Tensile cracking behavior of oxide scale in hot-rolled steel
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摘要: 采用X射線衍射儀(XRD)、掃描電子顯微鏡(SEM)和萬能拉力試驗機,研究了Q235-A帶鋼氧化鐵皮的組織、結構及其開裂行為.結果表明,氧化鐵皮的成分主要為Fe3O4、Fe2O3和Fe,含有少量的FeO,氧化層厚度比較均勻,約為10 μm,結構致密且與基體結合較好.拉伸實驗表明,隨著應變的增加,裂紋條數增加呈先慢,后快,再慢的規律.應變達到0.05%時氧化鐵皮開始出現裂紋,當應變在0.08%~0.10%范圍內裂紋條數隨應變增加非常明顯,當應變超過0.10%時裂紋條數增加緩慢,應變超過0.15%時裂紋條數幾乎不再增加.Abstract: The microstructure, structure, and cracking behavior of Q235-A strip iron oxide skin were studied using X-ray diffraction (XRD), scanning electron microscopy (SEM), and a universal tensile testing machine. The results show that the composition of the iron oxide mainly consists of Fe3O4, Fe2O3, and Fe, together with small amount of FeO, the oxide layer has the same thickness all over, about 10 μm, the structure is dense, and the matrix is better connected. The tensile experiments show that with increasing strain, the increase in the number of cracks is at first slow, then fast, then slow again. When the strain reaches 0.05%, its iron oxide skin begins to crack; the number of cracks increases with increasing strain in the range 0.08% -0.10%. When the strain exceeds 0.10%, the crack number increases slowly, and when the strain exceeds 0.15%, the number of cracks stops grow.
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Key words:
- hot-rolled steel /
- oxide scale /
- cracks /
- tensile cracking
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參考文獻
[1] Gleeson B, Hadavi S M M, Young D J. Isothermal transformation behavior of thermally-grown wüstite. Mater High Temp, 2000, 17(2):311 [2] Schwerdtfeger K, Zhou S X. A contribution to scale growth during hot rolling of steel. Steel Res Int, 2003, 74(9):538 [6] Melster S, Pargmann A. Stretch bending levelers in pickling lines. Iron Steel Eng, 1995, 72(2):37 [7] Voges K C, Mueth A R. Method of Producing Rust Inhibitive Sheet Metal through Scale Removal with a Slurry Blasting Descaling Cell:US Patent, US8128460.2012-3-6 [8] Voges K, Mueth A, Lehane B, et al. Eco-pickled surface:an environmentally advantageous alternative to conventional acid pickling. Iron Steel Technol, 2008, 4(8):81 [13] Evans H E. Cracking and spalling of protective oxide layers. Mater Sci Eng A, 1989, 120-121:139 [14] Robertson J, Manning M I. Limits to adherence of oxide scales. Mater Sci Technol, 1990, 6(1):81 [15] Nagl M M, Evans W T. The mechanical failure of oxide scales under tensile or compressive load. J Mater Sci, 1993, 28(23):6247 [16] Chaudhuri S K, Rolls R. Fracture mechanisms in oxide scale on iron during substrate deformation. J Mater Sci, 1977, 12(11):2303 [20] Le H R, Sutcliffe M P F, Wang P Z, et al. Surface oxide fracture in cold aluminium rolling. Acta Mater, 2004, 52(4):911 [21] Chen R Y, Yeun W Y D. Review of the high-temperature oxidation of iron and carbon steels in air or oxygen. Oxid Metal, 2003, 59(5-6):433 [23] Kanninen M F, Popelar C H. Advanced Fracture Mechanics. New York:Oxford University Press, Oxford:Clarendon Press, 1985 -

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