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Forming an Age Hardenable Aluminum Alloy with Intermediate Annealing

机译:形成具有中间退火的年龄清除铝合金

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A method to improve formability of aluminum sheet alloys by a two-stage stamping process with intermediate annealing was developed for a non-age hardenable Al-Mg alloy where the annealing heat treatment provided recovery of cold work from the initial stamping and recrystallization of the microstructure to enhance the forming limits of the material. This method was extended to an age hardenable, Al-Mg-Si alloy, which is complicated by the competing metallurgical effects during heat treatment including recovery (softening effect) vs. precipitation (hardening effect). An annealing heat treatment process condition was discovered wherein the stored strain energy from an initial plastic deformation can be sufficiently recovered to enhance formability in a second deformation; however, there is a deleterious effect on subsequent precipitation hardening. The improvement in formability was quantified with uniaxial tensile tests as well as with the forming limit diagram. Since strain-based forming limit curves (FLC) are sensitive to pre-strain history, both stress-based FLCs and polar-effective-plasticstrain (PEPS) FLCs, which are path-independent, were used to evaluate the forming limits after preform annealing. A technique was developed to calculate the stress-based FLC in which a residual-effective-plastic-strain (REPS) was determined by overlapping the hardening curve of the pre-strained and annealed material with that of the simplyannealed-material. After converting the strain-based FLCs using the constant REPS method, it was found that the stress-based FLCs and the PEPS FLCs of the post-annealed materials were quite similar and both tools are applicable for evaluating the forming limits of Al-Mg-Si alloys for a two-step stamping process with intermediate annealing.
机译:用于改善具有中间退火的两阶段冲压过程改善铝板合金的可成形性的方法,用于非年龄淬灭的Al-Mg合金,其中退火热处理从微观结构的初始冲压和再结晶中提供了冷加工的回收增强材料的形成限制。该方法延伸到可硬化的Al-Mg-Si合金的年龄,通过在热处理期间的竞争冶金效应复杂,包括恢复(软化效果)与沉淀(硬化效果)。发现退火热处理过程条件,其中可以充分回收来自初始塑性变形的储存应变能以增强第二变形的可成形性;然而,对随后的沉淀硬化存在有害影响。用单轴拉伸试验以及成形限制图量化成形性的改善。由于基于应变的成形限制曲线(FLC)对预防历史敏感,因此基于应力的FLC和极性有效的塑料串(PEPS)FLC,其与路径无关,用于评估预制件退火后的成形限制。开发了一种技术以计算基于应力的FLC,其中通过将预压和退火材料的硬化曲线与纯的材料的硬化曲线重叠来确定残留有效塑性菌株(Reps)。使用恒定的REPS方法转换基于应变的FLC后,发现基于应力的FLC和退火后材料的PEPS FLC非常相似,两种工具适用于评估Al-Mg的成形限制 - Si合金用于双层冲压过程,中间退火。

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