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Numerical Simulations and Experimental Studies on the Quasi-State Axial Compression Behavior of Steel-Based Porous Materials

机译:钢基多孔材料准状态轴向压缩行为的数值模拟与实验研究

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摘要

As a new type composite material, steel-based porous materials presented the higher stiffness, strength and higher temperature resistance in comparison with the nonferrous metals. In order to realize the free-design of pore structure and free-control of porosity of steel-based porous material, indirect 3D printing technology combined with the investment casting process has been used to fabricate the steel-based porous materials. The finite element method has been carried out to study the relationship between the porosity and the mechanical properties by quasi-static compression simulation, which is consistent with compression test. The modified Gibson-Ashby formula is used to establish the quantitative relationship between porosity and elastic modulus and yield strength of steel-based porous materials based on Kelvin structure.
机译:钢基多孔材料作为一种新型复合材料,与有色金属相比具有更高的刚度,强度和更高的耐热性。为了实现钢基多孔材料的孔结构的自由设计和孔隙率的自由控制,间接3D打印技术与熔模铸造工艺相结合已被用于制造钢基多孔材料。运用有限元方法通过准静态压缩模拟研究了孔隙度与力学性能之间的关系,这与压缩试验是一致的。修改后的吉布森-阿什比公式用于建立基于开尔文结构的钢基多孔材料的孔隙率和弹性模量与屈服强度之间的定量关系。

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