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首页> 外文期刊>International Journal of Heat and Mass Transfer >Near-infrared light heating of a slab by embedded nanoparticles
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Near-infrared light heating of a slab by embedded nanoparticles

机译:嵌入式纳米粒子对平板的近红外加热

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Exposed to spectral and uniform light, the heating of a one-dimensional, conducting and radiatively participating medium due to embedded absorbing and scattering nanoparticles is solved. Spherical harmonics approximation is used to solve the radiative transfer equation and the finite difference explicit method is used to find the temperature distribution in a generic slab having both boundaries subjected to convection. The host medium is transparent to spectral radiation and the temperature distribution is obtained when the temperature of the irradiated boundary reaches a desired point specified to ensure that any temperature in the medium does not exceed its melting temperature. It is found that the variation of the concentration and configuration of the embedded nanoparticles, particularly gold nanoshells, changes the radiative transfer spectrum, which leads to an alteration in the local heat generation spectrum and the resulting temperature distribution in the medium. It is shown that a gold nanoshell configuration with a great amount of scattering increases the internal diffuse radiation, which creates a more even radiative distribution, while a configuration with a great amount of absorption promotes a high amount of absorption in the entry region and very little in the rear region, leading to the formation of a large temperature gradient between the two boundaries. The present study provides a framework from which the photothermal heating of nanopar-ticle mixtures in non-transparent host media may be applied.
机译:暴露于光谱和均匀的光下,解决了由于嵌入的吸收和散射纳米粒子导致的一维传导和辐射参与介质的加热。使用球谐近似来求解辐射传递方程,并使用有限差分显式方法求出两个边界都经过对流的普通板中的温度分布。主体介质对光谱辐射是透明的,并且当辐照边界的温度达到指定的期望点以确保介质中的任何温度均不超过其熔化温度时,即可获得温度分布。发现嵌入的纳米颗粒,特别是金纳米壳的浓度和构型的变化,改变了辐射传递谱,这导致了局部生热谱的改变以及在介质中产生的温度分布。结果表明,具有大量散射的金纳米壳构型会增加内部扩散辐射,从而产生更均匀的辐射分布,而具有大量吸收的构型会促进进入区域的大量吸收,而几乎没有吸收在后部区域,导致两个边界之间形成较大的温度梯度。本研究提供了一个框架,可以从中应用在不透明的宿主介质中对纳米微粒混合物进行光热加热。

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