Proceedings of the ... International Conference on Offshore Mechanics and Arctic Engineering, Volume 1, Parts 1-2American Society of Mechanical Engineers, 2004 - Arctic regions |
From inside the book
Results 1-3 of 84
Page 771
ADDITIONAL FORCE DUE TO DIFFERENT VELOCITIES IN EACH BOARD
Depending on the FPSO heading angle , besides current direction disturbance ,
a high velocity gradient arises in the shadow boundary region . Fig . 3 shows a
case ...
ADDITIONAL FORCE DUE TO DIFFERENT VELOCITIES IN EACH BOARD
Depending on the FPSO heading angle , besides current direction disturbance ,
a high velocity gradient arises in the shadow boundary region . Fig . 3 shows a
case ...
Page 788
Secondly , since the wave drift force and iceberg added mass vary with distance
from the structure , the iceberg velocity may be further modified through its
equations of motion as it approaches the structure . Overall , it is expected that
the ...
Secondly , since the wave drift force and iceberg added mass vary with distance
from the structure , the iceberg velocity may be further modified through its
equations of motion as it approaches the structure . Overall , it is expected that
the ...
Page 935
Roll Motion , Velocity , and Acceleration Submergence ( ft ) 120 V Roll Motion (
Deg . ) Submergence ( ft ) 3050 3070 3130 3150 3090 3110 time ( sec ) - 12 +
3050 3070 3130 3150 3090 3110 time ( sec ) Roll Motion ( Deg ) - Roll Angular
Acc ...
Roll Motion , Velocity , and Acceleration Submergence ( ft ) 120 V Roll Motion (
Deg . ) Submergence ( ft ) 3050 3070 3130 3150 3090 3110 time ( sec ) - 12 +
3050 3070 3130 3150 3090 3110 time ( sec ) Roll Motion ( Deg ) - Roll Angular
Acc ...
What people are saying - Write a review
We haven't found any reviews in the usual places.
Contents
PART | 595 |
000000000000000000000000000000000000000000 | 605 |
OFFSHORE TECHNOLOGY | 608 |
Copyright | |
29 other sections not shown
Other editions - View all
Common terms and phrases
added amplitude analysis angle applied approach ASME assumed barge bending boundary buoy calculated capacity coefficient combined components computed connection considered Copyright corresponding damage damping deck depth determined developed diameter direction displacement dynamic effect element Engineering equation estimated event factor fatigue field Figure force FPSO frequency function given height horizontal hull iceberg impact increase installation jacket joint length limit linear load marine mass maximum mean measured method model tests mooring mooring lines mooring system motion natural numerical obtained Offshore operation parameters performed period pile pitch platform position possible potential predicted presented pressure problem range relative response riser shear ship shown shows simulations skirt solution spar speed strength stress structure surface Table tank tension trench values velocity vertical vessel wall wave wind