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Crash Testing of a CFRP Commercial Aircraft Sub-Cargo Fuselage Section

机译:CFRP商用飞机副机体部分的碰撞测试

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摘要

The paper addresses the testing at the ONERA (Office National d’Etudes et de Recherches Aérospatiales) crash tower of a subcargo demonstrator representative of new generation CFRP (carbon fiber reinforced polymer) commercial aircraft. The project was conducted within a technological platform coordinated by AIRBUS Germany, which aimed at designing, simulating and testing an innovative crashworthy sub-cargo structure. Technical activities were shared between AIRBUS Germany for the demonstrator design and manufacturing, DLR (German Aerospace Center) for the numerical analysis and ONERA for the crash test. The demonstrator was based on single aisle aircraft geometry and comprised 2 Integrated Cargo Units (ICU) equipped with Triggered Tube Segments (TTS) dedicated to energy absorption and CFRP stringer-stiffened skin. The crash concept was based on an integrated structural design which applied the “bend-frame-concept” where the cargo cross-beam acts as a bend frame and withstands the dynamic loads introduced by the TTS components. The testing configuration - loading system and instrumentation - was defined on the basis of numerical analysis performed by DLR at the fuselage section level. In that frame, a kinematic model with a 2-frames typical fuselage section and ICUs involving the “bend-frame” concept was numerically simulated, with the main objective to identify the loading conditions that apply at specific sections, notably those surrounding the ICU-frame coupling areas where the test fixtures were to be implemented. As the outcomes of these numerical works showed that bending/compression loading, at a specific ratio, shall be targeted in priority, the accordingly designed loading system thus consisted of articulated rigs maintaining both ends of the demonstrator. The testing was performed at the ONERA-Lille crash tower at a 6,7m/s impact velocity, with a 1050 kg trolley mass. The acquisition system cumulated a total of 48 channels, including force sensors (6), strain gauges (36), displacement laser sensors (5) and an accelerometer (1). Besides, 4 high-speed cameras were implemented to visualize the rupture phenomenon likely to develop during the crash test. Results confirmed the expected crash scenario, with the bending of the cargo cross-beams and the resulting progressive crushing of the TTS components.
机译:该论文介绍了代表新一代CFRP(碳纤维增强聚合物)民用飞机的副货演示机在ONERA(国家科学院的研究与发展局)的碰撞塔进行的测试。该项目是在德国空客公司协调的技术平台上进行的,该平台旨在设计,模拟和测试具有创新性的防撞副货结构。空中客车公司在德国进行了演示器的设计和制造,DLR(德国航空航天中心)进行了数值分析,而ONERA进行了碰撞测试,共同开展了技术活动。该演示器基于单一过道飞机的几何形状,包括2个集成货舱单元(ICU),配有触发管段(TTS),专门用于能量吸收和CFRP桁条加硬蒙皮。碰撞概念基于整体结构设计,该结构应用了“弯曲框架概念”,其中货物横梁充当弯曲框架并承受TTS组件引入的动态载荷。测试配置-装载系统和仪器-是根据DLR在机身部分进行的数值分析定义的。在该框架中,对具有2框架典型机身截面和涉及“弯曲框架”概念的ICU的运动模型进行了数值模拟,其主要目的是确定适用于特定截面的载荷条件,特别是ICU周围的载荷条件。要安装测试夹具的框架连接区域。由于这些数值研究的结果表明,应优先针对特定比例的弯曲/压缩载荷,因此相应设计的载荷系统应由铰接式钻机组成,以保持演示器的两端。该测试是在ONERA-Lille碰撞塔上以6.7m / s的撞击速度和1050 kg的手推车质量进行的。采集系统累计了48个通道,包括力传感器(6),应变仪(36),位移激光传感器(5)和加速度计(1)。此外,还安装了4台高速摄像机,以可视化在碰撞测试过程中可能发生的破裂现象。结果证实了预期的碰撞情况,货物横梁弯曲并导致TTS组件逐渐被压碎。

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