利用激光辐射远程点燃露天气井喷泉

IF 0.7 4区 化学 Q4 CHEMISTRY, PHYSICAL
S. V. Gvozdev, V. Yu. Dubrovsky, A. G. Krasyukov, R. E. Romanov, D. D. Metlyaev, A. Yu. Lysikov, V. K. Rerikh, G. V. Smirnov, M. D. Taran
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引用次数: 0

摘要

在实验室条件下模拟了带有不同大小沙粒的垂直甲烷喷泉。作者确定了稳定点燃空气-甲烷混合物所需的波长为 λ = 1.07 µm 的激光照射沙粒的强度和持续时间。演示了在实验室模型上点燃混合物的过程。在实验室条件下,混合气体的点火温度、辐射将颗粒加热到这一温度所需的时间以及不同大小的颗粒在气流中的最大速度估计为 ∼ 0.1 m3/s,而在实际应急气井中则为∼ 17 m3/s。在点燃空气-甲烷混合物的同时,为使最高速度的粒子保持在光束区域内,确定了距离气泉安全距离所需的光束运动角速度。确定了能够快速解决紧急气井喷泉远程点火问题的未来可能激光综合装置的主要特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Remote Ignition of an Open Gas Well Fountain Using Laser Radiation

Remote Ignition of an Open Gas Well Fountain Using Laser Radiation

A vertical methane fountain with sand particles of different sizes is simulated under laboratory conditions. The authors determine the intensity and duration of exposure to laser radiation with wavelength λ = 1.07 µm on sand particles needed for the stable ignition of an air–methane mixture. A cinematogram is presented of the ignition of a mixture on a laboratory model. The temperature of the gas mixture’s ignition, the time needed for radiation to heat particles to this temperature, and the maximum speeds of different particle sizes in the gas flow are estimated at ∼0.1 m3/s for laboratory conditions and ∼17 m3/s for a real emergency gas well. The angular velocity of the beam’s movement that is needed to keep particles with the highest speed in the zone of the beam while igniting the air–methane mixture is determined for a safe distance from the gas fountain. The main characteristics of a possible future laser complex capable of quickly solving the problem of remotely igniting a fountain of an emergency gas well are determined.

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来源期刊
CiteScore
1.20
自引率
14.30%
发文量
376
审稿时长
5.1 months
期刊介绍: Russian Journal of Physical Chemistry A. Focus on Chemistry (Zhurnal Fizicheskoi Khimii), founded in 1930, offers a comprehensive review of theoretical and experimental research from the Russian Academy of Sciences, leading research and academic centers from Russia and from all over the world. Articles are devoted to chemical thermodynamics and thermochemistry, biophysical chemistry, photochemistry and magnetochemistry, materials structure, quantum chemistry, physical chemistry of nanomaterials and solutions, surface phenomena and adsorption, and methods and techniques of physicochemical studies.
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