Advances in Heat Transfer fills the information gap between regularly scheduled journals and university-level textbooks by providing in-depth review articles over a broader scope than in traditional journals or texts.The articles, which serve as a broad review for experts in the field are also of great interest to non-specialists who need to keep up-to-date with the results of the latest research.This serial is essential reading for all mechanical, chemical, and industrial engineers working in the field of heat transfer, or in graduate schools or industry.Compiles the expert opinions of leaders in the industryFills the information gap between regularly scheduled journals and university-level textbooks by providing in-depth review articles over a broader scope than in traditional journals or textsEssential reading for all mechanical, chemical, and industrial engineers working in the field of heat transfer, or in graduate schools or industry
Recenzijos
"...provides in-depth expositions on fundamental and applied topics in heat transfer...Those interested in these select topics will find it very useful for learning about the latest developments in advanced heat transfer." --IEEE Electrical Insulation Magazine
Daugiau informacijos
This book conveys subject-encompassing overviews written by the most knowledgeable authorities, filling the information gap between regularly scheduled journals and university-level textbooks by providing in-depth review articles over a broader scope than in traditional journals or texts.
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ix | |
Preface |
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xi | |
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1 Modeling of Multiscale Heat Transfer Systems Using Volume Averaging Theory |
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1 | (166) |
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4 | (3) |
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2 Theoretical Fundamentals |
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7 | (78) |
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85 | (70) |
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155 | (12) |
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157 | (1) |
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157 | (10) |
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2 Nucleate Pool Boiling under Reduced Gravity Conditions---Role of Numerical Simulations |
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167 | (36) |
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169 | (8) |
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177 | (8) |
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3 Results of Bubble Dynamics |
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185 | (9) |
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4 Nucleate Boiling Heat Transfer |
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194 | (5) |
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199 | (4) |
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200 | (3) |
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3 Friction and Heat Transfer in Liquid and Gas Flows in Micro- and Nanochannels |
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203 | (106) |
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207 | (1) |
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2 Characteristic Lengths and Geometry |
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208 | (2) |
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3 Regular Polygonal Microchannel |
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210 | (2) |
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4 Elliptical Microchannels |
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212 | (4) |
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5 Rectangular Microchannels |
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216 | (4) |
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6 Rectangular Microchannels with Circular and Segment Ends |
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220 | (4) |
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7 Circular Segment Microchannels |
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224 | (1) |
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8 Circular Sector Microchannels |
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225 | (2) |
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227 | (2) |
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10 Right Triangular Microchannels |
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229 | (2) |
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11 Isosceles Triangular Microchannels |
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231 | (3) |
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12 Scalene Triangular Microchannels |
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234 | (7) |
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13 Isosceles Trapezoidal Microchannels |
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241 | (13) |
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14 Concentric Circular Annular Microchannels |
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254 | (3) |
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15 Central Regular Polygonal Cores in Circular Microducts |
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257 | (4) |
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16 Central Circular Core in Polygonal Microducts |
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261 | (4) |
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17 Rarefied Gas Flows in Circular and Noncircular Microchannels |
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265 | (37) |
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302 | (7) |
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303 | (1) |
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303 | (6) |
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4 A Personal View of 50 Years of Thermal Radiation Heat Transfer Research |
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309 | (32) |
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309 | (3) |
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312 | (18) |
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330 | (2) |
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332 | (9) |
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333 | (8) |
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5 Therapeutic Recruitment of Thermoregulation in Humans by Selective Thermal Stimulation along the Spine |
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341 | (56) |
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342 | (2) |
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2 Glabrous Skin Heat Transfer |
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344 | (5) |
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3 Glabrous Skin as a Physiological Compact Heat Exchanger |
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349 | (2) |
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4 Prior Studies of STS in Nonhuman Mammalian and Avian Species |
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351 | (7) |
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358 | (19) |
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6 STS Devices to Regulate Human Body Core Temperature Effectively |
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377 | (5) |
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7 Computer Simulation of the Influence of STS on Thermoregulation |
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382 | (7) |
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389 | (8) |
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Acknowledgments of Support and Contributions |
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390 | (1) |
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Conflict of Interest Statement |
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390 | (1) |
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390 | (7) |
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6 Evolution of Thermal Dosimetry for Application of Hyperthermia to Treat Cancer |
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397 | (26) |
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398 | (2) |
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2 Importance of Thermal Dosimetry for Hyperthermia and Thermal Ablation |
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400 | (12) |
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3 Randomized Phase III Trial Results |
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412 | (11) |
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414 | (9) |
Author Index |
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423 | (12) |
Subject Index |
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435 | |
Professor Eph sparrow has practiced the art and science of heat transfer for over 60 years.He currently leads the Laboratory for Engineering Practice at the University of Minnesota. John Abraham is at University of St. Thomas, Saint Paul, MN, USA John Gorman is at University of Minnesota, Minneapolis, MN, USA