Mô tả

Chapter 1: Introduction

1. Differentiate between incompressible and compressible fluids using the continuity equation.

2. Define and understand general concepts in fluid dynamics, such as viscosity (dynamic and kinematic), Reynolds number (laminar and turbulent flow), and volumetric flow rate.


Chapter 2: Energy Balance

3. Derive and apply the Bernoulli equation to develop an energy balance for sizing pumps.

4. Understand the pump equation and its relation to the Bernoulli equation.

5. Apply the pump equation to an illustrative example.

6. Create system curves for a piping system.


Chapter 3: Friction Headloss

7. Understand hydraulic resistances in pipes.

8. Define the Darcy equation and its application in calculating frictional headloss.

9. Define the resistance coefficient (K) and calculate it using different methods.

10. Define the friction factor (f) and calculate it using numerical methods via the Poiseuille equation, Colebrook equation, Swamee Jain equation, or the Moody chart.

11. Understand the effect of pipe age on friction factor.

12. Define flow coefficient (Cv) and its application in calculating pressure drop.

13. Adjust Cv for liquids with different viscosities.

14. Find the capacity flow rate at different pressure drops for a given Cv.

15. Convert flow coefficient (Cv) to a resistant coefficient (K).

16. Understand the use of orifice plates and use the orifice design equation to size orifice plates.

17. Apply the orifice design equation in an illustrative example.


Chapter 4: Pumps

18. Identify and understand the basic components of a pump.

19. Calculate pumps Hydraulic Horsepower (HHP), Brake Horsepower (BHP), Pump Efficiency, Motor Power (MP), and Motor Efficiency through an example.

20. Understand pump curves (head vs flow rate) for different impeller speeds (or diameters).

21. Understand pump efficiency curves.

22. Understand Pumps Net Positive Suction Head Required (NPSHr) Curve.

23. Understand Pump Power Consumption Curve.


Chapter 5: System Modeling and Pump Sizing Roadmap

24. Model resistance in series for a piping system.

25. Develop a roadmap for proper selection of pumps.


Chapter 6: Case Study 1

26. Apply the pump sizing roadmap using Macros in Excel to select an appropriate pump for a real-world case study.


Chapter 7: Control Valves

27. Identify different types of control valves and their applications.

28. Understand the inherent valve curve and its relation to flow rate and pressure drop.

29. Define valve authority and its significance in valve selection.

30. Size valves appropriately for a given system.

Bạn sẽ học được gì

Modeling of piping systems, components, fittings and valves for incompressible fluid.

Understand the Darcy equation, resistance coefficient (K), friction factor (f), flow coefficient (Cv), and orifice design.

Identify and understand the basic components of a pump and calculate pumps Hydraulic Horsepower , Brake Horsepower , Pump Efficiency, Motor Power & Motor Eff.

Understand pump curves for different impeller speeds (or diameters), pump efficiency curves, pump NPSHr curves and Power consumption curves.

Develop a roadmap for proper selection of pumps via excel macros and model resistance in series for a piping system.

Understand inherent valve curves, different types of control valves, valve authority, and size valves appropriately for a given system.

Yêu cầu

  • While having prior engineering or field knowledge is desirable, it is not necessary for this course. The course is designed to explain all concepts in a clear and understandable language, allowing students to develop their knowledge from the basics.
  • No prior Excel macros knowledge required. Everything will be taught in this course.

Nội dung khoá học

7 sections

Introduction

6 lectures
About This Course
02:11
Teaching Style
00:22
Incompressible vs Compressible Fluids
14:36
General Definitions: Viscosity (Dynamic vs Kinematic)
02:55
General Definition: Reynolds Number (Laminar vs Turbulent Flow)
07:01
General Definition: Flowrate
02:45

Energy Balance

10 lectures
Bernoulli's Principle: Fluid Total Energy
03:52
Bernoulli's Principle: Energy Terms &Units
05:35
Pipe Energy Balance Derivation Part 1
05:55
Pipe Energy Balance Derivation Part 2
09:10
Pipe Energy Balance Units
04:44
Pump Energy Balance
09:13
Example (Problem Statement)
07:43
Example (Solution Part 1)
11:26
Example (Solution Part 2)
11:27
Example (Solution Part 3) - System Curves
05:41

Friction Head Loss

11 lectures
Darcy Equation, Resistance Coefficient
06:29
Resistance Coefficient Examples
03:46
Friction Factor
04:12
Moody Chart
03:42
Effect of Pipe Age on Friction Factor
02:36
Flow Coefficient Cv
03:42
Flow Coefficient Cv - viscosity and specific gravity correction
04:38
Flow Coefficient Cv - capacity flowrate at different pressure drops
02:04
Flow Coefficient Cv - Conversion to Resistance Coefficient K
01:07
Orirfice Plate
05:55
Orifice Plate Example
09:05

Pumps

11 lectures
Pump Intro
02:13
Pump Parts
13:23
Pump Power Losses
03:01
Pump HHP, BHP,MP Efficiency
06:52
Pump HHP, BHP,MP Efficiency Example
04:39
Pump Curve
03:15
Pump Performance Curves
09:01
Pump Performance Curves Example
05:26
Pump VFDs
02:48
NPSH
06:51
Affinity Laws
06:09

System Modeling and Pump Sizing Roadmap

2 lectures
Resistances in Series
08:53
Pump Sizing Road Map
06:14

Case Study I

10 lectures
Case Study 1 - Problem Statement
06:58
Case Study 1 - Solution Road Map
04:25
Case Study 1 - Solution (Part 1)
04:29
Case Study 1 - Solution (Part 2)
11:17
Case Study 1 - Solution (Part 3)
13:46
Case Study 1 - Solution (Part 4)
35:20
Case Study 1 - Solution (Part 5)
04:47
Case Study 1 - Solution (Part 6)
06:53
Case Study 1 - Solution (Part 7)
16:00
Case Study 1 - Solution (Part 8)
18:25

Control Valves

6 lectures
Valve Basic Parts
08:50
Valve Classification
03:18
Control Valves
04:43
Inherit Valve Curve
05:43
Inherit Valve Curve Example
01:53
Valve Authority
04:06

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