Simulation Study on the Effect of High-Intensity Focused Ultrasound on Thermal Lesion of Biological Tissue under Different Treatment Modes

سال انتشار: 1401
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 104

فایل این مقاله در 8 صفحه با فرمت PDF قابل دریافت می باشد

استخراج به نرم افزارهای پژوهشی:

لینک ثابت به این مقاله:

شناسه ملی سند علمی:

JR_IJMP-19-4_001

تاریخ نمایه سازی: 25 مرداد 1401

چکیده مقاله:

Introduction: High-intensity Focused Ultrasound (HIFU) treatment is a non-invasive technology. The purpose of this study was to explore the effects of different treatment depths, tissue types and treatment interval on biological tissue thermal lesions under continuous and intermittent treatment modes.Material and Methods: A simulation model of biological tissue irradiated by HIFU was established by finite difference time domain (FDTD). The thermal lesion of biological tissue irradiated by HIFU was calculated using the spherical beam equation (SBE) and Pennes biological heat transfer equation (PBHTE). Parameters such as treatment depth, tissue type, and treatment interval were varied to explore their effects on the thermal lesion to biological tissues in both continuous and intermittent treatment modes.Results: For the same biological tissue or treatment depth, with the increase of HIFU irradiation time, the focal temperature under continuous treatment was higher than that under intermittent treatment, and the thermal lesion area under continuous treatment was greater than that under intermittent treatment. Whether continuous or intermittent treatment, with the increase of treatment depth, the temperature rise rate of deep tissue was slower than that of superficial tissue, and the thermal lesion area decreased gradually. Moreover, in the intermittent treatment mode with a long single treatment time and short treatment interval, the focal temperature rase quickly and the thermal lesion area was large.Conclusion: For the same tissue type, treatment depth, or any treatment interval, the focal temperature and thermal lesion area corresponding to continuous treatment were greater than those corresponding to intermittent treatment.

کلیدواژه ها:

High ، intensity Focused Ultrasound Treatment Interval Lesion Area Intermittent Treatment

نویسندگان

HU DONG

School of Information Science and Engineering, Changsha Normal University, Changsha ۴۱۰۱۰۰, China

GANG LIU

School of Information Science and Engineering, Changsha Normal University, Changsha ۴۱۰۱۰۰, China School of Physics and Electronics, Central South University

ZHENZHONG MA

School of Information Science and Engineering, Changsha Normal University

GAOFENG PENG

School of Information Science and Engineering, Changsha Normal University

PING PAN

School of Information Science and Engineering, Changsha Normal University

مراجع و منابع این مقاله:

لیست زیر مراجع و منابع استفاده شده در این مقاله را نمایش می دهد. این مراجع به صورت کاملا ماشینی و بر اساس هوش مصنوعی استخراج شده اند و لذا ممکن است دارای اشکالاتی باشند که به مرور زمان دقت استخراج این محتوا افزایش می یابد. مراجعی که مقالات مربوط به آنها در سیویلیکا نمایه شده و پیدا شده اند، به خود مقاله لینک شده اند :
  • Khokhlova TD, Hwang JH. HIFU for palliative treatment of pancreatic ...
  • Maloney E, Hwang J H. Emerging HIFU applications in cancer ...
  • Gui F, Zheng H, Li Y, Tan J, Du Y. ...
  • Dom SM, Razak HR, Zaiki FW, Saat NH, Abd Manan ...
  • Orsi F, Arnone P, Chen W, Zhang L. High intensity ...
  • Fura U, Kujawska T. Selection of Exposure Parameters for a ...
  • Chen C, Wang Y, Tang Y, Wang L, Jiang F, ...
  • Sazgarnia A, Shanei A, Taheri AR, Meibodi NT, Eshghi H, ...
  • Haar DGT, Coussios C. High intensity focused ultrasound: Physical principles ...
  • Zhang Z, Chen T, Zhang D. Lesions in Porcine livers ...
  • Fan T, Liu Z, Zhang D, Tang M. Comparative study ...
  • Wang Y, Wang Q, Luo Y, Jiang L, Zeng Z, ...
  • Xu Y, Fu Z, Yang L, Huang Z, Chen WZ, ...
  • Yi W, Wang Z B, Xu Y H. Efficacy, Efficiency, ...
  • Gholami M, Haghparast A, Dehlaghi V. Numerical study for optimizing ...
  • Kamakura T, Ishiwata T, Matsuda K. A new theoretical approach ...
  • Chen W, Wang P, Zhang Z, Deng X, Zhang C, ...
  • Guo C, Yao L, Zheng H, Wang Y, Gao S, ...
  • Sarkar R, Kumar Pandey P, Kundu S, Panigrahi PK. Exact ...
  • Gu J, Jing Y. Modeling of wave propagation for medical ...
  • Chen T, Qiu YY, Fan TB, Zhang D. Modeling of ...
  • Wu DL, Gao SP, Yao L, Chen J, Zhang ZK, ...
  • Kamakura, Tomoo. Two Model Equations for Describing Nonlinear Sound Beams. ...
  • Mohammadpour M, Firoozabadi B. High intensity focused ultrasound (HIFU) ablation ...
  • Gupta P, Srivastava A. Non-Fourier transient thermal analysis of biological ...
  • Adams M T, Giraud D S, Cleveland R O. Modeling ...
  • Sapareto SA, Dewey WC. Thermal dose determination in cancer therapy. ...
  • Qi M, Liu J, Mao Y. Temperature rise induced by ...
  • Heikkilae J, Curiel L, Hynynen K. Local Harmonic Motion Monitoring ...
  • Almekkaway M K, Shehata I A, Ebbini E S. Anatomical-based ...
  • Kyriakou Z, Corral-Baques M I, Amat A. HIFU-Induced Cavitation and ...
  • Ginter S. Numerical simulation of ultrasound-thermotherapy combining nonlinear wave propagation ...
  • Suomi V,Treeby B ,Jaros J. Transurethral ultrasound therapy of the ...
  • Wang M, Zhou Y. High-Intensity focused Ultrasound (HIFU) Ablation by ...
  • Marquet F, Pernot M, Aubry J F. Non-invasive transcranial ultrasound ...
  • Aubry J, Pernot M, Marquet F. Transcostal high-intensity-focused ultrasound: ex ...
  • Kyriakou A, Neufeld E, Werner B. A review of numerical ...
  • Casarotto R A, Adamowski J C, Fallopa F. Coupling agents ...
  • Balmaseda MT, Fatehi MT, Koozekanani SH. Ultrasound therapy: a comparative ...
  • Sites B D, Brull R, Chan V. Artifacts and pitfall ...
  • WD O’ Ultrasound-biophysics mechanisms. Prog Biophys Mol Biol. ۲۰۰۷; ۹۳(۱-۳):۲۱۲-۵۵. ...
  • Tharkar P, Varanasi R, Wu S. Nano-Enhanced Drug Delivery and ...
  • Yan S, Min L U, Ding X. HematoPorphyrin Monomethyl Ether ...
  • Ogbole GI. Radiation dose in paediatric computed tomography: risks and ...
  • نمایش کامل مراجع