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Selective Laser Melting of Half-Heusler Thermoelectric Materials

机译:半风速机热电材料的选择性激光熔化

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Traditional thermoelectric device manufacturing uses machining, assembly, and integration steps which lead to material waste and performance limitations. The approach offers little flexibility in designing thermoelectric module geometry. Additive manufacturing can overcome these challenges, but it has not been demonstrated for inorganic thermoelectric materials, particularly those geared toward mid-/high-temperature applications. This work describes selective laser melting, an additive manufacturing process which locally melts successive layers of material powder to construct three-dimensional objects. The work shows the first-ever demonstrations of selective laser melting applied to half-Heusler thermoelectric materials: ZrNiSn, and Hf_(0.3)Zr_(0.7)CoSn_(0.3)Sb_(0.7)/nano-ZrO_2. Laser processing parameters critically affects the formation and appearance of ingots, and we found laser energy density is useful but cannot be the single consideration for the SLM process. The fabricated ingots are generally porous with rough surfaces. They are characterized through powder XRD and TGA. The results consistently show that produced parts preserved most of the original chemical structures with small chemical changes due to decomposition and oxidation during the selective laser melting process. The work demonstrates selective laser melting is feasible for half-Heusler thermoelectric materials.
机译:传统的热电装置制造使用加工,装配和集成步骤,这导致材料浪费和性能限制。该方法在设计热电模块几何形状方面具有很少的灵活性。添加剂制造可以克服这些挑战,但尚未证明无机热电材料,特别是朝向中/高温应用的挑战。这项工作描述了选择性激光熔化,局部熔化连续层的材料粉末的添加剂制造方法,以构建三维物体。该工作表明,选择性激光熔化的首次示范适用于半起式热电材料:ZrnISN和HF_(0.3)Zr_(0.7)COSN_(0.3)SB_(0.7)/纳米-ZRO_2。激光加工参数批判性地影响铸锭的形成和外观,我们发现激光能量密度是有用的,但不能是SLM过程的单一考虑因素。制造的锭通常具有粗糙表面的多孔。它们的特征通过粉末XRD和TGA。结果始终如一地表明,由于在选择性激光熔化过程中,由于在选择性激光熔化过程中,产生的部件具有由于分解和氧化而具有小的化学变化的大部分原始化学结构。该工作证明了选择性激光熔化对于半Heusler热电材料是可行的。

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