Publication result detail

Water Retention and Evaporation Dynamics of Mineral Growing Media for Indoor Horticulture Systems

SCHABAUER, J.; STREIT, E.; KORJENIC, A.; PETERKOVÁ, J.; ZACH, J.; SULEJMANOVSKI, A.

Original Title

Water Retention and Evaporation Dynamics of Mineral Growing Media for Indoor Horticulture Systems

English Title

Water Retention and Evaporation Dynamics of Mineral Growing Media for Indoor Horticulture Systems

Type

WoS Article

Original Abstract

Mineral substrates for indoor horticulture systems critically determine plant water availability and irrigation demand. However, integrative assessments linking pore structure, water retention, and evaporation dynamics of commonly used mineral growing media remain scarce. A total of nine distinct mineral substrates were investigated: expanded clay, expanded slate, pumice, perlite, zeolite, vermiculite, lava granules, brick chips, and clay granules. To assess the impact of granulometry, pumice was tested in three different grain sizes (1–3 mm, 4–7 mm, 7–14 mm), resulting in a total of 11 experimental samples. Samples were characterized using scanning electron microscopy (SEM), suction experiments, and evaporation tests at 30%, 50%, and 70% relative humidity (RH) at 23 ◦C. Bulk density ranged from 0.99 g·cm−3 (zeolite, brick chips), while volumetric water content varied from 11.0 vol.% (expanded clay) to 46.6 vol.% (vermiculite). Plant-available water content (AWC) ranged from 2.7 vol.% (expanded clay) to 30.9 vol.% (clay granules). These results demonstrate that pore interconnectivity, rather than total porosity, is the decisive driver of hydraulic performance. Finer pumice fractions increased water retention by ~16% compared to coarser fractions. All substrates exhibited a twophase evaporation profile, with initial rates ranging from 1.9 to 5.6 g·h−1 at 30% RH. Clay granules showed the most temporally stable evaporation, with only a 37% rate reduction over 48 h, compared to 66% for perlite. While conducted under controlled laboratory conditions, these findings provide a quantitative basis for targeted substrate selection and blending to optimize root-zone hydration, irrigation efficiency, and hygrothermal performance in permanent indoor horticulture systems.

English abstract

Mineral substrates for indoor horticulture systems critically determine plant water availability and irrigation demand. However, integrative assessments linking pore structure, water retention, and evaporation dynamics of commonly used mineral growing media remain scarce. A total of nine distinct mineral substrates were investigated: expanded clay, expanded slate, pumice, perlite, zeolite, vermiculite, lava granules, brick chips, and clay granules. To assess the impact of granulometry, pumice was tested in three different grain sizes (1–3 mm, 4–7 mm, 7–14 mm), resulting in a total of 11 experimental samples. Samples were characterized using scanning electron microscopy (SEM), suction experiments, and evaporation tests at 30%, 50%, and 70% relative humidity (RH) at 23 ◦C. Bulk density ranged from 0.99 g·cm−3 (zeolite, brick chips), while volumetric water content varied from 11.0 vol.% (expanded clay) to 46.6 vol.% (vermiculite). Plant-available water content (AWC) ranged from 2.7 vol.% (expanded clay) to 30.9 vol.% (clay granules). These results demonstrate that pore interconnectivity, rather than total porosity, is the decisive driver of hydraulic performance. Finer pumice fractions increased water retention by ~16% compared to coarser fractions. All substrates exhibited a twophase evaporation profile, with initial rates ranging from 1.9 to 5.6 g·h−1 at 30% RH. Clay granules showed the most temporally stable evaporation, with only a 37% rate reduction over 48 h, compared to 66% for perlite. While conducted under controlled laboratory conditions, these findings provide a quantitative basis for targeted substrate selection and blending to optimize root-zone hydration, irrigation efficiency, and hygrothermal performance in permanent indoor horticulture systems.

Keywords

soilless culture; hydraulic continuity; urban horticulture; pore interconnectivity; plant-available water; porous media; drying kinetics

Key words in English

soilless culture; hydraulic continuity; urban horticulture; pore interconnectivity; plant-available water; porous media; drying kinetics

Authors

SCHABAUER, J.; STREIT, E.; KORJENIC, A.; PETERKOVÁ, J.; ZACH, J.; SULEJMANOVSKI, A.

Released

21.04.2026

Publisher

MDPI

Periodical

Horticulturae

Volume

12

Number

4

State

Swiss Confederation

Pages from

1

Pages to

19

Pages count

19

URL

BibTex

@article{BUT211718,
  author="{} and  {} and  {} and Jitka {Peterková} and Jiří {Zach} and  {}",
  title="Water Retention and Evaporation Dynamics of Mineral Growing Media for Indoor Horticulture Systems",
  journal="Horticulturae",
  year="2026",
  volume="12",
  number="4",
  pages="19",
  doi="10.3390/horticulturae12040501",
  url="https://doi.org/10.3390/horticulturae12040501"
}