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Titlebook: Emerging Topics in Heat and Mass Transfer in Porous Media; From Bioengineering Peter Vadász Book 2008 Springer Science+Business Media B.V.

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发表于 2025-3-21 16:13:25 | 显示全部楼层 |阅读模式
书目名称Emerging Topics in Heat and Mass Transfer in Porous Media
副标题From Bioengineering
编辑Peter Vadász
视频video
概述First major reference work on this topic.First major reference to cover theory and applications from bioengineering and microelectronics to nanotechnology.Articles by top experts in the field.Multidis
丛书名称Theory and Applications of Transport in Porous Media
图书封面Titlebook: Emerging Topics in Heat and Mass Transfer in Porous Media; From Bioengineering  Peter Vadász Book 2008 Springer Science+Business Media B.V.
描述This book is a synthesis of emerging topics in heat and mass transfer in porous media. It brings together some of the world leaders in research on transport p- nomena in porous media to present the state of the art of its theory as well as the applicationofthetheoryinemerging?eldssuchasbioengineering,microelectronics and nanotechnology. The well renowned scientists presenting their ?ndings in the review chapters presented are not only among the best world leaders in their ?eld, they also capture the research that is undertaken in all the parts of the globe, from the Far East (Hong-Kong), the Southern Hemisphere (New Zealand and South Africa) to Europe and America. The book is separated into two parts. The ?rst presents the state of the art of the theory of heat and mass transfer in porous media and can be used in both the traditional (underground ?ow, ?ltering and reservoir engineering) as well as in the more recent emerging applications. The second part deals with emerging topics and applications of the theory to bioengineering, microelectronics, and nanotechnology. Traditionally,thetopicoftransportphenomenainporousmediawasalmostexc- sivelyreservedtothe?eldofunderground?ow(water,o
出版日期Book 2008
关键词Bioengineering and bioconvection in porous media; Metal and Ceramic Foams; Microelectronics and passiv
版次1
doihttps://doi.org/10.1007/978-1-4020-8178-1
isbn_softcover978-90-481-7794-3
isbn_ebook978-1-4020-8178-1Series ISSN 0924-6118 Series E-ISSN 2213-6940
issn_series 0924-6118
copyrightSpringer Science+Business Media B.V. 2008
The information of publication is updating

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发表于 2025-3-21 22:09:40 | 显示全部楼层
Analytical Transition to Weak Turbulence and Chaotic Natural Convection in Porous Media, on how can one obtain the transition point analytically is emphasized and topics such as the hysteresis phenomenon linked to this transition is discussed. Fractal types of results obtained by comparing solutions at different accuracy levels are finally presented to conclude the chapter.
发表于 2025-3-22 04:20:51 | 显示全部楼层
Natural Convection in Gravity-Modulated Porous Layers, is presented for both synchronous and subharmonic solutions and the exact point for the transition from synchronous to subharmonic solutions is computed. It is demonstrated that increasing the excitation frequency rapidly stabilizes the convection up to the transition point from synchronous to subh
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Macromolecular Transport in Arterial Walls: Current and Future Directions,A robust four-layer model (endothelium, intima, internal elastic lamina and media) based on porous media concept and accounting for selective permeability of each porous layer to certain solutes is presented to describe the transport of macromolecules in the arterial wall coupled with the transport
发表于 2025-3-22 13:04:55 | 显示全部楼层
Flow and Heat Transfer in Biological Tissues: Application of Porous Media Theory,verse fields such as biotechnology, living structures, chemical and environmental engineering, etc. Particularly, significant advances have been achieved in applying porous media theory in modeling biomedical applications. Examples include computational biology, tissue replacement production, drug d
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Euler Trap Doors and Public-Key Encryptionin the lumen. The variances in the current models are analyzed and discussed. Future direction in developing a rigorous mathematical model for transport in arterial walls using porous media theory and fluid-structure interaction approach is outlined in this study.
发表于 2025-3-23 06:27:13 | 显示全部楼层
https://doi.org/10.1007/978-3-662-04053-9esults show that increasing the excitation frequency rapidly decays the convection amplitude. An analogy between the inverted pendulum with an oscillating pivot point and the gravity modulated porous layer is developed and it is shown that the convection cell wavelength is related to the length of the pendulum.
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