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Optimising FEV BIW Architecture
from a Styling Envelope
Jesper Christensen
Coventry University, UK
Agenda

• Introduction
• Purpose & proposed methodology
• Topology optimisation
    •   Lessons learnt
    •   Crash structure and safety cell
    •   “Automation”
• Shape & size optimisation
    •   Crash structure development
    •   Safety cell development
    •   “Automation”
• Conclusion and future steps
Introduction

•   Low Carbon Vehicle Technology Project, ongoing TARF
•   £29 million research project
• Project partners:




        Define a methodology for developing a
           lightweight vehicle architecture (BIW)
Purpose & proposed methodology

• Define a methodology for developing a lightweight architecture
• Requirements:
    •   Vehicle may be Fully Electric (FE) or Hybrid Electric (HE)
• How?
    •   “Conventional” BIW development
    •   Optimising “pre-existing” BIW
                                                  1.CAD model (design envelope)
    •   Blank sheet     use optimisation

                                                       2.Topology optimisation

               Overall aims:
                                                    3.Shape- & size optimisation
        Minimise BIW mass
        Meet safety requirements
                                                              4.BIW draft
Topology optimisation

                        1. CAD model (design envelope)


                          2. Topology optimisation


                         3. Shape- & size optimisation


                                 4. BIW draft
Topology optimisation

                                                        1. CAD model (design envelope)


                                                          2. Topology optimisation


                                                         3. Shape- & size optimisation


                                                                 4. BIW draft




                                                  15-20 minutes / model


                                                   30 seconds / model

  GUI – “Automatic” topology optimisation setup - tcl

 Barrier     Wheel and          Auxiliary    Constraints
Creation     suspension       components
Topology   Shape- & size optimisation

                                        1. CAD model (design envelope)


                                           2. Topology optimisation


                                         3. Shape- & size optimisation


                                                 4. BIW draft




                                          Safety cell
Shape- & size optimisation

                             1. CAD model (design envelope)


                                2. Topology optimisation


                             3. Shape- & size optimisation


                                      4. BIW draft
Shape- & size optimisation

                                  1. CAD model (design envelope)


                                      2. Topology optimisation


                                   3. Shape- & size optimisation


                                            4. BIW draft




                                 Crash structure




                             `
BIW draft

                                      1. CAD model (design envelope)


                                         2. Topology optimisation


                                       3. Shape- & size optimisation


                                               4. BIW draft

  Crash structure       Safety cell




            BIW draft
Conclusion and future steps

                                                      1.CAD model (design envelope)
Conclusions:
 Good for (rapid) initial BIW load path estimations       2.Topology optimisation
 Good for safety cell development
 Inertia Relief
 Limitations of linear elastic software                 3.Shape- & size optimisation
 Interpretations of results are vital
 HM tcl scripting enables rapid model setup
                                                                4.BIW draft
Future steps:
 Non-linear topology optimisation (ESLM?)
 Joint modelling (multiple materials)
 Increased consideration of manufacturing constraints
 Consideration of shape- and size opt. within topology opt.
 Combined linear and non-linear topology optimisation
Conclusion and future steps

                                                      1.CAD model (design envelope)
Conclusions:
 Interpretations of results are vital                     2.Topology optimisation


                                                        3.Shape- & size optimisation


                                                                 4.BIW draft
Future steps:
  “Automatic” / mathematical extraction of results   CAD model
Conclusion and future steps

                                                        1.CAD model (design envelope)
Conclusions:
 Excellent for lightweight crash structure development    2.Topology optimisation
 Robust, stable and efficient response surfaces
 Excellent coupling with Dynamic modelling
 Excellent sampling point options                      3.Shape- & size optimisation


                                                                 4.BIW draft
Future steps:
 “Automation” / template building (as topology setup)
 “Direct link” with topology optimisation
Thank you for your attention – any questions?



                         Jesper Christensen
                         Lecturer in Stress Analysis
                         aa8867@coventry.ac.uk

                         Christophe Bastien
                         Principal Lecturer Automotive Engineering
                         aa3425@coventry.ac.uk

                         Mike V Blundell
                         Professor of Vehicle Dynamics & Impact
                         cex403@coventry.ac.uk

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Optimising Full Electric Vehicle Body In White Architecture from a Styling Envelope

  • 1. Optimising FEV BIW Architecture from a Styling Envelope Jesper Christensen Coventry University, UK
  • 2. Agenda • Introduction • Purpose & proposed methodology • Topology optimisation • Lessons learnt • Crash structure and safety cell • “Automation” • Shape & size optimisation • Crash structure development • Safety cell development • “Automation” • Conclusion and future steps
  • 3. Introduction • Low Carbon Vehicle Technology Project, ongoing TARF • £29 million research project • Project partners: Define a methodology for developing a lightweight vehicle architecture (BIW)
  • 4. Purpose & proposed methodology • Define a methodology for developing a lightweight architecture • Requirements: • Vehicle may be Fully Electric (FE) or Hybrid Electric (HE) • How? • “Conventional” BIW development • Optimising “pre-existing” BIW 1.CAD model (design envelope) • Blank sheet use optimisation 2.Topology optimisation Overall aims: 3.Shape- & size optimisation Minimise BIW mass Meet safety requirements 4.BIW draft
  • 5. Topology optimisation 1. CAD model (design envelope) 2. Topology optimisation 3. Shape- & size optimisation 4. BIW draft
  • 6. Topology optimisation 1. CAD model (design envelope) 2. Topology optimisation 3. Shape- & size optimisation 4. BIW draft 15-20 minutes / model 30 seconds / model GUI – “Automatic” topology optimisation setup - tcl Barrier Wheel and Auxiliary Constraints Creation suspension components
  • 7. Topology Shape- & size optimisation 1. CAD model (design envelope) 2. Topology optimisation 3. Shape- & size optimisation 4. BIW draft Safety cell
  • 8. Shape- & size optimisation 1. CAD model (design envelope) 2. Topology optimisation 3. Shape- & size optimisation 4. BIW draft
  • 9. Shape- & size optimisation 1. CAD model (design envelope) 2. Topology optimisation 3. Shape- & size optimisation 4. BIW draft Crash structure `
  • 10. BIW draft 1. CAD model (design envelope) 2. Topology optimisation 3. Shape- & size optimisation 4. BIW draft Crash structure Safety cell BIW draft
  • 11. Conclusion and future steps 1.CAD model (design envelope) Conclusions: Good for (rapid) initial BIW load path estimations 2.Topology optimisation Good for safety cell development Inertia Relief Limitations of linear elastic software 3.Shape- & size optimisation Interpretations of results are vital HM tcl scripting enables rapid model setup 4.BIW draft Future steps: Non-linear topology optimisation (ESLM?) Joint modelling (multiple materials) Increased consideration of manufacturing constraints Consideration of shape- and size opt. within topology opt. Combined linear and non-linear topology optimisation
  • 12. Conclusion and future steps 1.CAD model (design envelope) Conclusions: Interpretations of results are vital 2.Topology optimisation 3.Shape- & size optimisation 4.BIW draft Future steps: “Automatic” / mathematical extraction of results CAD model
  • 13. Conclusion and future steps 1.CAD model (design envelope) Conclusions: Excellent for lightweight crash structure development 2.Topology optimisation Robust, stable and efficient response surfaces Excellent coupling with Dynamic modelling Excellent sampling point options 3.Shape- & size optimisation 4.BIW draft Future steps: “Automation” / template building (as topology setup) “Direct link” with topology optimisation
  • 14. Thank you for your attention – any questions? Jesper Christensen Lecturer in Stress Analysis aa8867@coventry.ac.uk Christophe Bastien Principal Lecturer Automotive Engineering aa3425@coventry.ac.uk Mike V Blundell Professor of Vehicle Dynamics & Impact cex403@coventry.ac.uk