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Fe?Mn?(Al)?C高強韌性鋼氫脆微觀機制的研究進展

Research progress toward hydrogen embrittlement microstructure mechanism in Fe–Mn–(Al)–C high-strength-and-toughness steel

  • 摘要: 隨著汽車行業的快速發展,輕量化汽車用鋼的研發和應用越來越廣泛。抗拉強度超過1000 MPa的第二、三代汽車用鋼往往是復相組織,通過固溶、析出、變形、細晶強化等各種強化方式,在基體中形成大量缺陷,導致鋼材服役過程中對氫更加敏感,容易在很小的氫溶解條件下發生氫脆。Fe?Mn?C系、Fe?Mn?Al?C系等含Mn量高的汽車結構用鋼因層錯能較高,不僅直接決定了其強韌性機制,還對其服役性能有重要影響。在Fe?Mn?C系TWIP鋼的成分基礎上,添加少量Al元素,形成Fe?Mn?(Al)?C鋼,不僅能降低鋼材密度,提高鋼材的強韌性,也因Al元素改變了鋼材的微觀組織構成,一定程度上令氫脆得到緩解。但當Al含量較高時,形成低密度鋼,其組織構成更加復雜,析出物更多,導致氫脆敏感性更顯著。本文從Fe?Mn?(Al)?C高強韌性鋼的組織構成、第二相、晶體缺陷等特征出發,綜述了H在Fe?Mn?(Al)?C鋼中的滲透、溶解和擴散行為,H與基體組織、析出相、晶格缺陷的交互作用,H在鋼中的作用模型、氫脆機制、氫脆評價手段和方法等。并評述了Fe?Mn?(Al)?C高強韌性鋼氫脆問題開展的相關研究工作和最新發展動態,指出通過第一性原理計算、分子動力學模擬和借助氫原子微印技術、三維原子探針等物理實驗相結合的方法是從微觀層面揭示高強韌性鋼氫脆機制的未來發展方向。

     

    Abstract: With the rapid development of the automobile industry, the development and application of lightweight automobile steel are increasingly extensive. The second- and third-generation automobile steels with a tensile strength of over 1000 MPa are usually of duplex structure. Through solid solution strengthening, precipitation, deformation, fine grain strengthening, and other strengthening methods, a large number of defects are formed in the matrix, which makes the steel more sensitive to hydrogen in the service process and prone to hydrogen embrittlement under very small hydrogen dissolution conditions. The high-Mn content steels Fe?Mn?C and Fe?Mn?Al?C steels have high stacking fault energy, which not only influences their strength and toughness but also significantly affects their service performance. Based on the composition of twinning-induced plasticity (TWIP) steel of the Fe?Mn?C system, adding a small amount of Al element to form Fe?Mn?(Al)?C steel can not only reduce the steel density and improve the steel strength and toughness but also change the steel microstructure to a certain extent; the effect on the microstructure reduces the steel susceptibility to hydrogen embrittlement. However, when the Al content is high, low-density steel with a more complex structure is formed, and the precipitates are more, which leads to a more significant sensitivity to hydrogen embrittlement. In this paper, the permeation, dissolution, and diffusion behavior of H in Fe?Mn?(Al)?C high-strength-and-toughness-steel; the interaction between H and the matrix structure, the precipitated phase, and lattice defects; the model of H in steel; the hydrogen embrittlement mechanism; and the methods of hydrogen embrittlement evaluation were summarized based on the structure, second phase, and crystal defects of Fe?Mn?(Al)?C high-strength-and-toughness steel. The related research work and the latest developments of the hydrogen embrittlement of Fe?Mn?(Al)?C high-strength-and-toughness steel were reviewed. The development direction of the hydrogen embrittlement microstructure mechanism of high-strength-and-toughness steel was revealed by combining first-principle calculations, molecular dynamics simulation, and physical experiments such as hydrogen atom microprinting technology and three-dimensional atomic probe analysis.

     

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