Presentation Information
[C08-04]Numerical simulation of phase change DPL bioheat model with nanocryosurgery using RBF meshfree approach
*Rohit Verma1,2, Jiten Chandra Kalita1 (1. Department of Mathematics, Indian Institute of Technology Guwahati (India), 2. School of Computing, MIT Vishwaprayag University Solapur, Maharashtra (India))
Keywords:
Bioheat equation,Dual phase lag,Nanocryosurgery,Irregular domain,Radial basis functions
The current study is concerned with the numerical simulation of the phase change process in a two-dimensional Dual-Phase Lag (DPL) bioheat model applied to nanocryosurgery. A Gaussian radial basis function meshfree approach coupled with a Crank Nicolson type of time discretization is employed on an irregular soft tissue domain. The simulation considers the introduction of three types of nanoparticles—Gold, Alumina Oxide, and Iron Oxide into the cryosurgical process. Temperature profiles were computed for situations both with and without the incorporation of nanoparticles, and the freezing interface was analyzed under different conditions. The results demonstrate the significant influence of nanoparticles on enhancing the freezing process, leading to a more controlled and effective cryoablation. The inclusion of nanoparticles not only accelerates the freezing front but also provides a more uniform temperature distribution within the target tissue. This study highlights the advantages of using a meshfree RBF approach in handling complex geometries, alongside the potential of nanoparticle-enhanced cryosurgery to improve clinical outcomes. These findings contribute valuable insights into the optimization of cryosurgical techniques and the development of more effective cancer treatments.