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强磁场处理固态铝基复合材料的组织和性能
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江苏大学 材料科学与工程学院,江苏大学 材料科学与工程学院,江苏大学 材料科学与工程学院,江苏大学 材料科学与工程学院

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TG135.1

基金项目:

国家自然科学基金(51371091、51174099).


Structural Evolution and Mechanical Properties of Solid Aluminum Matrix Composites Processed by High magnetic Field
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School of Materials Science and Engineering,Jiangsu University,School of Materials Science and Engineering,Jiangsu University,School of Materials Science and Engineering,Jiangsu University,School of Materials Science and Engineering,Jiangsu University

Fund Project:

Natural Science Foundation of China(51371091, 51174099 )

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    摘要:

    在不同磁感应强度下对固态Al2O3增强7055铝基复合材料进行了脉冲磁场处理。经脉冲磁场处理后,铝基复合材料的位错密度随磁感应强度的增加呈上升趋势,分析原因在于位错应变能增加和位错钉扎中心自由基对状态的改变。随着磁感应强度的提高,晶内析出相的取向性减小,数量和尺寸增加;晶界析出相由连续状态转变为断开状态,析出相数量减少、尺寸增大,并出现了明显的无沉淀析出带。这些现象主要源于磁场作用增强了晶体内部溶质原子和空位的扩散;畸变能增加、内应力的释放为析出相析出、长大提供了驱动力。力学性能随磁感应强度的增加,呈现出先升高、后降低的趋势。在B=3 T时,抗拉强度、延伸率和显微硬度达到了548.04 MPa、17.235%和122.4 HV,较处理前试样分别提高了10.3%、16.2%和20.7%。力学性能的改善主要源于位错密度增加造成的位错强化和第二相强化。

    Abstract:

    The Al2O3 reinforced 7055 aluminum matrix composite was subjected to pulsed magnetic field treatment with different induced intensity (B). The dislocation density in composites increases when the B rises from 0,1T, 3T to 5T. It is attributed to the enhancement of strain energy of dislocation and the transition from S to T for the radicals between the dislocation and pinning center. Meanwhile, the orientation tendency of intragranular precipitates is lowered, together with the increase of amount and size. For the precipitates at grain boundary, the morphology has transformed from continuous to disconnected states. The precipitation amount has been decreased while the size increased. It is highlighted that the precipitation free zone can be found. It is analyzed that the magnetic field accelerate the diffusion of solute atoms and vacancies. The increased distortion energy and internal stress facilitate the precipitating and growing process. As for the mechanical properties, the trend displays as the first rise followed by falling. When B equals to 3T, the tensile strength, elongation and micro hardness arrived at 548.04MPa, 17.235% and 122.4HV, which are increased by 10.3%, 16.2% and 20.7% separately compared to the initial sample without any magnetic field treatment. The strengthening mechanisms are attributed to the dislocation strengthening and second phase strengthening.

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王宏明,彭琮翔,李桂荣,李沛思.强磁场处理固态铝基复合材料的组织和性能[J].稀有金属材料与工程,2017,46(5):1425~1430.[WANG Hong-ming, PENG Cong-xiang, LI Gui-rong, LI Pei-si. Structural Evolution and Mechanical Properties of Solid Aluminum Matrix Composites Processed by High magnetic Field[J]. Rare Metal Materials and Engineering,2017,46(5):1425~1430.]
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  • 收稿日期:2015-03-12
  • 最后修改日期:2015-04-09
  • 录用日期:2015-05-13
  • 在线发布日期: 2017-09-27
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