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Two-Phase Pipe Hydraulics and Pipe Sizing · LearnSpace
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Two-Phase Pipe Hydraulics and Pipe Sizing

Курс от L&T EduTech
Средний≈ 11.9 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This particular course entitled “Two-Phase Pipe Hydraulics & Pipe Sizing” under the specialization entitled “Design of Industrial Piping Systems” is mainly aimed at predicting the two-phase total static pressure drop in a given piping system when both gas and liquid flow through it concurrently. Pressure drops including heat transfer coefficients depend on two-phase flow regimes since two-phase patterns and local internal structure are different for different flow regimes. Therefore, the formation of various two-phase flow regimes in horizontal and vertical pipes is to be known to the designer, and at the same time, the influence of bend on the formation of two-phase flow regimes in upstream and downstream pipes should also be known. The presence of a bend is inevitable in the piping systems of a plant and its presence restricts the formation of certain two-phase flow regimes commonly found in individual horizontal and vertical pipes for the given flow rates of gas and liquid and pipe diameter. Surprisingly, bend allows the formation of slug flow regimes in both horizontal and vertical pipe runs of a piping system. This is a nerve-wracking issue for the designer since the slug flow regime harms the piping system and in some situations, the slug flow regime becomes the main cause of the failure of the piping system. Therefore, the designer should be cautious during the design of two-phase piping systems and avoid the slug flow regime formation at any cost while designing the two-phase piping system. Looking into the severity of two-phase flow on the piping system integrity, the present course focuses on the formation of two-phase flow regimes in horizontal and vertical pipes and their identification based on gas and liquid flow rates using two-phase flow pattern maps. Next, the course focuses on the effect of bends on two-phase flow regime formation in both upstream and downstream pipelines as piping systems are made of connecting straight pipe runs using bends. From this discussion, the learner gets a fair idea about the formation of a certain type of two-phase flow regime, when it happens, and why it happens. Next, the two-phase terminologies are covered as these are frequently used in two-phase piping system design. The relationship among them is equally important in the design and hence, covered in the present course. These terminologies and their relations assist the learner in understanding, analyzing, and applying the various two-phase models to design the two-phase piping system. Certain idealizations are to be made while dealing with the gas and liquid two-phase flow through the pipe. Single-phase is well-established, not two-phase. To take advantage of suggested single-phase correlations by the investigators, the two-phase models are developed by assuming liquid alone flows through the pipe with the two-phase mixture flow rate. This assumption introduces the error as it does not appeal the reality. Therefore, while developing the models a term called two-phase multiplier is introduced and made as a multiplication factor to the single-phase pressure drop, to predict the two-phase frictional pressure drop within the acceptable range. The developed models are popularly known as the Homogeneous Equilibrium Model, Separated Flow Model, and Drift Flux Model, and the present course is focused on these models. Various two-phase multipliers, methods, techniques, and void fraction correlations are covered in detail in this course. Finally, in this course, practical two-phase problems are considered to demonstrate the prediction of total static pressure drop which is a sum of two-phase frictional, accelerational, and gravitational pressure drops using the two-phase well-known models, methods, techniques, two-phase multipliers, and void fraction correlations and how closely they predict so that learner cannot face any hiccup while he/she designing the two-phase piping systems including single path and multi-path piping systems known as piping networks.

Навыки, которые вы освоите

HydraulicsEngineering CalculationsMathematical ModelingChemical EngineeringEngineering AnalysisEstimationMechanical EngineeringProcess Engineering

Программа курса

4 модулей · 76 учебных материалов

01Two-Phase Flow Regimes and Notations19 материалов

Welcome to the Course

About the SpecializationВидеоCourse IntroductionВидеоCourse GlossaryЧтение

Two-Phase: Flow Regimes - Straight Pipe Run

Two-Phase Flow: Horizontal Pipe (Liquid + Gas) Видео

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L&T Edutech

Two-Phase Pipe Hydraulics and Pipe Sizing
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Обучение на Coursera

≈ 11.9 ч

4 модулей

Язык: Английский

Субтитры: Ория

Часть программы вашего университета
Two-Phase Flow: Vertical Pipe (Liquid + Gas) Видео
Two-Phase Flow: Vertical Downward Flow (Liquid + Gas) - Part IВидео
Two-Phase Flow: Vertical Downward Flow (Liquid + Gas) - Part IIВидео

Two-Phase: Flow Regimes - Pipe Runs with Bends

Two-Phase Flow: Horizontal to Vertical Downward ВидеоTwo-Phase Flow: Horizontal to Vertical Upward ВидеоTwo-Phase Flow: Vertical to Horizontal Upward Видео

Two-Phase: Notations

Two-Phase Parameters / Terminology Part - IВидеоTwo-Phase Parameters / Terminology Part - IIВидеоRelationships for Two-Phase Parameters - Part IВидеоRelationships for Two-Phase Parameters - Part IIВидеоFlow Pattern Maps - Part IВидеоFlow Pattern Maps - Part IIВидеоFlow Pattern Maps - Part IIIВидеоProblem Solving on Flow RegimesВидео

Assessment on Two-Phase Flow Regimes and Notations

Assessment on Two-Phase Flow Regimes and NotationsЗадание
02Two-Phase Flow: Homogeneous Model17 материалов

Governing Equations

Basic Equation of 2-Phase Flow: Conservation of Mass - Part IВидеоBasic Equation of 2-Phase Flow: Conservation of Mass - Part IIВидеоBasic Equation of 2-Phase Flow: Conservation of Momentum - Part IВидеоBasic Equation of 2-Phase Flow: Conservation of Momentum - Part IIВидеоBasic Equation of 2-Phase Flow: Conservation of Energy Видео

Two-Phase: Homogeneous Equilibrium Model

Homogeneous Model - 1 - Part IВидеоHomogeneous Model - 1 - Part IIВидеоHomogeneous Model - 2 - Part IВидеоHomogeneous Model - 2 - Part IIВидеоTwo-Phase Friction FactorВидеоEvaluation of Pressure Drop - Part I ВидеоEvaluation of Pressure Drop - Part IIВидеоApplication of Theory to Experimental DataВидеоProblem Solving - Components of Total Static Pressure Drop in single & Two-phase flow - Part IВидеоProblem Solving - Components of Total Static Pressure Drop in single & Two-phase flow - Part IIВидеоProblem Solving - Components of Total Static Pressure Drop in single & Two-phase flow - Part IIIВидео

Assessment on Two-Phase Flow: Homogeneous Model

Assessment on Two-Phase Flow: Homogeneous ModelЗадание
03Two-Phase Flow: Separated & Drift Flux Models21 материалов

Two-Phase: Separated Flow Model

Separated Flow Model, Two-Phase Multiplier - Part IВидеоSeparated Flow Model, Two-Phase Multiplier - Part IIВидеоLockhart-Martinelli, Martinelli-Nelson and Thom Correlations - Part IВидеоLockhart-Martinelli, Martinelli-Nelson and Thom Correlations - Part IIВидеоBarcozy, Chisholm's and Friedel Correlations - Part IВидеоBarcozy, Chisholm's and Friedel Correlations - Part IIВидеоProblem Solving on Two-phase Graphical Correlations - Part IВидеоProblem Solving on Two-phase Graphical Correlations - Part IIВидеоProblem Solving on Pressure Drop by using Martinelli- Nelson and Thom Correlations - Part IВидеоProblem Solving on Pressure Drop by using Martinelli- Nelson and Thom Correlations - Part IIВидеоProblem Solving on Pressure Drop by using Martinelli- Nelson and Thom Correlations - Part IIIВидео

Two-Phase: Drift Flux Model

Drift Flux Model ВидеоSlip Ratio CorrelationsВидеоProblem Solving on Void Fraction and Gravitational Pressure Drop by Slip Ratio Correlations - Part IВидеоProblem Solving on Void Fraction and Gravitational Pressure Drop by Slip Ratio Correlations - Part IIВидеоKαH CorrelationsВидеоProblem Solving on Void Fraction and Gravitational Pressure Drop by KαH CorrelationsВидео

Assessment on Two-Phase Flow: Separated & Drift Flux Models

Assessment on Two-Phase Flow: Separated & Drift Flux ModelsЗадание
04Two-Phase Pressure Drop through Piping Components & Networks19 материалов

Two-Phase: Pressure Drop in Piping Components

Pressure Drop due to Sudden Enlargement - Part IВидеоPressure Drop due to Sudden Enlargement - Part IIВидеоProblem Solving on Pressure Drop due to Sudden Enlargement - Part IВидеоProblem Solving on Pressure Drop due to Sudden Enlargement - Part IIВидеоPressure Drop due to Sudden Contraction ВидеоProblem Solving on Pressure Drop due to Sudden ContractionВидеоPressure Drop through a Sharp Edged Orifice - Part IВидеоPressure Drop through a Sharp Edged Orifice - Part IIВидеоProblem Solving on Total Static Pressure Drop Through a Sharp Edged OrificeВидеоPressure Drop through a Nozzle, Venturi, Bend, Fittings ВидеоProblem Solving on Total Static Pressure Drop Through a Nozzle, Venturi, Bend, Fittings - Part I ВидеоProblem Solving on Total Static Pressure Drop Through a Nozzle, Venturi, Bend, Fittings - Part IIВидео

Two-Phase: Pressure Drop in Piping Network

Pressure Drop Calculation for Parallel Pipes - Part IВидеоPressure Drop Calculation for Parallel Pipes - Part II ВидеоPressure Drop Calculation for Series Pipes - Part I ВидеоPressure Drop Calculation for Series Pipes - Part II ВидеоDetermination of Flow Rate in Pipe Network - Part IВидеоDetermination of Flow Rate in Pipe Network - Part IIВидео

Assessment on Two-Phase Pressure Drop through Piping Components & Networks

Assessment on Two-Phase Pressure Drop through Piping Components & NetworksЗадание
Drift Flux CorrelationsВидео
Problem Solving on Void Fraction and Gravitational Pressure Drop by Drift Flux Correlations - Part I Видео
Problem Solving on Void Fraction and Gravitational Pressure Drop by Drift Flux Correlations - Part IIВидео