Methodology and Algorithm Development for the Evaluation of Ultra-Deepwater

The objective of this project was to improve the overall safety of ultra-deepwater or arctic floating platforms by implementing nonlinear effects in a state of the art software code that could be used by the industry. Better understanding of the effects in a state of the art software code that could be used by the industry. Better understanding of the effects of nonlinearity on floating platforms through research and development would inherently decrease the risks associated with implementing ultra-deepwater or arctic design projects. The objective was met through the development of a methodology and associated algorithms for the evaluation of ultra-deepwater floating platform performance under hazardous sea conditions. Numerical tools were developed and implemented for the computation of ultra-deepwater floating platform performance and safety for the extreme ocean conditions.

Data and Resources

Field Value
Citation "\"Chad Rowan, Methodology and Algorithm Development for the Evaluation of Ultra-Deepwater or Arctic Floating Platform Performance under Hazardous Sea Conditions, 2018-07-17, https://edx.netl.doe.gov/dataset/methodology-and-algorithm-development-for-the-evaluation-of-ultra-deepwater-or-arctic-floating-platform-performance-under-hazardous-sea-conditions\""
Is NETL associated "\"Yes\""
NETL Point of Contact "\"Roy Long\""
NETL Point of Contact's Email "\"Roy.Long@netl.doe.gov\""
NETL program or project "\"Offshore\""
Groups
  • AmeriGEOSS
  • Global Provider
Tags
  • 12121-6402-01
  • amerigeo
  • amerigeoss
  • ckan
  • edx
  • energy
  • energy-data-exchange
  • fact-sheet
  • geo
  • geoss
  • global
  • offshore
isopen True
license_id cc-by
license_title Creative Commons Attribution
license_url http://www.opendefinition.org/licenses/cc-by
metadata_created 2025-11-25T22:58:17.442578
metadata_modified 2025-11-25T22:58:17.442582
notes The objective of this project was to improve the overall safety of ultra-deepwater or arctic floating platforms by implementing nonlinear effects in a state of the art software code that could be used by the industry. Better understanding of the effects in a state of the art software code that could be used by the industry. Better understanding of the effects of nonlinearity on floating platforms through research and development would inherently decrease the risks associated with implementing ultra-deepwater or arctic design projects. The objective was met through the development of a methodology and associated algorithms for the evaluation of ultra-deepwater floating platform performance under hazardous sea conditions. Numerical tools were developed and implemented for the computation of ultra-deepwater floating platform performance and safety for the extreme ocean conditions.
num_resources 5
num_tags 12
title Methodology and Algorithm Development for the Evaluation of Ultra-Deepwater