A Cable-Driven Flexible Robotic Grasper With Lego-Like Modular and Reconfigurable Joints

Abstract:

This paper proposes a Modular and Reconfigurable Cable-driven robotic grasper (MoReCa Grasper) for grasping diverse unknown objects in unstructured environments, which integrates the characteristics of full actuation and under-actuation. The mechanical design of this robotic grasper is introduced with a focus on its Lego-like modular design feature and reconfigurable flexible joints. With these features, the length of this robotic grasper can be arbitrarily changed through the addition or removal of the Lego-like finger modules connected by magnets without rerouting or breaking the cables. The shape and degree of freedom (DOF) of the robotic grasper can be adjusted by changing the states of the joints using embedded clutches. When the joints are locked, the grasper can maintain its shape without additional power from actuators leading to better energy efficiency. The kinematics, workspace, and contact force are analyzed. On this basis, an automatically reshaping method (ARM) based on the motor’s current during the operation is proposed. Lastly, an example prototype of the robotic grasper with two fingers (four modules each), is built and tested. In the first experiment, the maximum grasping force is obtained. The second experiment demonstrates the ability of grasping diverse objects via changing the number of the modules and presetting the shape of the robotic grasper. The effectiveness of the ARM is verified in the third experiment.

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Open-Source Development of a Low-Cost Stereo-Endoscopy System for Natural Orifice Transluminal Endoscopic Surgery

Abstract
As a minimally invasive procedure, Natural Orifice Transluminal Endoscopic Surgery (NOTES) offers many significant benefits over traditional open surgery, including reduced risks of post-operative complication and a faster recovery rate. However, one major challenge commonly faced when performing such procedures is the lack of depth perception provided by standard monocular endoscopes, which can in turn pose a limitation on the effectiveness of such endoscopic surgery. To overcome this undesirable lack of depth perception during endoscopic imaging, stereoscopic vision can be introduced into current endoscopy technology to assist surgeons in performing safer and faster operations with better depth judgement. While there is already a vast range of highly advanced stereo-endoscopy systems commercially available in the market, practical implementation of these systems still remains to be largely minimal as a result of their high costs. This paper presents our approach for integrating affordability with functionality, through the development of a simple, low-cost stereo-endoscopy system. Constructed using commonly off-the-shelf materials, the system runs in real time to present stereoscopic images acquired from the stereo-endoscope cameras into the surgeonโ€™s eyes simultaneously, thereby equipping the surgeon with binocular vision for depth perception during endoscopic surgery.
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