Transformation thermal convection: Cloaking, concentrating, and camouflage
arXiv:1705.11062 · doi:10.1103/PhysRevE.97.022129
Abstract
Heat can generally transfer via thermal conduction, thermal radiation, and thermal convection. All the existing theories of transformation thermotics and optics can treat thermal conduction and thermal radiation, respectively. Unfortunately, thermal convection has never been touched in transformation theories due to the lack of a suitable theory, thus limiting applications associated with heat transfer through fluids (liquid or gas). Here, we develop, for the first time, a general theory of transformation thermal convection by considering the convection-diffusion equation, the Navier-Stokes equation, and the Darcy law. By introducing porous media, we get a set of coupled equations keeping their forms under coordinate transformation. As model applications, the theory helps to show the effects of cloaking, concentrating, and camouflage. Our finite element simulations confirm the theoretical findings. This work offers a general transformation theory for thermal convection, thus revealing some novel behaviors of thermal convection; it not only provides new hints on how to control heat transfer by combining thermal conduction, thermal radiation, and thermal convection, but also benefits the study of mass diffusion and other related fields that contain a set of equations and need to transform velocities at the same time.
17 pages, 6 figures
References in corpus (9)
- Heat Transport in low-dimensional systems
- Design of Electromagnetic Cloaks and Concentrators Using Form-Invariant Coordinate Transformations of Maxwell's Equations
- Thermal Logic Gates: Computation with phonons
- Experimental demonstration of a multiphysics cloak: manipulating heat flux and electric current simultaneously
- Invisible sensor: Simultaneous sensing and camouflaging in multiphysical fields
- Radiative bistability and thermal memory
- Vibrational Heat Transport in Molecular Junctions
- Giant Thermal Rectification from Polyethylene Nanofiber Thermal Diodes
- Flow stabilization with active hydrodynamic cloaks
Cited by in corpus (7)
- Transforming heat transfer with thermal metamaterials and devices
- Controlling mass and energy diffusion with metamaterials
- Tunable liquid-solid hybrid thermal metamaterials with a topology transition
- Topological thermal transport
- Designing nonlinear thermal devices and metamaterials under the Fourier's law: A route to nonlinear thermotics
- Diffusive Pseudo-Conformal Mapping: Anisotropy-Free Transformation Thermal Media with Perfect Interface Matching
- Non-Hermitian physics and topological phenomena in convective thermal metamaterials