Do we understand the drying of porous materials?


Date

2023-11-09

Publication Type

Conference Paper

ETH Bibliography

yes

Citations

Altmetric

Data

Abstract

Convective drying at pore scale is studied by a two-component two-phase lattice Boltzmann model at pore scale showing the important influence of capillary pumping from large to small pores and pinning of contact lines in dual porosity materials. Capillary pumping and pinning explains the first drying period with almost constant drying rate. The drying rate during the first drying period is found to depend on air velocity or Reynolds (Re) number, and a logarithmic relation between average drying rate and Re is found. This analysis allows to better understand first and second drying period and their dependence on air velocity and pore structure. In an upscaling example, the evaporative cooling effect of a two-layer porous pavement with optimal wetting protocol is analyzed for a square in Zurich. The top layer of the pavement enhances drying during first drying period due to capillary pumping, while the second layer prevents loss of sprayed water to the subsoil. The evaporative cooling from pavements enhances the thermal comfort, but has to be combined with other measures like shadowing from trees. The proposed multiscale approach upscaling from pore to continuum scale is believed to enhance the understanding of drying of porous materials and its application in urban and building physics.

Publication status

published

Book title

5th Central European Symposium on Building Physics 2022 (CESBP 2022)

Volume

2918 (1)

Pages / Article No.

20009

Publisher

American Institute of Physics

Event

5th Central European Symposium on Building Physics 2022 (CESBP 2022)

Edition / version

Methods

Software

Geographic location

Date collected

Date created

Subject

Porous media; Lattice Boltzmann methods; Treaties

Organisational unit

03806 - Carmeliet, Jan / Carmeliet, Jan check_circle

Notes

Funding

175793 - Multiphase fluid flow, crystallization, partial freezing and damage processes in deforming porous materials (SNF)
169323 - Wind-driven rain impact of urban microclimate: wetting and drying processes in urban environment (SNF)
ETH-08 16-2 - Neighborhood-Resolved Climate model for local heat island mitigation (ETHZ)

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