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The mechanics of superplastic forming - how to incorporate and model superplastic and superplastic-like conditions

机译:超塑性成型的机制 - 如何掺入和模型超塑性和超塑性状况

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Much work has been carried out in understanding the mechanics of superplasticity (SP). Some of the present challenges in SP forming revolve around the use of lower forming temperatures and faster strain rates, which may involve pushing the process boundaries to incorporate "superplastic-like" forming - perhaps also in materials with non-optimized microstructures. For process optimization there is a requirement to be able to model both within the SP and superplastic-like processing window in an integrated way. From a mechanics point of view the presence of high rate sensitivity is often seen as the key factor in controlling SP response. However, changes in phase distribution and grain morphology, or the accumulation of damage (cavitation) may compromise this assumption. The paper will examine the range of validity of some SP constitutive models and how they may be adapted to take into account processing routes that may incorporate superplastic-like and more conventional SP deformation modes.
机译:在理解超塑性的机制(SP)时已经进行了很多工作。 SP形成中的一些挑战围绕使用较低的成形温度和更快的应变率,这可能包括推动过程边界,以掺入“超塑性”成形 - 也许是具有非优化微结构的材料。对于流程优化,需要以综合方式能够在SP和超级塑类类处理窗口内进行建模。从机械角度来看,高速灵敏度的存在通常被视为控制SP响应的关键因素。然而,相分布和晶粒形态的变化,或损坏(空化)的累积可能会损害这种假设。本文将检查一些SP组成型模型的有效范围及其如何适应考虑到可掺入超级塑性和更传统的SP变形模式的处理路线。

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