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Measurements of fog, wind, fog interception, soil moisture, and fog effects on plant water use and plant survival were collected to test a model to estimate CWI as a function of fog-water movement and vegetation characteristics.
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Measurements of fog, wind, fog interception, soil moisture, and fog effects on plant water use and plant survival were collected along with these vegetation data to test a model to estimate CWI as a function of fog-water movement and these vegetation characteristics.
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Data of a calibrated fog gauge at each of the five stations. Parameters include total fog water collection, wind-driven rain collection, fog-only water collection, cloud water flux, and cloud liquid water content.
The outputs of two versions of the Single-Layer Wet Canopy Water Balance model. Parameters include cloud water interception, evaporation of rainwater or fog water from wet canopy (interception evaporation), and canopy water storage.
The associated uncertainties of future climate projections are one of the biggest obstacles to overcome in studies exploring the potential regional impacts of future climate shifts. In remote and climatically complex regions, the limited number of available downscaled projections may not provide an accurate representation of the underlying uncertainty in future climate or the possible range of potential scenarios. Consequently, global downscaled projections are now some of the most widely used climate datasets in the world. However, they are rarely examined for representativeness of local climate or the plausibility of their projected changes. Here we explore the utility of two such global datasets (CHELSA and WorldClim2)...
Categories: Publication; Types: Citation
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Measurements of fog, wind, fog interception, soil moisture, and fog effects on plant water use and plant survival were collected to test a model to estimate CWI as a function of fog-water movement and vegetation characteristics.
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The climate in Hawai‘i is changing, and alterations in rainfall amount and distribution have implications for future vegetation cover, non-native species invasions, watershed function, and fire behavior. As novel ecosystems and climates emerge in Hawai‘i, particularly hotter and drier climates, it is critical that scientists produce locally relevant, timely and actionable science products and that managers are able to access the best-available science. Managers and researchers have identified that a knowledge exchange process is needed for drought in Hawai‘i to allow for formal collaboration between the two groups to co-produce drought data and products. To address this need, this project will pilot a focused...
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Measurements of fog, fog interception parameters, and climate variables such as wind, radiation, temperature, and humidity, along with vegetation data, to test a model to estimate CWI as a function of fog-water movement and vegetation characteristics.


    map background search result map search result map Working with Natural Resource Managers to Co-Produce Drought Analyses in Hawai‘i Canopy Water Balance Input Data for 5 sites in Hawai'i from 2016-2019 Vegetation Characterization for 5 sites in Hawai'i from 2016-2019 Calibrated Fog Gauge Data for 5 sites in Hawai'i from 2016-2019 Canopy Water Balance Output Data for 5 sites in Hawai'i from 2016-2019 Climate Data for 5 sites in Hawai'i from 2016-2019 Cloud Water Interception Parameters for 5 sites in Hawai'i from 2016-2019 Vegetation Characterization for 5 sites in Hawai'i from 2016-2019 Canopy Water Balance Input Data for 5 sites in Hawai'i from 2016-2019 Calibrated Fog Gauge Data for 5 sites in Hawai'i from 2016-2019 Canopy Water Balance Output Data for 5 sites in Hawai'i from 2016-2019 Climate Data for 5 sites in Hawai'i from 2016-2019 Cloud Water Interception Parameters for 5 sites in Hawai'i from 2016-2019 Working with Natural Resource Managers to Co-Produce Drought Analyses in Hawai‘i