增韧
断裂韧性
材料科学
晶界
断裂(地质)
复合材料
可塑性
韧性
分层(地质)
奥氏体
断裂力学
冶金
微观结构
构造学
生物
古生物学
俯冲
作者
Li Liu,Qin Yu,Z. Wang,Jon Ell,Mingxin Huang,Robert O. Ritchie
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2020-05-07
卷期号:368 (6497): 1347-1352
被引量:272
标识
DOI:10.1126/science.aba9413
摘要
Developing ultrahigh-strength steels that are ductile, fracture resistant, and cost effective would be attractive for a variety of structural applications. We show that improved fracture resistance in a steel with an ultrahigh yield strength of nearly 2 gigapascals can be achieved by activating delamination toughening coupled with transformation-induced plasticity. Delamination toughening associated with intensive but controlled cracking at manganese-enriched prior-austenite grain boundaries normal to the primary fracture surface dramatically improves the overall fracture resistance. As a result, fracture under plane-strain conditions is automatically transformed into a series of fracture processes in "parallel" plane-stress conditions through the thickness. The present "high-strength induced multidelamination" strategy offers a different pathway to develop engineering materials with ultrahigh strength and superior toughness at economical materials cost.
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