Spectroscopic Measurement of High Argon Jet Plasma Flow Rate for Methane Hydrate Decomposition

Q2 Agricultural and Biological Sciences
I. Rahim, N. Amaliyah, M. A. Mandra, S. Nomura
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引用次数: 0

Abstract

Methane hydrate is believed to contain a massive amount of potentially extractable hydrogen gas due to methane as the main component. A high-frequency argon jet plasma method has been proposed for decomposing hydrogen content. The excitation temperature of plasma can be directly observed from atomic emission lines. This information is more efficient to characterize the plasma behavior to optimize the decomposition process. In this study, the plasma excitation temperature was determined using spectroscopy and Boltzmann’s plot with a higher argon gas flow rate. An argon gas flow rate varied from 300, 400, 500, 1000, 1500, 2000, 2500, and 3000 mL/min. It flows inside a hollow tube in the counter electrode. A 27.12MHz high-frequency power source of plasma was applied to produce jet plasma at atmospheric pressure. The excitation temperature was observed in the range of 4310K to 5133K. The highest excitation temperature of 5133K was obtained at an argon gas flow rate of 500 mL/min.
甲烷水合物分解中高氩射流等离子体流速的光谱测量
甲烷水合物被认为含有大量潜在可提取的氢气,因为甲烷是主要成分。提出了一种高频氩射流等离子体分解氢的方法。等离子体的激发温度可以通过原子发射谱线直接观测到。这些信息可以更有效地描述等离子体的行为,从而优化分解过程。在本研究中,采用光谱学和玻尔兹曼图确定了较高氩气流量下的等离子体激发温度。氩气流量从300、400、500、1000、1500、2000、2500和3000 mL/min不等。它在反电极的空心管内流动。采用27.12MHz高频等离子体电源,在常压下产生喷射等离子体。激发温度范围为4310K ~ 5133K。当氩气流量为500 mL/min时,最高激发温度为5133K。
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来源期刊
International Journal of Design and Nature and Ecodynamics
International Journal of Design and Nature and Ecodynamics Agricultural and Biological Sciences-Agricultural and Biological Sciences (all)
CiteScore
2.10
自引率
0.00%
发文量
107
期刊介绍: The International Journal of Design & Nature and Ecodynamics acts as a channel of communication for researchers from around the world working on a variety of studies involving nature and its significance to modern scientific thought and design. These studies have demonstrated the rich diversity of the natural world. Ecodynamics in particular aims to relate ecosystems to evolutionary thermodynamics in order to arrive at satisfactory solutions for sustainable development. The International Journal of Design & Nature and Ecodynamics also opens new avenues for understanding the relationship between arts and sciences.
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