Archive/Transpiration and Stomatal Conductance Dynamics of Typical Trees in the Horqin Sandy Land, Northern China: Implications for Water Use in Semi-Arid Forests
Transpiration and Stomatal Conductance Dynamics of Typical Trees in the Horqin Sandy Land, Northern China: Implications for Water Use in Semi-Arid Forests
Jifeng Deng, Yueyao Li, Yanfeng Bao et al.
23. Juli 2026
en

Abstract

Continuous sap-flow monitoring is a key approach for understanding water-use strategies of shelterbelt species in semi-arid sandy lands. This study investigated two tree species (Populus alba var. pyramidalis Bge. and Pinus sylvestris var. mongholica Litv.) and two shrub species (Salix psammophila C. Wang & C. Y. Yang and Atraphaxis bracteata Losinsk.) in the Zhanggutai region, southern Horqin Sandy Land. Sap flow, environmental variables, and precipitation were continuously measured during the 2019–2020 growing seasons. Stomatal conductance (gs) and its sensitivity to vapor pressure deficit (VPD) were evaluated. Precipitation dropped from 302.3 mm in 2019 to 106.3 mm in 2020. Daily sap flow peaked mid-season and declined by 21.9%–29.2% during 2020. VPD and solar radiation were primary drivers with narrow response lags. Trees exhibited higher gs and stronger stomatal sensitivity than shrubs, showing steeper declines as VPD rose, which indicates key drought adaptation and protective mechanisms. Conversely, shrubs maintained a moderate and more stable gs profile throughout the growing season. In 2020, soil water deficits may force stomatal closure, causing a pronounced drop in baseline gs and a subsequent decline in sensitivity across all species. This widespread environmental decoupling indicates a critical shift from an atmospheric demand-limited regime during the wet year to a supply-limited regime during the drought year. Overall, trees demonstrated more pronounced stand-scale hydroclimatic sensitivity than shrubs. Given the persistent water consumption by shrubs, our results suggest tree species may offer advantages in later forest restoration stages. Nevertheless, further studies integrating biomass growth and ecosystem water balance are needed to optimize sustainable shelterbelt management.

IPC Classification

A01

Keywords

transpirationstomatalconductancedynamicstypicaltreeshorqinsandylandnorthernchinaimplicationswatersemi-aridforestscontinuoussap-flowmonitoringapproachunderstandingwater-usestrategiesshelterbeltspecies
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