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内容简介对流换热及其强化的理论与实验研究最新进展 本书内容包括:强化传热、传质原理与方法的实验与数值研究、多孔介质中的传热传质规律研究、微细结构中流动与换热基本规律研究、脉管制冷机中的传输机理研究等。
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http://www.readbuy.cn/product/image/bg_point1.gif 作者简介对流换热及其强化的理论与实验研究最新进展作者姓名:陶文铨$ Q' w; h/ z; c- m' _. G2 s7 N
相关作品:《传热与流动问题的多尺度数值模拟:方法与应用》《数值传热学》《工程热力学》《计算传热学的近代进展》《对流换热及其强化的理论与实验研究最新进展》《传热学》《传热学》
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! w$ y+ c) m" r% V8 H7 G$ S作者姓名:何雅玲
( ^) d+ @0 Z& J) W2 S6 {2 w* |7 {相关作品:《工程热力学精要分析典型题解》《格子Boltzmann方法的理论及应用》《工程热力学常见题型解析及模拟题》《对流换热及其强化的理论与实验研究最新进展》《工程热力学精要分析及典型题精解》
% ~/ u& [5 k1 V" _作者简介:何雅玲,女,1963年9月生,博士,教授,博士生导师,获政府特殊津贴的专家,长江学者奖励计划特聘教授,国家杰出青年科学基金获得者及全国百篇优秀博士论文获得者,第二届国家教学名师奖获得者,被人事部、科技部等七部委联合确定为新世纪百千万人才工程国家级人才,获国家人事部、教育部授予的全国模范教师称号,教育部新世纪优秀人才,全国优秀教师宝钢特等奖获得者,国家首届优秀教学团队负责人,国家级精品课程“工程热力学”负责人。
0 w4 B/ C9 ^/ j2 B! u现兼任:国际制冷学会热力学与传热过程委员会副主席,教育部高等学校热工基础课程教学指导委员会副主任委员,中国工程热物理学会理事及工程热力学分科学会副主任,真空低温技术与物理国防科技国家重点实验室学术委员会委员等多个学术委员会的委员或理事。国际期刊《Applied Thermal Engineering》地区副主编,《科学通报》、《西安交通大学学报》等多个学术期刊编委。国家科学技术奖评审专家,国际科技合作计划项目评价专家,国家863计划评审专家。
" s7 l2 r8 G+ @成果:多年来一直从事能源与动力工程领域的前沿研究。主持多项国家重点基础研究(973),国家重点科技攻关,国家自然科学基金重点与面上项目,国家863,教育部重大科技项目,国防武器预研项目,中美、中日国际合作等科研项目30余项。获科研、教学成果奖30余项,其中,国家自然科学二等奖1项,教育部科技进步一等奖、教育部自然科学二等奖各1项,省科技进步一等奖1项;国家级优秀教学成果一等奖1项,二等奖2项,省优秀教学成果特等奖2项,一等奖2项。出版著作、教材9部(含合作)。发表研究论文330余篇,国际期刊100余篇,国际会议80余篇。获发明专利授权10项,实用新型专利5项,获软件著作权13项。
1 O" ^0 J- [) U/ L7 e5 _* E9 f! k 主要研究方向:能源的高效利用与节能理论与新方法研究,新能源利用(燃料电池,太阳能),电子器件冷却技术,流动与传热过程的数值原理及其应用,高技术中热机和制冷机的新循环及其热工理论。
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http://www.readbuy.cn/product/image/bg_point1.gif 目录对流换热及其强化的理论与实验研究最新进展Progress on researches for physical laws of natural convection heat transfer in past decade( u0 K* o! v* j5 ~% C
专题总结论文
2 y) o0 H# U$ M; q强化迁移过程的基本理论——场协同原理及其应用
$ m& B3 }6 z+ b- a微通道内流动与换热的数值模拟与实验研究; n+ e" \: r$ f9 l. n. Z; k
非连续多孔介质热物性的分形描述和能量与物质迁移规律的研究
5 s, Z4 u8 D( B6 O9 n& S) K含湿多孔介质中热量和物质组分耦合迁移的机制与模型研究
. L- B( G* U( ?& ~1 U/ dCPL毛细芯内相变传热与流动的模型与数值计算
1 t& [3 D/ b2 q! E' }! U3 `3 i双尺度波纹板板壳式换热器强化换热的研究3 A+ j6 r- o% _0 d0 \3 D1 m0 Y; _& M
一、强化传热、传质原理与方法的实验与数值研究/ [) O& U5 E& M# _
换热器集箱管组流动和换热分析+ V9 E" j; i8 [& p1 ]( t
A unified analysis on enhancing single phase convective heat transfer with field synergy principle
) R# z/ q3 E; H9 o% [( W% S- }Field synergy principle for enhancing convective heat transfer~its extension and numerical verifications
5 ~( l3 M8 Q+ Z! j# D! xApplications of the field synergy principle in developing new type heat transfer enhanced Surfaces
/ O9 C7 l& W9 T4 ?0 mNumerical verification of the field synergy principle for turbulent flow
0 D! L, e5 d4 T; a$ u y4 [! GPressure drop and heat transfer characteristics of turbulent flow in annular tubes with internal + W' x* C- p6 N( X# K7 ^" g1 {
wave—like longitudinal fins
! }; Q# {0 ~0 x' N# lThree—dimensional numerical simulation on laminar heat transfer and fluid flow characteristics of
8 _' X, [+ U$ Y- W3 E* ^0 c* ]4 C9 pstrip fin surface with X—arrangement of strips& |! y$ V! R5 V+ n* x1 Q* ]
Numerical design of efficient slotted fin surface based on the field synergy principle Cheng Y P,Qu:9 v% z% j0 c+ r0 F" G4 a
非饱和多孔介质中自然对流传热的场协同分析; T* r6 J5 f$ g) J, c; T
CPL蒸发器毛细芯中流动与传热的场协同分析
. H: v6 ~$ O) YStudy on boiling heat transfer in liquid saturated particle bed and fluidized bed& j9 ]5 C0 b# _. d, X0 F1 x2 V( I
离心流化床中强制对流换热的实验研究4 F4 i+ N6 w" b6 u, p
离心力场作用下多孔介质中强制对流换热的研究
4 d7 c1 d7 ^# F3 \! r用波动理论确定气固磁流化床的临界稳定区
$ k5 z4 P+ c7 s; O! y0 j固体颗粒强化液体沸腾换热和抗垢特性的研究- r, i* \# x% x) a) o; H, n
活性炭对苯蒸气吸附与分离过程的实验研究4 h( A& Y2 Z; X% `: p" S. ]
双尺度波纹板束上溴化锂降膜吸收的实验研究5 M6 W: c& Y6 n9 m
湍流流动和传热整体传输特性的数学分析8 z Y1 b: x% d/ f* V5 Q
二、多孔介质中的传热传质规律研究
- A( t8 ]" k, tHeat transfer and phase change of liquid in an inclined enclosure packed with unsaturated porous media
& f( q' \0 |, [8 zHeat and mass transfer with phase change in a rectangular enclosure packed with unsaturated porous material" H2 Y' Y% B$ _2 F ]/ @& g
Fraetal analysis of permeabilities for porous media ) }+ O: K! A2 O+ u% o4 d; k2 [
Numerical and experimental analysis of convection heat transfer in passive
4 s- Q9 F* U8 u; f6 ^, z0 z- dsolar heating room with greenhouse and heat storage$ g2 ]7 D# q; {. I0 q$ g) |
Numerical analysis of heat transfer in a composite wall solar collector system with porous absorber - ?$ e, w2 t1 V& C% g( z
Study of heat and moisture transfer in soil with a dry surface layer- q* V' _! x/ T" P) H) F4 U0 o
Modeling for heat and mass transfer with phase change in porous wick of CPL evaporator
| S- ]& X: R& e$ q1 ?8 w' VSteady numerical simulation for heat and moisture migration in vegetation soil under various conditions
$ r5 c0 D2 \) X) |9 d pDetermination of pel~neability using fractal method for porous media
9 X1 y" K L; m' pInvestigation on moisture transfer mechanism in porous media during rapid drying process/ W+ X: |, [! A: R2 h- l) G9 K. e
分形多孔介质中的热传导& K. L* d5 n5 b
三、微细结构中流动与换热基本规律研究
$ t# [) ]- c# d: s: {* xLattice Boltzmann method for simulating gas flow in microchannels
6 b6 H- p4 e. D) mLattice Boltzmann simulation of flow in porous media on nonuniform mesh grids " u0 s% O g* Z* F$ G; Y" r
An experimental investigation of gaseous flow characteristics in microchannels
- h- I8 L- D1 @" G2 T' E7 @: fTurbulent statistics of rarefied flows in mierochannel flow and heat transfer" h6 U% _) m) S6 t$ p' \; Q
Lattice Boltzmann method for gaseous mieroflows using kinetic theory boundary conditions
9 c+ E( m2 W! E8 l9 T& lThree-dimensional lattice Bohzmann model for gaseous flow in rectangular microducts and
2 ~4 V$ `7 @+ [4 P2 P: Rmieroseale porous media
" \2 h1 @0 r% w0 D; O Z4 GA numerical study of laminar convective heat transfer in microchannel with non--circular crosssection0 O+ K2 h0 l$ [
用直接模拟Monte Carlo方法计算微通道的流动与换热/ x: p0 d7 d* y* _0 k3 V3 Y
四、脉管制冷机中的传输机理研究
; n6 V" V" S6 t# _" L: b. CSteady natural convection in a vertical cylindrical envelope with adiabatic lateral wall
/ u1 g, X/ H' T. ~/ j9 QSteady natural convection in a tilted long cylindrical envelope with lateral adiabatic
# s9 q" c2 P: ]3 @8 Osurface,part 1:theoretical modeling and numerical treatments& x, R6 ] w$ v' ~
Steady natural convection in a tilted long cylindrical envelope with lateral adiabatic2 D8 e# ?4 [! m5 t0 H5 O/ v
surface,part 2:heat transfer rate,flow patterns and temperature distributions
7 s% ]5 ?5 g, G2 }) BThe effect of tube wall heat conduction on the natural convection in a long cylindrical envelope with an adiabatic lateral 4 b( c% x& z6 M
Improvement of the thermal performance of pulse tube refrigerator by using a general
+ d: v( q4 C `( q' e/ o hprinciple for enhancing energy transport and conversion processes+ k3 o- ^& T/ V5 L) g
五、流动与传热问题的先进数值模拟方法3 s+ _8 n+ [ L
A novel segregated algorithm for incompressible fluid flow and heat transfer problems--CLEAR(coupled&linked e: r; }+ [! U7 ` q3 M
algorithm revised)part I:mathematical formulation and solution procedure
; {, _/ P: }; E0 {1 w9 X1 XA novel segregated algorithm for incompressible fluid flow and heat transfer problems--CLEAR(coupled&linked e! Z6 o0 l# G- z d; o/ W, L' i. C
algorithm revised)partⅡ:application examples; _1 x) t) I& f4 E; j; P
Simulation of fluid flow and heat transfer in a plane channel using the lattice Bohzmann method2 C( t2 c* K+ d8 \5 q& p
Refinement of the convective boundedness criterion of Gaskell and Lau
) _5 t2 f& H% o* r" b# eControl of convergence in a computational fluid dynamic simulation using fuzzy logic
. T5 ^- V6 |+ zDiscussion on momentum interpolation method for collocated grids of incompressibl flow ) c; s" I' h% q% t' q) \. Z
Discussion on numerical stability and boundedness 0f convective discretized scheme
| z% V$ a) V$ C bA comparison study of the convergence characteristics and robustness for fEEt variants cf HMPLE family at fine grids
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* P7 T$ b3 Y3 m; e& A; u杨世铭教授论著清单 " h# Q8 j4 G& M7 B& s
附件2
7 S6 T" E, @2 U973项目“高效节能的关键科学问题”第三课题《不连续介质中传热传质的建模、数值模拟及实验研究》! i% r& M9 }% u$ u
(G2000026303)成果总结简表 $ [: ~ c6 Y! T N7 m
附件3
. F* z5 U) r1 d2 A973国家重点基础研究发展规划项目“高效节能的关键科学问题”第三课题《不连续介质中传热传质的建模、/ Q$ m+ W9 o2 F h3 O
数值模拟及实验研究》(G2000026303)发表论文清单 |
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