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Hydrodynamic cavitation-assisted tissue ablation using a continuum robotic device with heat and mass transfer considerations

dc.contributor.authorKestek, Ezgi
dc.contributor.authorDemircali, Ali Anil
dc.contributor.authorAkar, Unal
dc.contributor.authorGhorbani, Morteza
dc.contributor.authorKutlu, Ozlem
dc.contributor.authorEkici, Asiye Ilin Dogan
dc.contributor.authorEkici, Sinan
dc.contributor.authorKosar, Ali
dc.contributor.authorUvet, Huseyin
dc.date.accessioned2026-06-27T15:26:09Z
dc.date.issued2026
dc.description.abstractPrecision and efficiency constitute the main challenges in minimally invasive surgeries. Current endoscopic robotic system limitations have been sought for innovative design and optimization strategies. Moreover, the use of flexible surgical robots in high-speed flows such as cavitation flows is a problem that needs to be solved. To address these issues, the design optimization of a tendon-driven endoscopic robot based on hydrodynamic cavitation is presented in this study. The flexible part of the robot was analyzed using the Finite Element Method (FEM), where fluid-structure interactions and material mechanical properties were considered which led to the fabrication of a prototype. Employing the shadow-graphy technique, sprays emerging from the endoscopic robot were imaged at various bending angles and fluid pressures to examine carefully flow cone angle change effects. Subsequently, the results from the experiments involving ex vivo human cervix and uterus myoma tissues were included. Thermal conditions and mass transfer rates were measured according to variations in applied pressure, bending angle enabling quantitative assessment of heat diffusion and material removal efficiency at the tissue interface. This study focuses on the continuum endoscopic robots operating at high flow rates and presents an optimal working area via a prototype. Tissue experiments demonstrated that superficial endometrial ablation increased proportionally with the bending angle of the robot in both cervix and myoma tissues, which are characterized by their dense and resilient structure. The results highlight the interconnected dynamics of cone angle, flow pressure, and tissue ablation during robot bending. In short, this study presents guidelines for future studies on the design optimization of continuum robots for high-flow rate applications.en
dc.description.sponsorshipTUBITAK (The Scientific and Technological Research Council of Turkey) Support Program for Scientific and Technological Research Project [118S040]
dc.description.urihttps://doi.org/10.1016/j.ijheatmasstransfer.2025.127534
dc.identifier.doi10.1016/j.ijheatmasstransfer.2025.127534
dc.identifier.eissn1879-2189
dc.identifier.issn0017-9310
dc.identifier.urihttps://hdl.handle.net/20.500.14981/70957
dc.identifier.volume254
dc.identifier.wos001590627300001
dc.language.isoeng
dc.publisherPERGAMON-ELSEVIER SCIENCE LTD
dc.relation.ispartofINTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER
dc.rightsopenAccess
dc.subjectTendon-driven continuum robot
dc.subjectEndoscopic surgery robot
dc.subjectHydrodynamic cavitation
dc.subjectTissue ablation
dc.subjectJet flow
dc.subjectTECHNOLOGIES
dc.subjectMANIPULATOR
dc.subjectSTIFFNESS
dc.subjectSPRAY
dc.subjectMODEL
dc.subjectFLOW
dc.subjectThermodynamics
dc.subjectEngineering
dc.subjectMechanics
dc.titleHydrodynamic cavitation-assisted tissue ablation using a continuum robotic device with heat and mass transfer considerations
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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