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USING TACTILE HAPTICS IN PLANETARY SPACESUITS AS A SPATIAL DISORIENTATION TRAINING TOOL

机译:在触觉空间中使用触觉触觉作为空间定向训练工具

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Space is the ultimate frontier for mankind, and the Moon will serve as an important testbed before embarking on a long journey to Mars. The anatomical and physiological mechanisms of human body are evolved to interpret and measure the force of Earth gravity. The neurocognitive and neurophysiological functions exhibit challenging variations in one-sixth lunar gravity. Human vestibular systems that provide basic information regarding linear acceleration no longer function as on Earth. Also, human perceptual motor performances deteriorate under high stress environment of space. The sensory degradation directly affects balance, the speed and accuracy of spatial orientation, and the central management of concurrent tasks. Human operator capabilities such as positioning line of sight is limited significantly, and the response time gets longer. These altered capabilities are potentially dangerous during the early phase of planetary surface exploration, while the body is adjusting to a new environment. This paper investigates the potential use of immersive and wearable force-feedback haptics in support of astronaut training for planetary extravehicular activities (EVA). The proposed concept HIPS (Haptic infused planetary spacesuit) applies the principles of control engineering to integrate space life sciences and technology, in order to mitigate reduced gravity related vestibular issues. The end product promises use in virtual reality based training, as well as in real-time operations. The proposed flex sensors in Sensory Network Layer (SNL) are weaved into outer fiber layer of spacesuit. These sensors will detect changes in linear accelerations and torques acting on human body, and use the data for haptic rendering. The sensing circuit then activates a modified signal activation algorithm to vibrate and alert the user in order to prevent a potential fall or injury. Different techniques and materials for development and integration of a haptic substrate are discussed. This paper also focuses on understanding how the level of gravity affects the neutral body posture (NBP), range of motion of extremities, and the location of most sensitive receptors on human body. This will enable the development of baseline joint angle ranges for the activation algorithm without compromising functional/operational envelope of an astronaut. HIPS promises a redundant infrastructure which would equip the researchers, and space travelers for a successful planetary manned mission.
机译:太空是人类的终极前沿,而月球将在踏上前往火星的漫长旅程之前,成为重要的试验平台。进化了人体的解剖和生理机制来解释和测量地球重力。神经认知和神经生理功能在六分之一月球重力中表现出具有挑战性的变化。提供有关线性加速度的基本信息的人类前庭系统不再像地球上那样起作用。另外,在空间的高应力环境下​​,人的感知运动性能下降。感觉退化直接影响平衡,空间定向的速度和准确性以及并发任务的集中管理。诸如定位视线之类的操作员功能受到很大限制,并且响应时间变长。在机体适应新环境的过程中,这些变化的能力在行星表面探索的早期阶段可能具有潜在的危险。本文研究了浸入式和可穿戴式力反馈触觉在支持宇航员对行星外活动(EVA)进行培训方面的潜在用途。提出的概念HIPS(触觉注入式行星宇航服)采用控制工程原理来整合太空生命科学和技术,以减轻与重力相关的前庭问题的减轻。最终产品有望用于基于虚拟现实的培训以及实时操作中。传感器网络层(SNL)中提出的挠性传感器被编织到太空服的外层纤维层中。这些传感器将检测作用在人体上的线性加速度和扭矩的变化,并将这些数据用于触觉渲染。然后,感测电路激活修改后的信号激活算法,以振动并警告用户,以防止潜在的跌落或伤害。讨论了用于触觉基底的开发和集成的不同技术和材料。本文还着重于了解重力水平如何影响中立的身体姿势(NBP),四肢的运动范围以及人体上最敏感的受体的位置。这将能够为激活算法开发基线关节角度范围,而不会影响宇航员的功能/操作范围。 HIPS承诺提供冗余的基础设施,这将使研究人员和太空旅行者具备成功完成行星载人飞行任务的能力。

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