PROPOSED METHOD OF CORRECTING MAGNETIC RECORDING BORESCOPE RESULTS FOR DETECTOR LIFT-OFF VARIATIONS

Abstract

The functional dependence of leakage field strength, associated with a crack-type defect, on the distance from the crack has been experimentally determined. Field strength measurements were used to generate empirical expressions relating the leakage field strength to lift-off distance. Equations were written for the normal and horizontal field components and the partial derivative of the horizontal component of the field strength with respect to horizontal distance from the crack, based on the assumption of a semicircular field pattern. Comparison of calculated values and the experimental data demonstrated that, over the range of interest, the semicircular field assumption adequately describes the field. Results of the analysis of the leakage field surrounding a crack suggested a method of correcting for the uncontrollable variations in lift-off which occur during magnetic recording borescope inspection of large caliber gun tubes. Curves required to make these corrections have been established for two specific types of detectors and a procedure for making the correction utilizing these curves is presented. Practical application of the correction to gun tube inspection is considered.

Open PDF

Document Details

Document Type
Technical Report
Publication Date
May 01, 1968
Accession Number
AD0670939

Entities

People

  • Kenneth A. Fowler

Organizations

  • United States Army Research Laboratory

Tags

Communities of Interest

  • Weapons Technologies

DTIC Thesaurus Topics

  • Borescopes
  • Coordinate Systems
  • Detection
  • Detectors
  • Diameters
  • Errors
  • Ferromagnetic Materials
  • Inspection
  • Magnetic Fields
  • Materials
  • Materials Testing
  • Measurement
  • Mechanics
  • Oscilloscopes
  • Photographs
  • United States
  • United States Government

Fields of Study

  • Physics

Readers

  • Computational Modeling and Simulation
  • Structural Health Monitoring of Composite Structures.
  • Wave Propagation and Nonlinear Chaotic Dynamics.