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Investigation of Quasi-Static Indentation Response of Inkjet Printed Sandwich Structures under Various Indenter Geometries

机译:不同压头几何形状下喷墨打印三明治结构的准静态压痕响应研究

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摘要

The objective of this investigation was to determine the quasi-static indentation response and failure mode in three-dimensional (3D) printed trapezoidal core structures, and to characterize the energy absorbed by the structures. In this work, the trapezoidal sandwich structure was designed in the following two ways. Firstly, the trapezoidal core along with its facesheet was 3D printed as a single element comprising a single material for both core and facesheet (type A); Secondly, the trapezoidal core along with facesheet was 3D printed, but with variation in facesheet materials (type B). Quasi-static indentation was carried out using three different indenters, namely standard hemispherical, conical, and flat indenters. Acoustic emission (AE) technique was used to capture brittle cracking in the specimens during indentation. The major failure modes were found to be brittle failure and quasi-brittle fractures. The measured indentation energy was at a maximum when using a conical indenter at 9.40 J and 9.66 J and was at a minimum when using a hemispherical indenter at 6.87 J and 8.82 J for type A and type B series specimens respectively. The observed maximum indenter displacements at failure were the effect of material variations and composite configurations in the facesheet.
机译:这项研究的目的是确定三维(3D)打印的梯形芯结构的准静态压痕响应和破坏模式,并表征结构吸收的能量。在这项工作中,梯形三明治结构是通过以下两种方式设计的。首先,梯形芯及其面板被3D打印为单个元素,包括用于芯和面板的两种材料(A型);其次,梯形核心与面板一起进行了3D打印,但是面板材料(B型)有所不同。使用三种不同的压头,即标准的半球形,圆锥形和扁平压头,进行了准静态压痕。声发射(AE)技术用于在压痕过程中捕获样品中的脆性裂纹。发现主要破坏模式为脆性破坏和准脆性断裂。当使用锥形压头分别在9.40 J和9.66 J下测得的压痕能量最大,而对于A型和B型样品分别使用6.87 J和8.82 J的半球形压头则最小。在破坏时观察到的最大压头位移是面板中材料变化和复合材料构造的影响。

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