit 3 - FLUID MECHANICS.
Terms Density Specific Gravity Pressure Gauge Pressure

Terms Density Specific Gravity Pressure Gauge Pressure
What keeps the ball above the stream of air?. Fluids in Motion Viscosity is the resistance of a gas or liquid to flow. Bernoulli’s principle states that.

What keeps the ball above the stream of air?. Fluids in Motion Viscosity is the resistance of a gas or liquid to flow. Bernoulli’s principle states that.
Bernoulli’s Principle. Bernoulli ’ s equation Consider a small time interval δt in which the fluid at X has moved to X’ and that at Y to Y’. At X, work.

Bernoulli’s Principle. Bernoulli ’ s equation Consider a small time interval δt in which the fluid at X has moved to X’ and that at Y to Y’. At X, work.
Types of fluid flow Steady (or unsteady) - velocity at any point is constant. Turbulent flow - the velocity at any particular point changes erratically.

Types of fluid flow Steady (or unsteady) - velocity at any point is constant. Turbulent flow - the velocity at any particular point changes erratically.

Similar presentations

Ads by Google