Artificial Muscles based on Dielectric Elastomers (DE) can potentially enable the realization of bio-inspired actuation systems whose intrinsic compliance and damping can be varied according to the task requirements. Nonetheless, the control of DE-based Variable Impedance Actuators (VIA) is not trivial owing to the non-linear viscoelastic response which characterizes the acrylic dielectrics commonly employed in practical devices. In this context, the purpose of the present paper is to outline a novel strategy for the control of DE-based VIA. Although the proposed methodology is applicable to generic DE morphologies, the considered system is composed of a couple of conicallyshaped DE films in agonistic-antagonistic configuration. Following previously published results, the system dynamic model is firstly recalled. Then, a DE viscoelasticity compensation technique is outlined together with a control law able to shape the DE actuator impedance as desired. The operative limits of the system are explicitly considered and managed in the controller by increasing the operating DE actuator stiffness if required. In addition, the problem of model uncertainties compensation is also addressed. Finally, as a preliminary step towards the realization of a practical DE-based VIA, the proposed control approach is validated by means of simulations.

ON THE CONTROL OF A DIELECTRIC ELASTOMER ARTIFICIAL MUSCLE WITH VARIABLE IMPEDANCE / G., Palli; Berselli, Giovanni. - ELETTRONICO. - (2013), pp. 1-10. (Intervento presentato al convegno ASME SMASIS 2013 Conference on Smart Materials, Adaptive Structures and Intelligent Systems tenutosi a Snowbird, Utah, USA nel September 16-18) [10.1115/SMASIS2013-3267].

ON THE CONTROL OF A DIELECTRIC ELASTOMER ARTIFICIAL MUSCLE WITH VARIABLE IMPEDANCE

BERSELLI, Giovanni
2013

Abstract

Artificial Muscles based on Dielectric Elastomers (DE) can potentially enable the realization of bio-inspired actuation systems whose intrinsic compliance and damping can be varied according to the task requirements. Nonetheless, the control of DE-based Variable Impedance Actuators (VIA) is not trivial owing to the non-linear viscoelastic response which characterizes the acrylic dielectrics commonly employed in practical devices. In this context, the purpose of the present paper is to outline a novel strategy for the control of DE-based VIA. Although the proposed methodology is applicable to generic DE morphologies, the considered system is composed of a couple of conicallyshaped DE films in agonistic-antagonistic configuration. Following previously published results, the system dynamic model is firstly recalled. Then, a DE viscoelasticity compensation technique is outlined together with a control law able to shape the DE actuator impedance as desired. The operative limits of the system are explicitly considered and managed in the controller by increasing the operating DE actuator stiffness if required. In addition, the problem of model uncertainties compensation is also addressed. Finally, as a preliminary step towards the realization of a practical DE-based VIA, the proposed control approach is validated by means of simulations.
2013
2013
ASME SMASIS 2013 Conference on Smart Materials, Adaptive Structures and Intelligent Systems
Snowbird, Utah, USA
September 16-18
1
10
G., Palli; Berselli, Giovanni
ON THE CONTROL OF A DIELECTRIC ELASTOMER ARTIFICIAL MUSCLE WITH VARIABLE IMPEDANCE / G., Palli; Berselli, Giovanni. - ELETTRONICO. - (2013), pp. 1-10. (Intervento presentato al convegno ASME SMASIS 2013 Conference on Smart Materials, Adaptive Structures and Intelligent Systems tenutosi a Snowbird, Utah, USA nel September 16-18) [10.1115/SMASIS2013-3267].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11380/983355
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