为研究复合材料圆柱壳的声散射特性,本文基于有限元法,并结合AML技术,计算并分析水下空气背衬条件下复合材料圆柱壳铺层角度、纤维层数和壳厚比对复合材料圆柱壳声目标强度(TS)的影响规律。结果表明:低中频时,圆柱壳铺层角度对TS影响较大;高频时,铺层角度对TS影响趋于一致;纤维层层数对TS影响不大;一定范围内,壳厚比越小,声目标强度值越小。
In order to study the acoustic scattering characteristics of composite cylindrical shell, the simulation analysis of underwater composite cylindrical shell under the condition of air backing was established to investigate layer angle, fiber layer and shell thickness ratio on the intensity of the acoustic target, which was based on the finite element method and combined with AML technology. Results show that the ply angle of cylindrical shell has great effect on the intensity of the acoustic target at low and intermediate frequency. The influence of the ply angle on the intensity of the acoustic target converges at high frequency. Fiber layer has little effect on the intensity of the acoustic target. Within a certain range, the smaller the shell thickness ratio, the smaller the intensity of the acoustic target.
2016,38(4): 23-27 收稿日期:2015-07-20
DOI:10.3404/j.issn.1672-7619.2016.04.005
分类号:TB535
作者简介:裴秋秋(1990-),女,硕士研究生,研究方向为舰船结构设计与制造。
参考文献:
[1] 苏强, 王桂波, 朱鹏飞, 等. 国外潜艇声隐身前沿技术发展综述[J]. 舰船科学技术, 2014, 36(1):1-9. SU Qiang, WANG Gui-bo, ZHU Peng-fei, et al.Summarize of foreign submarine acoustic stealth frontier technologies development[J]. Ship Science and Technology, 2014, 36(1):1-9.
[2] 石勇. 夹层复合材料水下声隐身舵的研究[D]. 武汉:海军工程大学, 2006. SHI Yong.Study on the sandwich composites rudder for acoustical stealth underwater[D]. Wuhan:Naval University of Engineering, 2006.
[3] 王华玉. 复合圆柱壳目标特性研究[D]. 哈尔滨:哈尔滨工程大学, 2012. WANG Hua-yu.The research on target characteristics of composite cylindrical shell[D]. Harbin:Harbin Engineering University, 2012
[4] 张玉玲, 陶猛, 范军. 敷设吸声材料复杂目标的目标强度计算[J]. 上海交通大学学报, 2009, 43(8):1322-1326, 1331. ZHANG Yu-ling, TAO Meng, FAN Jun. Target strength calculation of underwater complicated targets coated with absorbing materials[J]. Journal of Shanghai Jiaotong University,2009, 43(8):1322-1326, 1331.
[5] 邱力莹. 用面向对象有限元方法研究水声吸声覆盖层声反射特性[D]. 哈尔滨:哈尔滨工程大学, 2009. QIU Li-ying.The research on the acoustic characteristics of underwater anechoic coating by OOFEM[D]. Harbin:Harbin Engineering University, 2009.
[6] HASHEMINEJAD S M, RAJABIM. Acoustic resonance scattering from a submerged functionally graded cylindrical shell[J]. Journal of Sound and Vibration, 2007, 302(1/2):208-228.
[7] HASHEMINEJAD S M, ABBASION S, MIRZAEIY. Acoustic pulse interaction with a submerged functionally graded material hollow cylinder[J]. Acoustical Physics, 2011, 57(1):20-35.
[8] 詹福良, 徐俊伟. Virtual. Lab. Acoustics声学仿真计算从入门到精通[M]. 西安:西北工业大学出版社, 2013. ZHAN Fu-liang, XU Jun-wei. Virtual. Lab. Acoustic simulation calculation from entry to the essence[M]. Xi'an:Northwestern Polytechnical University Press, 2013.
[9] MISTRYJ, GIBSON AG, WU YS. Failure of composite cylinders under combined external pressure and axial loading[J]. Composite Structures, 1992, 22(4):193-200.
[10] ROSENOW MWK. Wind angle effects in glass fiber-reinforced polyester filament woundpipes[J]. Composites, 1978, (9):17-24.