Pump Sizing & Modeling Piping Systems For Liquids
$49 USD
Learn to size pumps and model piping systems & valves, calculate pressure drop through fittings, valves and components
Click to BuyWhat you'll learn:
- 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.
This course includes:
πΊ6.5 hours on-demand video
π±Access on mobile
πCertificate of completion
πΒ 7 modules
π¬Β 58 bite-size, easy to digest lectures
Β π§ͺΒ 4 example problems + 1 long case study
βΎοΈ Lifetime access
π° 7-day money-back guarantee
Syllabus:
Who is this course for:
Requirements:
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Teaching Style
Video Lecture #3: Incompressible vs Compressible Fluids
Video Lecture #7:Β Bernoulli's Principle: Fluid Total Energy
Video Lesson #17: Darcy Equation, Resistance Coefficient
Video Lectures Breakdown
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Purchase CourseAboutΒ Me
Results-driven process engineer with 7 years in designing, commissioning, and operating pilot plants and R&D scale-up technologies. Provided engineering services to projects in the petrochemical, clean-tech, pulp and paper, and plastics industries. Skilled in performing simulations and designing equipment, creating P&IDs, PFDs, cause and effect matrices, control narratives, mass and energy balances, and conducting hydraulic and ASPEN modeling analysis.
Passionate about teaching chemical engineering and bridging the gap between academia and real life through solving real-life case studies with students.
