
Liquid-Liquid Extraction Course
Master the full engineering discipline of liquid-liquid extraction, from thermodynamic fundamentals and equilibrium stage calculations to equipment sizing, solvent recovery, and process control. This course equips chemical engineers and process designers with the quantitative tools and practical knowledge needed to design, simulate, and operate industrial LLE systems with confidence.
What you will learn:
This course covers the complete scope of liquid-liquid extraction engineering. You will study phase equilibria, distribution coefficients, and ternary phase diagrams before advancing to single-stage and multistage equilibrium calculations using both graphical and analytical methods. Mass transfer theory, drop hydrodynamics, and the NTU-HTU approach are covered in depth to support rigorous equipment sizing. You will survey all major extractor types, including mixer-settlers, pulsed columns, and centrifugal contactors, and learn how to select and size them for specific process requirements. The course also addresses solvent recovery system design, process simulation using activity coefficient models, and industrial control strategies for stable LLE operation.
How you study in practice Liquid-Liquid Extraction Course
How you practise Liquid-Liquid Extraction Course
For companies looking to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course Content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Liquid-Liquid Extraction
Fundamentals of Liquid-Liquid Extraction
Lesson 1 • Thermodynamic Basis of Extraction
Covers Gibbs free energy, chemical potential, and activity coefficients as drivers of solute transfer between phases. Links thermodynamic theory to practical distribution behavior.
Lesson 2 • Solvent Selection Principles
Presents criteria for choosing an extraction solvent including selectivity, immiscibility, recoverability, and safety. Guides students toward systematic solvent screening decisions.
Lesson 3 • Introduction to Separation Processes
Positions LLE within the broader landscape of separation technologies and defines its industrial relevance. Establishes vocabulary used throughout the course.
Lesson 4 • Ternary Phase Diagrams
Teaches construction and interpretation of ternary diagrams including binodal curves, tie lines, and plait points. Provides the graphical tool used in equilibrium stage calculations.
Lesson 5 • Distribution Coefficients and Selectivity
Defines the distribution ratio, separation factor, and their dependence on temperature and composition. These metrics are the primary design parameters for all subsequent chapters.
Chapter 2HideHide detailsSee detailsEquilibrium Stage Concepts and Calculations
Equilibrium Stage Concepts and Calculations
Lesson 1 • Kremser Equation and Analytical Methods
Presents the Kremser equation for systems with constant distribution coefficients and compares it to graphical results. Enables rapid hand calculations for preliminary design.
Lesson 2 • Stage Efficiency and Real Stages
Distinguishes theoretical from actual stages using Murphree and overall stage efficiencies. Converts theoretical stage counts to real equipment requirements.
Lesson 3 • Crosscurrent Multistage Extraction
Analyzes repeated single-stage contacts with fresh solvent and computes cumulative recovery. Demonstrates diminishing returns and optimal solvent splitting strategies.
Lesson 4 • Single-Stage Extraction Calculations
Derives mass balances for a single equilibrium contact and solves for extract and raffinate compositions. Establishes the calculation framework extended to multistage systems.
Lesson 5 • Countercurrent Multistage Extraction
Introduces countercurrent flow as the most efficient multistage arrangement and derives the operating line equation. Students apply the McCabe-Thiele graphical method to LLE systems.
Chapter 3HideHide detailsSee detailsMass Transfer in Extraction Systems
Mass Transfer in Extraction Systems
Lesson 1 • Diffusion and Convection in Drops
Covers molecular diffusion, internal circulation, and oscillation effects on intra-drop mass transfer. Explains why drop hydrodynamics strongly influence extraction rates.
Lesson 2 • Height of a Transfer Unit Approach
Introduces the NTU-HTU method as an alternative to stage counting for differential contactors. Connects mass transfer coefficients to column height calculations.
Lesson 3 • Drop Formation and Breakup
Analyzes how dispersed-phase drops form, break, and coalesce and how these phenomena control interfacial area. Links drop size distribution to mass transfer performance.
Lesson 4 • Interfacial Mass Transfer Theory
Explains the two-film theory and the concept of overall mass transfer coefficients for liquid-liquid systems. Provides the theoretical basis for equipment sizing in later chapters.
Lesson 5 • Marangoni Effects and Interfacial Phenomena
Describes interfacial tension gradients, Marangoni convection, and their enhancement or retardation of mass transfer. Prepares students to diagnose anomalous extraction behavior.
Chapter 4HideHide detailsSee detailsExtraction Equipment Types and Selection
Extraction Equipment Types and Selection
Lesson 1 • Pulsed and Reciprocating Plate Columns
Analyzes how mechanical pulsation improves drop dispersion and mass transfer in plate columns. Covers pulse frequency and amplitude as key operating variables.
Lesson 2 • Centrifugal Extractors
Explains centrifugal force enhancement of phase separation in Podbielniak and annular centrifugal extractors. Highlights applications requiring short residence time or small footprint.
Lesson 3 • Spray and Packed Columns
Covers spray columns and random or structured packing as simple differential contactors. Explains axial mixing as the primary performance limitation.
Lesson 4 • Rotating Disc and Agitated Columns
Presents rotating disc contactors and other mechanically agitated columns that enhance mass transfer through controlled turbulence. Compares agitation intensity to separation performance.
Lesson 5 • Mixer-Settler Units
Describes the design and operation of mixer-settler stages including impeller mixing and gravity settling zones. Establishes the benchmark equipment type for staged extraction.
Chapter 5HideHide detailsSee detailsExtraction System Design and Sizing
Extraction System Design and Sizing
Lesson 1 • Design Verification and Sensitivity Analysis
Tests the design against variations in feed composition, flow rate, and physical properties to confirm robustness. Identifies the most critical design parameters for process control.
Lesson 2 • Column Height Determination
Calculates required column height from the number of transfer units and the height of a transfer unit. Integrates stage efficiency or HTU data with column diameter results.
Lesson 3 • Internals Design and Specification
Specifies distributor, packing support, and interface control hardware for the designed column. Ensures uniform phase distribution and stable interface position.
Lesson 4 • Design Basis and Process Specifications
Translates a separation objective into quantitative design inputs including feed composition, flow rates, and recovery targets. Establishes the design basis document used throughout the sizing procedure.
Lesson 5 • Column Diameter and Flooding Calculations
Sizes column cross-sectional area using flooding correlations and a design safety factor. Covers dispersed-phase holdup and its effect on capacity.
Chapter 6HideHide detailsSee detailsSolvent Recovery and Process Integration
Solvent Recovery and Process Integration
Lesson 1 • Back-Extraction and Stripping
Covers re-extraction of solute from the loaded solvent using pH shift, temperature change, or a stripping solvent. Connects back-extraction design to the forward extraction stage count.
Lesson 2 • Raffinate Treatment and Solvent Removal
Addresses residual solvent in the raffinate phase through steam stripping, air stripping, or adsorption. Ensures product and waste streams meet quality specifications.
Lesson 3 • Importance of Solvent Recovery
Quantifies the economic and environmental impact of solvent losses and establishes recovery targets. Motivates the design of efficient back-extraction and stripping systems.
Lesson 4 • Distillation-Based Solvent Recovery
Designs distillation columns for separating solvent from extract and raffinate streams. Addresses azeotrope formation and its impact on recovery scheme selection.
Lesson 5 • Process Integration and Heat Pinch
Applies heat integration principles to minimize utility consumption across the extraction-recovery flowsheet. Demonstrates composite curve construction for an LLE process.
Chapter 7HideHide detailsSee detailsProcess Simulation and Modeling of LLE
Process Simulation and Modeling of LLE
Lesson 1 • Dynamic Simulation and Control Studies
Extends steady-state models to dynamic simulation for evaluating startup, shutdown, and disturbance responses. Supports control system design covered in the next chapter.
Lesson 2 • Sensitivity and Optimization Studies
Runs parametric sensitivity studies and optimization routines to identify the best operating conditions. Connects simulation outputs to economic objective functions.
Lesson 3 • Model Validation Against Experimental Data
Validates simulation predictions against laboratory or pilot plant data using statistical metrics. Identifies sources of model error and applies correction strategies.
Lesson 4 • Thermodynamic Model Selection for LLE
Compares NRTL, UNIQUAC, UNIFAC, and other activity coefficient models for liquid-liquid equilibrium prediction. Guides model selection based on available data and system complexity.
Lesson 5 • Building an LLE Simulation Flowsheet
Constructs a steady-state simulation flowsheet for a multistage extraction system including solvent recovery. Covers stream definition, unit operation specification, and convergence settings.
Chapter 8HideHide detailsSee detailsProcess Control and Industrial Operations
Process Control and Industrial Operations
Lesson 1 • Startup, Shutdown, and Steady-State Procedures
Provides step-by-step procedures for bringing an extraction unit to steady state and safely shutting it down. Emphasizes phase establishment and interface stabilization sequences.
Lesson 2 • Interface Level Control Strategies
Designs control loops for maintaining stable liquid-liquid interface position in settlers and columns. Covers cascade, split-range, and model-based control approaches.
Lesson 3 • Troubleshooting Common Operational Problems
Diagnoses and resolves flooding, emulsification, phase inversion, and poor separation in operating units. Builds a systematic fault-finding methodology applicable to any LLE system.
Lesson 4 • Key Process Variables and Instrumentation
Identifies the critical measured variables in an LLE unit including interface level, flow rates, and phase compositions. Specifies appropriate sensors and analyzer types for each variable.
Lesson 5 • Flow and Ratio Control
Implements solvent-to-feed ratio control to maintain extraction performance under feed flow disturbances. Addresses interaction between flow loops in a countercurrent system.
Your valid completion certificate
This course is for you:
Chemical engineers seeking deeper expertise in separation process design.
Process engineers troubleshooting underperforming extraction units at their plant.
Recent graduates bridging the gap between university theory and industrial practice.
Hydrometallurgical engineers expanding their solvent extraction technical foundation.
Pharmaceutical process developers designing compliant API purification extraction steps.
Environmental engineers evaluating extraction for industrial wastewater treatment projects.
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