Abstract:Under high-frequency insertion and extraction and vibrational conditions, the presence of elastic after-effect results in unstable contact stress of electrical connectors and consequently degrades transmission performance and transfer efficiency. In this work, QBe2.0 alloy was subjected to single and double stage aging treatments. The microstructure and elastic after-effect behavior of QBe2.0 alloy under different aging conditions were investigated using scanning electron microscope, X-ray diffractometer, transmission electron microscope, and high-frequency testing machine, and the underlying strengthening mechanism was elucidated. The results show that the elastic after-effect performance of QBe2.0 alloy is optimized under double-stage aging at 240 ℃/150 min+290 ℃/180 min, with an elastic after-effect value of 2.83%. Compared with single-stage aging, this optimized process promotes the formation of fine and homogeneous γ′ precipitates. These precipitates effectively pin dislocations, shorten the length of dislocation free segments, increase the energy barrier for dislocation migration, and reduce both the amplitude and characteristic time scale of dislocation rebound, thereby significantly suppressing elastic after-effect. This study provides theoretical foundations and practical process guidance for developing elastic components suitable for high-performance electrical connectors.
梁伟晗, 刘梓屹, 王兴, 徐宇轩, 陈德山, 姚萍屏. 时效工艺对QBe2.0合金微观组织和弹性后效行为的影响机制[J]. 粉末冶金材料科学与工程, 2026, 31(2): 155-162.
LIANG Weihan, LIU Ziyi, WANG Xing, XU Yuxuan, CHEN Deshan, YAO Pingping. Effects of aging treatments on the microstructure and elastic after-effect behavior of QBe2.0 alloy. Materials Science and Engineering of Powder Metallurgy, 2026, 31(2): 155-162.
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