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Titlebook: Drop Dynamics and Dropwise Condensation on Textured Surfaces; Sameer Khandekar,K. Muralidhar Book 2020 Springer Nature Switzerland AG 2020

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書(shū)目名稱(chēng)Drop Dynamics and Dropwise Condensation on Textured Surfaces
編輯Sameer Khandekar,K. Muralidhar
視頻videohttp://file.papertrans.cn/283/282959/282959.mp4
概述Fundamentals of equilibrium drop shapes, drop spreading, and coalescence are discussed.A dropwise condensation model capable of predicting the instantaneous drop size distribution over a textured subs
叢書(shū)名稱(chēng)Mechanical Engineering Series
圖書(shū)封面Titlebook: Drop Dynamics and Dropwise Condensation on Textured Surfaces;  Sameer Khandekar,K. Muralidhar Book 2020 Springer Nature Switzerland AG 2020
描述This book is an expanded form of the monograph, Dropwise Condensation on Inclined Textured Surfaces, Springer, 2013, published earlier by the authors, wherein a mathematical model for dropwise condensation of pure vapor over inclined textured surfaces was presented, followed by simulations and comparison with experiments. The model factored in several details of the overall quasi-cyclic process but approximated those at the scale of individual drops. In the last five years, drop level dynamics over hydrophobic surfaces have been extensively studied. These results can now be incorporated in the dropwise condensation model..Dropwise condensation is an efficient route to heat transfer and is often encountered in major power generation applications. Drops are also formed during condensation in distillation devices that work with diverse fluids ranging from water to liquid metals. Design of such equipment requires careful understanding of the condensation cycle, starting from the birth of nuclei, followed by molecular clusters, direct growth of droplets, their coalescence, all the way to instability and fall-off of condensed drops. The model described here considers these individual ste
出版日期Book 2020
關(guān)鍵詞Drop spreading and coalescence; Heat Transfer; Condensation; Surface science; Dropwise condensation; Comp
版次1
doihttps://doi.org/10.1007/978-3-030-48461-3
isbn_softcover978-3-030-48463-7
isbn_ebook978-3-030-48461-3Series ISSN 0941-5122 Series E-ISSN 2192-063X
issn_series 0941-5122
copyrightSpringer Nature Switzerland AG 2020
The information of publication is updating

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Sébastien Bornot,Joseph Sifakiser of drops to be tagged at a given time is the product of available nucleation sites and surface area. Numerical simulation with increasing surface area becomes computationally intensive. The simulator is developed using OpenMP and MPI architecture. The simulator can be used for a?larger surface of size, e.g., 50?mm?×?50?mm.
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https://doi.org/10.1007/978-3-642-59153-2i-equilibrium model. In contrast, the non-equilibrium model, based on the kinetic theory of gases postulates the appearance of a Knudsen layer at the air-water interface. The extent of jump in temperature across the Knudsen layer can significantly affect the evaporation rate. These two models are described at length in this chapter.
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Introduction to Evaporative Heat Transferi-equilibrium model. In contrast, the non-equilibrium model, based on the kinetic theory of gases postulates the appearance of a Knudsen layer at the air-water interface. The extent of jump in temperature across the Knudsen layer can significantly affect the evaporation rate. These two models are described at length in this chapter.
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Simulation in a Parallel Environmenter of drops to be tagged at a given time is the product of available nucleation sites and surface area. Numerical simulation with increasing surface area becomes computationally intensive. The simulator is developed using OpenMP and MPI architecture. The simulator can be used for a?larger surface of size, e.g., 50?mm?×?50?mm.
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