DOI QR코드

DOI QR Code

Effects of vessel-pipe coupled dynamics on the discharged CO2 behavior for CO2 sequestration

  • Bakti, Farid P. (Department of Ocean Engineering, Texas A&M University) ;
  • Kim, Moo-Hyun (Department of Ocean Engineering, Texas A&M University)
  • 투고 : 2020.05.12
  • 심사 : 2020.07.17
  • 발행 : 2020.09.25

초록

This study examines the behaviors and properties of discharged liquid CO2 from a long elastic pipe moving with a vessel for the oceanic CO2 sequestration by considering pipe dynamics and vessel motions. The coupled vessel-pipe dynamic analysis for a typical configuration is done in the frequency and time domain using the ORCAFLEX program. The system's characteristics, such as vessel RAOs and pipe-axial-velocity transfer function, are identified by applying a broadband white noise wave spectrum to the vessel-pipe dynamic system. The frequency shift of the vessel's RAO due to the encounter-frequency effect is also investigated through the system identification method. Additionally, the time histories of the tip-of-pipe velocities, along with the corresponding discharged droplet size and Weber numbers, are generated for two different sea states. The comparison between the stiff non-oscillating pipe with the flexible oscillating pipe shows the effect of the vessel and pipe dynamics to the discharged CO2 droplet size and Weber number. The pipe's axial-mode resonance is the leading cause of the fluctuation of the discharged CO2 properties. The significant variation of the discharged CO2 properties observed in this study shows the importance of considering the vessel-pipe motions when designing oceanic CO2 sequestration strategy, including suitable sequestration locations, discharge rate, towing speed, and sea states.

키워드

과제정보

This research was partially supported by Indonesia Endowment Fund for Education or also known as LPDP (Lembaga Pengelola Dana Pendidikan) grant No: PRJ-4038/LPDP.3/2016.

참고문헌

  1. Flock, A.K., Guildenbecher, D.R., Chen, J., Sojka, P.E. and Bauer, H.J. (2012), "Experimental statistics of droplet trajectory and air flow during aerodynamic fragmentation of liquid drops", Int. J. Multiphase Flow, 47, 37-49. https://doi.org/10.1016/j.ijmultiphaseflow.2012.06.008
  2. Intergovernmental Panel on Climate Change (2005), "Carbon dioxide capture and storage", Cambridge University Press.
  3. Jeong, S., Sato, T., Chen, B. and Tabeta, S. (2010), "Numerical simulation on multi-scale diffusion of $CO_{2}$ injected in the deep ocean in a practical scenario", Int. J. Greenhouse Gas Control, 4, 64-72. https://doi.org/10.1016/j.ijggc.2009.09.021
  4. Kim, M.H., Koo, B.J., Mercier, R.M. and Ward, E.G. (2005), "Vessel/mooring/riser coupled dynamic analysis of a turret-moored FPSO compared with OTRC experiment", J. Ocean Eng., 32, 1780-1802. https://doi.org/10.1016/j.oceaneng.2004.12.013
  5. Lee, C.H., Newman, J.N., Kim, M.H., and Yue, D.K.P. (1991), "The computation of second-order wave loads", Proceedings of the 10th International Conf. OMAE Stavanger, Norway.
  6. Marshall, S.H., Chudacek, M.W. and Bagster, D.F. (1986), "An initial study of air bubble formation from an orifice swept by transverse liquid flow", Fluid Mech. Conf. Proc., 9, 391-394.
  7. Orcina (2012), Orcaflex user's manual - version 10.0.
  8. Ozaki, M., Fujioka, Y., Takeuchi, K. and Sonoda, K. (1997), "Length of vertical pipes for deep-ocean sequestration of $CO_{2}$ in rough seas", Energy, 2, 229-237.
  9. Ozaki, M., Minamiura, J., Kitajima, Y., Mizokami, S., Takeuchi, K. and Hatakenaka, K. (2001), "$CO_{2}$ ocean sequestration by moving ships", J. Mar. Sci. Technol., 6, 51-58. https://doi.org/10.1007/s773-001-8375-8
  10. Pilch, M. and Erdman, C.A. (1987), "Use of breakup time data and velocity history data to predict the maximum size of stable fragments for acceleration-induced breakup of a liquid drop", Int. J. Multiphase Flow, 13(6), 741-757 https://doi.org/10.1016/0301-9322(87)90063-2
  11. Ran, Z. and Kim, M.H. (1997), "Non-linear coupled responses of a tethered spar platform in waves", J. Offshore Polar Eng., 7(2), 111-118.
  12. Socolofsky, S.A. and Bhaumik, T. (2008), "Dissolution of direct ocean carbon sequestration plumes using an integral model approach", J. Hydraul. Eng., 134(11), 1570-1578 https://doi.org/10.1061/(asce)0733-9429(2008)134:11(1570)
  13. Wamit Inc, "WAMIT 6.2 User Manual".