Geometric heat pumping under continuous modulation in thermal diffusion
Hao-Ran Yan, Pei-Chao Cao, Yan-Xiang Wang, Xue-Feng Zhu, Ying Li

TL;DR
This paper develops a universal theory for geometric heat pumping in macroscopic thermal diffusion systems using continuous parameter modulation, supported by experiments demonstrating heat transport without thermal bias.
Contribution
It derives a general heat pumping formula based on classical diffusion and continuous modulation, linking Berry phase concepts to heat transport in macroscopic systems.
Findings
Derived a universal heat pumping formula under continuous modulation.
Experimentally demonstrated heat pumping without thermal bias.
Identified non-trivial zero heat flux cases and counterintuitive effects.
Abstract
Berry (geometric) phase has attracted a lot of interest and permeated into all aspects of physics including photonics, crystal dynamics, electromagnetism and heat transfer since it was discovered, leading to various unprecedented effects both in classical and quantum systems, such as Hannay angle, quantum Hall effect, orbital magnetism and Thouless pumping. Heat pumping is one of the most prominent and fantastic application of geometric phase in heat transport. Here we derive a general heat pumping theory based on classical diffusion equation and continuous modulation of system parameters in macroscopic thermal diffusion system and obtain a formula which is reminiscent of contact between Berry phase and the Berry curvature. Furthermore, we discuss two cases of non-trivial zero heat flux after one cycle which is fundamentally different from the trivial zero heat flux generated by static…
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Taxonomy
TopicsAdvanced Theoretical and Applied Studies in Material Sciences and Geometry · Heat Transfer and Optimization · Engineering Technology and Methodologies
