Research on emergence mechanism of voluntary motion in locomotion and modeling of locomotion control
Research on emergence mechanism of voluntary motion in locomotion and modeling of locomotion control
批准号:
17500108
负责人:
TSUJITA Katsuyoshi
金额:
$1.86万
依托单位国家:
日本
项目类别:
Grant-in-Aid for Scientific Research (C)
财政年份:
2005
资助国家:
日本
项目状态:
已结题
起止时间:
2005 至 2007
中文摘要
本研究讨论了运动的控制,重点是动态步态过渡与环境的适应和自主运动的运动。过去几年的生物学研究为克服这些困难做出了很大贡献。在自发运动(如直线行走)中,许多关节和肌肉被组织成一个集体单元,该集体单元被控制,好像它具有较少的自由度(DOF),但仍然需要保持必要的灵活性以适应不断变化的环境。另一方面,在自主运动中,例如在转弯行走中,另一个有组织的集体单位根据命令信号选择性地出现。一个是摇摆阶段,另一个是支撑阶段。在摆动阶段,致动器的力被放松;关节变得不那么僵硬,更被动。在支撑阶段,由于受力的作用,节点的刚度增加 关于我们 由对立的一对致动器驱动。通过平衡调节这样一对致动器产生的力来控制和调节关节的刚度,机器人有望变得更适应环境和地面的变化。基于生物学研究的启发,提出了一种基于非线性振子的四足机器人步态过渡控制系统。本文提出了一种四足机器人的振荡器控制器,该控制器具有对抗性的气动执行器。它由一个自发运动控制器和一个自愿的音调控制器。自发运动控制器被设计为振荡器网络,振荡器之间具有来自外部传感器的反馈信号的相互作用。动力学相互作用使振子之间的相互作用成为可能,并产生四足动物运动的总周期动力学的稳定极限环。自主音调控制器,另一方面,根据运动速度和身体状态控制主体的姿态。通过监测主体的运动速度和侧倾运动和俯仰运动的幅度,控制躯干的刚度,特别是脊柱的关节刚度,以稳定和减小主体的侧倾运动和俯仰运动的幅度的发散,从而保持姿势。结果表明,腿的周期性运动通过主体运动的动力学相互作用根据系统的动态状态而变化,并根据运动速度和身体运动出现合适的步态模式,通过数值仿真和硬件实验验证了所提出的控制系统的性能良好.研究结果表明了该系统的有效性。少
英文摘要
This study discusses the control of locomotion, with an emphasis on dynamic gait transition with an adaptation to the environment and voluntary motions in locomotion.Biological research over the last few years has made great contributions to overcoming such difficulties. During spontaneous motion such as walking straight, many joints and muscles are organized into a collective unit that is controlled as though it had fewer degrees of freedom (DOFs), but that still needs to retain the necessary flexibility for changing environments. During voluntary motion, on the other hand, such as in turning walks, another organized collective unit emerges selectively according to the commanded signal.Leg motions in locomotion have two essential stages. One is the swinging stage and the other is the supporting stage. In the swinging stage, the actuator forces are relaxed; the joints become less stiff and more passive. In the supporting stage, stiffness of the joints increases due to forces generated … More by the antagonistic pair of actuators. By controlling and tuning the stiffness of the joints through the balanced adjustment of the generated force of such a pair of actuators, the robot is expected to become more adaptive to variations in the environment and in the surface of the ground. The idea of the architecture of tones control of the actuators is inspired by the biological studies.In this study, a new system is proposed for controlling the gait transition by choosing a quadruped robot for example with nonlinear oscillators. Development of an oscillator controller for quadruped robots with antagonistic pairs of pneumatic actuators is shown in this paper. It consists of a spontaneous locomotion controller and a voluntary tones controller. The spontaneous locomotion controller is designed as an oscillator network that has mutual interactions among oscillators with feedback signals from external sensors. The dynamic interactions make possible mutual entrainments between oscillators and create a steady limit cycle of the total periodic dynamics of quadruped locomotion.The voluntary tones controller, on the other hand, controls the posture of the main body according to locomotion speed and body state. Monitoring the locomotion speed and the amplitude of the rolling motion and pitching motion of the main body, the stiffness of the trunk, especially the joint stiffness of the spine are controlled to stabilize and reduce the divergence of the amplitude of rolling and pitching motion of the main body to keep the posture. To the results, the dynamic interactions of the periodic motions of the legs through the motion of the main body changes according to the dynamic state of the system, and appropriate gait pattern emerges according to the locomotion speed and body motion.The performance of the proposed control system was verified to be good through numerical simulations and hardware experiments. The result of this study shows the effectiveness of the proposed system. Less
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DOI:
--
发表时间:
2007
期刊:
International Journal of Adranced Robotic Systems
影响因子:
--
作者:
[K, Tsujita, T. Masuda]
通讯作者:
T. Masuda
Development of Oscillator-controlled Biped Robot with Pneumatic Actuators
气动执行器振荡器控制双足机器人的研制
DOI:
--
发表时间:
2007
期刊:
影响因子:
--
作者:
[T. Inoura, K. Tsujita, T. Masuda]
通讯作者:
T. Masuda
DOI:
--
发表时间:
2007
期刊:
影响因子:
--
作者:
[K. Tsujita, T. Masuda]
通讯作者:
T. Masuda
Oscillator-controlled bipedal robot with pneumatic actuators
带气动执行器的振荡器控制双足机器人
DOI:
--
发表时间:
2006
期刊:
影响因子:
--
作者:
[井之浦, 鈴木, 辻田, 増田]
通讯作者:
増田
空気圧人工筋を持つ脚歩行ロボットの関節剛性の変化による歩行機能安定化について
通过改变气动人工肌肉腿式行走机器人的关节刚度来稳定行走功能
DOI:
--
发表时间:
2008
期刊:
影响因子:
--
作者:
[井之浦隆志, 小林敏也, 辻田勝吉, 増田達也]
通讯作者:
増田達也
共 29 条
A study on functional co-creation by extracting invariants of coupled dynamical systems with dynamic changes
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批准号:16K06200
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项目类别:Grant-in-Aid for Scientific Research (C)
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资助金额:$3.0万
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财政年份:2016
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负责人:TSUJITA Katsuyoshi
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依托单位:
A Study of Coordination Mechanism of the Lower Limb and the Posture of the Trunk in Human Locomotion
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批准号:22500416
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项目类别:Grant-in-Aid for Scientific Research (C)
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资助金额:$2.33万
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财政年份:2010
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负责人:TSUJITA Katsuyoshi
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依托单位:
海外基金