skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Subsurface biogeochemistry is a missing link between ecology and hydrology in dam-impacted river corridors

Journal Article · · Science of the Total Environment

Global investment in hydropower is rapidly increasing, fueled by a need to manage water availability and by incentives promoting renewableenergysources.Thisexpansion poses unrecognizedrisksto theworld's vulnerable freshwater ecosystems. While many hydropower impacts have been investigated, dam-induced alterations to subsurface processes in fluence river corridor ecosystem health in ways that remain poorly understood. We ad- vocate for a betterunderstanding ofdam impactson subsurface biogeochemicalactivity, its connectionto hydrology, and follow-on trophic cascades within the broader river corridor. We delineate an integrated view of hydropower impacts in which dam-induced changes to surface water flow regimes generate changes in surface-subsurface hydrologic exchange flows (HEFs) that subsequently (1) regulate resource availability for benthic microorganisms at the base of aquatic food webs and (2) impose kinetic constraints on biogeochemical reactions and organismal growth across a range of trophic levels. These HEF-driven effects on river corridor food webs, as mediated by subsurface biogeochemistry, are a key knowledge gap in our assessment of hydropower sustainability and putatively combine with other, more well-known dam impacts to result in significant changes to river corridor health. We suggest targeted laboratory and field-based studies to link hydrobiogeochemical models used to predict heat transport, biogeochemical rates, and hydrologic flow with ecological models that incorporate biomass changes in specific categories of organisms. Doing so will enable predictions of feedbacks among hydrology, temperature, biogeochemical rates, organismal abundances, and resource transfer across trophic levels. This understanding of dam impacts on subsurface hydrobiogeochemistry and its connection to the broader aquatic food web is fundamental to enabling mechanism-based decision making for sustainable hydropower operations.

Research Organization:
Pacific Northwest National Lab. (PNNL), Richland, WA (United States)
Sponsoring Organization:
USDOE
DOE Contract Number:
AC05-76RL01830
OSTI ID:
1496800
Report Number(s):
PNNL-SA-132468
Journal Information:
Science of the Total Environment, Vol. 657, Issue C; ISSN 0048-9697
Publisher:
Elsevier
Country of Publication:
United States
Language:
English

Related Subjects