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Monitoring and vibration control of a fluid catalytic cracking unit

  • Battista, Ronaldo C. (COPPE Engineering Institute, Universidade Federal do Rio de Janeiro, Controllato Ltd.) ;
  • Varela, Wendell D. (COPPE Engineering Institute, Universidade Federal do Rio de Janeiro) ;
  • Gonzaga, Igor Braz N. (COPPE Engineering Institute, Universidade Federal do Rio de Janeiro)
  • 투고 : 2021.08.18
  • 심사 : 2021.11.23
  • 발행 : 2022.04.25

초록

Oil refineries' Fluid Catalytic Cracking Units (FCCU) when in full operation may exhibit strong fluid dynamics caused by turbulent flow in the piping system that may induce vibrations in other mechanical and structural components of the Unity. This paper reports on the experimental-theoretical-computational program performed to get the vibration properties and the dynamic response amplitudes to find out alternative solutions to attenuate the excessive vibrations that were causing fatigue fractures in components of the bottle like reactor-regenerator of an FCC unit in operation in an existing oil refinery in Brazil. Solutions to the vibration problem were sought with the aid of a 3D finite element model calibrated with the results obtained from experimental measurements. A short description of the found solutions is given and their effectiveness are shown by means of numerical results. The solutions were guided by the concepts of structural stiffening and dynamic control performed by a nonlinear pendulum controller whose mechanical design was based on parameters determined by means of a parametric study carried out with 2D and 3D mathematical models of the coupled pendulum-structure system. The effectiveness of the proposed solutions is evaluated in terms of the fatigue life of critical welded connections.

키워드

과제정보

The authors acknowledge Brazilian National research Council - CNPQ and Petrobras BR for the financial support.

참고문헌

  1. Ali, M.F., El Ali, B.M. and Speight, J.G. (2005), Handbook of Industrial Chemistry, McGraw-Hill Companies, New York, NY, USA.
  2. Alih, S.C., Vafaei, M., Ismail, N. and Pabarja, A. (2018), "Experimental study on a new damping device for mitigation of structural vibrations under harmonic excitation", Earthq. Struct., Int. J., 14(6), 567-576. https://doi.org/10.12989/eas.2018.14.6.567
  3. An, Q., Chen, Z., Ren, Q., Liu, H. and Yan, X. (2015), "Control of human-induced vibration of an innovative CSBS-CSCFS", J. Constr. Steel Res., 115, 359-371. https://doi.org/10.1016/j.jcsr.2015.08.030
  4. Battista, R.C., Pfeil, M.S., Carvalho, E.M.L. and Varela, W.D. (2018), "Double controller of wind induced bending oscillations in telecom towers", Smart Struct. Syst., Int. J., 21(1), 99-111. https://doi.org/10.12989/sss.2018.21.1.099
  5. BS 5400: Part 10 (1980), Steel, concrete and composite bridges, Code of practice for fatigue, London: BSI.
  6. Cao, L., Li, C. and Chen, X. (2021), "Performance of multiple tuned mass dampers-inerters for structures under harmonic ground acceleration", Smart Struct. Syst., Int. J., 26(1), 49-61. https://doi.org/10.12989/sss.2020.26.1.049
  7. Duran, B., Tunaboyu, O., Kaplan, O. and Avsar, O. (2018), "Effectiveness of seismic repairing stages with CFRPs on the seismic performance of damage RC frames", Struct. Eng. Mech., Int. J., 67(3), 233-244. https://doi.org/10.12989/sem.2018.67.3.233
  8. Fallahpasand, S., Dardel, M., Pashaei, M.H. and Daniali, H.R.M. (2015), "Investigation and optimization of nonlinear pendulum vibration absorber for horizontal vibration suppression of damped system", Struct. Des. Tall Special Build., 24, 873-893. https://doi.org/10.1002/tal.1216
  9. Gerges, R.R. and Vickery, B.J. (2005), "Optimum design of pendulum-type tuned mass dampers", Struct. Des. Tall Special Build., 14, 353-368. https://doi.org/10.1002/tal.273
  10. Gurney, T.R, (1976), "Fatigue design rules for welded steel joints", Weld. Inst. Res. Bull., May, pp. 115-124.
  11. Ikeda, T., Harata, Y. and Takeeda, A. (2017), "Nonlinear responses of spherical pendulum vibration absorbers in tower like 2DOF structures", Nonlinear Dyn., 88, 2915-2932. https://doi.org/10.1007/s11071-017-3421-5
  12. Letzsch, W. (2015), "Fluid Catalytic Cracking (FCC) in Petroleum Refining", In: Handbook of Petroleum Processing, (Treese S., Pujado P., Jones D. Eds.), Springer, Cham.
  13. Lin, C.-S., Zhang, J., Wang, J.-F. and Li, C.-C. (2019), "Vibration control for serviceability enhancement of offshore platforms against environmental loadings", Smart Struct. Syst., Int. J., 24(3), 402-414. https://doi.org/10.12989/sss.2019.24.3.403
  14. Mansour, A.E., Wirsching, P.H., White, G.J. and Ayyub, B.M. (1996), "Probability-Based Ship Design: Implementation of Design Guidelines", SSC 392, NTIS, Washington, D.C., 200 pages.
  15. Matsuishi, M. and Endo, T. (1968), "Fatigue of metals subjected to varying stress-fatigue lives under random loading", Proc. Kyushu District Meeting, JSEM, Fukuoka, Japan, pp. 37-40.
  16. Medeiros, J., Battista R.C. and Carvalho, E.M.L. (2010), "Fluid Catalytic Cracking (FCC) Riser Submitted to Flow Induced Vibration Fatigue Life Estimation", XXIX Computational Methods for the Analysis and Design of Offshore, Buenos Aires, Argentina, November.
  17. Nguyen, T., Gad, E. and Wilson, J. (2014), "Mitigation footfall-induced vibration in long-span floors", Austral. J. Struct. Eng., 15(1), 97-109.
  18. Pinheiro, M.A.S. and Battista, R.C. (2012), "Efficiency of a spatial pendulum in vibration control", XXXV Jornadas Sulamericanas de Engenharia Estrutural, Rio de Janeiro, Brazil, September. [In Portuguese]
  19. Pinheiro, C.I.C., Fernandes, J.L., Domingues, L., Chambel, A.J.S., Graca, I., Oliveira, N.M.C., Cerqueira, H.S. and Ribeiro, F.R. (2011), "Fluid Catalytic Cracking (FCC) Process Modeling, Simulation, and Control", Ind. Eng. Chem. Res., 51, 1-29. https://doi.org/10.1021/ie200743c
  20. Roffel, A.J., Narasimhan, S. and Haskett, T. (2013), "Performance of pendulum tuned mass dampers in reducing the responses of flexible structures", J. Struct. Eng., 139, 04013019. https://doi.org/10.1061/(ASCE)ST.1943-541X.0000797
  21. Sado, D., Freunlich, J. and Dudanowicz, A. (2016), "The dynamics of a coupled mechanical system with spherical pendulum", Vib. Phys. Syst., 27, 309-316.
  22. Shahabi, A.B., Ahari, Z. and Barghian, M. (2020), "Suspended columns for seismic isolation in structures (SCSI): experimental and numerical studies", Earthq. Struct., Int. J., 19(1), 17-28. https://doi.org/10.12989/eas.2020.19.1.17
  23. Sharma, R.K., Domala, V. and Sharma, R. (2019), "Dynamic analysis of an offshore jacket platform with a tuned mass damper under the seismic and ice loads", Ocean Syst. Eng., Int. J., 9(4), 369-390. https://doi.org/10.12989/ose.2019.9.4.369
  24. Speight, J.G. (2006), The Chemistry and Technology of Petroleum, Taylor & Francis Group (LCC), Laramie, WY, USA.
  25. Sun, C., Jahangiri, V. and Sun, H. (2019), "Performance of a 3D pendulum tuned mass damper in offshore wind turbines under multiple hazards and system variations", Smart Struct. Syst., Int. J., 24(1), 53-65. https://doi.org/10.12989/sss.2019.24.1.053
  26. Viet, L.D. and Park, Y. (2011), "Vibration control of the axisymmetric spherical pendulum by dynamic vibration absorver moving in radial direction", J. Mech. Sci. Tech., 25(7), 1703-1709. https://doi.org/10.1007/s12206-011-0418-8
  27. Vogt, T.T.C. and Weckhuysen, B.M. (2015), "Fluid catalytic cracking: recent developments on the grand old lady zeolite catalysis", Chem. Soc. Rev., 44, 7342-7370. https://doi.org/10.1039/C5CS00376H
  28. Wang, L., Shi, W., Zhou, Y. and Zhang, Q. (2020), "Semi-active eddy current pendulum tuned mass damper with variable frequency and damping", Smart Struct. Syst., Int. J., 25(1), 65-80. https://doi.org/10.12989/sss.2020.25.1.065
  29. Zahrai, S.M. and Froozanfar, M. (2019), "Performance of passive and active MTMDs in seismic response of Ahvaz calbe-stayed bridge", Smart Struct. Syst., Int. J., 23(5), 449-466. https://doi.org/10.12989/sss.2019.23.5.449
  30. Zhang, R., Cao, Y. and Dai, K. (2021), "Response control of wind turbines with undergrounded tuned mass inerter system (TMIS) under wind loads", Wind Struct., Int. J., 32(6), 573-586. https://doi.org/10.12989/was.2021.32.6.573
  31. Zhu, L-H., Li, G. and Dong, Z-Q. (2021), "Dynamic test and numerical simulation on avoiding the weak-story failure mechanism in structures using LSFDs", Steel Compos. Struct., Int. J., 40(2), 175-191. https://doi.org/10.12989/scs.2021.40.2.175