22 research outputs found
Teleoperation of a manipulator with a master robot of different kinematics: using bilateral control by state converge
This paper presents the teleoperation method of manipulators which have different kinematics with respect of the master robots using bilateral control by state convergence. This method makes a relation between the kinematics of the master and slave robot using a virtual robot. This method allows controlling manipulators which are a part of different kinds of robot as: climber robots, underwater robots, human robots, etc
An Active helideck testbed for floating structures based on a Stewart-Gough platform
A parallel robot testbed based on Stewart-Gough platform called Active-helideck is designed, developed and tested as a helicopter floating helideck. The objective of this testbed is to show the advantages of helicopters that use an active helideck upon landing on and taking off from ships or from offshore structures. Active-helideck compensates simulated movements of a ship at sea. The main goal of this study is to maintain the robot’s end effector (helideck) in a quasi-static position in accordance to an absolute inertial frame. Compensation is carried out through the coordinate action of its six prismatic actuators in function of an inertial measurement unit. Moreover, the simulation of the sea movement is done by a parallel robot called ship platform with three degrees of freedom. The ship platform is built with a vertical oscillation along the z axis, i.e. heave, and rotates on remaining axes, i.e. roll and pitch. Active helideck is able to compensate simulated movements by considering the ship as an inertial frame as observed in the experiment
Stability Analysis of Teleoperation System by State Convergence with Variable Time Delay
We propose a novel control scheme for bilateral teleoperation of n degree-of-freedom (DOF) nonlinear robotic systems with time-varying communication delay. A major contribution from this work lies in the demonstration that the structure of a state convergence algorithm can be also applied to nth-order nonlinear teleoperation systems. By choosing a Lyapunov Krasovskii functional, we show that the local-remote teleoperation system is asymptotically stable.
The time delay of communication channel is assumed to be unknown and randomly time varying, but the upper bounds of the delay interval and the derivative of the delay are assumed to be known
Control of a Nonlinear Teleoperation System by State Convergence
In this work, we proposes a control strategy that allows the remote manipulator follow the local manipulator
through the state convergence even if it has a delay in the
communication channel.
The bilateral control of the teleoperator system considers the case were the human operator applies a constant force on the local manipulator and when the interaction of the remote manipulator with the environment is considered passive.
The stability analysis was performed using Lyapunov-
Krasovskii functional, it showed for the case with constant
delay, that using a proposed control algorithm by state
convergence resulted in asymptotically stable, local and remote the nonlinear teleoperation system
Control of a Teleoperation System by State Convergence with Variable Time Delay
In this paper, we propose a novel control scheme for bilateral teleoperation of n degree-of-freedom (DOF) nonlinear robotic systems with time-varying communication delay. We consider that the human operator contains a constant force on the local manipulator. The local and remote manipulators are coupled using state convergence control scheme. By choosing a Lyapunov-Krasovskii functional, we show that the local-remote teleoperation system is asymptotically stable. It is also shown that, in the case of reliable communication protocols, the proposed scheme guarantees that the remote manipulator tracks the delayed trajectory of the local manipulator. The time delay of communication channel is assumed to be unknown and randomly time varying, but the upper bounds of the delay interval and the derivative of the delay are assumed to be known
Diseño e implementación de robot prototipo para la inspección de tuberías en pozos petroleros (bombas de cavidad progresiva y bombas electro sumergibles)
En este trabajo se presenta el desarrollo de un robot basado en la estructura tensegrity con el fin de realizar tareas de inspección y mantenimiento en tuberías petroleras. Debido a la naturaleza de la aplicación, el robot debe ser capaz de desplazarse verticalmente por el exterior de una dicha tubería. Este tipo de estructura mecánica se caracteriza por su bajo peso y su alta capacidad de adaptación a los diferentes diámetros.
La aplicación requiere que el dispositivo desarrollado se desplace a alta velocidad por las tuberías utilizadas en la extracción del petróleo. Cabe destacar que en dichas instalaciones se cuenta con Bombas Electro Sumergibles (BES) y Bombas de Cavidad Progresiva (BCP), ambas muy sensibles a las condiciones adversas del entorno. Consecuentemente se prevé que el robot incorpore una red de sensores específicos para medir aquellas variables que puedan interferir en el funcionamiento normal de las bombas. En este artículo se describen detalladamente las hipótesis de diseño realizadas y la metodología utilizada para el desarrollo del primer prototipo. Finalmente se presentan los resultados obtenidos de dicho desarrollo a través de los cuales se ha podido validar la potencialidad de la aplicación
Multibody Dynamics Model of a Human Hand for Haptics Interaction
In this paper we propose a strategy for modelling a human hand for Haptics interaction. The strategy consists in a parallel computing architecture that calculates the dynamics of a hand; this is accomplished by computing the dynamics of each finger in a parallel manner. In this approach multiple threads (e.g. haptics thread, graphics thread, collision detection thread, etc.) run concurrently and therefore we developed a synchronization mechanism for data exchange. We describe in detail the elements of the developed software
Design and modeling of the multi-agent robotic system: SMART
This article presents the design, kinematic model and communication architecture for the multi-agent robotic system called SMART. The philosophy behind this kind of system requires the communication architecture to contemplate the concurrence of the whole system. The proposed architecture combines different communication technologies (TCP/IP and Bluetooth) under one protocol designed for the cooperation among agents and other elements of the system such as IP-Cameras, image processing library, path planner, user Interface, control block and data block. The high level control is modeled by Work-Flow Petri nets and implemented in C++ and C♯♯. Experimental results show the performance of the designed architecture
Estructura robótica Pre-Tensada para robot en tuberías petroleras
En este trabajo se presenta el desarrollo de un robot basado en la estructura Pre-Tensada con el fin de realizar tareas de inspección y mantenimiento en tuberías petroleras. Este tipo de estructura mecánica se caracteriza por su bajo peso y su alta capacidad de adaptación a los diferentes diámetros. La aplicación requiere que el dispositivo desarrollado se desplace verticalmente y a alta velocidad por las tuberías utilizadas en la extracción del petróleo. Cabe destacar que en dichas instalaciones se cuenta con Bombas Electro Sumergibles (BES) y Bombas de Cavidad Progresiva (BCP), ambas muy sensibles a las condiciones adversas del entorno; por lo tanto, la importancia de esta investigación radica en que el robot incorpora una red de sensores específicos para medir aquellas variables que puedan interferir en el funcionamiento normal de las bombas. Además, este robot permite automatizar la recuperación de objetos que pueden caer al pozo durante la instalación y mantenimiento del mismo, actualmente este proceso es manual. En este artículo se describen detalladamente las hipótesis de diseño realizadas y la metodología utilizada para el desarrollo del primer prototipo. Finalmente se presentan los resultados obtenidos de dicho desarrollo a través de los cuales se ha podido validar la potencialidad de la aplicación
Free vibration analysis of a robotic fish based on a continuous and non-uniform flexible backbone with distributed masses
This paper presents a differential quadrature element method for free transverse vibration of a robotic-fish based on a continuous and non-uniform flexible backbone with distributed masses (represented by ribs) based in the theory of a Timoshenko cantilever beam. The effects of the masses (Number, Magnitud and position) on the value of natural frequencies are investigated. Governing equations, compatibility and boundary conditions are formulated according to the Differential Quadrature rules. The compatibility conditions at the position of each distributed mass are assumed as the continuity in the vertical displacement, rotation and bending moment and discontinuity in the transverse force due to acceleration of the distributed mass. The convergence, efficiency and accuracy are compared to other analytical solutions proposed in the literature. Moreover, the proposed method has been validate against the physical prototype of a flexible fish backbone. The main advantages of this method, compared to the exact solutions available in the literature are twofold: first, smaller time-cost and second, it allows analysing the free vibration in beams whose section is an arbitrary function, which is normally difficult or even impossible with analytical other methods