首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems >ANALYTICAL EVALUATION OF ADAPTIVE SEAT ENERGY ABSORBER FOR ROTORCRAFT SEMI-ACTIVE CRASH SAFETY SEAT DEVELOPMENT
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ANALYTICAL EVALUATION OF ADAPTIVE SEAT ENERGY ABSORBER FOR ROTORCRAFT SEMI-ACTIVE CRASH SAFETY SEAT DEVELOPMENT

机译:转子半主动碰撞安全座椅开发的自适应座椅能量吸收器的分析评估

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This research study focuses on the analytical evaluation of magneto-rheological (MR) dampers for enhanced occupant protection during vertical crash landings of a helicopter. The current state-of-the-art helicopter crew seat has passive safety mechanisms that are highly limited in their capability to optimally adapt to each type of crash scenario due to variations in both occupant weight and crash severity level. While passive crash energy absorbers work well for a single design condition (50th percentile male occupant and fixed crash severity level), they do not offer adequate protection across a broad spectrum of crash conditions by minimizing the load transmitted to the occupant. This study reports the development of a lumped-parameter human body model including lower leg in a seated posture for rotorcraft crash injury simulation. A physical model of lumped-parameter human body restrained on a crew seat was implemented in multi-body dynamics simulation software. For implementing control, a control algorithm was made to work with the multi-body dynamic model by running co-simulation. The injury criteria and tolerance levels for the biomechanical effects are discussed for each of the identified vulnerable body regions, such as the thoracic lumbar loads for different sized adults. The desired objective of this analytical model development is to develop a tool to study the performance of adaptive semi-active magnetorheological seat suspensions for rotorcraft occupant protection.
机译:这项研究专注于磁流变(MR)减震器的分析评估,以增强直升机垂直坠机着陆时的乘员保护。当前最先进的直升机机组座位具有被动安全机制,由于乘员重量和坠落严重程度的差异,其被动适应各种类型的坠落场景的能力受到极大限制。尽管被动式碰撞能量吸收器在单个设计条件下(男性乘员的50%和固定的碰撞严重性水平)可以很好地工作,但它们却无法通过最大程度地减少传递给乘员的负荷在各种碰撞条件下提供足够的保护。这项研究报告了集总参数人体模型的开发,该模型包括坐姿的小腿,用于模拟旋翼飞机坠落伤害。在多体动力学仿真软件中实现了约束在乘员座椅上的集总参数人体的物理模型。为了实现控制,通过运行协同仿真,使控制算法与多体动力学模型一起工作。针对每个已确定的易受伤害的身体区域(例如,不同大小的成年人的胸腰椎负荷),讨论了生物力学作用的损伤标准和耐受水平。该分析模型开发的期望目标是开发一种工具,以研究用于保护旋翼飞机乘员的自适应半主动磁流变座椅悬架的性能。

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