Contributors | Affiliation | Role |
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Haus, Brian | University of Miami Rosenstiel School of Marine and Atmospheric Science (UM-RSMAS) | Principal Investigator |
Stanley, Rachel | Wellesley College | Co-Principal Investigator |
Smith, Andrew Wyatt | University of Miami Rosenstiel School of Marine and Atmospheric Science (UM-RSMAS) | Student |
York, Amber D. | Woods Hole Oceanographic Institution (WHOI BCO-DMO) | BCO-DMO Data Manager |
SUSTAIN = SUrge STructure Atmosphere INteraction (SUSTAIN) Laboratory / SUSTAIN Wind-Wave Tank
Sampling rate of 20 Hz (20 samples/second)
3 OSS wave wires in equilateral triangular arrangement at about 10m fetch, Wave wire 4 was unused.
Raw data was provided without any modifications. No data processing; data were logged by Campbell Scientific logger and accessed via Campbell Scientific LoggerNet software.
BCO-DMO data manager processing notes:
* The 120 logger files TOA5_OSSwavex4.elev_*.dat were bundled in their original logger format and attached to this dataset in the "Data Files" section.
* 120 logger files imported into the BCO-DMO data system and combined into one data table for this dataset.
* In main data table, TIMESTAMP column converted to ISO8601 format YYYY-MM-DDThh:mm:ss.ffZ with time zone UTC.
* column added "source_file_name" added to main data table so it is clear which logger file each set of rows came from.
* Parentheses in column names removed to meet BCO-DMO naming convention (See https://www.bco-dmo.org/page/bco-dmo-data-processing-conventions).
File |
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SUSTAIN Tank Instrument Inventory filename: TankInstrumentationInventory_SUSTAIN_Wellesley_2018.pdf (Portable Document Format (.pdf), 176.38 KB) MD5:50585954dcb1443882b519c4b829c23a A diagram of the SUSTAIN tank and list of the instruments. Instrument locations are given in centimeters. |
Parameter | Description | Units |
TIMESTAMP | Timestamp (UTC) in ISO 8601 format YYYY-MM-DDThh:mm:ss.ffZ. Includes fractional seconds (centiseconds). E.g. 2018-07-09T23:00:00.10Z | unitless |
RECORD | Record number of measurement | unitless |
OSS_WWire1 | Water depth from "OSS Wave Wire 1" (see Supplemental File 'SUSTAIN Tank Instrument Inventory'). | meters (m) |
OSS_WWire2 | Water depth from "OSS Wave Wire 2" (see Supplemental File 'SUSTAIN Tank Instrument Inventory'). | meters (m) |
OSS_WWire3 | Water depth from "OSS Wave Wire 3" (see Supplemental File 'SUSTAIN Tank Instrument Inventory'). | meters (m) |
OSS_WWire4 | Water depth from "OSS Wave Wire 4" (see Supplemental File 'SUSTAIN Tank Instrument Inventory'). | meters (m) |
source_file_name | Source file name of logger file this table row came from | unitless |
Dataset-specific Instrument Name | Wave Staff III |
Generic Instrument Name | Water Level Sensor |
Dataset-specific Description | Manufacturer: Ocean Sensor Systems
Type(s): Wave Staff III (OSSI-010-008)
Calibrations:
Wave wires must be tensed by hand so they are tight; measurements were calibrated by deploying the wave wires in SUSTAIN and checking recorded depth across all sensors and testing with waves to ensure a return in the value to a resting value.
Specifications:
Programmable up to 30 Hz sampling rate
Input Voltage 5.5-40 VDC
Accuracy +/- 0.25% over 20-80% of Full Scale*
+/- 1.00% over 0-100% of Full Scale
Resolution 0.025% of Full Scale
Typical Cable Tension 50 Newtons (0-500 N max)
*For our wave wires, Full Scale is 2.0 meters. |
Generic Instrument Description | For measuring water level in fresh and salt water including tanks, wells, rivers, and the ocean. |
NSF Abstract:
An exact description of gas exchange between the atmosphere and the ocean is not fully developed, yet it is a critical process for understanding climate change and ecosystem dynamics. This is particularly problematic when evaluating the important role of bubbles in air-sea gas exchange, especially in remote ocean locations where high winds and waves make direct measurements extremely difficult. This project seeks to provide needed fundamental, high wind/wave gas-exchange measurements by using a large, state-of-the-art, wind-wave tank. Here the PIs can apply their novel measurements of noble gases (neon, argon, krypton, and xenon) to calculate overall gas fluxes under precisely controlled conditions. This tank setting allows a systematic approach to define the physical and chemical parameters (temperature, salinity, pH, wind speed, turbulence, bubble size distribution, etc.) required to construct more accurate models without the great uncertainties inherent in making similar measurements from a ship in storm conditions. A significant outcome of this study, beyond improved understanding of air-sea gas exchange, could be greatly improved estimates of the critical ecological balance between photosynthesis and respiration. Current methods use carbon dioxide and oxygen dissolved in seawater as an indication of biological activity, but cannot distinguish between biological processes and atmospheric exchange, and estimates are especially inaccurate under high wind and wave conditions with strong bubble injection. This study will improve our ability to separate biological and physical processes in evaluation of dissolved gasses in seawater.
Also, this project will provide 15 female undergraduate students at Wellesley College with an exciting, on-site research experience using a state-of-the-art tank facility at the University of Miami, and results will be incorporated into general and advanced chemistry classes. The production of student-created, short format videos, and other public outreach activities will also be supported to disseminate information on the importance of marine gas exchange.
The study of gas exchange processes between the ocean and the atmosphere has been hindered by the lack of data required to define quantitative relationships that account for bubble processes under a variety of wind, wave, and temperature conditions. Current gas exchange models tend to be highly unreliable in their parameterization of bubble processes. In large part, this is due to the difficulty of making traditional measurements at sea in remote locations within well-defined conditions, especially with high winds and waves. By using the large SUSTAIN wind-wave tank (23 m x 6 m x 2 m), the researchers in this project plan to greatly advance our understanding of the effect of wind, wave, and temperature variability on gas transfer. The use of a recently developed, field-portable equilibrator mass spectrometer that allows nearly continuous measurements of noble gas ratios (Ne, Ar, Kr, and Xe) will result in these SUSTAIN tank experiments providing precisely characterized gas flux data under varying wind speeds from 10 to 40 m/s. In addition, an underwater shadowgraph system will image bubbles, allowing the researchers to quantify bubble size distributions, a key factor missing from bubble models. Current models use a greatly simplified, two size-class representation of bubbles; an approach that this research will re-evaluate in hopes of creating better parameterizations of the role of bubble size on gas flux, and consequently improved air-sea gas exchange models for oceanic and climatic applications.
Funding Source | Award |
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NSF Division of Ocean Sciences (NSF OCE) | |
NSF Division of Ocean Sciences (NSF OCE) |