• <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 ?

    Numerical Prediction of Propeller Noise Based on the‘Source Time-Dominant Algorithm’

    2019-12-10 01:05:56PANYucunZHANGHuaixinZHOUQidou
    船舶力學(xué) 2019年9期

    PAN Yu-cun , ZHANG Huai-xin , ZHOU Qi-dou

    (1. College of Naval Architecture and Ocean Engineering, Naval University of Engineering, Wuhan 430033, China;2. State Key Laboratory of Ocean Engineering, Shanghai Jiao Tong University, Shanghai 200240, China)

    Abstract: A numerical study on the radiated noise of a marine propeller operating in uniform inflow was conducted. The flow field around the propeller was simulated based on the unsteady DES (Detached Eddy Simulation) equation. The far-field sound radiation from the propeller was predicted by an integral solution of FW-H (Fowcs Williams-Hawkings) equation in time domain. The ‘source timedominant algorithm’ was adopted to perform the retarded-time integral of the Farassat Formation 1A.This algorithm is more computationally efficient than the ‘retarded time algorithm’, due to its simpler calculation process. Moreover, it can easily collaborate with the input data given by CFD, since no interpolation of the source data is required. Both the computed open water performance of the propeller and the computed noise signals induced by the propeller are in good agreement with the available results in literatures. The characteristics of the noise induced by a single blade and the fourblade propeller are also discussed.

    Key words: Ffowcs Williams-Hawkings equation; source time-dominant algorithm;underwater propeller noise

    0 Introduction

    Propeller noise is one of the most important sources of ship radiated underwater noise.Many researchers have made a large deal of efforts to identify the mechanism of the generation and propagation of propeller noise. Lighthill[1]developed the acoustic analogy by rearranging the Navier-Stokes equations into the form of wave equation, which has become the theoretical basis of flow induced noise. Ffowcs-Williams and Hawkings[2]used the gereralized functions to extend the Lighthill acoustic analogy model to predict sound generated by solid boundaries in arbitrary motion.

    Farassat[3-5]derived an integral representation of the solution of the FW-H equation by using the Green function. This formulation makes the FW-H equation easy to implement numerically, hence it has been extensively used in predicting the aeroacoustic problems, such as helicopter rotor noise and fan noise. In recent years, some scholars have carried out research on marine propeller noise by FW-H equation. Seol et al[6]studied the noise from cavitating and non-cavitating propeller, by using a hybrid method where the flow field is analyzed with a panel method and the sound propagation is predicted by the FW-H equation. Mousavi et al[7]studied tonal and broadband hydrodynamic noise of non-cavitating underwater propeller by coupling LES method with the FW-H equation.

    The time delay for the acoustic signal traveling from the source to the observer is a key aspect that should be treated carefully when we solve the FW-H equation, especially for the case of rotating blades. Nowadays, the most common method is the ‘Retarded-Time Algorithm’[8]. In that approach, the retarded time equation should be inversely solved to determine where and when the sound was emitted. In order to overcome this shortcoming, a novel method called ‘Source time-Dominant Algorithm’ was presented[9-10]. As a straight-forward approach,this algorithm is more computationally efficient, due to the simpler calculation process.

    In this paper, Detached Eddy Simulation (DES) solver is used to obtain the transient flow information of the E779A propeller, and the Lighthill analogy is applied to predict the sound propagation. The ‘source time-dominant algorithm’ is adopted to deal with the retarded time problem. The feasibility of the approach in predicting the marine propeller noise is verified by comparing the computed results with the corresponding results in literatures.

    1 Farassat formulation 1A of Ffowcs Williams-Hawkings equation

    FW-H (Ffowcs Williams -Hawkings) equation is widely used in prediction of the noise generated by the general surfaces in arbitrary motion. As for an underwater propeller, the contribution of quadrupole term is usually considered to be negligible[6-7], thus, the FW-H equation[2]can be written as:

    Farassat[3-5]derived an integral representation of the solution of the FW-H equation:

    where

    Eqs.(2)-(3) are known as Farassat Formulation 1A[3-5]. Here, p′ and p′ are thickness

    Formulation 1A is valid for arbitrary blade motion and geometry. As long as the motion characteristic of body and the loads acting on the body surface are obtained, the numerical integration above the boundary surface can be performed to evaluate the thickness and loading noise.

    2 Source time-dominant algorithm

    It is important to note in Eqs.(2)-(3) that the source strength is evaluated at the source time, but the solution we desired is described in observer time. As known, the distance between the sound source and the observer will lead to a time interval between the source time τ and the observer time t. Moreover, these time intervals are different for each equivalent source and observer combination. Hence this characteristic of sound propagation should be properly treated when we apply FW-H equation to predict propeller noise.

    Although the ‘retarded-time algorithm’ has been extensively used, there are still some alternative approaches. In present paper, we chose the ‘source time-dominant algorithm’, which takes the source time as the primary time (i.e.,dominant) rather than the observer time. This algorithm uses the same formulation with the ‘retarded-time algorithm’, and the difference between them lies in the specific way of implementation. The schematic of the ‘source time-dominant algorithm’ was presented in Bres and Brentner[12], as shown in Fig.1.

    Fig.1 The schematic of the ‘source timedominant algorithm’

    At the first step, the source time τ was chosen.

    At the third step, according to the Eq.(2) and Eq.(3), the sound contributions from each source element on the blade surface were calculated.

    At the fourth step, we must take proper measures in the reconstruction of the signals. On one hand, for a source element on the rotating blade, the distance between it and the observer is constantly changing due to its motion. Consequently, the signals emit from the source at an equally spaced discretization of the source time τ, but they arrive in the observer at an unequally spaced discretization of the observer time t. On the other hand, each point on the blade surface emits sound at the same source time τ, but the arrival time of these signals were different because the distance between each element and the observer is different. Hence, the arriving signal in the observer time series should be interpolated. In doing so, the contributions from all source elements can be summed at the same observer times. The detailed implementation of an interpolation scheme was described in Ref.[13].

    From the above procedure, at least two advantages of the ‘source time- dominant algorithm’ can be found.

    (1) Since in most cases the iterative solutions process of the retarded time equation can be avoided, the ‘source time-dominant algorithm’ would have higher efficiency than the ‘retarded- time algorithm’. In Bres’s article[12], the above two algorithms are used to compute the rotor noise of a maneuvering helicopter, the advantage of the former algorithm was demonstrated by the significant improvement in calculation times-a 55 times acceleration.

    (2) In the ‘source time-dominant algorithm’, the hydrodynamic loads on blade described in source time can be directly used to calculate source strength. Hence, the discrete sequence of quantitative data given by the CFD calculation in equally spaced time is suitable for providing input data for sound calculation.

    3 Procedures of CFD

    The INSEAN E779A propeller was chosen as a test-case for CFD validation, whose geometry was described in Ref.[14]. The skewed four-blade model propeller has a diameter D=0.227 m, a pitch-to-diameter ratio P/D=1.1 and a forward rake angle of 4.05 deg.

    The computational domain is divided into two sub-domains: the inner part is a small cylinder which contains the rotating propeller, the outer part is a large stationary cylinder which represents the farfield. The sliding mesh method was applied to simulate the rotating motion of the propeller. The inlet boundary was located at 2.5D in front of the propeller, the outlet boundary at 5D behind the propeller, the outer boundary extended to 5D in the radial direction.

    The grids are generated using ANSYS ICEM software, the outer domain contains 1M of cells, and the inner domain contains 4M of cells. The multi-block hexahedral mesh was used to define the fluid domain, which allows detailed control of the mesh parameters and element quality.

    The above mentioned inner domain is circumferentially split into quarters, and each passage region contains a blade. Consequently, to describe the region’s periodic boundaries, a pair of twisty surfaces should be created, as shown in Fig.2. The construction of the surfaces is based on the pitch and chord length at the individual radius and in each case the angle was turned around ±45 degrees over the suction and pressure side of the blade.

    Fig.2 Overview of a single passage region

    Fig.3 Block topology of a single passage region

    The H and C topologies are combined to form the basis grid strategy of the single passage region. In addition, an O-grid topology was applied around the blade, which can properly control the mesh resolution in the vicinity of blade surface. The blade surface is tortuous in both the chordwise and spanwise directions, due to radial pitch distribution. To adapt the complicated geometry of blade surface, a large number of blocks were used to decompose the blade passage region. The resolution and the quality of the cells were adjusted through a proper node distribution on the edges of the blocks. When the grid of the single passage region was generated, the whole propeller grid can be easily regenerated by copying and rotating the single passage region.

    4 Numerical results

    4.1 Hydrodynamic solution of E779A propeller

    To validate the hydrodynamic method, the hydrodynamic performance of an isolated E779A propeller in uniform inflow is compared with the experimental results[15]. Propeller diameter and rotational speed are, respectively, D=0.227m, n=1 500 r/min, and the advance coefficient varies with the advance speed.

    In Fig.4, numerical results in terms of thrust coefficient Ktand torque coefficient Kqare compared with the experimental open water curves for a broad range of advance coefficient J. Compared with the model test results, the CFD result has discrepancies of less than 3% and 4% in the thrust and torque coefficients, respectively. The open water simulation shows acceptable accuracy at the design condition.

    The steady RANS simulation was used to provide the open water performance of the propeller.However, to predict the propeller noise, the DES simulation should be performed to acquire the instantaneous information on the blades. In this paper,the DES based on the realizable k-ε turbulent model is adopted. The numerical results of steady RANS calculation can be used as the initial condition of the unsteady DES simulation.

    Fig.4 Open water performance of E779A propeller

    4.2 Acoustic result of a single blade

    In this section, the acoustic pressure signatures induced by a single blade of E779A propeller are presented. The calculation was carried out at the same condition as used in Ref.[16].The radius, the advance speed and rotational speed are, respectively, R=1.0 m, U∞=8.395 m/s,n=286 r/min and the corresponding advance coefficient is J=U∞/nD=0.88. The sound observer is located in the propeller disk plane, at a distance d0=2R from the blade tip. The unsteady flow of rotating propeller is analyzed by discretizing each propeller revolution into 360 time steps.When the averaged hydrodynamic loads reach a quasi-steady state, the process of extracting the unsteady quantities over the blade surface would begin. These recorded quantities, such as the pressure, velocity, coordinates, area and normal vector of every element on the blade surface, would be provided to the Eqs.(2)-(3) as input data to compute the radiated noise.

    Fig.5 shows the time histories of thickness noise, loading noise and total noise radiated from a single blade. The sound pressure amplitude of thickness noise is much lower than that of loading noise. That is, the loading noise is the dominant component of total noise.

    In Fig.6, a satisfactory agreement between the noise from the single bladed E779A propeller predicted by the present approach and those in Ref.[16] is found. The waveforms of the sound pressure history of the two results are similar, however, the difference is found in term of the sound pressure peak intensity. In conclusion, the present approach is reliable for numerical prediction of the flow noise of rotating blade.

    Fig.5 Acoustic pressure signals for thickness,loading and total noise at observer

    Fig.6 Comparison of the predicted noise with the result in literature

    4.3 Acoustic result of the four-bladed E779A propeller

    In above section, the noise radiated from a single blade was investigated. Here, the test case was the four-bladed E779A propeller. The propeller operation parameter was adjusted in consonance to the Ref.[17]. The diameter, the advance speed and rotational speed are, respectively, D=0.227 m, U∞=4.029 25 m/s, n=1 500 r/min, hence the corresponding advance coefficient is J=0.71.

    Fig.7 Sound pressure at observer 1

    The noise generated by the propeller is predicted at two observers, which were positioned in the propeller disk plane at distances of approximately 0.4 radii and 1.58 radii from the blade tip, respectively.

    Fig.8 Sound pressure at observer 2

    The thickness noise, loading noise and total noise at observer 1 and 2 are shown in Fig.7(a) and Fig.8(a), respectively. The fluctuation amplitudes of thickness noise and loading noise are approximately in the same order of magnitude.

    In Fig.7(b) and Fig.8(b), the total noise prediction by present approach is compared with that of Ref.[17]. It is worth noting that for the sake of clarity, the mean value of the noise pressure signals was removed. At observer 1, very close to the blade tip, the pressure time histories predicted by present approach exhibits a perfect agreement with that in Ref.[17], although the pressure peaks were slightly underestimated. Although observer 2 is relatively away from the propeller, the agreement between the present approach and the Ref.[17] also remains satisfactory. It is interesting to note that moving from observer 1 to 2, the amplitude of sound pressure reduced drastically, whereas the distance between the observer 1 and 2 is very limited. There are two reasons which can explain this phenomenon: First, according to the Eq.(2), when the propeller rotates at a fixed speed, the thickness noise only contains the near-field terms. Second, for a propeller operating in uniform flow, the forces on blades are steady in a coordinate system rotating with the propeller. Since the Mach number of an underwater propeller is very low, this steady loading source could not be considered as an efficient acoustic source.

    In one revolution period, four peaks appear on the curve of the pressure time histories. It means that the noise waveform is characterized by the BPF (blade passage frequency) of the four-bladed propeller. In Fig.7(c) and Fig.8(c), the propeller noise spectra at observer 1 and 2 are presented. As expected, the noise is dominated by tonal component. The fundamental tone is obvious at BPF (100 Hz), and other tonal noises at higher BPF harmonics (200, 300 Hz...)also appear, but they decrease dramatically as the frequency increases.

    5 Conclusions

    The ‘source time-dominant algorithm’ was applied to analyse the noise generated from rotating blades in uniform flow. Both the single blade and the four-bladed propeller have been considered. The comparison of the present results with those in reference is very encouraging with an excellent prediction of both the open water performance and the noise signal. The main features of the noise signal are captured:

    (1) At the BPF and its multiple frequencies, tonal noise can be observed clearly, that is the so called line spectrum features.

    (2) Noise generated from rotating blades in uniform flow decays sharply as the distance between the source and observer increases. Since the rotational speed of the marine propeller is relative slow, the small Mach number leads to a low efficiency of noise radiation of a propeller. Recently, Ianniello[18]demonstrated that the quadrupole source terms in the FW-H equation can not be neglected for a marine propeller. Hence, those non-linear terms will be studied in our future work.

    国产黄a三级三级三级人| 日本 av在线| 看免费成人av毛片| 免费观看精品视频网站| 久久久a久久爽久久v久久| 国产色婷婷99| 久久久国产成人精品二区| 国产真实乱freesex| 日韩欧美精品免费久久| 美女xxoo啪啪120秒动态图| 少妇裸体淫交视频免费看高清| 18禁在线播放成人免费| av在线天堂中文字幕| 亚洲精品影视一区二区三区av| 免费人成视频x8x8入口观看| 十八禁网站免费在线| 搡女人真爽免费视频火全软件 | 蜜臀久久99精品久久宅男| 亚洲成人精品中文字幕电影| 草草在线视频免费看| 99热只有精品国产| or卡值多少钱| 毛片一级片免费看久久久久| 久久午夜亚洲精品久久| 韩国av在线不卡| 蜜桃亚洲精品一区二区三区| 天堂影院成人在线观看| 国产精品电影一区二区三区| 国产精品99久久久久久久久| av.在线天堂| 村上凉子中文字幕在线| 床上黄色一级片| 亚洲国产精品成人综合色| 精品一区二区三区视频在线| 91精品国产九色| 成人亚洲精品av一区二区| av在线老鸭窝| 国产成人freesex在线 | 欧美激情在线99| 精品欧美国产一区二区三| 最近2019中文字幕mv第一页| 一进一出抽搐动态| 极品教师在线视频| 淫妇啪啪啪对白视频| 精品少妇黑人巨大在线播放 | 桃色一区二区三区在线观看| 日本在线视频免费播放| 免费人成在线观看视频色| 看免费成人av毛片| 两个人的视频大全免费| 亚洲自拍偷在线| 99久久中文字幕三级久久日本| 一级毛片电影观看 | 国产黄片美女视频| 亚洲第一区二区三区不卡| 国产私拍福利视频在线观看| 1024手机看黄色片| 在线国产一区二区在线| 亚洲欧美日韩无卡精品| 美女内射精品一级片tv| 精品久久久久久久久久免费视频| 91久久精品电影网| 亚洲最大成人av| 美女 人体艺术 gogo| 亚洲av中文字字幕乱码综合| 免费看a级黄色片| 最近视频中文字幕2019在线8| 精品无人区乱码1区二区| 18+在线观看网站| 亚洲av中文av极速乱| 淫秽高清视频在线观看| 秋霞在线观看毛片| 特级一级黄色大片| 18禁黄网站禁片免费观看直播| 亚洲性夜色夜夜综合| 少妇熟女欧美另类| 搡老熟女国产l中国老女人| av在线观看视频网站免费| 久久综合国产亚洲精品| 中出人妻视频一区二区| 看免费成人av毛片| 国产大屁股一区二区在线视频| 精品福利观看| 亚洲国产欧洲综合997久久,| 午夜激情福利司机影院| 亚洲无线观看免费| 一区福利在线观看| 久久午夜福利片| 在线播放国产精品三级| 99视频精品全部免费 在线| 黑人高潮一二区| 亚洲av免费高清在线观看| 99热精品在线国产| 国产精品福利在线免费观看| 亚洲欧美日韩卡通动漫| 国产精品永久免费网站| 色综合色国产| 亚洲精品色激情综合| 麻豆国产av国片精品| 中文字幕久久专区| 欧美日韩在线观看h| av视频在线观看入口| 中文字幕免费在线视频6| 变态另类成人亚洲欧美熟女| 深夜精品福利| 简卡轻食公司| 两性午夜刺激爽爽歪歪视频在线观看| 菩萨蛮人人尽说江南好唐韦庄 | 色吧在线观看| 可以在线观看的亚洲视频| 国产精品人妻久久久久久| av中文乱码字幕在线| 一个人免费在线观看电影| 午夜精品国产一区二区电影 | 久久欧美精品欧美久久欧美| 色播亚洲综合网| 国产精品久久电影中文字幕| 色5月婷婷丁香| 国产精品乱码一区二三区的特点| 成年版毛片免费区| 国产成人精品久久久久久| 五月伊人婷婷丁香| 亚洲精品粉嫩美女一区| 久久天躁狠狠躁夜夜2o2o| aaaaa片日本免费| 99热这里只有是精品50| 99久久九九国产精品国产免费| 波多野结衣高清无吗| 久久久久久久久久黄片| 69av精品久久久久久| 国产中年淑女户外野战色| 男女那种视频在线观看| 99久久九九国产精品国产免费| 无遮挡黄片免费观看| 91久久精品国产一区二区三区| 亚洲成a人片在线一区二区| 免费看光身美女| 久久婷婷人人爽人人干人人爱| 春色校园在线视频观看| 欧美高清成人免费视频www| 日韩欧美精品v在线| 亚洲高清免费不卡视频| 午夜日韩欧美国产| 九九久久精品国产亚洲av麻豆| 亚洲最大成人手机在线| 久久久久免费精品人妻一区二区| 99热网站在线观看| 成人性生交大片免费视频hd| 黄色一级大片看看| 久久精品国产清高在天天线| aaaaa片日本免费| 99久久九九国产精品国产免费| 免费电影在线观看免费观看| 麻豆精品久久久久久蜜桃| 久久久久国产精品人妻aⅴ院| 免费电影在线观看免费观看| 国产视频内射| 夜夜看夜夜爽夜夜摸| 亚洲精品国产成人久久av| 成熟少妇高潮喷水视频| 国产精品综合久久久久久久免费| 久久韩国三级中文字幕| 真人做人爱边吃奶动态| 日本 av在线| 1024手机看黄色片| 国产毛片a区久久久久| 我的女老师完整版在线观看| 色视频www国产| 亚洲经典国产精华液单| or卡值多少钱| av在线老鸭窝| 亚洲成人中文字幕在线播放| 一本久久中文字幕| 久久精品国产亚洲av涩爱 | 俺也久久电影网| 久久久欧美国产精品| 男女下面进入的视频免费午夜| 国产亚洲av嫩草精品影院| 成人精品一区二区免费| eeuss影院久久| 久久九九热精品免费| 久久久久免费精品人妻一区二区| 日韩三级伦理在线观看| 久久99热6这里只有精品| 国产白丝娇喘喷水9色精品| 亚洲熟妇中文字幕五十中出| 国产精品久久电影中文字幕| 婷婷精品国产亚洲av在线| 91久久精品国产一区二区成人| 级片在线观看| 国产午夜精品久久久久久一区二区三区 | 久久午夜亚洲精品久久| 白带黄色成豆腐渣| 九九热线精品视视频播放| 欧美另类亚洲清纯唯美| 国产精品久久久久久亚洲av鲁大| 日韩高清综合在线| 久久鲁丝午夜福利片| 99热只有精品国产| 晚上一个人看的免费电影| 亚洲电影在线观看av| 最近视频中文字幕2019在线8| 直男gayav资源| 国产爱豆传媒在线观看| 在线观看午夜福利视频| 久久久久久久久中文| avwww免费| 在线免费十八禁| 亚洲最大成人中文| 精品久久久久久久久av| 在线播放国产精品三级| 少妇人妻一区二区三区视频| 国产真实乱freesex| 黄色一级大片看看| 国产一区二区在线av高清观看| 欧美成人精品欧美一级黄| 亚洲电影在线观看av| 亚洲av一区综合| 国产色爽女视频免费观看| 午夜福利18| 男人的好看免费观看在线视频| 97超碰精品成人国产| 成人特级黄色片久久久久久久| 欧美性猛交黑人性爽| 久久久久久久久久久丰满| 日韩精品青青久久久久久| 性插视频无遮挡在线免费观看| 小蜜桃在线观看免费完整版高清| 国产精品一及| 欧美成人免费av一区二区三区| 日韩欧美 国产精品| av视频在线观看入口| 一级毛片aaaaaa免费看小| 精华霜和精华液先用哪个| 亚洲四区av| 97超碰精品成人国产| 亚洲美女黄片视频| а√天堂www在线а√下载| 99热6这里只有精品| 日日摸夜夜添夜夜添小说| 国产乱人视频| 听说在线观看完整版免费高清| a级毛色黄片| 看免费成人av毛片| 精品国产三级普通话版| 99久久无色码亚洲精品果冻| 久久精品国产亚洲av天美| 国产视频一区二区在线看| 亚州av有码| 成人性生交大片免费视频hd| 成人精品一区二区免费| 亚洲精品一区av在线观看| 搡老妇女老女人老熟妇| 欧美另类亚洲清纯唯美| 成人特级黄色片久久久久久久| 亚洲熟妇中文字幕五十中出| 狂野欧美白嫩少妇大欣赏| 少妇的逼水好多| 欧美一区二区精品小视频在线| 激情 狠狠 欧美| 午夜爱爱视频在线播放| 黄色欧美视频在线观看| 亚洲第一区二区三区不卡| 精品午夜福利在线看| 精品人妻熟女av久视频| 久久久欧美国产精品| 日韩欧美精品v在线| 丝袜美腿在线中文| 亚洲欧美精品综合久久99| 亚洲av五月六月丁香网| 在线观看一区二区三区| 最近中文字幕高清免费大全6| 午夜精品国产一区二区电影 | 久久综合国产亚洲精品| 99热6这里只有精品| 伊人久久精品亚洲午夜| 国产精品av视频在线免费观看| 嫩草影院入口| 女的被弄到高潮叫床怎么办| 日日摸夜夜添夜夜添av毛片| 亚洲自拍偷在线| 日日干狠狠操夜夜爽| 色尼玛亚洲综合影院| 在线观看免费视频日本深夜| 搡女人真爽免费视频火全软件 | 在线免费观看不下载黄p国产| 丝袜喷水一区| 国内精品美女久久久久久| 国产一区二区在线av高清观看| 男人和女人高潮做爰伦理| 亚洲人成网站在线观看播放| 天天躁夜夜躁狠狠久久av| 美女xxoo啪啪120秒动态图| 色噜噜av男人的天堂激情| 亚洲性夜色夜夜综合| 一本一本综合久久| 成年免费大片在线观看| 欧美日本视频| 国产精品久久久久久久电影| 国产精品久久久久久精品电影| 好男人在线观看高清免费视频| 午夜日韩欧美国产| 少妇丰满av| 欧美色视频一区免费| 尾随美女入室| 久久婷婷人人爽人人干人人爱| 精品欧美国产一区二区三| 亚洲精华国产精华液的使用体验 | 亚洲精品亚洲一区二区| 女人十人毛片免费观看3o分钟| 日本在线视频免费播放| 悠悠久久av| 亚洲av一区综合| 又爽又黄a免费视频| 老熟妇仑乱视频hdxx| 最近中文字幕高清免费大全6| av在线老鸭窝| 欧美日本亚洲视频在线播放| 18禁裸乳无遮挡免费网站照片| 亚洲av五月六月丁香网| 少妇猛男粗大的猛烈进出视频 | 2021天堂中文幕一二区在线观| 1024手机看黄色片| 国产免费一级a男人的天堂| 最后的刺客免费高清国语| 看十八女毛片水多多多| 一区二区三区四区激情视频 | 国产一区二区在线观看日韩| 午夜福利成人在线免费观看| avwww免费| 精品午夜福利视频在线观看一区| 美女免费视频网站| 成年女人毛片免费观看观看9| 免费看a级黄色片| 少妇人妻精品综合一区二区 | 美女免费视频网站| 亚洲av不卡在线观看| 成人三级黄色视频| 精品日产1卡2卡| 日本与韩国留学比较| 三级毛片av免费| 国内少妇人妻偷人精品xxx网站| 日本欧美国产在线视频| 悠悠久久av| 精品欧美国产一区二区三| 久久精品91蜜桃| 最后的刺客免费高清国语| 免费av不卡在线播放| 日日摸夜夜添夜夜爱| 日韩,欧美,国产一区二区三区 | 97在线视频观看| 男人和女人高潮做爰伦理| 亚洲中文日韩欧美视频| 久久久午夜欧美精品| 成人午夜高清在线视频| 国产av一区在线观看免费| 欧美一区二区精品小视频在线| 久久精品综合一区二区三区| 成人鲁丝片一二三区免费| 国产91av在线免费观看| 老熟妇乱子伦视频在线观看| 黑人高潮一二区| 国产美女午夜福利| 日韩,欧美,国产一区二区三区 | av黄色大香蕉| 日本与韩国留学比较| 狠狠狠狠99中文字幕| 如何舔出高潮| 小说图片视频综合网站| 长腿黑丝高跟| 中出人妻视频一区二区| 免费观看在线日韩| 俄罗斯特黄特色一大片| 精品久久久噜噜| 亚洲国产精品sss在线观看| 午夜精品在线福利| 大香蕉久久网| 国国产精品蜜臀av免费| 欧洲精品卡2卡3卡4卡5卡区| 男女啪啪激烈高潮av片| 两个人视频免费观看高清| 国产探花在线观看一区二区| 男女下面进入的视频免费午夜| 国产麻豆成人av免费视频| 波野结衣二区三区在线| 18禁在线播放成人免费| 成人一区二区视频在线观看| 一进一出好大好爽视频| 麻豆av噜噜一区二区三区| 小说图片视频综合网站| 国国产精品蜜臀av免费| 中文在线观看免费www的网站| www日本黄色视频网| 国产精品久久久久久久久免| 男人舔女人下体高潮全视频| 亚洲不卡免费看| 男女做爰动态图高潮gif福利片| 九九爱精品视频在线观看| avwww免费| 亚洲第一电影网av| 天堂动漫精品| 日韩欧美在线乱码| 搡老妇女老女人老熟妇| 亚洲av五月六月丁香网| 一本久久中文字幕| 老熟妇仑乱视频hdxx| 最近的中文字幕免费完整| 99国产极品粉嫩在线观看| 女人被狂操c到高潮| 美女免费视频网站| 国产av一区在线观看免费| 国产精品免费一区二区三区在线| 国产探花在线观看一区二区| 我要看日韩黄色一级片| 久久久久国产网址| 一区二区三区免费毛片| 人妻夜夜爽99麻豆av| 日韩 亚洲 欧美在线| 亚洲精品日韩在线中文字幕 | 美女被艹到高潮喷水动态| 女生性感内裤真人,穿戴方法视频| 麻豆一二三区av精品| 我要看日韩黄色一级片| 久久鲁丝午夜福利片| 免费搜索国产男女视频| 亚洲国产高清在线一区二区三| 毛片女人毛片| 在线观看av片永久免费下载| 又爽又黄无遮挡网站| 午夜a级毛片| av黄色大香蕉| 麻豆国产97在线/欧美| 少妇的逼水好多| 久久综合国产亚洲精品| 黄色日韩在线| 欧美色视频一区免费| 亚洲精品日韩在线中文字幕 | 欧美激情久久久久久爽电影| 插阴视频在线观看视频| 成人毛片a级毛片在线播放| 麻豆乱淫一区二区| 欧美日韩精品成人综合77777| 亚洲不卡免费看| 日韩欧美三级三区| 中文字幕av在线有码专区| 综合色丁香网| 波野结衣二区三区在线| 国产片特级美女逼逼视频| 人人妻,人人澡人人爽秒播| 国产单亲对白刺激| 99热网站在线观看| 国产伦精品一区二区三区四那| av在线天堂中文字幕| 中文字幕人妻熟人妻熟丝袜美| 久久久久久久久大av| 免费观看精品视频网站| 久久综合国产亚洲精品| 亚洲专区国产一区二区| 国产人妻一区二区三区在| 日本与韩国留学比较| 欧美另类亚洲清纯唯美| 国产男人的电影天堂91| 91狼人影院| av在线播放精品| 国产成人一区二区在线| 亚洲性夜色夜夜综合| 久久久欧美国产精品| 成人特级av手机在线观看| 天堂网av新在线| 久久精品国产清高在天天线| 人妻久久中文字幕网| 国产真实伦视频高清在线观看| 日韩亚洲欧美综合| 亚洲国产高清在线一区二区三| 亚洲高清免费不卡视频| 日韩国内少妇激情av| 美女xxoo啪啪120秒动态图| 成人精品一区二区免费| 亚洲熟妇中文字幕五十中出| 亚洲人成网站在线播| 日本与韩国留学比较| 99热这里只有是精品在线观看| 97碰自拍视频| 熟女人妻精品中文字幕| 精品一区二区三区人妻视频| 俺也久久电影网| 九九在线视频观看精品| 91久久精品国产一区二区成人| 人人妻人人看人人澡| 变态另类丝袜制服| 国产高清三级在线| 丰满的人妻完整版| 亚洲人成网站在线播| 男女下面进入的视频免费午夜| 女人被狂操c到高潮| 亚洲精品一区av在线观看| 欧美xxxx性猛交bbbb| 12—13女人毛片做爰片一| 久久国内精品自在自线图片| 在线观看免费视频日本深夜| 久久午夜福利片| 日本成人三级电影网站| 97热精品久久久久久| 老熟妇乱子伦视频在线观看| 草草在线视频免费看| 天天躁夜夜躁狠狠久久av| 麻豆精品久久久久久蜜桃| 久久人人精品亚洲av| 国产精品伦人一区二区| 91av网一区二区| 欧美极品一区二区三区四区| 精华霜和精华液先用哪个| 别揉我奶头 嗯啊视频| 久久精品国产自在天天线| 99热这里只有精品一区| 色吧在线观看| 日日摸夜夜添夜夜添小说| 97在线视频观看| 欧美最黄视频在线播放免费| 国产欧美日韩精品亚洲av| 啦啦啦韩国在线观看视频| АⅤ资源中文在线天堂| 免费观看精品视频网站| 国产成人福利小说| 精品一区二区三区av网在线观看| www日本黄色视频网| 一本精品99久久精品77| 久久人人爽人人爽人人片va| 赤兔流量卡办理| 在线观看美女被高潮喷水网站| 成人高潮视频无遮挡免费网站| 亚洲五月天丁香| av.在线天堂| 老司机影院成人| 日本免费一区二区三区高清不卡| 亚州av有码| 日韩一区二区视频免费看| 一级毛片电影观看 | 3wmmmm亚洲av在线观看| 亚洲国产精品久久男人天堂| 91麻豆精品激情在线观看国产| 精品久久久久久久久久免费视频| 国产黄a三级三级三级人| 久久久欧美国产精品| 欧美一区二区亚洲| 精品少妇黑人巨大在线播放 | 久久国产乱子免费精品| 99热这里只有精品一区| 高清日韩中文字幕在线| 大又大粗又爽又黄少妇毛片口| a级毛片免费高清观看在线播放| 国产亚洲精品av在线| 91在线精品国自产拍蜜月| 亚洲av二区三区四区| 给我免费播放毛片高清在线观看| 国产女主播在线喷水免费视频网站 | av天堂中文字幕网| 日韩强制内射视频| 国产亚洲精品av在线| 欧美一区二区亚洲| 中国美白少妇内射xxxbb| 一级毛片久久久久久久久女| 国内精品一区二区在线观看| 久久午夜福利片| 免费av不卡在线播放| 91久久精品国产一区二区成人| 国产熟女欧美一区二区| 在线免费十八禁| 人人妻人人澡欧美一区二区| 欧美极品一区二区三区四区| 男女做爰动态图高潮gif福利片| 最近最新中文字幕大全电影3| 哪里可以看免费的av片| 亚洲欧美成人精品一区二区| 校园人妻丝袜中文字幕| 国产精品1区2区在线观看.| 久久国内精品自在自线图片| 中文字幕av成人在线电影| 欧美3d第一页| 黄片wwwwww| 久久久久久久亚洲中文字幕| 波多野结衣高清作品| 真人做人爱边吃奶动态| a级毛片免费高清观看在线播放| 免费人成在线观看视频色| 欧美精品国产亚洲| 大又大粗又爽又黄少妇毛片口| 国产一区二区激情短视频| 内射极品少妇av片p| 插阴视频在线观看视频| 91午夜精品亚洲一区二区三区| 成人鲁丝片一二三区免费| www.色视频.com| 精品国内亚洲2022精品成人| 偷拍熟女少妇极品色| 黄色配什么色好看| 亚洲欧美清纯卡通| 亚洲激情五月婷婷啪啪| 又爽又黄无遮挡网站| 我的女老师完整版在线观看| 啦啦啦观看免费观看视频高清| 综合色av麻豆| 特级一级黄色大片| 久久韩国三级中文字幕| 欧美最新免费一区二区三区| 一边摸一边抽搐一进一小说| 全区人妻精品视频| 给我免费播放毛片高清在线观看| 国产午夜福利久久久久久| 久久午夜亚洲精品久久| 国产高潮美女av| 国产日本99.免费观看| 婷婷六月久久综合丁香| 精品久久久噜噜| 免费大片18禁|