A Sensor Web Prototype for Cabled Seafloor Observatories in the East China Sea
Abstract
:1. Introduction
2. Plug-and-Play Sensor Web Architecture
2.1. Layered Architecture
2.1.1. Data Source Layer
2.1.2. Data Layer
2.1.3. Data Application Layer
2.1.4. User Layer
2.2. Plug-and-Play Mechanism
2.2.1. GOE Control Method at the Data Source Layer
2.2.2. Hot Swapping Interpretation Method at the Data Layer
2.3. Operational Information Flow
3. Prototype System Implementation
3.1. Incremental Releases
3.2. Remote Control System
3.3. Data Management System
3.4. Real-Time Monitoring System
4. Test and Application
4.1. Experimental Scenario: East China Sea Seafloor Observation System
4.1.1. Xiaoqushan Seafloor Observatory
4.1.2. Zhujiajian Seafloor Observatory
4.2. Prototype System Test: Processes and Results
4.3. Practical Performance
4.3.1. General Descriptions against Specifications
4.3.2. Case Study
5. Discussion
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
ECSSOS | East China Sea Seafloor Observation System |
EMSO | European Multidisciplinary Seafloor and water-column Observatory |
ESOCS | the remote-control system for ECSSOS |
ESODDS | the data distribution system for ECSSOS |
ESOSW | the sensor web prototype for ECSSOS |
GJB | general junction box |
GOE | GJB-OSML enabled |
OGC | Open Geospatial Consortium |
ONC | Ocean Networks Canada |
OOI | Ocean Observatories Initiative |
OSML | Ocean Sensor Markup Language |
SPAN | Switched Port Analyzer |
SWA | Sensor Web Architecture |
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Sensor | Original Observatory | Upgrade Observatory |
---|---|---|
Video | √ | √ |
CO2 | × | √ |
OBS | × | √ |
CTD | √ | √ |
Turbidity | √ | √ |
Underwater CO2 | × | √ |
PH | × | √ |
Tide and Wave | × | √ |
ADCP | √ | √ |
Imaging Sonar | × | √ |
Magnetometer | × | √ |
Observatory Node | Sensor | Observation Parameter | Sampling Interval |
---|---|---|---|
Node 1 (Node of Shanghai Science and Technology Commission) | CTD/SBE16 | Temperature, Conductivity, Dissolved oxygen, Depth | 50 s |
CTD/SBE26 | Temperature, Conductivity, Depth | 10 s | |
LISST-100x | Granularity, Temperature | 10 s | |
AWAC | Seawater flow field | 25 min | |
Camera | Real-time Video | continuous | |
Node 2 (Node of State Oceanic Administration) | Chlorophyll Meter (SDIOI) | Chlorophyll concentration | 5 s |
CTD (SDIOI) | Temperature, Conductivity, Depth, Turbidity | 5 s | |
CTD (NOTC) | Temperature, Conductivity, Depth | 8 s | |
CTD (NOTC) | Temperature, Conductivity, Depth | 8 s | |
ADCP (Linkquest) | Seawater flow field | 5 min | |
Camera | Real-time Video | continuous | |
Node 3 (Node of National High-tech Research and Development Plan) | RBR concerto | Temperature, Conductivity, Depth | 30 s |
Chlorophyll Meter | Chlorophyll concentration | 30 s | |
Dissolved Oxygen Sensor | Dissolved oxygen concentration | 30 s | |
Turbidity Sensor | Turbidity | 30 s | |
SUNA Sensor | Nitrate concentration | 5 min | |
HydroC PAH | Concentration of polycyclic aromatic hydrocarbons | 5 s | |
CO2-Pro CV | Carbon dioxide concentration | 30 min | |
Methane Sensor | Methane concentration | 10 s | |
ADV/Nortek Vector Current Meter | Single point velocity | 10 min | |
ADCP/WHMW300-I-UG11 | Profile velocity | 1 min | |
TDO-33B | Seismic data | 0.01 s | |
Camera | Real-time Video | program control |
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Share and Cite
Yu, Y.; Xu, H.; Xu, C. A Sensor Web Prototype for Cabled Seafloor Observatories in the East China Sea. J. Mar. Sci. Eng. 2019, 7, 414. https://doi.org/10.3390/jmse7110414
Yu Y, Xu H, Xu C. A Sensor Web Prototype for Cabled Seafloor Observatories in the East China Sea. Journal of Marine Science and Engineering. 2019; 7(11):414. https://doi.org/10.3390/jmse7110414
Chicago/Turabian StyleYu, Yang, Huiping Xu, and Changwei Xu. 2019. "A Sensor Web Prototype for Cabled Seafloor Observatories in the East China Sea" Journal of Marine Science and Engineering 7, no. 11: 414. https://doi.org/10.3390/jmse7110414
APA StyleYu, Y., Xu, H., & Xu, C. (2019). A Sensor Web Prototype for Cabled Seafloor Observatories in the East China Sea. Journal of Marine Science and Engineering, 7(11), 414. https://doi.org/10.3390/jmse7110414