l 學(xué)術(shù)論文 [1] S. Yan, H. Li, P. Li, K. Xue. Mechanisms and forming rules of large thin-walled aluminum alloy components in electromagnetic incremental forming. Procedia Engineering. 2018, 15: 1306-1313. [2] X. Zhang, S. Yan*, M. Meng, P. Li. Macro-micro behaviors of Ti–22Al–26Nb alloy during warm tension. Materials Science & Engineering A. 2022, 850: 143580. [3] L. Wang, S. Yan*, M. Meng, K. Xue, P. Li. Twin boundary-assisted improvement of radiation resistance of iron: Defect evolution, mechanical properties, and deformation mechanism. Journal of Nuclear Materials. 2022, 567: 153818. [4] M. Meng, S. Yan*, K. Xue, X. Fan**. Modeling of quasi-trimodal microstructures formation in large-size Ti-alloy parts under near-isothermal local loading forming process. Journal of Materials Processing Technology, 2022, 299: 117327. [5] 紀(jì)小虎, 孟淼,嚴(yán)思梁*,李萍, 甘國(guó)強(qiáng), 薛克敏. 變形溫度對(duì)大塑性變形TA15合金顯微組織和力學(xué)性能的影響. 中國(guó)有色金屬學(xué)報(bào). 2022, 32(3): 752-762. [6] H. Li*, S. Yan**, M. Zhan, X. Zhang, Eddy current induced dynamic deformation behaviors of aluminum alloy during EMF: Modeling and quantitative characterization. Journal of Materials Processing Technology. 2019, 263: 423-439 [7] S.L. Yan, H. Yang*, H.W. Li*, X. Yao, A unified model for coupling constitutive behavior and micro-defects evolution of aluminum alloys under high-strain-rate deformation. International Journal of Plasticity. 2016, 85: 203-229 [8] S.L. Yan, H. Yang*, H.W. Li, X. Yao, Variation of strain rate sensitivity of an aluminum alloy in a wide strain rate range: Mechanism analysis and modeling. Journal of Alloys and Compounds. 2016, 668A: 776-786 [9] S.L. Yan, H. Yang*, H.W. Li, G.Y. Ren, Experimental study of macro–micro dynamic behaviors of 5A0X aluminum alloys in high velocity deformation. Materials Science and Engineering A. 2014, 598: 197-206 ● 授權(quán)專利 [1] 一種高溫鈦合金網(wǎng)格筋壁板的電輔助壓彎成形工藝方法與流程. ZL202010782037.X(第1) [2] 一種復(fù)雜截面U型板件的模壓大塑性變形模具、使用方法. ZL201810255450.3(第4) [3] 一種螺栓生產(chǎn)用模具、生產(chǎn)方法及制造出的螺栓. ZL201810439256.0(第4) [4] 一種制備高強(qiáng)鋁合金多筋變截面復(fù)雜構(gòu)件的工藝方法 . ZL 202011282568.9(第4) ● 教學(xué)成果與獎(jiǎng)勵(lì) [1] 外圍買球app十大平臺(tái)青年教師教學(xué)基本功比賽二等獎(jiǎng),2017 [2] 外圍買球app十大平臺(tái)青年教師教學(xué)基本功比賽二等獎(jiǎng),2021 [3] 2021年指導(dǎo)互聯(lián)網(wǎng)+校賽銀獎(jiǎng)2項(xiàng),銅獎(jiǎng)1項(xiàng) [4] 2022年,指導(dǎo)互聯(lián)網(wǎng)+校賽金獎(jiǎng)3項(xiàng),銅獎(jiǎng)1項(xiàng) [5] 2018-2021年指導(dǎo)大學(xué)生創(chuàng)新實(shí)驗(yàn)計(jì)劃省級(jí)1項(xiàng)、校級(jí)3項(xiàng),在研國(guó)家級(jí)1項(xiàng) ● 科研獲獎(jiǎng) [1] 多能場(chǎng)塑性成形的多尺度變形機(jī)制與協(xié)同調(diào)控, 陜西省自然科學(xué)一等獎(jiǎng),2020年 |