EI、Scopus 收录
中文核心期刊
Yao Xiongliang, Zhao Kun, Zhan Tianqi, Huang Renjie. Analysis of uncertainty characteristics of early dynamic response of hull structure and system of underwater explosion. Chinese Journal of Theoretical and Applied Mechanics, 2025, 57(6): 1287-1314. DOI: 10.6052/0459-1879-25-060
Citation: Yao Xiongliang, Zhao Kun, Zhan Tianqi, Huang Renjie. Analysis of uncertainty characteristics of early dynamic response of hull structure and system of underwater explosion. Chinese Journal of Theoretical and Applied Mechanics, 2025, 57(6): 1287-1314. DOI: 10.6052/0459-1879-25-060

ANALYSIS OF UNCERTAINTY CHARACTERISTICS OF EARLY DYNAMIC RESPONSE OF HULL STRUCTURE AND SYSTEM OF UNDERWATER EXPLOSION

  • Received Date: February 16, 2025
  • Accepted Date: April 16, 2025
  • Available Online: April 16, 2025
  • Published Date: April 18, 2025
  • The dynamic response of ship hull structures subjected to underwater explosions is conventionally bifurcated into early-stage and late-stage responses. The early-stage response, which directly induces structural damage, exhibits pronounced nonlinear and non-stationary characteristics. This response phase demonstrates extreme sensitivity to variations in system parameters, initial conditions, and environmental factors, leading to complex dynamical phenomena such as bifurcation and mutation in response trajectories. Consequently, the output manifests significant uncertainty, complicating precise prediction and analysis. To address these challenges, this study proposes a novel analytical framework integrating phase space reconstruction techniques, parabolic mapping methodologies, and symbolic dynamics theory. This hybrid approach aims to decode the spatiotemporal evolution patterns of the early-stage dynamic response and establish predictive capabilities within the parametric neighborhood of the system. The research methodology commenced with the development of a scaled experimental model based on a stiffened cylindrical shell structure. Systematic tests were conducted across a spectrum of impulse factor conditions to investigate the nonlinear, non-stationary dynamic response characteristics under varied loading regimes. Advanced signal processing and uncertainty quantification techniques were employed to characterize the inherent variability in these responses. Subsequently, the research scope was expanded to include full-scale cabin segment structures and floating impact platforms modeled after actual naval vessel configurations. These experiments were designed to validate the proposed methodology's applicability under more complex boundary conditions and loading scenarios, thereby demonstrating its universality and robustness. The analytical framework leverages phase space reconstruction to transform complex time-domain response signals into multi-dimensional geometric representations. This transformation facilitates the identification of underlying dynamic patterns and attractors. Parabolic mapping techniques are then applied to establish explicit relationships between successive states in the phase space trajectory, capturing transient response features with high fidelity. Symbolic dynamics theory provides a mechanistic framework to encode continuous dynamic processes into discrete symbolic sequences, enabling quantitative analysis of system complexity and uncertainty propagation. The experimental campaign revealed that the proposed methodology successfully characterized the nonlinear response evolution across different structural configurations and loading conditions. Statistical analyses of the experimental data demonstrated that the technique could predict response thresholds and variability within the parametric design space. These findings hold significant implications for naval architecture and marine engineering, providing enhanced capabilities for assessing structural integrity under extreme dynamic loads. The methodology's demonstrated effectiveness across multiple scales and configurations underscores its potential for broader application in complex nonlinear dynamic systems beyond naval engineering.
  • [1]
    Jen CY, Lai WH. Transient response of multiple intersecting spheres of deep-submerged pressure hull subjected to underwater explosion. Theoretical and Applied Fracture Mechanics, 2007, 48(2): 112-126
    [2]
    Liu YL, Zhang AM, Tian ZL, et al. Numerical investigation on global responses of surface ship subjected to underwater explosion in waves. Ocean Engineering, 2018, 161: 277-290
    [3]
    Pan XH, Wang GH, Lu WB, et al. The effects of initial stresses on nonlinear dynamic response of high arch dams subjected to far-field underwater explosion. Engineering Structures, 2022, 256: 21
    [4]
    Zheng ZW, Ruan LP, Zhu M. Output-constrained tracking control of an underactuated autonomous underwater vehicle with uncertainties. Ocean Engineering, 2019, 175: 241-250
    [5]
    Wang JQ, Wang C, Wei YJ, et al. Filter-backstepping based neural adaptive formation control of leader-following multiple AUVs in three dimensional space. Ocean Engineering, 2020, 201: 11
    [6]
    Shu YZ, Wang GH, Lu WB, et al. Damage characteristics and failure modes of concrete gravity dams subjected to penetration and explosion. Engineering Failure Analysis, 2022, 134: 20
    [7]
    刘秉正, 彭建华. 非线性动力学. 北京: 高等教育出版社, 2004 (Liu Bingzheng, Peng Jianhua. Nonlinear Dynamics. Beijing: Higher Education Press, 2004 (in Chinese)

    Liu Bingzheng, Peng Jianhua. Nonlinear Dynamics. Beijing: Higher Education Press, 2004 (in Chinese)
    [8]
    Jin QK, Ding GY. A finite element analysis of ship sections subjected to underwater explosion. International Journal of Impact Engineering, 2011, 38(7): 558-566
    [9]
    Ruzzo C, Arena F. A numerical study on the dynamic response of a floating spar platform in extreme waves. Journal of Marine Science and Technology, 2019, 24(4): 1135-1152
    [10]
    Kwuimy CAK, Nataraj C. Recurrence and joint recurrence analysis of multiple attractors energy harvesting system//Structural Nonlinear Dynamics and Diagnosis, Belhaq M ed. Springer Proceedings in Physics 168, DOI: 10.1007/978-3-319-19851-4_6
    [11]
    李营, 杜志鹏, 陈赶超等. 舰艇爆炸毁伤与防护若干关键问题研究进展. 中国舰船研究, 2024, 19(3): 3-60 (Li Ying, Du Zhipeng, Chen Ganchao, et al. Research progress on several key issues of ship explosion damage and protection. Chinese Journal of Ship Research, 2024, 19(3): 3-60 (in Chinese)

    Li Ying, Du Zhipeng, Chen Ganchao, et al. Research progress on several key issues of ship explosion damage and protection. Chinese Journal of Ship Research, 2024, 19(3): 3-60 (in Chinese)
    [12]
    Zhao K, Shi D, Wang Z, et al. Study on critical condition of damage mode of local grillage structure under near-field underwater explosion. Applied Ocean Research, 2024, 153: 104313
    [13]
    钱七虎, 王明洋等. 高等防护结构计算理论. 南京: 江苏科学技术出版社, 2009 (Qian Qihu, Wang Mingyang. Calculation Theory For Advanced Protective Structures. Nanjing: Jiangsu Science and Technology Press, 2009 (in Chinese)

    Qian Qihu, Wang Mingyang. Calculation Theory For Advanced Protective Structures. Nanjing: Jiangsu Science and Technology Press, 2009 (in Chinese)
    [14]
    Liu JL, Xiao W, Yao XL. Pressure characteristics of a non-spherical underwater explosion bubble in a compressible fluid. Physics of Fluids, 2024, 36: 057145 doi: 10.1063/5.0206482
    [15]
    刘迎, 李德生, 刘礼. 大学物理. 苏州: 苏州大学出版社, 2019 (Li Ying, Liu Desheng, Liu Lishu. University Physics. Suzhou: Suzhou University Press, 2019 (in Chinese)

    Li Ying, Liu Desheng, Liu Lishu. University Physics. Suzhou: Suzhou University Press, 2019 (in Chinese)
    [16]
    Kellett CM, Wirth FR. Nonlinear Scaling of (i)ISS-Lyapunov Functions. IEEE Transactions on Automatic Control, 2016, 61(4): 1087-1092
    [17]
    Tuan HT, Trinh H. Stability of fractional-order nonlinear systems by Lyapunov direct method. IET Control Theory and Applications, 2018, 12(17): 2417-2422
    [18]
    张阿漫, 明付仁, 刘云龙等. 水下爆炸载荷特性及其作用下的舰船毁伤与防护研究综述. 中国舰船研究, 2023, 18(3): 139-154 (Zhang Aman, Ming Furen, Liu Yunlong, et al. Review on the researches on underwater explosion related to load characteristics, ship damage and protection. China Ship Research, 2023, 18(3): 139-154 (in Chinese)

    Zhang Aman, Ming Furen, Liu Yunlong, et al. Review on the researches on underwater explosion related to load characteristics, ship damage and protection. China Ship Research, 2023, 18(3): 139-154 (in Chinese)
    [19]
    Ding RQ, Li JP. Nonlinear finite-time Lyapunov exponent and predictability. Physics Letters A, 2007, 364(5): 396-400
    [20]
    Sahoo S, Roy BK. Design of multi-wing chaotic systems with higher largest Lyapunov exponent. Chaos Solitons & Fractals, 2022, 157: 7
    [21]
    郝柏林, 郑伟谋. 实用符号动力学与混沌. 北京: 北京大学出版社, 2014 (Hao Bolin, Zheng Weimou. Practical Symbolic Dynamics and Chaos. Beijing: Peking University Press, 2014 (in Chinese)

    Hao Bolin, Zheng Weimou. Practical Symbolic Dynamics and Chaos. Beijing: Peking University Press, 2014 (in Chinese)
    [22]
    郝柏林. 从抛物线谈起. 上海: 上海科技教育出版社, 1993 (Hao Bolin. Introduction to Chaos Dynamics. Shanghai: Shanghai Science and Technology Education Press, 1993 (in Chinese)

    Hao Bolin. Introduction to Chaos Dynamics. Shanghai: Shanghai Science and Technology Education Press, 1993 (in Chinese)
    [23]
    郑伟谋, 郝柏林. 实用符号动力学. 物理学进展, 1990, 3: 316-373 (Zheng Weimou, Hao Bolin. Practical symbolic dynamics. Advances in Physics, 1990, 3: 316-373 (in Chinese) doi: 10.3321/j.issn:1000-0542.1990.03.004

    Zheng Weimou, Hao Bolin. Practical symbolic dynamics. Advances in Physics, 1990, 3: 316-373 (in Chinese) doi: 10.3321/j.issn:1000-0542.1990.03.004
    [24]
    He ZH, Du ZP, Zhang L, et al. Damage mechanisms of full-scale ship under near-field underwater explosion. Thin-Walled Structures, 2023, 189: 11
    [25]
    Zhang ZH, Chen Y, Huang XC, et al. Underwater explosion approximate method research on ship with polymer coating. Proceedings of the Institution of Mechanical Engineers Part M-Journal of Engineering for the Maritime Environment, 2017, 231(2): 384-394
    [26]
    Liu J, An FJ, Wu C, et al. Experimental investigations on small-and full-scale ship models with polyurea coatings subjected to underwater explosion. Defence Technology, 2022, 18(7): 1257-1268
    [27]
    Yao XL, Zhao K, Shi DY. Study on the effectiveness of impact factor in underwater explosion model test. International Journal of Impact Engineering, 2024, 185: 13
    [28]
    李建林, 贺奇, 王树威等. 径流序列相空间重构的水文学含义及应用. 水资源保护, 2024, 40(3): 90-97, 148 (Li Jianlin, He Qi, Wang Shuwei, et al. Hydrological meaning and application of phase space reconstruction of runoff series. Water Resources Protection, 2024, 40(3): 90-97, 148 (in Chinese)

    Li Jianlin, He Qi, Wang Shuwei, et al. Hydrological meaning and application of phase space reconstruction of runoff series. Water Resources Protection, 2024, 40(3): 90-97, 148 (in Chinese)
    [29]
    Cao L. Practical method for determining the minimum embedding dimension of a scalar time series. Physica D Nonlinear Phenomena, 1997, 110(1-2): 43-50 doi: 10.1016/S0167-2789(97)00118-8
    [30]
    Huang FM, Yin KL, Zhang GR, et al. Landslide displacement prediction using discrete wavelet transform and extreme learning machine based on chaos theory. Environmental Earth Sciences, 2016, 75(20): 18
    [31]
    Karunasingha DSK, Liong SY. Enhancement of chaotic hydrological time series prediction with real-time noise reduction using Extended Kalman Filter. Journal of Hydrology, 2018, 565: 737-746
    [32]
    May RM. Simple mathematical models with very complicated dynamics. Nature, 1976, 261(5560): 459-467
    [33]
    Kossler WJ, Greco EF. Fourier transforms, Hilbert transforms and fitting to Fourier components. Physica B-Condensed Matter, 2003, 326(1-4): 222-225
    [34]
    Griffiths PR. Fourier transform infrared spectrometry. Science, 1983, 222(4621): 297-302
    [35]
    Shmuel G, Thorgeirsson AT, Bhattacharya K. Wavelet analysis of micro scale strains. Acta Materialia, 2014, 76: 118-126
    [36]
    De Moortel I, Munday SA, Hood AW. Wavelet analysis: The effect of varying basic wavelet parameters. Solar Physics, 2004, 222(2): 203-228
    [37]
    Andrews Dwkjcfdp. Heteroskedasticity and Autocorrelation Consistent Covariance Matrix Estimation, 1989
    [38]
    Lee H, Meng M, Lee J. Performance of nonlinear instrumental variable unit root tests using recursive detrending methods. Economics Letters, 2012, 117(1): 214-216
    [39]
    Baldwin S. Julia sets and periodic kneading sequences. Journal of Fixed Point Theory and Applications, 2010, 7(1): 201-222.
    [40]
    王军, 姚熊亮, 郭君. 应用浮动冲击平台考核舰载设备响应分析. 爆炸与冲击, 2015, 35(6): 832-838 (Wang Jun, Yao Xiongliang Guo Jun. Impact analysis of shock environment from floating shock platform on equipment response. Explosion and Shock. 2015, 35(6): 832-838 (in Chinese)

    Wang Jun, Yao Xiongliang Guo Jun. Impact analysis of shock environment from floating shock platform on equipment response. Explosion and Shock. 2015, 35(6): 832-838 (in Chinese)
  • Related Articles

    [1]Zhang Xinan, You Pu, Liu Zhuyong. STUDY OF MULTIBODY SYSTEM CONTACT DYNAMICS BASED ON SIGNED DISTANCE FIELD[J]. Chinese Journal of Theoretical and Applied Mechanics, 2024, 56(9): 2703-2712. DOI: 10.6052/0459-1879-24-131
    [2]Ning Zhiyuan, Bai Zhengfeng, Jiang Xin, Wang Siyu. STUDY ON DYNAMICS OF PLANETARY TRANSMISSION GEAR CONSIDERING WEAR AND DYNAMICS COUPLING[J]. Chinese Journal of Theoretical and Applied Mechanics, 2022, 54(4): 1125-1135. DOI: 10.6052/0459-1879-21-554
    [3]Li Shuang He Qun. The iterative digraph cell mapping method of non-smooth dynamical systems[J]. Chinese Journal of Theoretical and Applied Mechanics, 2011, 43(3): 579-585. DOI: 10.6052/0459-1879-2011-3-lxxb2010-042
    [4]Jun Zhou, Youhe Zhou. A new simple method of implicit time integration for dynamic problems of engineering structures[J]. Chinese Journal of Theoretical and Applied Mechanics, 2007, 39(1): 91-99. DOI: 10.6052/0459-1879-2007-1-2006-167
    [5]Zongmin Hu, Zonglin Jiang. Wave dynamic processes in cellular detonation reflection from wedges[J]. Chinese Journal of Theoretical and Applied Mechanics, 2007, 39(1): 33-41. DOI: 10.6052/0459-1879-2007-1-2005-431
    [6]SYMBOLIC LINEARIZATION OF NONLINEAR COUPLED DIFFERENTIAL AND ALGEBRAIC DYNAMIC EQUATIONS[J]. Chinese Journal of Theoretical and Applied Mechanics, 1997, 29(4): 491-496. DOI: 10.6052/0459-1879-1997-4-1995-257
    [7]DYNAMIC STUDY OF A VIRTUALLY ROLLING DISC[J]. Chinese Journal of Theoretical and Applied Mechanics, 1996, 28(1): 76-82. DOI: 10.6052/0459-1879-1996-1-1995-304
    [8]有孔隙的耦合热弹性体动力学的一些基本原理[J]. Chinese Journal of Theoretical and Applied Mechanics, 1996, 28(1): 55-65. DOI: 10.6052/0459-1879-1996-1-1995-302
    [9]基于变形动力学模型的黏弹性材料本构关系[J]. Chinese Journal of Theoretical and Applied Mechanics, 1993, 25(3): 375-379. DOI: 10.6052/0459-1879-1993-3-1995-655
    [10]串列双方柱体流体动力载荷研究[J]. Chinese Journal of Theoretical and Applied Mechanics, 1992, 24(5): 529-534. DOI: 10.6052/0459-1879-1992-5-1995-772

Catalog

    Article Metrics

    Article views (72) PDF downloads (65) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return