Related Experiment Video
Updated: Jul 9, 2025

Surface Renewal: An Advanced Micrometeorological Method for Measuring and Processing Field-Scale Energy Flux Density Data
Published on: December 12, 2013
Next-Generation Intensity-Duration-Frequency Curves for Diverse Land across the Continental United States
Hongxiang Yan1, Zhuoran Duan2,3, Mark S Wigmosta2,3
1Earth Systems Science Division, Pacific Northwest National Laboratory, Richland, WA, USA. hongxiang.yan@pnnl.gov.
Abstract:
The current methods for designing hydrological infrastructure rely on precipitation-based intensity-duration-frequency curves. However, they cannot accurately predict flooding caused by snowmelt or rain-on-snow events, potentially leading to underdesigned infrastructure and property damage. To address these issues, next-generation intensity-duration-frequency (NG-IDF) curves have been developed for the open condition, characterizing water available for runoff from rainfall, snowmelt, and rain-on-snow. However, they lack consideration of land use land cover (LULC) factors, which can significantly affect runoff processes. We address this limitation by expanding open area NG-IDF dataset to include eight vegetated LULCs over the continental United States, including forest (deciduous, evergreen, mixed), shrub, grass, pasture, crop, and wetland. This NG-IDF 2.0 dataset offers a comprehensive analysis of hydrological extreme events and their associated drivers under different LULCs at a continental scale. It will serve as a useful resource for improving standard design practices and aiding in the assessment of infrastructure design risks. Additionally, it provides useful insights into how changes in LULC impact flooding magnitude, mechanisms, timing, and snow water supply.
Related Concept Videos
Design Example: Analyzing Capacity Contours for Flood Risk Assessment
Influence of Earth's Curvature and Atmospheric Refraction on Leveling
Intensity Of Electromagnetic Waves
Plotting of Topographic Maps
Methods of Obtaining Topography
Topographic Surveying and Contours

