Numerical study of high‐intensity focused ultrasound (HIFU) in fat reduction

Численное исследование высокоинтенсивного сфокусированного ультразвука (HIFU) для уменьшения жировой ткани
Manijhe Mokhtari‐Dizaji, Sare Mortazavi
2023-01-01

Pennes bioheat equationWestervelt equationacoustic pressure and temperature distributionfat reductionhigh-intensity focused ultrasound
INTRODUCTION: This study aimed to investigate the effect of fat-layer thickness and focal depth on the pressure and temperature distribution of tissue. METHODS: Computer simulations were performed for the skin-fat layer models during high-intensity focused ultrasound (HIFU) treatment. The acoustic pressure field was calculated using the nonlinear Westervelt equation and coupled with the Pennes bioheat transfer equation to obtain the temperature distribution. To investigate the effect of the thickness of the fat layer on pressure and thermal distributions, the thickness of the fat layer behind the focal point (z = 13.5 mm) changed from 8 to 24 mm by 2 mm step. The pressure and temperature distribution spectra were extracted. RESULTS: The simulated results were validated using the experimental results with a 98% correlation coefficient (p < 0.05). There was a significant difference between the pressure amplitude and temperature distribution for the 8-14 mm thickness of the fat layer (p < 0.05). By changing the focal point from 11.5 to 13.5 mm, the maximum acoustic pressure at the focal point increased 66%, and the maximum temperature was 56%, respectively. CONCLUSION: Considering the specific treatment plan for each patient, according to the skin and fat layer thicknesses, can help prevent side effects and optimize the treatment process of HIFU.
1
A coupled nonlinear Westervelt–Pennes simulation modeled acoustic pressure and temperature distributions during HIFU treatment of skin–fat layers.
2
Fat-layer thicknesses of 8–14 mm produced significant differences in pressure amplitude and temperature distributions (p < 0.05).
3
Patient-specific treatment planning based on skin and fat-layer thickness may reduce side effects and optimize HIFU fat-reduction treatment.
4
Shifting the focal point from 11.5 to 13.5 mm increased maximum focal acoustic pressure by 66% and maximum temperature by 56%.
5
Simulation results were validated against experimental measurements with a 98% correlation coefficient (p < 0.05).

skin–fat tissue layer models subjected to high-intensity focused ultrasound (HIFU) treatment

The effects of fat-layer thickness and focal depth on acoustic pressure and temperature distributions during HIFU treatment

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2023-01-01
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Manijhe Mokhtari‐Dizaji
Sare Mortazavi
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