论文标题
由于近场辐射传热,相变纳米颗粒链中多体有效的热导率
Many-body effective thermal conductivity in phase-change nanoparticle chains due to near-field radiative heat transfer
论文作者
论文摘要
在由许多纳米颗粒组成的密集系统中,近场辐射传热(NFRHT)的直接模拟需要大量的计算资源。通过结合多体辐射传热理论和傅立叶定律的方法,从连续体的角度研究了嵌入非吸收宿主介质中的简单一维纳米颗粒链的NFRHT。分析了绝缘子 - 金属过渡材料(VO $ _2 $),复杂多体相互作用(MBI)和宿主培养基相对介电常数对特征有效导热率(ETC)的影响。由于相变效应,vo $ $ _2 $纳米颗粒链的链条高达过渡温度高达50倍。与金属阶段的链中的低等级相比,绝缘体相VO $ _2 $纳米颗粒链中的强耦合占其高等级,在该链中,特征热频率和共振频率之间存在不匹配。强大的MBI赞成ETC。对于SIC纳米颗粒链,与未考虑MBI效应的MBI相比,MBI甚至可以翻倍。对于密集的链条,由于粒子间耦合强大,强大的MBI增强了ETC。当链条变得越来越稀释时,由于耦合的耦合可以忽略不足,因此可以安全地忽略MBI。主机培养基相对介电常数显着影响粒子间耦合,该粒子耦合构成了vo $ _2 $纳米粒子链的介电性依赖性等。
In dense systems composed of numerous nanoparticles, direct simulations of near-field radiative heat transfer (NFRHT) require considerable computational resources. NFRHT for the simple one-dimensional nanoparticle chains embedded in a non-absorbing host medium is investigated from the point of view of the continuum by means of an approach combining the many-body radiative heat transfer theory and the Fourier law. Effects of the phase change of the insulator-metal transition material (VO$_2$), the complex many-body interaction (MBI) and the host medium relative permittivity on the characteristic effective thermal conductivity (ETC) are analyzed. The ETC for VO$_2$ nanoparticle chains below the transition temperature can be as high as 50 times of that above the transition temperature due to the phase change effect. The strong coupling in the insulator-phase VO$_2$ nanoparticle chain accounts for its high ETC as compared to the low ETC for the chain at the metallic phase, where there is a mismatch between the characteristic thermal frequency and resonance frequency. The strong MBI is in favor of the ETC. For SiC nanoparticle chains, the MBI even can double the ETC as compared to those without considering the MBI effect. For the dense chains, a strong MBI enhances the ETC due to the strong inter-particles couplings. When the chains go more and more dilute, the MBI can be neglected safely due to negligible couplings. The host medium relative permittivity significantly affects the inter-particles couplings, which accounts for the permittivity-dependent ETC for the VO$_2$ nanoparticle chains.