Deposition Velocity onto an Inverted Flat Surface in a Laminar Parallel Flow

被引:17
作者
Choi, Woo-Joo [1 ]
Yook, Se-Jin [1 ]
机构
[1] Hanyang Univ, Sch Mech Engn, Seoul 133791, South Korea
关键词
MODELING PARTICLE DEPOSITION; SEMICONDUCTOR WAFERS; PROTECTION SCHEMES; VENTILATION DUCT; TURBULENT-FLOW; AEROSOL FLOW; EUVL MASKS; LITHOGRAPHY; CONTAMINATION; SMOOTH;
D O I
10.1080/02786826.2010.501833
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Wafers and photomasks in the cleanroom are exposed to airflows not only vertical but also parallel to the surfaces. In this study, Gaussian Diffusion Sphere Model (GDSM) was adjusted to predict deposition velocity onto an inverted flat surface in a laminar parallel flow by considering Brownian diffusion and gravitational settling of aerosol particles. The GDSM was validated by comparing with the simulation of solving flow and aerosol-concentration fields for an inverted flat surface and also with the mass transfer correlation for a finite flat surface of circular or rectangular areal shape. The GDSM was proven to correctly predict the deposition velocities onto the inverted flat surfaces, by taking one hour with a 2.66-GHz-CPU personal computer to obtain deposition velocities for 20 particle sizes, which is a very much shorter time compared with the time for simulating the flow and aerosol-concentration fields. Deposition velocities onto the inverted 45-cm-wafer and 15.2-cm-photomask in parallel airflows were predicted using the GDSM, for the particle size ranging from 0.003 to 1.5 mu m and the airflow velocity varying from 5 to 500 cm/s. The deposition velocity decreased with increasing particle size, with a steep declination especially for particles larger than approximately 0.1 mu m. From the qualitative comparison of the deposition velocities onto the inverted square flat surfaces, representing the photomasks with different orientations in the parallel flow, it was suggested to transport the EUVL photomask with its side facing the airflow rather than with its corner confronting the airflow, in order to minimize particulate contamination.
引用
收藏
页码:919 / 929
页数:11
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共 46 条
[31]   A new mechanistic perspective on the prediction of deposition velocity in turbulent liquid-solids pipe flow [J].
Paolinelli, Luciano D. ;
Singla, Kushal ;
Canto, Christian ;
Alabbas, Faisal M. ;
Alsaif, Omar .
CHEMICAL ENGINEERING SCIENCE, 2025, 313
[32]   Effect of aspect ratio and inclined angle on the fluid flow and heat transfer past two parallel flat plates [J].
Tao, Junyu ;
Wang, Dongrui ;
Lin, Zhe ;
Zhu, Zuchao .
NUMERICAL HEAT TRANSFER PART A-APPLICATIONS, 2025, 86 (06) :1481-1497
[33]   Investigation of particle deposition efficiency enhancement in turbulent duct air flow by surface ribs with hybrid-size ribs [J].
Lu, Hao ;
Lu, Lin .
INDOOR AND BUILT ENVIRONMENT, 2017, 26 (05) :608-620
[34]   Parallel Velocity Extension for Level-Set-Based Material Flow on Hierarchical Meshes in Process TCAD [J].
Quell, Michael ;
Suvorov, Vasily ;
Hoessinger, Andreas ;
Weinbub, Josef .
IEEE TRANSACTIONS ON ELECTRON DEVICES, 2021, 68 (11) :5430-5437
[35]   Large Eddy Simulation of Free Surface Flow Over Square Bars in Laminar, Transitional and Turbulent flows [J].
Jalalabadi, Razieh ;
Stoesser, Thorsten .
PROCEEDINGS OF THE 39TH IAHR WORLD CONGRESS, 2022, :3632-3641
[36]   Flat metallic surface gratings with sub-10 nm gaps controlled by atomic-layer deposition [J].
Chen, Borui ;
Ji, Dengxin ;
Cheney, Alec ;
Zhang, Nan ;
Song, Haomin ;
Zeng, Xie ;
Thomay, Tim ;
Gan, Qiaoqiang ;
Cartwright, Alexander .
NANOTECHNOLOGY, 2016, 27 (37)
[37]   Investigation of Bio-inspired Sawtooth Riblets for Boundary Layer Flow Over a Flat Surface [J].
Sharma, Vikas ;
Dutta, Sushanta .
IRANIAN JOURNAL OF SCIENCE AND TECHNOLOGY-TRANSACTIONS OF MECHANICAL ENGINEERING, 2023, 47 (04) :1417-1435
[38]   Effect of Upstream Shear on Flow and Heat (Mass) Transfer Over a Flat Plate-Part I: Velocity Measurements [J].
Ghosh, K. ;
Goldstein, R. J. .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2010, 132 (10) :1-7
[39]   Application of a modified Eulerian model to study the particle deposition on a vertical surface in turbulent flow [J].
Abdolzadeh, M. ;
Mehrabian, M. A. ;
Akbarinia, A. .
POWDER TECHNOLOGY, 2011, 214 (01) :83-88
[40]   Numerical study on surface corrosion deposition of fuel elements and its influence on flow heat transfer [J].
Hou, Yandong ;
Chen, Tianbo ;
Li, Weichao ;
Gao, Chuntian ;
Chen, Bowen ;
Zhang, Chao ;
Xiang, Yan .
ANNALS OF NUCLEAR ENERGY, 2024, 201