Javascript must be enabled to continue!
Time-Domain Research on Integrated Coupling Model of MODU, Drilling Riser and Wellhead
View through CrossRef
The coupling effects between MODU and slim drilling riser are of primary importance in analysis of dynamic response of drilling riser system. However,, the effect of MODU on drilling riser is simplified in conventional model in a way of only considering RAO of MODU in frequency-domain, ignoring the response of MODU on current and wave in time-domain.
In practical, the fitness-for-purpose assessment of drilling riser and wellhead is over-conservative by using conventional model, which will induce redundant design of wellhead strength, MODU capacity requirement, and drilling riser emergency evacuation response plan, consequently increase design and operating cost. As a result there is a requirement for more refined methodologies and finite element models to evaluate the coupling effect between MODU and drilling riser in time-domain.
This paper proposes a new model, an integrated coupling model incorporated MODU, drilling riser and wellhead system, in which the response of MODU on current and wave in time-domain is considered, In addition, a case study of the new model accounting for South China Sea environmental loading is presented in this paper. A number of conclusions drawn from the case study are outlined. Firstly, it is found that drilling riser has an inhibiting effect on the movement of MODU under wave and current loading, the more MODU drift-off, the stronger restoring force acts on MODU. This will actually improve drilling riser capacity against MODU drift-off. Secondly, hysteresis effect is found between drilling riser and wellhead stress peak and MODU drift-off peak. There are some lag between each other, When the MODU drift-off reaches its peak, the stress of drilling riser and wellhead does not reach its peak. It is shown in a case study, the peak stress of drilling riser lags 40s behind the peak MODU drift-off, and the peak stress of wellhead lags 60s behind the peak MODU drift-off.
As a conclusion the integrated coupling model is a more refined model to simulate the interaction between MODU and drilling riser system in time domain, which enhances the accuracy of drilling riser and wellhead fitness for purpose assessment and lead to a more optimal design of drilling riser system.
Title: Time-Domain Research on Integrated Coupling Model of MODU, Drilling Riser and Wellhead
Description:
The coupling effects between MODU and slim drilling riser are of primary importance in analysis of dynamic response of drilling riser system.
However,, the effect of MODU on drilling riser is simplified in conventional model in a way of only considering RAO of MODU in frequency-domain, ignoring the response of MODU on current and wave in time-domain.
In practical, the fitness-for-purpose assessment of drilling riser and wellhead is over-conservative by using conventional model, which will induce redundant design of wellhead strength, MODU capacity requirement, and drilling riser emergency evacuation response plan, consequently increase design and operating cost.
As a result there is a requirement for more refined methodologies and finite element models to evaluate the coupling effect between MODU and drilling riser in time-domain.
This paper proposes a new model, an integrated coupling model incorporated MODU, drilling riser and wellhead system, in which the response of MODU on current and wave in time-domain is considered, In addition, a case study of the new model accounting for South China Sea environmental loading is presented in this paper.
A number of conclusions drawn from the case study are outlined.
Firstly, it is found that drilling riser has an inhibiting effect on the movement of MODU under wave and current loading, the more MODU drift-off, the stronger restoring force acts on MODU.
This will actually improve drilling riser capacity against MODU drift-off.
Secondly, hysteresis effect is found between drilling riser and wellhead stress peak and MODU drift-off peak.
There are some lag between each other, When the MODU drift-off reaches its peak, the stress of drilling riser and wellhead does not reach its peak.
It is shown in a case study, the peak stress of drilling riser lags 40s behind the peak MODU drift-off, and the peak stress of wellhead lags 60s behind the peak MODU drift-off.
As a conclusion the integrated coupling model is a more refined model to simulate the interaction between MODU and drilling riser system in time domain, which enhances the accuracy of drilling riser and wellhead fitness for purpose assessment and lead to a more optimal design of drilling riser system.
Related Results
Use and Conversion of an Existing Marine Drilling Riser for a System Integration Test for the Collection of Seafloor Polymetallic Nodules
Use and Conversion of an Existing Marine Drilling Riser for a System Integration Test for the Collection of Seafloor Polymetallic Nodules
Abstract
The world's demand for metal is rising and new solutions must be explored to meet the needs associated with population growth, urbanization, decarbonized en...
Hybrid Riser Base Jumper Design Methods, Challenges and Solutions
Hybrid Riser Base Jumper Design Methods, Challenges and Solutions
Abstract
The increased number of hybrid riser systems, either installed or planned, in deepwater regions across the world has driven a corresponding growth in the...
Comparative Study for a Dropped Riser Simulation Using Two Commercial Finite Element Analysis Software
Comparative Study for a Dropped Riser Simulation Using Two Commercial Finite Element Analysis Software
Abstract
Although the possibility of a riser dropping off from its top hang-off point during installation or in service is minimal, such incident can pose significan...
Development of an Automatic Reentry Positioning System
Development of an Automatic Reentry Positioning System
ABSTRACT
This paper describes the concept, design, analysis and sea trials of the reentry system, and particularly its positioning system. Its development was con...
API Load Rating of Marine Riser Couplings: Application of RP 2R Guidelines and Supplemental Methods
API Load Rating of Marine Riser Couplings: Application of RP 2R Guidelines and Supplemental Methods
ABSTRACT
This paper provides an example of the use of the American Petroleum Institute's Recommended Practice 2R in determining the load rating of a riser couplin...
Drilling Riser Design and Analysis for Deepwater Applications
Drilling Riser Design and Analysis for Deepwater Applications
A riser is a fluid conduit from subsea equipment to surface floating production systems such as spars, TLPs, and semi-submersibles. It is a key component in a drilling and producin...
Multiple Riser System for Shallow Water
Multiple Riser System for Shallow Water
Abstract
Shallow water and high wave induced ship motions create a challenging and harsh environment for flexible risers and umbilicals. Two new riser systems are...
COBRA Riser Concept for Ultra Deepwater Condition
COBRA Riser Concept for Ultra Deepwater Condition
Offshore ultra deepwater field is being promising as the future of oil and gas reserves. However, the development of ultra deepwater field posed many challenges, in particular, on ...

