A comment to "Assessment of temperature gradient effects on moisture transfer through thermogradient coefficient"

被引:3
作者
Janssen, Hans [1 ]
机构
[1] Katholieke Univ Leuven, Bldg Phys Sect, Dept Civil Engn, B-3000 Louvain, Belgium
关键词
vapour diffusion; thermal diffusion; thermogradient coefficient; vapour pressure; moisture buffer value; POROUS BUILDING-MATERIALS; TRANSPORT; HEAT;
D O I
10.1007/s12273-012-0099-y
中图分类号
O414.1 [热力学];
学科分类号
摘要
In their recent paper in Building Simulation (Trabelsi et al. (2012), Building Simulation, 5: 107-115), "Assessment of temperature gradient effects on moisture transfer through thermogradient coefficient", Trabelsi et al. introduce their assertions on "the occurrence of significant thermal diffusion". In this comment, the premises and outcomes of their analysis are challenged, based on my own recent paper on that same topic (Janssen (2011), "Thermal diffusion of water vapour in porous materials: Fact or fiction?" International Journal of Heat and Mass Transfer, 54: 1548-1562). Firstly Trabelsi et al.'s physical model and measurement methodology are critiqued, partially based on their own measured results. Reinterpretation of their data indicates that no consistent nor significant thermal diffusion can be found, confirming vapour pressure as sole significant transport potential for diffusion. This suggests that their physical model, built upon vapour density and temperature, is physically confusing and needlessly complicated. The model additionally requires a thermogradient coefficient, the measurement of which is complex and unreliable. A physical model for vapour diffusion based on vapour pressure, making use of the easy to measure vapour permeability, is thus pragmatically and fundamentally preferable. The comment finally ends by disputing Trabelsi et al.'s findings on the impact of thermal diffusion on moisture buffering: it is argued that they are practically and fundamentally faulty.
引用
收藏
页码:103 / 108
页数:6
相关论文
共 16 条
[1]   Temperature gradient effects on moisture transport in porous building materials [J].
Baker, Paul H. ;
Galbraith, Graham H. ;
McLean, R. Craig .
BUILDING SERVICES ENGINEERING RESEARCH & TECHNOLOGY, 2009, 30 (01) :37-48
[2]  
DAHL SD, 1996, HVAC&R RES, V2, P42
[3]   Driving potentials of heat and mass transport in porous building materials: A comparison between general linear, thermodynamic and micromechanical derivation schemes [J].
Funk, Max ;
Ghazi Wakili, Karim .
TRANSPORT IN POROUS MEDIA, 2008, 72 (03) :273-294
[4]   Nonisothermal moisture diffusion in porous building materials [J].
Galbraith, GH ;
McLean, RC ;
Gillespie, I ;
Guo, J ;
Kelly, D .
BUILDING RESEARCH AND INFORMATION, 1998, 26 (06) :330-339
[5]  
GLASS SV, 2007, MEASUREMENTS MOISTUR
[6]   Thermal diffusion of water vapour in porous materials: Fact or fiction? [J].
Janssen, Hans .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2011, 54 (7-8) :1548-1562
[7]   Qualitative and quantitative assessment of interior moisture buffering by enclosures [J].
Janssen, Hans ;
Roels, Staf .
ENERGY AND BUILDINGS, 2009, 41 (04) :382-394
[8]  
Kumaran M.K., 1987, J THERM INSUL, V10, P243
[9]   Non-isothermal moisture transport through insulation materials [J].
Peuhkuri, Ruut ;
Rode, Carsten ;
Hansen, Kurt Kielsgaard .
BUILDING AND ENVIRONMENT, 2008, 43 (05) :811-822
[10]  
Qin M, 2008, J MATER SCI, V43, P3655, DOI 10.1007/S10853-008-2584-3