Coexisting Ordered States, Local Equilibrium-like Domains, and Broken Ergodicity in a Non-turbulent Rayleigh-Bénard Convection at Steady-state.

Atanu Chatterjee, Yash Yadati, Nicholas Mears, Germano Iannacchione
Author Information
  1. Atanu Chatterjee: Department of Physics and the Order-Disorder Phenomena Lab, Worcester Polytechnic Institute, MA, 01605, USA. achatterjee3@wpi.edu.
  2. Yash Yadati: Department of Physics and the Order-Disorder Phenomena Lab, Worcester Polytechnic Institute, MA, 01605, USA.
  3. Nicholas Mears: Department of Physics and the Order-Disorder Phenomena Lab, Worcester Polytechnic Institute, MA, 01605, USA.
  4. Germano Iannacchione: Department of Physics and the Order-Disorder Phenomena Lab, Worcester Polytechnic Institute, MA, 01605, USA.

Abstract

A challenge in fundamental physics and especially in thermodynamics is to understand emergent order in far-from-equilibrium systems. While at equilibrium, temperature plays the role of a key thermodynamic variable whose uniformity in space and time defines the equilibrium state the system is in, this is not the case in a far-from-equilibrium driven system. When energy flows through a finite system at steady-state, temperature takes on a time-independent but spatially varying character. In this study, the convection patterns of a Rayleigh-Bénard fluid cell at steady-state is used as a prototype system where the temperature profile and fluctuations are measured spatio-temporally. The thermal data is obtained by performing high-resolution real-time infrared calorimetry on the convection system as it is first driven out-of-equilibrium when the power is applied, achieves steady-state, and then as it gradually relaxes back to room temperature equilibrium when the power is removed. Our study provides new experimental data on the non-trivial nature of thermal fluctuations when stable complex convective structures emerge. The thermal analysis of these convective cells at steady-state further yield local equilibrium-like statistics. In conclusion, these results correlate the spatial ordering of the convective cells with the evolution of the system's temperature manifold.

References

  1. Science. 2002 Jun 7;296(5574):1813-5 [PMID: 12052941]
  2. Mech Ageing Dev. 2017 Apr;163:2-7 [PMID: 28267566]
  3. Proc Natl Acad Sci U S A. 2017 Aug 29;114(35):9255-9260 [PMID: 28811368]
  4. Phys Rev Lett. 2008 Apr 4;100(13):134502 [PMID: 18517958]
  5. Science. 2018 Jul 20;361(6399):255-258 [PMID: 29954989]
  6. Chaos. 1993 Oct;3(4):723-745 [PMID: 12780076]
  7. Phys Rev E Stat Nonlin Soft Matter Phys. 2001 Apr;63(4 Pt 2):046303 [PMID: 11308941]
  8. Biophys Chem. 2007 Apr;127(1-2):123-8 [PMID: 17289252]
  9. Proc Natl Acad Sci U S A. 2001 Sep 25;98(20):11081-4 [PMID: 11562457]
  10. Eur Phys J E Soft Matter. 2012 Jul;35(7):58 [PMID: 22791306]
  11. Nat Commun. 2018 May 29;9(1):2118 [PMID: 29844392]
  12. Nature. 2000 Apr 20;404(6780):837-40 [PMID: 10786783]
  13. Sci Rep. 2013;3:2394 [PMID: 23928853]
  14. Phys Rev Lett. 2009 Jan 30;102(4):044502 [PMID: 19257426]

Word Cloud

Created with Highcharts 10.0.0temperaturesystemsteady-stateequilibriumthermalconvectivefar-from-equilibriumdrivenstudyconvectionRayleigh-Bénardfluctuationsdatapowercellschallengefundamentalphysicsespeciallythermodynamicsunderstandemergentordersystemsplaysrolekeythermodynamicvariablewhoseuniformityspacetimedefinesstatecaseenergyflowsfinitetakestime-independentspatiallyvaryingcharacterpatternsfluidcellusedprototypeprofilemeasuredspatio-temporallyobtainedperforminghigh-resolutionreal-timeinfraredcalorimetryfirstout-of-equilibriumappliedachievesgraduallyrelaxesbackroomremovedprovidesnewexperimentalnon-trivialnaturestablecomplexstructuresemergeanalysisyieldlocalequilibrium-likestatisticsconclusionresultscorrelatespatialorderingevolutionsystem'smanifoldCoexistingOrderedStatesLocalEquilibrium-likeDomainsBrokenErgodicityNon-turbulentConvectionSteady-state

Similar Articles

Cited By (4)