We investigate the kinetics of first-order magnetic phase transitions by measuring and modeling the heat-flux avalanches corresponding to the irreversible motion of the phase-boundary interface separating the coexisting low- and high-temperature stable magnetic phases. By means of out-of-equilibrium thermodynamics, we encompass the damping mechanisms of the boundary motion in a phenomenological parameter ?s. By analyzing the time behavior of the heat-flux signals measured on La(Fe-Mn-Si)13-H magnetocaloric compounds through Peltier calorimetry temperature scans performed at low rates, we relate the linear rise of the individual avalanches to the intrinsic-damping parameter ?s.

Thermodynamics of the Heat-Flux Avalanches at the First-Order Magnetic Transition in Magnetocaloric Materials

Bennati C;
2017

Abstract

We investigate the kinetics of first-order magnetic phase transitions by measuring and modeling the heat-flux avalanches corresponding to the irreversible motion of the phase-boundary interface separating the coexisting low- and high-temperature stable magnetic phases. By means of out-of-equilibrium thermodynamics, we encompass the damping mechanisms of the boundary motion in a phenomenological parameter ?s. By analyzing the time behavior of the heat-flux signals measured on La(Fe-Mn-Si)13-H magnetocaloric compounds through Peltier calorimetry temperature scans performed at low rates, we relate the linear rise of the individual avalanches to the intrinsic-damping parameter ?s.
2017
Istituto dei Materiali per l'Elettronica ed il Magnetismo - IMEM
ELECTRON METAMAGNETIC TRANSITION; CRITICAL SLOWING-DOWN; FLOW MALDISTRIBUTION; REFRIGERATION; REGENERATORS; TEMPERATURE; PERFORMANCE; KINETICS; EXCHANGERS; LA(FE0.88SI0.12)(13)
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/348902
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