Volume 40 Issue 1
Feb.  2022
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XIAO Qin, LUO Fan. Propagation Mechanism of Safety Risk During Take-off and Landing of Amphibious Seaplanes Based on D-SEIRS Model[J]. Journal of Transport Information and Safety, 2022, 40(1): 1-9. doi: 10.3963/j.jssn.1674-4861.2022.01.001
Citation: XIAO Qin, LUO Fan. Propagation Mechanism of Safety Risk During Take-off and Landing of Amphibious Seaplanes Based on D-SEIRS Model[J]. Journal of Transport Information and Safety, 2022, 40(1): 1-9. doi: 10.3963/j.jssn.1674-4861.2022.01.001

Propagation Mechanism of Safety Risk During Take-off and Landing of Amphibious Seaplanes Based on D-SEIRS Model

doi: 10.3963/j.jssn.1674-4861.2022.01.001
  • Received Date: 2021-08-27
    Available Online: 2022-03-31
  • It is of great importance to study the safety risk of amphibious seaplanes during their take-off and landing, since accidents occur frequently in these two phases. Based on the SEIRS model for disease transmission, considering the propagation and delay mechanism on safety risk of amphibious seaplane during take-off and landing, a risk propagation delay(D-SEIRS)model based on a scale-free network is developed to study the propagation mechanism of safety risk during the take-off and landing of amphibious seaplanes. The Routh-Hurwitz Criterion is used to analyze the stability of the equilibrium in the proposed model and solve for the steady-state density(SSD)and basic regeneration number of the proposed model. A numeric simulation based on the MATLAB software is performed using the proposed model, which discloses the dynamic propagation law of the safety risk during the take-off and landing of amphibious seaplanes. Study results show that both the effective propagation rate(EPR) and the propagation delay time(PDT)can lead to the increase of the steady-state density of the infected nodes of the network; the propagation delay can reduce the risk propagation threshold in the network and accelerate the emerging of risk outbreak state; the propagation rates of both latent nodes and infected nodes will lead to an increase in the steady-state density of infected nodes and latent nodes, and the effective propagation rate of latent nodes has a more prominent impact on risk propagation over the network than that of the infected nodes.

     

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  • [1]
    肖琴, 罗帆. 基于GT-SEM的两栖水上飞机起降安全风险作用机理[J]. 中国安全科学学报, 2019, 29(4): 158-163.

    XIAO Q, LUO F. Safety risk mechanism of GT-SEM based amphibious seaplane during take-off and landing[J]. China Safety Science Journal, 2019, 29(4): 158-163. (in Chinese)
    [2]
    肖琴, 罗帆. 基于复杂网络的两栖水上飞机起降安全风险演化[J]. 复杂系统与复杂性科学, 2019, 16(2): 19-30. https://www.cnki.com.cn/Article/CJFDTOTAL-FZXT201902003.htm

    XIAO Q, LUO F. Safety risk evolution of amphibious seaplane during takeoff and landing-based on complex network[J]. Complex System and Complexity Science, 2019, 16(2): 19-30. (in Chinese) https://www.cnki.com.cn/Article/CJFDTOTAL-FZXT201902003.htm
    [3]
    翁建军, 周阳. 水上飞机与船舶碰撞风险因素建模[J]. 中国航海, 2013, 36(3): 70-75. doi: 10.3969/j.issn.1000-4653.2013.03.016

    WENG J J, ZHOU Y. Analysis of risk factors of seaplane-vessel collision based on the integration of DEMATEL and ISM[J]. Navigation of China, 2013, 36(3): 70-75. (in Chinese) doi: 10.3969/j.issn.1000-4653.2013.03.016
    [4]
    WENG J J, ZHOU Y. Analysis of risk factors and safety countermeasures of collision between seaplanes and vessels based on ISM theory[C]. 2nd International Conference on Transportation Information and Safety, Wuhan: Wuhan University of Technology, 2013.
    [5]
    翁建军, 周阳. 水上飞机与船舶的港口异质交通流建模[J]. 中国航海, 2015, 38(2): 104-108. doi: 10.3969/j.issn.1000-4653.2015.02.025

    WENG J J, ZHOU Y. Simulation modeling of seaplane-ship heterogeneous port traffic flow[J]. Navigation of China, 2015, 38(2): 104-108. (in Chinese) doi: 10.3969/j.issn.1000-4653.2015.02.025
    [6]
    GUO G P, XU Y C, WU B. Overview of current progress and development of seaplane safety management[C]. IEEE International Conference on Intelligent Transportation Engineering, Singapore: IEEE, 2016.
    [7]
    张攀科, 罗帆. 水上机场航道冲突风险机制的FTA-BN建模[J]. 中国安全科学学报, 2018, 28(9): 177-182. https://www.cnki.com.cn/Article/CJFDTOTAL-ZAQK201809030.htm

    ZHANG P K, LUO F. FTA-BN modeling of runway conflict risk mechanism at water aerodrome[J]. China Safety Science Journal, 2018, 28(9): 177-182. (in Chinese) https://www.cnki.com.cn/Article/CJFDTOTAL-ZAQK201809030.htm
    [8]
    XIAO Q, LUO F, LI Y P. Risk assessment of seaplane operation safety using Bayesian network[J]. Symmetry, 2020, 12(6): 888. doi: 10.3390/sym12060888
    [9]
    BARTHELEMYM, BARRATA, PASTOR-SATORRAS R, etal. Velocity and hierarchical spread of epidemic outbreaks in scale-free networks[J]. Physical Review Letter, 2004(92): 178701. http://www.onacademic.com/detail/journal_1000036989765910_634b.html
    [10]
    CASTELLANO C, PASTOR-SATORRAS R. Thresholds for epidemic spreading in networks[J]. Physical Review Letter, 2010(105): 218701. http://www.rpi.edu/dept/phys/sicsin2011/Castellano_Budapest11.pdf
    [11]
    MAY R M, LIOYD A L. Infection dynamic on scale-free networks[J]. Physical Review E, 2001(64): 066112. http://www.researchgate.net/profile/Robert_May5/publication/11620646_Infection_dynamics_on_scale-free_networks/links/00b7d5209f7d4895fe000000
    [12]
    ALMEIDA R. Analysis of a fractional SEIR model with treatment[J]. Applied Mathematics Letters, 2018(84): 56-62. http://www.onacademic.com/detail/journal_1000040311582210_ef8d.html
    [13]
    CHINAZZI M, DAVIS J T, AJELLI M, et al. The effect of travel restrictions on the spread of the 2019 novel coronavirus (COVID-19) outbreak[J]. Science, 2020, 368(6489): 395-400. doi: 10.1126/science.aba9757
    [14]
    陈卫明, 周豪洁, 张奕莹. 基于改进传染病模型的群体情绪感染机制研究[J]. 中国安全科学学报, 2018, 28(10): 149-155. https://www.cnki.com.cn/Article/CJFDTOTAL-ZAQK201810025.htm

    CHEN W M, ZHOU H J, ZHANG Y Y. Study on mechanism of emotional contagion in group based on improved epidemic model[J]. China Safety Science Journal, 2018, 28(10): 149-155. (in Chinese) https://www.cnki.com.cn/Article/CJFDTOTAL-ZAQK201810025.htm
    [15]
    陈莫凡, 黄建华. 基于SEIQR演化博弈模型的突发网络舆情传播与控制研究[J]. 情报科学, 2019, 37(3): 60-68. https://www.cnki.com.cn/Article/CJFDTOTAL-QBKX201903011.htm

    CHEN M F, HUANG J H. Research on diffusion and control of emergency network public opinion based on SEIQR evolutionary game model[J]. Information Science, 2019, 37(3): 60-68. (in Chinese) https://www.cnki.com.cn/Article/CJFDTOTAL-QBKX201903011.htm
    [16]
    HUANG H, CHEN Y H, MA Y F. Modeling the competitive diffusions of rumor and knowledge and the impacts on epidemic spreading[J]. Applied Mathematics and Computation, 2021(388): 125536. http://www.ncbi.nlm.nih.gov/pubmed/32834190
    [17]
    SACHAK-PATWA R, FADAI N T, VAN GORDER R A. Modeling multi-group dynamics of related viral videos with delay differential equations[J]. Physica A: Statistical Mechanics and its Applications, 2019(521): 197-217. http://www.onacademic.com/detail/journal_1000041593029899_60ae.html
    [18]
    赵贤利. 机场跑道安全风险演化机理研究[D]. 武汉: 武汉理工大学, 2017.

    ZHAO X L. Research on the evolution mechanism of airport runway safety risk[D]. Wuhan: Wuhan University of Technology, 2017. (in Chinese)
    [19]
    唐辛欣, 罗帆. 基于SEIRS模型的机场飞行区人为风险传染过程研究[J]. 工业工程, 2016, 19(6): 56-63. https://www.cnki.com.cn/Article/CJFDTOTAL-GDJX201606009.htm

    TANG X X, LUO F. Infection process of airport flight area human risk based on SEIRS epidemic disease model[J]. Industrial Engineering Journal, 2016, 19(6): 56-63. (in Chinese) https://www.cnki.com.cn/Article/CJFDTOTAL-GDJX201606009.htm
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