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[1] Guo D, Zhang P, Jiang Y, Song C, Tan D, Yu D. Effects of surface texturing and laminar plasma jet surface hardening on the tribological behaviors of GCr15 bearing steel[J]. Tribology International. 2022: 107465.
[2] Liu F, Yu D, Chen Y, Duan B, Yao J. A novel reverse-polarity plasma torch with extended hot-wall nozzle for atmospheric plasma spraying of dense yttria-stabilized zirconia coatings[J]. Surface and Coatings Technology. 2022, 437: 128366.
[3] Tian H, Zhang P, Wu J, Xin Q, Yu D. A Prediction Method of the Removal Function for Inductively Coupled Atmospheric Pressure Plasma Processing Based on Jet Morphology Monitoring and Diagnosis[J]. Plasma Chemistry and Plasma Processing. 2022.
[4] Yin Z, Yu D, Zhang Q, Yang S, Yang T. Experimental and Numerical Analysis of a Reverse-polarity Plasma Torch for Plasma Atomization[J]. Plasma Chemistry and Plasma Processing. 2021, 41: 1471-1495.
[5] Guo D, Yu D, Zhang P, Song W, Zhang B, Peng K. Laminar plasma jet surface hardening of P20 mold steel: Analysis on the wear and corrosion behaviors[J]. Surface and Coatings Technology. 2021, 415: 127129.
[6] Yang S, Yu D, Yang H, Feng Y, Liu X, Yin Z. Hybrid tool servo diamond turning of multiscale optical surface based on spectral separation of tool path[J]. The International Journal of Advanced Manufacturing Technology. 2021, 116(1): 145-157.
[7] Liu X, Yu D, Chen D, Yang S, Wen Y, Xiao Y. Self-tuned ultrasonic elliptical vibration cutting for high-efficient machining of micro-optics arrays on brittle materials[J]. Precision Engineering. 2021, 72: 370-381.
[8] Yin Z, Yu D, Wen Y, Zhang Q, Qiu J, Yang S. Numerical investigation on the flow characteristics of a reverse-polarity plasma torch by two-temperature thermal non-equilibrium modelling[J]. Plasma Science and Technology. 2021, 23: 95402.
[9] Zhang P, Wu J, Tian H, Dong Y, Yu D. Morphology evolution of the light trapping structure using atmospheric plasma textured c-Si wafer for silicon solar cells[J]. Journal of Applied Physics. 2021, 130(2): 23105.
[10] Dong Y, Long L, Zhang P, Yu D, Wen Y, Zheng Z, Wu J, Chen W. A chair-side plasma treatment system for rapidly enhancing the surface hydrophilicity of titanium dental implants in clinical operations[J]. Journal of Oral Science. 2021, 63(4): 334-340.
[11] Zhang B, Yu D, Song W, Peng K, Wu G. The rolling-sliding wear behavior and damage mechanism of the rail steel treated by plasma selective quenching[J]. Surface and Coatings Technology. 2021, 428: 127908.
[12] 余德平,张斌,宋文杰,郭达,彭科铭. 钢轨钢的层流等离子体束表面淬火过程仿真模型[J]. 工程科学与技术. 2021, 53(6): 185-193.
[13] Wu J, Zhang P, Yu D, Zhang S, Xin Q, Wan Y. Monitoring and Diagnosis of the Inductively Coupled Atmospheric Pressure Plasma Jet for Deterministic Optical Processing[J]. Optik. 2020, 214: 164815.
[14] Guo D, Yu D, Zhang P, Duan Y, Zhang B, Zhong Y, Qiu J. Laminar plasma jet surface hardening of the U75V rail steel: Insight into the hardening mechanism and control scheme[J].
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[15] Wu J, Zhang P, Yu D, Zhang S, Xin Q, Wan Y. Monitoring and Diagnosis of the Inductively Coupled Atmospheric Pressure Plasma Jet for Deterministic Optical Processing[J]. Optik. 2020: 164815.
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[17] 曹修全,余德平,李超,等. 层流等离子体发生器设计关键技术研究之大尺度分流现象[J]. 四川理工学院学报(自然科学版). 2019, 32(02): 30-35.
[18] 段亚洲,余德平,邱吉尔,等. 织构化热处理对钢轨钢耐磨性和寿命的影响[J]. 表面技术. 2019, 48(11): 131-139.
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[22] 余德平,张敏,黄玮海,等. 基于有限元分析的超声椭圆振动切削装置设计[J]. 工程科学与技术. 2018, 50(02): 170-176.
[23] 叶枫菲,余德平,万勇建,等. 基于变压力的CCOS光学研抛技术[J]. 光电工程. 2018, 45(04): 54-63.
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[25] Cao X, Yu D, Li C. Influences of the Arc Chamber Length on the Jet Characteristics of Laminar Plasma Torch[J]. IEEE Transactions on Plasma Science. 2018, 46(8): 3017-3021.
[26] 江汇,余德平,吕程,等. 层流等离子体制备球形氧化铝粉末的实验研究[J]. 强激光与粒子束. 2018, 30(07): 30079002.
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[29] 曹巧双,余德平,徐继业,等. KDP晶体脆塑转变切削过程有限元仿真与实验研究[J]. 人工晶体学报. 2018, 47(08): 1512-1516.
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[32] Lu X, Zhao S, Yu D, et al. Pylon-Climber: a novel climbing assistive robot for pylon maintenance[J]. Industrial Robot: An International Journal. 2017, 44(1): 38-48.
[33] Huang W, Yu D, Zhang M, et al. Analytical design method of a device for ultrasonic elliptical vibration cutting[J]. The Journal of the Acoustical Society of America. 2017, 141(2): 1238-1245.
[34] Cao X, Yu D, Xiang Y, et al. Study on the ignition process of a segmented plasma torch[J]. Plasma Science and Technology. 2017, 19(7): 75404.
[35] 曹修全,余德平,李超,等. 层流等离子体发生器设计关键技术研究之双弧现象[J]. 四川大学学报(工程科学版). 2017, 49(03): 223-226.
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[37] Cao X, Yu D, Xiang Y, et al. Influence of the gas injection angle on the jet characteristics of a non-transferred DC plasma torch[J]. Plasma Chemistry and Plasma Processing. 2016, 36(3): 881-889.
[38] Liu Y, Yu D, Yao J. Design of an adjustable cam based constant force mechanism[J]. Mechanism and Machine Theory. 2016, 103: 85-97.
[39] 曹修全,余德平,向勇,等. 等离子体发生器结构对热效率的影响研究[J]. 四川大学学报(工程科学版). 2016, 48(3): 178-181.
[40] Cao X, Yu D, Xiang Y, et al. Influence of the Laminar Plasma Torch Construction on the Jet Characteristics[J]. Plasma Science and Technology. 2016, 18(7): 740-743.
[41] 余德平,刘金光,黄玮海,等. 慢刀伺服变主轴转速车削非圆截面元件研究[J]. 四川大学学报(工程科学版). 2016, 48(06): 114-118.
[42] 刘金光,余德平,黄玮海. 铝合金超声振动切削实验研究[J]. 机床与液压. 2016, 44(19): 25-28.
[43] Miao J, Yu D, Cao X, et al. Experimental Study on the Characteristics of a Miniature Laminar Plasma Torch with Different Gas Flow Patterns[J]. Plasma Chemistry and Plasma Processing. 2015, 35(5): 879-893.
[44] Xiang Y, Yu D, Li Q, et al. Effects of thermal plasma jet heat flux characteristics on surface hardening[J]. Journal of Materials Processing Technology. 2015, 226: 238-246.
[45] Li Q, Li H, Yu D, et al. A novel continuously variable transmission with logarithmic disc generatrix[J]. Mechanism and Machine Theory. 2015, 93: 147-162.
[46] 肖蒙,余德平,曹修全,等. 非转移弧等离子体射流稳定性研究[J]. 科学技术与工程. 2015, 15(36): 119-122.
[47] Peng H, Yu D, Zhang X, et al. Fabrication of hollow nickel micro-spheres with high degree of hollowness by silicon powder-mixed spark erosion[J]. International Journal of Machine Tools and Manufacture. 2014, 85: 131-134.
[48] 向勇,余德平,曹修全,等. 直流纯氮层流等离子体射流特性的实验研究[J]. 强激光与粒子束. 2014, 26(9): 26092005.
[49] Zhong X, Yu D P, Wong Y S, et al. 3D dental biometrics: Alignment and matching of dental casts for human identification[J]. Computers in Industry. 2013, 64(9): 1355-1370.
[50] Yu D P, Gan S W, Wong Y S, et al. Optimized tool path generation for fast tool servo diamond turning of micro-structured surfaces[J]. International Journal of Advanced Manufacturing Technology. 2012, 63(9-12): 1137-1152.
[51] Yu D P, Hong G S, Wong Y S. Profile error compensation in fast tool servo diamond turning of micro-structured surfaces[J]. International Journal of Machine Tools and Manufacture. 2012, 52(1): 13-23.
[52] Yu D P, Hong G S, Wong Y S. Integral Sliding Mode Control for Fast Tool Servo Diamond Turning of Micro-structured Surfaces[J]. International Journal of Automation Technology. 2011, 5(1): 4-10.
[53] Yu D P, Wong Y S, Hong G S. Optimal selection of machining parameters for Fast Tool Servo Diamond Turning[J]. International Journal of Advanced Manufacturing Technology. 2011, 57(1-4): 85-99.
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[55] Yu D P, Wong Y S, Hong G S. A Novel Method for Determination of Subsurface Damage Depth in Diamond Turning of Brittle Materials[J]. International Journal of Machine Tools and Manufacture. 2011, 51(12): 918-927.
[56] Yu D P, Wong Y S, Hong G S. Ultraprecision machining of micro-structured functional surfaces on brittle materials[J]. Journal of micromechanics and microengineering. 2011, 21(9): 95011.
[57] 余德平,王宝强,史延枫,等. 运用小波变换检测汽车后桥总成故障[J]. 振动,测试与诊断. 2009, 29(3): 356-361.
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[59] Yu D P, Wong Y S, Hong G S. Ductile-Regime Machining for Fast Tool Servo Diamond Turning of Micro-Structured Surfaces on Brittle Materials[J]. Advanced Materials Research. 2012, 500: 333-338.
[60] Yu D P, Gan S W, Wong Y S, et al. Design of a Fast tool servo based Diamond Turning Machine for Fabricating Micro-structured Surfaces[J]. Key Engineering Materials. 2010, 443: 669-674.
[61] Yu D P, Wong Y S, Hong G S. Automatic Surface Characterization for Micro-Structured Surfaces Fabricated by Fast Tool Servo Diamond Turning[J]. Key Engineering Materials. 2010, 447-448: 534-538.
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