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    1. Naturvetenskap och teknik
    2. Teknik och industri
    3. Energiteknik

    Mathematical Modelling of Heat Transfer Performance of Heat Exchanger using Nanofluids

    AvPrashant Maheshwary,Chandrahas C. Handa

    Häftad, Engelska, 2025

    723 kr

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    1 466 kr

    Beskrivning

    The book presents a detailed discussion of nanomaterials, nanofluids and application of nanofluids as a coolant to reduce heat transfer. It presents a detailed approach to the formulation of mathematical modelling applicable to any type of case study with a validation approach and sensitivity and optimization.Covers the aspects of formulation of mathematical modelling with optimization and sensitivity analysisPresents a case study based on heat transfer improvement and performs operations using nanofluidsExamines the analysis of experimental data by the formulation of a mathematical model and correlation between input data and output dataIllustrates heat transfer improvement of heat exchangers using nanofluids through the mathematical modelling approachDiscusses applications of nanofluids in cooling systemsThis book discusses the aspect of formulation of mathematical modelling with optimization and sensitivity analysis. It further presents a case study based on the heat transfer improvement and performing operations using nanofluids. The text covers sensitivity analysis and analysis from the indices of the model. It also discusses important concepts such as nanomaterials, applications of nanomaterials, and nanofluids. It will serve as an ideal reference text for senior undergraduate, and graduate students in fields including mechanical engineering, chemical engineering, aerospace engineering, industrial engineering, and manufacturing engineering.

    Produktinformation

    • Utgivningsdatum:2025-01-30
    • Mått:156 x 234 x 8 mm
    • Vikt:270 g
    • Format:Häftad
    • Språk:Engelska
    • Antal sidor:134
    • Förlag:Taylor & Francis Ltd
    • ISBN:9781032557656

    Utforska kategorier

    • Energiteknik inom Naturvetenskap och teknik
    • Tillämpad matematik inom Naturvetenskap och teknik
    • Teknik: allmänt inom Naturvetenskap och teknik

    Mer om författaren

    Dr. P. B. Maheshwary is Dean, Faculty of Science and Technology, Rashtrasant Tukadoji Maharaj Nagpur University, Nagpur. He did his double doctoral research degree in two different specialization (Machine Design and Thermal Engineering) of Mechanical Engineering. His area of research is nanomaterials and nanoscience, Thermal Engineering and Mechanism and Machines. Subject taught earlier are heat transfer, thermodynamics, characterization of nanomaterials, application of nanomaterials at UG and PG level. An accomplished Teaching Professional with more than 3 decades of teaching experience and 10 years of research experience. Published more than twenty research papers in SCI and Scopus (A+) indexed international journals. In-depth administrative experience gained being the Director of an Educational Institute since 2008. A self-driven, result oriented person with flexibility and ability to connect to all levels in an organization. Continuous self-development and continuous learning have added to his knowledge and is an asset to the Institution he is associated with.Dr. Chandrahas C. Handa is a Professor and Head of Department of Mechanical Engineering at Karmaveer Dadasaheb Kannamwar College of Engineering (KDKCE), Rashtrasant Tukadoji Maharaj Nagpur University (RTMNU), Nagpur, India. His area of research includes photovoltaic cells and nano sensors. He is teaching subject such as machine design, optimization techniques and genetic logarithm. He obtained his PhD in Mechanical Engineering from RTMNU, Nagpur. He has more than 33 years of teaching, administrative and 25 years of research experience. He has published 124 research papers in international/national journals and presented 99 papers in international/national conferences. He has guided 12 PhD students at RTMNU, Nagpur. He is recipient of five Best Teacher Awards including award given by RTMNU, Nagpur. He got many research, development and training grants of more than 20 million from various Central Ministries of Government of India. He has published 4 Patents and 5 Copyrights. He is Ex Treasurer ISTE, New Delhi. He has Worked as Principal, Vice Principal, Dean of Engineering College in the past. He has developed more than 50 machines. He has received Research Grants from AICTE and Industries. Dr. (Mrs) Neetu Gyanchandani did her Doctoral research in the area of Electronics Engineering. She is currently Dean (R & D), S. B. Jain Institute of Technology, Management and Research, Nagpur, Maharashtra, India. Her area of research is application of nanospintronics, composite materials and image processing. She is teaching subject such as application of nanospintronics, computer materials and image processing at UG and PG level. She is capable, academician and an administrator with more than 18 years of teaching experience. She has been awarded as best women teacher of Engineering College by Indian Society of Technical Education, New Delhi. She is also single point contact (SPoC) for indigenous MOOCs platform Swayam NPTEL, since last five years. Under her leadership a centre of excellence in industrial robotics is started by IIT Mumbai in her department. She has published more than five patents and ten research papers.Dr. Pramod Belkhode did his doctoral research degree in Mechanical Engineering from Rashtrasant Tukadoji Maharaj Nagpur University, Nagpur. He is working as Assistant Professor at Laxminarayan Institute of Technology since 2009. His area of research is mathematical modelling and simulation. He published more than fifty research papers in international Journals, four patents and delivered more than 30 guest lectures on various topics.

    Innehållsförteckning

    • Chapter 1Nanofluids1.1 Nanotechnology1.2 Nanomaterials1.3 Applications of Nanomaterials1.4 Nanofluids1.5 Compact Heat Exchangers1.6 Heat Transfer Enhancement through Nanofluids1.7 Improvement in Heat Exchanger Performance1.8 Application of Nanofluid in Cooling Systems1.9 Mathematical ModellingChapter 2Concept of Experimental Data-Based Modelling2.1 Introduction2.2 Nanofluid for Heat Transfer2.3 Brief Methodology of Theory of Experimentation2.4 Methods of Experimentation Chapter 3Design of Experimentation 3.1 Introduction3.2 Design of Experiment – Methodical Approach3.3 Experimental Setup and Procedure3.4 Two-Wire Method3.5 Radiator as a Heat Exchanger: Experimental Procedure3.6 Design of Instrumentation for Experimental Setup3.7 Components of Instrumentation Systems3.8 Identification of Variables in Phenomenon3.9 Mathematical Relationship for Heat Transfer Phenomena3.10 Formation of Pi Terms for Dependent & Independent3.11 Reduction of Variables by Dimensional Analysis3.12 Plan for Experimentation3.13 Experimental Observations3.14 Sample SelectionChapter 4Mathematical Models4.1 Introduction4.2 Model Classification4.3 Formulation of Experimental Data-Based Models (Two-Wire Method)4.4 Sample Calculations of Pi TermsChapter 5Analysis using SPSS Statistical Packages Software5.1 Introduction5.2 Developing the SPSS Model for Individual Pi Terms5.3 SPSS Output for Thermal Conductivity Kϕ (Concentration)5.4 SPSS Output for Thermal Conductivity Kt (Size)5.5 SPSS Output for Thermal Conductivity Ks (Shape)5.6 SPSS Output for πD1 (Temperature Difference, ΔT)5.7 SPSS Output for πD2 (Heat Flow, Q)5.8 SPSS Output for πD3 (Heat Transfer Coefficient, h)Chapter 6Analysis of Model using Artificial Neural Network Programming 6.1 Introduction6.2 Procedure for Artificial Neural Network Phenomenon6.3 Performance of Models by ANN6.3.1 ANN using SPSS o/p for Thermal Conductivity Kϕ6.3.2 ANN using SPSS o/p for Thermal Conductivity Kt (Size)6.3.3 ANN using SPSS o/p for Thermal Conduct. Ks (Shape)6.3.4 ANN using MATLAB Program for πD1 (Temp. Diffe., ΔT)6.3.5 Comparison of Various Model ValuesChapter 7 Analysis of the Indices of Model7.1 Introduction7.2 Analysis of the Model for Dependent Pi Term πD1 (Kϕ)7.3 Analysis of the Model for Dependent Pi Term πD2 (Kt)7.4 Analysis of the Model for Dependent Pi Term πD3 (Ks)7.5 Analysis of the Model for Dependent Pi Term πD1 (ΔT)7.6 Analysis of the Model for Dependent Pi Term πD2 (Q)7.7 Analysis of the Model for Dependent Pi Term πD3 (h)Chapter 8Optimization and Sensitivity Analysis8.1 Introduction8.2 Optimization of the Models8.3 Sensitivity Analysis for Two-Wire Method8.4 Estimation of Limiting Values of Response Variables8.5 Performance of the Models8.6 Reliability of Models8.7 Coefficient of Determinants R2 for Two-Wire MethodChapter 9Interpretation of the Simulation 9.1 Interpretation of Independent Variables vs. Response Variables after Optimization9.2 Interpretation of Temperature Difference against the Mass Flow Rate9.3 Interpretation of Reliability and Coefficient of Determinant9.4 Interpretation of Mean Error of Models Corresponding to Response Variables