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Preliminary Investigation into Modeling The Damage to Carbon Fibre Composites Due to the Thermo-electric Effects of a Lightning Strikes

机译:模拟雷击热电效应对碳纤维复合材料损伤的初步研究

摘要

The impact of a lightning strike causes a short high electrical current burst through Carbon Fibre Composites (CFC). Due to the electrical properties of CFC the large current leads to a rapid heating of the surrounding impact area which degrades and damages the CFC. It is therefore necessary to study in detail the thermal response and possible degradation processes caused to CFC. The degradation takes place in two ways, firstly via direct mechanical fracture due to the thermal expansion of the CFC and secondly via thermo-chemical processes (phase change and pyrolysis) at high temperatures. The main objective of this work is to construct a numerical model of the major physical processes involved, and to understand the correlation between the damage mechanisms and the damage witnessed in modern CFC. For this work we are only considering the thermo-chemical degradation of CFC. Bespoke numerical models have been constructed to predict the extent of the damage caused by the two thermo-chemical processes separately (e.g. a model for phase change and a model for pyrolysis). The numerical model predictions have then been verified experimental by decoupling of the damage mechanisms, e.g. the real Joule heating from a lightning strike is replaced by a high power laser beam acting on composite surface. This was done to simplify the physical processes which occur when a sample is damaged. The experimentally damaged samples were then investigated using X-ray tomography to determine the physical extent of the damage. The experimental results are then compared with the numerical predictions by considering the physical extent of the polymer removal. The extent of polymer removal predicted by the numerical model, solving for pyrolysis, gave a reasonable agreement with the damage seen in the experimental sample. Furthermore the numerical model predicts that the damage caused by polymer phase change has a minimal contribution to the overall extent of the damage.
机译:雷击的影响会导致通过碳纤维复合材料(CFC)的短时高电流突发。由于CFC的电气特性,大电流会导致周围撞击区域的快速加热,从而降低并损坏CFC。因此,有必要详细研究CFC的热响应和可能的降解过程。降解以两种方式发生,一种是由于CFC的热膨胀导致的直接机械断裂,另一种是在高温下通过热化学过程(相变和热解)。这项工作的主要目的是建立一个涉及的主要物理过程的数值模型,并了解损害机制与现代氟氯化碳中所见损害之间的相互关系。对于这项工作,我们仅考虑CFC的热化学降解。已构建了定制的数值模型以分别预测由两个热化学过程引起的损坏程度(例如,相变模型和热解模型)。数值模型的预测结果已通过将损伤机理解耦(例如将其解耦)进行了实验验证。雷击产生的实际焦耳热被作用在复合材料表面的高功率激光束所取代。这样做是为了简化损坏样品时发生的物理过程。然后使用X射线断层扫描技术对实验损坏的样品进行研究,以确定损坏的物理程度。然后,通过考虑聚合物去除的物理程度,将实验结果与数值预测值进行比较。通过数值模型预测的聚合物去除程度,解决了热解问题,与实验样品中所见的破坏给出了合理的一致性。此外,数值模型预测,由聚合物相变引起的破坏对破坏的整体范围的贡献最小。

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