SIMULATION OF LIQUID METAL MHD FLOWS IN COMPLEX GEOMETRIES

Similar documents
Adaptation of General Purpose CFD Code for Fusion MHD Applications*

CFD Grows Up! Martin W. Liddament Ventilation, Energy and Environmental Technology (VEETECH Ltd) What is Computational Fluid Dynamics?

HEAT TRANSFER ANALYSIS IN A 3D SQUARE CHANNEL LAMINAR FLOW WITH USING BAFFLES 1 Vikram Bishnoi

Ravi Kumar Singh*, K. B. Sahu**, Thakur Debasis Mishra***

TWO-DIMENSIONAL FINITE ELEMENT ANALYSIS OF FORCED CONVECTION FLOW AND HEAT TRANSFER IN A LAMINAR CHANNEL FLOW

Simulation of magneto-hydrodynamic (MHD) flows: electric potential formulation

Differential Relations for Fluid Flow. Acceleration field of a fluid. The differential equation of mass conservation

ME6130 An introduction to CFD 1-1

CFD SIMULATION OF SDHW STORAGE TANK WITH AND WITHOUT HEATER

Heat Transfer Prof. Dr. Ale Kumar Ghosal Department of Chemical Engineering Indian Institute of Technology, Guwahati

Basic Equations, Boundary Conditions and Dimensionless Parameters

Lecture 6 - Boundary Conditions. Applied Computational Fluid Dynamics

Express Introductory Training in ANSYS Fluent Lecture 1 Introduction to the CFD Methodology

Graduate Certificate Program in Energy Conversion & Transport Offered by the Department of Mechanical and Aerospace Engineering

Comparison of Heat Transfer between a Helical and Straight Tube Heat Exchanger

Effect of Aspect Ratio on Laminar Natural Convection in Partially Heated Enclosure

NUMERICAL INVESTIGATION OF HEAT AND MASS TRANSFER IN A REFRIGERATED TRUCK COMPARTMENT

OpenFOAM Opensource and CFD

Tomasz STELMACH. WindSim Annual User Meeting 16 June 2011

NUCLEAR ENERGY RESEARCH INITIATIVE

Overset Grids Technology in STAR-CCM+: Methodology and Applications

CONVERGE Features, Capabilities and Applications

Aerodynamic Department Institute of Aviation. Adam Dziubiński CFD group FLUENT

Abaqus/CFD Sample Problems. Abaqus 6.10

Part IV. Conclusions

Numerical Model for the Study of the Velocity Dependence Of the Ionisation Growth in Gas Discharge Plasma

Introduction to COMSOL. The Navier-Stokes Equations

Magnetohydrodynamic free convection between vertical parallel porous plates in the presence of induced magnetic field

Keywords: Heat transfer enhancement; staggered arrangement; Triangular Prism, Reynolds Number. 1. Introduction

Use of OpenFoam in a CFD analysis of a finger type slug catcher. Dynaflow Conference 2011 January , Rotterdam, the Netherlands

Monifysikaalisten ongelmien simulointi Elmer-ohjelmistolla. Simulation of Multiphysical Problems with Elmer Software

. Address the following issues in your solution:

Feature Commercial codes In-house codes

Differential Balance Equations (DBE)

CHAPTER 4 CFD ANALYSIS OF THE MIXER

POURING THE MOLTEN METAL

Adaptation and validation of OpenFOAM CFD-solvers for nuclear safety related flow simulations

How To Model With Cfd Using Phoenics

CFD Applications using CFD++ Paul Batten & Vedat Akdag

Effect of design parameters on temperature rise of windings of dry type electrical transformer

Natural Convective Heat Transfer from Inclined Narrow Plates

CFD Analysis of a butterfly valve in a compressible fluid

AN EFFECT OF GRID QUALITY ON THE RESULTS OF NUMERICAL SIMULATIONS OF THE FLUID FLOW FIELD IN AN AGITATED VESSEL

HEAT TRANSFER IM LECTURE HOURS PER WEEK THERMODYNAMICS - IM _1

NUMERICAL ANALYSIS OF THE EFFECTS OF WIND ON BUILDING STRUCTURES

THE CFD SIMULATION OF THE FLOW AROUND THE AIRCRAFT USING OPENFOAM AND ANSA

CFD Simulation of Subcooled Flow Boiling using OpenFOAM

Laminar Flow and Heat Transfer of Herschel-Bulkley Fluids in a Rectangular Duct; Finite-Element Analysis

Numerical simulations of heat transfer in plane channel

THREE-DIMENSIONAL INSERT MOLDING SIMULATION IN INJECTION MOLDING

COMPUTATIONAL FLOW MODEL OF WESTFALL'S 4000 OPEN CHANNEL MIXER R1. By Kimbal A. Hall, PE. Submitted to: WESTFALL MANUFACTURING COMPANY

INTERNATIONAL JOURNAL OF MECHANICAL ENGINEERING AND TECHNOLOGY (IJMET)

3. Prescribe boundary conditions at all boundary Zones:

MAXIMISING THE HEAT TRANSFER THROUGH FINS USING CFD AS A TOOL

Finite Element Modules for Enhancing Undergraduate Transport Courses: Application to Fuel Cell Fundamentals

Natural Convection. Buoyancy force

NUMERICAL SIMULATION OF FLOW FIELDS IN CASE OF FIRE AND FORCED VENTILATION IN A CLOSED CAR PARK

Introduction to Computational Fluid Dynamics (CFD) for Combustion. (801)

EXPERIMENTAL AND CFD ANALYSIS OF A SOLAR BASED COOKING UNIT

How To Run A Cdef Simulation

Effect of Pressure Ratio on Film Cooling of Turbine Aerofoil Using CFD

CFD Application on Food Industry; Energy Saving on the Bread Oven

Energy Efficient Data Center Design. Can Ozcan Ozen Engineering Emre Türköz Ozen Engineering

Comparative Analysis of Gas Turbine Blades with and without Turbulators

How To Model A Horseshoe Vortex

CCTech TM. ICEM-CFD & FLUENT Software Training. Course Brochure. Simulation is The Future

Fundamentals of CFD and Data Center Cooling Amir Radmehr, Ph.D. Innovative Research, Inc.

GT ANALYSIS OF A MICROGASTURBINE FED BY NATURAL GAS AND SYNTHESIS GAS: MGT TEST BENCH AND COMBUSTOR CFD ANALYSIS

Learning Module 4 - Thermal Fluid Analysis Note: LM4 is still in progress. This version contains only 3 tutorials.

Flow distribution and turbulent heat transfer in a hexagonal rod bundle experiment

Eco Pelmet Modelling and Assessment. CFD Based Study. Report Number R1D1. 13 January 2015

Science Standard Articulated by Grade Level Strand 5: Physical Science

1. Lid driven flow in a cavity [Time: 1 h 30 ]

Customer Training Material. Lecture 2. Introduction to. Methodology ANSYS FLUENT. ANSYS, Inc. Proprietary 2010 ANSYS, Inc. All rights reserved.

CFD modelling of floating body response to regular waves

Coupling Forced Convection in Air Gaps with Heat and Moisture Transfer inside Constructions

MEL 807 Computational Heat Transfer (2-0-4) Dr. Prabal Talukdar Assistant Professor Department of Mechanical Engineering IIT Delhi

Computational Fluid Dynamics. Department of Aerospace Engineering, IIT Bombay

OPEN-SOURCE CFD ANALYSIS OF MULTI-DOMAIN UNSTEADY HEATING WITH NATURAL CONVECTION

Multiphase Flow - Appendices

CFD Application on Food Industry; Energy Saving on the Bread Oven

Model of a flow in intersecting microchannels. Denis Semyonov

NUMERICAL INVESTIGATIONS ON HEAT TRANSFER IN FALLING FILMS AROUND TURBULENCE WIRES

A COMPUTATIONAL FLUID DYNAMICS STUDY ON THE ACCURACY OF HEAT TRANSFER FROM A HORIZONTAL CYLINDER INTO QUIESCENT WATER

Innovation with CFD. Solutions and Equipment

Simulation of Fluid-Structure Interactions in Aeronautical Applications

CFD STUDY OF TEMPERATURE AND SMOKE DISTRIBUTION IN A RAILWAY TUNNEL WITH NATURAL VENTILATION SYSTEM

2. CHRONOLOGICAL REVIEW ABOUT THE CONVECTIVE HEAT TRANSFER COEFFICIENT

Introduction to CFD Analysis

Computational Fluid Dynamic Modeling Applications

OpenFOAM simulations of the Turbulent Flow in a Rod Bundle with Mixing Vanes

2013 Code_Saturne User Group Meeting. EDF R&D Chatou, France. 9 th April 2013

Turbulence Modeling in CFD Simulation of Intake Manifold for a 4 Cylinder Engine

HPC Deployment of OpenFOAM in an Industrial Setting

Transcription:

SIMULATION OF LIQUID METAL MHD FLOWS IN COMPLEX GEOMETRIES Vinayak Eswaran Department of Mechanical Engineering Indian Institute of Technology Kanpur (with V.Naveen, R. Paniharan, Profs M.K.Verma and K.Muralidhar)

Main features of a CFD software being developed at IITK (2004- ) The aim is to develop a general-purpose CFD code which will allow the numerical solutions of a wide variety of problems with flow and heat-transfer, chemical reaction, combustion, turbulence, and many other specialized applications, run on a parallel cluster, allow used-defined modules, and be capable of enhancement and a life of 20 years

Brief Overview of Solver Features. A multi-block Finite-volume solver for nonorthogonal hexahedral grids, that can read grids and write solutions in CGNS format. Solves Navier Stokes, Continuity, Temperature and Species transport equations, for constant density and variable density flows. Solves 2-D, 2-D axi-symmetric and 3-D problems in complex geometries. Time Stepping Schemes: First order (Implicit) and Second order (Crank Nicolson) schemes.

Physics incorporated in the Solver Conduction in solids Laminar and turbulent (6 models) forced, natural and mixed convection Conjugate Heat transfer with laminar and turbulent flows Melting and solidification problems Variable density laminar and turbulent flows Reactive laminar and turbulent flows with variable density Combustion with fast chemistry

Physics Flow of ionised gasses in electric fields Flow and contaminant transport through ground-water and porous media Thermal radiation in enclosures Combined flow and thermal radiation in participative media Homogeneous equilibrium model for two-phase flow Two-fluid model for gas-liquid two-phase flow (with turbulence model) Two-fluid model for particle-gas two-phase flow (with turbulence model)

A typical application :Temperature Distribution in a Heat Exchanger : This is a conjugate heat transfer problem. Here the velocity and temperature distribution through out the Heat Exchanger vessel is to be simulated numerically using turbulence models, and the temperature distribution in the vessel walls is to be found.

NUMERICAL SIMULATION OF LIQUID METAL MHD FLOWS WITH IMPOSED AND INDUCED MAGNETIC FIELD Magneto Hydro Dynamics deals with flows of electrically conducting and non-magnetic fluids which are subjected to a magnetic field. Typical industrial applications of liquid metal MHD flows include electromagnetic flow meter, conduction pump, liquid metal blankets in fusion reactor etc.

Governing Equations (for induction-less approach) Derived from Maxwell s equations and Navier-Stokes and continuity equation

Governing Equations (including induced magnetic field) In addition we also solve the induction equation: where is the magnetic diffusivity.

Important Parameters Hartmann number: Interaction parameter or Stuart number: Magnetic Reynolds number:

Solution methodology Structured, non-uniform, non-orthogonal and collocated grid. FVM Discretization. Semi-coupled method. BTCS with blending of QUICK/upwind for convection terms.

Results

Hartmann Flow The steady flow of liquid metal between infinitely broad parallel plates in presence of magnetic field. Analytical solution given by Chang et. al. (1961)

where c is the wall conductance ratio

Insulating walls Variation of velocity for Re m =10

Perfectly conducting walls Variation of velocity for Re m =1

Arbitrary conducting walls Variation of velocity for Re m =10

Buoyancy driven convection in a rectangular cavity in presence of magnetic field (induction-less): Schematic of the problem

Stream lines of the flow a) Ha = 0; b) Ha = 5; c) Ha = 50; d) Ha = 100

Comparison of horizontal velocity with the analytical solution given by Garandet et. al. (1992)

Variation of normalized vertical velocity along the horizontal direction at the mid length of the cavity

Isotherms Isotherms giving the temperature distribution in the cavity a) Ha = 0; b) Ha = 5; c) Ha = 50; d) Ha = 100

Variation of applied magnetic field along the length of the channel

Variation of axial velocity for Ha=10 and Re m =1

Flow in 3D channel (Induction-less approach) Ha=0 Ha=5 Insulated walls

Contd. Ha=10 Ha=20

Induction less approach (M-profile) M-Profile for Ha=50

M-Profile for Ha=600

Conclusions An algorithm is developed for solving velocity and magnetic field to simulate MHD flows. The present algorithm works well for capturing flow and magnetic fields accurately for several cases of channel flows. The induction less algorithm works well for 3-D geometries and captures the familiar M-profile.

Scope for the future work Code should be thoroughly tested on complex geometries. In case of high Hartmann numbers grids need to be finer especially near the wall due to Hartmann layer and side layer. This can be eliminated by core flow approximation.

THANK YOU

Boundary conditions for Φ The boundary conditions at the inlet and the exit are chosen such that no electric currents leave or enter the domain. for insulating walls for perfectly conducting walls

Boundary conditions for Arbitrary conducting walls:

Boundary conditions for B The boundary conditions for the total magnetic field : At the inlet a homogeneous Dirichlet condition is specified and at outlet homogeneous Neumann condition is given. for perfectly conducting walls for insulating walls depending on the direction in which magnetic field is applied or.