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http://dx.doi.org/10.3795/KSME-A.2014.38.12.1387

Material Stress Fringe Constant Measurement of Specimen under Pure Bending Load by Use of Photoelastic Phase Shifting Method  

Liu, Guan Yong (Dept. of Mechanical Engineering, Graduate College, Kunsan Nat'l Univ.)
Kim, Myung Soo (Dept. of Electronic Engineering, Kunsan Nat'l Univ.)
Baek, Tae Hyun (School of Mechanical and Automotive Engineering, Kunsan Nat'l Univ.)
Publication Information
Transactions of the Korean Society of Mechanical Engineers A / v.38, no.12, 2014 , pp. 1387-1394 More about this Journal
Abstract
In a photoelastic experiment, it is necessary to know the material stress fringe constant of the photoelastic specimen to determine the stresses from the measured isochromatic fringe orders. The material stress fringe constant can be obtained using a simple tension specimen and/or a circular disk under diametric compression. In these methods, there is generally a need to apply numerous loads to the specimen in response to the relationship of the fringe order. Then, the least squares method is used to obtain the material constant. In this paper, the fringe orders that appear on a four-point bending specimen are used to determine the fringe constant. This method requires four photoelastic fringes obtained from a circular polariscope by rotating the analyzer to 0, ${\pi}/4$, ${\pi}/2$, and $3{\pi}/4$ radians. Using the four-point bending specimen to determine the material stress fringe constant has an advantage because measurements can be made at different locations by applying a constant load. The stress fringe constant measured with this method is within the range suggested by the manufacturer of the photoelastic material.
Keywords
Photoelasticity; Material Fringe Constant; Phase Shifting Method; Isochromatic Fringe; Pure Bending;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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