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3D microwave printing temperature control of continuous carbon fiber reinforced composites

机译:连续碳纤维增强复合材料的3D微波印刷温度控制

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摘要

Continuous carbon fibers show dramatic promise as reinforcement materials to improve the stiffness, strength properties and design ability of 3D printed polymer parts. Current 3D printing methods have a low printing speed because the intrinsic slow and contact needed heat transfer disadvantages of the traditional resistive heating approach. We present a 3D microwave printing method by using the microwave for instantaneous and volumetric heating the continuous carbon fiber reinforced polymer (CCFRP) filament. This allows fabricating CCFRP components with much higher speed compared to traditional 3D printing technologies. To utilize the benefit of high printing speed, the speed-variation 3D microwave printing is applied to adapt the diverse printing path and reduce the printing period. In this paper, a new 3D microwave printing temperature control method by combining the prediction-model and step-proportional-integral-derivative control is researched to reduce the printing temperature difference of the CCFRP filaments during the speed-variation printing process. Three different CCFRP specimens with variation printing speed are tested, including a spanner, an aircraft and a spider from Nazca lines. The experimental results indicate that the new printing temperature control method for 3D microwave printing process dramatically reduces the temperature deviation. Further mechanical testing results indicate that the CCFRP printed with this method has a high tensile strength up to 358 MPa. This technology solved a key problem of 3D microwave printing of continuous carbon fiber reinforced polymer composites and can be used to manufacture complex polymer-matrix composite materials.
机译:连续碳纤维作为增强材料来改善3D打印聚合物零件的刚度,强度特性和设计能力具有广阔的前景。当前的3D打印方法的打印速度较低,因为传统的电阻加热方法固有的慢速和接触所需的传热缺点。我们提出了一种利用微波对连续碳纤维增强聚合物(CCFRP)长丝进行瞬时和体积加热的3D微波打印方法。与传统的3D打印技术相比,这可以更快地制造CCFRP组件。为了利用高打印速度的优势,应用了变速3D微波打印以适应多样化的打印路径并缩短打印周期。本文研究了一种将预测模型与步长比例积分微分控制相结合的新型3D微波打印温度控制方法,以减小CCFRP长丝在变速打印过程中的打印温度差。测试了三种不同印刷速度的CCFRP标本,包括扳手,飞机和Nazca系列的蜘蛛。实验结果表明,用于3D微波打印过程的新打印温度控制方法大大降低了温度偏差。进一步的机械测试结果表明,用这种方法印刷的CCFRP具有高达358 MPa的高拉伸强度。该技术解决了连续碳纤维增强的聚合物复合材料的3D微波打印的关键问题,可用于制造复杂的聚合物-基质复合材料。

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