基于fliper的复杂地形系统的鲁棒操纵性。

IF 3 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Nnamdi Chinomso Chikere, Frank E Fish, Yasemin Ozkan-Aydin
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引用次数: 0

摘要

海龟幼崽在不同的水生和沿海地形上显示出机动能力。虽然转弯行为在水生环境中至关重要,但对于在陆地上移动的幼崽来说,转弯行为同样至关重要,因为它们必须在通往大海的途中快速穿越障碍物丰富的地形。本研究介绍了一种机器人原型,该原型模拟了幼年海龟的转弯策略,以优化不同陆地表面的转弯速度和能量消耗。该研究调查了仿生机器人在五种不同步态配置下的旋转位移能力:一种是所有鳍状肢都采用独特的模式,另一种是采用精简的鳍状肢组合,包括前鳍、斜鳍、后鳍和单鳍。我们研究了机器人在不同颗粒状和柔顺介质上的转弯能力,包括四种指定的岩石尺寸、一致的泡沫平台和干沙。 ;使用刚性和软鳍状肢设计进行了比较分析。键 ;运动特征,包括滚转、俯仰、偏航和升力高度,被量化为 ;结果显示,不同地形和步态风格的旋转行为存在显著差异,突出了脚蹼设计、步态策略和环境适应性之间的相互作用。这项研究促进了对生物机器人技术在复杂多变环境中的应用的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust Maneuverability in Flipper-Based Systems Across Complex Terrains.

Sea turtle hatchlings display maneuvering capabilities across diverse aquatic and coastal terrains. While turning behavior is crucial in aquatic environments, it is equally vital for terrestrial locomotion by hatchlings that must quickly navigate obstacle-rich terrain on their way to the sea. This study introduces a robotic prototype that emulates the turning strategies of juvenile sea turtles to optimize turning rate and energy consumption across diverse terrestrial surfaces. The research investigates the rotational displacement capabilities of a bioinspired robot across five distinct gait configurations: one involving all flippers in a unique pattern, and four employing reduced flipper combinations, including front, diagonal, back, and single flippers. We investigated the robot's turning capabilities on diverse granular and compliant media, including four specified rock sizes, a consistent foam platform, and dry sand. Comparative analyses were conducted using rigid and soft flipper designs. Key locomotion features, including roll, pitch, yaw, and lift height, were quantified for each configuration. The results reveal significant differences in rotational behavior across terrains and gait styles, highlighting the interplay between flipper design, gait strategy, and environmental adaptability. This research advances the understanding of bioinspired robotics for applications in complex and variable environments.

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来源期刊
Bioinspiration & Biomimetics
Bioinspiration & Biomimetics 工程技术-材料科学:生物材料
CiteScore
5.90
自引率
14.70%
发文量
132
审稿时长
3 months
期刊介绍: Bioinspiration & Biomimetics publishes research involving the study and distillation of principles and functions found in biological systems that have been developed through evolution, and application of this knowledge to produce novel and exciting basic technologies and new approaches to solving scientific problems. It provides a forum for interdisciplinary research which acts as a pipeline, facilitating the two-way flow of ideas and understanding between the extensive bodies of knowledge of the different disciplines. It has two principal aims: to draw on biology to enrich engineering and to draw from engineering to enrich biology. The journal aims to include input from across all intersecting areas of both fields. In biology, this would include work in all fields from physiology to ecology, with either zoological or botanical focus. In engineering, this would include both design and practical application of biomimetic or bioinspired devices and systems. Typical areas of interest include: Systems, designs and structure Communication and navigation Cooperative behaviour Self-organizing biological systems Self-healing and self-assembly Aerial locomotion and aerospace applications of biomimetics Biomorphic surface and subsurface systems Marine dynamics: swimming and underwater dynamics Applications of novel materials Biomechanics; including movement, locomotion, fluidics Cellular behaviour Sensors and senses Biomimetic or bioinformed approaches to geological exploration.
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