H222-02
Precipitation and evapotranspiration partitioning and dynamics in tropical Andean tussock grasslands

Thursday, 17 December 2020: 04:03
Virtual
Ana Elizabeth Ochoa-Sánchez, University of Azuay, Environmental Engineering School, Faculty of Science and Technology, Cuenca, Ecuador, Patricio Crespo, Universidad de Cuenca, Departamento de Recursos Hídricos y Ciencias Ambientales & Facultad de Ciencias Agropecuarias, Cuenca, Ecuador, Galo Carrillo-Rojas, Universidad de Cuenca, Departamento de Recursos Hídricos y Ciencias Ambientales, Facultad de Ciencias Químicas, Av. 12 de abril s/n, EC010207, Cuenca, Ecuador and Rolando Célleri, Universidad de Cuenca, Departamento de Recursos Hídricos y Ciencias Ambientales, Cuenca, Ecuador
Abstract:
The páramo biome provides key ecosystem services in the Andes. Water resources from the páramo are used for drinking water, irrigation, hydropower generation and for sustaining aquatic ecosystems. Notwithstanding mountainous terrains place difficulties for their study, due to its remoteness and data scarcity, knowledge about the functioning of this biome has improved lately. Precipitation (P) and runoff monitoring has increased dramatically, but this was not the case for evapotranspiration (ETa). In order to understand the components of the hydrological cycle, this study aimed at understanding precipitation partitioning and evapotranspiration components of this important biome by pursuing the following three objectives: (1) to quantify canopy interception and transpiration (2) to find suitable methods for measuring and estimating evapotranspiration, and (3) to investigate the controls on evapotranspiration.

Results show the high rainfall interception by vegetation. The maximum capacity of tussock grasslands to intercept water was 2 mm. During small events (P < 2 mm), between 100 and 80 % of precipitation was intercepted and released back to the atmosphere as vapour; while during large events (P > 2 mm), interception loss decreased from 80 to 10 %. During dry periods, transpiration rates were on average 1.7 mm/day (ranging between 0.7 and 2.7 mm/day) and on top, the fog and dew harvested by the vegetation contributed to the evapotranspiration in around 30 %.

For measuring evapotranspiration, the eddy-covariance method is considered the most accurate and with the highest resolution. However, given the high cost of the method, complex installation, operation and maintenance, two hydrological models (HBV-light and PDM) and the calibrated Penman-Monteith equation were found as robust alternative methods for the daily estimation of evapotranspiration. These alternative methods were accurate (Pearson’s correlation coefficient > 0.7 and bias percentage < 20 %), freely available and easy to implement. This study also showed that the commonly used water balance method was not suitable for estimating evapotranspiration at daily or monthly scale.

Finally, it was found that the páramo biome had a relatively low evapotranspiration rate (annual ETa/P = 0.5) and is an energy-limited site, where net radiation is the primary control of evapotranspiration (annual ETa/Rn = 0.47). The secondary controls were wind speed, surface and aerodynamic conductance, especially important during dry periods.

This study contributed to the understanding of precipitation partitioning and unravelling the evapotranspiration dynamics and processes in a biome that offers water resources for many cities in the Andes. It highlighted the importance of understanding the components of the hydrological cycle in order to better assess the functioning of the páramo ecosystem, has increased in the past decade, but that still needs further attention, given its importance to water resources and upcoming challenges such as land use and climate change.