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Design and test of a blast shield for boeing 737 overhead compartment

机译:用于波音737高架舱的防爆板的设计和测试

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This work demonstrates the feasibility of using a composite blast shield for hardening an overhead bin compartment of a commercial aircraft. If a small amount of explosive escapes detection and is brought onboard and stowed in an overhead bin compartment of a passenger aircraft, the current bins provide no protection against a blast inside the compartment. A blast from the overhead bin will certainly damage the fuselage and likely lead to catastrophic inflight structural failure. The feasibility of using an inner blast shield to harden the overhead bin compartment of a Boeing 737 aircraft to protect the fuselage skin in such a threat scenario has been demonstrated using field tests. The blast shield was constructed with composite material based on the unibody concept. The design was carried out using LS-DYNA finite element model simulations. Material panels were first designed to pass the FAA shock holing and fire tests. The finite element model included the full coupling of the overhead bin with the fuselage structure accounting for all the different structural connections. A large number of iterative simulations were carried out to optimize the fiber stacking sequence and shield thickness to minimize weight and achieve the design criterion. Three designs, the basic, thick, and thin shields, were field-tested using a frontal fuselage section of the Boeing 737-100 aircraft. The basic and thick shields protected the integrity of the fuselage skin with no skin crack. This work provides very encouraging results and useful data for optimization implementation of the blast shield design for hardening overhead compartments against the threat of small explosives.
机译:这项工作证明了使用复合防爆板加固商用飞机高架行李箱的可行性。如果少量爆炸物逃脱检测并被带到机上并存放在客机的头顶行李箱舱中,则当前的行李箱无法防止舱室内爆炸。高架行李箱上的爆炸肯定会损坏机身,并可能导致灾难性的机上结构故障。通过现场测试证明了在这种威胁情况下使用内部防爆板加固波音737飞机高架行李箱以保护机身蒙皮的可行性。防爆罩由基于一体式概念的复合材料制成。使用LS-DYNA有限元模型仿真进行了设计。材料面板的最初设计旨在通过FAA的冲击钻孔和防火测试。有限元模型包括高架箱与机身结构的完全耦合,从而解决了所有不同的结构连接问题。进行了大量的迭代仿真,以优化光纤堆叠顺序和屏蔽层厚度,以最小化重量并达到设计标准。使用波音737-100飞机的机身正面部分对三种设计(基本,厚和薄盾)进行了现场测试。基本的和较厚的防护罩可保护机身皮肤的完整性,而不会出现皮肤裂纹。这项工作提供了非常令人鼓舞的结果和有用的数据,可用于爆炸防护罩设计的优化实施,以使高架隔间硬化以抵抗小炸药的威胁。

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