在线免费看污视频I亚洲欧美另类在线I狠狠干天天I99ri在线观看I九一avI女生毛片Ixxxrtxxx性国产Ia√在线视频I欧美日一本Ixxxx大片I丝袜五月天I国产肥熟I青青青在线视频I天堂网在线中文I亚洲综合成人avI日韩欧美中文I有码一区I亚洲电影avI欧美日韩乱国产I国产特黄

News & Events


    
HomeNews & Events News
Return

技術分享 | 仿真和建模在高功率半導體激光器封裝中的關鍵作用

Date Posted:2020-11-16

Originally published on Laser Focus World?

炬光科技多年來一直注重基礎研究,每年在專業期刊、雜志、學術會議等平臺發表各類技術文章,并曾出版世界第一本高功率半導體激光器封裝專著。近日,《Laser Focus World》發表了炬光科技首席科學家王警衛等撰寫的技術文章《Simulation and modeling play key roles in high-power diode-laser packaging》,文章針對激光技術發展對封裝技術提出的新挑戰,介紹了仿真和建模在高功率半導體激光器封裝中發揮的關鍵作用。

文章概要如下:

高功率半導體激光器已廣泛應用于很多行業。隨著激光技術的發展,其輸出光功率越來越高,激光巴條的腔長也相應地由1mm增加到了4mm。因此,巴條的廢熱能量密度從200W/cm2急劇增加到>600W/cm2。為獲得低的“SMILE”,如<1μm,或防止巴條在貼片鍵合后出現裂紋,需要采用腔長1.5mm~4mm的巴條,并優化封裝結構,最大限度地降低熱應力。這兩者都給現有的封裝技術帶來了挑戰,從而有必要使用有限元模型(FEM)來計算和模擬高功率半導體激光器的熱行為和熱應力管理。

我們研究了在連續波(CW)或準連續波(QCW)模式下,不同封裝結構有限元模擬技術的應用,所涉及的計算和模擬仿真都是基于炬光科技的產品,包括單巴傳導冷卻/微通道系列、傳導冷卻G-stack、水冷疊陣和面陣。我們還提出了在制造高功率半導體激光器之前利用FEM工具進行熱與應力模擬的指導方針。此類模擬仿真結果可有效降低封裝結構或激光系統出現的潛在熱與應力風險,并有助于降低試驗成本、優化流程,最終滿足不同客戶的需求。

Simulation and modeling play key roles in high-power diode-laser packaging

Finite-element method (FEM) simulations reduce potential thermal and stress risks when designing packaging structures for high-power laser-diodes.

JINGWEI WANG, TUANWEI FU, and XUEJIE LIANG

FOCUSLIGHT TECHNOLOGIES INC.

High-power diode-lasers (HPDLs) are now widely used for industrial (materials processing procedures such as welding, cutting, surface treatment, etc.), scientific, and medical applications. The need to design advanced high-power laser packages, to understand the physics of the behaviors of these packages and its interfaces, and to prevent possible functional (optical) and mechanical (physical) failures are of obvious practical importance. As laser technologies develop, the output power of HPDLs has grown, along with the cavity length of diode laser bars increasing from 1 to 4 mm. As a result, the waste-heat energy density of a single diode laser bar has increased dramatically from 200 W/cm2 to more than 600 W/cm2.

Many failures in HPDLs—for example, bonding interfaces—are directly related to the packaging.1 Thermal behaviors of the bonding interfaces and thermal stresses between the bonding interfaces are the major factors affecting the functional and structural performance of HPDLs. If the accumulated heat cannot readily escape, the elevated temperature and thermally induced stress at the location of the p-n junction will not only adversely affect the output power, slope efficiency, threshold current, and device lifetime, but could also cause spectral broadening and wavelength shifts.2 The emitting wavelengths will shift if the junction temperature of the emitters across the array is not well controlled and/or not uniform. The above-mentioned scenarios make the thermal management of high-power laser devices a major challenge in designing, manufacturing, and utilizing HPDLs.

Simulation and modeling of thermal stress in packaging of HPDLs

微信圖片_20201225220659.png

FIGURE 1. An AL01 1064 nm laser module for lidar. (Courtesy of Focuslight)

Automotive lidar has become a very popular application for lasers in recent years. Focuslight Technologies (X’ian, China) offers various products for automotive lidar applications. Focuslight’s AL01 laser module (see Fig. 1) is designed for flash lidar applications. The module is a diode-pumped solid-state (DPSS) laser that uses Q-switch technology to enable pulse energies of up to 1.5 mJ per 3 ns pulse at 1064 nm wavelength. To ensure its stability at automotive-grade temperatures (-40° to 80°C), the module was designed and manufactured with advanced bonding and assembly processes; some special materials have been used as well.

微信圖片_20201225220703.png

FIGURE 2. Structure and stress: mismatched CTE (a) and matched CTE (b).

During the design process, the coefficient of thermal expansion (CTE)-matched principle was taken into account as a crucial factor. CTE mismatch between the laser bar and the thermoelectric cooler (TEC) could bring large thermal stress to the packaging process, cause a lot of cracks at the corner of the TEC, and potentially lead to device failure. The optimized selection of materials and dimensions has been achieved through repeated calculation and simulation modeling (see Fig. 2). By doing this, the final packaging structure has prevented cracks from forming at the corner of the TEC. Digital simulations helped the developer to find the right solution rapidly. Mass production and stable performance of AL01 modules have proved that the package design is optimal.

Industrial applications. Kilowatt- or even hundred-kilowatt-level HPDL stacks are widely used for scientific and industrial applications (such as annealing, bonding, surface treatment, and others). A good example is Focuslight’s 6 kW DLight Series product. Applications such as solid-state laser pumping and materials processing require good beam quality from the diode-laser stack. The near-field nonlinearity along the laser bar (also known as “SMILE”), or the slight bend of the horizontal line connecting the emitters in the bar, is the main obstacle to achieving good beam quality. Minimizing the SMILE of HPDLs is key to achieving high brightness along the fast axis.

Thermal stress causes mechanical strain in the diode and changes the band structure, thus changing the characteristics of the diode laser with respect to threshold, wavelength, polarization, and SMILE. In addition, induced thermal stress in the laser device may cause damage to the laser chips/bars and consequently shorten lifetime of the device.

SMILE and stress controlling.3 The thermal stress affecting the performance and reliability of HPDLs is mainly caused by the CTE mismatch between the mounting substrate and laser chip. For HPDL packaging, packaging materials with high thermal conductivities and CTEs that match those of the semiconductor materials—such as gallium arsenide (GaAs), indium phosphide (InP), and gallium nitride (GaN)—are desired. Thermal-stress management is one of the most critical challenges to packaging of HPDLs.

The bonding of diode laser chips onto their heat sinks is the most important step in the packaging process. Mechanical stress generated in the bonding process has typically always caused chip deformation (SMILE) as the device cooled down from the solder melting point to room temperature. As a result, how to decrease the mechanical stress in the packaging process becomes the key to minimizing the SMILE value.

微信圖片_20201225220707.png

FIGURE 3. Two different laser-diode packaging structures: HMCC (a) and DMCC (b).

微信圖片_20201225220711.png

FIGURE 4. Simulation and experiment results: simulated stress of HMCC (a); simulated stress of DMCC (b); and experimental SMILE value with increasing CuW thickness (c).

For digital-simulation modeling of this process, different packaging structures and materials were selected (see Fig. 3); the simulated results are shown in Figure 4a and 4b. A continuous-wave (CW) 200 W diode-laser bar with a thermal density of greater than 500 W/cm2 can be bonded on a microchannel cooler (MCC) heat sink. Thermal-dissipation capability should be considered in the simulation, as well as how to minimize the “SMILE” value. The finite-element model (FEM) simulation results show that the compression stress on the laser bar decreases with the increase of copper-tungsten (CuW) submount thickness, as the CuW submount works as a buffer layer and can thus absorb stress. However, the laser bar out-of-plane strain (SMILE value) is approximately zero when the diode-laser array is directly bonded onto the heat sink without a submount; the SMILE value is maximized when the thickness of the CuW submount is increased to 44% of the heat sink. Beyond this point, the SMILE value decreases with increasing CuW submount thickness. As seen in Figure 4c, the experimental results are well aligned with the simulation results.2 Therefore, the thickness of the submount affects the near-field nonlinearity of a laser bar significantly.

Simulation and modeling of heat in packaging of HPDLs

Scientific applications. Besides the SMILE, spectral width is also one of the key parameters of a diode-laser vertical stack. Improving the stack’s spectral performance is very important for increasing production yield, reducing costs, and enhancing competitiveness. For some scientific applications, narrow spectral width is especially important.

Thermal design of HPDLs is critical, as a rise of junction temperature at the location of the p-n junction will adversely affect the output power, slope efficiency, threshold current, and lifetime of the device if the accumulated heat cannot be easily dissipated. Excessive heat can also cause spectral broadening and wavelength shift. Thermal management of HPDL devices has become a major challenge in laser design, manufacturing, and application.

微信圖片_20201225220715.png

FIGURE 5. Design of parallel format for liquid cooling.

In the design process for a vertical-stack laser, one of the main problems is the thermal crosstalk, which seriously affects the cooling efficiency. To avoid thermal crosstalk, a parallel liquid-cooling format is designed to overcome heat unevenness between the bars, effectively improving the thermal dissipation. Figure 5 shows the design of the parallel format of liquid cooling.

微信圖片_20201225220721.png

FIGURE 6. Thermal distribution of a MCC-based sack in CW mode.

In the following case, the thermal design and structure optimization of a vertical-stack laser with more than 20 bars was simulated. The simulation results in Figure 6 show that most of the heat is dissipated via the cooling-flow liquid. There is no significant accumulation of heat and the temperature gradient of each bar is relatively uniform. The maximum temperature on the stack is 60.13°C.

Based on the thermal simulation, the structure is optimized in many aspects, such as cooling-water flow rate, microchannel cooler design, and water distribution. The heat is taken away as quickly as possible by the cooling water, ensuring that no thermal accumulation exists between the bars.

Although the laser bars in vertical stacks are simultaneously conduction cooled and microchannel-liquid cooled, temperature nonuniformity remains among the bars due to thermal crosstalk and/or liquid flow nonuniformity. This nonuniformity can alter the wavelength of the bars and broaden the spectrum of the stacks.

微信圖片_20201225220725.png

FIGURE 7. Relationship between water flow and temperature.

To achieve a very narrow spectral width, in our work, advanced packaging processes have been used to maintain uniformity of temperature distribution. First, total temperature distribution is simulated and calculated (see Fig. 7). Next, the wavelength of each bar is selected to match the temperature distribution based on the simulation results. The third and last step is to use optimized packaging technology to achieve the same output wavelength. Using this method, the spectrum broadening of a vertical stack can be effectively controlled.

Simulation and modeling of heat and stress in optical collimation microlenses

Optical collimation microlenses, including fast-axis collimators (FACs), slow-axis collimator (SAC) arrays, homogenizers, diffusers, collimators, beam transformation systems (BTS), and so on, are widely used in DPSS lasers, materials processing, 3D sensing, immersive photolithography, flexible display, lidar, and other application fields. These microlenses are commonly fixed on mechanical frames by adhesives. Controlling the stress on lenses and reduce the risk of cracks is therefore of great importance.

微信圖片_20201225220938.png

FIGURE 8. Stress optimization on adhesion layer.

A typical example is shown in Figure 8. A disastrous crack is found on a diffuser, although the adhesion is good. Simulation was carried out to look for causes of such cracks; the simulation results show that a higher stress, up to 61.58 MPa, occurred at one corner of the diffuser, which corresponds to the actual crack. After the adhesion in the FEA model was precisely controlled and the program run again, the stress on the diffuser decreased to 32.96 MPa, as shown in the figure. The result shows the benefit of FEM in improving adhesion processes.

Easy-to-use FEM methods have been presented for evaluating the thermal performance of HPDLs and the stress distribution in HPDLs. These methods make it much easier to understand the physics of the addressed thermal phenomena and predict their thermal behavior and performance. Digital-simulation modeling should be conducted before the manufacturing of HPDLs, helping to reduce R&D costs and quickly guiding engineers to the correct approach if thermal and stress distributions in a package are taken into account. The methodology described here for the application of diode-laser packages can also be used beyond this area of engineering for the analysis and design of packaging structures.

ACKNOWLEDGEMENT

DLight is a registered trademark of Focuslight Technologies.

REFERENCES

1. X. Liu et al., J. Appl. Phys., 100, 1, 013104 (2006).

2. H. Zhang et al., “High power 250 W CW conductively cooled diode laser arrays with low SMILE,” Proc. SPIE, 11261, 112610C (Feb. 2020).

3. C. Zah et al., “Low SMILE vertically stacked laser bars enable kW modular line lasers,” High Power Diode Lasers and System Conf. (Coventry, England), 9-10 (2017); doi:10.1109/hpd.2017.8261079.

Jingwei Wang is Chief Scientist, Tuanwei Fu is CAE Engineer, and Xuejie Liang is Manager of the Design and Simulation Technology Department, all at Focuslight Technologies, Xi’an, China.

E-mails: wangjw@focuslight.com, futw@focuslight.com, and liangxj@focuslight.com; www.szhanpeng.cn.

關于炬光科技:

西安炬光科技股份有限公司成立于2007年,是一家全球領先的專業從事高功率半導體激光器、激光微光學元器件、光子技術應用解決方案的研發、生產及銷售的國家級高新技術企業。公司圍繞光子技術及應用領域,致力于為全球客戶提供高功率半導體激光器與激光微光學核心元器件及光子技術應用解決方案,形成了全面、完善的研發、生產及銷售服務體系。

Prev:Fairy series non-invasive body sculpting LD module FR06 Next: 905nm Laser Transmitter for Beam Steering LiDAR System
Privacy Preference Center
Cookies and other similar technologies ("cookies") are very important in order for the site to function properly and provide a seamless and customized experience for visitors. Zoom supports your use of our site through cookies. We also allow you to customize the way you use our website through cookies, provide you with enhanced functions, and continuously improve the performance of our website. If you have enabled the following targeted cookies, we may allow third-party advertisers to use the cookies they set on our site to display advertising content related to you on our website or products according to your account type or login status< br> You can accept or reject all cookies except "absolutely necessary cookies", or customize the cookie settings below. You can change your cookie settings at any time. Some "absolutely necessary cookies" may transfer personal data to the United States. To learn more about how Zoom handles personal data, please visit ourPrivacy Statement
After the button labeled "Orientation" below is switched off, California residents can exercise the right to "choose not to sell personal information".
Accept Cookie
Manage Permission Preferences
  • +Target Location
    Our advertising partners can set these cookies through our site. These cookies can be used by advertising partners to track your use of our website according to their own policies, and can combine the corresponding information with other information, and then display relevant advertisements to you on our site and other sites. If you do not allow the use of these cookies, you will not see personalized ads on the Zoom website or products.
  • +Function
    These cookie support websites provide enhanced and customized features. Cookies may be set by us or by third-party providers who add services to our web pages. If you do not allow these cookies, some or all of these services may not work properly.
  • +Performance
    These cookies enable us to calculate traffic and traffic sources so that we can evaluate and improve the performance of our website. These cookies can help us understand which pages are the most popular and which pages are the least popular, and understand how visitors browse the website. If you do not allow these cookies, we will not know when you have visited our website, nor can we monitor website performance.
  • +Absolutely Necessary

    Always Active

    These cookies are absolutely necessary for the operation of the website and cannot be closed in our system. Generally, these cookies will only be set when you make a near service request behavior (for example, setting your privacy preferences, logging in, or filling out a form). You can set your browser to block or remind you of these cookies, but some parts of the website may not work.
Confirm My Choice
主站蜘蛛池模板: 激情网第四色 | 中文字幕视频免费观看 | 九九免费观看全部免费视频 | www黄色com| 久久久精品国产免费观看一区二区 | 欧美精品黑人性xxxx | 狠狠狠狠干 | 99久热在线精品视频成人一区 | 久久久www免费电影网 | 欧美日本在线视频 | 91成人网在线播放 | 国产视频一区在线播放 | 91av中文| 国产精品去看片 | 91视频一8mav | 91刺激视频 | 精品国产一区二区三区四区vr | 亚洲国产精品久久久久婷婷884 | 精品免费国产一区二区三区四区 | 久久五月精品 | 欧美一二三区在线播放 | 在线观看日韩一区 | 久久精品一区二区三 | 国产精品爽爽久久久久久蜜臀 | 国产尤物在线视频 | 麻豆一精品传二传媒短视频 | 在线电影a | 麻花天美星空视频 | 欧美日韩中文字幕视频 | 国产一级在线看 | 91麻豆精品国产91久久久更新时间 | 国产91精品看黄网站在线观看动漫 | 97国产小视频 | 久99久精品视频免费观看 | 婷婷在线资源 | aa一级片| 99热这里只有精品在线观看 | 久久综合国产伦精品免费 | 99视频偷窥在线精品国自产拍 | av观看免费在线 | 中文在线资源 | 国产精品一区二区在线免费观看 | 99精品免费| 精品视频久久久 | 免费视频网 | 狠狠色丁香婷婷综合 | 久久久免费精品 | 国产美女视频免费 | 在线免费观看亚洲视频 | 欧美精品在线一区二区 | 免费高清av在线看 | 青草视频在线 | 久久国产高清视频 | 少妇bbb搡bbbb搡bbbb′ | 操操操日日日干干干 | 国产精品原创视频 | 99在线精品视频 | 天天干天天操天天操 | www.亚洲精品在线 | 国产aa免费视频 | 91大神精品视频在线观看 | 国产精品破处视频 | 国产精品破处视频 | 极品久久久久 | av高清在线观看 | 色综合夜色一区 | 日日夜夜狠狠 | 久久九九免费视频 | 亚洲精品毛片一级91精品 | 最近高清中文在线字幕在线观看 | 国产成人亚洲在线电影 | 国产成人免费观看久久久 | 天天干,天天射,天天操,天天摸 | 午夜少妇av| 欧美日韩国产网站 | 99视频精品视频高清免费 | 日韩精品久久久 | 国产视频资源 | 久久av影院 | 97在线观看免费观看高清 | 日韩在线视频免费播放 | 成片人卡1卡2卡3手机免费看 | 69久久久 | 一级片观看 | 中文字幕在线观看三区 | 九九电影在线 | 粉嫩一区二区三区粉嫩91 | 天天干 天天摸 天天操 | 日本中文字幕在线电影 | 韩国av一区二区三区 | 成人精品影视 | 人人射人人爽 | 国产一级久久久 | 高清av中文字幕 | 五月激情站 | 香蕉在线播放 | 久久综合狠狠综合 | 美女视频黄免费 | 在线午夜电影神马影院 | 国产日韩高清在线 | 欧美午夜精品久久久久 | 欧美日韩在线视频一区 | 久久99偷拍视频 | 91传媒免费观看 | av手机在线播放 | 欧美亚洲免费在线一区 | 免费看三片 | 亚洲国产中文字幕在线观看 | 麻豆视屏 | 亚洲成av人影片在线观看 | 在线国产中文 | 色综合天天爱 | www.久久色 | 808电影免费观看三年 | 日韩欧美在线免费观看 | 欧美日韩xxxxx| 国产黄色免费观看 | 国产免费成人av | 国产在线超碰 | 91视频黄色 | 日韩中文字幕第一页 | 国产一级片直播 | 手机在线欧美 | 98久久| 99国产一区二区三精品乱码 | 黄网站免费看 | 中文字幕中文字幕在线中文字幕三区 | 国产美女精品人人做人人爽 | 99视频精品免费观看, | av网站在线观看免费 | 日日狠狠 | 激情综合网五月激情 | 国产一区视频在线观看免费 | 免费观看完整版无人区 | 91久久偷偷做嫩草影院 | 正在播放一区 | 免费h精品视频在线播放 | 1000部18岁以下禁看视频 | 一区三区在线欧 | 久久99视频免费观看 | 在线日本看片免费人成视久网 | 欧美一二三视频 | 国产高清不卡在线 | 黄色中文字幕 | 国产成人精品一区二区三区免费 | av免费在线网站 | av在线播放一区二区三区 | 国产一区二区三精品久久久无广告 | 毛片美女网站 | 在线观看爱爱视频 | 一区二区三区在线观看中文字幕 | 欧美亚洲国产日韩 | 99在线视频播放 | 久热超碰 | 亚洲年轻女教师毛茸茸 | 日日躁夜夜躁xxxxaaaa | 欧美成年人在线观看 | 久久久资源网 | 精品国内 | 狠狠狠狠狠狠天天爱 | 亚洲国产精品va在线看黑人 | 97精品国产 | 日韩中文字幕免费视频 | 国产精美视频 | 亚洲成人免费 | 激情欧美一区二区三区 | 美女黄视频免费看 | 日韩电影在线一区 | 久久高清精品 | 亚洲成熟女人毛片在线 | 911精品视频 | 久久国产成人午夜av影院潦草 | 国产成人精品久久久 | 色人久久| 亚洲欧美日韩精品一区二区 | 久久午夜国产精品 | 中文国产成人精品久久一 | 国产精品国产自产拍高清av | 在线免费试看 | 六月丁香激情综合色啪小说 | 国产精品视频专区 | 免费看黄在线观看 | 亚洲一区不卡视频 | 在线观看av大片 | 亚洲欧洲精品一区二区精品久久久 | 日韩在线三区 | 国产精品网在线观看 | 91.dizhi永久地址最新 | 香蕉视频在线网站 | 综合黄色网 | 久久99国产精品免费 | 91在线视频免费观看 | 欧美天天综合网 | 亚洲精品综合欧美二区变态 | 日韩精品久久久久 | 91成人网页版 | 日韩在线国产精品 | 韩日精品在线 | 午夜少妇av| 欧美人交a欧美精品 | 最新一区二区三区 | 国产不卡av在线 | 亚洲国产日韩精品 | 亚洲日日射 | 中文字幕在线有码 | 久久艹国产视频 | 超碰97在线人人 | 91完整版观看 | 日本中文乱码卡一卡二新区 | 精品国产免费一区二区三区五区 | 亚洲砖区区免费 | 亚洲精品乱码久久久久久久久久 | 国产在线不卡一区 | 日b视频在线观看网址 | 欧美一级日韩免费不卡 | 玖玖玖精品 | 四虎最新域名 | 91亚洲狠狠婷婷综合久久久 | 五月天国产精品 | 久久99国产精品免费 | 久久新视频| 高清国产一区 | 在线播放国产一区二区三区 | 色干综合 | 色婷婷综合久久久久中文字幕1 | 成人在线观看免费视频 | 亚洲黄色av网址 | 天天爽人人爽夜夜爽 | 97在线免费视频 | 亚洲最大的av网站 | 成人一区在线观看 | 国产一区二区高清 | 91九色porny在线 | 99精品国产福利在线观看免费 | 色在线国产 | 91麻豆精品国产91久久久无限制版 | 日本爱爱免费视频 | 中文字幕在线专区 | 国产成人精品av在线 | 亚洲精品国产拍在线 | 午夜精品视频一区二区三区在线看 | 97电影网手机版 | 国产精品第一页在线 | 911国产 | av久久在线 | 亚洲视频高清 | 国产精品久久久久久久久久了 | 97人人精品 | 国产精品爽爽久久久久久蜜臀 | 三级动态视频在线观看 | 精品一区精品二区 | 97精品电影院 | 96久久精品 | 国产精品 国产精品 | 夜夜夜夜操 | 欧美日韩在线视频免费 | 婷婷六月色 | 丁香花在线视频观看免费 | 久久综合狠狠综合久久综合88 | 一级做a爱片性色毛片www | 精品一区二区在线免费观看 | 91片黄在线观 | 久99久精品视频免费观看 | 亚州精品天堂中文字幕 | 91在线观看欧美日韩 | 亚洲最大成人免费网站 | 成人免费视频观看 | 黄色av免费看 | av福利在线播放 | 五月综合色婷婷 | 色噜噜狠狠色综合中国 | 麻豆91在线观看 | 午夜精品久久久久久久爽 | 97精品伊人 | 欧美性生交大片免网 | 国产婷婷精品av在线 | 欧美另类v | 国产午夜三级一区二区三桃花影视 | 亚洲专区在线 | 久久人91精品久久久久久不卡 | 中文字幕av在线播放 | 国产97色在线 | 国内精品久久久久影院男同志 | 综合婷婷 | 亚洲日韩精品欧美一区二区 | 中文字幕日韩国产 | 亚洲国产精品视频 | 一二三精品视频 | 亚洲精品成人在线 | 国产精品久久久影视 | 在线观看黄网 | 国产高清不卡一区二区三区 | 成人97视频一区二区 | 久久久久久久久电影 | 久久无码av一区二区三区电影网 | 日韩欧美在线免费观看 | 天天做天天爱天天爽综合网 | 日韩理论电影在线观看 | 亚州国产视频 | 丰满少妇一级片 | 99久久精品国产欧美主题曲 | 久久特级毛片 | 日韩理论在线视频 | 欧美伦理一区二区 | 色欲综合视频天天天 | 五月丁婷婷 | 天天操福利视频 | 午夜黄色 | 国产精品一区二区在线观看免费 | 免费高清av在线看 | 国产精品18久久久久久久网站 | 在线观看国产一区二区 | 丁香视频在线观看 | 水蜜桃亚洲一二三四在线 | 成人在线免费视频观看 | 国产精品九九九九九 | 久草视频国产 | 国产不卡高清 | 国产真实精品久久二三区 | 中文字幕123区 | 国产精品久久久一区二区 | 国产在线观看91 | 91欧美视频网站 | 亚洲久久视频 | 激情视频免费在线观看 | 免费视频 三区 | 欧美日韩高清在线 | 国产一区视频免费在线观看 | 91在线网址 | 久久久午夜视频 | 五月婷婷丁香色 | 日本精品一区二区三区在线观看 | 久草久视频 | 国产日韩在线视频 | 亚洲无吗av | 亚洲精品久久久久中文字幕二区 | 黄色毛片网站在线观看 | 五月综合激情 | 超碰在线9 | 久久国产精品免费视频 | 国精产品999国精产品视频 | 亚洲欧美视频在线 | 中文字幕色综合网 | 久青草国产在线 | 狠狠干夜夜 | 黄色av三级在线 | 狠狠干婷婷 | 午夜国产在线观看 | 中文字幕日韩av | 欧美最猛性xxxxx亚洲精品 | 久久黄色精品视频 | 免费裸体视频网 | 国产精品6 | avlulu久久精品| 国产精品久久久久久久久久久久冷 | 麻豆视频在线观看免费 | 韩国av一区二区 | 97成人资源站 | 日韩成人邪恶影片 | 久久综合五月婷婷 | 在线精品一区二区 | 91精品国产高清自在线观看 | 国内精品久久久久 | 江苏妇搡bbbb搡bbbb | 中文字幕视频在线播放 | 亚洲第一av在线播放 | 97国产| 久久y| 97在线观看免费高清完整版在线观看 | 免费精品视频在线 | 国产视频一区在线 | 婷婷激情站| 欧美日韩性 | 国产字幕在线看 | 精品一区二区6 | 日韩免费一区 | 最新久久免费视频 | 四虎视频 | 国产涩涩网站 | 视频一区二区视频 | 国产一区福利 | 久久 国产一区 | 日本少妇视频 | 日本黄色片一区二区 | 夜夜夜夜操 | 91少妇精拍在线播放 | 国产精品久久久久久久久久久久午夜 | 成年人国产视频 | 中文字幕丰满人伦在线 | 久久男人中文字幕资源站 | 四虎欧美| 日本在线h | 亚洲国产视频网站 | 免费观看国产成人 | 日韩在线激情 | 精品国产99国产精品 | 中文字幕一区2区3区 | 国产精品久久久久三级 | 精品国产亚洲一区二区麻豆 | 人人射人人插 | 亚洲一区 影院 | 欧美一区免费观看 | 麻豆传媒视频在线 | 久久精品一区二区国产 | 久久精品香蕉视频 | 色婷婷狠狠干 | 欧美色久 | 成人av免费看 | 五月天丁香视频 | 91亚洲永久精品 | 国产精品久久久久aaaa | 韩日精品中文字幕 | 亚州视频在线 | 1000部国产精品成人观看 | 91亚洲精品久久久久图片蜜桃 | 99色网站 | 色五月激情五月 | 国产高清不卡一区二区三区 | 99视频免费观看 | 日韩午夜小视频 | 亚洲一区二区天堂 | 毛片永久免费 | 国产精品乱码久久久久 | 91精选在线 | 又爽又黄又刺激的视频 | 欧美极度另类 | 国产99久久精品一区二区300 | 国产 中文 日韩 欧美 | 五月天综合激情网 | 中文在线字幕免费观 | 在线最新av | 波多野结衣一区三区 | 国产成人福利在线观看 | 久久精品国产一区二区电影 | 中文视频在线播放 | 日韩专区在线观看 | 欧美一二三区在线播放 | 国产裸体视频网站 | 黄色亚洲免费 | 91人人爽人人爽人人精88v | 久久免费在线观看视频 | 亚洲欧美成人 | 午夜国产影院 | 天天色综合久久 | 欧美成人精品欧美一级乱黄 | 国产精品毛片久久久久久 | 国产99一区视频免费 | 久久高清国产视频 | 亚洲女同ⅹxx女同tv | 激情五月播播久久久精品 | 久草www | 91一区二区三区久久久久国产乱 | 久久电影国产免费久久电影 | 91av亚洲 | 国产在线小视频 | 免费久久久久久 | 2000xxx影视| 久久天天躁夜夜躁狠狠85麻豆 | 日韩欧美在线播放 | 精品国产一区二区三区四 | 国产成人精品一区二区三区网站观看 | 日韩不卡高清 | 中文字幕在线观看不卡 | 亚洲一区二区三区四区精品 | 色婷婷国产在线 | 亚洲成年人在线播放 | 免费的成人av | 久久99国产综合精品 | 四虎免费在线观看视频 | 99精品视频在线播放观看 | 日韩精品视频第一页 | 精品一区二区在线观看 | 高清免费av在线 | 99久久国产免费看 | 欧美坐爱视频 | 久久一二区| 日韩一级黄色片 | 日韩欧美电影网 | 夜夜躁天天躁很躁波 | 国产精品24小时在线观看 | 国产精品美女久久久久久久 | 日批视频国产 | 99视频精品视频高清免费 | 97天堂网 | 免费av在线网站 | 精品久久久免费视频 | 久久视频免费在线 | 色在线视频网 | 激情开心| 美女搞黄国产视频网站 | 久久精品一区二区三 | 成人av在线电影 | 国产黄色高清 | 91看片淫黄大片一级在线观看 | 四虎在线影视 | 久久久久久久久久久网 | av黄色大片| 中文字幕色婷婷在线视频 | 狠狠躁夜夜a产精品视频 | 久久久久久久18 |