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Thermal Conductivity Measurement of Mesoscale Lattices Using Steady-State Infrared Thermography

机译:稳态红外热成像法测量中尺度晶格的热导率

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Ultralight architected materials are favorable for thermal insulation purposes in gas turbines, hypersonic, electronic packaging, and aerospace applications. The effective mechanical properties and thermal conductivity of these structures can be engineered via their architectural configurations, making them an excellent candidate to meet requirements of these applications. Advanced manufacturing has paved the path for fabrication of these structures, reaching the properties that is beyond the material space capacity. Among all architected materials, ultralight hollow nickel lattices by exhibiting 99.9% porosity and complete recoverability after compression above 50% strain have appeared very promising. The challenge for reporting accurate data on the thermal conductivity of these structures is performing a non-contact measurement methodology. Here, we designed a new IR thermography-based setup for thermal conductivity measurement of mesoscale cellular materials. The effective thermal conductivity of two hollow doped nickel samples with volume fraction of 0.09% and two different surface finishes (rough and polished) is measured as a function of compressive force and temperature. Surface properties is proposed as a new control knob for changing the effective thermal properties in the architected materials.
机译:超轻型结构材料非常适合用于燃气轮机,高超音速,电子包装和航空航天应用中的绝热目的。这些结构的有效机械性能和导热性可以通过其结构配置进行设计,使其成为满足这些应用要求的极佳候选者。先进制造为这些结构的制造铺平了道路,达到了超出材料空间容量的性能。在所有结构材料中,具有99.9%的孔隙率和高于50%应变的压缩后完全可恢复性的超轻空心镍晶格似乎非常有前途。报告有关这些结构的热导率的准确数据的挑战是执行非接触式测量方法。在这里,我们设计了一种新的基于红外热成像的装置,用于中尺度蜂窝材料的热导率测量。测量了两个空心掺杂镍样品的有效导热系数,该样品的体积分数为0.09%,并且具有两种不同的表面光洁度(粗糙和抛光),它们是压缩力和温度的函数。提出了表面特性作为一种新的控制旋钮,用于改变建筑材料中的有效热特性。

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