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拉伸載荷下α-Ti孔洞生長的機(jī)制研究
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長春理工大學(xué)

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中圖分類號:

TP146

基金項目:

國家自然科學(xué)基金資助項目(No. 51206011 and No.U1937201);吉林省科技發(fā)展計劃資助項目(No.20170204064GX);吉林省教育廳項目(No. JJKH20190541KJ); 長春市科技發(fā)展計劃資助項目(No. 18DY017).


Expansion Mechanism of Vacancy in alpha-Ti under Tensile Loading
Author:
Affiliation:

Changchun University of Science and Technology

Fund Project:

NSFC No.51206011 and No.U1937201, Jilin province science and technology development program of Jilin province No.20170204064GX, Project of education department of jilin province No. JJKH20190541KJ, Changchun science and technology program of changchun city No. 18DY017

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    摘要:

    本文利用分子動力學(xué)方法,對含有預(yù)置微裂紋α-Ti模型施加不同方向拉伸載荷,通過觀察模型內(nèi)孔洞及位錯的變化情況,揭示了孔洞生長的機(jī)制與初始缺陷對材料吸收能量在不同劃分區(qū)域的規(guī)律。研究發(fā)現(xiàn):當(dāng)拉伸載荷沿著垂直于密排面的[0001]方向時,預(yù)置裂紋愈合,α-Ti會從HCP晶格轉(zhuǎn)換為FCC晶格,從而使晶體中的位錯種類更多、密度更大、能量吸收率更高;當(dāng)拉伸載荷沿著[12-30]方向拉伸時,位錯種類主要為1/3[1-210]類型,裂紋則生長為一定尺寸的孔洞,孔洞與滑移帶對模型體系吸收能量區(qū)域有劃分作用,轉(zhuǎn)換的晶格主要為非晶結(jié)構(gòu),滑移帶方向取決于材料晶格,位置取決于初始裂紋;α-Ti沿[0001]晶向拉伸后模型明顯頸縮,裂紋缺陷空位被兩側(cè)團(tuán)簇占據(jù),α-Ti沿[0001]晶向拉伸比沿[12-30]方向拉伸時擁有更好的塑性和延展性。

    Abstract:

    Using the molecular dynamics method, we apply tensile loads in different directions to a preset-microcracks α-Ti model. Through the observation of the changes in the pores and dislocations of the α-Ti model, we reveal the mechanism of the pore growth and the potential energy distribution. We found that: under the tensile load along [0001], the perpendicular direction of the close-packed plane, the preset crack in the model closes up, the clusters on both sides occupy the gap of crack defect, showing obvious necking phenomenon, and part of the HCP lattice transform into the FCC lattice to plane, which derive a variety of dislocations with higher density in the crystal. Therefore, it can bear more press. Under the tensile load along [12-30], the dislocation types are mainly 1/3 [1-210] with less total length than in [0001]. The crack grows into a circular cavity. The cavity and sliding band divided the absorption energy regions into four parts. The lattice transformations are mainly from HCP to amorphous structure. The direction of the slip band depends on the material lattice and the position depends on the initial crack. Load on [0001] makes the necking phenomenon of the model prominent, and the crack defect vacancies are occupied by the clusters on left and right sides. Therefore, when loaded on [0001] the α-Ti have better plasticity and ductility than loaded on [12-30].

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引用本文

李俊燁,宋俊成,臧翔,趙偉宏,張心明.拉伸載荷下α-Ti孔洞生長的機(jī)制研究[J].稀有金屬材料與工程,2021,50(1):116~122.[Li Junye, Song Juncheng, Zang Xiang, Zhao Weihong, Zhang Xinming. Expansion Mechanism of Vacancy in alpha-Ti under Tensile Loading[J]. Rare Metal Materials and Engineering,2021,50(1):116~122.]
DOI:10.12442/j. issn.1002-185X. E20190118

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  • 收稿日期:2019-12-26
  • 最后修改日期:2020-03-06
  • 錄用日期:2020-03-19
  • 在線發(fā)布日期: 2021-02-05
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