Fluid Mechanics, 8 Ed
Fluid Mechanics, 8 Ed
8th Edition
ISBN: 9789385965494
Author: Frank White
Publisher: MCGRAW-HILL HIGHER EDUCATION
Question
Book Icon
Chapter 11, Problem 11.95P
To determine

(a)

To prove:

The maximum power, hf=H3 for an impulse turbine.

Expert Solution
Check Mark

Answer to Problem 11.95P

The maximum power generated by an impulse turbine is hf=H3.

Explanation of Solution

Given:

Referencing the below diagram:

Fluid Mechanics, 8 Ed, Chapter 11, Problem 11.95P , additional homework tip  1

The equation given below is also taking into consideration:

Fluid Mechanics, 8 Ed, Chapter 11, Problem 11.95P , additional homework tip  2

Concept Used:

The maximum power for an impulse turbine can be obtained when, u=Vj2

Where,

Vj = jet velocity and u = vane velocity

Calculation:

Now, for determining maximum power:

P=ρQu(Vju)(1cosβ)P=ρQVj2(VjVj2)(1cosβ)P=ρQVj24(1cosβ)

Where,

ρ

  • = density of fluid
  • Q = flow rate of turbine
  • β
  • = exit angle
  • Jet area has an equation of,

    Aj=QVj

So the maximum power of turbine is reduced to,

P=ρA4(1cosβ)Vj3.....(1)P=CVj2Vj where C = ρA4(1cosβ) is constant

For the reservoir and the outlet jet, applying steady flow energy equation:

H=fLDVpipe22g+Vj22g....(2)Vj2=2gHfLVpipe2D

Where:

  • H = head of turbine
  • f = friction factor
  • L = length of pipe
  • D = diameter of pipe
  • Vpipe
  • = velocity of pipe
  • Now, using continuity equation:

AjVj=ApipeVpipeπDj24Vj=πD24VpipeVpipe=Dj2D2Vj...(3)

In equation (2), let us put the value of Vpipe=Dj2D2Vj from equation (3).

Vj2=2gHfLDj4D5Vj2

Lastly, putting the value of Vj2=2gHfLDj4D5Vj2 in equation (1),

P=C[2gHVjfLDj4D5Vj3 ]

To determine maximum power, below is the condition:

dPdVj=0Cd[2gHVjfL D j 4 D 5 Vj3 ]dVj=02gH3fLDj4D5Vj2=02gH3fLDVpipe2=0...(4)

But the friction head loss of pipe:

hf=fLDVpipe22g

Therefore, the maximum power of an impulse turbine is hf=H3.

Conclusion:

The maximum power generated by an impulse turbine is hf=H3.

To determine

(b)

To prove:

The optimum velocity is Vj=43gH for given impulse turbine.

Expert Solution
Check Mark

Answer to Problem 11.95P

The optimum velocity of an impulse turbine is Vj=43gH for given impulse turbine.

Explanation of Solution

Given:

Referencing the below diagram:

Fluid Mechanics, 8 Ed, Chapter 11, Problem 11.95P , additional homework tip  3

The equation given below is also taking into consideration:

Fluid Mechanics, 8 Ed, Chapter 11, Problem 11.95P , additional homework tip  4

Concept Used:

Jet area has an equation of,

Aj=QVj

So, the maximum power of turbine is reduced to:

P=ρA4(1cosβ)Vj3.....(1)P=CVj2Vj where C = ρA4(1cosβ) is constant

For the reservoir and the outlet jet, applying steady flow energy equation.

H=fLDVpipe22g+Vj22g....(2)Vj2=2gHfLVpipe2D

Where,

  • H = head of turbine
  • f = friction factor
  • L = length of pipe
  • D = diameter of pipe
  • Vpipe
  • = velocity of pipe
  • Calculation:

For getting optimum velocity, we have equation (2):

Vj2=2gHfLVpipe2DVj=2gH2ghfVj=2gH2gH3Vj=43gH

The optimum velocity of an impulse turbine is

Vj=43gH proved.

Conclusion:

The optimum velocity of an impulse turbine is Vj=43gH for given impulse turbine.

To determine

(c)

The best nozzle diameter is Dj=[D52fL]14 should be proved for given impulse turbine.

Expert Solution
Check Mark

Answer to Problem 11.95P

The best nozzle diameter is Dj=[D52fL]14 for given impulse turbine is proved.

Explanation of Solution

Given:

Referencing the below diagram:

Fluid Mechanics, 8 Ed, Chapter 11, Problem 11.95P , additional homework tip  5

The equation given below is also taking into consideration:

Fluid Mechanics, 8 Ed, Chapter 11, Problem 11.95P , additional homework tip  6

Concept Used:

The continuity equation:

AjVj=ApipeVpipeπDj24Vj=πD24VpipeVpipe=Dj2D2Vj...(3)

The friction head loss of pipe:

hf=fLDVpipe22g

hf=H3

Calculation:

For determining nozzle diameter,

hf=fLDVpipe22gH3=fLDVpipe22gVpipe2=2gDH3fL...(5)

We already have equation (3) with value of Vpipe=Dj2D2Vj...(3)

2gDH3fL=Dj2D2Vj22gDH3fL=Dj2D243gH where(Vj= 4 3gH)Dj=[ D 52fL]14

Conclusion:

The best nozzle diameter is

Dj=[D52fL]14 for given impulse turbine is proved.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
2. Consider the rod with an elliptical that strain 4 a Cross secton considered in class, Integrate the was displacement displacements, relations to obtain the
Please answer Oxygen at 300 kPa and 90°C flowing at an average velocity of 3 m/s is expanded in an adiabatic nozzle. What is the maximum velocity of the oxygen at the outlet of this nozzle when the outlet pressure is 60 kPa? Use the table containing the ideal gas specific heats of various common gases.   The maximum velocity of the oxygen at the outlet of this nozzle is 532.5  Numeric ResponseEdit Unavailable. 532.5 incorrect.m/s.
A container filled with 70 kg of liquid water at 95°C is placed in a 90-m3 room that is initially at 12°C. Thermal equilibrium is established after a while as a result of heat transfer between the water and the air in the room. Assume the room is at the sea level, well sealed, and heavily insulated. NOTE: This is a multi-part question. Once an answer is submitted, you will be unable to return to this part.         Determine the amount of heat transfer between the water and the air in the room.    The amount of heat transfer between the water and the air in the room is  kJ.

Chapter 11 Solutions

Fluid Mechanics, 8 Ed

Ch. 11 - Prob. 11.11PCh. 11 - Prob. 11.12PCh. 11 - Pl 1.13 A 3.5 hp pump delivers 1140 lbf of...Ch. 11 - Prob. 11.14PCh. 11 - Prob. 11.15PCh. 11 - Prob. 11.16PCh. 11 - Prob. 11.17PCh. 11 - Prob. 11.18PCh. 11 - Pl 1.19 A centrifugal pump has r2 = 9 in, b2 = 2...Ch. 11 - Prob. 11.20PCh. 11 - Prob. 11.21PCh. 11 - Prob. 11.22PCh. 11 - P11.23 When pumping water, (a) at what speed...Ch. 11 - Prob. 11.24PCh. 11 - Prob. 11.25PCh. 11 - Prob. 11.26PCh. 11 - Prob. 11.27PCh. 11 - Prob. 11.28PCh. 11 - Tests by the Byron Jackson Co. of a...Ch. 11 - A pump, geometrically similar to the 12.95-in...Ch. 11 - Prob. 11.31PCh. 11 - Prob. 11.32PCh. 11 - Prob. 11.33PCh. 11 - You are asked to consider a pump geometrically...Ch. 11 - Prob. 11.35PCh. 11 - Prob. 11.36PCh. 11 - Prob. 11.37PCh. 11 - Prob. 11.38PCh. 11 - Prob. 11.39PCh. 11 - Prob. 11.40PCh. 11 - Prob. 11.41PCh. 11 - Prob. 11.42PCh. 11 - The 28-in-diameter pump in Fig. 11.7a at 1170...Ch. 11 - Prob. 11.44PCh. 11 - Prob. 11.45PCh. 11 - Prob. 11.46PCh. 11 - PI 1.47 A pump must be designed to deliver 6 m /s...Ch. 11 - Pl 1.48 Using the data for the pump in Prob. Pl...Ch. 11 - Prob. 11.49PCh. 11 - Prob. 11.50PCh. 11 - Prob. 11.51PCh. 11 - Prob. 11.52PCh. 11 - Prob. 11.53PCh. 11 - Prob. 11.54PCh. 11 - Prob. 11.55PCh. 11 - Prob. 11.56PCh. 11 - Prob. 11.57PCh. 11 - Prob. 11.58PCh. 11 - Suppose it is desired to deliver 700 ftVmin of...Ch. 11 - Prob. 11.60PCh. 11 - Prob. 11.61PCh. 11 - Prob. 11.62PCh. 11 - Pl 1.63 A good curve-fit to the head vs. flow for...Ch. 11 - Prob. 11.64PCh. 11 - *P11.65 An 11.5-in-diameter centrifugal pump,...Ch. 11 - Pl 1.66 It is proposed to run the pump of Prob. Pl...Ch. 11 - Prob. 11.67PCh. 11 - Prob. 11.68PCh. 11 - The pump of Prob. P1138, running at 3500 r/min, is...Ch. 11 - Prob. 11.70PCh. 11 - Prob. 11.71PCh. 11 - Prob. 11.72PCh. 11 - Prob. 11.73PCh. 11 - Prob. 11.74PCh. 11 - Prob. 11.75PCh. 11 - Prob. 11.76PCh. 11 - Prob. 11.77PCh. 11 - Prob. 11.78PCh. 11 - Prob. 11.79PCh. 11 - Determine if either (a) the smallest or (b) the...Ch. 11 - Prob. 11.81PCh. 11 - Prob. 11.82PCh. 11 - Prob. 11.83PCh. 11 - Prob. 11.84PCh. 11 - Prob. 11.85PCh. 11 - Prob. 11.86PCh. 11 - Prob. 11.87PCh. 11 - Prob. 11.88PCh. 11 - A Pelton wheel of 12-ft pitch diameter operates...Ch. 11 - Prob. 11.90PCh. 11 - Prob. 11.91PCh. 11 - Prob. 11.92PCh. 11 - Prob. 11.93PCh. 11 - Prob. 11.94PCh. 11 - Prob. 11.95PCh. 11 - Prob. 11.96PCh. 11 - Prob. 11.97PCh. 11 - Prob. 11.98PCh. 11 - Prob. 11.99PCh. 11 - Prob. 11.100PCh. 11 - Prob. 11.101PCh. 11 - Prob. 11.102PCh. 11 - Prob. 11.103PCh. 11 - Prob. 11.104PCh. 11 - Prob. 11.105PCh. 11 - Prob. 11.106PCh. 11 - Prob. 11.107PCh. 11 - Prob. 11.108PCh. 11 - Prob. 11.1WPCh. 11 - Prob. 11.2WPCh. 11 - Prob. 11.3WPCh. 11 - Prob. 11.4WPCh. 11 - Prob. 11.5WPCh. 11 - Consider a dimensionless pump performance chart...Ch. 11 - Prob. 11.7WPCh. 11 - Prob. 11.8WPCh. 11 - Prob. 11.9WPCh. 11 - Prob. 11.10WPCh. 11 - Prob. 11.1CPCh. 11 - Prob. 11.2CPCh. 11 - Prob. 11.3CPCh. 11 - Prob. 11.4CPCh. 11 - Prob. 11.5CPCh. 11 - Prob. 11.6CPCh. 11 - Prob. 11.7CPCh. 11 - Prob. 11.8CPCh. 11 - Prob. 11.1DP
Knowledge Booster
Background pattern image
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Elements Of Electromagnetics
Mechanical Engineering
ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Oxford University Press
Text book image
Mechanics of Materials (10th Edition)
Mechanical Engineering
ISBN:9780134319650
Author:Russell C. Hibbeler
Publisher:PEARSON
Text book image
Thermodynamics: An Engineering Approach
Mechanical Engineering
ISBN:9781259822674
Author:Yunus A. Cengel Dr., Michael A. Boles
Publisher:McGraw-Hill Education
Text book image
Control Systems Engineering
Mechanical Engineering
ISBN:9781118170519
Author:Norman S. Nise
Publisher:WILEY
Text book image
Mechanics of Materials (MindTap Course List)
Mechanical Engineering
ISBN:9781337093347
Author:Barry J. Goodno, James M. Gere
Publisher:Cengage Learning
Text book image
Engineering Mechanics: Statics
Mechanical Engineering
ISBN:9781118807330
Author:James L. Meriam, L. G. Kraige, J. N. Bolton
Publisher:WILEY