59 research outputs found

    Classical Pendulum Clocks Break the Thermodynamic Uncertainty Relation

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    The thermodynamic uncertainty relation expresses a seemingly universal trade-off between the cost for driving an autonomous system and precision in any output observable. It has so far been proven for discrete systems and for overdamped Brownian motion. Its validity for the more general class of underdamped Brownian motion, where inertia is relevant, was conjectured based on numerical evidence. We now disprove this conjecture by constructing a counterexample. Its design is inspired by a classical pendulum clock, which uses an escapement to couple the motion of an oscillator to another degree of freedom (a "hand") driven by an external force. Considering a thermodynamically consistent, discrete model for an escapement mechanism, we first show that the oscillations of an underdamped harmonic oscillator in thermal equilibrium arc sufficient to break the thermodynamic uncertainty relation. We then show that this is also the case in simulations of a fully continuous underdamped system with a potential landscape that mimics an escaped pendulum

    The importance of thermodynamics for molecular systems, and the importance of molecular systems for thermodynamics

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    Modelisation ARMA pour le codage de la parole a 16 kbits

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    SIGLECNRS RP 252 (223) / INIST-CNRS - Institut de l'Information Scientifique et TechniqueFRFranc
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