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Optimization of Process Parameters for the Manufacturing of Rocket Casings: A Study Using Processing Maps

机译:用于制造火箭筒的工艺参数的优化:使用加工图的研究

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Maraging steels possess ultrahigh strength combined with ductility and toughness and could be easily fabricated and heat-treated. Bulk metalworking of maraging steels is an important step in the component manufacture. To optimize the hot-working parameters (temperature and strain rate) for the ring rolling process of maraging steel used for the manufacture of rocket casings, a systematic study was conducted to characterize the hot working behavior by developing processing maps for gamma-iron and an indigenous 250 grade maraging steel. The hot deformation behavior of binary alloys of iron with Ni, Co, and Mo, which are major constituents of maraging steel, is also studied. Results from the investigation suggest that all the materials tested exhibit a domain of dynamic recrystallization (DRX). From the instability maps, it was revealed that strain rates above 10 s~(-1) are not suitable for hot working of these materials. An important result from the stress-strain behavior is that while Co strengthens gamma-iron, Ni and Mo cause flow softening. Temperatures around 1125 deg C and strain rate range between 0.001 and 0.1 s~(-1) are suitable for the hot working of maraging steel in the DRX domain. Also, higher strain rates may be used in the meta-dynamic recrystallization domain above 1075 deg C for high strain rate applications such as ring rolling. The micro-structural mechanisms identified from the processing maps along with grain size analyses and hot ductility measurements could be used to design hot-working schedules for maraging steel.
机译:马氏体时效钢具有超高强度,并具有延展性和韧性,并且易于制造和热处理。马氏体时效钢的大块金属加工是零件制造中的重要步骤。为了优化用于制造火箭筒的马氏体时效钢的环轧工艺的热加工参数(温度和应变率),进行了系统的研究,通过开发γ-铁和合金的加工图来表征热加工行为。本地250级马氏体时效钢。还研究了马氏体时效钢的主要成分铁与镍,钴和钼的二元合金的热变形行为。调查结果表明,所有测试的材料均表现出动态重结晶(DRX)域。从不稳定性图中可以看出,高于10 s〜(-1)的应变速率不适用于这些材料的热加工。应力应变行为的一个重要结果是,尽管Co增强了γ-铁,但Ni和Mo引起了流动软化。 1125摄氏度左右的温度和0.001至0.1 s〜(-1)的应变速率范围适合在DRX域中对马氏体时效钢进行热加工。此外,对于高应变速率应用(例如环轧),可以在1075℃以上的亚动态重结晶域中使用较高的应变速率。从加工图确定的微观结构机制以及晶粒尺寸分析和热延展性测量可用于设计马氏体时效钢的热加工时间表。

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