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Finite element simulation on the deep drawing of titanium thin-walled surface part 被引量:2

Finite element simulation on the deep drawing of titanium thin-walled surface part
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摘要 The deep drawing of titanium thin-walled surface part was simulated based on a self-developed three-dimensional finite element model. After an investigation on forming rules, a virtual orthogonal experimental design was adopted to determine the significance of processing parameters, such as die radius, blank holder force, and friction coefficient, on the forming process. The distributions of thickness and equivalent plastic strain of the drawn part were evaluated. The results show that die radius has a relative major influence on the deep drawing process, followed by friction coefficient and blank holder force. The deep drawing of titanium thin-walled surface part was simulated based on a self-developed three-dimensional finite element model. After an investigation on forming rules, a virtual orthogonal experimental design was adopted to determine the significance of processing parameters, such as die radius, blank holder force, and friction coefficient, on the forming process. The distributions of thickness and equivalent plastic strain of the drawn part were evaluated. The results show that die radius has a relative major influence on the deep drawing process, followed by friction coefficient and blank holder force.
出处 《Rare Metals》 SCIE EI CAS CSCD 2010年第1期108-113,共6页 稀有金属(英文版)
基金 supported by the National Key Basic Research Program of China (No. 2007CB613802) the National Natural Science Foundation of China (No. 50805121) China Postdoctoral Science Foundation (No. 20080440192)
关键词 deep drawing titanium alloy finite element simulation orthogonal experiment processing parameters deep drawing titanium alloy finite element simulation orthogonal experiment processing parameters
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