共查询到18条相似文献,搜索用时 93 毫秒
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根据生物蛇和蛇形机器人的结构及运动特点,提出了基于乐理的蛇形机器人控制方法,定义了乐理的符号、规则与蛇形机器人控制过程的对应关系,编写了蜿蜒运动步态谱.“勘查者—I”蛇形机器人上实现了蜿蜒运动的控制. 给出了今后的研究方向. 相似文献
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基于控制函数的蛇形机器人攀爬运动分析 总被引:1,自引:0,他引:1
为实现对正交关节蛇形机器人多种运动形式的简单、统一控制,从研究蛇形机器人控制函数出发,提出了一种简单的并可同时实现正交关节蛇形机器人蜿蜒运动、行波运动、侧向翻滚运动和螺旋攀爬运动等多种运动形式的控制函数.对蛇形机器人实现螺旋攀爬运动的控制参数进行了分析,并用粒子群优化算法(PSO)对控制参数进行了优化拟合,给出了控制参... 相似文献
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针对蛇形机器人在流场中各关节之间的轨迹跟踪问题,研究一种基于改进蛇形曲线的蛇形机器人在流场中避障的轨迹跟踪控制律.首先,考虑流体环境可能施加在蛇形机器人系统上的外部干扰,采用浸入边界-格子Boltzmann方法(IB-LBM)在流场中建立障碍通道和蛇形机器人的流固耦合模型.然后,对蛇形机器人加入势函数,使其可以避开障碍;并采用改进的蛇形曲线方程使机器人尾部各关节跟踪头部的运动轨迹.最后,通过Matlab仿真和实验,研究不同流场密度、机器人尾部摆动频率以及流场雷诺数等参数对蛇形机器人轨迹跟踪的影响.理论分析和数值仿真表明,所设计的轨迹跟踪控制律不仅可以使蛇形机器人在遇到障碍时各关节跟踪前一关节的运动轨迹,而且还能使横向距离、纵向距离及方向角趋于稳定,达到有效避障的目的.此外,蛇形机器人在离开障碍通道后,各关节可以恢复蛇形曲线的运动形式,为蛇形机器人提供源源不断的前进动力.仿真和实验结果验证了轨迹跟踪控制律的有效性. 相似文献
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《传感器与微系统》2020,(1):113-116
针对六足蛇形臂机器人的超关节极限和位形偏移量大、末端位姿的控制稳定性不好的问题,提出一种基于模糊滑模的六足蛇形臂机器人的末端位姿控制算法。在超冗余运动学逆解空间中建立蛇形臂机器人的运动学模型,采用修正的DH参数法进行六足蛇形臂机器人的末端位姿参数调节和融合处理,建立蛇形臂机器人的末端位姿力学控制模型,在末端跟随运动中采用外环滑模导纳控制方法进行末端位姿的自适应参数调节,采用滑模误差反馈调节方法确定六足蛇形臂机器人的末端位姿,实现六足蛇形臂机器人准确的姿态定位和参量解算,提高控制稳定性。仿真结果表明:采用该算法进行六足蛇形臂机器人的末端位姿控制的姿态校正性能较好,蛇形臂关节的空间位姿自适应调整能力较强,跟随运动准确,具有很好的位姿控制稳定性。 相似文献
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Yasunobu Hitaka Toshikazu Yoshitake Masahiro Yokomichi 《Artificial Life and Robotics》2012,17(2):180-185
In this paper, we propose an obstacle avoidance method for autonomous locomotion control of a snake robot. The snake robot consists of rigid links, active joints and passive wheels, and can move only by varying its shape. The pass planning for the obstacle avoidance is a complicated problem because the snake robot has many states, control inputs and the under-actuated property. In our proposed method, the snake motion is restricted to a periodic undulate curve (called a serpenoid curve) by an additional control constraint and the undulate curve is tuned by switching the control constraint in order that the snake robot avoids the obstacle. Therefore, the path planning is simplified and the snake robot will achieve the obstacle avoidance with an efficient path. In this paper, we denote the details of our method and investigate the effectiveness of our strategy by numerical simulations. 相似文献
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This paper presents a kinematic calculation and control method for an inextensible continuum planar snake robot. The snake robot is assumed to move without side slipping; this constraint makes it easy to construct its kinematic model based on which we can analyze the movement of the robot. The kinematic model is expressed as a semi-linear partial differential equation (PDE). We discuss the general solution of the PDE and a calculation method based on it. However, the constraint also raises the problem of singular posture. The problem of singularities has been addressed for a snake robot with a serial link structure; however, for a continuum snake robot, much less research has been carried out. In this paper, we propose a method for controlling the direction of movement while avoiding singularities. The validity of our method is tested through simulations and experiments. 相似文献
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Seyed Mehdi Rezaei Farshad Barazandeh Mohammad S. Haidarzadeh Seid M. Sadat 《Journal of Intelligent and Robotic Systems》2010,59(3-4):299-318
Most of the research conducted on snake robots has been on movement, control or dynamics. There is only some research dealing with the reduction of actuators’ sizes. Actuator size usually depends on the force/torque it can provide. Small actuators imply a more efficient, long lasting, lighter and more flexible robot. The required force/torque and energy consumption consequently is directly affected by the mechanism design. Mother nature has always presented optimum systems and has inspired engineers. In this paper, we have adopted the snake anatomy to design a snake robot. The results show a reduction in torque demand. This robot is an extension of our previous research on building a snake without including the anatomy. The new robot weighs about only one-third of the previous version. 相似文献
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In this paper, we consider trajectory tracking control of a head raising snake robot on a flat plane by using kinematic redundancy. We discuss the motion control requirements to accomplish trajectory tracking and other tasks, such as singular configuration avoidance and obstacle avoidance, for the snake robot. The features of the internal motion caused by kinematic redundancy are considered, and a kinematic model and a dynamic model of the snake robot are derived by introducing two types of shape controllable point. The first is the head shape controllable point, and the other is the base shape controllable point. We analyzed the features of the two kinds of shape controllable point and proposed a controller to accomplish the trajectory tracking of the robot’s head as its main task along with several sub-tasks by using redundancy. The proposed method to accomplish several sub-tasks is useful for both the kinematic model and the dynamic model. Experimental results using a head raising snake robot which can control the angular velocity of its joints show the effectiveness of the proposed controller. 相似文献
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Alessandro Crespi Andr Badertscher Andr Guignard Auke Jan Ijspeert 《Robotics and Autonomous Systems》2005,50(4):163-175
This article presents a project that aims at constructing a biologically inspired amphibious snake-like robot. The robot is designed to be capable of anguilliform swimming like sea-snakes and lampreys in water and lateral undulatory locomotion like a snake on ground. Both the structure and the controller of the robot are inspired by elongate vertebrates. In particular, the locomotion of the robot is controlled by a central pattern generator (a system of coupled oscillators) that produces travelling waves of oscillations as limit cycle behavior. We present the design considerations behind the robot and its controller. Experiments are carried out to identify the types of travelling waves that optimize speed during lateral undulatory locomotion on ground. In particular, the optimal frequency, amplitude and wavelength are thus identified when the robot is crawling on a particular surface. 相似文献
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Snake robots have shown a great potential for operations in confined workplaces that are less accessible or dangerous to human workers, such as the in-pipe inspection. However, the snake robot teleoperation remains a nontrivial task due to the unique locomotion mechanism (e.g., helical motion) and the constraints of the workplaces including the low visibility and indistinguishable features. Most snake robot feedback systems are based on the live camera view only. It is hard for the human operator to develop a correct spatial understanding of the remote workplace, leading to problems such as disorientation and motion sickness in snake robot teleoperation. This study designs and evaluates an innovative haptic assistant system for snake robot teleoperation in the in-pipe inspection. An upper-body haptic suit with 40 vibrators on both the front and back sides of the human operator was developed to generate haptic feedback corresponding to the bottom and up sides of the snake robot, transferring the egocentric sensation of the snake robot to the human operator. A human-subject experiment (n = 31) was performed to evaluate the efficacy of the developed system. The results indicate that the proposed haptic assistant system outperformed other feedback systems in terms of both task performance and subjective workload and motion sickness evaluations. It inspires new control and feedback designs for the future snake robot in industrial operations. 相似文献