首页> 外文期刊>Industrial and organizational psychology >Model-Based Residual Stress Design in Multiphase Seamless Steel Tubes
【24h】

Model-Based Residual Stress Design in Multiphase Seamless Steel Tubes

机译:多相无缝钢管中模型的残余应力设计

获取原文
获取原文并翻译 | 示例
       

摘要

Residual stresses in quenched seamless steel tubes highly depend on the cooling conditions to which the tubes have been subjected. The design aspect of how to use controlled cooling strategies in multiphase steel tubes to achieve certain residual stress and phase configurations is discussed. In an experimentally validated finite element (FE) model considering a coupled evolution of martensite and bainite, three cooling strategies are tested for a low-alloyed 0.25 wt.% C steel tube. The strategies are (i) external cooling only, (ii) internal and external cooling for low residual stresses in a mainly martensitic tube, and (iii) internal and external cooling with low cooling rate for a mainly bainitic tube. The strategies represent design cases, where low residual stresses with different phase compositions are provoked, in order to show the potential of numerical analysis for residual stress and property design. It can be concluded that, for the investigated steel class, intense external cooling leads to a characteristic residual stress profile regardless of the dimension. A combination of external and internal cooling allows a more flexible design of residual stress and phase distribution by choosing different cooling parameters (i.e., water amount and cooling times). In general, lower cooling rates lead to lower thermal misfit strains, and thus less plasticity and lower residual stresses.
机译:淬火无缝钢管中的残余应力高度取决于管道所经受的冷却条件。讨论了如何在多相钢管中使用控制冷却策略的设计方面,以实现某些残余应力和相位配置。在考虑到马氏体和贝氏体的耦合演化的实验验证的有限元(FE)模型中,测试了三种冷却策略,用于低合金化0.25重量%。%C钢管。该策略仅是外部冷却,(ii)主要的马氏体管中的低残留应力的内部和外部冷却,(iii)内部和外部冷却,用于主要贝氏体管的低冷却速率。该策略代表了设计案例,其中激发了具有不同相组合物的低残留应力,以显示残余应力和性能设计的数值分析的潜力。可以得出结论,对于所研究的钢类,无论尺寸如何,都会导致特征残留应力分布。外部和内部冷却的组合允许通过选择不同的冷却参数(即水量和冷却时间)来更灵活地设计残余应力和相位分布。通常,较低的冷却速率导致较低的热量排水菌株,因此较低的可塑性和较低的残余应力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号