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By Zone-ching Lin, You-min Huang, Liang-kuang Chen

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S. M. Wang, Formation, thermal stability and mechanical properties of bulk glassy alloys with a diameter of 20 mm in Zr-(Ti,Nb)-Al-Ni-Cu system, Mater. Trans. 50 (2009) 388-394. [22] E. Shapiro, ASM Handbook, Vol. 8, Mechanical Testing and Evaluation, ASM International, Materials Park, OH, 2000, pp. 172-184. F. Y. W. Y. Zeng, Y. Li, Stress gradient enhanced plasticity in a monolithic bulk metallic glass, Intermetallics 16 (2008) 1190-1198. Y. Chen, Q. Ge, S. K. P. Z. Jiang, Achieving large macroscopic compressive plastic deformation and work-hardening-like behavior in a monolithic bulk metallic glass by tailoring stress distribution, Appl.

For the adherends, we used the constants and constitutive equations in Fig. 3. 1 mm. 1. Results and Discussion Fig. 7 shows a comparison between different die radii. The shear deformation of the adhesive layer was not visually observed for the die radius R50, but bending and unbending occurred in the adhesive layer for the die radius R30. For the R20 and R10 radii, delamination in the adhesive layer occurred immediately after tension was applied. Thus, the die radius has a large influence on the bending behavior of the adhesively bonded sheet metals.

R. J. Withers, T. Mori, Materials Science Forum, Vol. 404-407 (2002), p. 489. R. G. Priesmayer, Acta Materialia, Vol. 50 (2002), p. 1613. [9] Y. Tomota, H. Tokuda, Y. Adachi, M. Wakita, N. Minakava, A. Morici, Z. Morici, Acta Materialia, vol. 52 (2004), p. 5737. [10] M. T. J. Withers, T. Holden, T. Lorentzen, Introduction to Characterization of Residual Stress by Neutron Diffraction, ISBN: 041531008, 2005. [11] A. B. Dreele, Technical report LA UR-86-748, Los Alamos National Laboratory, Los Alamos, NM, 1994.

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