• <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 ?

    Expansion characteristics of twin combustion gas jets with high pressure in cylindrical filling liquid chamber*

    2013-06-01 12:29:58XUEXiaochun薛曉春YUYonggang余永剛ZHANGQi張琦
    關(guān)鍵詞:張琦

    XUE Xiao-chun (薛曉春), YU Yong-gang (余永剛), ZHANG Qi (張琦)

    School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, China, E-mail: xiaochun13476@163.com

    (Received April 12, 2013, Revised July 9, 2013)

    Expansion characteristics of twin combustion gas jets with high pressure in cylindrical filling liquid chamber*

    XUE Xiao-chun (薛曉春), YU Yong-gang (余永剛), ZHANG Qi (張琦)

    School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, China, E-mail: xiaochun13476@163.com

    (Received April 12, 2013, Revised July 9, 2013)

    Abtract: To deal with the problem of how to control the interior ballistic stability in the bulk-loaded liquid propellant gun, the expansion and mixing process of the twin combustion-gas jets with high temperature and pressure in a liquid medium is studied in the cylindrical filling liquid chamber. A series of the jet expansion shapes is obtained by using a high-speed photographic system. The influences of the jet pressure on the jet expansion shape are discussed. Based on the experiments, the three-dimensional mathematical model is established. The expansion processes of the twin gas jets in the liquid medium are simulated by means of fluent to get the pressure, density, temperature, velocity contours and evolutionary process of vortices. Results show that the jet external outline and tops are all irregular. The Kelvin-Helmholtz instability is shown in the whole expansion process. The numerical simulation results of the axial displacement of the twin gas jets in liquid agree well with the experiment.

    twin combustion gas jets with high pressure, turbulent mixing, jet expansion shape, numerical simulation

    Introduction

    The combustion gases with high temperature and high pressure are generated by converting the chemical energy into the heat energy in the combustion process of the liquid propellant gun in response to the projectile motion with a certain initial velocity. The Bulk-loaded Liquid Propellant Gun (BLPG) has an igniter at the breech end and works on the principles of the fluid dynamic instability, including the two main mechanisms, generally referred to as the Taylor instability and the Helmholtz instability of the gas-liquid interface, to break the liquid propellant and form a certain burning surface. However, this breaking mechanism by the fluid instability has a great randomness, which is just the key reason that makes it difficult to control the combustion process of the BLPG. Macpherson and Bracuti[1]reviewed the performance variabilities observed in the BLPG, including the frequent overpressures and the occasional gun system failures, which are basically due to the fact that the combustion process in the BLPG depends on the hydrodynamic instabilities developed during the liquid propellant ignition and combustion process, rather than on the predetermined solid propellant grain geometry to define the burning surfaces. Based on these observations, Adams and Barth[2,3]carried out experimental studies of the new methods of controlling the combustion process. Dai[4]revealed the evolutionary processes of the back-attack of the gas jet by means of visualization experiments. Xu[5]tracked the gas-liquid interface by adopting the VOF model and carried out numerical simulations on the flow field of the combustion-gas jets in water without considering the vaporization. Wang et al.[6]analyzed the underwater supersonic gas jets and found that the gas-liquid interfaces of the jets are unstable owing to the influences of the turbulent flow, the two-phase mixture and the Kelvin-Helmholtz instability. In 2005, Nguyen and Evans[7]studied the impact jet flow of the gases injected in the liquids and successfully tracked the gas-liquid interface, which is of a practical value. Based on the fluid mechanics, Yu and Qi[8-10]did experimental and numerical studies of the mixing characteristics of the single gas jet and liquid in a stepped-wall and rectangular structure. In addition, the gas jets are also verywidely applied in the engineering technology, including underwater welding and cutting, underwater missile launch[11-14].

    Based on the planar combustion structure[15], with the multipoint ignition process as the background, this paper discusses the turbulent mixing characteristics of the twin combustion-gas jets and the liquid in a cylindrical chamber. The experiments and three-dimensional numerical simulations are carried out, to establish a theoretical basis for studying the control methods of the interior ballistic stability of BLPG.

    1. Experimental device and principles

    The experimental studies are carried out on the expansion processes of the twin combustion-gas jets and the liquid in a cylindrical chamber. Figure 1 is the sketch of the experimental device, which is composed of a combustion chamber of high pressure, two straight nozzles, a deflagrating power, the copper seal film, the liquid medium and a cylindrical chamber. The cylindrical chamber is full of the liquid medium. The deflagrating power in the combustion chamber is ignited by the pulse electric ignition system to generate the combustion gases with high temperature and high pressure. When the pressure of the combustion gases exceeds the breaking pressure of the copper seal film, the combustion gases inject into the cylindrical filling liquid chamber through two nozzles and then the turbulent mixing occurs between the gas and the liquid. The processes of the gas-liquid mixing and the expansion shapes of the Taylor cavities are recorded by means of a high-speed photographic system. The experimental device is placed upward and the liquid medium is water.

    Fig.1 The sketch of experimental device

    The shape and the intensity of the jet are controlled by adjusting the explosive payload of the deflagrating power and the thickness of the copper seal film. In the experiment, the diameter of the cylindrical observation chamber is 0.064 m and the whole length is 0.110 m.

    2. Experimental results

    2.1The expansion processes of twin combustion-gas jets in cylindrical chamber

    Figure 2 is the sequence map of the twin combustion-gas jets in the cylindrical filling liquid chamber. The experimental conditions are as follows: the injection pressure is 18 MPa, the nozzle diameter is 0.0008 m, and the nozzle separation distance is 0.016 m.

    Fig.2 Expansion sequence of twin gas jets in the cylindrical filling liquid chamber

    As can be seen from Fig.2, the twin combustion gases eject into the cylindrical chamber at 1 ms and the expansion shapes of the jets are relatively regular. At 2 ms, one observes the weak entrainment and interference between two jets, resulting in a trend of their approaching each other. However, the outer contours of the twin jets are in zigzag shapes as a result of the Kelvin-Helmholtz instability. As the twin combustiongas jets expand, the jet heads reach the exit of the cylindrical chamber at 7 ms. While a part of liquid at the bottom of the cylindrical chamber is not yet in the Taylor cavities, it can still absorb the heat energy of the combustion gases in the Helmholtz mixing. The above results show that, when the twin combustiongas jets with high temperature and high pressure eject into the combustion chamber in the BLPG, twin Taylor cavities are formed as a result of the impacting effect on the liquid surface. With the Taylor cavities expanding, the liquid propellant at the projectile base is compressed until the projectile obtains a certain muzzle velocity. Then the Taylor cavities expand to the projectile base quickly, so the residual liquid propellant in the wall surface and the bottom of the combustion chamber is mostly involved in the combustion in the Helmholtz mixing at this time. Just because of the inherent instability of the Helmholtz mixing between the gas and the liquid, the combustion randomness in the BLPG is enhanced, resulting in a dramatic pressure pulsation in the combustion chamber.

    2.2The influence of injection pressure on twin combustion-gas jets in liquid medium

    The experiments are carried out under differentinjection pressures to analyze the influences of the injection pressure on the twin combustion-gas jets in the liquid medium. First, the axial displacement is determined by taking the average position of the front-end fluctuating interface of the jets at different instants and the axial expansion velocities of the Taylor cavities are obtained from the axial displacement data, as shown in Fig.3. Then, with the velocity curve fitting, the axial acceleration curve is obtained by differentiation of the axial velocity fitting curve, as shown in Fig.4. The experimental conditions are as follows: the nozzle diameter is 0.0008 m, the nozzle separation distance is 0.020 m, and the injection pressures are, respectively, 10.8 MPa, 18 MPa and 28.8 MPa.

    Fig.3 The relation ofv-tunder different jet pressures

    Fig.4 The relation ofa-tunder different jet pressures

    As seen from the typical experimental processes of the twin combustion-gas jets in the liquid medium, the axial velocities and the values of the accelerations go up with the increase of the injection pressure at first, as shown in Fig.3 and Fig.4. A major result of this phenomenon is that the power source from the combustion-gas is enhanced when the injection pressure increases. Before the injection pressure reaches 18 MPa, the axial velocity of the twin combustion-gas jets increases substantially with the injection pressure, and with a further increase of the injection pressure, the axial velocity changes little and the axial acceleration tends to be constant in the later period.

    3. Theoretical model

    3.1Physical model

    Based on the experiments of the twin combustion-gas jets in the liquid medium, the assumptions of the physical processes are made as follows: (1) The expansion process of the twin gas jets in the liquid medium is a three-dimensional unsteady process, (2) Thek-εmodel is used to calculate the turbulent mixing effect between the gas and the liquid, (3) The combustion-gas jets are approximated as ideal gas jets, (4) The chemical reaction of the gas and the liquid is not considered, (5) The secondary influencing factors such as the gravity of the combustion gases are ignored.

    3.2Mathematical models

    Based on above assumptions, the controlling equations are as follows:

    (1) Equation of continuity

    Fig.5 Computational domain

    Fig.6 The isodensity of twin gas jets (g/m3)

    (3) Energy conservation equation

    In the VOF model, the energy,E, and the temperature,T, are treated as mass-averaged variables

    whereEqof each phase is the specific heat of that phase with the shared temperature. The propertiesρandkeff(effective thermal conductivity) are shared by the phases.

    (4) Equation of state

    (5) Turbulent flow equation (the turbulence kinetic energy,k, and its rate of dissipation,ε, are obtained from the following transport equations)

    wherekσandεσare the turbulent Prandtl numbers forkandε, respectively.is the Reynolds stress that expresses the influence of pulsation on the time averaged flow. And the turbulent (or eddy) viscosity,bμ, is computed fromkandεas follows

    whereCμis a constant.

    The model constants take the following default values

    3.3Initial and boundary conditions

    The computational domain is shown in Fig.5. There are four boundary conditions which are, respectively, the inlet pressure boundary, the outlet pressure boundary, the wall and the symmetry planes. Thecomputational domain is initialized with the liquid phase parameters as follows:T=T0=300 K,p=p0=101325 Pa. The inlet conditions are determined by the experiment:T=T1=2000 K,p=p1= 18 MPa. The outlet of the cylindrical chamber is connected with the atmosphere, so the outlet conditions are the atmospheric parameters:T=T2=300 K,p=p2=101325 Pa.

    4. Numerical simulation

    Based on the experiment, the numerical simulation on the twin combustion-gas jets in the liquid medium is carried out by Fluent with the nozzle separation distance of 0.016 m, the nozzle diameter of 0.0008 m and the liquid medium of water. The pressure-based solver is used, the spatial attribute is the three-dimensional space and the attribute of time is the unsteady flow in the simulation. The VOF model is used to calculate the multiphase flow. In addition, the size of mesh on the twin nozzles is 0.0002 m and the size of the other computational domain is 0.0006 m. And finer grids are used to test the grid independence. The numerical results of the axial displacement among different grid resolutions see little difference with an estimated maximum error of 2%.

    4.1The density distribution

    Figure 6 shows the isodensity map of the twin combustion-gas in the cylindrical chamber. As can be seen from Fig.6, the Taylor cavities are spherical in shape at 1ms and the surfaces of the Taylor cavities are smooth. At 2 ms, the turbulent fold appears at the heads of the jets due to the Taylor instability by the compression effect of the liquid phase and the necking at the bottom of the jets is generated as a result of the entrainment between the gas and the liquid. As the twin jets expand, the twin Taylor cavities converge into one. At 3 ms, the shape of Taylor cavities becomes irregular and the liquid is broken into smaller droplets in the intense gas-liquid mixing. On the one hand, this phenomenon, promotes the release rate of the combustion-gas heat, on the other hand, the randomness of the twin combustion-gas jets in the liquid is enhanced. So the positive feedback mechanism between the Taylor cavities and the Kelvin-Helmholtz instability works in an unmanageable level. As time goes on, a long and narrow gas cavity is formed in the chamber and the turbulent pulsation all appears inside and outside the cavity. The comparison curve of the numerical and experimental values of the axial displacement (that refers to the average position of the frontend fluctuating interface of the jets at different instants) is obtained from the isodensity maps of the numerical simulation and experimental expansion maps, as shown in Fig.7. From Fig.7, it can be seen that they are in good agreement. The numerical simulation, therefore, can reveal the internal characteristics of the gas-liquid turbulent mixing.

    Fig.7 The comparison of the axial expansion displacement

    4.2The vortices distribution

    Figure 8 shows the evolutionary processes of the vortex field of the twin combustion-gas jets in the liquid medium. As can be seen from the figure, a pair of typical vortices appears near the central axis of the chamber and they move close to each other. Before 3 ms, the heads of the twin vortices expand very quickly, breaking the smoothness in a conical shape. After 2 ms, many small scale vortices with confused and disordered shapes arise in the chamber, which just reflects the intense instability and randomness when the twin combustion-gas jets expand in the cylindrical chamber. Further, a pair of large scale vortices always exists at the bottom of the wall surface, resulting in a reflux area.

    4.3The temperature distribution

    Figure 9 shows the isothermal map of the twin combustion-gas jets in the liquid medium. As can be seen from the figure, the isothermal lines are dense near the two nozzles and the temperature is higher in the orifices than in other areas. As the jets expand, the gas-liquid interface expands and the heat exchange between the gas and the liquid also increases, resulting in a larger high-temperature zone. The temperature at the bottom of the chamber changes as a result of the backflow effect. In the whole expansion processes, the twin temperature centers always tend to bend to each other and become close enough to merge. With the temperature at the central axis of one nozzle on the section of 0.010 m in the filling liquid chamber as an example, the temperature change is illustrated as follows. At 1ms, the temperature is 1 485 K. At 2 ms, the temperature is 315 K. Compared the two temperature values, it can be seen the temperature decreases sharply with time, which is because the turbulent mixing between the gas-liquid is intense and thus the combustion gases release much energy. At 3 ms, thetemperature is 812 K. At 4ms, the temperature is 346 K. At 5 ms, the temperature is 517 K. At 6 ms, the temperature is 1 440 K. Thus it can be seen the temperature pulsation at the later period of the jet expansion is large with the energy of the combustion gases supplementing and releasing and this is just one reason of the unsteady expansion of the twin combustion gas jets in the cylindrical chamber.

    Fig.8 Vortex distribution of twin gas jets

    Fig.9 The isotherms of twin gas jets (K)

    4.4The pressure distribution

    Fig.10 The isobars of twin gas jets (Pa)

    Fig.11 The isovelocities of twin gas jets (m/s)

    Figure 10 shows the isobaric chart for the twin combustion-gas jets in the cylindrical chamber. As can be seen from the figure, at 1ms, the pressure distribution is regular with two high pressure areas at the heads of the jets. From the density distribution, it can be seen that the Taylor cavities are in the state of rapid expansion with a negative relative static pressure at the upstream of the high pressure area. As the jets expand forward, the high pressure areas move toward the upstream of the twin jets and the pressure assumes the maximum value near the two nozzles at 1.3 ms-1.5 ms. At 2 ms, the pressure wave has expanded to the whole computational domain and it is clear that the multiple compression waves are formed. The gradient change of the compression wave with time is unsteady. With the density distribution, the necking appears on the twin nozzles at 3 ms.The relative static pressures at the necking location increase to the maximum value. Because the jet velocity in other areas of the jet field is larger than the critical velocity when therelative static pressure is zero, so the relative static pressure is negative at these areas. At 4 ms, the pressure oscillation is especially apparent and the multiple high pressure areas are formed at the head areas of the twin jets. At 6 ms, the heads of the twin jets have expanded to the exit of the chamber. The pressure value is the lowest around the two nozzles, because the local expansion appears on the twin nozzles. The relative static pressures are negative in other areas of the jet field where the jet velocity is larger than the critical velocity when the relative static pressure is zero.

    4.5The velocity distribution

    Figure 11 shows the isovelocity maps on the twin combustion-gas jets in the liquid medium. As can be seen from the figure, the isovelocity lines are denser near the two nozzles and the velocity reaches the maximum value in the nozzles. As the jets expand forward, the twin isovelocity clusters always go closer to the axis of the chamber as a result of entrainment and interference of each other. After the twin jets converge into one, the velocity distribution becomes more unsteady and is in a conical shape. In the whole expansion processes, the turbulent mixing of the gas and the liquid is intense and the energy exchange is rapid, resulting in a quick decrease of the velocity along the radial and axial directions. The isovelocities take negative values on the wall surface of the chamber because the liquid medium is compressed by the wall surface and the Taylor cavities.

    5. Concllusions

    Based on the experimental and numerical results, the expansion characteristics of the twin combustiongas jets in a cylindrical filling liquid chamber are obtained as follows:

    (1) With the twin combustion-gas jets in the liquid medium, the twin Taylor cavities expand quickly along the axial direction due to lack of restraint from the chamber boundary. The outline of the jets is irregular in a conical shape. The liquid is broken into smaller droplets in the intense gas-liquid mixing. On the one hand, this phenomenon, promotes the release rate of the combustion-gas heat; on the other hand, the randomness of the twin combustion-gas jets in the liquid is enhanced. So the positive feedback mechanism between the Taylor cavities and the Kelvin-Helmholtz instability works in an unmanageable level.

    (2) The expansion shapes are related to the injection pressure of the combustion gases. When the injection pressure is larger, the axial velocities and accelerations are all larger. When the injection pressure increases to 18 MPa, the axial velocity of the twin combustion-gas jets rises substantially and the axial acceleration also shows a significant difference.

    (3) From the results of the numerical simulation, a pair of large scale vortices appears in the chamber. Because the velocity difference between the gas and the liquid is large, the Kelvin-Helmholtz instability is intense and the turbulent mixing of the gas-liquid is enhanced. Thus, many small scale vortices with confused and disordered shapes are generated in the chamber.

    (4) The values of the numerical expansion displacement of the twin combustion-gas jets are in good agreement with the experimental data.

    [1] MACPHERSON A. K., BRACUTI A. J. Analysis of gun pressure instability[C]. The 19th International Symposium on Ballistics. Interlaken, Switzerland, 2001, 115-121.

    [2] ADAMS M., BARTH E. J. A compressible fluid power dynamic model of a liquid propellant powered rifle[C]. Proceedings of IMECE: International Mechanical Engineering Congress and Exposition. Anaheim, CA, USA, 2004.

    [3] ADAMS M., BARTH E. J. Dynamic modeling and design of a bulk-loaded liquid monopropellant powered rifle[J]. Journal of Dynamic Systems, Measurement, and Control, 2008, 130(6): 1-8.

    [4] DAI Zhen-qing, WANG Bo-yi and QI Long-xi et al. Experimental study on hydrodynamic behaviors of high-speed gas jets in still water[J]. Acta Mechanical Sinica, 2006, 22(5): 443-448.

    [5] XU Xiao-qiang, DENG Jian and REN An-lu. The research on high- speed gas jet of rocket nozzle underwater[J]. Journal of Hydrodynamics, Ser. B, 2005, 17(2): 204-208.

    [6] WANG X. L., ITOH M. and SHI H. H. Experimental study of Rayleigh-Taylor instability in a shock tube accompanying cavity formation[J]. Japanese Journal of Applied Physics, 2001, 40(11): 6668-6674.

    [7] NGUYEN A. V., EVANS G. M. Computational fluid dynamics modeling of gas jets impinging onto liquid pools[J]. Applied Mathematical Modeling, 2006, 30(11): 1472-1484.

    [8] YU Y., CHANG X. and ZHAO N. et al. Study of bulkloaded liquid propellant combustion propulsion processes with stepped-wall combustion chamber[J]. Journal of Applied Mechanics, 2011, 78(5): 1001-1008.

    [9] QI Li-ting, YU Yong-gang and PENG Zhi-guo. A 2-D model of energetic gas jet expansion process in liquid and numerical simulation[J]. Chinese Journal of Energetic Materials, 2008, 16(2): 131-137.

    [10] MANG S., YU Y. Experiment and numerical simulation for high pressure combustible gas jet expansion process in a bulk-loaded liquid[J]. Explosion and Shock Waves, 2011, 31(3): 300-305.

    [11] ZHAO Ke-yu, CHENG Wen and LIAO Wei-li et al. The void fraction distribution in two-dimensional gasliquid two-phase flow using image process method[J]. Journal of Hydrodynamics, Ser. B, 2006, 18(2): 127-134.

    [12] RENSEN J., ROIG V. Experimental study of theunsteady structure of a confined bubble plume[J]. International Journal of Multiphase Flow, 2001, 27(8): 1431-1449.

    [13] MURAI Y., MATSUMOTO Y. and AMAMOTO F. Three-dimensional measurement of void fraction in a bubble plume using statistic stereoscopic image processing[J]. Experiments in Fluids, 2001, 30(1): 11-21.

    [14] EHTERAM M. A., TABIRZI H. B. and AHMADI G. et al. Investigation of fine droplet generation from hot engine oil by impinging gas jets onto liquid surface[J]. Journal of Aerosol Science, 2013, 65(11): 49-57.

    [15] YU Y., YAN S. and ZHAO N. et al. Study on expansion process and interaction of high speed twin combustion-gas jet in liquid[J]. Journal of Applied Mechanics, 2010, 77(5): 051404.

    10.1016/S1001-6058(13)60423-0

    * Project support by the National Science Foundation of China (Grant No. 50776048).

    Biography: XUE Xiao-chun (1985-), Female,

    Ph. D. Candidate

    YU Yong-gang,

    E-mail: yyg801@hjust.edu.cn

    猜你喜歡
    張琦
    Effect of observation time on source identification of diffusion in complex networks
    Self-screening of the polarized electric field in wurtzite gallium nitride along[0001]direction
    Magnetoresistance effect in vertical NiFe/graphene/NiFe junctions
    全民張琦
    商界評論(2022年12期)2022-03-06 13:02:12
    自相似視角下相對貧困成因分析
    基于TXL的源代碼插樁技術(shù)研究
    張琦:家風(fēng)敗壞的海南第四“虎”
    “海南虎”張琦:一位闖海者的隕落
    雜文選刊(2020年4期)2020-04-19 10:04:31
    中國新聞周刊(2019年34期)2019-09-20 08:13:54
    曹夢媛、崔琪、張琦、趙承鋮作品
    69人妻影院| 一夜夜www| 日本黄色片子视频| 搞女人的毛片| 精品国产三级普通话版| 99热这里只有是精品在线观看| 寂寞人妻少妇视频99o| 女人十人毛片免费观看3o分钟| 少妇熟女aⅴ在线视频| 一个人观看的视频www高清免费观看| 亚洲欧美精品专区久久| 91狼人影院| 日韩亚洲欧美综合| 色5月婷婷丁香| 免费黄网站久久成人精品| 观看美女的网站| 成年av动漫网址| 精品久久国产蜜桃| 亚洲精品亚洲一区二区| 久久久久久久久中文| 91精品国产九色| 一级毛片 在线播放| 99视频精品全部免费 在线| 午夜免费观看性视频| 精品欧美国产一区二区三| 91久久精品国产一区二区成人| 2022亚洲国产成人精品| 欧美+日韩+精品| 国产精品久久久久久精品电影小说 | 日韩欧美精品免费久久| 七月丁香在线播放| 欧美精品一区二区大全| 熟妇人妻久久中文字幕3abv| 欧美高清性xxxxhd video| 久久综合国产亚洲精品| 日日撸夜夜添| 国产一级毛片七仙女欲春2| 中文字幕av在线有码专区| 欧美成人精品欧美一级黄| 18禁在线无遮挡免费观看视频| 婷婷六月久久综合丁香| 国产成人freesex在线| 久久人人爽人人片av| 免费观看性生交大片5| 国产成人精品婷婷| 2022亚洲国产成人精品| 欧美激情久久久久久爽电影| 极品教师在线视频| 午夜老司机福利剧场| 久久久久久伊人网av| 免费无遮挡裸体视频| 高清毛片免费看| 亚洲欧美中文字幕日韩二区| 一级a做视频免费观看| 免费看光身美女| 97精品久久久久久久久久精品| 只有这里有精品99| 亚洲精品第二区| 噜噜噜噜噜久久久久久91| 亚洲精品,欧美精品| 成人高潮视频无遮挡免费网站| 亚洲av中文字字幕乱码综合| 国产黄色视频一区二区在线观看| 99九九线精品视频在线观看视频| 边亲边吃奶的免费视频| 十八禁网站网址无遮挡 | 久久人人爽人人爽人人片va| 成人午夜精彩视频在线观看| 欧美一区二区亚洲| 亚洲自拍偷在线| 免费无遮挡裸体视频| 国产成人aa在线观看| 2018国产大陆天天弄谢| 亚洲av日韩在线播放| 国产视频内射| 亚洲av一区综合| 国产精品无大码| 成人亚洲精品av一区二区| 久久99热这里只频精品6学生| 你懂的网址亚洲精品在线观看| 免费看日本二区| 亚洲精品久久午夜乱码| 少妇被粗大猛烈的视频| 色综合色国产| 夜夜爽夜夜爽视频| 国产v大片淫在线免费观看| 国语对白做爰xxxⅹ性视频网站| 五月玫瑰六月丁香| 亚洲av中文av极速乱| 国内精品一区二区在线观看| 免费观看精品视频网站| 简卡轻食公司| 国产精品精品国产色婷婷| 日本午夜av视频| 色播亚洲综合网| 日本黄大片高清| 伦理电影大哥的女人| 成人av在线播放网站| 日日干狠狠操夜夜爽| 天堂√8在线中文| 国产极品天堂在线| 18+在线观看网站| 最近最新中文字幕大全电影3| 国产黄片视频在线免费观看| 国产熟女欧美一区二区| 特大巨黑吊av在线直播| 亚洲欧洲日产国产| 91av网一区二区| 黄色配什么色好看| 国产成人精品一,二区| 国产综合懂色| 欧美成人午夜免费资源| 老司机影院成人| 禁无遮挡网站| 成人特级av手机在线观看| 欧美极品一区二区三区四区| 精品人妻熟女av久视频| 国产69精品久久久久777片| 国产精品美女特级片免费视频播放器| 国产淫片久久久久久久久| 春色校园在线视频观看| 一区二区三区乱码不卡18| 综合色av麻豆| 日本猛色少妇xxxxx猛交久久| 亚洲精品色激情综合| 最近最新中文字幕免费大全7| 草草在线视频免费看| 成人毛片a级毛片在线播放| 亚洲无线观看免费| 麻豆乱淫一区二区| 一个人免费在线观看电影| 国产三级在线视频| 国产精品综合久久久久久久免费| 十八禁网站网址无遮挡 | 天天一区二区日本电影三级| 中文字幕免费在线视频6| 九色成人免费人妻av| 国产精品久久久久久精品电影| 中文欧美无线码| 一级毛片黄色毛片免费观看视频| 欧美激情久久久久久爽电影| 亚洲av成人精品一区久久| 日韩一区二区三区影片| 久久97久久精品| 久久精品国产亚洲av涩爱| 深夜a级毛片| 国产午夜福利久久久久久| 国产综合懂色| 午夜福利成人在线免费观看| 99热6这里只有精品| 卡戴珊不雅视频在线播放| 国产成人91sexporn| 人人妻人人澡欧美一区二区| 欧美高清成人免费视频www| 99热全是精品| 久久久久久伊人网av| 亚洲精品乱码久久久久久按摩| 国产成人精品福利久久| 天堂影院成人在线观看| 熟女人妻精品中文字幕| 国产精品一区二区三区四区久久| 又大又黄又爽视频免费| 久久99精品国语久久久| 国产亚洲精品av在线| 免费黄频网站在线观看国产| 国产成人a区在线观看| 国产亚洲精品久久久com| 一级a做视频免费观看| 婷婷色麻豆天堂久久| 熟妇人妻久久中文字幕3abv| 尤物成人国产欧美一区二区三区| av国产久精品久网站免费入址| eeuss影院久久| 亚洲欧美一区二区三区黑人 | 久久久成人免费电影| 日本黄大片高清| 亚洲精品第二区| 日本猛色少妇xxxxx猛交久久| 日韩中字成人| 成人综合一区亚洲| 亚洲精品第二区| 国产高清国产精品国产三级 | 七月丁香在线播放| 国产女主播在线喷水免费视频网站 | 久久国内精品自在自线图片| 一级毛片我不卡| 国内精品宾馆在线| 嫩草影院入口| 男女边吃奶边做爰视频| 亚洲欧美成人综合另类久久久| 天天躁夜夜躁狠狠久久av| 伦理电影大哥的女人| 国产精品人妻久久久久久| 亚洲精品第二区| 91精品国产九色| 亚洲av电影不卡..在线观看| 91精品国产九色| 麻豆av噜噜一区二区三区| 久久草成人影院| 国产精品国产三级国产专区5o| 美女高潮的动态| 亚洲精品456在线播放app| 三级国产精品片| 午夜激情欧美在线| 国产成人aa在线观看| 精品欧美国产一区二区三| 成年人午夜在线观看视频 | 亚洲婷婷狠狠爱综合网| 国产精品熟女久久久久浪| 国产免费视频播放在线视频 | 国产高清有码在线观看视频| 亚洲av一区综合| av在线播放精品| 国产av国产精品国产| 少妇裸体淫交视频免费看高清| 69人妻影院| 好男人视频免费观看在线| 日本猛色少妇xxxxx猛交久久| 久久人人爽人人爽人人片va| 亚洲自偷自拍三级| 久久精品久久久久久噜噜老黄| 亚洲内射少妇av| 欧美性猛交╳xxx乱大交人| 亚洲va在线va天堂va国产| 午夜激情欧美在线| 高清在线视频一区二区三区| 亚洲精华国产精华液的使用体验| 亚洲最大成人中文| 日韩欧美 国产精品| 亚洲精品自拍成人| 日本与韩国留学比较| 丰满人妻一区二区三区视频av| 国产精品人妻久久久影院| 视频中文字幕在线观看| 好男人视频免费观看在线| 日韩 亚洲 欧美在线| 亚洲人成网站在线播| 精品一区二区三卡| 九草在线视频观看| freevideosex欧美| 婷婷色综合大香蕉| 亚洲国产精品专区欧美| av又黄又爽大尺度在线免费看| 在线观看美女被高潮喷水网站| 日韩av免费高清视频| 淫秽高清视频在线观看| 激情 狠狠 欧美| 久久99热这里只频精品6学生| 亚洲国产精品成人综合色| av又黄又爽大尺度在线免费看| 亚洲av福利一区| 久久精品综合一区二区三区| 我的女老师完整版在线观看| 美女国产视频在线观看| 欧美精品一区二区大全| 午夜福利高清视频| 国产精品福利在线免费观看| 国产精品人妻久久久久久| 日韩欧美国产在线观看| 亚洲精品456在线播放app| 成人性生交大片免费视频hd| 国产精品嫩草影院av在线观看| 视频中文字幕在线观看| 18禁在线无遮挡免费观看视频| 国产精品一及| 久久国产乱子免费精品| 身体一侧抽搐| 国产爱豆传媒在线观看| 十八禁国产超污无遮挡网站| 狂野欧美白嫩少妇大欣赏| 18禁在线无遮挡免费观看视频| 校园人妻丝袜中文字幕| 午夜福利视频精品| 国产成人a∨麻豆精品| 六月丁香七月| 精品国产三级普通话版| 亚洲电影在线观看av| 99re6热这里在线精品视频| 十八禁网站网址无遮挡 | 女人十人毛片免费观看3o分钟| 久久久精品94久久精品| 69人妻影院| videossex国产| 好男人在线观看高清免费视频| 插阴视频在线观看视频| 久久久久久久午夜电影| 国产亚洲91精品色在线| 久久综合国产亚洲精品| 亚洲精品国产成人久久av| 国产国拍精品亚洲av在线观看| 亚洲国产精品专区欧美| 免费电影在线观看免费观看| 三级国产精品欧美在线观看| 日本免费在线观看一区| 国产一级毛片在线| 99热全是精品| 精品一区二区三卡| 国产av码专区亚洲av| 午夜日本视频在线| xxx大片免费视频| 一夜夜www| 亚洲精品国产av蜜桃| 插逼视频在线观看| 亚洲自偷自拍三级| 丰满少妇做爰视频| 亚洲国产成人一精品久久久| 精品少妇黑人巨大在线播放| 一区二区三区高清视频在线| 深夜a级毛片| 日韩av不卡免费在线播放| 一级av片app| 欧美成人精品欧美一级黄| 亚洲av在线观看美女高潮| 日韩一区二区视频免费看| .国产精品久久| 男女啪啪激烈高潮av片| 国产精品人妻久久久影院| 国产国拍精品亚洲av在线观看| 亚洲真实伦在线观看| 五月伊人婷婷丁香| 丰满乱子伦码专区| 在现免费观看毛片| 亚洲在线观看片| 两个人的视频大全免费| 国产黄频视频在线观看| 久久久久精品久久久久真实原创| 国产精品爽爽va在线观看网站| 视频中文字幕在线观看| 国产在视频线精品| 晚上一个人看的免费电影| 国产免费又黄又爽又色| 成人亚洲精品一区在线观看 | 欧美xxⅹ黑人| 菩萨蛮人人尽说江南好唐韦庄| 国产激情偷乱视频一区二区| 久久久欧美国产精品| 白带黄色成豆腐渣| 日日啪夜夜撸| 亚洲精品乱久久久久久| 亚洲av一区综合| 老司机影院成人| 18禁动态无遮挡网站| 一级毛片aaaaaa免费看小| 99视频精品全部免费 在线| 日本与韩国留学比较| 少妇的逼好多水| 欧美成人a在线观看| 国产精品一二三区在线看| 国产激情偷乱视频一区二区| 男女啪啪激烈高潮av片| 国产精品精品国产色婷婷| 亚洲欧美清纯卡通| 午夜激情欧美在线| 成人美女网站在线观看视频| 免费观看av网站的网址| 久久久久久久久大av| 性插视频无遮挡在线免费观看| 日韩欧美国产在线观看| 国产精品一区二区性色av| 一边亲一边摸免费视频| 亚洲aⅴ乱码一区二区在线播放| 伊人久久国产一区二区| 欧美日韩综合久久久久久| 亚洲18禁久久av| 国产精品美女特级片免费视频播放器| 欧美日本视频| 亚洲乱码一区二区免费版| 春色校园在线视频观看| 久久精品熟女亚洲av麻豆精品 | 亚洲美女视频黄频| 日本一二三区视频观看| 精品一区二区三卡| 国产乱人视频| 国精品久久久久久国模美| 男女那种视频在线观看| 国产精品国产三级专区第一集| 女人十人毛片免费观看3o分钟| 日韩视频在线欧美| 亚洲av国产av综合av卡| 一夜夜www| 精品一区二区三卡| 日本午夜av视频| 午夜精品在线福利| 高清视频免费观看一区二区 | 啦啦啦啦在线视频资源| 黄色配什么色好看| 国产一区亚洲一区在线观看| 欧美xxxx性猛交bbbb| 亚洲最大成人中文| 亚洲国产精品专区欧美| 一本一本综合久久| 亚洲无线观看免费| 人人妻人人澡欧美一区二区| 男女国产视频网站| 国产单亲对白刺激| 女人久久www免费人成看片| 亚洲欧美成人综合另类久久久| 丝袜美腿在线中文| 国产在视频线在精品| 国产永久视频网站| 国产亚洲91精品色在线| 久久久久九九精品影院| 亚洲美女搞黄在线观看| 亚洲,欧美,日韩| 亚洲熟女精品中文字幕| 91精品伊人久久大香线蕉| 中文字幕人妻熟人妻熟丝袜美| 麻豆久久精品国产亚洲av| 一级a做视频免费观看| 搡老乐熟女国产| 成人性生交大片免费视频hd| 日本黄色片子视频| 看黄色毛片网站| 精品国产三级普通话版| 日本欧美国产在线视频| 99久久精品一区二区三区| 国产av在哪里看| 一区二区三区免费毛片| 亚洲欧美日韩东京热| 亚洲av中文av极速乱| 午夜福利在线观看免费完整高清在| 精品久久久久久久久av| 亚洲成人一二三区av| 人妻夜夜爽99麻豆av| 在线观看免费高清a一片| 国产淫语在线视频| 美女大奶头视频| 97热精品久久久久久| 久久精品熟女亚洲av麻豆精品 | 久久精品人妻少妇| 日韩av在线大香蕉| 免费看不卡的av| 精品一区二区免费观看| 麻豆乱淫一区二区| 精品不卡国产一区二区三区| 国产精品三级大全| 国产精品久久久久久久久免| 纵有疾风起免费观看全集完整版 | 成人鲁丝片一二三区免费| 伦理电影大哥的女人| 久久久精品欧美日韩精品| 18禁动态无遮挡网站| 国产爱豆传媒在线观看| 亚洲高清免费不卡视频| 赤兔流量卡办理| 亚洲伊人久久精品综合| 一区二区三区乱码不卡18| 精品久久久久久久人妻蜜臀av| 哪个播放器可以免费观看大片| videossex国产| 国产成人精品一,二区| av免费观看日本| 国产片特级美女逼逼视频| 亚洲性久久影院| 日韩欧美三级三区| 男人狂女人下面高潮的视频| 日韩亚洲欧美综合| 成年免费大片在线观看| 国产黄片美女视频| 九色成人免费人妻av| 久久精品久久久久久久性| 黄色一级大片看看| 九色成人免费人妻av| 久久精品国产亚洲av天美| 日韩欧美精品v在线| 亚洲国产精品成人久久小说| 欧美激情国产日韩精品一区| 色吧在线观看| 亚洲人与动物交配视频| 老司机影院毛片| 亚洲一级一片aⅴ在线观看| 国产老妇伦熟女老妇高清| 国产成人一区二区在线| 日韩不卡一区二区三区视频在线| 午夜免费激情av| 国产精品人妻久久久久久| 男女下面进入的视频免费午夜| 五月天丁香电影| 欧美+日韩+精品| 日韩中字成人| 插阴视频在线观看视频| 成年女人在线观看亚洲视频 | 永久免费av网站大全| 观看美女的网站| 又爽又黄a免费视频| 婷婷色麻豆天堂久久| 最近中文字幕高清免费大全6| 欧美成人午夜免费资源| 精品不卡国产一区二区三区| 国产成人福利小说| 韩国高清视频一区二区三区| 色网站视频免费| 久久久久久久午夜电影| 干丝袜人妻中文字幕| 国产老妇女一区| 国产成人福利小说| 麻豆av噜噜一区二区三区| av福利片在线观看| 午夜激情久久久久久久| 干丝袜人妻中文字幕| 熟女电影av网| 日韩强制内射视频| 国产在视频线在精品| 亚洲av中文av极速乱| 国产免费视频播放在线视频 | av国产免费在线观看| 精品欧美国产一区二区三| 人妻制服诱惑在线中文字幕| 国产国拍精品亚洲av在线观看| 国产单亲对白刺激| 大话2 男鬼变身卡| 国产黄色小视频在线观看| av在线老鸭窝| 男人舔奶头视频| 久久韩国三级中文字幕| 成人美女网站在线观看视频| 亚洲精品日韩av片在线观看| 国语对白做爰xxxⅹ性视频网站| 91精品一卡2卡3卡4卡| 国产 亚洲一区二区三区 | 成年人午夜在线观看视频 | 麻豆久久精品国产亚洲av| 午夜福利视频精品| 久久精品国产亚洲av涩爱| 精品久久久久久久久av| 日韩欧美国产在线观看| 男人舔女人下体高潮全视频| 国产亚洲一区二区精品| 伦理电影大哥的女人| 成人特级av手机在线观看| 亚洲人成网站在线播| 男女啪啪激烈高潮av片| 男插女下体视频免费在线播放| 国产成人一区二区在线| 精品一区在线观看国产| 中文在线观看免费www的网站| 亚洲精品日韩av片在线观看| 一级黄片播放器| 日韩av在线免费看完整版不卡| 男人和女人高潮做爰伦理| 亚洲成色77777| 少妇裸体淫交视频免费看高清| 免费av观看视频| 综合色av麻豆| 毛片女人毛片| 亚洲三级黄色毛片| 美女大奶头视频| 插阴视频在线观看视频| 天堂网av新在线| 亚洲怡红院男人天堂| 如何舔出高潮| 久久99蜜桃精品久久| 亚洲人与动物交配视频| 亚洲精品aⅴ在线观看| 春色校园在线视频观看| 免费无遮挡裸体视频| 欧美性猛交╳xxx乱大交人| 日韩欧美一区视频在线观看 | 哪个播放器可以免费观看大片| 成人av在线播放网站| 国产精品.久久久| 国产成人91sexporn| 欧美3d第一页| 黄片无遮挡物在线观看| 人妻系列 视频| 亚洲真实伦在线观看| 韩国高清视频一区二区三区| 日日啪夜夜撸| 麻豆乱淫一区二区| 午夜日本视频在线| 毛片女人毛片| 精品国产一区二区三区久久久樱花 | 国产成人一区二区在线| 久久精品综合一区二区三区| 精品国内亚洲2022精品成人| 高清日韩中文字幕在线| 午夜久久久久精精品| 久久精品国产自在天天线| 婷婷色av中文字幕| 国产极品天堂在线| 国产视频内射| 久久久亚洲精品成人影院| 五月天丁香电影| 熟女电影av网| 午夜福利在线观看吧| 看免费成人av毛片| 搡老妇女老女人老熟妇| 日韩国内少妇激情av| 最近视频中文字幕2019在线8| 国产欧美日韩精品一区二区| 免费不卡的大黄色大毛片视频在线观看 | 成人亚洲精品av一区二区| 人人妻人人澡欧美一区二区| 99热6这里只有精品| 久久热精品热| 最近2019中文字幕mv第一页| 身体一侧抽搐| 美女cb高潮喷水在线观看| 欧美三级亚洲精品| 18禁在线无遮挡免费观看视频| 亚洲经典国产精华液单| 午夜福利视频精品| av福利片在线观看| 性色avwww在线观看| 黄色日韩在线| 精品久久久久久久末码| 免费看光身美女| 午夜亚洲福利在线播放| 欧美人与善性xxx| 毛片一级片免费看久久久久| 国产成人精品福利久久| 国语对白做爰xxxⅹ性视频网站| 精品不卡国产一区二区三区| 一区二区三区乱码不卡18| 三级男女做爰猛烈吃奶摸视频|