The Thermal Discrete Dipole Approximation (T-DDA) for near-field radiative heat transfer simulations in three-dimensional arbitrary geometries
arXiv:1308.6262 · doi:10.1016/j.jqsrt.2013.08.021
Abstract
A novel numerical method called the Thermal Discrete Dipole Approximation (T-DDA) is proposed for modeling near-field radiative heat transfer in three-dimensional arbitrary geometries. The T-DDA is conceptually similar to the Discrete Dipole Approximation, except that the incident field originates from thermal oscillations of dipoles. The T-DDA is described in details in the paper, and the method is tested against exact results of radiative conductance between two spheres separated by a sub-wavelength vacuum gap. For all cases considered, the results calculated from the T-DDA are in good agreement with those from the analytical solution. When considering frequency-independent dielectric functions, it is observed that the number of sub-volumes required for convergence increases as the sphere permittivity increases. Additionally, simulations performed for two silica spheres of 0.5 micrometer-diameter show that the resonant modes are predicted accurately via the T-DDA. For separation gaps of 0.5 micrometer and 0.2 micrometer, the relative differences between the T-DDA and the exact results are 0.35% and 6.4%, respectively, when 552 sub-volumes are used to discretize a sphere. Finally, simulations are performed for two cubes of silica separated by a sub-wavelength gap. The results revealed that faster convergence is obtained when considering cubical objects rather than curved geometries. This work suggests that the T-DDA is a robust numerical approach that can be employed for solving a wide variety of near-field thermal radiation problems in three-dimensional geometries.
References in corpus (5)
- Radiative heat transfer between nanostructures
- Trace formulae for non-equilibrium Casimir interactions, heat radiation and heat transfer for arbitrary objects
- Effects of spatial dispersion in near-field radiative heat transfer between two parallel metallic surfaces
- Fluctuating surface-current formulation of radiative heat transfer for arbitrary geometries
- Radiative heat transfer between metallic nanoparticles
Cited by in corpus (36)
- Near-field Radiative Heat Transfer in Many-Body Systems
- Long-distance near-field energy transport via propagating surface waves
- Fluctuating volume-current formulation of electromagnetic fluctuations in inhomogeneous media: incandecence and luminescence in arbitrary geometries
- Radiative heat transfer in many-body systems: coupled electric and magnetic dipole approach
- Thermal discrete dipole approximation for the description of thermal emission and radiative heat transfer of magneto-optical systems
- Near-field radiative heat transfer between arbitrarily-shaped objects and a surface
- Strong tip-sample coupling in thermal radiation scanning tunneling microscopy
- Thermal radiation in systems of many dipoles
- Convergence analysis of the thermal discrete dipole approximation
- Many-body effective thermal conductivity in phase-change nanoparticle chains due to near-field radiative heat transfer
- Magneto-thermoplasmonics: from theory to applications
- Perspective on Near-Field Radiative Heat Transfer
- Scalable radiative thermal logic gates based on nanoparticle networks
- Radiative heat transfer between metallic nanoparticle clusters in both near field and far field
- Limitations of the kinetic theory to describe the near-field heat exchanges in many-body systems
- Circularly polarized thermal radiation from nonequilibrium coupled antennas
- Near-field thermal electromagnetic transport: An overview
- Near-field radiative heat transfer between irregularly shaped dielectric particles modeled with the discrete system Green's function method
- Radiative heat flux through a topological Su-Schrieffer-Heeger chain of plasmonic nanoparticles
- Thermal radiative energy exchange between a closely-spaced linear chain of spheres and its environment
- Green-Kubo relation for thermal radiation in non-reciprocal systems
- Radiative energy and momentum transfer for various spherical shapes: a single sphere, a bubble, a spherical shell and a coated sphere
- Near-field thermal radiative transfer between two coated spheres
- Phonon-polariton mediated thermal radiation and heat transfer among molecules and macroscopic bodies: nonlocal electromagnetic response at mesoscopic scales
- Thermal equilibrium spin torque: Near-field radiative angular momentum transfer in magneto-optical media
- Normal heat diffusion in many-body system via thermal photons
- Orientation effects on near-field radiative heat transfer between complex-shaped dielectric particles
- Topological Materials for Near-Field Radiative Heat Transfer
- Exact formulas for radiative heat transfer between planar bodies under arbitrary temperature profiles: modified asymptotics and sign-flip transitions
- Magnetic field control of the near-field radiative heat transfer in three-body planar systems
- Near-Field Thermal Emission by Periodic Arrays
- Thermal discrete dipole approximation for near-field radiative heat transfer in many-body systems with arbitrary nonreciprocal bodies
- Mechanical relations between conductive and radiative heat transfer
- Generalized coupled dipole method for thermal far-field radiation
- Broadband directional thermal emission with anisothermal microsources
- Broadband circularly polarized thermal radiation from magnetic Weyl semimetals