• <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 ?

    Forming Characteristics of Linear Charge with Curved Liner under Two-end Initiation

    2018-11-12 03:37:38CHENXiLIUJieDUZhonghuaWANGKangkang
    火炸藥學報 2018年5期

    CHEN Xi,LIU Jie,DU Zhong-hua,WANG Kang-kang

    (1.School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China;2.Guilin University of Electronic Technology, Guilin Guangxi 541004, China)

    Abstract:To improve the power of a linear explosively formed penetrator (LEFP), a new type of linear charge with curved structure was designed. Under a two-end initiation, the forming process of LEFP and influences of curvature radius on the process were investigated by numerical simulation method and a pulse X-ray photography experiment was carried out. The results show that the detonation wave collides under the two-end initiation, which causes the detonation wave to effectively converge toward the direction of LEFP movement and is beneficial to the closure of the curved liner. However, the larger the curvature radius, the harder the closure. LEFP is in good shape when it is stable, and the head velocity and utilization can reach 2100m/s and 87%, respectively. The test results verify the feasibility and effectiveness of the formation of a high-power LEFP for a linear charge with curved liner under the two-end initiation.

    Keywords:linear-shaped charges; curved liner; detonation wave collision; two-end inititation; liner explosively formed penetrator; LEFP

    Introduction

    A linear explosively formed penetrator (LEFP) is a type of shaped charge that combines the linear cutting principle and the forming principle of an explosively formed penetrator. LEFPs have the characteristics of high flight stability, great penetration power and a noticeable crater. They are widely applied in the separation of spacecrafts, the opening of parachutes, blasting, cutting and armor protection fields[1-2]. Currently, the research focuses on the forming mechanism, initiation mode and structure design of LEFPs for a V-type charge liner structure[3-6]. However, the disadvantage of V-type charge is very obvious: the penetrator easily breaks and diverges at a large standoff distance[7]. Moreover, the penetration depth of LEFPs is not ideal for different shapes of penetrators under different initiation modes. Particularly, in the condition of two-end initiation, a "folded" LEFP will be formed, but the liner is linear in the direction of length; thus, the velocity gradient in the middle and at the two ends of the liner on the longitudinal section cannot effectively close the LEFP. This results in a very scattered shape and low utilization of liner, which cannot meet the requirements of penetration.

    A linear charge with a curved liner structure is developed to improve the formation of LEFP. The linear charge with a curved liner is equivalent to bending an ordinary linear charge liner; thus, the liner has a constant curvature in the length direction, which improves the quality of liner. When the detonation wave collides, the liner can reverse and close not only in the width direction, but also in the longitudinal section due to the curvature in the length direction, which can greatly improve the convergence of detonation wave. Therefore, a well-formed LEFP in both width and length directions can be obtained. Furthermore, the detonation wave collision will produce an overpressure which is close to 2 times that of a non-collision position[8]. The pressure will promote the acceleration of liner and form a high velocity penetrator. The premise is that the two ends of charge detonate simultaneously to generate a detonation collision. A large deformation of the curved liner on the longitudinal section is the key to achieve both quality and velocity, to realize a great increase in LEFP power and to improve the penetration performance. However, the forming process of linear charge with a curved liner, the effects on the forming shape, the head velocity, time and flight distance of stable formation, the utilization of liner, power, etc., are not well understood.

    This study focuses on the forming process of linear-shaped charge with curvature under a two-end initiation based on the detonation wave collision theory. The spherical wave collision pressure and the effect of curvature radius on the forming characteristics are analyzed and discussed through numerical simulation. A pulse X-ray photography experiment was performed to verify the free forming and moving process of linear charge with curved liner.

    1 Numerical simulation

    1.1 LEFP structure

    The linear-shaped charge with a curved liner is mainly composed of a liner, a main charge, an initiation device, and a shell. The structure diagram is shown in Fig.1. Due to the effect of boundary sparse waves, the formed penetrator easily breaks in the width edge direction; therefore, a sub-caliber charge is adopted to obtain an excellent and powerful LEFP. Here,Lis the charge length,W′ is the charge width, andHis the charge height. A uniform liner thickness, denoted asT, is adopted. In the length direction, the curvature radius of liner isRa.RaandLcodetermine the central angleαin the length direction. The liner width isW, the central angle in the width direction isβ, and the thickness of shell ist1. Fig.2 shows the positions of initiation points for LEFP under the condition of two ends detonating simultaneously.

    Fig.1 Structure diagram of linear charge with a curved liner

    Fig.2 Diagram of positions of initiation points

    1.2 Model setup

    The finite element model consists of a liner, explosive, air and shell. To reduce the calculation amount and save solution time, a 1/4 model of linear-shaped charge with curved structure is established, as shown in Fig. 3. A fluid-structure interaction numerical simulation method is used. The liner, explosive, and air domain are meshed as an ALE grid, the shell is meshed as a Lagrange grid and the unit is taken as cm-g-μs. The meshing of liner adopted the four aliquots in the thickness direction. The computation time is set as 200μs, and the output interval of the calculation results is 4μs. The symmetry constraints are imposed on theXandZdirections of the model, and the boundary condition of the air is defined as a non-reflecting boundary.

    The material of the liner is copper, the explosive is 8701 with a density of 1.70g/cm3, and the shell is made of 45#steel. The constitutive equation for material of the liner is selected as Steinberg, the equation of state for detonation products is selected as JWL, and the equation of state for air is selected as polynomial.

    Fig.3 Element model

    2 Simulation results and analysis

    2.1 Pressure of detonation wave collision

    When two detonation waves collide, the collision modes of the wave front are different owing to different collision conditions. Because the ratio of the length and height of the charge (L/H) is small, the detonation wave will collide in the form of a spherical wave. WhenL/His large, a stable slip detonation wave is formed and collides[9]. When two spherical detonation waves propagate on the face, the pressure at the point where the detonation waves collide increases rapidly. Two shock waves are formed and they propagate back to the detonation products on both sides at a certain angle. Owing to the different collision angles, detonation wave collisions and oblique collisions can occur. When the angle between the two detonation fronts is small, the flow deflection angle of the detonation product is consistent with the flow deflection angle of the reflected shock wave, and a reflection shock wave is generated at the collision point. With the increase in the angle between the two detonation waves, the two flow deflection angles increase. When reaching a certain angle, the flow deflection angle will be inconsistent, which can force the reflection shock wave to move up a certain distance from the collision point. The former is known as regular oblique collision, whereas the latter is called irregular oblique collision. The collision diagram of two detonation waves is shown in Fig.4.

    Fig.4 Diagram of detonation wave collision

    At different positions of the collision contact surface, the collision angles are different, and the pressures before and after collision are also different. Fig.5 shows the pressure contours of two spherical wave collisions and the positions of multiple pressure measurement points. It is noted that the collision effect is simulated on the cross section position of the charge structure. According to symmetry, half of the collision surface is measured. The two collision points are 40 mm apart, and a pressure measuring point is set every 2mm in the vertical direction of the contact surface of the detonation wave collision. It can be considered that the two detonation waves are colliding at measuring point 21, and oblique collisions are at measuring points 10-20.

    Fig.5 Cloud diagram of spherical wave collision pressure and measurement points

    Fig.6 shows the pressure curve of a spherical wave collision obtained from the pressure measuring points. The pressure is minimum when the detonation waves are colliding. With the increase in collision angle, the collision mode is converted into a regular oblique collision, and the collision pressure gradually increases and can reach up to 76.3 GPa. According to the detonation wave collision theory, if the collision angle continues to increase, an irregular oblique collision is formed and the collision pressure will decrease. Therefore, there is a specific angle that can maximize the collision pressure. This angle is a transformation angle between the regular oblique collision and irregular oblique collision. Therefore, the collision angle is an important factor in determining the collision effect.

    Fig.6 Pressure curve of spherical wave collision

    2.2 Effect of curvature radius on the forming process

    For a high-power LEFP, the formation on the longitudinal section will greatly affect the penetration ability. If it cannot be closed effectively, the specific kinetic energy will be smaller, and the penetration depth is not ideal, although the width of the crater is large. Meanwhile, the axial velocity of LEFP at steady state and the utilization of the liner can also be used as a basis for evaluating the penetration ability.

    It can be observed that the deformation of the longitudinal profile of the curved liner generally goes through three stages: compression, reversal, and closure. After the two ends of the explosive are detonated, the liner at both ends first undergoes compression deformation and collapsing under the action of detonation products. When the detonation waves on both sides collide in the middle region of the charge length, the collision pressure in the middle portion increases sharply. This provides a driving force for the reversal and closure of the penetrator in the length direction, so that the center part of the accelerated liner moves and turns over to form a high velocity bulge. At this time, the liners at both ends are gradually converged by the high velocity movement in the middle part. However, the closing velocity is far less than the axial velocity, owing to the attenuation of the detonation wave and the influence of the boundary sparse wave. The axial velocity gradually decreases from the center to both sides, forming a velocity gradient. During the continuous flight, the head velocity begins to gradually decrease. A penetrator with a certain length, width and thickness is gradually formed until the head velocity of the penetrator becomes stable.

    Table 1 Simulation results at different curvature radii Ra

    When the curvature radiusRais smaller (the central angleαis larger), the radial velocity of the liner on both sides will increase in the longitudinal section. This can make the liner approach the middle more quickly and close properly. For a certain velocity of the detonation wave on the liner microelement, the axial velocity component will decrease due to the increase in the radial velocity component. However, the radial velocity is much smaller than the axial velocity; thus, the increment in the radial velocity is very noticeable during the closure of LEFP in the length direction. The reduction in the axial velocity is smaller than that ofVyand can be ignored. When the curvature radiusRabecomes larger (the central angleαis smaller), the shape of the liner is almost linear in the length direction. At this time, the radial velocity of the liner microelement becomes smaller, and the two ends of the liner are mainly driven by the head with high velocity motion and close to the middle part. Therefore, closure is more difficult and the closing time is longer. When the curvature radius is larger than a certain value, LEFP will not be completely closed in the longitudinal section. As indicated in Table 1, a continuous rod-shaped penetrating body is formed at 160μs, and the forming shape of the projectile is good. When the curvature radius is small, the formed penetrator is relatively longer and elongated. With the increase in curvature radius, the penetrator becomes wider and denser. However, when the curvature radius is larger than a certain value (such as 102mm), a cavity will be formed in the rear part of the penetrator and it cannot be closed properly.

    The axial velocity of LEFP mainly depends on the collision pressure of detonation wave and the velocity gradient of the head and tail of LEFP. The utilization of the liner is related to the initial velocity gradient in the middle and both sides and the sparse waves on both sides. The change in the curvature radius has almost no effect on the collision pressure. Although the axial velocity at both ends of LEFP will be reduced with a smaller curvature radius, the reduction is extremely small relative to the axial velocity, and its effect on the axial velocity of the entire LEFP can be ignored. Therefore, the influence of curvature radius on the axial velocity is negligible, and the utilization of liner is smaller. The kinetic energy is determined by the mass and velocity of the continuous stable part of the penetrator. The higher the head velocity, and the greater the mass utilization rate of the liner, the greater the kinetic energy of the penetrator. When the curvature radius is 102mm, the axial velocity of LEFP can reach 2124m/s, the kinetic energy is approximately 65.83kJ, and the utilization of the liner is 87.8%. The formed LEFP is better in terms of shape, head velocity, kinetic energy, and liner utilization, which are beneficial to improve the power of LEFP.

    3 Experiment

    According to the simulation results, the combination of parameters with 102mm curvature radius of the linear charge with curved liner is selected and verified by an X-ray photography experiment. The experimental arrangement is shown in Fig.7. Two pulse X-ray machines were used to observe and record the forming process of linear charge with curved liner. Because the linear charge is centrally symmetric in shape, the formed LEFP under a two-end initiation has the same symmetry. However, the two pulse X-ray tubes are placed at different camera angles. One shoots in the horizontal direction, whereas the other shoots in the direction of isometric view of a similar oblique projection at the film projection angle, which is an angle of 60° between the two pulse X-ray tubes. In addition, different delay times are set to obtain two X-ray photographs of the forming LEFP at different periods. During the experiment, it is necessary to ensure that the two initiation points are synchronously detonated.

    Fig.7 Experiment layout

    The X-ray photographs of the forming penetrator at different periods and the corresponding simulation results are compared as shown in Fig.8. The left shows the X-ray photograph and the right shows the simulated shape at three different moments of the forming process. The periods in the X-ray photographs are 50, 75, and 175μs, respectively, whereas the simulation periods are 36, 72, and 160μs, respectively. Neglecting the deviation of the forming time, both shapes of the forming LEFP match well. At the initial time, as shown in Fig. 8(a), a head of high velocity bulge is formed in the middle part, similar to the shape of a swallow ail. With the forming of the projectile, two sides of the liner gradually converge to the center. However, because of the actual charge technology, breakages and some gaps at 75μs and 175μs appear at the head and tail of LEFP in the experiment, as shown in Figs. 8(b) and (c). Compared to the head velocity of 2124m/s in the simulation, the measured velocity of the head is approximately 1450m/s, which is 31.7% less than the simulated velocity. It is mainly influenced by the quality loss of LEFP.

    Fig.8 X-ray photographs compared to simulation results

    4 Conclusions

    (1) A curved liner structure was designed for the linear-shaped charge based on the detonation wave collision theory. Under the two-end initiation condition, the collision of two detonation waves can produce an overpressure and effectively converge toward the direction of the liner movement, which is beneficial to the closure of the curved liner, and achieve a well-formed LEFP with high velocity.

    (2) The finite element model of the linear charge with curved liner was established. The simulation results show that the larger the curvature radius, the more difficult the closure, and the longer the closing time. However, the influence of curvature radius on the axial velocity is negligible, and the utilization of liner is smaller. The axial velocity and utilization can reach approximately 2100m/s and 87%, respectively, which is beneficial for improving the LEFP power.

    (3) The results of the pulse X-ray photography experiment show that the shapes of the forming penetrator are similar to those of the simulation results at three different periods, which verifies the feasibility of the curved liner structure of the linear charge.

    真人做人爱边吃奶动态| 精品久久久精品久久久| 婷婷色av中文字幕| 亚洲精品美女久久av网站| 国产免费福利视频在线观看| 成年女人毛片免费观看观看9 | 欧美激情极品国产一区二区三区| a在线观看视频网站| 桃花免费在线播放| 午夜福利影视在线免费观看| 午夜影院在线不卡| 日韩欧美免费精品| 欧美一级毛片孕妇| 91精品伊人久久大香线蕉| 黄色视频在线播放观看不卡| 一区福利在线观看| 国产成人精品久久二区二区91| 精品久久久久久电影网| 9191精品国产免费久久| 99国产极品粉嫩在线观看| 精品人妻熟女毛片av久久网站| 日韩大码丰满熟妇| 男女国产视频网站| 动漫黄色视频在线观看| 久久毛片免费看一区二区三区| 国产伦人伦偷精品视频| 成人三级做爰电影| 少妇 在线观看| 青春草视频在线免费观看| 黄频高清免费视频| 各种免费的搞黄视频| 国产成人精品久久二区二区免费| 男女高潮啪啪啪动态图| 9191精品国产免费久久| 波多野结衣av一区二区av| 国产一区二区三区在线臀色熟女 | 国产日韩欧美亚洲二区| 国产有黄有色有爽视频| 国产区一区二久久| 热99国产精品久久久久久7| 精品亚洲成a人片在线观看| 亚洲精品粉嫩美女一区| 极品人妻少妇av视频| 久久 成人 亚洲| 国产成人欧美| 亚洲人成77777在线视频| 美女主播在线视频| 久久 成人 亚洲| 18禁观看日本| 俄罗斯特黄特色一大片| 可以免费在线观看a视频的电影网站| 亚洲av成人一区二区三| 亚洲成人免费av在线播放| 一个人免费在线观看的高清视频 | 亚洲成人免费电影在线观看| 成年人免费黄色播放视频| 国产av又大| 天堂8中文在线网| 在线观看www视频免费| 少妇被粗大的猛进出69影院| 免费观看a级毛片全部| 9色porny在线观看| 三上悠亚av全集在线观看| 国产一区二区三区综合在线观看| 一区二区av电影网| 91九色精品人成在线观看| 999久久久国产精品视频| 一本一本久久a久久精品综合妖精| 日韩大码丰满熟妇| 国产日韩一区二区三区精品不卡| 婷婷成人精品国产| 午夜福利在线免费观看网站| 777米奇影视久久| 在线十欧美十亚洲十日本专区| 搡老岳熟女国产| 久久人妻熟女aⅴ| 成人国语在线视频| 91九色精品人成在线观看| 新久久久久国产一级毛片| 久久中文字幕一级| 亚洲第一欧美日韩一区二区三区 | 建设人人有责人人尽责人人享有的| 另类亚洲欧美激情| 午夜福利在线观看吧| 午夜久久久在线观看| 丝袜脚勾引网站| 一区福利在线观看| 国产一区二区三区av在线| 午夜免费鲁丝| 日本五十路高清| 精品国产乱码久久久久久男人| 久久久久视频综合| av免费在线观看网站| 久久久欧美国产精品| 欧美日韩成人在线一区二区| 99国产精品99久久久久| 国产又爽黄色视频| 国产黄色免费在线视频| 啦啦啦在线免费观看视频4| 好男人电影高清在线观看| 国产精品自产拍在线观看55亚洲 | 操出白浆在线播放| 老司机深夜福利视频在线观看 | 国产精品一区二区免费欧美 | 日韩中文字幕视频在线看片| 麻豆乱淫一区二区| 成人免费观看视频高清| 日韩中文字幕视频在线看片| 一区二区三区激情视频| 午夜福利免费观看在线| 自拍欧美九色日韩亚洲蝌蚪91| 男人爽女人下面视频在线观看| 在线观看免费视频网站a站| 亚洲精品日韩在线中文字幕| 9色porny在线观看| 不卡av一区二区三区| 国产一级毛片在线| 999久久久国产精品视频| 国产又爽黄色视频| 国产福利在线免费观看视频| 9色porny在线观看| 91成人精品电影| 亚洲av日韩在线播放| 国产激情久久老熟女| 亚洲欧美激情在线| 亚洲国产日韩一区二区| 国产一区二区在线观看av| 超碰成人久久| 两个人免费观看高清视频| 欧美亚洲 丝袜 人妻 在线| 啦啦啦中文免费视频观看日本| 飞空精品影院首页| 亚洲国产精品一区二区三区在线| 精品一区二区三区av网在线观看 | 国产淫语在线视频| 亚洲一区二区三区欧美精品| 久久国产亚洲av麻豆专区| av在线app专区| 久久99一区二区三区| 精品一区在线观看国产| 伊人久久大香线蕉亚洲五| 俄罗斯特黄特色一大片| 久久ye,这里只有精品| 成人av一区二区三区在线看 | 一级a爱视频在线免费观看| 国产伦理片在线播放av一区| 国产极品粉嫩免费观看在线| 欧美激情久久久久久爽电影 | 欧美人与性动交α欧美精品济南到| 啦啦啦视频在线资源免费观看| 女人高潮潮喷娇喘18禁视频| 免费高清在线观看视频在线观看| 午夜91福利影院| 久久国产精品男人的天堂亚洲| 中亚洲国语对白在线视频| 我的亚洲天堂| 国产日韩欧美在线精品| 香蕉国产在线看| 国产伦人伦偷精品视频| √禁漫天堂资源中文www| 秋霞在线观看毛片| 免费高清在线观看日韩| 熟女少妇亚洲综合色aaa.| 性色av一级| 国产男女超爽视频在线观看| 正在播放国产对白刺激| 亚洲av成人不卡在线观看播放网 | 国产精品久久久久久精品古装| 国产男女超爽视频在线观看| 久久综合国产亚洲精品| 久久精品国产a三级三级三级| 男女之事视频高清在线观看| 高潮久久久久久久久久久不卡| videos熟女内射| 电影成人av| 高潮久久久久久久久久久不卡| 在线观看人妻少妇| 制服诱惑二区| 99国产精品一区二区三区| 91麻豆精品激情在线观看国产 | 日韩 欧美 亚洲 中文字幕| 超色免费av| 美女福利国产在线| 18禁国产床啪视频网站| 首页视频小说图片口味搜索| 欧美亚洲日本最大视频资源| 狠狠狠狠99中文字幕| 青青草视频在线视频观看| 午夜免费成人在线视频| 一区二区三区精品91| 色播在线永久视频| 亚洲av美国av| 中文精品一卡2卡3卡4更新| 黄网站色视频无遮挡免费观看| 大香蕉久久网| 久久久久精品国产欧美久久久 | 亚洲五月婷婷丁香| www日本在线高清视频| 高清视频免费观看一区二区| 亚洲国产中文字幕在线视频| 久久人人97超碰香蕉20202| 狠狠狠狠99中文字幕| 午夜免费鲁丝| 久久毛片免费看一区二区三区| 午夜老司机福利片| 黑人巨大精品欧美一区二区mp4| 国产三级黄色录像| 成人影院久久| 精品一区二区三卡| 极品人妻少妇av视频| 亚洲精品成人av观看孕妇| 一个人免费在线观看的高清视频 | 啦啦啦免费观看视频1| 在线观看免费日韩欧美大片| 色婷婷久久久亚洲欧美| 精品久久久久久久毛片微露脸 | 青春草视频在线免费观看| 69精品国产乱码久久久| 久久久久国产精品人妻一区二区| 亚洲七黄色美女视频| 精品国产乱子伦一区二区三区 | 91大片在线观看| 国产亚洲精品第一综合不卡| 欧美日韩视频精品一区| 精品少妇一区二区三区视频日本电影| 免费观看人在逋| 两个人看的免费小视频| 久久狼人影院| 最新在线观看一区二区三区| 成人av一区二区三区在线看 | 成人av一区二区三区在线看 | 女人被躁到高潮嗷嗷叫费观| 日韩大码丰满熟妇| 下体分泌物呈黄色| 日韩视频一区二区在线观看| 精品少妇久久久久久888优播| 丁香六月天网| 操出白浆在线播放| 另类精品久久| 欧美在线一区亚洲| 天天躁日日躁夜夜躁夜夜| 欧美激情 高清一区二区三区| 亚洲免费av在线视频| 日韩中文字幕欧美一区二区| 母亲3免费完整高清在线观看| 美女福利国产在线| 亚洲精品美女久久av网站| 亚洲国产中文字幕在线视频| 亚洲欧美色中文字幕在线| 欧美人与性动交α欧美精品济南到| a 毛片基地| 19禁男女啪啪无遮挡网站| 法律面前人人平等表现在哪些方面 | 欧美97在线视频| 视频区图区小说| 国产精品国产三级国产专区5o| 精品免费久久久久久久清纯 | 欧美大码av| 一区二区三区激情视频| av有码第一页| 中亚洲国语对白在线视频| svipshipincom国产片| 少妇猛男粗大的猛烈进出视频| 国产无遮挡羞羞视频在线观看| 国产在线免费精品| 国产熟女午夜一区二区三区| 啦啦啦在线免费观看视频4| 亚洲av成人不卡在线观看播放网 | av不卡在线播放| 搡老岳熟女国产| 在线看a的网站| 亚洲熟女精品中文字幕| 亚洲色图综合在线观看| 色婷婷久久久亚洲欧美| 免费黄频网站在线观看国产| 啪啪无遮挡十八禁网站| 久久影院123| 久久久久久久国产电影| 91av网站免费观看| 男男h啪啪无遮挡| 一本一本久久a久久精品综合妖精| 欧美另类亚洲清纯唯美| 国产xxxxx性猛交| 亚洲伊人久久精品综合| 999久久久国产精品视频| 一区二区三区精品91| 9热在线视频观看99| 天天添夜夜摸| 91精品国产国语对白视频| 蜜桃在线观看..| 大片电影免费在线观看免费| 国产在线观看jvid| 精品久久久久久电影网| 国产精品影院久久| 久久这里只有精品19| 免费在线观看影片大全网站| 如日韩欧美国产精品一区二区三区| 水蜜桃什么品种好| 永久免费av网站大全| 99九九在线精品视频| 国产欧美亚洲国产| 国产成人av激情在线播放| h视频一区二区三区| 国产精品亚洲av一区麻豆| 亚洲专区中文字幕在线| 中文字幕人妻熟女乱码| 性色av一级| 亚洲激情五月婷婷啪啪| 亚洲国产精品成人久久小说| 国产精品自产拍在线观看55亚洲 | 人人妻人人爽人人添夜夜欢视频| 国产日韩一区二区三区精品不卡| 久久久精品免费免费高清| 一本—道久久a久久精品蜜桃钙片| 日韩制服丝袜自拍偷拍| av福利片在线| 12—13女人毛片做爰片一| 免费人妻精品一区二区三区视频| 亚洲熟女毛片儿| 伊人亚洲综合成人网| 欧美国产精品va在线观看不卡| 黑丝袜美女国产一区| 国产1区2区3区精品| 久久av网站| 正在播放国产对白刺激| a级片在线免费高清观看视频| 大片电影免费在线观看免费| 一区福利在线观看| 国产精品 欧美亚洲| 精品一区二区三卡| 熟女少妇亚洲综合色aaa.| 亚洲欧美色中文字幕在线| 亚洲av男天堂| 丝瓜视频免费看黄片| 后天国语完整版免费观看| 天堂俺去俺来也www色官网| av超薄肉色丝袜交足视频| a级毛片黄视频| 免费女性裸体啪啪无遮挡网站| 欧美日韩国产mv在线观看视频| 久久久水蜜桃国产精品网| 两个人看的免费小视频| www.999成人在线观看| 久久ye,这里只有精品| 国产av一区二区精品久久| 2018国产大陆天天弄谢| 久热这里只有精品99| 国产男人的电影天堂91| av欧美777| 色综合欧美亚洲国产小说| 在线观看人妻少妇| 夜夜夜夜夜久久久久| 亚洲精品一区蜜桃| 最新在线观看一区二区三区| 亚洲成人免费av在线播放| e午夜精品久久久久久久| 精品人妻1区二区| 国产欧美日韩一区二区精品| 狠狠精品人妻久久久久久综合| av福利片在线| 久久精品国产a三级三级三级| 午夜老司机福利片| 国产日韩欧美亚洲二区| 精品欧美一区二区三区在线| 巨乳人妻的诱惑在线观看| 在线av久久热| 男人添女人高潮全过程视频| 亚洲欧洲日产国产| 欧美变态另类bdsm刘玥| 两个人看的免费小视频| 久久久水蜜桃国产精品网| 啦啦啦中文免费视频观看日本| 亚洲精品美女久久av网站| 看免费av毛片| 视频区欧美日本亚洲| 少妇猛男粗大的猛烈进出视频| 国产一区二区激情短视频 | 丝袜美腿诱惑在线| 一本大道久久a久久精品| 精品国产一区二区三区久久久樱花| 在线观看免费高清a一片| 五月开心婷婷网| 黄色毛片三级朝国网站| 最近中文字幕2019免费版| 91九色精品人成在线观看| 国产有黄有色有爽视频| 亚洲一区中文字幕在线| 国产黄色免费在线视频| 亚洲精品国产区一区二| 日本一区二区免费在线视频| 国产精品影院久久| av又黄又爽大尺度在线免费看| 亚洲第一av免费看| 欧美少妇被猛烈插入视频| 国产av一区二区精品久久| 久久ye,这里只有精品| 黄片小视频在线播放| 天堂8中文在线网| 久久久久精品人妻al黑| 亚洲国产欧美网| 国产一区二区三区在线臀色熟女 | 国产精品久久久久久人妻精品电影 | 建设人人有责人人尽责人人享有的| 青草久久国产| 久久人人97超碰香蕉20202| 日韩制服骚丝袜av| 日本91视频免费播放| 亚洲av男天堂| 男女无遮挡免费网站观看| svipshipincom国产片| 亚洲精品一二三| 国产日韩一区二区三区精品不卡| 亚洲精品粉嫩美女一区| 女人爽到高潮嗷嗷叫在线视频| 中文字幕人妻丝袜制服| 国产精品1区2区在线观看. | 在线天堂中文资源库| 精品高清国产在线一区| 天堂中文最新版在线下载| 下体分泌物呈黄色| 在线观看免费日韩欧美大片| 男人舔女人的私密视频| 亚洲成国产人片在线观看| 美女午夜性视频免费| 中文字幕色久视频| 亚洲国产欧美日韩在线播放| av网站免费在线观看视频| 丝袜美足系列| 精品人妻在线不人妻| 久久香蕉激情| 欧美精品亚洲一区二区| 叶爱在线成人免费视频播放| xxxhd国产人妻xxx| 成年动漫av网址| 夜夜夜夜夜久久久久| 亚洲全国av大片| 国产精品偷伦视频观看了| 欧美精品啪啪一区二区三区 | 日本撒尿小便嘘嘘汇集6| 久久久久久久大尺度免费视频| 一级片免费观看大全| 免费日韩欧美在线观看| 午夜福利在线免费观看网站| 人人妻人人添人人爽欧美一区卜| 日本欧美视频一区| 国产精品亚洲av一区麻豆| 国产精品影院久久| 亚洲欧美成人综合另类久久久| 丝袜在线中文字幕| 汤姆久久久久久久影院中文字幕| 日韩中文字幕欧美一区二区| 国产成人一区二区三区免费视频网站| 国产又爽黄色视频| 精品第一国产精品| 在线天堂中文资源库| 搡老熟女国产l中国老女人| 永久免费av网站大全| 亚洲成人免费电影在线观看| 人人妻人人澡人人看| 91成人精品电影| 一级片'在线观看视频| av视频免费观看在线观看| 久久久久久久精品精品| 亚洲性夜色夜夜综合| 免费在线观看视频国产中文字幕亚洲 | 黑人欧美特级aaaaaa片| 女性生殖器流出的白浆| 亚洲专区字幕在线| 最新的欧美精品一区二区| 国产成人欧美| 爱豆传媒免费全集在线观看| 两个人免费观看高清视频| 高清在线国产一区| 性高湖久久久久久久久免费观看| 我要看黄色一级片免费的| 久久精品成人免费网站| 欧美+亚洲+日韩+国产| 自拍欧美九色日韩亚洲蝌蚪91| 久久天堂一区二区三区四区| 91精品国产国语对白视频| 亚洲欧美一区二区三区黑人| 亚洲三区欧美一区| 少妇人妻久久综合中文| 国产主播在线观看一区二区| 日日夜夜操网爽| 精品免费久久久久久久清纯 | 成年人午夜在线观看视频| 又大又爽又粗| 少妇粗大呻吟视频| 法律面前人人平等表现在哪些方面 | 熟女少妇亚洲综合色aaa.| 黄片小视频在线播放| 大片免费播放器 马上看| 99国产精品一区二区蜜桃av | 老熟妇乱子伦视频在线观看 | 欧美日韩av久久| 波多野结衣一区麻豆| 国产野战对白在线观看| 国产精品免费大片| 久久久水蜜桃国产精品网| 免费在线观看视频国产中文字幕亚洲 | 一本综合久久免费| 亚洲av国产av综合av卡| 蜜桃国产av成人99| 狂野欧美激情性xxxx| 宅男免费午夜| 精品久久久精品久久久| 国产黄色免费在线视频| 黑人巨大精品欧美一区二区蜜桃| av网站在线播放免费| 99re6热这里在线精品视频| 一本综合久久免费| 国产精品偷伦视频观看了| 极品少妇高潮喷水抽搐| 搡老乐熟女国产| 久久国产精品大桥未久av| 一级a爱视频在线免费观看| bbb黄色大片| 国产淫语在线视频| 黄色毛片三级朝国网站| 伊人亚洲综合成人网| 在线亚洲精品国产二区图片欧美| 熟女少妇亚洲综合色aaa.| 国产欧美亚洲国产| 国产精品久久久久久精品电影小说| 欧美人与性动交α欧美精品济南到| 搡老岳熟女国产| 亚洲欧美日韩高清在线视频 | 99久久精品国产亚洲精品| 国产精品国产av在线观看| 中文字幕av电影在线播放| 在线看a的网站| 亚洲国产欧美日韩在线播放| 久久久国产一区二区| 国产一区二区三区综合在线观看| 国产老妇伦熟女老妇高清| 99香蕉大伊视频| 国产又爽黄色视频| 国精品久久久久久国模美| 男女下面插进去视频免费观看| 12—13女人毛片做爰片一| 久久久国产一区二区| 岛国毛片在线播放| 国产精品99久久99久久久不卡| 99香蕉大伊视频| av欧美777| 91精品伊人久久大香线蕉| 久久天躁狠狠躁夜夜2o2o| 老熟女久久久| 91大片在线观看| 91av网站免费观看| 美女视频免费永久观看网站| 大片电影免费在线观看免费| 成人免费观看视频高清| 亚洲欧美日韩另类电影网站| 亚洲伊人久久精品综合| 亚洲国产精品999| 丰满少妇做爰视频| 国产精品成人在线| 啦啦啦免费观看视频1| 亚洲精品av麻豆狂野| 久久久久久久久久久久大奶| 人人妻,人人澡人人爽秒播| 国产人伦9x9x在线观看| 肉色欧美久久久久久久蜜桃| 黄色 视频免费看| 亚洲国产中文字幕在线视频| 亚洲av电影在线进入| 亚洲中文字幕日韩| 狂野欧美激情性xxxx| 国产欧美亚洲国产| 亚洲欧美精品综合一区二区三区| 亚洲国产av新网站| 欧美黄色片欧美黄色片| 超碰成人久久| 操出白浆在线播放| 国产不卡av网站在线观看| 丰满少妇做爰视频| 制服诱惑二区| 欧美黑人精品巨大| 欧美乱码精品一区二区三区| 欧美日韩视频精品一区| h视频一区二区三区| 精品高清国产在线一区| 欧美日韩成人在线一区二区| 天天影视国产精品| 一区二区三区四区激情视频| 美女大奶头黄色视频| 国产在线一区二区三区精| 久久国产精品人妻蜜桃| 国产免费福利视频在线观看| 欧美日韩亚洲高清精品| 亚洲精品国产色婷婷电影| 日韩欧美免费精品| 欧美日韩亚洲高清精品| 久久久久精品国产欧美久久久 | 99国产精品99久久久久| 亚洲人成电影观看| 在线观看一区二区三区激情| 少妇猛男粗大的猛烈进出视频| 黄片大片在线免费观看| 男人添女人高潮全过程视频| 王馨瑶露胸无遮挡在线观看| 亚洲五月婷婷丁香| 国产淫语在线视频| 欧美乱码精品一区二区三区| 久久香蕉激情| 国产不卡av网站在线观看| 老司机亚洲免费影院| 国产一区二区在线观看av| 99国产精品免费福利视频| 老司机深夜福利视频在线观看 | 成年动漫av网址| 亚洲av片天天在线观看| 国产精品成人在线|