• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    The dynamics of the floodwater and the damaged ship in waves*

    2015-11-25 11:31:29GAOZhiliang高志亮VASSALOSDracos
    關(guān)鍵詞:高志

    GAO Zhi-liang (高志亮), VASSALOS Dracos

    1. Research Center of Coastal and Estuarine Engineering, Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin 300456, China, E-mail: zlgao@hotmail.com

    2. Department of Naval Architecture and Marine Engineering, University of Strathclyde, Glasgow, G4 0LZ, UK

    The dynamics of the floodwater and the damaged ship in waves*

    GAO Zhi-liang (高志亮)1, VASSALOS Dracos2

    1. Research Center of Coastal and Estuarine Engineering, Tianjin Research Institute for Water Transport Engineering, Ministry of Transport, Tianjin 300456, China, E-mail: zlgao@hotmail.com

    2. Department of Naval Architecture and Marine Engineering, University of Strathclyde, Glasgow, G4 0LZ, UK

    2015,27(5):689-695

    The interaction between the dynamics of the floodwater and the damaged ship in waves is investigated by applying an integrated method, which couples a seakeeping solver and a Navier-Stokes solver. To reveal the effects of the water flooding and the sloshing on the damaged ship behaviour, the motion of a Ro-Ro ferry in regular beam seas is simulated, including the ship under the intact condition with and without internal water and the ship under a damaged condition. It is found that the shift of the natural roll frequency of a damaged ship and the decrease of its roll response are mainly due to the water sloshing inside the compartment. The effect of the resonant sloshing leads to the presence of a ship’s second peak response at higher frequencies and it is significantly reduced by the water flooding through the damaged opening. The influence of the flooding and the sloshing on the ship behaviour is small with a further increase of the wave frequency.

    damaged ship, flooding, sloshing, coupled model

    Introduction

    The safety of ships under a damaged condition is of a prime interest to the maritime industry, the regulatory institutions and the scientific community. In a series of EU funded projects (e.g., HARDER,NEREUS, ROROPROB, SAFEDOR, FLOODSTAND and GOALDS), considerable research effort has been put in the assessment and improvement of damaged ship’s stability and survivability. The ship’s behaviour upon flooding is one of the key issues in the research, but its underlying mechanism is still not well understood due to the complicated dynamics between the floodwater and the damaged ship.

    At the beginning of the flooding process, the high hydrostatic pressure across the damaged opening drives the external water to flood into the empty compartment drastically. The violent floodwater motion may capsize the ship or make it sink rapidly. After this initial stage, the flooding tends to be quasi-stationary. The water flows in and out through the damaged opening depending on the ship behaviour and the external sea state. These mechanisms are even more complicated if a ship is damaged in waves. On one hand, the ship motion is excited by sea waves and at the same time excites the water sloshing inside the compartment. Only a slight motion is sufficient to trigger a violent sloshing when the excitation frequency is in the vicinity of the first natural frequency of the internal water motion. Conversely, the water sloshing also influences the ship motion. On the other hand, the water flooding is accompanied with the exchange of mass and momentum between the internal and external water, and consequently, the characteristics of the water sloshing and the ship motion are changed. The highly coupled dynamics between the floodwater and the damaged ship makes it hard to model the inherent phenomena reliably.

    Over the past three decades, a variety of numerical methods that couple the floodwater and the damaged ship motion were proposed. Because the sea water loads on the external hull surface can be effectively calculated based on the seakeeping theory, the development of numerical methods mainly focused on the modeling of the water motion through the opening andinside the compartment. In the earlier studies[1-3], the modified empirical Bernoulli’s equation was used to evaluate the flow rate through the opening. The water surface inside the compartment was assumed to be horizontal. Subsequently, the concept of the moving lump mass[4-6], the shallow water equation[7-9], the multimodal method[9]and the state-of-the-art computational fluid dynamics (CFD) method[10-12]were introduced to improve the model of the floodwater motion. Just a few of related references are listed, a comprehensive review of the capacity and the limitation of above-mentioned methods may be found in Ref.[13].

    With the improvement of numerical methods,some attempts were made to study the hydrodynamics of damaged ships based on numerical simulations. Santos and Guedes Soares[8]investigated the interactive dynamics of the water sloshing, the ship and the sea waves. Although the effect of the water flooding was not taken into account, the peculiar behaviour of the damaged ship was partially explained. Gao and Vassalos[14]analyzed the added inertial and damping coefficients of a damaged ship section in a roll decay motion. In their later study[15], the forced roll motion of the same ship section was simulated. The interaction between the flooding and the sloshing and their effects on the ship hydrodynamics were evaluated.

    This paper extends the studies previously conducted by the authors[16], where an integrated numerical method combined with the CFD and the seakeeping theories was developed to simulate the damaged ship flooding in waves. Good agreement between the numerical and experimental results was reported. In this study, the integrated method is employed to simulate three test cases of a Ro-Ro ferry subjected to regular beam seas. The test cases include the ship under the intact condition without internal water, the ship under the intact condition with water sloshing and the ship under a damaged condition with water flooding and sloshing. The floodwater and ship motions in these cases are investigated, in order to better understand the effects of the water flooding and the sloshing on the damaged ship behaviour in waves.

    Table 1 Main specifications of the ferry

    1. Integrated method

    An integrated method that couples a seakeeping solver and a Navier-Stokes (N-S) solver is used for the flooding problem of a damaged ship in this paper. Its mathematical and numerical models were described in detail in Ref.[16]. Only a brief introduction of this method is given here.

    Fig.1 Body plan of the ferry[21]

    Fig.2 Layout of the floodable compartments

    Fig.3 CFD simulation domain in the damaged ship case

    A seakeeping solver PROTEUS3[5]is used to calculate the hydrostatic and hydrodynamic forces induced by the sea waves on the external hull surface. The hydrostatic and Froude-Krylov forces are evaluated by integrating the pressure over the instantaneous wetted surface of the ship. The diffraction and radiation forces are first obtained with the strip theory based on the potential flow theory in the frequency domain, and are then transformed into the time domain with spectral and convolution techniques, respectively. To accountfor the viscous effects outside the ship, the wellknown Ikeda’s method[17]is employed to correct the roll damping.

    A finite-volume-discretisation based N-S solver previously developed by the authors[18,19]is used to model the water flooding through the damaged opening and the sloshing inside the compartment. To reduce the computational cost, a sub-region including the damaged openings, the floodable compartments and an external region around the damaged ship section is defined from the entire flow region. The flow motion in this sub-region is computed by solving the unsteady N-S equations accompanied with the continuity equation. A VOF family algorithm, CICSAM,proposed by Ubbink and Issa[20], is used to capture the free surface. The ship motion is tackled with the dynamic mesh technique without the turbulence modelling.

    At each time step, the boundary condition (e.g.,the flow velocity and the water level) of the N-S solver is provided by the seakeeping solver. At the same time, the ship motion that excites the floodwater motion inside the compartments is treated as a moving boundary of the N-S solver. After the internal liquid load obtained by the NS solver and the sea wave loads obtained by the seakeeping solver are added together,the ship motion at the next time step is updated by solving the linear and angular momentum equations.

    Table 2 Meshes employed in the gird dependence study in case of intact ship with internal water

    2. Results and discussions

    The previous study[16]demonstrates that the integrated numerical method can reproduce the particular behaviour of a damaged ship in waves (e.g., the shift of the natural roll frequency, the decrease of the peak response and the presence of a second peak response)through a comparison between the numerical and experimental results. To further investigate the effect of the floodwater motion on the ship behaviour, additional numerical tests are carried out using the integrated method in this study. A Ro-Ro ferry for the ITTC benchmarking study[21]is selected as the test ship. Its main specifications and the body plan are shown in Table 1 and Fig.1, respectively. The damaged opening is located on the port side of the midship. Two double bottom tanks and two storage rooms are flooded and their layouts are illustrated in Fig.2.

    The simulation cases include the ship under the intact condition with and without internal water and the ship under a damaged condition. The wave condition is that in regular beam seas with the wave height of 1.2 m and the frequency from 0.3 rad/s to 1.1 rad/s. In the case of a damaged ship, the CFD simulation domain consisting of the four floodable compartments and a small region outside the compartments is shown in Fig.3. On the top boundary, the pressure is set to be the atmospheric pressure. The hydrostatic pressure corresponding to the initial water height is imposed on the bottom boundary. The elevation and the particle velocity of the incident wave are imposed on the left boundary. On the right, front and back boundaries, the initial water height and the hydrostatic pressure are imposed. The no-slip wall condition is imposed on the surfaces of the hull and the compartments. In the case of the intact ship with internal water, the CFD simulation domain is the floodable compartments. The noslip wall condition is imposed on the compartment surface. Only four degrees of freedom of the ship (the sway, the heave, the roll and the pitch) are considered in the numerical simulation. In the two cases of the ship with internal water, the floodable compartments are initially filled with water, the level of which is equal to that of the external calm water. The simulation is run on a dual-core (Intel i5, 3.4 GHz) personal computer and continues until the ship motion becomes stable for each wave frequency.

    Table 3 Comparison of roll RAOs computed with different meshes

    Fig.4 Snapshots of internal water motion in the intact ship case at ω=0.4rad/sand t=210s

    Fig.5 Snapshots of internal water motion in the intact ship case at ω=0.75rad/sand t=210s

    Fig.6 Snapshots of internal water motion in the intact ship case at ω=0.9rad/sand t=210s

    The water motion inside the compartment significantly influences the ship behaviour. To investigate the grid sensitivity in the case of the internal water motion, three meshes as listed in Table 2 are generated to simulate the the intact ship with internal water. Three wave frequencies of 0.4 rad/s, 0.75 rad/s and 0.9 rad/s are selected for the grid dependence study. The computational time steps for the coarse, medium and fine grids are 0.02 s, 0.01 s and 0.005 s, respectively. The adopted time step for each grid ensures that the cell Courant number is within the limit of 0.5. It takes approximately 12, 63 and 291 CPU hours to finish a 200 s simulation on the coarse, medium and fine grids, respectively. The comparison of the roll re-sponse amplitude operators (RAOs) computed with different grid sizes is shown in Table 3. The error between the results obtained on the coarser and finer levels of grid size is less than 2%. Figures 4-6 show the motions of the internal water at the position of four slices illustrated in Fig.7. Small differences of water surface profile obtained with different grid sizes are observed, but the global motions of water as predicted with the three girds are in good agreement. In the following numerical simulations, the medium grid with time step of 0.01 s is employed for the case of the intact ship with internal water to achieve as high fidelity as possible with acceptable computational cost. In the case of a damaged ship, the mesh arrangement inside the compartments is identical to that of medium grid listed in Table 2. Outside the compartments, the element sizes gradually expand away from the damaged opening. The total number of grid elements is 312 589. The computational time step is 0.01 s. It takes nearly 117 CPU hours to finish a 200 s simulation.

    Fig.7 Sketch of the four slices extracted from the compartment domain

    Fig.8 Comparison of the ship’s roll RAO in different cases

    Figure 8 compares the computed roll RAOs in the intact ship case without internal water, the intact ship case with internal water and the damaged ship case at wave frequencies ranging from 0.3 rad/s to 1.1 rad/s. For the two cases with internal water, the frequencies of the first peak response (natural roll frequency of the ship) are in good agreement. They are approximately 0.415 rad/s and are shifted from 0.49 rad/s in the case without internal water. This comparison demonstrates that the shift of the natural roll frequency of the ship is due to the water motion inside the compartments but has little to do with the water ingress/egress through the damaged opening. On the other hand, the peak magnitudes in the two cases with internal water are nearly 1.5 times smaller than that in the case without internal water, which indicates that the decrease of the ship response is mainly due to the internal water motion. Note that the decrease of the peak response for the damaged ship is slightly larger than that for the intact ship. This suggests that the water ingress/egress further weakens the ship response. As the wave frequency increases, a second peak of the roll response around the frequency of 0.75 rad/s is observed in the two cases with internal water. The magnitude of this peak for the intact ship is almost three times as large as that for the damaged ship. The large difference between the magnitudes of these two peaks indicates that the water ingress/egress has a significant influence on the internal water motion and consequently on the ship motion in this frequency range. For the wave frequency higher than 1.0 rad/s, the ship responses in the three studied cases are close, implying that the influence of the floodwater motion on the ship behaviour becomes small.

    The water load on the compartment is related with the internal water motion. Figures 9-11 show the profiles of the water surface inside the compartment in the case of the intact ship with internal water and the case of a damaged ship. At the wave frequency of 0.415 rad/s (see Fig.9), the elevation of the free surface inside the compartments varies smoothly along the transverse direction; whereas its variation along the longitudinal direction is small. Generally speaking,the profile of the water surface in the case of the intact ship is similar to that in the case of a damaged ship. This comparison indicates that the effect of the water ingress/egress through the opening on the free surface motion of internal water is small. As a result, the frequencies of the ship’s first peak response and the response magnitudes in these two cases are close. At the wave frequency of 0.75 rad/s (see Fig.10), the resonant sloshing phenomenon of internal water is notable. In the case of the intact ship, a large deformation of the water surface is observed along the transverse and longitudinal directions. The sloshing water impacts on the vertical wall of the compartment, climbs up the obstacle and hits the compartment’s ceiling. In the case of a damaged ship, it is apparent that the nonlinear sloshing effect is much weaker as compared to the case of an intact ship. The comparison implies that the presence of the second peak in the RAO curve is due to the resonant water sloshing inside the compartments. Additionally, the water flooding through the opening largely suppresses the non-linear motion of internal water around the resonant frequency. As the wave frequency further increases to 0.9 rad/s (seeFig.11), the strongly non-linear sloshing phenomenon disappears. The water surface tends to be flat and horizontal. The free surface profiles of internal water are similar in the two studied cases, suggesting that the flooding effect on the free surface motion inside the compartment becomes insignificant as the wave frequency increases further away from the resonant sloshing frequency.

    Fig.9 Snapshots of internal water motion at ω=0.145rad/s

    Fig.10 Snapshots of internal water motion at ω=0.75rad/s, ω=0.75 rad/s

    Fig.11 Snapshots of internal water motion at ω=0.9rad/s

    3. Conclusion

    The numerical simulation is conducted to study the dynamics of the floodwater and a damaged ship in waves. Three cases of a Ro-Ro ferry, respectively,under the intact condition without internal water, the intact condition with internal water and a damaged condition, are simulated using an integrated numerical method. The interactions among the water flooding,the sloshing and the ship are investigated. Based on the present numerical results, several conclusions can be drawn for the damaged ship flooding with lower compartments. (1) The shift of the natural roll frequency is due to the water sloshing in the compartments but has little to do with the water flooding through the damaged opening. (2) The decrease of the ship response at its natural roll frequency mainly comes from the internal water sloshing, whereas the contribution of the water flooding is small. (3) The effect of the resonant sloshing leads to the presence of a ship’s second peak response at higher wave frequencies. This effect is largely alleviated by the water flooding through the damaged opening. (4) As the wave frequency further increases away from the resonant sloshing frequency,the sloshing and flooding effects on the ship behaviour are small.

    References

    [1] SPOUGE J. R. The technical investigation of the sinking of the Ro-Ro ferry european gateway[J]. Transactions of the Royal Institution of Naval Architects,1986, 128: 49-72.

    [2] DAND I. Hydrodynamic aspects of the sinking of the ferry herald of free enterprise[J]. Transactions of the Royal Institution of Naval Architects, 1989, 131: 145-165.

    [3] VASSALOS D., TURAN O. A realistic approach to assessing the damage survivability of passenger ships[J]. Transactions of the Society of Naval Architects and Marine Engineers, 1994, 102: 367-394.

    [4] SPANOS D., PAPANIKOLAOU A. On the stability of fishing vessels with trapped water on deck[J]. Ship Technology Research, 2001, 48(3): 124-133.

    [5] JASIONOWSKI A. An integrated approach to damage ship survivability assessment[D]. Doctoral Thesis,Glasgow, UK: University of Strathclyde, 2001.

    [6] MANDERBACKA T. L., MATUSIAK J. E. Ship motions caused by time-varying extra mass on board[C]. Proceedings of the 12th International Ship Stability Workshop. Washington D. C., 2011, 263-269.

    [7] CHANG B., BLUME P. Survivability of damaged Ro-Ro passenger vessels[J]. Ship Technology Research,1998, 45 (3): 105-117.

    [8] SANTOS T. A., GUEDES SOARES C. Study of damaged ship motions taking into account floodwater dynamics[J]. Journal of Marine Science and Technology,2008, 13(3): 291-307.

    [9] KONG X., FALTINSEN O. M. Coupling between ship motions and flooding of a damaged ship in waves[C]. Proceedings of the 8th International Conference on Hydrodynamics. Nantes, France, 2008.

    [10] SHEN L., VASSALOS D. Applications of 3D parallel SPH for sloshing and flooding[C]. Proceedings of the 10th International Conferences on the Stability of Ships and Ocean Vehicles. Saint Petersburg, Russia,2009, 723-732.

    [11] STRASSER C., JASIONOWSKI A. and VASSALOS D. Calculation of time-to-flood of a box-shaped barge by using CFD[C]. Proceedings of the 10th International Conferences on the Stability of Ships and Ocean Vehicles. Saint Petersburg, Russia, 2009, 733-740.

    [12] ZHANG A., CAO X. and MING F. et al. Investigation on a damaged ship model sinking into water based on three dimensional SPH method[J]. Applied Ocean Research, 2013, 42: 24-31.

    [13] GAO Z. A hybrid approach to flooding and damaged ship dynamics[D]. Doctoral Thesis, Glasgow, UK: Universities of Glasgow and Strathclyde, 2012.

    [14] GAO Q., VASSALOS D. Numerical study of the roll decay of intact and damaged ships[C]. Proceedings of the 12th International Ship Stability Workshop. Washington DC, USA, 2011, 277-282.

    [15] GAO Q., VASSALOS D. Numerical study of damage ship hydrodynamics[J]. Ocean Engineering, 2012, 55: 199-205.

    [16] GAO Z., GAO Q. and VASSALOS D. Numerical study of damaged ship flooding in beam seas[J]. Ocean Engineering, 2013, 61: 77-87.

    [17] IKEDA Y. Prediction methods of roll damping of ships and their application to determine optimum stabilization devices[J]. Marine Technology, 2004, 41(2): 89-93.

    [18] GAO Z., VASSALOS D. and GAO Q. Numerical simulation of water flooding into a damaged vessel’s compartment by the volume of fluid method[J]. Ocean Engineering, 2010, 37(16): 1428-1442.

    [19] GAO Z., GAO Q. and VASSALOS D. Numerical simulation of flooding of a damaged ship[J]. Ocean Engineering, 2011, 38(14-15): 1649-1662.

    [20] UBBINK O., ISSA R. I. A method for capturing sharp fluid interfaces on arbitrary meshes[J]. Journal of Computational Physics, 1999, 153(1): 26-50.

    [21] PAPANIKOLAOU A., SPANOS D. The 24th ITTC benchmark study on the numerical prediction of damage ship stability in waves-preliminary analysis of results[C]. Proceedings of the 7th International Workshop on Stability and Operational Safety of Ships. Shanghai, China, 2004.

    10.1016/S1001-6058(15)60531-5

    (February 15, 2014, Revised October 29, 2014)

    * Project supported by the Fundamental Research Funds for the Central Public Research Institutes of China (Grant Nos. TKS130201, TKS140201), the Technology Foundation for Selected Overseas Chinese Scholars (granted by Ministry of Human Resources and Social Security of China).

    Biography: GAO Zhi-liang (1982-), Male, Ph. D., Engineer

    猜你喜歡
    高志
    High-performance artificial neurons based on Ag/MXene/GST/Pt threshold switching memristors
    EPB系統(tǒng)在商用重型車上的應(yīng)用
    張良英教授經(jīng)驗方更年1號治療更年期綜合征療效觀察
    數(shù)控機(jī)床故障檢測與維修
    九品蓮臺
    寶藏(2021年8期)2021-09-15 02:19:46
    本期名家—高志祥
    陳爐印象
    寶藏(2021年11期)2021-01-01 06:17:18
    高志剛
    Shallow-water sloshing motions in rectangular tank in general motions based on Boussinesq-type equations *
    磁場的性質(zhì)和描述檢測題
    最近最新中文字幕大全免费视频| 日本vs欧美在线观看视频| 欧美激情极品国产一区二区三区| 人妻 亚洲 视频| 亚洲国产看品久久| 亚洲精品国产av蜜桃| 国产片内射在线| 成年女人毛片免费观看观看9 | 国产欧美日韩一区二区精品| 永久免费av网站大全| 国产精品久久久久久人妻精品电影 | 婷婷丁香在线五月| 日本vs欧美在线观看视频| 中文字幕人妻丝袜制服| 欧美精品人与动牲交sv欧美| 精品免费久久久久久久清纯 | 少妇粗大呻吟视频| 日韩中文字幕欧美一区二区| 性色av一级| 王馨瑶露胸无遮挡在线观看| 老司机在亚洲福利影院| 老司机影院成人| 99九九在线精品视频| 午夜日韩欧美国产| 国产免费视频播放在线视频| 男人操女人黄网站| 午夜精品久久久久久毛片777| 亚洲欧美成人综合另类久久久| 两人在一起打扑克的视频| 男女边摸边吃奶| 肉色欧美久久久久久久蜜桃| 国产福利在线免费观看视频| 久久精品成人免费网站| 亚洲国产av影院在线观看| 久久香蕉激情| 欧美成狂野欧美在线观看| 美女大奶头黄色视频| 中文欧美无线码| 国产国语露脸激情在线看| 色精品久久人妻99蜜桃| 色精品久久人妻99蜜桃| 亚洲熟女精品中文字幕| 中文字幕另类日韩欧美亚洲嫩草| 黄色视频,在线免费观看| 美女脱内裤让男人舔精品视频| 在线精品无人区一区二区三| 19禁男女啪啪无遮挡网站| 国产日韩欧美在线精品| 岛国在线观看网站| a级毛片黄视频| av免费在线观看网站| 亚洲中文字幕日韩| 蜜桃国产av成人99| tube8黄色片| 99精国产麻豆久久婷婷| 各种免费的搞黄视频| 9191精品国产免费久久| 美女午夜性视频免费| 女人高潮潮喷娇喘18禁视频| 狠狠精品人妻久久久久久综合| 精品一区在线观看国产| 亚洲欧美激情在线| 亚洲一区中文字幕在线| av天堂在线播放| 波多野结衣av一区二区av| 国产日韩欧美亚洲二区| tube8黄色片| a级片在线免费高清观看视频| 性高湖久久久久久久久免费观看| 男女免费视频国产| 色婷婷av一区二区三区视频| 精品卡一卡二卡四卡免费| 国产在线一区二区三区精| 久久国产精品大桥未久av| 国产麻豆69| av国产精品久久久久影院| 12—13女人毛片做爰片一| 午夜福利乱码中文字幕| 国产成人欧美| 97在线人人人人妻| 久久中文字幕一级| 亚洲欧美成人综合另类久久久| 亚洲av成人一区二区三| 午夜影院在线不卡| 人成视频在线观看免费观看| 如日韩欧美国产精品一区二区三区| 久久中文字幕一级| 久久精品人人爽人人爽视色| 黄频高清免费视频| 欧美日韩视频精品一区| 久久这里只有精品19| 精品欧美一区二区三区在线| 亚洲中文字幕日韩| 天天添夜夜摸| 日本猛色少妇xxxxx猛交久久| 老熟妇乱子伦视频在线观看 | 纵有疾风起免费观看全集完整版| av片东京热男人的天堂| 亚洲五月婷婷丁香| 中文字幕av电影在线播放| 老司机福利观看| 亚洲成人手机| 亚洲精品国产av蜜桃| 日韩电影二区| 免费观看av网站的网址| 一区在线观看完整版| 国产精品亚洲av一区麻豆| 黑人猛操日本美女一级片| 一级毛片精品| 国精品久久久久久国模美| 老司机在亚洲福利影院| 色婷婷久久久亚洲欧美| 午夜91福利影院| 老司机靠b影院| 久久狼人影院| 日本黄色日本黄色录像| 久久天躁狠狠躁夜夜2o2o| 桃花免费在线播放| 亚洲成人手机| av免费在线观看网站| 国产精品久久久久久精品古装| 国产一区二区 视频在线| av在线播放精品| 色视频在线一区二区三区| 看免费av毛片| 真人做人爱边吃奶动态| 欧美成人午夜精品| 一边摸一边做爽爽视频免费| 日本五十路高清| 在线观看免费视频网站a站| 免费观看av网站的网址| 精品一区二区三区av网在线观看 | 又紧又爽又黄一区二区| 亚洲男人天堂网一区| 麻豆国产av国片精品| 99国产精品99久久久久| 国产淫语在线视频| 亚洲熟女精品中文字幕| 成年人午夜在线观看视频| 国产一卡二卡三卡精品| 桃花免费在线播放| 亚洲精品一卡2卡三卡4卡5卡 | 日韩中文字幕视频在线看片| 一区二区三区激情视频| 最近中文字幕2019免费版| 人妻久久中文字幕网| a级毛片黄视频| 久久av网站| 日本wwww免费看| 一本大道久久a久久精品| 搡老岳熟女国产| 最新的欧美精品一区二区| 啦啦啦中文免费视频观看日本| 国产日韩欧美亚洲二区| 成年人黄色毛片网站| 久久国产亚洲av麻豆专区| 国产成人系列免费观看| 桃红色精品国产亚洲av| 亚洲精品国产av成人精品| 亚洲国产看品久久| 一进一出抽搐动态| 久久99热这里只频精品6学生| 精品人妻一区二区三区麻豆| 久久性视频一级片| 王馨瑶露胸无遮挡在线观看| 久久亚洲国产成人精品v| 欧美日韩福利视频一区二区| a 毛片基地| 欧美老熟妇乱子伦牲交| 精品久久久久久电影网| 少妇 在线观看| 在线精品无人区一区二区三| 首页视频小说图片口味搜索| 999久久久精品免费观看国产| 99精国产麻豆久久婷婷| 淫妇啪啪啪对白视频 | 日韩中文字幕视频在线看片| 国产精品免费视频内射| 十八禁网站免费在线| 99久久国产精品久久久| 日韩 亚洲 欧美在线| 亚洲,欧美精品.| 女警被强在线播放| 亚洲欧美激情在线| 久久人妻福利社区极品人妻图片| 两个人看的免费小视频| 精品人妻1区二区| 亚洲激情五月婷婷啪啪| 久久精品国产综合久久久| 国产av一区二区精品久久| 亚洲色图 男人天堂 中文字幕| 亚洲av成人一区二区三| 99精品欧美一区二区三区四区| 国产成人av教育| 亚洲va日本ⅴa欧美va伊人久久 | 91老司机精品| av天堂在线播放| 久久久久国内视频| 美女福利国产在线| 亚洲国产精品999| e午夜精品久久久久久久| 99热全是精品| 久久99一区二区三区| 精品第一国产精品| 午夜免费成人在线视频| 超色免费av| 国产免费一区二区三区四区乱码| 亚洲,欧美精品.| 最新在线观看一区二区三区| 777久久人妻少妇嫩草av网站| avwww免费| 波多野结衣高清作品| 国模一区二区三区四区视频 | 中文字幕最新亚洲高清| 一级黄色大片毛片| АⅤ资源中文在线天堂| 精品无人区乱码1区二区| 成人永久免费在线观看视频| 亚洲美女视频黄频| 91国产中文字幕| 中文字幕久久专区| 国产伦在线观看视频一区| 男人舔奶头视频| 天天添夜夜摸| 人妻久久中文字幕网| 国产精品免费视频内射| 黄色视频不卡| 国产精品美女特级片免费视频播放器 | 欧美成狂野欧美在线观看| 国产99久久九九免费精品| 亚洲中文字幕一区二区三区有码在线看 | 777久久人妻少妇嫩草av网站| 宅男免费午夜| 欧美日韩一级在线毛片| 久久久久久久久免费视频了| 亚洲专区中文字幕在线| 久久久久久国产a免费观看| 夜夜夜夜夜久久久久| 老司机深夜福利视频在线观看| 美女午夜性视频免费| 18禁裸乳无遮挡免费网站照片| 高潮久久久久久久久久久不卡| 日韩欧美国产一区二区入口| 欧美一区二区国产精品久久精品 | 亚洲第一电影网av| 99国产精品一区二区三区| 丁香欧美五月| 51午夜福利影视在线观看| 午夜福利成人在线免费观看| 欧美日韩国产亚洲二区| 在线视频色国产色| 极品教师在线免费播放| 精品久久蜜臀av无| 亚洲一区中文字幕在线| 国产av不卡久久| www.精华液| 日韩精品青青久久久久久| 一本久久中文字幕| 久久国产精品影院| 精品免费久久久久久久清纯| 久久久久免费精品人妻一区二区| 久久久久久久午夜电影| 啦啦啦韩国在线观看视频| 少妇被粗大的猛进出69影院| 99热这里只有精品一区 | 日韩 欧美 亚洲 中文字幕| 午夜精品久久久久久毛片777| 黄色成人免费大全| 亚洲国产欧美人成| 国产精品 欧美亚洲| 动漫黄色视频在线观看| 18禁裸乳无遮挡免费网站照片| 日韩国内少妇激情av| 在线免费观看的www视频| 久久草成人影院| 嫩草影视91久久| 亚洲国产欧美网| 又爽又黄无遮挡网站| 国产成人欧美在线观看| 国产亚洲欧美98| 99精品在免费线老司机午夜| 一区二区三区激情视频| www.自偷自拍.com| 午夜福利欧美成人| 国产高清视频在线观看网站| 国产v大片淫在线免费观看| 黄色视频,在线免费观看| 久久精品91无色码中文字幕| 日本撒尿小便嘘嘘汇集6| av福利片在线| 看黄色毛片网站| 国产激情偷乱视频一区二区| 婷婷精品国产亚洲av| 999久久久国产精品视频| 国产高清激情床上av| 国产精品免费一区二区三区在线| 成年人黄色毛片网站| 欧美在线一区亚洲| 99久久综合精品五月天人人| 亚洲精品国产一区二区精华液| 亚洲国产精品合色在线| 欧美午夜高清在线| 丝袜美腿诱惑在线| 成年人黄色毛片网站| 亚洲男人的天堂狠狠| 久久久久久久久免费视频了| 小说图片视频综合网站| 国产男靠女视频免费网站| 老汉色av国产亚洲站长工具| 后天国语完整版免费观看| 亚洲欧美精品综合久久99| 国产探花在线观看一区二区| 中文亚洲av片在线观看爽| 身体一侧抽搐| 亚洲激情在线av| 精品熟女少妇八av免费久了| 又大又爽又粗| 法律面前人人平等表现在哪些方面| 91九色精品人成在线观看| 日本熟妇午夜| 久久人人精品亚洲av| 精品免费久久久久久久清纯| 丰满人妻熟妇乱又伦精品不卡| 国产精品国产高清国产av| 老司机靠b影院| 日韩欧美一区二区三区在线观看| 嫩草影院精品99| 麻豆av在线久日| 久久久久精品国产欧美久久久| 久久精品亚洲精品国产色婷小说| 此物有八面人人有两片| 亚洲九九香蕉| 精品一区二区三区四区五区乱码| 在线国产一区二区在线| 此物有八面人人有两片| 久久中文字幕人妻熟女| 欧美日韩亚洲国产一区二区在线观看| 黄色a级毛片大全视频| 一区二区三区激情视频| 亚洲精品粉嫩美女一区| 可以在线观看的亚洲视频| 日日夜夜操网爽| 小说图片视频综合网站| 深夜精品福利| 69av精品久久久久久| 午夜成年电影在线免费观看| 中文亚洲av片在线观看爽| 老汉色av国产亚洲站长工具| 欧美日韩一级在线毛片| 亚洲一区二区三区不卡视频| 婷婷精品国产亚洲av在线| 波多野结衣高清作品| 亚洲人与动物交配视频| 国产亚洲精品一区二区www| 我的老师免费观看完整版| 1024香蕉在线观看| 国产伦人伦偷精品视频| www国产在线视频色| 国内精品一区二区在线观看| 免费看a级黄色片| 欧美黑人巨大hd| 在线播放国产精品三级| 国产高清视频在线播放一区| 国产一区二区在线av高清观看| 后天国语完整版免费观看| 搡老熟女国产l中国老女人| 国产精品久久久久久亚洲av鲁大| 午夜福利免费观看在线| 在线观看日韩欧美| 91九色精品人成在线观看| 亚洲精品久久成人aⅴ小说| 性色av乱码一区二区三区2| 国产成人啪精品午夜网站| 亚洲中文字幕日韩| 亚洲av日韩精品久久久久久密| 老司机午夜十八禁免费视频| 国产成人精品久久二区二区免费| 国产又色又爽无遮挡免费看| 久久性视频一级片| 久久精品国产综合久久久| 日韩 欧美 亚洲 中文字幕| 日韩高清综合在线| 久久 成人 亚洲| 亚洲专区中文字幕在线| 久久精品国产亚洲av高清一级| 精品一区二区三区四区五区乱码| 精品久久久久久久久久免费视频| 亚洲专区国产一区二区| 亚洲激情在线av| 亚洲国产欧美一区二区综合| 可以免费在线观看a视频的电影网站| 日日摸夜夜添夜夜添小说| 日韩国内少妇激情av| 国产三级中文精品| 欧美黑人巨大hd| 成人18禁高潮啪啪吃奶动态图| 欧美精品啪啪一区二区三区| 国产精品久久久人人做人人爽| 精品熟女少妇八av免费久了| 中文资源天堂在线| 国产精品综合久久久久久久免费| 在线观看美女被高潮喷水网站 | 哪里可以看免费的av片| 两人在一起打扑克的视频| 变态另类成人亚洲欧美熟女| 久久中文看片网| 热99re8久久精品国产| 手机成人av网站| 亚洲精品av麻豆狂野| 每晚都被弄得嗷嗷叫到高潮| a级毛片在线看网站| 国产1区2区3区精品| 日本 av在线| 中文字幕精品亚洲无线码一区| 激情在线观看视频在线高清| 琪琪午夜伦伦电影理论片6080| 精品一区二区三区四区五区乱码| 亚洲欧美精品综合一区二区三区| 国产一区二区三区在线臀色熟女| 国产精品一区二区免费欧美| 免费看a级黄色片| 午夜免费激情av| 国产精品野战在线观看| 天天躁夜夜躁狠狠躁躁| 国产精品 国内视频| 亚洲av片天天在线观看| 亚洲欧美日韩无卡精品| 精品久久久久久久末码| 麻豆一二三区av精品| 最好的美女福利视频网| 久久久久国内视频| 少妇熟女aⅴ在线视频| 亚洲18禁久久av| 少妇的丰满在线观看| 99久久久亚洲精品蜜臀av| 免费看十八禁软件| 观看免费一级毛片| 日韩欧美国产一区二区入口| 久9热在线精品视频| 久久香蕉精品热| 69av精品久久久久久| 久久精品亚洲精品国产色婷小说| 国产午夜精品久久久久久| 亚洲欧洲精品一区二区精品久久久| 国产一区二区在线观看日韩 | 黄色 视频免费看| а√天堂www在线а√下载| 啦啦啦韩国在线观看视频| 又粗又爽又猛毛片免费看| 一级作爱视频免费观看| 国产免费男女视频| 日韩三级视频一区二区三区| 国产v大片淫在线免费观看| 老熟妇乱子伦视频在线观看| 十八禁网站免费在线| 久久久久精品国产欧美久久久| 美女午夜性视频免费| 国产成人aa在线观看| 亚洲欧美精品综合一区二区三区| 精品国产乱码久久久久久男人| 99久久99久久久精品蜜桃| 国产黄a三级三级三级人| 99热这里只有是精品50| 搡老岳熟女国产| 久久这里只有精品19| 久久欧美精品欧美久久欧美| 中亚洲国语对白在线视频| 亚洲午夜理论影院| 一个人免费在线观看的高清视频| 日韩大尺度精品在线看网址| 国产精品免费一区二区三区在线| svipshipincom国产片| av在线播放免费不卡| 久久草成人影院| 日韩成人在线观看一区二区三区| 99久久国产精品久久久| 成人国产一区最新在线观看| 后天国语完整版免费观看| 国产一级毛片七仙女欲春2| 在线观看美女被高潮喷水网站 | 99国产精品一区二区三区| 我要搜黄色片| 在线国产一区二区在线| videosex国产| 国产精品一区二区免费欧美| 丰满的人妻完整版| 午夜成年电影在线免费观看| 一a级毛片在线观看| 亚洲欧美精品综合久久99| 国产真人三级小视频在线观看| 亚洲成a人片在线一区二区| 国产午夜福利久久久久久| 1024视频免费在线观看| 国语自产精品视频在线第100页| av有码第一页| 亚洲在线自拍视频| 午夜免费观看网址| 色av中文字幕| www.自偷自拍.com| 成人av在线播放网站| 久久精品91蜜桃| 免费人成视频x8x8入口观看| 成人国产综合亚洲| 久久精品国产亚洲av高清一级| 欧美日本视频| 日韩三级视频一区二区三区| 国内久久婷婷六月综合欲色啪| 国产男靠女视频免费网站| 国产欧美日韩一区二区精品| 白带黄色成豆腐渣| a级毛片a级免费在线| 国产在线精品亚洲第一网站| 色在线成人网| 婷婷丁香在线五月| ponron亚洲| 日日干狠狠操夜夜爽| 国产精品99久久99久久久不卡| 日本一二三区视频观看| 欧美日韩黄片免| 狂野欧美白嫩少妇大欣赏| 色在线成人网| 成人亚洲精品av一区二区| 国产精品久久久人人做人人爽| 久久午夜综合久久蜜桃| 亚洲国产欧洲综合997久久,| 又紧又爽又黄一区二区| 老司机深夜福利视频在线观看| 三级国产精品欧美在线观看 | 久久久久久久久久黄片| 久久久久久久久免费视频了| 天堂动漫精品| 国产aⅴ精品一区二区三区波| 精品国产美女av久久久久小说| 亚洲第一欧美日韩一区二区三区| 狂野欧美激情性xxxx| 欧美大码av| 欧美黑人精品巨大| 亚洲av电影不卡..在线观看| 欧美黄色淫秽网站| 亚洲专区中文字幕在线| 午夜福利视频1000在线观看| 在线观看66精品国产| 男女视频在线观看网站免费 | 深夜精品福利| 欧美大码av| 色综合亚洲欧美另类图片| 久久久久久亚洲精品国产蜜桃av| 久久欧美精品欧美久久欧美| 久9热在线精品视频| 中文亚洲av片在线观看爽| 国产成人精品无人区| 成人永久免费在线观看视频| 亚洲精品美女久久久久99蜜臀| 色综合欧美亚洲国产小说| 午夜免费成人在线视频| 给我免费播放毛片高清在线观看| 亚洲电影在线观看av| 麻豆成人午夜福利视频| 亚洲精品在线观看二区| 狂野欧美激情性xxxx| 搡老岳熟女国产| 欧美中文综合在线视频| 长腿黑丝高跟| 高清在线国产一区| 亚洲熟妇中文字幕五十中出| 在线观看舔阴道视频| 久久天躁狠狠躁夜夜2o2o| 悠悠久久av| 别揉我奶头~嗯~啊~动态视频| 欧美+亚洲+日韩+国产| 欧美另类亚洲清纯唯美| 他把我摸到了高潮在线观看| 黄色a级毛片大全视频| or卡值多少钱| 真人做人爱边吃奶动态| 丰满人妻一区二区三区视频av | 国产免费av片在线观看野外av| 正在播放国产对白刺激| 国产精品九九99| 国产免费男女视频| а√天堂www在线а√下载| 国产精品乱码一区二三区的特点| 国产又黄又爽又无遮挡在线| 婷婷六月久久综合丁香| 成人18禁在线播放| 国产主播在线观看一区二区| 国产成人欧美在线观看| 国产在线观看jvid| 色综合欧美亚洲国产小说| 国产真人三级小视频在线观看| 亚洲avbb在线观看| 波多野结衣高清无吗| 老司机午夜福利在线观看视频| 欧美黑人精品巨大| 淫妇啪啪啪对白视频| 国产精品九九99| 久久久久免费精品人妻一区二区| 欧美日韩亚洲综合一区二区三区_| 欧美日韩瑟瑟在线播放| 免费搜索国产男女视频| 亚洲 欧美 日韩 在线 免费| 男插女下体视频免费在线播放| 在线观看66精品国产| 欧美乱妇无乱码| 国产精品综合久久久久久久免费| 99热只有精品国产| 窝窝影院91人妻| 久久精品综合一区二区三区| 一本大道久久a久久精品| 亚洲黑人精品在线| 国产精品一区二区精品视频观看| 黄片大片在线免费观看| 日本黄大片高清| 很黄的视频免费| av中文乱码字幕在线|