[1] Wang Hui, Zhang Zheng, Liu Tianye, et al. Surface error modeling, evaluation and optimization of large optics in inertial confinement fusion laser system[J]. Fusion Eng Des, 2018, 137: 61-70. doi: 10.1016/j.fusengdes.2018.08.005
[2] NayarB K. Nonlinear optical properties of organic molecules and crystals[M]. Elsevier, 2012.
[3] Tie Guipeng, Dai Yifan, Guan Chaoliang, et al. Research on full-aperture ductile cutting of KDP crystals using spiral turning technique[J]. J Mater Process Tech, 2013, 213(12): 2137-2144. doi: 10.1016/j.jmatprotec.2013.06.006
[4] Chen Ni, Chen Mingjun, Wu Chunya, et al. The design and optimization of micro polycrystalline diamond ball end mill for repairing micro-defects on the surface of KDP crystal[J]. Precis Eng, 2016, 43: 345-355. doi: 10.1016/j.precisioneng.2015.08.015
[5] Li Zhanjie, Jin Gang, Fang Fengzhou, et al. Ultrasonically assisted single point diamond turning of optical mold of tungsten carbide[J]. Micromachines, 2018, 9(2): 77-87. doi: 10.3390/mi9020077
[6] Cheng Jian, Xiao Yong, Liu Qi, et al. Effect of surface scallop tool marks generated in micro-milling repairing process on the optical performance of potassium dihydrogen phosphate crystal[J]. Mater Design, 2018, 157: 447-456. doi: 10.1016/j.matdes.2018.07.057
[7] Wang Yongqiang, Yin Shaohui, Huang Han, et al. Magnetorheological polishing using a permanent magnetic yoke with straight air gap for ultra-smooth surface planarization[J]. Precis Eng, 2015, 40: 309-317. doi: 10.1016/j.precisioneng.2014.11.001
[8] Ji Fang, Xu Min, Wang Baorui, et al. Preparation of methoxyl poly (ethylene glycol) (MPEG)-coated carbonyl iron particles (CIPs) and their application in potassium dihydrogen phosphate (KDP) magnetorheological finishing (MRF)[J]. Appl Surf Sci, 2015, 353: 723-727. doi: 10.1016/j.apsusc.2015.06.063
[9] Peng Wenqiang, Li Shenyi, Guan Chaoliang, et al. Ultra-precision optical surface fabricated by hydrodynamic effect polishing combined with magnetorheological finishing[J]. Optik-International Journal for Light and Electron Optics, 2018, 156: 374-383. doi: 10.1016/j.ijleo.2017.11.055
[10] Clark W I, Shih A J, Hardin C W, et al. Fixed abrasive diamond wire machining—part I: Process monitoring and wire tension force[J]. Int J Mach Tool Manu, 2003, 43(5): 523-532. doi: 10.1016/S0890-6955(02)00215-8
[11] Pang Qilong, Kuang Liangjie, Xu Youlin, et al. Study on the extraction and reconstruction of arbitrary frequency topography from precision machined surfaces[J]. P I Mech Eng B-J Eng, 2019, 233(7): 1772-1780.
[12] Chen Ni, Chen Mingjun, Wu Chunya, et al. Cutting surface quality analysis in micro ball end-milling of KDP crystal considering size effect and minimum undeformed chip thickness[J]. Precis Eng, 2017, 50: 410-420. doi: 10.1016/j.precisioneng.2017.06.015
[13] Chen Ni, Chen Mingjun, Guo Yanqiu, et al. Effect of cutting parameters on surface quality in ductile cutting of KDP crystal using self-developed micro PCD ball end mill[J]. Int J Adv Manuf Tech, 2015, 78(1/4): 221-229.
[14] Zheng Wei, Zhou Ming, Zhou Li. Influence of process parameters on surface topography in ultrasonic vibration-assisted end grinding of SiCp/Al composites[J]. Int J Adv Manuf Tech, 2017, 91(5/8): 2347-2358.
[15] Wang Shengfei, An Chenhui, Zhang Feihu, et al. An experimental and theoretical investigation on the brittle ductile transition and cutting force anisotropy in cutting KDP crystal[J]. Int J Mach Tool Manu, 2016, 106: 98-108. doi: 10.1016/j.ijmachtools.2016.04.009
[16] Tian Fujing, Yin Ziqiang, Li Shengyi. Theoretical and experimental investigation on modeling of surface topography influenced by the tool-workpiece vibration in the cutting direction and feeding direction in single-point diamond turning[J]. Int J Adv Manuf Tech, 2016, 86(9/12): 2433-2439.
[17] Wang Xuezhi, Yu Tianbiao, Dai Yuanxing, et al. Kinematics modeling and simulating of grinding surface topography considering machining parameters and vibration characteristics[J]. Int J Adv Manuf Tech, 2016, 87: 2459-2470. doi: 10.1007/s00170-016-8660-y
[18] Krolczyk G M, Maruda R W, Krolczyk J B, et al. Parametric and nonparametric description of the surface topography in the dry and MQCL cutting conditions[J]. Measurement, 2018, 121: 225-239. doi: 10.1016/j.measurement.2018.02.052
[19] Zhang Qing, Zhang Song, Shi Wenhao. Modeling of surface topography based on relationship between feed per tooth and radial depth of cut in ball-end milling of AISI H13 steel[J]. Int J Adv Manuf Tech, 2018, 95(9/12): 4199-4209.
[20] Wei Weihua, Li Yuantong, Xue Tongming, et al. Research on milling forces during high-speed milling of wood-plastic composites[J]. BioResources, 2018, 14(1): 769-779.
[21] Wei Weihua, Li Yuantong, Mei Changtong, et al. The research progress of machining mechanisms in milling wood-based materials[J]. BioResources, 2018, 13(1): 2139-2149.
[22] Itoh T, Yamauchi N. Surface morphology characterization of pentacene thin film and its substrate with under-layers by power spectral density using fast Fourier transform algorithms[J]. Appl Surf Sci, 2007, 253(14): 6196-6202. doi: 10.1016/j.apsusc.2007.01.056
[23] Nieslony P, Krolczyk G M, Wojciechowski S, et al. Surface quality and topographic inspection of variable compliance part after precise turning[J]. Appl Surf Sci, 2018, 434: 91-101. doi: 10.1016/j.apsusc.2017.10.158