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Cabin Layout Optimization for Vibration Hazard Reduction in Helicopter Emergency Medical Service

机译:驾驶室布局优化振动危害直升机应急医疗服务

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摘要

Helicopter Emergency and Medical Service (HEMS) vehicles require a specially configured cabin that supports the quick transport of a rescue team to the site of an emergency and return of patients back to a full capacity hospital, while sustaining the patients’ health using specifically designed, but otherwise state-of-the-art life-support equipment. The effectiveness and safety of the service may be challenged by the vibratory level, which could be improved by optimally positioning the affected subjects within the cabin. However, the bare dynamical response of the airframe can lead to erroneous evaluation of vibration performance, since pilots, crew, patients, and medical equipment dynamically interact with the helicopter through their interfaces with the structure. Therefore, layout optimization of a HEMS vehicle for low vibration requires the capability to efficiently analyze a large set of candidate coupled helicopter-interface-subject configurations, reaching a suitable trade-off between model detail and computational cost. This work presents an effective vibration rating of medical helicopters to support vibration hazard reduction by minimization of cabin interior accelerations. The tool is able to model high-fidelity rotorcraft aeroservoelasticity, easily connect formulations representing the dynamics of humans, equipment, and their interfaces, and calculate the vibration performance of the resulting coupled models. The approach is applied to a medium-weight helicopter to find its lowest vibration HEMS configuration. It is demonstrated that the optimal positioning of HEMS subjects can significantly reduce vibration hazard and improve operation safety, nearly as effectively as the application of vibration attenuation solutions with a fixed cabin layout.
机译:直升机紧急和医疗服务(HEMS)车辆需要一个专门配置的小屋,支持救援队的快速运输到患者的紧急情况和返回全容量医院,同时使用专门设计的患者的健康,但否则最先进的寿命支持设备。服务的有效性和安全性可能受到振动水平的挑战,可以通过最佳地定位机舱内的受影响的受试者来改善。然而,机身的裸机动态响应可以导致振动性能的错误评估,因为飞行员,机组人员,患者和医疗设备通过与界面与直升机动态相互作用。因此,用于低振动的下摆车辆的布局优化需要有效地分析大量候选耦合直升机接口主题的配置,达到了模型细节和计算成本之间的合适权衡。这项工作提出了医用直升机的有效振动等级,以通过最小化驾驶室内部加速来支持减少振动危险。该工具能够建模高保真旋翼飞机气动弹性,容易连接代表人类,设备及其接口动态的配方,并计算所得耦合型号的振动性能。该方法适用于中等重量直升机,以找到其最低振动下摆配置。证明HEMS受试者的最佳定位可以显着降低振动危险,并改善操作安全性,几乎可以有效地应用于具有固定舱布局的振动衰减解决方案。

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