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脈沖磁場強度對GH99鎳基合金力學(xué)和微動磨損性能的影響
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1.陸軍裝甲兵學(xué)院 裝備再制造技術(shù)國防科技重點實驗室,北京 100072;2.中國人民解放軍總醫(yī)院 第七醫(yī)學(xué)中心 口腔科,北京 100000;3.陸軍裝甲兵學(xué)院 機械產(chǎn)品再制造國家工程研究中心,北京 100072;4.哈爾濱工業(yè)大學(xué) 材料科學(xué)與工程學(xué)院,黑龍江 哈爾濱 150001

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基金項目:

國家自然科學(xué)基金面上項目(52275227);國家自然科學(xué)基金重點項目(52130509)


Effect of Pulsed Magnetic Field Strength on Mechanical and Micro-motion Wear Properties of GH99 Nickel-Based Alloy
Author:
Affiliation:

1.National Key Laboratory for Remanufacturing, Army Academy of Armored Forces, Beijing 100072, China;2.Department of Stomatology, The Seventh Medical Center, Chinese PLA General Hospital, Beijing 100000, China;3.National Engineering Research Center for Remanufacturing, Army Academy of Armored Forces, Beijing 100072, China;4.School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, China

Fund Project:

National Natural Science Foundation of China (52275227, 52130509)

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    摘要:

    為研究不同磁場強度對鎳基合金力學(xué)性能和耐磨性能的影響規(guī)律,在脈沖強磁場設(shè)備上對GH99鎳基合金試樣進行脈沖磁處理。通過觀察顯微結(jié)構(gòu),分析了GH99鎳基合金的磨損機理和強化機制。結(jié)果表明:外加脈沖磁場可改善材料位錯分布,減小試樣表面殘余應(yīng)力的分散性;在磁場強度為10 T時殘余壓應(yīng)力達到最大值(-223.45 MPa),且此時材料拉伸斷口的特征主要表現(xiàn)為韌性斷裂,脈沖磁場處理合金產(chǎn)生亞結(jié)構(gòu)位錯胞有助于發(fā)揮細晶強化作用;在0~15 T范圍內(nèi),隨磁場強度增大,材料表面顯微硬度和耐磨性能呈現(xiàn)先增強后減弱的規(guī)律,在脈沖磁場作用下合金材料內(nèi)部的位錯發(fā)生增殖致使位錯密度增大,產(chǎn)生類似加工硬化現(xiàn)象,但磁場強度過大會導(dǎo)致位錯塞積從而造成晶胞點陣畸變嚴重,出現(xiàn)材料性能惡化。

    Abstract:

    In order to investigate the influence of different magnetic field strengths on the mechanical property and wear resistance of nickel-based alloy, GH99 nickel-based alloy specimen was subjected to pulsed magnetic treatment by the pulsed strong magnetic field equipment. Through the microstructure observation, the wear mechanism and strengthening mechanism of GH99 nickel-based alloy were analyzed. Results show that the applied pulsed magnetic field improves the material dislocation distribution and reduces the dispersion of residual stress on the specimen surface. At the magnetic field strength of 10 T, the residual compressive stress reaches the maximum value (-223.45 MPa). The tensile fracture of the material is mainly characterized by the ductile fracture. This is because the pulsed magnetic field treatment of the alloy produces sub-structured dislocation cells, which contributes to the fine grain strengthening effect. In addition, the surface microhardness and wear resistance of the specimen are firstly increased and then decreased with increasing the magnetic field strength from 0 T to 15 T. The dislocations inside the alloy proliferate under the pulsed magnetic field, increasing the dislocation density and resulting in the phenomenon similar to the process hardening. However, excessive magnetic field strength may lead to the dislocation plugging, resulting in severe distortion of the cell dot and deterioration of material properties.

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周安陽,黃艷斐,郭偉玲,邢志國,王海斗,王志遠,張艷芳.脈沖磁場強度對GH99鎳基合金力學(xué)和微動磨損性能的影響[J].稀有金屬材料與工程,2024,53(2):330~344.[Zhou Anyang, Huang Yanfei, Guo Weiling, Xing Zhiguo, Wang Haidou, Wang Zhiyuan, Zhang Yanfang. Effect of Pulsed Magnetic Field Strength on Mechanical and Micro-motion Wear Properties of GH99 Nickel-Based Alloy[J]. Rare Metal Materials and Engineering,2024,53(2):330~344.]
DOI:10.12442/j. issn.1002-185X.20230341

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  • 收稿日期:2023-06-01
  • 最后修改日期:2023-06-28
  • 錄用日期:2023-07-28
  • 在線發(fā)布日期: 2024-02-27
  • 出版日期: 2024-02-23