• <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 ?

    Heat Transfer Behavior in a Square Duct with Tandem Wire Coil Element Insert

    2012-03-22 10:11:10SmithEiamsaardNarinKoolnapadolandPongjetPromvonge

    Smith Eiamsa-ard, Narin Koolnapadol and Pongjet Promvonge,*

    1 Department of Mechanical Engineering, Faculty of Engineering, Mahanakorn University of Technology, Bangkok 2 1D0e5p3a0r,t mTehnati loafn dM echanical Engineering, Faculty of Engineering, King Mongkut’s Institute of Technology Ladkrabang,Bangkok 10520, Thailand

    1 INTRODUCTION

    Heat transfer enhancement techniques of fluid inside the duct of heat exchangers have received serious attentions in many engineering applications, such as thermal power plants, chemical processing plants, air conditioning equipment, refrigerators, radiator for automobiles,etc. To date, attempts have been made to reduce the size and cost of heat exchangers. In general,heat transfer augmentation can be divided into two groups: the passive method, without stimulation from the external power and the active method, requiring extra external power sources. The twisted tape and wire coil turbulators are simple passive techniques for enhancing convective heat transfer in the duct by insertion to promote the redevelopment of boundary layer, and cause enhancement of heat transfer by increasing turbulence and fluid mixing. Therefore, more compact and economic heat exchanger with lower operation cost can be obtained.

    For decades, many of the wire coil devices employed for augmentation of laminar or turbulent flow heat transfer have been investigated and discussed.However, few researches for wire coil inserts have been reported in the literature in comparison with those for twisted tape inserts. This has been pointed out by Shojiet al. [1] and Garciaet al. [2]. Some investigations were carried out to determine the effect of the wire coil on heat transfer and friction factor for a long time [3-6]. A comparison of the thermal and hydraulic performances between twisted tape inserts and wire coil inserts was made by Wang and Sunden [7]for both laminar and turbulent flows. They found that the wire coil performs effectively in enhancing heat transfer in a turbulent flow region whereas the twisted tape yields a poorer thermal performance. Yakut and Sahin [8] studied the heat transfer and friction loss characteristics by placing wire coil turbulators in a tube in terms of the shedding frequencies and amplitudes of vortices produced by wire coil turbulators.Ozceyhan [9] examined numerically the conjugate heat transfer and thermal stress in a tube with wire coil inserted under uniform and constant wall heat flux,while heat transfer and pressure drop characteristics in a horizontal double pipe with coil-wire inserts were investigated experimentally by Naphon [10]. Promvonge[11] investigated thermal characteristics of circular- and square-wire coils inserted tubes and found that the wire coil with square cross section provided higher thermal performance than the one with circular cross section.Guneset al. [12] reported the thermal and flow friction characteristics in a circular tube fitted with equilateral triangle cross sectioned wire coil and suggested that detached wire coil was preferable. Recently, the compound turbulators such as twisted tape/swirl generator coupled with wire coil [13-15], combined rib and wire coil/winglet [16-18] were widely interested. The results revealed that the compound devices provide higher heat transfer rate, friction factor and also thermal performance than the wire coil/twisted tape or a single device alone, indicating the synergy effect of both devices.

    In the above literature review, most studies are mainly focused on the effects of wire coil inserts on heat transfer and friction characteristics of air/water flows in round tubes only. The investigation on wire coil inserts in square ducts has rarely been reported in the literature. The merit of square duct over round tube is that it has larger surface area to volume ratio, including lower friction loss at similar Reynolds number values. However, its drawback is ineffective heat transfer surfaces at the corners and the wire coil can induce a secondary swirl flow that helps to wash up the flow trapped in the corners leading to better fluid mixing and higher heat transfer rate in the duct. Thus, the main aim of the present work is to extend the experimental data available on wire coil elements inserted into a square duct. Experimental results using air as the test fluid from two types of coil wire elements: full and tandem short-length coils, are presented in turbulent flows ranging fromRe=4000 to 25000. Influences of various relevant parameters such as the full-length coil,1Dand 2Dlength coils and free-space lengths on the Nusselt number and friction factor in a uniform heat flux square-duct are investigated experimentally.

    2 EXPERIMENTAL SETUP AND DATA REDUCTION

    2.1 Apparatus

    The experimental work was conducted in an open-loop experimental facility as shown in Fig. 1.The loop consisted of a circular pipe which connected a high-pressure blower to a settling tank, and an orifice flowmeter was placed in this pipeline. A square channel including a calm section (2000 mm) and a test section was employed after the settling tank. The aluminum tested duct having duct height (H) of 45 mm has a length ofL=1000 mm, with 45 mm inner hydraulic diameter (D=H), 51 mm outer hydraulic diameter (Do=Ho), and 3 mm thickness (t) as depicted in Fig. 2. The wire coil was made of a small steel wire with circular cross-section. The wire coil with 4.9 mm wire thicknesses (w), 39 mm spring pitch, (coil pitch ratio,CR=8) and outer coil diameter of 43 mm was inserted into the square duct by slightly loose fit with the duct wall as suggested in [12]. The tested square-duct was heated by four electrical heater plates attached over duct sides to provide a uniform heat flux boundary condition. The electrical output power was controlled by a variac transformer to obtain a constant heat flux along the entire length of the test duct. The outer surface of the tested duct was well insulated to minimize convective heat loss to the surroundings. The inlet and outlet temperatures of the bulk air were measured at certain points with a multi-channel temperature measurement unit (data logger) in conjunction with the type K thermocouples, calibrated within ±0.2 °C deviation by thermostat before being used (Fig. 1). Thirty thermocouples were tapped on the upper and lower walls and a side wall of the duct to measure the temperature variation around the duct cross section. The average wall temperature was determined based on the type K thermocouples.

    Figure 1 Schematic diagram of experimental apparatus

    Figure 2 Test duct fitted with wire coil elements

    The inlet bulk air at 28 °C from a 1.5 kW blower was directed through the orifice meter to the heat transfer test duct. The airflow rate was measured by an orifice meter which was calibrated beforehand by using both hot-wire and vane-type anemometers. Manometric fluid was used in inclined/U-tube manometers with specific gravity of 0.826 to ensure reasonably accurate measurement of the low pressure drop encountered at low Reynolds numbers. Also, the pressure drop of the heat transfer test duct was measured with inclined/U-tube and digital manometers at an isothermal condition. The volumetric airflow rates from the blower were adjusted by varying motor speed through an inverter. During the experiments, the bulk air was heated by an adjustable electrical heater wrapping along the test duct. For each test run, it was necessary to record the data of temperature, volumetric flow rate and pressure drop of the bulk air at steady state conditions. The Reynolds number of the bulk air was varied from 5000 to 25000. The various characteristics of the flow and the Nusselt number were based on the average of duct wall temperature and inlet-outlet air temperature.

    The uncertainty in the data calculation was based on Ref. [19]. The maximum uncertainties of nondimensional parameters were ±5% for Reynolds number, ±5% for Nusselt number and ±7% for friction factor. The uncertainty in the axial velocity measurement was estimated to be less than ±7%, and about ±5% for pressure drop, whereas the uncertainty in temperature measurement at the duct wall was about ±0.5%.

    2.2 Data reduction

    In the present work, air was used as the test fluid.The steady state heat transfer rate is assumed to be equal to the heat loss in the test duct:

    in which

    The heat supplied by electrical heater plates in the test duct is found to be 3% to 5% higher than the heat absorbed by the fluid for thermal equilibrium test due to convection and radiation heat losses from the test duct to surroundings. Thus, only the heat transfer rate absorbed by the fluid is taken for internal convective heat transfer coefficient calculation. The convection heat transfer from the test duct can be written by

    where

    where for a constant heat flux, the average surface temperaturesT? can be calculated from 30 points of the local surface temperatures,sT, lined equally apart between the inlet and the exit of the test duct. The average heat transfer coefficient,hand the average Nusselt number,Nuare estimated as follows:

    The Reynolds number is given by

    Friction factor,f, can be written as

    in whichUis mean air velocity in the duct. All thermo-physical properties of air are determined at the overall bulk air temperature from Eq. (4).

    For a constant pumping power,

    and the relationship between friction and Reynolds number can be expressed as:

    The thermal enhancement factor,η, defined as the ratio of the,hof an augmented surface to that of a smooth surface,h0, at an identical pumping power is suggested by Webb [20]:

    3 RESULTS AND DISCUSSION

    3.1 Verification of smooth duct

    The present experimental results on heat transfer and friction characteristics in a smooth wall square duct are first validated in terms of Nusselt number and friction factor. The Nusselt number and friction factor obtained from the present smooth duct are, respectively,compared with the correlations of Dittus-Boelter and Gnielinski for Nusselt number, and of Blasius and Petukhov for friction factor found in the open literature [21] for turbulent flow in circular ducts.correlation of Dittus-Boelter,

    correlation of Gnielinski,

    correlation of Blasius,

    correlation of Petukhov,

    Fig. 3 (a) and 3 (b) shows, respectively, a comparison of Nusselt number and friction factor obtained from the present work with those from correlations of Eqs.(13) and (14). In the figure, the present results agree very well within ±5% with published friction factor and Nusselt number correlations [21].

    Figure 3 Verification of Nusselt number and friction factor for smooth square duct Dittus-Boelter; × Present smooth duct; Gnielinski;Petukhov; Blasius

    3.2 Effect of wire coil inserts

    The present experimental results on heat and flow friction characteristics in a uniform heat flux duct with wire coil element inserts are presented in the form of Nusselt number and friction factor as shown in Figs. 4 and 5, respectively. The wire coil turbulator yields considerable heat transfer enhancement with a similar trend in comparison with the smooth duct, and the Nusselt number from both coils increases for rising Reynolds number. This is because the wire coil turbulator interrupts the development of the boundary layer of the fluid flow and increases the degree of flow turbulence. It is worth noting that the full length coil provides higher heat transfer than the short length ones for all Reynolds number values, as can be seen in Fig. 4. The average increases in heat transfer rate for using the full, 1Dand 2Dlength coils atS/D=1 are,respectively, found to be about 140%, 116% and 118%higher than the smooth duct. The use of the full length coil also shows a higher heat transfer rate than those of the 1Dand 2Dcoils atS/D=1 around 7% and 9%depending on Reynolds number values, respectively.

    Figure 4 Variation of Nusselt number with Reynolds number for various wire coils△ full-length coil; ○ 2D coil, S/D=1; □ 1D coil, S/D=1;▽ 2D coil, S/D=2; ◇ 1D coil, S/D=2; ■ 2D coil, S/D=3;● 1D coil, S/D=3; + 2D coil, S/D=4; ◆ 1D coil, S/D=4;× smooth duct

    Figure 5 presents the variation of friction factor with Reynolds number for the full, 1Dand 2Dlength coils. In the figure, it is apparent that the use of coil elements leads to a substantial increase in friction factor above the smooth duct. Since the coil elements pretended as a second duct in the test duct, the contact of working fluid with the surface area of test duct is higher due to longer flow path and residence time,resulting in higher friction loss. The mean friction factor of the full length coil is found to be higher than that of the 1Dand 2Dcoils atS/D=1 around 12% and 5%, respectively.

    Figure 5 Variation of friction factor with Reynolds number for various wire coils△ full-length coil; ○ 2D coil, S/D=1; □ 1D coil, S/D=1;▽ 2D coil, S/D=2; ◇ 1D coil, S/D=2; ■ 2D coil, S/D=3;● 1D coil, S/D=3; + 2D coil, S/D=4; ◆ 1D coil, S/D=4;× smooth duct

    3.3 Effect of space ratio

    The variation of the Nusselt number with Reynolds number for four free space ratios (S/D=1, 2, 3 and 4) of 1Dand 2Dcoils is displayed in Fig. 4. In the figure, the heat transfer increases considerably with the Reynolds number. A close examination reveals that for using the 1Dand 2Dcoils, the heat transfer rate at the lower space ratio (S/D=1) is greater than that at the higher one over the Reynolds number range studied. This is because the turbulence intensity and the flow path obtained from the lower space ratio are higher and longer than that from the higher one. AtS/D=1, 2, 3 and 4, the average increases in heat transfer rate for the 1Dand 2Dcoils are, respectively,about 118%, 100%, 90% and 80%; and around 120%,104%, 95% and 85% over the smooth duct.

    The variation of friction factor with Reynolds number for various free space ratios of 1Dand 2Dcoil elements is also depicted in Fig. 5. In the figure, the friction factor tends to decrease with the rise of Reynolds number and space ratio values. The increase in friction factor with the swirl turbulent flow created by the coil, however, is much higher than that with the smooth duct flow. This can be attributed to the dissipation of dynamic pressure of the fluid due to higher surface area and the act caused by the swirl flow. As expected, the friction factor obtained from the smaller space ratio is higher than that from the higher space ratio. The increases in friction factor of using the 1Dand 2Dcoils atS/D=1, 2, 3 and 4 are in a range of about 5.5-8.5, 5-7.8, 4.6-7.2 and 4.5-6.8 times and about 6-8.9, 5.7-8.6, 5.3-8.2 and 4.7-7.6 times the smooth duct, respectively.

    3.4 Performance evaluation

    The Nusselt number ratio,Nu/Nu0, plotted against the Reynolds number is illustrated in Fig. 6. From the figure, the Nusselt number ratio tends to slightly decrease with the rise of Reynolds number for all turbulators. The full-length coil gives the highest Nusselt number ratio of about 2.43 at the lowest Reynolds number while the 2Dcoil performs better than the 1Dcoil at a givenS/Dvalue. Also, the lowerS/Dyields higher Nusselt number ratio than the larger one. It is noted that theNu/Nu0of the 1Dcoil is nearly the same as the 2Dcoil at correspondingS/Dvalue. The averageNu/Nu0values for the full length coil and the tandem coil ofS/D=1, 2, 3 and 4 are, respectively, about 2.4; and 2.18, 2.05, 1.9 and 1.8.

    Figure 6 Variation of Nusselt number ratio, Nu/Nu0 with Reynolds number△ full-length coil; ○ 2D coil, S/D=1; □ 1D coil, S/D=1;▽ 2D coil, S/D=2; ◇ 1D coil, S/D=2; ■ 2D coil, S/D=3;● 1D coil, S/D=3; + 2D coil, S/D=4; ◆ 1D coil, S/D=4

    Figure 7 presents the variation of friction factor ratio,f/f0, with the Reynolds number. It is observed that the friction factor ratio tends to increase slightly with rising Reynolds number. The full length coil provides a higher increase in the friction factor ratio than the 1Dand 2Dlength ones at similar operating condition. The meanf/f0values for the full length coil and the short length ones ofS/D=1, 2, 3 and 4 are, respectively, about 8.4; and 7.8, 7.2, 6.8 and 6.5. This indicates that the use of the free space length is not efficient to reduce friction loss significantly. This is likely from the fact that the wire coil used in the current work is at optimum coil pitch and thickness ratios at suggested in [6]. If the wire coil pitch is at other values, the result may be different.

    Figure 7 Variation of friction factor ratio, f/f0 with Reynolds number△ full-length coil; ○ 2D coil, S/D=1; ▽ 2D coil, S/D=2;□ 1D coil, S/D=1; ■ 2D coil, S/D=3; ◇ 1D coil, S/D=2;+ 2D coil, S/D=4; ● 1D coil, S/D=3; ◆ 1D coil, S/D=4

    Figure 8 Variation of enhancement efficiency with Reynolds number△ full-length coil; □ 1D coil, S/D=1; ○ 2D coil, S/D=1;◇ 1D coil, S/D=2; ▽ 2D coil, S/D=2; ● 1D coil, S/D=3;■ 2D coil, S/D=3; ◆ 1D coil, S/D=4; + 2D coil, S/D=4

    Figure 8 shows the variation of thermal enhancement factor with Reynolds number for all wire coils.For all, the experimental data are compared at identical pumping power. It can be observed in the figure that the enhancement factors generally are above unity only for the full and short length coils atS/D=1, indicating that the use of theS/D=0 or 1 wire coil element inserts is advantageous over the smooth square duct. The otherS/Dwire coil element inserts provide the enhancement factor above unity only for lower Reynolds number regime. The enhancement factor tends to decrease with the rise of Reynolds number but increases with the reduction of the space ratio,especially at zero space ratio (or full length coil). The enhancement factor of the full length coil is about 10%-25% higher than that of the short length one,depending on the S/D value. The maximum enhancement factors of the full-length, 1Dand 2Dcoils atS/D=1 are found to be about 1.33, 1.25 and 1.24 at lower Reynolds number, respectively.

    4 CONCLUSIONS

    An experimental study has been carried out to examine the airflow friction and heat transfer characteristics in a square duct fitted with tandem wire coil element turbulators for the turbulent regime,Re=4000 to 25000 andPr=0.7. The use of wire coil elements causes a high pressure drop increase,f/f0=4.5-9.5,which depends mainly on space ratio andRevalues,and also provides considerable heat transfer augmentations,Nu/Nu0=1.7-2.45. However, Nusselt number augmentation tends to decrease slightly with the rise of Reynolds number. If wire coils are compared with a smooth duct at a constant pumping power, an increase in heat transfer is obtained especially at low Reynolds number. Although fairly large differences have been observed among the analyzed coil wires, their performance evaluated is quite similar: atRe=4000,η≈ 1.24-1.33 and atRe=25000,η≈ 1.03-1.1 for usingS/D=0-1. The use of tandem wire coil elements can reduce significantly the friction loss in the duct but the heat transfer rate is also decreased. Therefore, the full-length coil should be applied instead of the tandem short length one to obtain higher heat transfer and performance, leading to more compact heat exchanger.The best operating regime for the wire coil turbulator is found at lower Reynolds number where the thermal enhancement factor is about 1.33.

    NOMENCLATURE

    1 Shoji, Y., Sato, K., Oliver, D.R., “Heat transfer enhancement in round tube using coiled wire: Influence of length and segmentation”,HeatTransfer-AsianRes., 32 (2), 99-107 (2003).

    2 García, A., Vicente, P.G., Viedma, A., “Experimental study of heat transfer enhancement with wire coil inserts in laminar-transitionturbulent regimes at different Prandtl numbers”,Int.J.Heat Mass Transfer, 48, 4640-4651 (2005).

    3 Uttarwar, S.B., Rao, M.R., “Augmentation of laminar flow heat transfer in tubes by means of coiled wire inserts”,Trans.ASME, 107,930-935 (1985).

    4 Chiou, J.P., “Experimental investigation of the augmentation of forced convection heat transfer in a circular tube using spiral spring inserts”,Trans.ASME, 109, 300-307 (1987).

    5 Prasad, R.C., Shen, J., “Performance evaluation using exergy analysis—Application to wire-coil inserts in forced convection heat transfer”,Int.J.Heat Mass Transfer, 37 (15), 2297-2303 (1994).

    6 Ravigururajan, T.S., Bergles, A.E., “Development and verification of general correlations for pressure drop and heat transfer in single-phase turbulent flow in enhanced tubes”,Exp.Therm.Fluid Sci.,13, 55-70 (1996).

    7 Wang, L., Sunden, B., “Performance comparison of some tube inserts”,Int.Comm.Heat Mass Transfer, 29 (1), 45-56 (2002).

    8 Yakut, K., Sahin, B., “The effects of vortex characteristics on performance of coiled wire turbulators used for heat transfer augmentation”,Appl.Therm.Eng., 24 (16), 2427-2438 (2004).

    9 Ozceyhan, V., “Conjugate heat transfer and thermal stress analysis of wire coil inserted tubes that are heated externally with uniform heat flux”,EnergyConvers.Manage., 46, 1543-1559 (2005).

    10 Naphon, P., “Effect of coil-wire insert on heat transfer enhancement and pressure drop of the horizontal concentric tubes”,Int.Comm.Heat Mass Transfer, 33 (6), 753-763 (2006).

    11 Promvonge, P., “Thermal performance in circular tube fitted with coiled square wires”,Energy Convers.Manage., 49 (5), 980-987(2008).

    12 Gunes, S., Ozceyhan, V., Buyukalaca, O., “Heat transfer enhancement in a tube with equilateral triangle cross sectioned coiled wire inserts”,Exp.Therm.Fluid Sci., 34 (6), 684-691 (2010).

    13 Promvonge, P., “Thermal augmentation in circular tube with twisted tape and wire coil turbulators”,Energy Convers.Manage., 49 (11),2949-2955 (2008).

    14 Eiamsa-ard, S., Nivesrangsan, P., Chokphoemphun, S., Promvonge,P., “Influence of combined non-uniform wire coil and twisted tape inserts on thermal performance characteristics”,Int.Comm.Heat Mass Transfer, 37 (7), 850-856 (2010).

    15 Promvonge, P., “Thermal enhancement in a round tube with snail entry and coiled-wire inserts”,Int.Comm.Heat Mass Transfer, 35(5), 623-629 (2008).

    16 Saha, S.K., “Thermal and friction characteristics of turbulent flow through rectangular and square ducts with transverse ribs and wire coil inserts”,Exp.Therm.Fluid Sci., 34 (5), 575-589 (2010).

    17 Promvonge, P., Khanoknaiyakarn, C., Kwankaomeng, S., Thianpong,C., “Thermal behavior in solar air heater channel fitted with combined rib and delta-winglet”,Int.Comm.Heat Mass Transfer, 38 (6),749-756 (2011).

    18 Promvonge, P., Chompookham, T., Kwankaomeng, S., Thianpong,C., “Enhanced heat transfer in a triangular ribbed channel with longitudinal vortex generators”,Energy Convers.Manage., 51 (6),1242-1249 (2010).

    19 ANSI/ASME, Measurement Uncertainty, PTC 19. 1-1985, Part I,USA (1986).

    20 Webb, R.L., “Performance evaluation criteria for use of enhanced heat transfer surfaces in heat exchanger design”,Int.J.Heat Mass Transfer, 24, 715-726 (1981).

    21 Incropera, F.P., DeWitt, D.P., Bergman, T.L., Lavine, A.S., Introduction to Heat Transfer, 5th edition, John Wiley & Sons, USA (2006).

    少妇被粗大猛烈的视频| 波野结衣二区三区在线| 美女内射精品一级片tv| 嫩草影院精品99| 亚洲精品成人久久久久久| 国产视频一区二区在线看| 欧美日韩国产亚洲二区| 欧美一级a爱片免费观看看| 高清毛片免费看| 国产精品久久久久久久久免| 国产日本99.免费观看| 亚洲aⅴ乱码一区二区在线播放| 美女xxoo啪啪120秒动态图| 亚洲内射少妇av| 亚洲av免费在线观看| 国产精品国产三级国产av玫瑰| 久久欧美精品欧美久久欧美| 国产精品国产高清国产av| 毛片女人毛片| 亚洲国产精品合色在线| 欧美人与善性xxx| 午夜福利成人在线免费观看| 亚洲精品国产成人久久av| 欧美日韩精品成人综合77777| 国产视频一区二区在线看| 国产老妇女一区| 欧美绝顶高潮抽搐喷水| 亚洲经典国产精华液单| 99热这里只有精品一区| 又爽又黄无遮挡网站| 久久久久性生活片| aaaaa片日本免费| 又爽又黄无遮挡网站| 久久精品国产亚洲av天美| 色av中文字幕| 精品99又大又爽又粗少妇毛片| 韩国av在线不卡| 精品日产1卡2卡| 欧美极品一区二区三区四区| 蜜桃久久精品国产亚洲av| 久久久久久久久久久丰满| 国产综合懂色| 免费观看精品视频网站| 成人美女网站在线观看视频| 一级毛片aaaaaa免费看小| 51国产日韩欧美| 好男人在线观看高清免费视频| 久久久色成人| 最近2019中文字幕mv第一页| 国产精品久久视频播放| 六月丁香七月| 3wmmmm亚洲av在线观看| 久久久久久九九精品二区国产| 精品久久久久久久人妻蜜臀av| 高清毛片免费看| 美女高潮的动态| АⅤ资源中文在线天堂| 18禁黄网站禁片免费观看直播| 伦理电影大哥的女人| 精品国内亚洲2022精品成人| 简卡轻食公司| 日产精品乱码卡一卡2卡三| 午夜久久久久精精品| 久久久色成人| 免费搜索国产男女视频| 超碰av人人做人人爽久久| 日日撸夜夜添| 亚洲成人久久性| 午夜久久久久精精品| 日本黄色片子视频| 有码 亚洲区| 欧美bdsm另类| 青春草视频在线免费观看| 秋霞在线观看毛片| 欧美xxxx黑人xx丫x性爽| 久久婷婷人人爽人人干人人爱| 1000部很黄的大片| 男女啪啪激烈高潮av片| 国产午夜精品久久久久久一区二区三区 | 国产精品一二三区在线看| 亚洲四区av| 一级毛片电影观看 | 不卡视频在线观看欧美| 国内久久婷婷六月综合欲色啪| 成人午夜高清在线视频| 波多野结衣高清无吗| 日韩精品中文字幕看吧| 欧美高清成人免费视频www| 国产aⅴ精品一区二区三区波| 免费看av在线观看网站| 免费看日本二区| 女的被弄到高潮叫床怎么办| 久久久久精品国产欧美久久久| 日韩一区二区视频免费看| 亚洲欧美成人精品一区二区| 波野结衣二区三区在线| 日韩欧美 国产精品| 最新中文字幕久久久久| 免费不卡的大黄色大毛片视频在线观看 | 国产成年人精品一区二区| 亚洲五月天丁香| 天堂动漫精品| 99九九线精品视频在线观看视频| 男女做爰动态图高潮gif福利片| h日本视频在线播放| 国产探花在线观看一区二区| 可以在线观看毛片的网站| 免费黄网站久久成人精品| 精品国内亚洲2022精品成人| 又黄又爽又免费观看的视频| 欧美三级亚洲精品| 日韩欧美 国产精品| av国产免费在线观看| 婷婷六月久久综合丁香| 久久久成人免费电影| 亚洲欧美日韩高清专用| 少妇裸体淫交视频免费看高清| 国产伦精品一区二区三区视频9| 波多野结衣高清作品| 我要搜黄色片| 久久天躁狠狠躁夜夜2o2o| 性色avwww在线观看| 成年免费大片在线观看| 日本一本二区三区精品| 国产探花极品一区二区| 色综合色国产| 国产av麻豆久久久久久久| 如何舔出高潮| 美女内射精品一级片tv| 99久国产av精品国产电影| 能在线免费观看的黄片| 国产人妻一区二区三区在| 深爱激情五月婷婷| a级毛片a级免费在线| 床上黄色一级片| 一进一出好大好爽视频| 亚洲欧美日韩无卡精品| 欧美又色又爽又黄视频| 亚洲最大成人中文| 又黄又爽又免费观看的视频| 伊人久久精品亚洲午夜| av黄色大香蕉| 麻豆成人午夜福利视频| 亚洲欧美日韩高清专用| 久久午夜亚洲精品久久| 97超级碰碰碰精品色视频在线观看| 1024手机看黄色片| 欧美性猛交╳xxx乱大交人| 欧美+亚洲+日韩+国产| 不卡视频在线观看欧美| 国产亚洲精品综合一区在线观看| 美女 人体艺术 gogo| 亚洲最大成人av| 男女边吃奶边做爰视频| 国产亚洲精品久久久久久毛片| 亚洲va在线va天堂va国产| 国产伦精品一区二区三区视频9| 又粗又爽又猛毛片免费看| 免费在线观看影片大全网站| 精品一区二区三区视频在线观看免费| 三级男女做爰猛烈吃奶摸视频| 两性午夜刺激爽爽歪歪视频在线观看| 国产亚洲精品综合一区在线观看| 色哟哟哟哟哟哟| 亚洲国产高清在线一区二区三| 少妇熟女aⅴ在线视频| 国产探花极品一区二区| 特级一级黄色大片| 国产成人freesex在线 | 欧美激情久久久久久爽电影| 天天一区二区日本电影三级| 悠悠久久av| 日本免费一区二区三区高清不卡| 悠悠久久av| av天堂在线播放| 亚洲美女黄片视频| 男人舔奶头视频| 午夜福利高清视频| 我的老师免费观看完整版| 亚洲国产高清在线一区二区三| 欧美日本亚洲视频在线播放| 日本五十路高清| 日产精品乱码卡一卡2卡三| 1000部很黄的大片| 男人舔奶头视频| 精品一区二区三区视频在线观看免费| 久久亚洲精品不卡| 久久久久久伊人网av| 国产精品国产三级国产av玫瑰| 久久久久久久久久黄片| 亚洲一级一片aⅴ在线观看| 国产伦精品一区二区三区视频9| 日韩精品青青久久久久久| 国产熟女欧美一区二区| 国产亚洲精品综合一区在线观看| 大香蕉久久网| 国产成人一区二区在线| 国产精品人妻久久久久久| 免费人成在线观看视频色| 大又大粗又爽又黄少妇毛片口| 亚洲久久久久久中文字幕| 最近在线观看免费完整版| 麻豆乱淫一区二区| 最近2019中文字幕mv第一页| 国产亚洲91精品色在线| 18禁在线无遮挡免费观看视频 | 亚洲精品国产av成人精品 | 亚洲美女搞黄在线观看 | 国产精品福利在线免费观看| 男女啪啪激烈高潮av片| 又粗又爽又猛毛片免费看| 国产高清激情床上av| 久久国产乱子免费精品| 少妇被粗大猛烈的视频| 精品一区二区三区人妻视频| 久久久久久九九精品二区国产| 国产三级在线视频| 成人三级黄色视频| 午夜福利18| 国内揄拍国产精品人妻在线| 日韩制服骚丝袜av| 村上凉子中文字幕在线| 少妇丰满av| 精品乱码久久久久久99久播| 久久99热这里只有精品18| 日韩欧美一区二区三区在线观看| 97碰自拍视频| 久久久久国产精品人妻aⅴ院| 看黄色毛片网站| 一级毛片aaaaaa免费看小| 日韩国内少妇激情av| 国产伦精品一区二区三区四那| 精品国内亚洲2022精品成人| 亚洲在线观看片| .国产精品久久| 在线观看免费视频日本深夜| 丝袜喷水一区| av女优亚洲男人天堂| 国产亚洲av嫩草精品影院| 好男人在线观看高清免费视频| 在线看三级毛片| 夜夜夜夜夜久久久久| 最新在线观看一区二区三区| 女人被狂操c到高潮| 在线播放无遮挡| 少妇熟女aⅴ在线视频| 久久久久国产网址| 亚洲中文字幕日韩| 久久精品人妻少妇| 人妻夜夜爽99麻豆av| 三级经典国产精品| 国产毛片a区久久久久| 黄色配什么色好看| 亚洲丝袜综合中文字幕| 亚洲天堂国产精品一区在线| 欧美中文日本在线观看视频| 一本精品99久久精品77| 久久久色成人| 秋霞在线观看毛片| 中出人妻视频一区二区| 亚洲人成网站高清观看| 国产精品美女特级片免费视频播放器| 一进一出好大好爽视频| 久久这里只有精品中国| 波多野结衣高清无吗| 亚洲精品乱码久久久v下载方式| 精品久久久久久久久久久久久| 精品久久久久久久久久久久久| av专区在线播放| 赤兔流量卡办理| 国内精品一区二区在线观看| 尾随美女入室| 欧美人与善性xxx| 18+在线观看网站| 成人永久免费在线观看视频| 日韩av不卡免费在线播放| 成人三级黄色视频| 在线免费观看的www视频| 国产精品日韩av在线免费观看| 亚洲熟妇中文字幕五十中出| 99久久中文字幕三级久久日本| 长腿黑丝高跟| 男女之事视频高清在线观看| 一级毛片我不卡| 欧美丝袜亚洲另类| 日本撒尿小便嘘嘘汇集6| 久久精品夜色国产| 免费在线观看成人毛片| 免费在线观看成人毛片| 成熟少妇高潮喷水视频| 亚洲最大成人中文| 中文亚洲av片在线观看爽| 又粗又爽又猛毛片免费看| 少妇被粗大猛烈的视频| 变态另类丝袜制服| 中国国产av一级| videossex国产| 男插女下体视频免费在线播放| 午夜激情福利司机影院| 国产色婷婷99| 天天一区二区日本电影三级| 国产亚洲精品综合一区在线观看| 国产国拍精品亚洲av在线观看| 听说在线观看完整版免费高清| 日韩欧美精品免费久久| 精品无人区乱码1区二区| 免费黄网站久久成人精品| 久久久a久久爽久久v久久| av专区在线播放| 欧美激情久久久久久爽电影| 九九在线视频观看精品| 老熟妇仑乱视频hdxx| 亚洲精品在线观看二区| 欧美日韩在线观看h| 亚洲精品亚洲一区二区| 国内精品美女久久久久久| 国产高潮美女av| 麻豆久久精品国产亚洲av| 免费看a级黄色片| 国产蜜桃级精品一区二区三区| 床上黄色一级片| 偷拍熟女少妇极品色| 午夜福利视频1000在线观看| 精品午夜福利视频在线观看一区| 精品久久久久久久久久免费视频| 国产午夜精品论理片| 国产老妇女一区| 国产三级在线视频| 亚洲一级一片aⅴ在线观看| 日韩欧美免费精品| 六月丁香七月| 乱系列少妇在线播放| 精品99又大又爽又粗少妇毛片| 欧美另类亚洲清纯唯美| 久久久精品大字幕| 欧美激情久久久久久爽电影| 国产精品不卡视频一区二区| 婷婷亚洲欧美| av天堂在线播放| 黄片wwwwww| 自拍偷自拍亚洲精品老妇| 久久久久久久久久黄片| 一级毛片久久久久久久久女| 乱系列少妇在线播放| av黄色大香蕉| 欧美日本视频| 国产毛片a区久久久久| 国产成人精品久久久久久| 久久精品国产自在天天线| a级毛片免费高清观看在线播放| 欧美在线一区亚洲| 能在线免费观看的黄片| 精品久久久噜噜| 少妇高潮的动态图| av中文乱码字幕在线| 久久国产乱子免费精品| 亚洲av.av天堂| 乱人视频在线观看| 色视频www国产| 亚洲人成网站高清观看| 国产黄片美女视频| 国产真实伦视频高清在线观看| 日本精品一区二区三区蜜桃| 丝袜美腿在线中文| 成年免费大片在线观看| 成人美女网站在线观看视频| 色综合色国产| 2021天堂中文幕一二区在线观| 日本精品一区二区三区蜜桃| 天美传媒精品一区二区| 亚洲av熟女| 赤兔流量卡办理| 真人做人爱边吃奶动态| 国产 一区精品| 淫秽高清视频在线观看| 好男人在线观看高清免费视频| 麻豆av噜噜一区二区三区| 欧美极品一区二区三区四区| 国产白丝娇喘喷水9色精品| 午夜福利在线在线| 亚洲精品粉嫩美女一区| 91久久精品国产一区二区成人| 国内精品宾馆在线| 久久久久精品国产欧美久久久| 国产毛片a区久久久久| 又粗又爽又猛毛片免费看| 日韩三级伦理在线观看| 成人无遮挡网站| 国产乱人偷精品视频| 人人妻人人看人人澡| 国内精品美女久久久久久| 国内揄拍国产精品人妻在线| 春色校园在线视频观看| 精品人妻一区二区三区麻豆 | 久久久精品大字幕| 久久久久国产网址| 91久久精品电影网| 久久中文看片网| 18禁在线播放成人免费| 卡戴珊不雅视频在线播放| 国产色爽女视频免费观看| 午夜福利18| 国产精华一区二区三区| 国产伦一二天堂av在线观看| 美女免费视频网站| 在现免费观看毛片| 国产伦在线观看视频一区| 亚洲熟妇熟女久久| 亚洲av电影不卡..在线观看| 精品福利观看| 天堂√8在线中文| 女的被弄到高潮叫床怎么办| 91午夜精品亚洲一区二区三区| 中国美女看黄片| 啦啦啦韩国在线观看视频| 国产精品综合久久久久久久免费| 欧美性猛交╳xxx乱大交人| 午夜精品一区二区三区免费看| 久久精品久久久久久噜噜老黄 | 国产精品一区二区性色av| 亚洲av第一区精品v没综合| 亚洲天堂国产精品一区在线| 午夜福利在线在线| 男插女下体视频免费在线播放| 中国美白少妇内射xxxbb| 久久人人爽人人爽人人片va| 可以在线观看的亚洲视频| av天堂中文字幕网| 久久久精品欧美日韩精品| 最近在线观看免费完整版| 一个人看视频在线观看www免费| 亚洲乱码一区二区免费版| 成人特级av手机在线观看| 国产精品嫩草影院av在线观看| 国产又黄又爽又无遮挡在线| 黄色一级大片看看| 黄片wwwwww| 69人妻影院| 国产精品一二三区在线看| 欧美绝顶高潮抽搐喷水| 日韩欧美精品v在线| 乱人视频在线观看| 简卡轻食公司| av.在线天堂| 亚洲精品色激情综合| 国产精品嫩草影院av在线观看| 成人欧美大片| 久久久欧美国产精品| 老熟妇仑乱视频hdxx| 日韩制服骚丝袜av| 热99re8久久精品国产| 久久久久久久久久成人| 久久热精品热| 国产男人的电影天堂91| 精品乱码久久久久久99久播| 欧美一区二区亚洲| 淫秽高清视频在线观看| 久久久久九九精品影院| 亚洲人成网站在线播| 精品国内亚洲2022精品成人| 日本 av在线| 亚洲va在线va天堂va国产| 可以在线观看毛片的网站| 国产三级中文精品| 国产一区二区在线av高清观看| 久久久久性生活片| 搡老熟女国产l中国老女人| 国产 一区精品| 一本久久中文字幕| 美女被艹到高潮喷水动态| 午夜福利在线在线| 国产亚洲精品久久久com| 日韩一区二区视频免费看| 97碰自拍视频| 精品一区二区三区av网在线观看| 日韩中字成人| 久久午夜福利片| 天堂影院成人在线观看| 午夜福利在线观看免费完整高清在 | 欧美最新免费一区二区三区| 五月玫瑰六月丁香| 最近2019中文字幕mv第一页| 真人做人爱边吃奶动态| 最好的美女福利视频网| 两个人视频免费观看高清| 国产成人aa在线观看| 日韩在线高清观看一区二区三区| 日韩av不卡免费在线播放| 国产精华一区二区三区| 国内精品久久久久精免费| 国产高清视频在线播放一区| 少妇裸体淫交视频免费看高清| 特大巨黑吊av在线直播| 国产av麻豆久久久久久久| 亚洲一区二区三区色噜噜| 亚洲熟妇中文字幕五十中出| 插阴视频在线观看视频| 国内久久婷婷六月综合欲色啪| 婷婷精品国产亚洲av| 看非洲黑人一级黄片| 97热精品久久久久久| 精品久久久久久成人av| av天堂中文字幕网| 国产一区亚洲一区在线观看| 国产麻豆成人av免费视频| 欧美日韩国产亚洲二区| 日日啪夜夜撸| 免费观看人在逋| 国产亚洲精品综合一区在线观看| 一级a爱片免费观看的视频| 毛片一级片免费看久久久久| 亚洲天堂国产精品一区在线| 国产女主播在线喷水免费视频网站 | 久久久久久九九精品二区国产| 丰满乱子伦码专区| 91精品国产九色| 午夜福利在线观看免费完整高清在 | 搡老岳熟女国产| 久久午夜福利片| 亚洲av不卡在线观看| 亚洲性久久影院| 久久欧美精品欧美久久欧美| 一进一出好大好爽视频| 毛片女人毛片| 亚洲成人av在线免费| 麻豆国产97在线/欧美| 欧美中文日本在线观看视频| 国产熟女欧美一区二区| 露出奶头的视频| 国产欧美日韩一区二区精品| 午夜免费男女啪啪视频观看 | 久久99热这里只有精品18| 亚洲成a人片在线一区二区| 国产精品国产高清国产av| 日本精品一区二区三区蜜桃| 99久久精品国产国产毛片| 久久久久久久久中文| 一级a爱片免费观看的视频| 久久婷婷人人爽人人干人人爱| 毛片女人毛片| 黄色欧美视频在线观看| 此物有八面人人有两片| 亚洲一级一片aⅴ在线观看| 三级毛片av免费| 亚洲av五月六月丁香网| 国产一区二区激情短视频| 欧美xxxx性猛交bbbb| 国产色婷婷99| 国产真实伦视频高清在线观看| 在线观看午夜福利视频| 久久久欧美国产精品| 在线a可以看的网站| 天堂√8在线中文| 成年女人毛片免费观看观看9| 国产一区二区三区av在线 | 国产亚洲精品综合一区在线观看| www.色视频.com| 欧美一级a爱片免费观看看| 有码 亚洲区| 亚洲欧美成人精品一区二区| 舔av片在线| 特级一级黄色大片| 99九九线精品视频在线观看视频| 日韩成人伦理影院| 在线观看美女被高潮喷水网站| 不卡视频在线观看欧美| 免费观看人在逋| 亚洲最大成人中文| 欧美成人a在线观看| 中文亚洲av片在线观看爽| 99久国产av精品国产电影| 成人毛片a级毛片在线播放| 久久精品夜色国产| 国产av在哪里看| 免费看av在线观看网站| 亚洲精品日韩av片在线观看| 免费看av在线观看网站| 黄片wwwwww| 国产精品永久免费网站| 高清日韩中文字幕在线| 久久精品国产鲁丝片午夜精品| 国产精品人妻久久久影院| 欧美最黄视频在线播放免费| 亚洲无线在线观看| 少妇的逼水好多| 亚洲成人中文字幕在线播放| 啦啦啦啦在线视频资源| 三级国产精品欧美在线观看| 丝袜美腿在线中文| 欧美国产日韩亚洲一区| 男女下面进入的视频免费午夜| 别揉我奶头~嗯~啊~动态视频| 99久久九九国产精品国产免费| 精品久久国产蜜桃| 国产精品永久免费网站| 精品一区二区免费观看| 日韩高清综合在线| 精品人妻一区二区三区麻豆 | 最近中文字幕高清免费大全6| 久久精品国产亚洲网站| 午夜视频国产福利| 久久精品人妻少妇| 日韩强制内射视频| 少妇裸体淫交视频免费看高清| 欧美极品一区二区三区四区| 精品熟女少妇av免费看| 97在线视频观看| 久久久久免费精品人妻一区二区| 91在线精品国自产拍蜜月| 波多野结衣巨乳人妻| 日本色播在线视频| 欧洲精品卡2卡3卡4卡5卡区| 2021天堂中文幕一二区在线观| 国产精华一区二区三区| 麻豆一二三区av精品|