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首页> 外文期刊>Composite Structures >Lightweight cellular metal composites with zero and tunable thermal expansion enabled by ultrasonic additive manufacturing: Modeling, manufacturing, and testing
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Lightweight cellular metal composites with zero and tunable thermal expansion enabled by ultrasonic additive manufacturing: Modeling, manufacturing, and testing

机译:超声波添加剂制造的轻量级蜂窝金属复合材料,具有零和可调谐的热膨胀:建模,制造和测试

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摘要

In aerospace applications, variations of temperature caused by changing environmental conditions or generation of heat is a common problem. The resulting thermal strains cause separation and alignment errors in optical systems, and stresses due to mismatches of thermal expansion at material interfaces cause failure of components and structures. Because minimizing weight, cost, and lead time are also critical requirements, lightweight, easily machined metals are attractive for aerospace applications, but these materials all have substantial coefficients of thermal expansion. Previous work has shown that the superposition of two metals with dissimilar coefficients of thermal expansion in periodic cellular configurations can result in a composite material with zero effective thermal expansion. However, fabrication of these material architectures typically is either impossible or requires manual assembly. Here, we propose methods to design and fabricate cellular metal composites with tunable thermal expansion and optimized specific stiffness that can be manufactured at useful scales entirely with automated methods. Samples were manufactured with ultrasonic additive manufacturing and computer-controlled machining, and thermal expansion was measured optically. The results demonstrate the practical fabrication of cellular metal composites with zero or negative thermal expansion in one direction, tunable thermal expansion in a second direction, and structural performance indices competitive with the indices of conventional aerospace alloys.
机译:在航空航天应用中,通过改变环境条件或产生热量引起的温度变化是常见问题。所得到的热菌株在光学系统中引起分离和对准误差,并且由于材料界面处的热膨胀不匹配导致的应力导致部件和结构失效。因为最小化重量,成本和交换时间也是关键要求,轻质,易于加工的金属对于航空航天应用具有吸引力,但这些材料都具有大量的热膨胀系数。以前的工作表明,两个金属的叠加在周期性蜂窝配置中具有不同热膨胀系数的金属可以导致复合材料,其具有零有效的热膨胀。然而,这些材料架构的制造通常是不可能的或需要手动组装。在此,我们提出了设计和制造具有可调谐热膨胀和优化的特定刚度的细胞金属复合材料的方法,其可以完全以自动化方法在有用的尺度上制造。用超声添加剂制造和计算机控制的加工制造样品,光学膨胀是光学的。结果表明,在一个方向上具有零或负热膨胀的细胞金属复合材料的实际制造,在第二方向上可调热膨胀,以及与传统航空航天合金的指标具有竞争力的结构性能指标。

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