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Li, Danshi: Lightweight concept design of economical FRTP-metal multi-material vehicle doors. 2021
Inhalt
Title page
Acknowledgement
Zusammenfassung
Abstract
Content
Abbreviation
Symbol
1 Introduction
1.1 Motivation
1.2 Objective and structure of the work
2 State of the art
2.1 Fiber-reinforced thermoplastics for lightweight vehicles
2.1.1 Typical categories of FRTP material on lightweight vehicles
2.1.2 Typical mass-production-oriented manufacturing methods for FRTPs
2.2 Lightweight construction methods for FRP BIW components and applications
2.2.1 Integral and integrative construction
2.2.2 Multi-material construction
2.3 Typical construction of vehicle door
2.3.1 Door classification based on load-bearing structures
2.3.2 Door classification based on window frame structures
2.4 Door requirements definition
2.4.1 General requirements
2.4.2 Static loading cases
2.4.3 Crash loading cases
2.5 Existing lightweight studies and applications on vehicle doors
2.5.1 Lightweight door with steel
2.5.2 Lightweight door with light alloy
2.5.3 Lightweight door with fiber reinforced plastic (FRP)
2.6 Mass-production-oriented joining techniques for FRTPs and multi-material components
2.6.1 General
2.6.2 Joining between FRTPs
2.6.3 Joining between FRTP and metal
2.7 Component development method with limited BIW data
2.8 Summary and cognition of the state-of-the-art technology
3 Concept, development process, and requirements
3.1 The multi-material door concept
3.1.1 Preliminary FLB concept (starting point)
3.1.2 New concept ideas
3.1.3 Material choice and property – LFT and UD Tape
3.2 Development goal and process
3.3 Summary of general FEA modeling techniques
3.3.1 Static simulation with Abaqus (reference door)
3.3.2 Topology-, parameter optimization, and static performance validation with OptiStruct (concept door)
3.3.3 Crash simulation with Ls-Dyna (reference and concept door)
4 Reference door analysis
4.1 Structural analysis
4.2 Performance analysis
4.2.1 Static loading cases and anisotropy analysis
4.2.2 Crash loading cases
4.2.3 Implementable test bench design for a component development method
5 Structural development with topology optimization
5.1 Concept 1
5.1.1 Design space definition
5.1.2 Frame area design
5.1.3 Inner panel area design
5.2 Concept 2
5.2.1 Design space definition
5.2.2 Frame and inner panel area design
6 Door concept, structural validation, and parameteroptimization
6.1 Concept 1
6.2 Concept 2
6.3 Comparison and evaluation of different door concepts
6.3.1 Weight and mechanical performance
6.3.2 Manufacturability and cost
6.4 Rapid prototyping with additive manufacturing
7 FRTP-metal multi-material door – opportunity and challenge in mass manufacturing
7.1 Cost for manufacturer
7.1.1 Investment cost
7.1.2 Material cost
7.1.3 Manufacturing cost
7.2 Reliability for customer use
7.3 Environment effect
7.3.1 Recycling
7.3.2 Life cycle analysis
8 Summary and outlook
8.1 Summary
8.2 Outlook
9 Reference
10 Appendix
10.1 Intrusion and intrusion velocity comparison of component development method
10.2 Bill of material of the FLB-concept
10.3 Detail of the FE model for the crash simulation
10.3.1 Important modeling requirement for the full vehicle crash simulation
10.3.2 *Mat_24 in Ls-Dyna with the stain rate dependency
10.3.3 Modeling UD-Tape with *Mat_54 in Ls-Dyna
10.4 Bill of material of the reference door
10.5 Schematics of the door static test bench (CAD)
10.6 Maximal intrusion comparison between concept 1 and the reference
10.7 Maximal intrusion comparison between concept 2 and the reference
10.8 Door material cost calculation and comparison
10.9 Life cycle analysis on automotive door outer panel