{
    "platform": {
        "maker": "Teledyne Webb Research",
        "model_vocabulary": "http://vocab.nerc.ac.uk/collection/B76/current/B7600029/",
        "id": "uvi_01",
        "owner": "University of the Virgin Islands",
        "wmo_id": "8901044",
        "long_name": "uvi_01 Slocum G3S",
        "model": "Teledyne Webb Research Slocum G3S glider",
        "description": "A long-range autonomous underwater vehicle (AUV) based on buoyancy. The G3S utilises the same features as the G3 glider but uses a new STM32 Processor. This replaces the Persistor processor used on the G3 glider in the Science and Flight Bays. The G3S is used for remote water column sampling. It uses hydraulic buoyancy change to alter the vehicle density in relation to the surrounding water thereby causing the vehicle to either float or sink. Given an appropriate dive or climb angle, the wings and body lift and convert some of this vertical motion into a forward saw tooth horizontal motion. Periodically, the glider surfaces and calls via Iridium Satellite Phone (anywhere in world) or Free Wave RF Modem (line of sight) in to Dockserver (auto attendant computer) to relay navigational fix, data and receive further instructions for command and control. The glider is capable of storm sampling and can be flown in a coordinated fleet. It is 1.5 m in length, has a hull diameter of 22 cm and mass of 55-70 kgs (dependent upon configuration). It has an exchangeable payload (capacity up to 6 L) which is capable of housing a variety of environmental sensors such as nitrate and oxygen. It uses lithium or alkaline batteries. It has a deployment range of 350-13000 km (dependent upon configuration), a deployment length of 15 days to 18 months (dependent upon configuration) and an operating depth range of 4-1000m. Navigation is via GPS waypoints, a pressure and altimeter sensor. Maximum speed is 0.35 m/s (0.68 knot) with the buoyancy engine and an average up to 0.5 m/s (1 knots) with full drive. The thruster provides speeds up to 1 m/s (2 knots). It transmits via RF modem, Iridium (RUDICS), ARGOS or acoustic modem. The new STM32L4 CPU processor utilises OpenRTOS running up to 120 MHz, with 8 Mbytes RAM and 32 Mbytes of flash memory.",
        "type_vocabulary": "http://vocab.nerc.ac.uk/collection/L06/current/27/",
        "depth_rating": "1000m",
        "wmo_platform_code": "8901044",
        "type": "sub-surface gliders",
        "serial_number": "1108",
        "comment": "",
        "instruments": "instrument_rbrctd,instrument_dmon,instrument_optode,instrument_adcp",
        "maker_vocabulary": "http://vocab.nerc.ac.uk/collection/L35/current/MAN0020/,http://vocab.nerc.ac.uk/collection/B75/current/ORG01077/",
        "os_version": "10.08"
    },
    "global_attributes": {
        "contributor_role": "Principal Investigator,Co-Investigator,Graduate Student and Pilot,Graduate Student,Technician and Pilot,Graduate Student,Glider Pilot,Glider Pilot,Glider Pilot,Data Management,Data Management,Data Management",
        "deployment": "uvi_01-20260114T1932",
        "contributor_name": "Doug Wilson,Travis Miles,Joshua Soll,Cole Sheeley,Travis Hamlin,Keiley Gregory,Nicole Waite,Dave Aragon,Brian Buckingham,John Kerfoot,Laura Nazzaro,Lori Garzio",
        "cdm_data_type": "Trajectory",
        "sea_name": "Caribbean Sea",
        "wmo_id": "8901044",
        "acknowledgment": "This deployment is supported by the National Science Foundation OCE2421623",
        "wmo_platform_code": "8901044",
        "references": "https://rucool.marine.rutgers.edu",
        "project": "Caribbean through-flow water mass transformation processes",
        "gts_ingest": "True",
        "program": "National Science Foundation Physical Oceanography",
        "comment": "Deployed by Joshua Soll, Doug Wilson, Spencer Parr, Matt Driscoll aboard Double Header out of The University of the Virgin Islands, St. Thomas with shoreside support from Travis Hamlin and Keiley Gregory.",
        "institution": "University of the Virgin Islands, Rutgers University",
        "infoUrl": "https://rucool.marine.rutgers.edu,https://www.uvi.edu/research/center-for-marine-environmental-studies/gliders/index.html",
        "summary": "This research investigates how water masses are transformed as they flow through the Caribbean Sea, a region responsible for a quarter of the northern hemisphere's northward ocean heat transport and a vital component of the Atlantic Meridional Overturning Circulation (AMOC). The UVI glider will transit to 18 N 69 W, south of the Dominican Republic, and sample temperature, salinity, dissolved oxygen, and current velocity profiles from the surface to 900m depth southward along 69 W to just north of Curacao (12 24 N) \u2013 and return along the same path.  The journey is expected to take a little over 3 months and will be repeated during hurricane season 2026."
    },
    "glider": "uvi_01",
    "trajectory_name": "uvi_01-20260114T1932"
}