A Hybrid Impulsive Scheme for Faster Than Real-Time Vehicle Loads Prediction

Abstract

Faster than real-time and real-time vehicle dynamic models run with fixed time step integrators, without accuracy control and usually apply numerous approximations to obtain a stable solution. These models generally provide very good descriptions of the system behavior, capturing the gross motions and character of the response. However, the consequence of approximation and the lack of error control is that the resulting loads cannot be trusted for structural design analysis. Nonetheless, these lightweight faster than real-time models are indispensible in concept development where an unlimited number of designs may be considered in the automated exploration of the design space. This work investigates a novel simulation technique in an attempt to converting the family of real-time vehicle dynamics models into reliable first order structural load predictors. The method applies an error estimator to the real-time fixed step integrator to identify loss of accuracy in stiff models with resolution to the offending degree(s) of freedom. Inaccurate and potentially unstable time steps are then replaced by an impulse-based solution and the time-step recomputed. The required impulsive load can then be transformed (on or off-line) into a repeatable and accurate load pseudo-time history through integration of an independent nonlinear contact event. A simple tracked vehicle model example is used to demonstrate the features of the solution which is validated by comparison to results obtained from fully integrated trajectories.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
Aug 17, 2010
Accession Number
ADA530754

Entities

People

  • James Critchley
  • Paramsothy Jayakumar

Organizations

  • United States Army Tank Automotive Research, Development and Engineering Center

Tags

Communities of Interest

  • Ground and Sea Platforms

DTIC Thesaurus Topics

  • Accuracy
  • Algorithms
  • Control Systems
  • Dynamics
  • Engineering
  • Errors
  • Ground Vehicles
  • Integrators
  • Intervals
  • Resilience
  • Simulations
  • Stiffness
  • Systems Engineering
  • Test And Evaluation
  • Time Intervals
  • Tracked Vehicles
  • Trajectories

Readers

  • Computational Modeling and Simulation
  • Finite Element Method (FEM) for solving Partial Differential Equations (PDEs)
  • Robotics and Automation.

Technology Areas

  • Space
  • Space - Spacecraft Maneuvers