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Proceedings Papers
ASME 2020 Heat Transfer Summer Conference collocated with the ASME 2020 Fluids Engineering Division Summer Meeting and the ASME 2020 18th International Conference on Nanochannels, Microchannels, and Minichannels
July 13–15, 2020
Virtual, Online
Conference Sponsors:
- Heat Transfer Division
ISBN:
978-0-7918-8370-9
In This Volume
ASME 2020 Heat Transfer Summer Conference
Computational Heat Transfer
Applications of Computational Heat Transfer
A Comparative Study Between Two-Dimensional and Three-Dimensional Simulation Results of Melting Inside a Container
HT 2020; V001T02A001https://doi.org/10.1115/HT2020-8954
Topics:
Containers
,
Melting
,
Simulation results
,
Cavities
,
Convection
,
Engineering simulation
,
Heating
,
Nanoparticles
,
Phase change materials
,
Simulation
A Computational Investigation of Dynamic Stabilization of Rayleigh-Bénard Convection Under System Acceleration
HT 2020; V001T02A002https://doi.org/10.1115/HT2020-9020
Topics:
Convection
,
Flow (Dynamics)
,
Dynamic stability
,
Stability
,
Approximation
,
Compressible flow
,
Density
,
Enthalpy
,
Equations of state
,
Heating
Computational Models of Nanoscale Radiation
Computational Models of Non-Equilibrium Transport Phenomena
Inverse Methods in Computational Heat Transfer
Machine Learning in Computational Heat Transfer
Methods and Algorithms in Computational Heat Transfer
Application of Machine Learning for Enhancing the Transient Performance of Thermal Energy Storage Platforms for Supplemental or Primary Thermal Management
Nandan Shettigar, Debjyoti Banerjee, Meghan Truong, Ashok Thyagarajan, Alaba Bamido, Abigail Meza, Navin Kumar
HT 2020; V001T02A014https://doi.org/10.1115/HT2020-9167
Environmental Heat Transfer
Heat and Mass Transfer Associated With Thermal Comfort and Indoor Environmental Quality (IEQ)
Application of the Neural Networks in Prediction of the Thermal Flow on the Jiu River
HT 2020; V001T04A005https://doi.org/10.1115/HT2020-9043
Topics:
Artificial neural networks
,
Flow (Dynamics)
,
Rivers
,
Temperature
,
Water
,
Water temperature
,
Errors
,
Chemical properties
,
Computer simulation
,
Cooling towers
Heat and Mass Transfer for Natural and Built Environments
Ephraim Sparrow Memorial Symposium
Ephraim Sparrow Memorial Symposium
Fire and Combustion
Fire and Combustion
Numerical Study on the Influence of Blockage Ratio on Hydrogen Turbulent Premixed Flames in a Small Scale Obstructed Chamber
HT 2020; V001T06A001https://doi.org/10.1115/HT2020-8967
Topics:
Flames
,
Hydrogen
,
Turbulence
,
Pressure
,
Computer simulation
,
Computational fluid dynamics
,
Explosions
,
Flow (Dynamics)
,
Ignition
,
Combustion
Inverse Model for Fire Heat Release Rate Using Deep Neural Networks
HT 2020; V001T06A003https://doi.org/10.1115/HT2020-9110
Topics:
Artificial neural networks
,
Fire
,
Heat
,
Emergency response
,
Modeling
,
Sensors
,
Time series
Heat and Mass Transfer in Biotechnology
Nano and Microfluidics for Biological Applications
Effect of Temperature on Velocity Profiles of Ions and Water Molecules in Charged Nanotubes
HT 2020; V001T08A001https://doi.org/10.1115/HT2020-9026
Topics:
Electroosmosis
,
Ions
,
Nanotubes
,
Temperature
,
Water
,
Flow (Dynamics)
,
Fluids
,
Ion migration
,
Molecular dynamics simulation
,
Carbon nanotubes
Heat Transfer Equipment
Cryogenic Heat Transfer Equipment
Experimental Investigation of Shell-Side Flow Condensation on Three-Dimensional Enhanced Surface Tubes
HT 2020; V001T09A002https://doi.org/10.1115/HT2020-8987
Topics:
Condensation
,
Flow (Dynamics)
,
Shells
,
Heat transfer coefficients
,
Heat transfer
,
Refrigerants
,
Errors
,
Fluids
,
Geometry
,
Temperature
Membrane Based Heat and Mass Transfer Equipment
Multi-Scale Multi-Phase Heat Transfer Equipment
Single-Phase Enhanced Heat Transfer Equipment
Retracted: “A Numerical Study on the Shell-Side Thermal-Hydraulic Performance of a Hybrid Smooth and Spirally Corrugated Tube” [ASME 2020 Heat Transfer Summer Conference, Virtual, Online, July 13–15, 2020, Conference Sponsors: Heat Transfer Division, ISBN: 978-0-7918-8370-9, Copyright © 2020 by ASME. Paper No. HT2020-8996, pp. V001T09A010; 7 pages; doi: 10.1115/HT2020-8996]
HT 2020; V001T09A010https://doi.org/10.1115/HT2020-8996
Topics:
Heat transfer
,
Shells
Thermal Energy Storage and Heat Transfer Equipment
3D Printed Architected Heat Sinks Cooling Performance in Free and Forced Convection Environments
Mohamed I. Hassan Ali, Oraib Al-Ketan, Mohamad Khalil, Nada Baobaid, Kamran Khan, Rashid K. Abu Al-Rub
HT 2020; V001T09A012https://doi.org/10.1115/HT2020-9067
Topics:
Additive manufacturing
,
Cooling
,
Forced convection
,
Heat sinks
Experimental Investigation of a PCM-Based Topology Optimized Heat Sink for Passive Cooling of Electronics
HT 2020; V001T09A013https://doi.org/10.1115/HT2020-9143
Topics:
Cooling
,
Electronics
,
Heat sinks
,
Topology
,
Heat
,
Temperature
,
Aluminum alloys
,
Energy dissipation
,
Flux (Metallurgy)
,
Lasers
Heat Transfer in Electronic Equipment
Heat Transfer at Conditions Pertinent to Data Centers
Heat Transfer in Energy Systems
Heat and Mass Transfer in Heating, Cooling, and Power Systems
Impact of Micropillar Density Distribution on the Capillary Limit of Heat Pipes
Doriane Ibtissam Hassaine Daoudji, Quentin Struss, Amrid Amnache, Étienne Léveillé, Mahmood Reza Salim Shirazy, Luc G. Fréchette
HT 2020; V001T11A002https://doi.org/10.1115/HT2020-9001
Topics:
Columns (Structural)
,
Density
,
Heat pipes
Heat Transfer in Renewable Energy Systems
Effect of Cell Design on the Thermal Performance of Direct Contact Membrane Distillation System Utilizing a Nanocomposite Membrane
Mohamed R. Elmarghany, A. H. El-Shazly, Ali Radwan, Essam M. Abo-Zahhad, Norhan Nady, Mohamed N. Sabry, Mahmoud A. Shouman, Mohamed S. Salem
HT 2020; V001T11A006https://doi.org/10.1115/HT2020-8909
Thermal Conductivity Study of Biomass Reinforced Polymer Composites
HT 2020; V001T11A008https://doi.org/10.1115/HT2020-9065
Topics:
Biomass
,
Polymer composites
,
Thermal conductivity
,
Ester
,
Fibers
,
Resins
,
Cellulosic fibers
,
Composite materials
,
Epoxy adhesives
,
Epoxy resins
Design and Optimization of Microchannel Heat Sink for Densely Packed High Concentration Solar Cells
Abdallah Y. M. Ali, Essam M. Abo-Zahhad, Ali Radwan, Hesham I. Elqady, M. F. El-Kady, Shinichi Ookawara, A. H. El-Shazly
HT 2020; V001T11A009https://doi.org/10.1115/HT2020-9097
Topics:
Design
,
Geometry
,
Heat sinks
,
Microchannels
,
Optimization
,
Solar cells
Thermal Management of Battery Systems
Comparison of Different Liquid Cooling Configurations for Effective Thermal Management of Li-Ion Pouch Cell for Automotive Applications
HT 2020; V001T11A011https://doi.org/10.1115/HT2020-9050
Topics:
Automotive industry
,
Cooling
,
Thermal management
,
Batteries
,
Temperature
,
Temperature gradient
,
Electric vehicles
,
Heat
,
Thermocouples
,
Automotive batteries
Thermal Storage in Energy Systems
Suppressing the Supercooling Effect of Erythritol by Bubbling for Latent Heat Storage
HT 2020; V001T11A013https://doi.org/10.1115/HT2020-8945
Topics:
Latent heat
,
Storage
,
Supercooling
,
Bubbles
,
Temperature
,
Crystallization
,
Subcooling
,
Flow (Dynamics)
,
Density
,
Heat
Thermal Performance of Sensible Energy Storage Module Consisting of a Cementitious Matrix: The Effect of Operating Conditions
Justin Caspar, Julio Bravo, Shuoyu Wang, Ahmed Abdulridha, Sudhakar Neti, Carlos Romero, Clay Naito, Muhannad Sulieman, Spencer Quiel, Zheng Yao, Alparslan Oztekin
HT 2020; V001T11A014https://doi.org/10.1115/HT2020-8975
Topics:
Concretes
,
Design
,
Energy generation
,
Energy storage
,
Fluid dynamics
,
Heat transfer
,
Laminar flow
,
Materials properties
,
Pipes
,
Storage
Mechanical Performance of Concrete Thermal Energy Storage Subject to Operating Thermal Demands
Shuoyu Wang, Ahmed Abdulridha, Spencer Quiel, Clay Naito, Muhannad Sulieman, Justin Caspar, Julio Bravo, Sudhakar Neti, Carlos Romero, Zheng Yao, Alparslan Oztekin
HT 2020; V001T11A015https://doi.org/10.1115/HT2020-8976
Topics:
Concretes
,
Equipment performance
,
Thermal energy storage
,
Cylinders
,
Heating
,
Concrete blocks
,
Cooling
,
Cycles
,
Engineering simulation
,
Finite element model
Waste Heat Recovery and Energy Harvesting
Heat Transfer in Multi-Phase Flow
Boiling and Evaporation
Technique for Determining Local Nucleate and Film Boiling Correlations for Large Diameter Tubes
HT 2020; V001T12A004https://doi.org/10.1115/HT2020-9094
Topics:
Accidents
,
Boiling
,
Cooling
,
Film boiling
,
Fuels
,
Heat
,
Heat flux
,
Heating
,
Modeling
,
Nuclear industry
Condensation Heat Transfer
Conditional Stability of Direct Contact Steam Condensation
HT 2020; V001T12A008https://doi.org/10.1115/HT2020-9018
Topics:
Condensation
,
Oscillations
,
Pressure
,
Stability
,
Steam
Heat Pipes
Heat Transfer Enhancement
Micro/Nano-Scale Multi-Phase Heat Transfer
Retracted: “Flow Patterns of Liquid-Liquid Two-Phase Flow With Different Viscosities in Microchannels” [ASME 2020 Heat Transfer Summer Conference, Virtual, Online, July 13–15, 2020, Conference Sponsors: Heat Transfer Division, ISBN: 978-0-7918-8370-9, Copyright © 2020 by ASME. Paper No. HT2020-8995, pp. V001T12A012; 6 pages; doi: 10.1115/HT2020-8995]
HT 2020; V001T12A012https://doi.org/10.1115/HT2020-8995
Topics:
Flow (Dynamics)
,
Heat transfer
,
Microchannels
,
Two-phase flow
,
Viscosity
Multi-Phase Heat Transfer
Enhanced Pool Boiling Heat Transfer During Quenching on Micro/Nanostructured Wicking Surface: Effects of Submicron-Scale Substructures
HT 2020; V001T12A013https://doi.org/10.1115/HT2020-8929
Topics:
Heat transfer
,
Pool boiling
,
Quenching (Metalworking)
,
Boiling
,
Chemical etching
,
Needles
,
Stainless steel
,
Temperature
,
Water
A Multiobjective Parameter Study of Two-Phase Flow Channel Design
HT 2020; V001T12A014https://doi.org/10.1115/HT2020-9041
Topics:
Design
,
Equilibrium (Physics)
,
Two-phase flow
Heat Transfer Under Extreme Conditions
High Temperature/High Pressure Two-Phase Flows
Nanoscale Thermal Transport
Modeling and Simulation Method
Assessment of Models for Extracting Thermal Conductivity From Frequency Domain Thermoreflectance Experiments
HT 2020; V001T15A001https://doi.org/10.1115/HT2020-8920
Topics:
Thermal conductivity
,
Thermoreflectance
,
Heat conduction
,
Boundary-value problems
,
Transducers
,
Cooling
,
Electrical conductance
,
Heat
,
Lasers
,
Pumps
Nanoscale Materials for Thermal Energy Systems
Phase Change Heat Transfer
Theory and Fundamental Research
Fundamentals of Boiling, Condensation, and Evaporation
Nanoscale and Macroscale Effects of Mineral Deposition During Water Evaporation on Nanoporous Surfaces
HT 2020; V001T16A002https://doi.org/10.1115/HT2020-8941
Topics:
Evaporation
,
Minerals
,
Nanoscale phenomena
,
Water
,
Drops
,
Cooling
,
Heat transfer
,
Sprays
,
Copper
,
Durability
Retracted: “Temperature and Velocity Behaviour During Melting of a PCM in a Uniformly Heated Circular Cavity” [ASME 2020 Heat Transfer Summer Conference, Virtual, Online, July 13–15, 2020, Conference Sponsors: Heat Transfer Division, ISBN: 978-0-7918-8370-9, Copyright © 2020 by ASME. Paper No. HT2020-9016, V001T16A003; 7 pages; doi: 10.1115/HT2020-9016]
HT 2020; V001T16A003https://doi.org/10.1115/HT2020-9016
Topics:
Cavities
,
Heat transfer
,
Melting
,
Temperature
Exploration of ZnO Nanostructure Growth on Various Metal Substrates for Enhancement of Surface Wettability and Evaporation Processes
HT 2020; V001T16A005https://doi.org/10.1115/HT2020-9114
Topics:
Evaporation
,
Metals
,
Drops
,
Aluminum
,
Copper
,
Pool boiling
,
Stainless steel
,
Temperature
,
Critical heat flux
,
Heat flux
Fundamentals of Multi-Scale Modeling and Simulation
Temperature Distribution in a Turbulent Flow in the Heat Pollution Phenomena
HT 2020; V001T16A007https://doi.org/10.1115/HT2020-8969
Topics:
Heat
,
Pollution
,
Temperature distribution
,
Turbulence
,
Fluids
,
Mass transfer
,
Temperature
,
Viscosity
,
Flow (Dynamics)
,
Fluid dynamics
Modeling Nanobubble Interactions and Behavior Using Multiphase Lattice Boltzman Methods
HT 2020; V001T16A008https://doi.org/10.1115/HT2020-9051
Topics:
Modeling
,
Nucleate boiling
,
Bubbles
,
Lattice Boltzmann methods
,
Multiphase flow
,
Nucleation (Physics)
,
Accounting
,
Collapse
,
Heat transfer
,
Microchannels