Handbook for Transversely Finned Tube Heat Exchanger Design
Handbook for Transversely Finned Tubes Heat Exchangers Design contains detailed experimental data, correlations, and design methods for designing and improving the performance of finned tube heat exchangers. It covers the three main types, circular finned, square finned, and helical finned tube bundles. Based on extensive experimental studies and tested at leading design and research institutions, this handbook provides an extensive set of materials for calculating and designing convective surfaces from transversely finned tubes, with a particular emphasis on power plant applications. - Provides a design manual for calculating heat transfer and aerodynamic resistance of convective heating surfaces fabricated in the form of tube bundles with transverse circular, square and helical fins - Presents calculations for finned surfaces operating under conditions of clean and dust-laden flows alike, including finned convective heating surfaces of boilers - Includes a fully solved exercise at the end of the book, illustrating the top-down approach specially oriented to power plant heat exchangers
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Handbook for Transversely Finned Tube Heat Exchanger Design
Handbook for Transversely Finned Tubes Heat Exchangers Design contains detailed experimental data, correlations, and design methods for designing and improving the performance of finned tube heat exchangers. It covers the three main types, circular finned, square finned, and helical finned tube bundles. Based on extensive experimental studies and tested at leading design and research institutions, this handbook provides an extensive set of materials for calculating and designing convective surfaces from transversely finned tubes, with a particular emphasis on power plant applications. - Provides a design manual for calculating heat transfer and aerodynamic resistance of convective heating surfaces fabricated in the form of tube bundles with transverse circular, square and helical fins - Presents calculations for finned surfaces operating under conditions of clean and dust-laden flows alike, including finned convective heating surfaces of boilers - Includes a fully solved exercise at the end of the book, illustrating the top-down approach specially oriented to power plant heat exchangers
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Handbook for Transversely Finned Tube Heat Exchanger Design

Handbook for Transversely Finned Tube Heat Exchanger Design

Handbook for Transversely Finned Tube Heat Exchanger Design

Handbook for Transversely Finned Tube Heat Exchanger Design

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Overview

Handbook for Transversely Finned Tubes Heat Exchangers Design contains detailed experimental data, correlations, and design methods for designing and improving the performance of finned tube heat exchangers. It covers the three main types, circular finned, square finned, and helical finned tube bundles. Based on extensive experimental studies and tested at leading design and research institutions, this handbook provides an extensive set of materials for calculating and designing convective surfaces from transversely finned tubes, with a particular emphasis on power plant applications. - Provides a design manual for calculating heat transfer and aerodynamic resistance of convective heating surfaces fabricated in the form of tube bundles with transverse circular, square and helical fins - Presents calculations for finned surfaces operating under conditions of clean and dust-laden flows alike, including finned convective heating surfaces of boilers - Includes a fully solved exercise at the end of the book, illustrating the top-down approach specially oriented to power plant heat exchangers

Product Details

ISBN-13: 9780128044162
Publisher: Elsevier Science & Technology Books
Publication date: 05/06/2016
Sold by: Barnes & Noble
Format: eBook
Pages: 188
File size: 16 MB
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About the Author

Eugene Pis'mennyi graduated as a mechanical engineer within the area of steamgenerator design from the National Technical University of Ukraine, Kyiv Polytechnic Institute. He obtained his Ph.D. within the area of thermal physics at the same institution. Dr. Pis'mennyi earned a degree of Doctor of Technical Sciences from the Institute of Engineering Thermophysics, National Academy of Sciences of Ukraine. Dr. Pis'mennyi is an internationally recognized scientist within the areas of nuclear engineering and heat transfer. He is an author of more than 400 publications, including eight technical books, 16 patents, and more than 50 technical reports. He has supervised 15 Ph.D. and more than 100 master in science and bachelor's theses. Currently, Dr. Pis'mennyi is a dean of the Heat Power Engineering Faculty and the Chief of Nuclear Power Plants and Engineering Thermophysics Department at the National Technical University of Ukraine, Kyiv Polytechnic Institute.Georgiy Polupan graduated as a mechanical engineer within the area of steam generator design from the National Technical University of Ukraine, Kyiv Polytechnic Institute. He obtained his Ph.D. within the area of thermal physics at the same institution. His major area of study is thermal processes in steam generators, thermo physics, and efficient use of energy. He is an author of more than 300 publications, including three technical books, two patents, and 67 papers in refereed journals. G. Polupan was a researcher at the Thermal Physics Department from 1972 to 1985 and a professor of the Thermal Engineering Faculty of the National Technical University of Ukraine, Kyiv Polytechnic Institute from 1985 to 1999. Since 1999, he has been a full professor at the National Polytechnic Institute of Mexico, Superior School of Mechanical and Electrical Engineering, Thermal Engineering and Applied Hydraulic Laboratory.Ignacio Carvajal-Mariscal graduated as a Mechanical Engineer from the Moscow Power Engineering Institute (Russia) in 1994. He possessed M.Sc. and Ph.D. in Thermal Engineering from the same institution in 1996 and 1999, respectively. He was a Visiting Professor at the Mechanical and Mechatronics Engineering Department, University of Waterloo, Waterloo, Canada, in 2008-2009. His major area of study is convective heat transfer. He is an author of more de 200 publications including 1 technical books, 23 papers in refereed journals.Currently, Dr. Carvajal-Mariscal is a full professor at the National Polytechnic Institute of Mexico. His research interests are heat-transfer enhancement, experimental fluid dynamics and heat-exchanger design. Dr. Carvajal-Mariscal is an ASME member since 2008.Florencio Sanchez-Silva graduated as a Mechanical Engineer from the National Polytechnic Institute of Mexico, Mexico City, in 1974. He possessed M.Sc. in Thermodynamics and Ph.D. in Thermal Engineering from the National Superior School of Mechanics and Aerothermics of Poitiers - France, in l980. He was a post doctorate in two-phase flow dynamics at the University of Pisa, Italy, in 1988-1989 and spent his sabbatical leave at the Texas A&M University in 2000-2001. His major area of study is two-phase flow dynamics and phase change heat transfer.Currently, he is a full professor at the National Polytechnic Institute of Mexico. His research interests are two-phase flow dynamics, heat pipes, energy saving and, development and analysis of thermal energy systems. Up to now, Dr. Sánchez-Silva has 38 refereed journal publications, 250 refereed papers in conference proceedings, 15 technical reports, 2 technical books, 3 chapters in technical books. He has supervised 3 PhD, 44 Master in Science and 31 bachelor thesis on two-phase flow, heat transfer, fluid mechanics, metrology and thermal systems topics.Dr. Sanchez-Silva is a Fellow of the Societé des Ingenieurs et Scientifiques de France, Mexican Section (since l987) and a member of the Mexican Academy of Sciences since 2004.
Eugene Pis’mennyi graduated as a mechanical engineer within the area of steamgenerator design from the National Technical University of Ukraine, Kyiv Polytechnic Institute. He obtained his Ph.D. within the area of thermal physics at the same institution. Dr. Pis’mennyi earned a degree of Doctor of Technical Sciences from the Institute of Engineering Thermophysics, National Academy of Sciences of Ukraine. Dr. Pis’mennyi is an internationally recognized scientist within the areas of nuclear engineering and heat transfer. He is an author of more than 400 publications, including eight technical books, 16 patents, and more than 50 technical reports. He has supervised 15 Ph.D. and more than 100 master in science and bachelor’s theses. Currently, Dr. Pis’mennyi is a dean of the Heat Power Engineering Faculty and the Chief of Nuclear Power Plants and Engineering Thermophysics Department at the National Technical University of Ukraine, Kyiv Polytechnic Institute.
Professor Igor Pioro – Ph.D. (1983); Doctor of Technical Sciences (1992); Professional Engineer (Ontario, Canada) (2008); Foreign Fellow of the National Academy of Sciences of Ukraine (2021); Fellow of the American Society of Mechanical Engineers (ASME) (2012), Canadian Society of Mechanical Engineers (CSME) (2015), and Engineering Institute of Canada (EIC) (2013); life-time member of the American Nuclear Society (ANS) (2004), and member of Canadian NS (CNS) (2010); is an internationally recognized scientist within the areas of nuclear engineering (thermalhydraulics of nuclear reactors, Generation-IV nuclear-reactor concepts, etc.) and thermal sciences / engineering (boiling, forced convection including supercritical pressures, etc.) He is author/co-author of more than 534 publications 12 technical books, 48 chapters in encyclopedias, handbooks and books, 101 papers in refereed journals, 300 papers in refereed proceedings of international and national conferences and symposiums, 26 patents and inventions, and 47 major technical reports.Dr. Pioro graduated from the National Technical University of Ukraine "Kiev Polytechnic Institute" with M.A.Sc. in Thermal Physics in 1979. After that, he worked on various positions including an engineer, senior scientist, deputy director, professor, director of a graduate program in nuclear engineering, and associate dean. Currently, he is associated with the Department of Energy and Nuclear Engineering Faculty of Engineering and Applied Science, University of Ontario Institute of Technology (brand name: Ontario Tech University) (Oshawa, Ontario, Canada).Dr. Pioro is a Founding Editor – Editor-in-Chief of the ASME Journal of Nuclear Engineering and Radiation Science (J. NERS). He was a Chair of the Executive Committee of the Nuclear Engineering Division (NED) of the ASME (2011-2012) and a Chair of the International Conference On Nuclear Engineering (ICONE-20) (2011-2012).Professor Pioro has received many international and national awards and certificates of appreciation including Certificate of Appreciation for establishing the ASME J. NERS and in recognition of outstanding and distinguished service as an Editor of the Journal 2014 – 2020 (ASME); Harold A. Smith Outstanding Contribution Award from CNS (2017), Medal 60th Anniversary of NED (Nuclear Engineering Division of ASME) (2016); Service Recognition Award from the ASME (2014); Honorary Doctor’s Degree from National Technical University of Ukraine “Kiev Polytechnic Institute” (2013); The CNS Education and Communication Award (2011); UOIT Research Excellence Award (2011); ICONE Award from ASME (2009); Medal of the National Academy of Sciences of Ukraine for the best scientific work of a young scientist (1990); Badge "Inventor of the USSR" for implementation of inventions into industry (1990); etc.

Table of Contents

1 GENERAL STATEMENTS 2 HEAT TRANSFER CALCULATION 2.1 Basic Equations 2.2 Overall Heat Transfer Coefficient 2.3 Reduced Heat Transfer Coefficient 2.4 Convective Heat Transfer Coefficient 2.5 Coefficient of Heat Transfer from the Wall to the Internal Medium 2.6 Contamination Factor and Thermal Efficiency 2.7 Average Temperature Difference 3 CALCULATION OF AERODYNAMIC RESISTANCE 4 CALCULATION OF HYDRAULIC RESISTANCE 5 CALCULATION OF TEMPERATURE MODE OF FINNED TUBES 6 STRENGTH DESIGN 7 EXAMPLES OF CALCULATIONS

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This handbook presents a complete set of materials for calculating and designing convective surfaces constructed from transversely finned tubes, detailing experimental data, correlations, and design methods for designing and improving the performance of these tubes

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