A Thermo‐Fluid‐Solid Model Thermal Damage Prediction in Laser Ablation Therapy

ABSTRACT Background Precise temperature control is critical for safe, effective laser ablation in minimally invasive tumour treatment, but current models lack full understanding of multi‐physics coupling during the process. Methods Using poroelastic theory, we developed a fully coupled optical‐thermal‐fluid‐solid model for high‐fidelity temperature prediction to optimise surgical protocols. Ex vivo experiments in pork tissue with precise needle positioning and multi‐point temperature measurements validated the model. Results Simulations showed thermal expansion in elastic tissues induces fluid backflow to the heating zone (thermal focussing). A smaller beam waist enhances optical penetration, while higher porosity reduces peak temperature and promotes diffusion. Validation yielded a maximum prediction error 1.73°C. Conclusions This study provides a theoretical basis for precise temperature control and tissue damage prediction in laser therapy, with particular relevance to prostate tumour treatment.

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Publication Details

Journal
International Journal of Medical Robotics and Computer Assisted Surgery
Published
2026-09-08
DOI
https://doi.org/10.1002/rcs.70227
Primary Topic
Thermoelastic and Magnetoelastic Phenomena
Type
article
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article

A Thermo‐Fluid‐Solid Model Thermal Damage Prediction in Laser Ablation Therapy

Yuexuan Wang, Na Guo, Zhengzhao Li, Qinjian Zhang et al.
International Journal of Medical Robotics and Computer Assisted Surgery
Thermoelastic and Magnetoelastic Phenomena
article

A Thermo‐Fluid‐Solid Model Thermal Damage Prediction in Laser Ablation Therapy

Yuexuan Wang, Na Guo, Zhengzhao Li, Qinjian Zhang, Jiachen Pan, Shiling Song, Minghui Tan, Yang Liu
article en

Abstract

ABSTRACT Background Precise temperature control is critical for safe, effective laser ablation in minimally invasive tumour treatment, but current models lack full understanding of multi‐physics coupling during the process. Methods Using poroelastic theory, we developed a fully coupled optical‐thermal‐fluid‐solid model for high‐fidelity temperature prediction to optimise surgical protocols. Ex vivo experiments in pork tissue with precise needle positioning and multi‐point temperature measurements validated the model. Results Simulations showed thermal expansion in elastic tissues induces fluid backflow to the heating zone (thermal focussing). A smaller beam waist enhances optical penetration, while higher porosity reduces peak temperature and promotes diffusion. Validation yielded a maximum prediction error 1.73°C. Conclusions This study provides a theoretical basis for precise temperature control and tissue damage prediction in laser therapy, with particular relevance to prostate tumour treatment.

International Journal of Medical Robotics and Computer Assisted SurgeryVol. 22(5)
Beijing Information Science & Technology University (CN), University of Science and Technology Beijing (CN)
Openalex Percentile: Top 19%
Thermoelastic and Magnetoelastic Phenomena
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A Thermo‐Fluid‐Solid Model Thermal Damage Prediction in Laser Ablation Therapy — Yuexuan Wang, Na Guo, et al. · International Journal of Medical Robotics and Computer Assisted Surgery (2026) | TGRS Research Map | TGRS