激光点火——火花塞在往复式发动机上的发展与应用

IF 7.4 1区 物理与天体物理 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC Progress in Quantum Electronics Pub Date : 2018-03-01 DOI:10.1016/j.pquantelec.2018.04.001
Nicolaie Pavel , Mark Bärwinkel , Peter Heinz , Dieter Brüggemann , Geoff Dearden , Gabriela Croitoru , Oana Valeria Grigore
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引用次数: 42

摘要

燃烧是人类生活各个领域中最主要的能量转换过程之一,但全球对废气污染和温室气体排放的关注刺激了该过程的进一步发展。稀薄燃烧和废气再循环是提高效率和减少污染物排放的途径;然而,当应用于传统点火系统时,这些措施阻碍了可靠的点火。因此,替代点火系统是科学研究的一个重点。其中,激光诱导点火似乎是一个有吸引力的方法,以改善燃烧过程。与传统的电火花塞点火相比,激光点火提供了许多潜在的好处。最常讨论的是:燃烧火焰核不淬灭;能够将(激光)能量输送到燃烧室中任何感兴趣的位置;同时发射光束到不同位置的可能性,以及点火的时间控制。如果这些优点能够在实际中得到利用,就可以提高发动机的效率,实现在稀薄空气-燃料混合物下的可靠运行,从而切实节省燃料消耗和减少废气排放。因此,激光点火可以提供重要的新方法,以解决全球对车辆和发电厂继续使用往复式发动机对环境的影响的关注,目的是减少大气中的污染物水平。通过将该技术应用于混合动力(电-气)发动机的点火和先进燃料的高效燃烧,该技术还可以支持电动交通工具的电气化使用。在这项工作中,我们回顾了过去几年在激光点火研究方面取得的进展,特别是旨在实现尺寸和性能适合直接在发动机上运行的激光源(或激光火花塞)。介绍了激光火花塞定位的主要设想解决方案,即将其置于发动机之外或直接放在发动机上。从提出的第一个解决方案,建立一个紧凑的激光器适合点火,到实际实现的激光火花塞的路径进行了描述。详细讨论了用类似经典火花塞的激光装置点火汽车试验发动机所得到的结果。强调指出,技术的进步使这种激光点火方法接近于在汽油发动机驱动的汽车上的应用和安装。概述了在天然气发动机激光点火方面取得的成就,以及激光点火在其他方面的应用。科学和技术的进步已经允许实现多个(多达四个)光束输出的激光设备,但许多其他重要方面(如集成,耐热性或振动强度)仍有待解决。单缸发动机多束点火试验的最新结果令人鼓舞,并引起了对这一方向的研究兴趣。为了充分利用该技术的潜力,对激光点火过程的基本理解是至关重要的。因此,本文综述了几种用于表征激光点火过程的测量技术,主要是光学测量技术。
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Laser ignition - Spark plug development and application in reciprocating engines

Combustion is one of the most dominant energy conversion processes used in all areas of human life, but global concerns over exhaust gas pollution and greenhouse gas emission have stimulated further development of the process. Lean combustion and exhaust gas recirculation are approaches to improve the efficiency and to reduce pollutant emissions; however, such measures impede reliable ignition when applied to conventional ignition systems. Therefore, alternative ignition systems are a focus of scientific research. Amongst others, laser induced ignition seems an attractive method to improve the combustion process.

In comparison with conventional ignition by electric spark plugs, laser ignition offers a number of potential benefits. Those most often discussed are: no quenching of the combustion flame kernel; the ability to deliver (laser) energy to any location of interest in the combustion chamber; the possibility of delivering the beam simultaneously to different positions, and the temporal control of ignition. If these advantages can be exploited in practice, the engine efficiency may be improved and reliable operation at lean air-fuel mixtures can be achieved, making feasible savings in fuel consumption and reduction in emission of exhaust gasses. Therefore, laser ignition can enable important new approaches to address global concerns about the environmental impact of continued use of reciprocating engines in vehicles and power plants, with the aim of diminishing pollutant levels in the atmosphere. The technology can also support increased use of electrification in powered transport, through its application to ignition of hybrid (electric-gas) engines, and the efficient combustion of advanced fuels.

In this work, we review the progress made over the last years in laser ignition research, in particular that aimed towards realizing laser sources (or laser spark plugs) with dimensions and properties suitable for operating directly on an engine. The main envisaged solutions for positioning of the laser spark plug, i.e. placing it apart from or directly on the engine, are introduced. The path taken from the first solution proposed, to build a compact laser suitable for ignition, to the practical realization of a laser spark plug is described. Results obtained by ignition of automobile test engines, with laser devices that resemble classical spark plugs, are specifically discussed. It is emphasized that technological advances have brought this method of laser ignition close to the application and installation in automobiles powered by gasoline engines. Achievements made in the laser ignition of natural gas engines are outlined, as well as the utilization of laser ignition in other applications. Scientific and technical advances have allowed realization of laser devices with multiple (up to four) beam outputs, but many other important aspects (such as integration, thermal endurance or vibration strength) are still to be solved. Recent results of multi-beam ignition of a single-cylinder engine in a test bench set-up are encouraging and have led to increased research interest in this direction.

A fundamental understanding of the processes involved in laser ignition is crucial in order to exploit the technology's full potential. Therefore, several measurement techniques, primarily optical types, used to characterize the laser ignition process are reviewed in this work.

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来源期刊
Progress in Quantum Electronics
Progress in Quantum Electronics 工程技术-工程:电子与电气
CiteScore
18.50
自引率
0.00%
发文量
23
审稿时长
150 days
期刊介绍: Progress in Quantum Electronics, established in 1969, is an esteemed international review journal dedicated to sharing cutting-edge topics in quantum electronics and its applications. The journal disseminates papers covering theoretical and experimental aspects of contemporary research, including advances in physics, technology, and engineering relevant to quantum electronics. It also encourages interdisciplinary research, welcoming papers that contribute new knowledge in areas such as bio and nano-related work.
期刊最新文献
Magneto-electric phenomena in atoms and molecules The road to quantum internet: Progress in quantum network testbeds and major demonstrations Surface plasmon coupling for enhancing light emission and color conversion Quantum electronics on quantum liquids and solids Editorial Board
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