Experimental Analysis of Displacements and Shears at the Surface on Contact between Two Loaded Bodies,

Abstract

The displacements which exist at the contact between two loaded bodies depend on the geometry of the surface of contact, the type of the loading and the property of the materials. A method has been developed to determine these displacements experimentally. A grid has been photographically printed on an interior plane of a transparent model of low modulus of elasticity. The displacements were recorded photographically and the analysis was conducted on the photographs of the deformed grids. Shears were determined from the change in angles. The precision of the measurements at the interface is estimated to be plus or minus 0.05 mm. Examples of application are given for the cases of loads applied normally and tangentially to a rigid cylindrical punch resting on a semi-infinite soft plate. Important observations can be made on the zones of friction and of slip. The proposed method is three-dimensional and the distributions can be obtained at several interior planes by changing the position of the plane of the grid. The limitations of the method are pointed out. The possibility of using gratings (12 to 40 lpmm) is considered, as well as the advantages of using moire to analyze the displacements. (Author)

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Document Details

Document Type
Technical Report
Publication Date
Jul 01, 1980
Accession Number
ADA086949

Entities

People

  • Augusto J. Durelli
  • C. Bremond

Organizations

  • Oakland University

Tags

Communities of Interest

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

DTIC Thesaurus Topics

  • Air Force
  • Axial Loads
  • Civil Engineering
  • Composite Materials
  • Materials
  • Materials Science
  • Measurement
  • Mechanical Engineering
  • Mechanics
  • Military Research
  • Modulus Of Elasticity
  • Physics Laboratories
  • Propellant Grains
  • Propellants
  • Solid Propellants
  • Stress Analysis
  • Stresses

Readers

  • Combustion and Flow Dynamics.
  • Nanofabrication and Microfabrication.
  • Structural Dynamics.