scite shows how a scientific paper has been cited by providing the context of the citation, a classification describing whether it supports, mentions, or contrasts the cited claim, and a label indicating in which section the citation was made.
Bibliography
Den Hartog, J.P., Mechanical Vibrations. 1985, Dover Publications http://books.google.be/books?id=-Pu5YlgY4QsC.
Smith, M.C., Synthesis of mechanical networks: the inerter. IEEE Trans. Automat. Contr. 47 (2002), 1648–1662, 10.1109/TAC.2002.803532.
Hu, Y., Chen, M.Z.Q., Shu, Z., Huang, L., Analysis and optimisation for inerter-based isolators via fixed-point theory and algebraic solution. J. Sound Vib. 346 (2015), 17–36, 10.1016/j.jsv.2015.02.041.
Sabbioni, E., Cigada, A., Karimi, H.R., Siami, A., Zappa, E., Parameter optimization of an inerter-based isolator for passive vibration control of Michelangelo's Rondanini Pietà. Mech. Syst. Signal Process. 98 (2017), 667–683, 10.1016/j.ymssp.2017.05.030.
Lazar, I.F., Neild, S.A., Wagg, D.J., Using an inerter-based device for structural vibration suppression. Earthq. Eng. Struct. Dyn. 43 (2014), 1129–1147, 10.1002/eqe.2390.
Zilletti, M., Feedback control unit with an inerter proof-mass electrodynamic actuator. J. Sound Vib. 369 (2016), 16–28, 10.1016/j.jsv.2016.01.035.
Alujević, N., Čakmak, D., Wolf, H., Jokić, M., Passive and active vibration isolation systems using inerter. J. Sound Vib. 418 (2018), 163–183, 10.1016/j.jsv.2017.12.031.
Zhang, Y.W., Lu, Y.N., Zhang, W., Teng, Y.Y., Yang, H.X., Yang, T.Z., Chen, L.Q., Nonlinear energy sink with inerter. Mech. Syst. Signal Process., 2018, 10.1016/j.ymssp.2018.08.026.
Swift, S.J., Smith, M.C., Glover, A.R., Papageorgiou, C., Gartner, B., Houghton, N.E., Design and modelling of a fluid inerter. Int. J. Control. 86 (2013), 2035–2051, 10.1080/00207179.2013.842263.
Liu, X., Jiang, J.Z., Titurus, B., Harrison, A., Model identification methodology for fluid-based inerters. Mech. Syst. Signal Process. 106 (2018), 479–494, 10.1016/j.ymssp.2018.01.018.
Papageorgiou, C., Houghton, N.E., Smith, M.C., Experimental testing and analysis of inerter devices. J. Dyn. Syst. Meas. Control., 131, 2009, 011001, 10.1115/1.3023120.
Høgsberg, J., Brodersen, M.L., Krenk, S., Resonant passive – active vibration absorber with integrated force feedback control. Smart Mater. Struct., 25, 2016, 10.1088/0964-1726/25/4/047001.
Zhao, G., Alujević, N., Depraetere, B., Pinte, G., Swevers, J., Sas, P., Experimental study on active structural acoustic control of rotating machinery using rotating piezo-based inertial actuators. J. Sound Vib., 348, 2015, 10.1016/j.jsv.2015.03.013.
Brennan, M.J., Garcia-Bonito, J., Elliott, S.J., David, A., Pinnington, R.J., Experimental investigation of different actuator technologies for active vibration control. Smart Mater. Struct. 8 (1999), 145–153, 10.1088/0964-1726/8/1/016.
Collette, C., Chesné, S., Robust hybrid mass damper. J. Sound Vib. 375 (2016), 19–27, 10.1016/j.jsv.2016.04.030.
Chesné, S., Milhomem, A., Collette, C., Enhanced Damping of Flexible Structures Using Force Feedback. J. Guid. Control. Dyn. 39 (2016), 1654–1658, 10.2514/1.G001620.
Zhao, G., Alujević, N., Depraetere, B., Sas, P., Dynamic analysis and H2 optimisation of a piezo-based tuned vibration absorber. J. Intell. Mater. Syst. Struct., 26, 2015, 10.1177/1045389X14546652.
Asami, T., Nishihara, O., Closed-form exact solution to H[sub ∞]optimization of dynamic vibration absorbers (application to different transfer functions and damping systems). J. Vib. Acoust., 125, 2003, 398, 10.1115/1.1569514.
Hagood, N.W., von Flotow, A., Damping of structural vibrations with piezoelectric materials and passive electrical networks. J. Sound Vib. 146 (1991), 243–268, 10.1016/0022-460X(91)90762-9.
Similar publications
Sorry the service is unavailable at the moment. Please try again later.
This website uses cookies to improve user experience. Read more
Save & Close
Accept all
Decline all
Show detailsHide details
Cookie declaration
About cookies
Strictly necessary
Performance
Strictly necessary cookies allow core website functionality such as user login and account management. The website cannot be used properly without strictly necessary cookies.
This cookie is used by Cookie-Script.com service to remember visitor cookie consent preferences. It is necessary for Cookie-Script.com cookie banner to work properly.
Performance cookies are used to see how visitors use the website, eg. analytics cookies. Those cookies cannot be used to directly identify a certain visitor.
Used to store the attribution information, the referrer initially used to visit the website
Cookies are small text files that are placed on your computer by websites that you visit. Websites use cookies to help users navigate efficiently and perform certain functions. Cookies that are required for the website to operate properly are allowed to be set without your permission. All other cookies need to be approved before they can be set in the browser.
You can change your consent to cookie usage at any time on our Privacy Policy page.