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首页> 外文期刊>International journal of applied mechanics >Time-Dependent Mechanical Properties in Polyetherimide 3D-Printed Parts Are Dictated by Isotropic Performance Being Accurately Predicted by the Generalized Time Hardening Model
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Time-Dependent Mechanical Properties in Polyetherimide 3D-Printed Parts Are Dictated by Isotropic Performance Being Accurately Predicted by the Generalized Time Hardening Model

机译:聚醚酰亚胺3D印刷部件中的时间依赖性机械性能通过通过广义的时间硬化模型精确预测的各向同性性能决定

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The Fused-Deposition Modelling (FDM) technique has transformed the manufacturing discipline by simplifying operational processes and costs associated with conventional technologies, with polymeric materials being indispensable for the development of this technology. A lack of quantification of viscoelastic/plastic behavior has been noted when addressing FDM parts with Polyetherimide (PEI), which is currently being investigated as a potential material to produce functional end-products for the aerospace and health industry. Primary and secondary creep along with stress relaxation tests have been conducted on FDM PEI specimens by applying stresses from 10 to 40 MPa for 100 to 1000 min. Specimens were 3D printed by varying the part build orientation, namely XY, YZ, and XZ. Creep results were fitted to the Generalized Time Hardening equation (GTH), and then this model was used to predict stress relaxation behavior. FDM PEI parts presented an isotropic creep and stress relaxation performance. The GTH model was proven to have a significant capacity to fit viscoelastic/plastic performances for each single build orientation (r > 0.907, p < 0.001), as well as a tight prediction of the stress relaxation behavior (r > 0.998, p < 0.001). Averaged-orientation coefficients for GTH were also closely correlated with experimental creep data (r > 0.958, p < 0.001) and relaxation results data (r > 0.999, p < 0.001). FDM PEI parts showed an isotropic time-dependent behavior, which contrasts with previous publications arguing the significant effect of part build orientation on the mechanical properties of FDM parts. These findings are strengthened by the high correlation obtained between the experimental data and the averaged-coefficient GTH model, which has been proven to be a reliable tool to predict time-dependent performance in FDM parts.
机译:通过简化与常规技术相关的操作流程和成本,融合沉积建模(FDM)技术已经改变了制造学科,该技术具有不可或缺的这种技术。在用聚醚酰亚胺(PEI)寻址FDM零件时,已经注意到缺失粘弹性/塑料行为的量化,该胶质酰亚胺(PEI)目前正在被研究为生产航空航天和卫生行业的潜在材料。通过将10至40MPa施加100至1000分钟,通过施加应力在FDM PEI试样上进行初级和二次蠕变。通过改变零件建立方向,即XY,YZ和XZ,标本是印刷的3D。蠕变结果适用于广义时间硬化方程(GTH),然后使用该模型来预测应力松弛行为。 FDM PEI部件呈现出各向同性的蠕变和应力松弛性能。经过证明,GTH模型具有显着的容量,适用于每个单一构建方向(R> 0.907,P <0.001)的粘弹性/塑料性能,以及应力松弛行为的紧密预测(R> 0.998,P <0.001 )。 GTH的平均定向系数也与实验蠕变数据(R> 0.958,P <0.001)和弛豫结果数据(R> 0.999,P <0.001)密切相关。 FDM PEI零件显示出各向同性的时间依赖性行为,其与先前的出版物形成鲜明对比部分在FDM部件的机械性能下的显着效果。这些发现通过实验数据和平均系数GTH模型之间获得的高相关加强,这已被证明是一种可靠的工具,以预测FDM部件中的时间依赖性性能。

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