Viscoelastic Model Based Bilateral Teleoperation for Robotic-assisted Tele-palpation

Abstract:

The purpose of this paper is to design a model-based bilateral teleoperation method to improve the feedback force and velocity/position tracking for robotic-assisted tasks (such as palpation, etc.) under constant and/or varying time delay with environment dynamic property. Time delay existing in bilateral teleoperation easily destabilizes the system. Proper control strategies are able to make the system stable, but at the cost of compromised performance. Model-based bilateral teleoperation is designed to achieve enhanced performance of this time-delayed system, but an accurate model is required. Design/methodology/approach Viscoelastic model has been used to describe the robot tool-soft tissue interaction behavior. Kevin-Boltzmann (K-B) model is selected to model the soft tissue behavior due to its good accuracy, transient and linearity properties among several viscoelastic models. In this work, the K-B model is designed at the master side to generate a virtual environment of remote robotic tool-soft tissue interaction. In order to obtain improved performance, a self perturbing recursive least square (SPRLS) algorithm is developed to on-line update the necessary parameters of the environment with varying dynamics. Findings With fast and optimal on-line estimation of primary parameters of the K-B model, the reflected force of the model-based bilateral teleoperation at the master side is improved as well as the position/velocity tracking performance. This model-based design in the bilateral teleoperation avoids the stability issue caused by time delay in the communication channel since the exchanged information become position/velocity and estimated parameters of the used model. Even facing with big and varying time delay, the system keeps stably and enhanced tracking performance. Besides, the fast convergence of the SPRLS algorithm helps to track the time-varying dynamic of the environment, which satisfies the surgical applications as the soft tissue properties usually are not static. Originality/value The originality of this work lies in that an enhanced perception of bilateral teleoperation structure under constant/varying time delay that benefits robotic assisted tele-palpation (time varying environment dynamic) tasks is developed. With SPRLS algorithm to on-line estimate the main parameters of environment, the feedback perception of system can be enhanced with stable velocity/position tracking. The superior velocity/position and force tracking performance of the developed method makes it possible for future robotic-assisted tasks with long-distance communication.

More Information:

Full Text

Displacement analysis of under-constrained flexible-shaft driven parallel manipulator

Abstract:

In this paper the displacement analysis of an under-constrained parallel robot supported by ๏ฌ‚exible shafts is addressed. The problem consists of identifying the equilibrium poses of a moving platform when the shaft lengths are changed. Similar to under-constrained cable-driven parallel robots, the moving platform preserves some freedoms once shaft lengths are ๏ฌxed. Thus, kinematics and statics must be taken into account simultaneously. However in contrast to cables, shafts may also impose torsional resistance on the moving platform which is considered in this study. To investigate the effect of this torsional resistance the pose of the moving platform with respect to the changes of length of shafts is investigated and compared to the pose of moving platform driven by cables

More Information:

Full Text

Pilot study and design conceptualization for a slim single-port surgical manipulator with spring backbones and catheter-size channels

Abstract:

Robotic assistance in Minimally Invasive Surgery
(MIS) have extended the capabilities of surgeons via improved
precision dexterity and computer assistance. By tapping on
the capabilities of MIS, this paper aims to design a new
tendon Fixation mechanism which utilizes springs to actuate
surgical tools for the removal of osseous giant cell tumor.
We presents our preliminary design conceptualization and
prototype development using spring backbone and tendon-
driven mechanism. By investigating different tendon routing
mechanisms, for the ๏ฌrst time this study shows that it is
potentially feasible to accomplish needle-size (outer diameter
of 1 mm) to catheter-size (outer diameter of 2-3 mm) single-
channel surgical instruments for minimally invasive surgery.
Through this mechanism, it is expected that our surgical robot
can provide completeness of tumor removal through a minimal
incision without compromising oncological principles

More Information:

Full Text