Noncontact Acousto-Thermal Evaluation of Evolving Fatigue Damage in Polycrystalline Ti6Al-4V (Postprint)

Abstract

Non-Contact Acousto-Thermal Signature (NCATS) analysis uses conversion of acoustic energy to heat to characterize evolving damage in materials. In the past, the observed temperature changes were interpreted using phenomenological approaches. This paper presents details of the mechanisms and the theoretical models to predict the temperature change due to conversion of acoustic energy to heat. NCATS experimental measurements performed using 20 kHz high amplitude acoustic waves on as received and fatigued polycrystalline Ti-6Al-4V are compared with theoretical calculations based on the mechanisms of transverse thermal currents, inter-crystalline thermal currents, and dislocation density changes. In the as received samples, the transverse thermal currents contribution has been found to be negligible compared with inter-crystalline thermal currents contribution. The experimentally measured maximum temperature change in the as received sample has been found to be 0.5 ?C, and the theoretical prediction based on inter-crystalline thermal currents is 0.08 ?C. In the fatigue damaged samples, the maximum temperature change increases with increasing damage that can be attributed to the increasing dislocation density. The theoretical prediction of the maximum temperature attained by a sample that is near failure based on dislocation contribution is 2.0 ?C, while the experimental measurements have been found to be 0.95 ?C. The differences between the theoretical and the experimental measurements are discussed in the context of the uncertainties in several physical parameters used in the theoretical calculations.

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Document Details

Document Type
Technical Report
Publication Date
May 01, 2014
Accession Number
ADA614980

Entities

People

  • J. T. Welter
  • K. V. Jata
  • N. Schehl
  • S. Sathish

Organizations

  • University of Dayton Research Institute

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Acoustic Waves
  • Air Force
  • Air Force Facilities
  • Air Force Research Laboratories
  • Climate Change
  • Government Procurement
  • Governments
  • Information Exchange
  • Information Operations
  • Internal Friction
  • Manufacturing
  • Materials
  • Military Research
  • Polycrystals
  • Structural Integrity
  • Technical Information Centers
  • Test And Evaluation

Fields of Study

  • Materials science
  • Physics

Readers

  • Materials Science (Mechanical Engineering).
  • Plasma Physics.
  • Thermal Physics or Thermal Science.