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Thermo-fluid behaviour of periodic cellular metals =

  2020-08-05 00:00:00  

Thermo-fluid behaviour of periodic cellular metals = 内容简介

  《周期性多孔金属材料的热流性能》在揭示多功能超轻周期性多孔金属材料和结构在强制对流条件下传热传质机理,为研制以多功能超轻多孔材料为基本材料、具有优良传热性能和力学性能的高效紧凑式换热器、微热管等提供理论依据和指导。

Thermo-fluid behaviour of periodic cellular metals = 目录


chapter 1 introduction
1.1 introduction and synopsis
1.2 cellular solids
1.3 periodic cellular solids
1.3.1 2d periodic cellular solids
1.3.2 3d periodic cellular solids
1.4 multifunctional applications
1.5 aims and outline of the book
references

chapter 2 experimental and numerical methods
2.1 introduction
2.2 experimental methods
2.2.1 experimental setup
2.2.2 experimental procedure
2.2.3 data analysis
2.3 numerical method
2.3.1 computational domain
2.3.2 mesh generation
2.3.3 physical boundary conditions
2.3.4 cfd solver
2.3.5 mesh sensitivity
references

chapter 3 2d periodic cellular metals
3.1 introduction and synopsis
3.2 characterization and fabrication of 2d cellular solids..
3.2.1 what are 2d cellular solids
3.2.2 characterizing 2d cellular solids
3.2.3 fabrication of 2d cellular solids
3.3 mechanical properties of 2d cellular metals
3.3.1 general mechanical behaviour
3.3.2 comparisons of 2d cellular metals with different cellshapes
3.3.3 comparisons of 2d cellular metals with other cellularmetals
3.4 fluid-flow behaviour and pressure loss
3.4.1 local pressure loss
3.4.2 frictionm pressure loss
3.4.3 overall pressure loss
3.5 heat transfer
3.5.1 conjugated conduction-convection heat transfer process
3.5.2 local temperature and heat flux distributions
3.5.3 overall heat transfer characteristics
3.6 summary
references

chapter 4 3d periodic cellular metals i. textile
4.1 introduction and synopsis
4.2 characterization and fabrication of woven textiles
4.2.1 topology of textile core
4.2.2 porosity and surface area density
4.2.3 fabrication
4.3 mechanical properties of woven textiles
4.4 flow and pressure loss behaviour
4.4.1 model
4.4.2 experimental result
4.5 heat transfer
4.5.1 effective thermal conductivity
4.5.2 convective heat transfer
4.5.3 volumetric heat transfer coefficient
4.6 summary
references

chapter 5 3d periodic cellular metals ii. lattice-framematerials
5.1 introduction and synopsis
5.2 characterization and fabrication of lattice-framematerials(lfms)
5.2.1 topology
5.2.2 manufacturing process
5.3 mechanical properties of the lfm
5.4 fluid flow behaviour in the lattice-frame material
5.4.1 fluid-flow in the lattice-frame material
5.4.2 flow in x-y plane
5.4.3 flow on strut surfaces
5.4.4 fluid-flow in the lfm
5.4.5 surface flow patterns on the endwall plates
5.5 pressure loss behaviour in the lattice-frame material
5.5.1 pressure loss per unit cell
5.5.2 pressure loss mechanisms in the lfm
5.5.3 effects of topological parameters on the overall pressurelosses
5.6 heat transfer
5.6.1 introduction
5.6.2 thermo-fluid characterisation of the lfm
5.6.3 local temperature distribution in forced air convection
5.6.4 overall heat transfer behaviour
5.6.5 effect of entry and exit regions on the overall endwall heattransfer
5.6.6 effects of thermal conductivity on the overall heattransfer
5.6.7 heat transfer due to flow mixing vs. convection from extendedsurface
5.6.8 endwall surface heat transfer distribution
5.6.9 details of the heat transfer on the strut surfaces(orientation a)
5.6.10 vortex structures in heat transfer
5.6.11 contribution of the local flow features to the overall heattransfer
5.6.12 effects of porosity and surface area density on the overallheat transfer
5.6.13 optimum porosity for both the pressure loss and heattransfer in the lfm
5.7 summary
5.7.1 flow
5.7.2 pressure loss
5.7.3 heat transfer
5.7.4 the lfm as a multifunctional heat exchanger
references

chapter 6 overall evaluation of thermo-fluid performance
6.1 introduction and synopsis
6.2 evaluation of overall pressure loss
6.3 evaluation of overall heat transfer
6.4 overall thermo-fluid performance evaluation
6.4.1 thermal efficiency index
6.4.2 comparisons of overall thermal performance
6.5 summary
references

chapter 7 theoretical analysis
7.1 introduction and synopsis
7.2 fin analogy model of 2d periodic cellular solids
7.2.1 description of the problem
7.2.2 case i——isothermal surfaces
7.2.3 case ii——constant heat flux surfaces
7.2.4 optimal thermal design
7.3 fin analogy model of 3d i. woven textile
7.3.1 problem description
7.3.2 governing equation of fin model
7.3.3 overall heat transfer rate of woven textile
7.3.4 model verification
7.3.5 discussions
7.4 fin analogy model of 3d ii. lattice-frame materials
7.4.1 formulation of a governing fin equation
7.4.2 empirical heat transfer data input
7.4.3 model verification
7.4.4 discussions
7.5 analysis of 2d periodical cellular metals with developingflow
7.5.1 introduction
7.5.2 problem description
7.5.3 analysis
7.5.4 validation of optimization analysis
7.5.5 case studies and discussions
7.6 summary
references

chapter 8 future
8.1 multi-layered lfm
8.2 optimal design for 2d cellular materials
8.2.1 optimal design of 2d cellular materials for multifunctionalapplications
8.2.2 optimal design of 2d cellular materials with gradedrectangular cells
8.3 thermo-fluid characteristics of 2d cellular materials withmicro cells
8.4 heat transfer enhancement techniques to 2d cellularmetals
8.5 woven screens with hollow struts
8.6 effects of flow unsteadiness on the heat transferenhancement
8.7 multi-block 2d periodic cellular metals
8.7.1 pressure loss
8.7.2 heat transfer
8.7.3 multi-block: worthwhile or not
8.7.4 conclusions
references

Thermo-fluid behaviour of periodic cellular metals = 作者简介

Dr.Tian Jian Lu is a professor at the School of Aerospace,Xi’an Jiaotong University,Xi’an,China.Dr.Feng Xu is a professor at the Key Laboratory of Biomedical Information Engineering of Ministry of Education,School of Life Science and Technology,Xi’an Jiaotong University.Dr.Ting Wen is now an engineer at Shell Global Solutions Inc.Dr.Lu and Dr.Xu are also affiliated with Biomedical Engineering and Biomechanics Center,Xi’an Jiaotong University.

Thermo-fluid behaviour of periodic cellular metals =

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