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Modeling of the heat transfer in laser-heated small particles on surfaces

机译:激光加热的表面小颗粒的传热模型

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Motivated by new photothermal techniques to detect trace quantities of illicit substances, we are examining the heat transfer of small particles randomly distributed on surfaces that are selectively heated by a laser beam. For an optimal choice of laser power, illumination time and other parameters, we need formulas describing how the thermal signal depends on particle size, their distribution on the substrate surface and thermo-physical properties of the materials involved. In this manuscript we compare very simple physical models and computational simulations with experimental data from polyethylene microspheres on a polished copper surface, with diameters ranging from 20 to 200 μm. Heat transfer through air dominates the process, both for single particles and between particles in clusters. The influence of high particle densities per substrate area on the heat transfer process is factored into the simulation by using a cell with just one particle and symmetric boundary conditions. Further simulations where irregular-shaped carbon pieces were approximated as lying cylinders indicate that our simple model can also describe the thermal behavior of a wider class of realistic particles on solid surfaces.
机译:受用于检测痕量非法物质的新光热技术的推动,我们正在研究随机分布在被激光束选择性加热的表面上的小颗粒的传热。为了最佳选择激光功率,照明时间和其他参数,我们需要公式来描述热信号如何取决于颗粒大小,它们在基材表面的分布以及所涉及材料的热物理性质。在此手稿中,我们将非常简单的物理模型和计算模拟与抛光铜表面上直径为20至200μm的聚乙烯微球的实验数据进行了比较。无论是单个颗粒还是簇中的颗粒之间,空气中的热传递都是主导过程。通过使用仅具有一个粒子和对称边界条件的单元,将每个基板区域的高粒子密度对传热过程的影响纳入了模拟。进一步的模拟将不规则形状的碳块近似为躺缸,表明我们的简单模型还可以描述固体表面上更宽范围的逼真的颗粒的热行为。

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