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Published in: BMC Urology 1/2020

Open Access 01-12-2020 | Laser | Research article

Thermal effect of holmium laser during ureteroscopic lithotripsy

Authors: Hui Liang, Lijian Liang, Yin Yu, Bin Huang, Jia’nan Chen, Chaoguo Wang, Zhangguo Zhu, Xiaozhong Liang

Published in: BMC Urology | Issue 1/2020

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Abstract

Background

Holmium laser lithotripsy is the most common technique for the management of ureteral stone. Studies founded that holmium laser firing can produce heat which will cause thermal injury towards ureter. The aim of our current study is to explore factors affecting thermal effect of holmium laser during ureteroscopic lithotripsy.

Methods

An in vitro experimental model is design to simulate the ureteroscopic lithotripsy procedure. Different laser power settings (10w (0.5JX20Hz, 1.0 JX10Hz), 20w (1.0 JX20Hz, 2.0 JX10Hz), 30w (1.5JX20Hz, 3.0 JX10Hz)) with various firing time (3 s, 5 s, 10s) and irrigation flow rates(10 ml/min, 15 ml/min, 20 ml/min and 30 ml/min) were employed in the experiment. The temperature around the laser tip was recorded by thermometer.

Results

The temperature in the “ureter” rises significantly with the increasing laser power, prolonging firing time and reducing irrigation flow. The highest regional temperature is 78.0 °C at the experimental set-up, and the lowest temperature is 23.5 °C. Higher frequency setting produces more heat at the same power. Laser power < =10w, irrigation flow> = 30 ml/min and “high-energy with low-frequency” can permit a safe working temperature.

Conclusion

We clarify that the thermal effect of holmium laser is related with both laser working parameters and irrigation flow. The proper setting is the key factor to ensure the safety during ureteroscopic holmium laser lithotripsy.
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Metadata
Title
Thermal effect of holmium laser during ureteroscopic lithotripsy
Authors
Hui Liang
Lijian Liang
Yin Yu
Bin Huang
Jia’nan Chen
Chaoguo Wang
Zhangguo Zhu
Xiaozhong Liang
Publication date
01-12-2020
Publisher
BioMed Central
Keyword
Laser
Published in
BMC Urology / Issue 1/2020
Electronic ISSN: 1471-2490
DOI
https://doi.org/10.1186/s12894-020-00639-w

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