Sensors and Instrumentation, Aircraft/Aerospace, Energy Harvesting & Dynamic Environments Testing, Volume 7

8 Application of Quasi-Static Modal Analysis to an Orion Multi-Purpose Crew Vehicle Test 75 7. Lacayo, R., Deaner, B., Allen, M.S.: A numerical study on the limitations of modal Iwan models for impulsive excitations. J. Sound Vib. 390, 118–140 (2017) 8. Singh, A., Scapolan, M., Saito, Y., Allen, M.S., Roettgen, D.R., Pacini, B.R., Kuether, R.J.: Experimental characterization of a new benchmark structure for prediction of damping nonlinearity. In: 36th International Modal Analysis Conference (IMAC XXXVI), Orlando, Florida (2018) 9. Roettgen, D.R., Allen, M.S.: Nonlinear characterization of a bolted, industrial structure using a modal framework. Mech. Syst. Signal Process. 84, 152–170 (2017) 10. Lacayo, R., Pesaresi, L., Gross, J., Fochler, D., Armand, J., Salles, L., Schwingshackl, C.W., Allen, M.S., Brake, M.R.: Nonlinear modelling of structures with bolted joints: a comparison of two approaches based on a time-domain and frequency-domain solver. Mech. Syst. Signal Process. 2018, 413–438 (2018) 11. Cooper, S.B., Rosatello, M., Mathis, A.T., Brake, M.R., Allen, M.S., Ferri, A.A., Roettgen, D.R., Pacini, B.R., Mayes, R.L.: Effect of far-field structure on joint properties. In: 35th International Modal Analysis Conference (IMAC XXXV), Garden Grove, California (2017) 12. Mayes, R.L., Pacini, B.R., Roettgen, D.R.: A modal model to simulate typical structural dynamic nonlinearity. In: 34th International Modal Analysis Conference (IMAC XXXIV), Orlando, Florida (2016) 13. Deaner, B., Allen, M.S., Starr, M.J., Segalman, D.J., Sumali, H.: Application of viscous and Iwan modal damping models to experimental measurements from bolted structures. ASME J. Vib. Acoust. 137, 12 (2015) 14. Eriten, M., Kurt, M., Luo, G., Michael McFarland, D., Bergman, L.A., Vakakis, A.F.: Nonlinear system identification of frictional effects in a beam with a bolted joint connection. Mech. Syst. Signal Process. 39, 245–264 (2013) 15. G. Masing: Eigenspannungen und verfestigung beim messing (self stretching and hardening for brass). In: Presented at the 2nd Int. Congress for Applied Mechanics, pp. 332–335 (1926) 16. Segalman, D.J., Starr, M.J.: Inversion of Masing models via continuous Iwan systems. Int. J. Non-Linear Mech. 43, 74–80 (2008) 17. Slotine, J.-J.E., Li, W.: Applied Nonlinear Control. Prentice Hall Upper Saddle River, New Jersey (1991) 18. Ozer, M.B., Ozguven, H.N., Royston, T.J.: Identification of structural nonlinearities using describing functions and the Sherman-Morrison method. Mech. Syst. Signal Process. 23, 30–44 (2009) 19. Ismail, M., Rodellar, J., Ikhouane, F.: The Hysteresis Bouc-Wen Model, a Survey. Arch. Comput. Methods Eng. 16(2), 161–188 (2008) 20. Zhu, X., Lu, X.: Parametric identification of Bouc-Wen model and its application in mild steel damper modeling. Procedia Eng. 14, 318–324 (2011)

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