A foldable manipulator with tunable stiffness based on braided structure.
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[1] Shuxin Wang,et al. A HYBRID TUBULAR BRAID WITH IMPROVED LONGITUDINAL STIFFNESS FOR MEDICAL CATHETER , 2019, Journal of Mechanics in Medicine and Biology.
[2] Yuan Xing,et al. Design and evaluation of a variable stiffness manual operating platform for laparoendoscopic single site surgery (LESS) , 2017, The international journal of medical robotics + computer assisted surgery : MRCAS.
[3] Benny Malengier,et al. Finite element simulations to evaluate deformation of polyester tubular braided structures , 2017 .
[4] Shuxin Wang,et al. Current and emerging robotic assisted intervention for Notes , 2016, Expert review of medical devices.
[5] Yun Luo,et al. Development of a Variable Stiffness Over Tube Based on Low-Melting-Point-Alloy for Endoscopic Surgery , 2016 .
[6] Gorislav Erceg,et al. Geometrical deployment for braided stent , 2016, Medical Image Anal..
[7] Xiao-Yu Ni,et al. Numerical investigations of the mechanical properties of a braided non-vascular stent design using finite element method , 2015, Computer methods in biomechanics and biomedical engineering.
[8] Yo-An Lim,et al. Surgical Robot for Single-Incision Laparoscopic Surgery , 2014, IEEE Transactions on Biomedical Engineering.
[9] Karl Iagnemma,et al. A Stiffness-Adjustable Hyperredundant Manipulator Using a Variable Neutral-Line Mechanism for Minimally Invasive Surgery , 2014, IEEE Transactions on Robotics.
[10] Ken Masamune,et al. Variable stiffness outer sheath with “Dragon skin” structure and negative pneumatic shape-locking mechanism , 2014, International Journal of Computer Assisted Radiology and Surgery.
[11] Karl Iagnemma,et al. A Novel Layer Jamming Mechanism With Tunable Stiffness Capability for Minimally Invasive Surgery , 2013, IEEE Transactions on Robotics.
[12] C. Tsui,et al. Minimally invasive surgery: national trends in adoption and future directions for hospital strategy , 2013, Surgical Endoscopy.
[13] S. Duke Herrell,et al. Design and Performance Evaluation of a Minimally Invasive Telerobotic Platform for Transurethral Surveillance and Intervention , 2013, IEEE Transactions on Biomedical Engineering.
[14] Iruru Maetani,et al. What is the preferred shape for an esophageal stent flange? , 2012, Digestive endoscopy : official journal of the Japan Gastroenterological Endoscopy Society.
[15] A. Petrou,et al. Surgery via natural orifices in human beings: yesterday, today, tomorrow. , 2012, American journal of surgery.
[16] D. Líška,et al. Laparoscopic Surgery for Benign and Malignant Colorectal Diseases , 2012, Surgical laparoscopy, endoscopy & percutaneous techniques.
[17] Hua Dong,et al. Adjustable stiffness tubes via thermal modulation of a low melting point polymer , 2012 .
[18] Tuba Alpyildiz,et al. 3D geometrical modelling of tubular braids , 2012 .
[19] Jenny Dankelman,et al. Endoscope Shaft-Rigidity Control Mechanism: “FORGUIDE” , 2012, IEEE Transactions on Biomedical Engineering.
[20] F Albermani,et al. Flexural and torsional rigidity of colonoscopes at room and body temperatures , 2011 .
[21] Jenny Dankelman,et al. Polymer Rigidity Control for Endoscopic Shaft-Guide ‘Plastolock’ — A Feasibility Study , 2010 .
[22] C. Thompson,et al. Natural orifice translumenal surgery: Flexible platform review. , 2010, World journal of gastrointestinal surgery.
[23] Hao Chen,et al. Design and analysis of a soft mobile robot composed of multiple thermally activated joints driven by a single actuator , 2010, 2010 IEEE International Conference on Robotics and Automation.
[24] C. Thompson,et al. Evaluation of a manually driven, multitasking platform for complex endoluminal and natural orifice transluminal endoscopic surgery applications (with video). , 2009, Gastrointestinal endoscopy.
[25] Pascal Verdonck,et al. Virtual optimization of self-expandable braided wire stents. , 2009, Medical engineering & physics.
[26] S. Adanur,et al. Analysis of Polymeric Braided Tubular Structures Intended for Medical Applications , 2009 .
[27] R. Tacchino,et al. Single-incision laparoscopic cholecystectomy: surgery without a visible scar , 2009, Surgical Endoscopy.
[28] Tae Jin Kang,et al. Mechanical modeling of self-expandable stent fabricated using braiding technology. , 2008, Journal of biomechanics.
[29] C. Zornig,et al. Scarless cholecystectomy with combined transvaginal and transumbilical approach in a series of 20 patients , 2008, Surgical Endoscopy.
[30] Jinlian Hu. 3-D fibrous assemblies , 2008 .
[31] Ken Masamune,et al. Rigid-Flexible Outer Sheath Model Using Slider Linkage Locking Mechanism and Air Pressure for Endoscopic Surgery , 2006, MICCAI.
[32] J. Ponsky,et al. Endoluminal surgery: past, present and future , 2006, Surgical Endoscopy And Other Interventional Techniques.
[33] D. Rattner,et al. ASGE/SAGES Working Group on Natural Orifice Translumenal Endoscopic Surgery , 2006, Surgical Endoscopy And Other Interventional Techniques.
[34] D. Rattner,et al. Endoluminal and transluminal surgery: no longer if, but when , 2005, Surgical Endoscopy And Other Interventional Techniques.
[35] Krishnaswa Ravi-Chandar,et al. Mechanical Response of a Metallic Aortic Stent--Part I: Pressure-Diameter Relationship , 2004 .
[36] T. Duerig,et al. A comparison of balloon- and self-expanding stents , 2002, Minimally invasive therapy & allied technologies : MITAT : official journal of the Society for Minimally Invasive Therapy.
[37] Sergio Pellegrino. Elastic Folding of Shell Structures , 2001 .
[38] M. Rhodes,et al. Long‐term pain: Less common after laparoscopic than open cholecystectomy , 1994, The British journal of surgery.
[39] C. Clerc,et al. A study of the geometrical and mechanical properties of a self-expanding metallic stent--theory and experiment. , 1993, Journal of applied biomaterials : an official journal of the Society for Biomaterials.