Membrane processes selective hydromechanical diffusion-based porous nonporous

Size: px
Start display at page:

Download "Membrane processes selective hydromechanical diffusion-based porous nonporous"

Transcription

1 Membrane processes Separation of liquid or gaseous mixtures by mass transport through membrane (= permeation). Membrane is selective, i.e. it has different permeability for different components. Conditions for separation on membrane are either hydromechanical (similar to filtration) or diffusion-based. Membranes can be: porous transport is via diffusion or by pressure difference nonporous dissolution + diffusion Membrane are made of: natural products: acetyl-cellulose synthetic: cross-linked polymers other materials: ceramics, metals Asymmetric membranes: thin skin (actual membrane) is attached to a thick, porous and sturdy support resistance to large pressure differences Some types of membrane processes micro + ultra filtration (UF): Analogous to filtration driving force is pressure difference (hydrodynamical process) up to 1 MPa. Separation of suspensions and colloids with particles of μm. reverse osmosis (RO): Also hydromechanical process with pressure differences up to 10 MPa. Separation of components from true solutions (desalination of water) gas permeation: Separation of gaseous mixtures by diffusion driven by partial pressure difference. Air separation, gas cleaning. pervaporation: Separation of liquid solutions by diffusion; mixture evaporates after passing through the membrane dialysis: Diffusion driven transport in solution. Used in medicine artificial kidney electrodialysis: Driving force is electric potential difference (voltage); desalination of water Membrane modules tubular a tube or capillary of diameter mm, easy to clean, low performance per volume of the module; use for UF plate-and-frame like filter press, i.e. a series of flat membrane sheets stacked one above another and separated by spacers; advantage can be cleaned spiral wound plate-and-frame rolled into a cylinder high surface to volume ratio; use for all membrane processes hollow fibers thin fibers placed in a shell high surface to volume ratio; used for all membrane processes Balance of membrane modules We assume two components: - A solute (or dispersed component) - B solvent (or dispergant)

2 Balance on moles - total: n F = n R + n P - component A: n Fx AF = n Rx A + n Py A x AF = (1 θ)x A + θy A, where θ = n P n F - component B: x BF = (1 θ)x B + θy B Enthalpy balance The area of the membrane is then calculated from Concentration polarization h F + Q = (1 θ)h n R + θh P F h molar enthalpy n Py k = Φ k A where k = A or B Φ k is the flux which can be express (see later) is called cut Occurs in membrane separation of liquids when using pressure difference (RO, UF). Component A (solute) tends to accumulate at the membrane, its concentration there is high A leaks through the membrane by diffusion because of and increased driving force c AW c Ap could be counteracted by stirring. A measure of quality of the membrane is rejection coefficient: R = c AR c Ap c AR M = c AW polarization modulus c AR

3 Kinetics of some membrane processes Generally, kinetics of transport through membrane is formulated as follows: Kinetics for RO flux = permeability driving force thickness flux = flow area ; flow can be [m3 s -1 ] or [mol s -1 ] Membrane is permeable for B only a) osmosis flow of B into the solution if p < π b) equilibrium is reached after osmosis increases p 2 so that p = π... osmotic pressure c) reverse osmosis if p 2 is increased (by pump or hydrostatic pressure) so that p > π In a real membrane (rejection coefficient R < 1) A occurs in both sides of the membrane. Each side of the membrane has its own osmotic pressure (with respect to pure solvent) Flux for RO is then Φ VB = P B δ [(p 2 p 1 ) (π 2 π 1 )] = P B ( p π) δ Φ VB volumetric flux [m 3 m -2 s -1 ] P B δ permeability of membrane for B thickness Osmotic pressure can be calculated from van t Hoff equation: π = βc A RT = ac A

4 Kinetics for UF A is dispersed in B, typically A is a large molecule c A is small π is small π = 0. Therefore Φ VB = P B δ p However, in UF a gel layer often forms close to the membrane on the retentate side. Additional explanation to RO If the membrane is non-ideal, i.e. partly permeable for A (rejection coefficient < 1) then the flux of A due to diffusion is Also from definition Φ A = J A = P A δ (Mc AR c AP ) Φ A = c AP Φ V c AP Φ VB i.e. the total volumetric flux is approximately equal to flux of B. Using expression for Φ VB, Φ A and definition of R = 1 c Ap car we obtain: R = 1 c Ap M = 1 c AR 1 + α BA ( p a(mc AR c AP )) where M is polarization modulus and α BA = P B P A selectivity, α BA has a unit [Pa -1 ] or [atm -1 ] Therefore there are two resistances for the transfer of B through the membrane and the gel (and in addition there can be concentration polarization). Extended flux equation is then

5 where P g is the permeability of the gel for B. Φ VB = p δ M PB + δ g P g sum of resistances Carman-Kozeny equation (hydrodynamic flow through porous material) determines the permeability of the gel: d 2 p ε 3 P g = 150η(1 ε) 2 where Remarks: d p diameter of the particles forming the gel ε porosity of the gel = η viscosity of the fluid volume of free space volume of gel a) Symbol J V is also used instead of Φ V b) Flux is sometimes expressed by explicitly using viscosity η or where Φ VB = J VB = P B p no gel layer ηδ Φ VB = J VB = ηδ m P B p + ηδ g P g P B = P B η and P g = P g η SI unit of P B and P g is [m 2 s -1 Pa -1 ]; unit of P B, P g is [m 2 ] c) When a gel is formed J VB is constant (balance between convective transport of A toward the membrane and back diffusion). When p is suddenly increased J VB instantaneously increases, however, the gel layer thickness δ g starts growing until the original value of J VB is restored due to increased resistance. d) If the membrane is non-ideal the molar flux of a through the membrane is J na = Mc AR (1 R V )J VB R V = 1 c AP c AR apparent rejection coefficient < 1

6 M = c AW c AR polarization modulus Gas permeation Gases are dissolved in and diffuse through the membrane. Modules with hollow fibers and spiral-wound membranes are used purification of hydrogen, CO 2, production of N 2 and O 2 from air. Driving force is partial pressure. The flux is for A: for B: n P molar flux of permeate J Vi = P i δ m (p ir p ip ) = P i δ m (p R x i p P y i ) J Vi = V ip A = n Py i Ac i c i molar density of pure component i; for ideal gases c i = p P does not depend on RT component n P(1 y A ) Ac B n Py A Ac A = P A δ m (p R x A p P y A ) = P B δ m (p R (1 x A ) p P (1 y A )) From mass balance: x A = x AF θy A 1 θ We assume ideal gas, c A = c B and divide first two equations: y A 1 y A = α BA p R x A p P y A p R (1 x A ) p P (1 y A ) α BA = P B P A selectivity (should be > 40)

7 By using mass balance we determine y A : ay 2 A + by A + c = 0 a = ( θ 1 θ + p P ) (α p BA 1) R b = (1 α BA ) ( p P + θ p R 1 θ + x AF 1 θ ) 1 1 θ x AF c = α BA 1 θ Remark: P i can be approximately expressed as P i = K i 1 D i = S i D i K i D i S i = K i 1 Henry constant absorption to membrane diffusivity diffusion through membrane solubility Pervaporation (PV) Retentate is a liquid. Components diffuse through the membrane and evaporate on the permeate side due to lowered pressure. Membrane is swollen in the retentate side and shrunk on the permeate side. Also temperature drops across the membrane complex diffusive process. PV is used to separate azeotropic mixture obtained in rectification. A simplified description of the transport through the membrane makes use of empirically determined selectivity α BA. It is assumed that (analogy to distillation) Mass balance α AB = y A xa y = y A(1 x A ) B xb x A (1 y A ) by eliminating x A : x A = x AF θy A 1 θ Enthalpy balance for PV (α AB 1) θy A 2 [(1 θ) + (α AB 1)x AF + α AB θ]y A + α AB x AF Feed is hot, retentate is colder and permeate is coolest due to evaporation. There is no external heat supply or removal. For simplicity we will assume that t R = t P (not true but for enthalpy balance is OK)

8 n Fc pf (t F t ref ) = n Rc pr (t R t ref ) + n P(c pp (t P t ref ) + h vap ) where h vap = y A h vap,a + (1 y A ) h vap,b and similarly c pf = x AF c pa + (1 x AF )c pb c p is evaluated at t = t F+t ref ; c 2 pr and c pp are analogous but not needed Assuming t ref = t P = t R Then the cut n Fc pf (t F t ref ) = n P h vap θ = n P = c pf(t F t ref ) n F h vap

Lecture 10. Membrane Separation Materials and Modules

Lecture 10. Membrane Separation Materials and Modules ecture 10. Membrane Separation Materials and Modules Membrane Separation Types of Membrane Membrane Separation Operations - Microporous membrane - Dense membrane Membrane Materials Asymmetric Polymer Membrane

More information

Estimate the extent of concentration polarization in crossflow filtration Select filtration unit operations to meet product requirements, consistent

Estimate the extent of concentration polarization in crossflow filtration Select filtration unit operations to meet product requirements, consistent Membrane Separation Process Objectives Estimate the extent of concentration polarization in crossflow filtration Select filtration unit operations to meet product requirements, consistent with product

More information

CENG 5210 Advanced Separation Processes. Reverse osmosis

CENG 5210 Advanced Separation Processes. Reverse osmosis Reverse osmosis CENG 510 Advanced Separation Processes In osmosis, solvent transports from a dilute solute or salt solution to a concentrated solute or salt solution across a semipermeable membrane hich

More information

Basic Principles of Membrane Technolog

Basic Principles of Membrane Technolog Basic Principles of Membrane Technolog by Marcel Mulder Center for Membrane Science and Technology, University oftwente, Enschede, The Netherlands ff KLUWER ACADEMIC PUBLISHERS DORDRECHT / BOSTON / LONDON

More information

SEPARATION BY BARRIER

SEPARATION BY BARRIER SEPARATION BY BARRIER SEPARATION BY BARRIER Phase 1 Feed Barrier Phase 2 Separation by barrier uses a barrier which restricts and/or enhances the movement of certain chemical species with respect to other

More information

General Separation Techniques

General Separation Techniques ecture 2. Basic Separation Concepts (1) [Ch. 1] General Separation Techniques - Separation by phase creation - Separation by phase addition - Separation by barrier - Separation by solid agent - Separation

More information

Ceramic Membranes in Process Technology

Ceramic Membranes in Process Technology BASF SE Ludwigshafen Hartwig Voß, Jacek Malisz, Patrick Schmidt, Jörg Therre Ceramic Membranes in Process Technology Status, future Trends, Challenges Strategie WS Hochleistungskeramiken, Bonn 20.01.2015

More information

D-MAVT Membrane Separation Processes

D-MAVT Membrane Separation Processes Membrane Separation Processes Federico Milella Rate Controlled Separation - Autumn 2017 Separation Processes Laboratory - Institute of Process Engineering Agenda Introduction Mass balances over a membrane

More information

1 Introduction to membrane filtration of liquids

1 Introduction to membrane filtration of liquids 1 Introduction to membrane filtration of liquids 1.1 Introduction This book is largely concerned with solving process problems in the membrane filtration of liquids. In that sense, it is more a chemical

More information

Membrane Filtration 111 CAMBRIDGE. A Problem Solving Approach with MATLAB GREG FOLEY UNIVERSITY PRESS. Dublin City University

Membrane Filtration 111 CAMBRIDGE. A Problem Solving Approach with MATLAB GREG FOLEY UNIVERSITY PRESS. Dublin City University Membrane Filtration A Problem Solving Approach with MATLAB GREG FOLEY Dublin City University 111 CAMBRIDGE UNIVERSITY PRESS Contents Preface Abbreviations page xv xviii 1 Introduction to membrane filtration

More information

Some physico-chemical data can be found at the web page (E-Tables):

Some physico-chemical data can be found at the web page (E-Tables): Reminiscences 1 Physical data have been supplied to Problem_#4. Some physico-chemical data can be found at the web page (E-Tables): http://uchi.vscht.cz/index.php/en/studium/navody-a-pomucky/e-tabulky

More information

Part I.

Part I. Part I bblee@unimp . Introduction to Mass Transfer and Diffusion 2. Molecular Diffusion in Gasses 3. Molecular Diffusion in Liquids Part I 4. Molecular Diffusion in Biological Solutions and Gels 5. Molecular

More information

Chapter 11 Properties of Solutions

Chapter 11 Properties of Solutions Chapter 11 Properties of Solutions Solutions Homogeneous mixtures of two or more substances Composition is uniform throughout the sample No chemical reaction between the components of the mixture Solvents

More information

Solution KEY CONCEPTS

Solution KEY CONCEPTS Solution KEY CONCEPTS Solution is the homogeneous mixture of two or more substances in which the components are uniformly distributed into each other. The substances which make the solution are called

More information

Membrane operations in the green technology: Solvent recovery and process water treatment

Membrane operations in the green technology: Solvent recovery and process water treatment BUDAPEST UNIVERSITY OF TECHNOLOGY AND ECONOMICS George Olah Doctoral School Membrane operations in the green technology: Solvent recovery and process water treatment A dissertation submitted to the Budapest

More information

5.4 Liquid Mixtures. G i. + n B. = n A. )+ n B. + RT ln x A. + RT ln x B. G = nrt ( x A. ln x A. Δ mix. + x B S = nr( x A

5.4 Liquid Mixtures. G i. + n B. = n A. )+ n B. + RT ln x A. + RT ln x B. G = nrt ( x A. ln x A. Δ mix. + x B S = nr( x A 5.4 Liquid Mixtures Key points 1. The Gibbs energy of mixing of two liquids to form an ideal solution is calculated in the same way as for two perfect gases 2. A regular solution is one in which the entropy

More information

Chapter 2 Mass Transfer Coefficient

Chapter 2 Mass Transfer Coefficient Chapter 2 Mass Transfer Coefficient 2.1 Introduction The analysis reported in the previous chapter allows to describe the concentration profile and the mass fluxes of components in a mixture by solving

More information

School of Chemical & Biological Engineering, Konkuk University

School of Chemical & Biological Engineering, Konkuk University School of Chemical & iological Engineering, Konkuk University Lecture 7 Ch. 5 Simple Mixtures Colligative properties Prof. Yo-Sep Min Physical Chemistry I, Spring 2009 Ch. 5-2 he presence of a solute in

More information

Ion exchange (ionex) Ion exchange. Advantages. Disadvantages

Ion exchange (ionex) Ion exchange. Advantages. Disadvantages Ion exchange (ionex) 1 Ion exchange Separation method based on exchange of dissolved ions on functional groups fixed on matrix. Ionex (ion exchanger (IX)) - compound able to exchange ions inorganic (zeolites)

More information

CHAPTER 9: MEMBRANE SEPARATION PROCESS

CHAPTER 9: MEMBRANE SEPARATION PROCESS CHAPTER 9: MEMBRANE SEPARATION PROCESS MOHAMAD FAHRURRAZI TOMPANG Sem 2 2011/2012 ERT 313 BIOSEPARATION ENGINEERING Course details Credit hours/units : 4 Contact hours : 3 hr (L), 3 hr (P) and 1 hr (T)

More information

VOLATILE ORGANIC COMPOUNDS (VOC) REMOVAL BY PERVAPORATION IN A TUBULAR TYPE MEMBRANE MATHEMATICAL MODELLING AND PRELIMINARY TESTS

VOLATILE ORGANIC COMPOUNDS (VOC) REMOVAL BY PERVAPORATION IN A TUBULAR TYPE MEMBRANE MATHEMATICAL MODELLING AND PRELIMINARY TESTS VOLATILE ORGANIC COMPOUNDS (VOC) REMOVAL BY PERVAPORATION IN A TUBULAR TYPE MEMBRANE MATHEMATICAL MODELLING AND PRELIMINARY TESTS Ramin Nikpour Khoshgrudi a, Aleksandra Ciosek a, Michał Zalewski a, Maciej

More information

Heat processes. Heat exchange

Heat processes. Heat exchange Heat processes Heat exchange Heat energy transported across a surface from higher temperature side to lower temperature side; it is a macroscopic measure of transported energies of molecular motions Temperature

More information

Colligative Properties. Vapour pressure Boiling point Freezing point Osmotic pressure

Colligative Properties. Vapour pressure Boiling point Freezing point Osmotic pressure Colligative Properties Vapour pressure Boiling point Freezing point Osmotic pressure Learning objectives Describe meaning of colligative property Use Raoult s law to determine vapor pressure of solutions

More information

Separation of HCl from the mixture of KCl and HCl using membrane distillation

Separation of HCl from the mixture of KCl and HCl using membrane distillation Polish Journal of Chemical Technology, 10, 2, 27 32, Pol. 2008, J. Chem. 10.2478/v10026-008-0024-4 Tech., Vol. 10, No. 2, 2008 27 Separation of HCl from the mixture of KCl and HCl using membrane distillation

More information

Physical Properties of Solutions

Physical Properties of Solutions Physical Properties of Solutions Chapter 12 Copyright The McGraw-Hill Companies, Inc. Permission required for reproduction or display. 12.1- Types of solutions A solution is a homogenous mixture of 2 or

More information

Properties of Solutions. Chapter 13

Properties of Solutions. Chapter 13 Properties of Solutions Chapter 13 Sodium acetate crystals rapidly form when a seed crystal is added to a supersaturated solution of sodium acetate. Saturated solution: contains the maximum amount of a

More information

2 THEORY OF TRANSPORT IN MEMBRANES

2 THEORY OF TRANSPORT IN MEMBRANES 2 THEORY OF TRANSPORT IN MEMBRANES 2.1 Driving forces for transport mechanisms A membrane process is a separation process that covers a broad range of problems from particles to molecules and a wide variety

More information

PREFACE. Julian C. Smith Peter Harriott. xvii

PREFACE. Julian C. Smith Peter Harriott. xvii PREFACE This sixth edition of the text on the unit operations of chemical engineering has been extensively revised and updated, with much new material and considerable condensation of some sections. Its

More information

Outline. Definition and mechanism Theory of diffusion Molecular diffusion in gases Molecular diffusion in liquid Mass transfer

Outline. Definition and mechanism Theory of diffusion Molecular diffusion in gases Molecular diffusion in liquid Mass transfer Diffusion 051333 Unit operation in gro-industry III Department of Biotechnology, Faculty of gro-industry Kasetsart University Lecturer: Kittipong Rattanaporn 1 Outline Definition and mechanism Theory of

More information

Polymers Reactions and Polymers Production (3 rd cycle)

Polymers Reactions and Polymers Production (3 rd cycle) EQ, Q, DEQuim, DQuim nd semester 017/018, IST-UL Science and Technology of Polymers ( nd cycle) Polymers Reactions and Polymers Production (3 rd cycle) Lecture 5 Viscosity easurements of the viscosity

More information

2.500 Desalination and Water Purification

2.500 Desalination and Water Purification MIT OpenCourseWare http://ocw.mit.edu 2.500 Desalination and Water Purification Spring 2009 For information about citing these materials or our Terms of Use, visit: http://ocw.mit.edu/terms. MASSACHUSETTS

More information

Aalborg Universitet. Transport phenomena in gas-selective silica membranes Boffa, Vittorio. Creative Commons License Unspecified

Aalborg Universitet. Transport phenomena in gas-selective silica membranes Boffa, Vittorio. Creative Commons License Unspecified Aalborg Universitet Transport phenomena in gas-selective silica membranes Boffa, Vittorio Creative Commons License Unspecified Publication date: 2016 Link to publication from Aalborg University Citation

More information

PAPER No.6: PHYSICAL CHEMISTRY-II (Statistical

PAPER No.6: PHYSICAL CHEMISTRY-II (Statistical Subject PHYSICAL Paper No and Title Module No and Title Module Tag 6, PHYSICAL -II (Statistical 34, Method for determining molar mass - I CHE_P6_M34 Table of Contents 1. Learning Outcomes 2. Introduction

More information

Simple Mixtures. Chapter 7 of Atkins: Section

Simple Mixtures. Chapter 7 of Atkins: Section Simple Mixtures Chapter 7 of Atkins: Section 7.5-7.8 Colligative Properties Boiling point elevation Freezing point depression Solubility Osmotic Pressure Activities Solvent Activity Solute Activity Regular

More information

Name AP CHEM / / Chapter 11 Outline Properties of Solutions

Name AP CHEM / / Chapter 11 Outline Properties of Solutions Name AP CHEM / / Chapter 11 Outline Properties of Solutions Solution Composition Because a mixture, unlike a chemical compound, has a variable composition, the relative amounts of substances in a solution

More information

1 Basic Ideas. Ultrafiltration is a effective separation method for proteins. Large molecules Conformation change with ph

1 Basic Ideas. Ultrafiltration is a effective separation method for proteins. Large molecules Conformation change with ph Ultrafiltration Basic Ideas Ultrafiltration is a effective separation method for proteins Protein have two characteristics which are important for these separation Large molecules Conformation change with

More information

General Physical Chemistry I

General Physical Chemistry I General Physical Chemistry I Lecture 14 Aleksey Kocherzhenko April 9, 2015" Last time " Chemical potential " Partial molar property the contribution per mole that a substance makes to an overall property

More information

ERT 216 HEAT & MASS TRANSFER SEM2, 2013/2014

ERT 216 HEAT & MASS TRANSFER SEM2, 2013/2014 ERT 16 HET & MSS TRNSFER SEM, 01/014 Tutorial: Principles of Mass Transfer (Part 1) gas of CH 4 and He is contained in a tube at 10 kpa pressure and 98 K. t one point the partial pressure of methane is

More information

Chapter 11. Properties of Solutions Solutions

Chapter 11. Properties of Solutions Solutions Chapter 11. Properties of Solutions Solutions Homogeneous Mixture 1 Solution Composition Equivalent moles of solute (mol) Acid-Base reaction Molarity (M) = liter of solution (L) 1 eq: the quantity of acid

More information

Physical Properties of Solutions

Physical Properties of Solutions Physical Properties of Solutions Physical Properties of Solutions Types of Solutions (13.1) A Molecular View of the Solution Process (13.2) Concentration Units (13.3) Effect of Temperature on Solubility

More information

Solutions. Making sense of the aqueous world

Solutions. Making sense of the aqueous world Solutions Making sense of the aqueous world 2012-01-24 13:13:55 1/42 Notessolutionsroessler (#2) Solution 2012-01-24 13:13:55 2/42 Notessolutionsroessler (2/42) Solutions They are homogenous Homogenous-

More information

Chapter 3 Membrane Processes for Water Production

Chapter 3 Membrane Processes for Water Production Chapter 3 Membrane Processes for Water Production Application of Membrane Processes in Water Environment Fusion Tech Hydrology Molecular biology Surface Chem Nano particles Biofilm CFD Catalyst Space station

More information

Convective Mass Transfer

Convective Mass Transfer Convective Mass Transfer Definition of convective mass transfer: The transport of material between a boundary surface and a moving fluid or between two immiscible moving fluids separated by a mobile interface

More information

Edexcel Chemistry A-level

Edexcel Chemistry A-level Edexcel Chemistry A-level Topic 5 - Formulae, Equations and Amounts of Substance Flashcards What is the symbol for amount of substance? What is the symbol for amount of substance? n What is the unit used

More information

Chapter 11 Review Packet

Chapter 11 Review Packet Chapter 11 Review Packet Name Multiple Choice Portion: 1. Which of the following terms is not a quantitative description of a solution? a. molarity b. molality c. mole fraction d. supersaturation 2. Which

More information

DATA THAT YOU MAY USE UNITS Conventional Volume ml or cm 3 = cm 3 or 10-3 dm 3 Liter (L) = dm 3 Pressure atm = 760 torr = Pa CONSTANTS

DATA THAT YOU MAY USE UNITS Conventional Volume ml or cm 3 = cm 3 or 10-3 dm 3 Liter (L) = dm 3 Pressure atm = 760 torr = Pa CONSTANTS DATA THAT YOU MAY USE UNITS Conventional S.I. Volume ml or cm 3 = cm 3 or 0-3 dm 3 Liter (L) = dm 3 Pressure atm = 760 torr =.03 0 5 Pa torr = 33.3 Pa Temperature C 0 C = 73.5 K PV L-atm =.03 0 5 dm 3

More information

Equipment Design and Costs for Separating Homogeneous Mixtures

Equipment Design and Costs for Separating Homogeneous Mixtures Equipment Design and Costs for Separating Homogeneous Mixtures Dr. Syeda Sultana Razia Department of Chemical Engineering, Bangladesh University of Engineering and Technology (BUET), Dhaka -1000 1. Distillation

More information

MODULE 3: MASS TRANSFER COEFFICIENTS

MODULE 3: MASS TRANSFER COEFFICIENTS MODULE 3: MASS TRANSFER COEFFICIENTS LECTURE NO. 4 3.4.3 Correlation of mass transfer coefficients for single cylinder Bedingfield and Drew (1950) studied the sublimation from a solid cylinder into air

More information

Introduction to Mass Transfer

Introduction to Mass Transfer Introduction to Mass Transfer Introduction Three fundamental transfer processes: i) Momentum transfer ii) iii) Heat transfer Mass transfer Mass transfer may occur in a gas mixture, a liquid solution or

More information

Lecture 6. NONELECTROLYTE SOLUTONS

Lecture 6. NONELECTROLYTE SOLUTONS Lecture 6. NONELECTROLYTE SOLUTONS NONELECTROLYTE SOLUTIONS SOLUTIONS single phase homogeneous mixture of two or more components NONELECTROLYTES do not contain ionic species. CONCENTRATION UNITS percent

More information

A mass transfer model for the prediction of permeate concentration during ultrafiltration of methyl violet dye solution

A mass transfer model for the prediction of permeate concentration during ultrafiltration of methyl violet dye solution Indian Journal of Chemical Technology Vol. 11, March 2005, pp. 205-211 A mass transfer model for the prediction of permeate concentration during ultrafiltration of methyl violet dye solution S Chatterjee

More information

Overview. Types of Solutions. Intermolecular forces in solution. Concentration terms. Colligative properties. Osmotic Pressure 2 / 46

Overview. Types of Solutions. Intermolecular forces in solution. Concentration terms. Colligative properties. Osmotic Pressure 2 / 46 1 / 46 2 / 46 Overview Types of Solutions. Intermolecular forces in solution Concentration terms Colligative properties Osmotic Pressure 3 / 46 Solutions and Colloids A solution is a homogeneous mixture

More information

Liquid in liquid: ethanol in water. Solid in liquid: any salt in water. Solid in solid: brass, bronze, and all alloys

Liquid in liquid: ethanol in water. Solid in liquid: any salt in water. Solid in solid: brass, bronze, and all alloys 1 of 6 I. The solution process Solutions, colloids, and suspensions Solution: homogeneous mixture, equally dispersed at the molecular level, uniform throughout in its physical and chemical properties Colloid:

More information

Physicochemical Processes

Physicochemical Processes Lecture 3 Physicochemical Processes Physicochemical Processes Air stripping Carbon adsorption Steam stripping Chemical oxidation Supercritical fluids Membrane processes 1 1. Air Stripping A mass transfer

More information

CFD STUDY OF MASS TRANSFER IN SPACER FILLED MEMBRANE MODULE

CFD STUDY OF MASS TRANSFER IN SPACER FILLED MEMBRANE MODULE GANIT J. Bangladesh Math. Soc. (ISSN 1606-3694) 31 (2011) 33-41 CFD STUDY OF MASS TRANSFER IN SPACER FILLED MEMBRANE MODULE Sharmina Hussain Department of Mathematics and Natural Science BRAC University,

More information

Name Class Date. In the space provided, write the letter of the term or phrase that best completes each statement or best answers each question.

Name Class Date. In the space provided, write the letter of the term or phrase that best completes each statement or best answers each question. Assessment Chapter Test A Chapter: Solutions In the space provided, write the letter of the term or phrase that best completes each statement or best answers each question. 1. Agitation prevents settling

More information

Liquids and Solutions Crib Sheet

Liquids and Solutions Crib Sheet Liquids and Solutions Crib Sheet Determining the melting point of a substance from its solubility Consider a saturated solution of B in a solvent, A. Since the solution is saturated, pure solid B is in

More information

Sem /2007. Fisika Polimer Ariadne L. Juwono

Sem /2007. Fisika Polimer Ariadne L. Juwono Chapter 8. Measurement of molecular weight and size 8.. End-group analysis 8.. Colligative property measurement 8.3. Osmometry 8.4. Gel-permeation chromatography 8.5. Ultracentrifugation 8.6. Light-scattering

More information

Mass Transfer Operations

Mass Transfer Operations College of Engineering Tutorial # 1 Chemical Engineering Dept. 14/9/1428 1. Methane and helium gas mixture is contained in a tube at 101.32 k Pa pressure and 298 K. At one point the partial pressure methane

More information

SOLUTIONS. Dissolution of sugar in water. General Chemistry I. General Chemistry I CHAPTER

SOLUTIONS. Dissolution of sugar in water. General Chemistry I. General Chemistry I CHAPTER 11 CHAPTER SOLUTIONS 11.1 Composition of Solutions 11.2 Nature of Dissolved Species 11.3 Reaction Stoichiometry in Solutions: Acid-Base Titrations 11.4 Reaction Stoichiometry in Solutions: Oxidation-Reduction

More information

OFB Chapter 6 Condensed Phases and Phase Transitions

OFB Chapter 6 Condensed Phases and Phase Transitions OFB Chapter 6 Condensed Phases and Phase Transitions 6-1 Intermolecular Forces: Why Condensed Phases Exist 6- The Kinetic Theory of Liquids and Solids 6-3 Phase Equilibrium 6-4 Phase Transitions 6-5 Phase

More information

A dispersion (system) Colloidal solutions High molecular mass compounds

A dispersion (system) Colloidal solutions High molecular mass compounds A dispersion (system) Colloidal solutions High molecular mass compounds Outline Types of dispersions Characteristics of main types of dispersions Properties of colloidal solutions Structure of colloidal

More information

CHEMISTRY XL-14A PHYSICAL EQUILIBRIUM. August 13, 2011 Robert Iafe

CHEMISTRY XL-14A PHYSICAL EQUILIBRIUM. August 13, 2011 Robert Iafe CHEMISTRY XL-14A PHYSICAL EQUILIBRIUM August 13, 2011 Robert Iafe Chapter Overview 2 Phases and Phase Transitions Solubility Colligative Properties Binary Liquid Mixtures Phases and Phase Transitions 3

More information

Steady-State Molecular Diffusion

Steady-State Molecular Diffusion Steady-State Molecular Diffusion This part is an application to the general differential equation of mass transfer. The objective is to solve the differential equation of mass transfer under steady state

More information

Dansk Mejeriteknisk Selskab Billund, June 14th Challenges in the Dairy Industry: Perspective on extreme performance membranes

Dansk Mejeriteknisk Selskab Billund, June 14th Challenges in the Dairy Industry: Perspective on extreme performance membranes Dansk Mejeriteknisk Selskab Billund, June 14th 2018 Challenges in the Dairy Industry: Perspective on extreme performance membranes OLE LILLEVANG, TECHNOLOGY SPECIALIST GEA PRODUCT TECHNOLOGY CENTER FILTRATION

More information

Exam 3 Concepts! CH110 FA10 SAS 33

Exam 3 Concepts! CH110 FA10 SAS 33 Exam 3 Concepts! CH110 FA10 SAS 33 Properties of Gases What sorts of elements and compounds tend to be found as gasses at room temperature? What are the physical properties of gases? What is pressure?

More information

Subject : Chemistry Class : XII Chapter-2.Solutions Work Sheet ( WS 2. 1) Topic- 2.1 Henry s & Raoult s Laws

Subject : Chemistry Class : XII Chapter-2.Solutions Work Sheet ( WS 2. 1) Topic- 2.1 Henry s & Raoult s Laws Work Sheet ( WS 2. 1) Topic- 2.1 Henry s & Raoult s Laws Name -. Class/ sec.. Roll No.. A. Fill in the blanks: 1. Solutions are mixtures of two or more than two components. 2. Generally, the component

More information

Solutions and Their Properties

Solutions and Their Properties Chapter 11 Solutions and Their Properties Solutions: Definitions A solution is a homogeneous mixture. A solution is composed of a solute dissolved in a solvent. When two compounds make a solution, the

More information

Modern Chemistry Chapter 12- Solutions

Modern Chemistry Chapter 12- Solutions Modern Chemistry Chapter 12- Solutions Section 1- Types of Mixtures Solutions are homogeneous mixtures of two or more substances in a single phase. Soluble describes a substance as capable of being dissolved.

More information

Topic 6 Gases and Colligative Properties

Topic 6 Gases and Colligative Properties Topic 6 Gases and Colligative Properties Boyle noticed an inverse relationship between volume and pressure. Pressure x volume = constant PV = a V V P 1/P Charles found the volume of a gas, at constant

More information

BAE 820 Physical Principles of Environmental Systems

BAE 820 Physical Principles of Environmental Systems BAE 820 Physical Principles of Environmental Systems Estimation of diffusion Coefficient Dr. Zifei Liu Diffusion mass transfer Diffusion mass transfer refers to mass in transit due to a species concentration

More information

Downloaded from

Downloaded from : Bhubaneswar Region CHAPTER 2-SOLUTIONS 1 MARK QUESTIONS 1 What is molarity? 2 What do you understand by saying that molality of a solution is 0.2? 3 Why is the vapour pressure of a liquid remains constant

More information

MCGILL UNIVERSITY FACULTY OF SCIENCE MIDTERM EXAMINATION CHEM 120 MONDAY MARCH 16, :30PM 8:30PM VERSION NUMBER: 1

MCGILL UNIVERSITY FACULTY OF SCIENCE MIDTERM EXAMINATION CHEM 120 MONDAY MARCH 16, :30PM 8:30PM VERSION NUMBER: 1 MCGILL UNIVERSITY FACULTY OF SCIENCE MIDTERM EXAMINATION CHEM 120 MONDAY MARCH 16, 2009 6:30PM 8:30PM VERSION NUMBER: 1 Instructions: BEFORE YOU BEGIN: Enter your student number and name on the computer

More information

Colligative properties CH102 General Chemistry, Spring 2011, Boston University

Colligative properties CH102 General Chemistry, Spring 2011, Boston University Colligative properties CH12 General Chemistry, Spring 211, Boston University here are four colligative properties. vapor-pressure lowering boiling-point elevation freezing-point depression osmotic pressure

More information

SOLUTIONS CHAPTER 13

SOLUTIONS CHAPTER 13 SOLUTIONS CHAPTER 13 SOLUTIONS Solutions, also known as homogeneous mixtures, are composed of two components: solute and solvent. In a sugar-water solution, water acts as a solvent (dissolving medium);

More information

7.02 Colligative Properties

7.02 Colligative Properties 7.02 Colligative Properties Changes in solvent properties due to impurities Colloidal suspensions or dispersions scatter light, a phenomenon known as the Tyndall effect. (a) Dust in the air scatters the

More information

Colligative Properties

Colligative Properties Colligative Properties Vapor pressures have been defined as the pressure over a liquid in dynamic equilibrium between the liquid and gas phase in a closed system. The vapor pressure of a solution is different

More information

Feed. Figure 1. The above image depicts the construction of a typical spiral wound element.

Feed. Figure 1. The above image depicts the construction of a typical spiral wound element. In a reverse osmosis (RO) process, pressure is applied to the saline side of a semi-permeable membrane to produce low salinity water. Upon application of the feed pressure, water molecules pass through

More information

Mixtures and Solutions

Mixtures and Solutions Mixtures and Solutions Section 14.1 Heterogeneous and Homogeneous Mixtures In your textbook, read about suspensions and colloids. For each statement below, write true or false. 1. A solution is a mixture

More information

CH 2: SOLUTIONS

CH 2: SOLUTIONS 1 CH 2: SOLUTIONS 2 SOLUTION, SOLVENT, SOLUTE Solutions are homogeneous mixtures of two or more than two components. i.e. composition and properties are uniform throughout the mixture. Eg: The component

More information

Fluid Mechanics Introduction

Fluid Mechanics Introduction Fluid Mechanics Introduction Fluid mechanics study the fluid under all conditions of rest and motion. Its approach is analytical, mathematical, and empirical (experimental and observation). Fluid can be

More information

Compiled and rearranged by Sajit Chandra Shakya

Compiled and rearranged by Sajit Chandra Shakya 1 (a) (i) The kinetic theory of gases leads to the equation m = kt. (b) Explain the significance of the quantity m... the equation to suggest what is meant by the absolute zero of temperature...

More information

Chapter 5. Transport in Membrane

Chapter 5. Transport in Membrane National October 7, 2015 (Wed) Chang-Han Yun / Ph.D. Contents 5.1 Introduction 5.2 Driving Forces Contents Contents 5.3 Non-equilibrium Thermodynamics 5.4 Transport through Porous Membranes 5.5 Transport

More information

1 Which of the following compounds has the lowest solubility in water? (4 pts)

1 Which of the following compounds has the lowest solubility in water? (4 pts) version: 516 Exam 1 - Sparks This MC portion of the exam should have 19 questions. The point values are given with each question. Bubble in your answer choices on the bubblehseet provided. Your score is

More information

Figure Q3. Boundary conditions for a tubular reactor.

Figure Q3. Boundary conditions for a tubular reactor. 1. Please illustrate or explain the meaning the following questions: (a) (10%) Please proof the five dimensionless numbers in fluid transport by Buckingham method as Eu=f(Re, Fr, We, Ma). (b) (10%) Please

More information

Controlling membrane pore blocking and filter cake build-up in side-stream MBR systems

Controlling membrane pore blocking and filter cake build-up in side-stream MBR systems 1 Controlling membrane pore blocking and filter cake build-up in side-stream MBR systems T. Jiang 1,a,2,b*#, M.D. Kennedy 1,c, W.G.J. van der Meer 3,d, P.A. Vanrolleghem 2,e, J.C. Schippers 1,f 1 International

More information

Chapter 11 Problems: 11, 15, 18, 20-23, 30, 32-35, 39, 41, 43, 45, 47, 49-51, 53, 55-57, 59-61, 63, 65, 67, 70, 71, 74, 75, 78, 81, 85, 86, 93

Chapter 11 Problems: 11, 15, 18, 20-23, 30, 32-35, 39, 41, 43, 45, 47, 49-51, 53, 55-57, 59-61, 63, 65, 67, 70, 71, 74, 75, 78, 81, 85, 86, 93 Chapter 11 Problems: 11, 15, 18, 20-23, 30, 32-35, 39, 41, 43, 45, 47, 49-51, 53, 55-57, 59-61, 63, 65, 67, 70, 71, 74, 75, 78, 81, 85, 86, 93 Chapter 11 Properties of Solutions Types of mixtures: homogenous

More information

Lecture 8. Mole balance: calculations of microreactors, membrane reactors and unsteady state in tank reactors

Lecture 8. Mole balance: calculations of microreactors, membrane reactors and unsteady state in tank reactors Lecture 8 Mole balance: calculations of microreactors, membrane reactors and unsteady state in tank reactors Mole alance in terms of oncentration and Molar low Rates Working in terms of number of moles

More information

Physics of biological membranes, diffusion, osmosis Dr. László Nagy

Physics of biological membranes, diffusion, osmosis Dr. László Nagy Physics of biological membranes, diffusion, osmosis Dr. László Nagy -Metabolic processes and transport processes. - Macrotransport : transport of large amount of material : through vessel systems : in

More information

Chapter 11. Properties of Solutions

Chapter 11. Properties of Solutions Chapter 11 Properties of Solutions Section 11.1 Solution Composition Various Types of Solutions Copyright Cengage Learning. All rights reserved 2 Section 11.1 Solution Composition Solution Composition

More information

How can homogeneous and heterogeneous mixtures be. 1. classified? 2. separated?

How can homogeneous and heterogeneous mixtures be. 1. classified? 2. separated? How can homogeneous and heterogeneous mixtures be 1. classified? 2. separated? 1. HETEROGENEOUS MIXTURE 2. COLLOID 3. EMULSION 4. SUSPENSION 5. FILTRATION 6. TYNDALL EFFECT 7. HOMOGENEOUS MIXTURE 8. SOLUTION

More information

Membrane Separation Processes

Membrane Separation Processes Membrane Separation Processes Membrane separations represent a new type of unit operation. Te membrane acts as a semipermeable barrier and separation occurs by te membrane controlling te rate of movement

More information

UNIT 9.SOLUTIONS.

UNIT 9.SOLUTIONS. BOOK BACK QUESTION AND ANSWERS: 31.Define (i) molality (ii) Normality (i) molality (ii) Normality UNIT 9.SOLUTIONS Number of moles of solute Molality(m) = Mass of the solvent( in Kg) Number of gram equivalengt

More information

HEMISTRY 110 EXAM 3 April 6, 2011 FORM A When the path is blocked, back up and see more of the way. 1. A 250 L vessel is evacuated and then connected to a 50.0 L bulb with compressed nitrogen. The pressure

More information

Surface Chemistry & States of Matter

Surface Chemistry & States of Matter Surface Chemistry & States of Matter S. Sunil Kumar Lecturer in Chemistry 1. Adsorption is a. Colligative property b. Oxidation process c. Reduction process d. Surface phenomenon Ans. d 2. When adsorption

More information

PRINCIPLES AND MODERN APPLICATIONS OF MASS TRANSFER OPERATIONS

PRINCIPLES AND MODERN APPLICATIONS OF MASS TRANSFER OPERATIONS PRINCIPLES AND MODERN APPLICATIONS OF MASS TRANSFER OPERATIONS Jaime Benitez iwiley- INTERSCIENCE A JOHN WILEY & SONS, INC., PUBLICATION Preface Nomenclature xiii xv 1. FUNDAMENTALS OF MASS TRANSFER 1

More information

Solutions. Chapter 14 Solutions. Ion-Ion Forces (Ionic Bonding) Attraction Between Ions and Permanent Dipoles. Covalent Bonding Forces

Solutions. Chapter 14 Solutions. Ion-Ion Forces (Ionic Bonding) Attraction Between Ions and Permanent Dipoles. Covalent Bonding Forces Solutions Chapter 14 1 Brief Review of Major Topics in Chapter 13, Intermolecular forces Ion-Ion Forces (Ionic Bonding) 2 Na + Cl - in salt These are the strongest forces. Lead to solids with high melting

More information

Chapter 13 Properties of Solutions

Chapter 13 Properties of Solutions Chemistry, The Central Science, 10th edition Theodore L. Brown; H. Eugene LeMay, Jr.; and Bruce E. Bursten Chapter 13 Properties of John D. Bookstaver St. Charles Community College St. Peters, MO 2006,

More information

A) sublimation. B) liquefaction. C) evaporation. D) condensation. E) freezing. 11. Below is a phase diagram for a substance.

A) sublimation. B) liquefaction. C) evaporation. D) condensation. E) freezing. 11. Below is a phase diagram for a substance. PX0411-1112 1. Which of the following statements concerning liquids is incorrect? A) The volume of a liquid changes very little with pressure. B) Liquids are relatively incompressible. C) Liquid molecules

More information

Membrane separation and Ionexchange SRM University Internal circulation only

Membrane separation and Ionexchange SRM University Internal circulation only Membrane separation and Ionexchange SRM University Internal circulation only 1. What is membrane? A membrane may be defined as an interphase separating two phases and selectively controlling the transport

More information