Multidisciplinary Design Optimization of a Ground Vehicle Track for Durability and Survivability

Abstract

In this paper a Multi-Level System (MLS) optimization algorithm is presented and utilized for the multi-discipline design of a ground vehicle track. The MLS can guide the decision making process for designing a complex system where many alternatives and many mutually competing objectives and disciplines need to be considered and evaluated. Mathematical relationships between the design variables and the multiple discipline performance objectives are developed adaptively as the various design considerations are evaluated and as the design is being evolved. These relationships are employed for rewarding performance improvement during the decision making process by allocating more resources to the disciplines which exhibit the higher level of improvement. The track analysis demonstrates how a multi-discipline design approach can be pursued in ground vehicle applications. The main elements of the optimization analysis along with the results and the physical insight which can be gained from the optimal configuration are presented and discussed.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2012
Accession Number
ADA574668

Entities

People

  • Eric Maes
  • Matthew P. Castanier
  • Nicholas Stowe
  • Nickolas Vlahopoulos

Tags

Communities of Interest

  • Biomedical
  • Energy and Power Technologies
  • Ground and Sea Platforms

DTIC Thesaurus Topics

  • Algorithms
  • Assembly
  • Blast Loads
  • Computations
  • Dynamic Loads
  • Engineering
  • Explosives
  • Ground Vehicles
  • Manufacturing
  • Simulations
  • Survivability
  • Tracks
  • United States
  • United States Government
  • Vehicle Design
  • Vehicle Tracks
  • Vehicles

Readers

  • Aerospace Engineering
  • Distributed Systems and Data Platform Development
  • Systems Analysis and Design