[1] 王衡,路宽,刘骏,等.基于POD方法的水下航行器振动响应快速求解[J].南京航空航天大学学报, 2024, 56(6):1066-1073.
WANG H, LU K, LIU J, et al. Fast solution of underwater vehicle vibration response based on POD method [J]. Journal of Nanjing University of Aeronautics & Astronautics, 2024, 56(6):1066-1073. (in Chinese)
[2] XIA W X, SONG W C, WANG C, et al. Microbubbles drag reduction characteristics of underwater vehicle during pitching movement [J]. Ocean Engineering, 2023, 285: 115350.
[3] 韦成书.仿生柔性微结构水凝胶表面减阻特性的实验研究[D].大连:大连海事大学,2024.
WEI C S. Experimental study on drag reduction characteristics of bionic flexible microstructure hydrogel surface[D]. Dalian: Dalian Maritime University, 2024. (in Chinese)
[4] OFFIA-KALU N E, NWANONENYI S C, ABDULHAKEEM B, et al. Theoretical investigation of electronic, energetic, and mechanical properties of polyvinyl alcohol/cellulose composite hydrogel electrolyte[J]. Journal of Molecular Graphics and Modelling, 2024, 127: 108667.
[5] 杨峰,郑炎鑫,杨森淼,等.生物质SA/CS导电水凝胶纤维的制备和导电性能研究[J].纺织科学与工程学报, 2024,41(4):84-87.
YANG F, ZHENG Y X, YANG S M, et al. Preparation of biomass SA/CS conductive hydrogel fiber and study on the electrical conductivity[J]. Journal of Textile Science and Engineering, 2024,41(4):84-87.(in Chinese)
[6] QIAO K, ZHENG Y D, GUO S L, et al. Hydrophilic nanofiber of bacterial cellulose guided the changes in the micro-structure and mechanical properties of nf-BC/PVA composites hydrogels[J]. Composites Science and Technology, 2015, 118: 47-54.
[7] YUE Y Y, HAN J Q, HAN G P, et al. Cellulose nanofibers reinforced sodium alginate-polyvinyl alcohol hydrogels: core-shell structure formation and property characterization[J]. Carbohydrate Polymers, 2016,147:155-164.
[8] 郝翰林,樊益明,苏风民.基于转盘测阻法的天然乳胶涂层减阻特性研究[J].船舶工程,2021,43(1):108-112.
HAO H L, FAN Y M, SU F M. Study of drag reduction characteristics of natural latex coating based on rotating disc test[J]. Ship Engineering,2021,43(1): 108-112. (in Chinese)
[9] 周嘉杰,胡弘毅,朱萍,等.多源仿生柔性滑移涂层的制备及其减阻性能研究[J].表面技术,2024,53(23):153-158.
ZHOU J J, HU H Y, ZHU P, et al. Preparation and study on bionic elastic slippery coatings[J].Surface Technology,2024,53(23):153-158. (in Chinese)
[10] 顾建农,晏欣,张志宏,等.基于PIV测量的柔性壁减阻试验[J].舰船科学技术,2012,34(11):82-85.
GU J N, YAN X, ZHANG Z H, et al. Experimental investigation of drag-reducing for compliant wall by PIV measurement[J]. Ship Science and Technology, 2012,34(11):82-85. (in Chinese)
[11] 柯贵喜,潘光,黄桥高,等.水下减阻技术研究综述[J].力学进展,2009,39(5):546-554.
KE G X, PAN G, HUANG Q G, et al. Reviews of underwater drag reduction technology [J]. Advances in Mechanics, 2009,39(5):546-554. ( in Chinese)
[12] 孙国梁.具有沟槽表面的圆管内高聚物溶液流动减阻特性研究[D].济南:山东建筑大学,2024.
SUN G L. Study on drag reduction characteristics of polymer solution flow in circular tubes with grooved surfaces[D]. Jinan: Shandong Jianzhu University, 2024. (in Chinese)
[13] 秦立果,刘建波,李航,等.水下湍流减阻技术研究进展[J].表面技术,2024,53(16):1-18.
QIN L G, LIU J B, LI H, et al. Research advances in drag reduction technologies for submarine turbulence[J]. Surface Technology,2024,53(16):1-18. (in Chinese)
[14] MODESTI D, ENDRIKAT S, HUTCHINS N, et al. Dispersive stresses in turbulent flow over riblets[J]. Journal of Fluid Mechanics, 2021, 917: A55.
[15] 李永成,张华,张楠,等.柔性表皮与微沟槽耦合作用减阻效果数值模拟[J].舰船科学技术,2022,44(20):35-37.
LI Y C, ZHANG H, ZHANG N, et al. Computational analysis on drag reduction effect by using of the flexible plate coupled with the micro-groove shape[J]. Ship Science and Technology,2022,44(20):35-37. (in Chinese)
[16] 温健.大鳞副泥鳅(P.Dabryanus)体表柔性微形貌减阻特性仿生研究[D].沈阳:沈阳农业大学,2020.
WEN J. Study on drag reduction characteristics of P. Dabryanus loach surface flexible micro-morphology [D].Shenyang: Shenyang Agricultural University,2020. (in Chinese)
[17] 贾天义.基于超疏水表面的水下沟槽减阻模拟分析[D].哈尔滨:哈尔滨工程大学,2023.
JIA T Y. Simulation analysis of drag reduction of super-hydrophobic microstructure surface under water[D]. Harbin: Harbin Engineering University,2023. (in Chinese)
[18] 周鸿飞.船舶防污涂料及其减阻效应评价研究[D].大连:大连海事大学,2013.
ZHOU H F. Investigation on antifouling coatings for ships and its evaluation of the effect of drag reduction [D]. Dalian: Dalian Maritime University, 2013. (in Chinese)
[19] LIANG T, XU Y, LI J W, et al. Flow structures and wall parameters on rotating riblet disks and their effects on drag reduction [J]. Alexandria Engineering Journal, 2022, 61(4): 2673-2686.
[20] 宋保维,潘光,张立川,等.自主水下航行器发展趋势及关键技术[J].中国舰船研究,2022,17(5):27-44.
SONG B W, PAN G, ZHANG L C, et al. Development trend and key technologies of autonomous underwater vehicles[J]. Chinese Journal of Ship Research,2022,17(5):27-44. (in Chinese)
[21] TANG L, ZENG Z X, WANG G, et al. Investigation on superhydrophilic surface with porous structure: drag reduction or drag increasing[J]. Surface and Coatings Technology, 2017, 317: 54-63.