Contributors | Affiliation | Role |
---|---|---|
Nickols, Kerry J. | California State University Northridge (CSUN) | Principal Investigator, Project Coordinator |
Dunbar, Robert B. | Stanford University | Co-Principal Investigator |
Hirsh, Heidi | Stanford University | Scientist, Contact |
Monismith, Stephen G. | Stanford University | Scientist |
Mucciarone, David | Stanford University | Scientist |
Takeshita, Yuichiro | Monterey Bay Aquarium Research Institute (MBARI) | Scientist |
Traiger, Sarah | United States Geological Survey (USGS) | Scientist |
Soenen, Karen | Woods Hole Oceanographic Institution (WHOI BCO-DMO) | BCO-DMO Data Manager |
These data are published in Hirsh et al., see related publications section.
Surface irradiance measured from June to October 2018. Weather station located on the roof of the Monterey Bay Aquarium (36.62 °N, 121.90°W), approximately 310 m from the kelp mooring site. Eric Kingsley provided weather station data from the Monterey Bay Aquarium
Total solar radiation (surface irradiance) was measured by an Eppley Model Precision Spectral Pyranometer (PSP), at 2-minute intervals.
Raw data, no processing.
BCO-DMO processing notes:
File |
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irradiance.csv (Comma Separated Values (.csv), 1.44 MB) MD5:e84dd7a9528c71e64cc2b361f0fe9e9a Primary data file for dataset ID 822517 |
Parameter | Description | Units |
ISO_DateTime_UTC | Sampling date and time in ISO format (yyyy-mm-ddThh:mm:ssZ) in UTC (coordinated Universal Time) | yyyy-MM-dd'T'HH:mm:ss'Z' |
Irradiance | Surface irradiance | umol/m2/s |
Latitude | Latitude of sampling location, south is negative | decimal degrees |
Longitude | Longitude of sampling location, west is negative | decimal degrees |
Dataset-specific Instrument Name | Eppley Model Precision Spectral Pyranometer |
Generic Instrument Name | Precision Spectral Pyranometer |
Dataset-specific Description | Total solar radiation (surface irradiance) was measured by an Eppley Model Precision
Spectral Pyranometer (PSP), at 2-minute intervals. |
Generic Instrument Description | This radiometer measures sun and sky irradiance in the range of wavelengths 0.285 to 2.8 microns, including most of the solar spectrum. The PSP is intended to weight the energy flux in all wavelengths equally. It is a "hemispheric receiver" intended to approximate the
cosine response for oblique rays. The Eppley Precision Spectral Pyranometer (PSP) is primarily used where high accuracy is required or where it is used to calibrate other pyranometers. The PSP outputs a low level voltage ranging from 0 to a maximum of about 12mV depending on sensor calibration and radiation level. An instruction manual provided by Eppley contains the sensor calibration constant and serial number. The Precision Spectral Pyranometer is a World Meteorological Organization First Class Radiometer and comes with a calibration certificate traceable to the World Radiation Reference and a temperature compensation curve. More information is available from Eppley Labs. |
NSF Award Abstract:
Kelp forest ecosystems are of ecological and economic importance globally and provide habitat for a diversity of fish, invertebrates, and other algal species. In addition, they may also modify the chemistry of surrounding waters. Uptake of carbon dioxide (CO2) by giant kelp, Macrocystis pyrifera, may play a role in ameliorating the effects of increasing ocean acidity on nearshore marine communities driven by rising atmospheric CO2. Predicting the capacity for kelp forests to alter seawater chemistry requires understanding of the oceanographic and biological mechanisms that drive variability in seawater chemistry. The project will identify specific conditions that could lead to decreases in seawater CO2 by studying 4 sites within the southern Monterey Bay in Central California. An interdisciplinary team will examine variations in ocean chemistry in the context of the oceanographic and ecological characteristics of kelp forest habitats. This project will support an early career researcher, as well as train and support a postdoctoral researcher, PhD student, thesis master's student, and up to six undergraduate students. The PIs will actively recruit students from underrepresented groups to participate in this project through Stanford University's Summer Research in Geosciences and Engineering (SURGE) program and the Society for Advancement of Hispanics/Chicanos and Native Americans in Science (SACNAS). In addition, the PIs and students will actively engage with the management community (Monterey Bay National Marine Sanctuary and California Department of Fish and Wildlife) to advance products based on project data that will assist the development of management strategies for kelp forest habitats in a changing ocean.
This project builds upon an extensive preliminary data set and will link kelp forest community attributes and hydrodynamic properties to kelp forest biogeochemistry (including the carbon system and dissolved oxygen) to understand mechanistically how giant kelp modifies surrounding waters and affects water chemistry using unique high-resolution measurement capabilities that have provided important insights in coral reef biogeochemistry. The project sites are characterized by different oceanographic settings and kelp forest characteristics that will allow examination of relationships between kelp forest inhabitants and water column chemistry. Continuous measurements of water column velocity, temperature, dissolved oxygen, pH, and photosynthetically active radiation will be augmented by twice-weekly measurements of dissolved inorganic carbon, total alkalinity, and nutrients as well as periods of high frequency sampling of all carbonate system parameters. Quantifying vertical gradients in carbonate system chemistry within kelp forests will lead to understanding of its dependence on seawater residence time and water column stratification. Additional biological sampling of kelp, benthic communities, and phytoplankton will be used to 1) determine contributions of understory algae and calcifying species to bottom water chemistry, 2) determine contributions of kelp canopy growth and phytoplankton to surface water chemistry, and 3) quantify the spatial extent of surface chemistry alteration by kelp forests. The physical, biological, and chemical data collected across multiple forests will allow development of a statistical model for predictions of kelp forest carbonate system chemistry alteration in different locations and under future climate scenarios. Threshold values of oceanographic conditions and kelp forest characteristics that lead to alteration of water column chemistry will be identified for use by managers in mitigation strategies such as targeted protection or restoration.
Funding Source | Award |
---|---|
NSF Division of Ocean Sciences (NSF OCE) | |
NSF Division of Ocean Sciences (NSF OCE) |