RT journal article T1 A Time-Fractional Bioheat Model with Perfusion and Spatial Source for Laser Thermal Coagulation in Hepatic Tissue A1 Lizama, Carlos A1 Murillo Arcila, Marina A1 Trujillo, Macarena A2 Matemáticas K1 Fractional bioheat equation K1 Laplace transform K1 Caputo fractional derivative K1 Mittag-Leffler function K1 hepatic laser irradiation AB This work presents an analytical investigation of a time-fractional bioheat transfer model for laser thermal coagulation (LTC) in hepatic tissue. The model incorporates a Caputo fractional time derivative of order $\beta \in (0,1]$ to account for thermal memory effects and nonlocal temporal behavior in biological tissues. A spatially decaying laser heat source and blood perfusion are included to simulate realistic in vivo and ex vivo thermal scenarios. We formulate the problem in a one-dimensional semi-infinite domain and derive closed-form solutions using Laplace transforms, involving the Mittag-Leffler and scaled Wright functions. These solutions capture the anomalous diffusion phenomena typically neglected by the classical Pennes Bioheat Equation (PBE). Comparisons with experimental data reveal that the fractional-order model significantly improves accuracy in predicting early-time temperature dynamics. In particular, for $\beta = 0.9$, the model closely replicates the experimental temperature profile, while the classical PBE overestimates it. This study demonstrates the potential of fractional heat transport models for more precise thermal predictions in minimally invasive therapies such as LTC. PB Elsevier SN 1879-0178 YR 2026 FD 2026 LK http://hdl.handle.net/10498/38329 UL http://hdl.handle.net/10498/38329 LA eng DS Repositorio Institucional de la Universidad de Cádiz RD 21-sep-2026