An FDTD-based computer simulation platform for shock wave propagation in electrohydraulic lithotripsy

dc.contributor.author Yilmaz, Bulent
dc.contributor.author Ciftci, Emre
dc.contributor.authorID 0000-0003-2954-1217 en_US
dc.contributor.department AGÜ, Mühendislik Fakültesi, Elektrik - Elektronik Mühendisliği Bölümü en_US
dc.contributor.institutionauthor Yilmaz, Bulent
dc.date.accessioned 2023-07-21T06:56:26Z
dc.date.available 2023-07-21T06:56:26Z
dc.date.issued 2013 en_US
dc.description.abstract Extracorporeal Shock Wave Lithotripsy (ESWL) is based on disintegration of the kidney stone by delivering high-energy shock waves that are created outside the body and transmitted through the skin and body tissues. Nowadays high-energy shock waves are also used in orthopedic operations and investigated to be used in the treatment of myocardial infarction and cancer. Because of these new application areas novel lithotriptor designs are needed for different kinds of treatment strategies. In this study our aim was to develop a versatile computer simulation environment which would give the device designers working on various medical applications that use shock wave principle a substantial amount of flexibility while testing the effects of new parameters such as reflector size, material properties of the medium, water temperature, and different clinical scenarios. For this purpose, we created a finite-difference time-domain (FDTD)-based computational model in which most of the physical system parameters were defined as an input and/or as a variable in the simulations. We constructed a realistic computational model of a commercial electrohydraulic lithotriptor and optimized our simulation program using the results that were obtained by the manufacturer in an experimental setup. We, then, compared the simulation results with the results from an experimental setup in which oxygen level in water was varied. Finally, we studied the effects of changing the input parameters like ellipsoid size and material,temperature change in the wave propagation media, and shock wave source point misalignment. The simulation results were consistent with the experimental results and expected effects of variation in physical parameters of the system. The results of this study encourage further investigation and provide adequate evidence that the numerical modeling of a shock wave therapy system is feasible and can provide a practical means to test novel ideas in new device design procedures. en_US
dc.identifier.endpage 398 en_US
dc.identifier.issn 0169-2607
dc.identifier.issue 3 en_US
dc.identifier.other WOS:000319178500017
dc.identifier.startpage 389 en_US
dc.identifier.uri https://doi.org/10.1016/j.cmpb.2012.11.011
dc.identifier.uri https://hdl.handle.net/20.500.12573/1652
dc.identifier.volume 110 en_US
dc.language.iso eng en_US
dc.publisher ELSEVIER en_US
dc.relation.isversionof 10.1016/j.cmpb.2012.11.011 en_US
dc.relation.journal COMPUTER METHODS AND PROGRAMS IN BIOMEDICINE en_US
dc.relation.publicationcategory Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı en_US
dc.rights info:eu-repo/semantics/closedAccess en_US
dc.subject Finite-difference time-domain method en_US
dc.subject Lithotripsy en_US
dc.subject Shock wave en_US
dc.subject Computer simulation en_US
dc.title An FDTD-based computer simulation platform for shock wave propagation in electrohydraulic lithotripsy en_US
dc.type article en_US

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