Work package 8: ColMat L. Peroni, M. Scapin Dipartimento di Meccanica, Politecnico di Torino European Coordination for Accelerator Research and Development.

Slides:



Advertisements
Similar presentations
THE FINITE ELEMENT METHOD
Advertisements

SPECIAL PURPOSE ELEMENTS
ECMWF Governing Equations 1 Slide 1 Governing Equations I by Clive Temperton (room 124) and Nils Wedi (room 128)
PHOENICS Based Arc Models as a Test Tool
Evolutionary Structural Optimisation
Photon Collimation For The ILC Positron Target Lei Zang The University of Liverpool Cockcroft Institute 24 th March 2007.
Matt Rooney RAL The T2K Beam Window Matt Rooney Rutherford Appleton Laboratory BENE November 2006.
Finite element method Among the up-to-date methods of stress state analysis, the finite element method (abbreviated as FEM below, or often as FEA for analyses.
HiRadMat Beryllium thermal shock test Kavin Ammigan PASI 2 nd Annual Meeting RAL, UK April 2013 Contributors: P. Hurh, B. Hartsell.
LS-Dyna and ANSYS Calculations of Shocks in Solids Goran Skoro University of Sheffield.
Experimental methods for material measurements at high strain-rate
FE analysis with shell and axisymmetric elements E. Tarallo, G. Mastinu POLITECNICO DI MILANO, Dipartimento di Meccanica.
Explosive joining of dissimilar metals: experiment and numerical modeling Anan’ev S.Yu., Andreev A.V., Deribas A.A., Yankovskiy B.D. Joint Institute for.
1 BROOKHAVEN SCIENCE ASSOCIATES Nick Simos Brookhaven National Laboratory EXPERIENCE WITH IMPLICIT AND EXPLICIT CODES IN ANALYZING BEAM-INDUCED RAPID THERMO-MECHANICAL.
Work package 8: ColMat Collimators & materials for higher beam power beam Department of Mechanics Politecnico di Torino E uropean C oordination for A ccelerator.
UKNFWG 12 January 2005Chris Densham Shock Waves in Solid Targets Preliminary Calculations.
FE analysis with 3D elements
Solid Targets for the Neutrino Factory J R J Bennett Rutherford Appleton Laboratory, Chilton, Didcot, Oxon, OX11 0QX, UK
LS-Dyna and ANSYS Calculations of Shocks in Solids Goran Skoro University of Sheffield.
Studies of solid high-power targets Goran Skoro University of Sheffield HPT Meeting May 01 – 02, 2008 Oxford, UK.
LS-DYNA Simulations of Thermal Shock in Solids Goran Skoro University of Sheffield.
1 MAE 5130: VISCOUS FLOWS Momentum Equation: The Navier-Stokes Equations, Part 1 September 7, 2010 Mechanical and Aerospace Engineering Department Florida.
MuTAC Review - March Solid Target Studies N. Simos Brookhaven National Laboratory.
MCE 561 Computational Methods in Solid Mechanics
TED Thermomechanical Analyses Esposito Raffaele EN-STI-TCD.
Mechanical and fluidic integration of scintillating microfluidic channels into detector system 1 Davy Brouzet 10 th September 2014.
Introduction to virtual engineering László Horváth Budapest Tech John von Neumann Faculty of Informatics Institute of Intelligent Engineering.
Static & dynamic stresses from beam heating in targets & windows T. Davenne High Power Targets Group Rutherford Appleton Laboratory Science and Technology.
LS-Dyna and ANSYS Calculations of Shocks in Solids Goran Skoro University of Sheffield.
University of Chemical Technology and Metallurgy Department of Material Science and Engineering FINITEELEMENT METHOD By eng. Veselin Paunov Prof. Veselin.
CEE 262A H YDRODYNAMICS Lecture 5 Conservation Laws Part I 1.
Eucard Annual Meeting, April 2010 Jens Stadlmann / Synchrotron EuCard WP 8; ColMat Collimators and Materials.
Research at Welding Equipment and Engineering Department Speaker: Andrey Batranin, PhD. Student Tomsk Polytechnic University Non-destructive Testing Institute.
A Unified Lagrangian Approach to Solid-Fluid Animation Richard Keiser, Bart Adams, Dominique Gasser, Paolo Bazzi, Philip Dutré, Markus Gross.
Lessons learnt at 5 th High-Power Targetry Workshop Fermilab, May 2015 Federico Carra EN-MME ColUSM
Mechanical and fluidic integration of scintillating microfluidic channels into detector system 1 Davy Brouzet 10 th September 2014.
Ale with Mixed Elements 10 – 14 September 2007 Ale with Mixed Elements Ale with Mixed Elements C. Aymard, J. Flament, J.P. Perlat.
HEAT TRANSFER FINITE ELEMENT FORMULATION
Collimation for the Linear Collider 15 th Feb 2005 Chris Densham RAL Elastic Stress Waves in candidate Solid Targets for a Neutrino Factory.
© 2011 Autodesk Freely licensed for use by educational institutions. Reuse and changes require a note indicating that content has been modified from the.
Simulation of Waterjet Erosion
Parameters of the NF Target Proton Beam pulsed10-50 Hz pulse length1-2  s energy 2-30 GeV average power ~4 MW Target (not a stopping target) mean power.
A. Bertarelli, A. DallocchioEuCARD/ColMat Kick-off Meeting 17/06/2009 EuCARD/ColMat Kick-off Meeting EuCARD/ColMat Kick-off Meeting 17 th June, 2009 A.Bertarelli,
Project X - Kaon Targetry, N. Simos BNL Meeting March 1, Project X – Kaon Targetry N. Simos BNL.
G.Kurevlev - Daresbury meeting Collimators Material Damage Study Previous results In our group - Adriana Bungau’s thesis - heat deposition on.
Russian Research Center” Kurchatov Institute” Shock wave propagation near 450 GeV and 7 TeV proton beams in LHC collimator materials Alexander Ryazanov.
EuCARD-2 is co-funded by the partners and the European Commission under Capacities 7th Framework Programme, Grant Agreement EuCARD2 ColMat HDED.
Alessandro BertarelliTS department Seminar, 3 rd May 2006 EDMS Alessandro Dallocchio 1,2 Alessandro Bertarelli 1 1 TS department – Mechanical and Material.
A. Bertarelli – A. DallocchioWorkshop on Materials for Collimators and Beam absorbers, 4 th Sept 2007 LHC Collimators (Phase II): What is an ideal material.
III. Engineering Plasticity and FEM
Thanks to all members of organisation committee for the preparation of this event Thanks to all participants for their interest R.Schmidt Introduction.
G.Kurevlev - Manchester meeting1 Collimators Material Damage Study Previous results In our group - Adriana Bungau’s thesis - heat deposition on.
Wide-range Multiphase Equations of State and Radiative Opacity of Substances at High Energy Densities Konstantin V. Khishchenko, Nikolay Yu. Orlov Joint.
Thermo-mechanical modeling of high energy particle beam impacts M. Scapin*, L. Peroni*, A. Dallocchio** * Politecnico di Torino, Corso Duca degli Abruzzi,
Engineering Department ENEN Introduction to EuCARD2 WP 11: Collimator Materials for fast High Density Energy Density Deposition (ColMat-HDED) Alessandro.
Preliminary ANSYS Studies for Tungsten Collimators
on behalf of the Phase II Collimation Design team
Scientific investigations performed at RRC KI for
BUCKY Simulations of Z and RHEPP Experiments
Materials for extreme thermal management (PowerMat)
TCTW Collimator Design F. Carra1,2 A. Bertarelli, M. Garlasche, L
Federico Carra – EN-MME
EuCARD 1st Annual Meeting
2th EuCard Col/Mat WP Meeting
Static & dynamic stresses from beam heating in targets & windows
Parameters of the NF Target
Analytical Tools in ME Course Objectives
Summary of Modeling and Simulation Capabilities
Russian Research Center “ Kurchatov Institute”
Different approaches of numerical simulation of blast
Presentation transcript:

Work package 8: ColMat L. Peroni, M. Scapin Dipartimento di Meccanica, Politecnico di Torino European Coordination for Accelerator Research and Development Collimators & materials for higher beam power beam 2 nd WP meeting - 22 March 2010

DIMEC Dipartimento di Meccanica POLITO Actions

DIMEC Dipartimento di Meccanica The task 3 A fundamental aspect of this task is the development of competences and methodologies of analysis based to numerical simulations of the complete problem. To do this, it is essential to look to a multidisciplinary approach. As a matter of fact, the problem involves different fields, such as structural and mechanical engineering, thermodynamics, hydrodynamics and physics. Energy Physics Thermodynamics/hydrodynamicsStructural/mechanical engineering Pressure, density, temperature Stress, strain, damage CERN -FLUKA GSI - BIG2 CERN -ANSYS Complex geometry, material behaviour, boundaries…

DIMEC Dipartimento di Meccanica From a mechanical point of view 4 In each point of the structure we must identify the stress tensor; it can be expressed as the sum of two other stress tensors: a mean hydrostatic or volumetric stress tensor which tends to change the volume of the stressed body; a deviatoric component called the stress deviator tensor, which tends to distort it. Equation of state: Grüneisen Polynomial Tillotson GRAY Tabular (SESAME, EOSPRO…) p=f ( ,E,T…) Material model: Johnson–Cook Steinberg–Cochran–Guinan–Lund Zerilli–Armstrong Mechanical Threshold Stress Preston–Tonks–Wallace

DIMEC Dipartimento di Meccanica Glidcop/Copper 5 EOS (Copper) Constitutive plasticity model (Glidcop) Johnson Cook SESAMEBIG2 [ Bushman & Fortov]

DIMEC Dipartimento di Meccanica Plasticity - Temperature 6 850°C 150 °C Glidcop

DIMEC Dipartimento di Meccanica Plasticity - Strainrate 7 Glidcop Hopkinson Bar Taylor test 216 m/s Strainrate Taylor test SHPB

DIMEC Dipartimento di Meccanica Numerical modeling Objectives: Numerical simulation of a complex mechanical structure (collimator) subjected to beam impact: energy deposition, shock waves, damage … Numerical code: LSDyna General purpose transient dynamic finite element program capable of simulating complex real world problems. It is optimized for shared and distributed memory Unix Linux and Windows platforms. 2D and 3D Lagrangian, Eulerian, ALE, SPH, meshfree 8 Preliminary model (Benchmark) A Glidcop bar (5 mm radius, 1 m long) facially irradiated with 8 bunches of 7 TeV/c protons (each bunch comprises 1.15x10 11 protons) 2D axisymmetric FEM model elements Energy

DIMEC Dipartimento di Meccanica Numerical modeling - EOS 9 The particle beam energy distribution is applied by using a 200 ns ramp (constant power) Explicit integration scheme, time step magnitude ÷10 -9 s About 30 second of CPU time to simulate 10  s time step Since a LSDyna tabular EOS routine is under developing (using the user-def capabilities and the Fortran routine written for SESAME and CTH, thank you to Gerald Kerley) a polynomial EOS is used to fit tabular data. 

DIMEC Dipartimento di Meccanica Preliminary results (I) 10 Pressure (Pa) Temperature (K) Volumetric strain Density End of deposition t~200 ns - No increase of penetration depth of protons due to density reduction (FLUKA coupling in the future?) - Temperature evaluated with the heat capacity of solid (only for J-C model)

DIMEC Dipartimento di Meccanica Preliminary results (II) 11 Pressure (Pa) Volumetric strain 2E-8 s2E-7 s6E-7 s1E-6 s

DIMEC Dipartimento di Meccanica Preliminary results (III) 12 Von Mises (Pa) Strainrate (s -1 ) 2E-8 s2E-7 s6E-7 s1E-6 s

DIMEC Dipartimento di Meccanica Preliminar results (IV) 13 Elements deletion for high volumetric strain (low density) and low pressure Pressure  deletion

Thank you for your attention L. Peroni, M. Scapin Dipartimento di Meccanica, Politecnico di Torino European Coordination for Accelerator Research and Development