Soto Leopoldo, Pavez Cristian, Pedreros José, Jain Jalaj, Moreno José, San Martín Patricio, Castillo Fermín, Zanelli Daniel, Altamirano Luis
Center for Research and Applications on the Intersection of Plasma Physics, Matter and Complexity, P2mc, Comisión Chilena de Energía Nuclear, Santiago 7600713, Chile.
Departamento de Ciencias Físicas, Universidad Andres Bello, Republica 220, Santiago 8370134, Chile.
Micromachines (Basel). 2024 Sep 1;15(9):1123. doi: 10.3390/mi15091123.
Plasma focus devices represent a class of hot and dense plasma sources that serve a dual role in fundamental plasma research and practical applications. These devices allow the observation of various phenomena, including the z-pinch effect, nuclear fusion reactions, plasma filaments, bursts, shocks, jets, X-rays, neutron pulses, ions, and electron beams. In recent years, considerable efforts have been directed toward miniaturizing plasma focus devices, driven by the pursuit of both basic studies and technological advancements. In this paper, we present the design and construction of a compact, portable pulsed plasma source based on plasma focus technology, operating at the ~2-4 Joule energy range for versatile applications (PF-2J: 120 nF capacitance, 6-9 kV charging voltage, 40 nH inductance, 2.16-4.86 J stored energy, and 10-15 kA maximum current at short circuit). The components of the device, including capacitors, spark gaps, discharge chambers, and power supplies, are transportable within hand luggage. The electrical characteristics of the discharge were thoroughly characterized using voltage and current derivative monitoring techniques. A peak current of 15 kiloamperes was achieved within 110 nanoseconds in a short-circuit configuration at a 9 kV charging voltage. Plasma dynamics were captured through optical refractive diagnostics employing a pulsed Nd-YAG laser with a 170-picosecond pulse duration. Clear evidence of the z-pinch effect was observed during discharges in a deuterium atmosphere at 4 millibars and 6 kilovolts. The measured pinch length and radius were approximately 0.8 mm and less than 100 μm, respectively. Additionally, we explore the potential applications of this compact pulsed plasma source. These include its use as a plasma shock irradiation device for analyzing materials intended for the first wall of nuclear fusion reactors, its capability in material film deposition, and its utility as an educational tool in experimental plasma physics. We also show its potential as a pulsed plasma thruster for nanosatellites, showcasing the advantages of miniaturized plasma focus technology.
等离子体聚焦装置是一类热且致密的等离子体源,在基础等离子体研究和实际应用中发挥着双重作用。这些装置能够观测各种现象,包括z箍缩效应、核聚变反应、等离子体细丝、爆发、激波、喷流、X射线、中子脉冲、离子和电子束。近年来,在基础研究和技术进步的双重追求推动下,人们致力于将等离子体聚焦装置小型化。在本文中,我们展示了一种基于等离子体聚焦技术的紧凑、便携式脉冲等离子体源的设计与构建,其工作在约2 - 4焦耳能量范围,适用于多种应用(PF - 2J:120 nF电容、6 - 9 kV充电电压、40 nH电感、2.16 - 4.86 J储能以及短路时最大电流为10 - 15 kA)。该装置的组件,包括电容器、火花间隙、放电室和电源,可装入手提行李携带。利用电压和电流导数监测技术对放电的电学特性进行了全面表征。在9 kV充电电压的短路配置下,110纳秒内实现了15千安的峰值电流。通过使用脉冲持续时间为170皮秒的脉冲Nd - YAG激光的光学折射诊断技术捕获了等离子体动力学。在4毫巴和6千伏的氘气氛中放电时,清晰地观测到了z箍缩效应的证据。测得的箍缩长度和半径分别约为0.8毫米和小于100微米。此外,我们探索了这种紧凑脉冲等离子体源的潜在应用。这些应用包括将其用作等离子体冲击辐照装置来分析核聚变反应堆第一壁所用材料、其在材料薄膜沉积方面的能力以及作为实验等离子体物理教学工具的效用。我们还展示了其作为纳米卫星脉冲等离子体推进器的潜力,突显了小型化等离子体聚焦技术的优势。