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SIMULATION ASSISTED DESIGN FOR AN ADDITIVELY MANUFACTURED AUTOCLAVE TOOL ACCOUNTING FOR AN ANISOTROPIC EXPANSION

机译:仿真辅助设计用于一种瘾地制造的高压釜工具核算各向异性膨胀

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Carbon fiber reinforced polymer composites have been used in Big Area Additive Manufacturing (BAAM) to decrease the distortion during the printing process and increase functional stiffness. These materials are also important for additively manufactured autoclave tooling which expands when exposed to the high temperatures of the operational cycle, causing the dimensions of the mold to differ from the targeted design. Since the reinforcing fibers generally align during the extrusion process, the thermal expansion of the composite along the deposition direction is restrained by fibers, whereas the thermal expansion perpendicular to the bead is largely unconstrained. This leads to an anisotropic expansion of the material that is dependent upon the local deposition path, which may be tortuous and complex. To obtain an accurate final part geometry during the autoclave process, a computational prediction of the thermal expansion of a tool is required to account for the complex extrusion deposition directions. A multi-step approach is presented that accounts for (1) anisotropic thermal expansion of the extruded bead, (2) the complex deposition directions, and (3) internal geometry determined by slicing software. The thermal expansion coefficient in the deposition direction and perpendicular to the deposition direction were measured at multiple locations in the test specimen. A revised model geometry was generated to achieve the target dimensions when accounting for thermal expansion.
机译:碳纤维增强聚合物复合材料已被用于大面积添加剂制造(BAAM),以降低印刷过程中的变形并增加功能刚度。这些材料对于加容量制造的高压釜工具也很重要,该工具在暴露于操作循环的高温时膨胀,从而导致模具的尺寸与目标设计不同。由于加强纤维通常在挤出过程中对准,因此通过纤维抑制沿沉积方向的复合材料的热膨胀,而垂直于珠的热膨胀在很大程度上是无约束的。这导致依赖于局部沉积路径的材料的各向异性膨胀,这可能是曲折和复杂的。为了在高压釜过程中获得精确的最终部分几何形状,需要工具的热膨胀的计算预测来考虑复挤出沉积方向。提出了一种多步方法,其考虑了挤出珠的各向异性热膨胀,(2)复合沉积方向,(3)通过切片软件确定的内部几何形状。在试样中的多个位置处测量沉积方向和垂直于沉积方向的热膨胀系数。在核算热膨胀时,产生修订模型几何体以实现目标尺寸。

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