We analyze heat and work fluctuations in the gravitational wave detector AURIGA, modeled as a macroscopic electromechanical oscillator in contact with a thermostat and cooled by an active feedback system. The oscillator is driven to a steady state by the feedback cooling, equivalent to a viscous force. The experimentally measured fluctuations are in agreement with our theoretical analysis based on a stochastically driven Langevin system. The asymmetry of the fluctuations of the absorbed heat characterizes the oscillator’s nonequilibrium steady state and reveals the extent to which a feedback cooled system departs from equilibrium in a statistical mechanics perspective.
Nonequilibrium steady-state fluctuations in actively cooled resonators / Bonaldi, M.; Conti, L.; De Gregorio, P.; Rondoni, L.; Vedovato, G.; Vinante, A.; Bignotto, M.; Cerdonio, M.; Falferi, P.; Liguori, N.; Longo, S.; Mezzena, R.; Ortolan, A.; Prodi, G. A.; Salemi, Francesco; Taffarello, L.; Vitale, S.; Zendri, J. -P.. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 103:1(2009), pp. 1-4. [10.1103/PhysRevLett.103.010601]
Nonequilibrium steady-state fluctuations in actively cooled resonators
Salemi, Francesco;
2009
Abstract
We analyze heat and work fluctuations in the gravitational wave detector AURIGA, modeled as a macroscopic electromechanical oscillator in contact with a thermostat and cooled by an active feedback system. The oscillator is driven to a steady state by the feedback cooling, equivalent to a viscous force. The experimentally measured fluctuations are in agreement with our theoretical analysis based on a stochastically driven Langevin system. The asymmetry of the fluctuations of the absorbed heat characterizes the oscillator’s nonequilibrium steady state and reveals the extent to which a feedback cooled system departs from equilibrium in a statistical mechanics perspective.| File | Dimensione | Formato | |
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