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Thulium fiber laser-induced vapor bubble dynamics using bare, tapered, ball, hollow steel, and muzzle brake fiber optic tips

机译:bare光纤激光诱导的蒸气气泡动力学,使用裸露的,锥形的,球形的,空心的钢和枪口式制动光纤尖端

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摘要

This study characterizes laser-induced vapor bubble dynamics for five different distal fiber optic tip configurations, to provide insight into stone retropulsion commonly experienced during laser ablation of kidney stones. A thulium fiber laser with 1908-nm wavelength delivered 34-mJ energy per pulse at 500-μs pulse duration through five different fibers such as 100-μm-core/170-μm-OD bare fiber tip, 150- to 300-μm-core tapered fiber tip, 100-μm-core/300-μm-OD ball tip fiber, 100-μm-core/340-μm-OD hollow steel tip fiber, and 100-μm-core/560-μm-OD muzzle brake fiber tip. A high-speed camera with 10-μm-spatial and 9.5-μs-temporal resolution was used to image the vapor bubble dynamics. A needle hydrophone measured pressure transients in the forward (0 deg) and side (90 deg) directions while placed at a 6.8 ± 0.4 mm distance from the distal fiber tip. Maximum bubble dimensions (width/length) averaged 0.7/1.5, 1.0/1.6, 0.5/1.1, 0.8/1.9, and 0.7/1.5 mm, for bare, tapered, ball, hollow steel, and muzzle brake fiber tips, respectively (n = 5). The hollow steel tip exhibited the most elongated vapor bubble shape, translating into increased forward pressure in this study and consistent with higher stone retropulsion in previous reports. Relative pressures (a.u.) in (forward/side) directions averaged 1.7/1.6, 2.0/2.0,1.4/1.2, 6.8/1.1, and 0.3/1.2, for each fiber tip (n = 5). For the hollow steel tip, forward pressure was 4x higher than for the bare fiber. For the muzzle brake fiber tip, forward pressure was 5x lower than the bare fiber. Bubble dimensions and pressure measurements demonstrated that the muzzle brake fiber tip reduced forward pressure by partially venting vapors through the portholes, which is consistent with the observation of lower Stone retropulsion in previous reports.
机译:这项研究表征了五种不同的远端光纤尖端配置的激光诱导的蒸气气泡动力学特性,以提供对肾结石进行激光消融时通常经历的结石逆行的洞察力。波长为1908nm的th光纤激光器在500μs的脉冲持续时间内通过五个不同的光纤(例如100μm芯/170μm-OD裸露的光纤尖端,150-300μm-芯锥形光纤尖端,100μm芯/300μm-OD球头光纤,100μm芯/340μm-OD空心钢尖端光纤和100μm芯/560μm-OD枪口式制动器纤维尖端。使用空间分辨率为10μm,时间分辨率为9.5μs的高速相机对蒸汽泡动力学进行成像。针状水听器在与远端纤维尖端相距6.8±0.4 mm的距离时,测量了向前(0度)和侧面(90度)方向的压力瞬变。裸露的,锥形的,球形的,空心的钢和枪口式制动纤维尖端的最大气泡尺寸(宽度/长度)分别平均为0.7 / 1.5、1.0 / 1.6、0.5 / 1.1、0.8 / 1.9和0.7 / 1.5 mm(n = 5)。中空钢尖展现出最细长的蒸气气泡形状,在这项研究中转化为增加的向前压力,并且与以前的报道中更高的石头后推力一致。对于每个光纤尖端(n = 5),(向前/侧面)方向的相对压力(a.u.)平均为1.7 / 1.6、2.0 / 2.0、1.4 / 1.2、6.8 / 1.1和0.3 / 1.2。对于空心钢头,向前压力比裸纤维高4倍。对于枪口式制动纤维尖端,向前压力比裸纤维低5倍。气泡尺寸和压力测量结果表明,枪口制动纤维尖端通过使蒸气部分通过排气孔降低了向前的压力,这与先前报道中观察到的较低的石头后退相一致。

著录项

  • 来源
    《Optical engineering》 |2018年第3期|036106.1-036106.9|共9页
  • 作者单位

    University of North Carolina at Charlotte, Department of Physics and Optical Science, Charlotte, North Carolina, United States;

    University of North Carolina at Charlotte, Department of Physics and Optical Science, Charlotte, North Carolina, United States;

    University of North Carolina at Charlotte, Department of Physics and Optical Science, Charlotte, North Carolina, United States;

    Carolinas Medical Center, McKay Department of Urology, Charlotte, North Carolina, United States;

    University of North Carolina at Charlotte, Department of Physics and Optical Science, Charlotte, North Carolina, United States,Carolinas Medical Center, McKay Department of Urology, Charlotte, North Carolina, United States,Johns Hopkins University, Department of Urology, Baltimore, Maryland, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fiber laser; lithotripsy; pressure transients; specialty fiber tips; thulium; vapor bubbles;

    机译:光纤激光器碎石术压力瞬变特种纤维小费;铥;蒸气泡;

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