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Creation of resonance photoplasma by concentrated solar/gas lamp irradiation. Self-consistent modeling

机译:通过集中的太阳能/煤气灯照射产生共振光血管。 自我一致的建模

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摘要

The subject of the present research is a quantitative study of opportunity to obtain a photoplasma in a low pressure mixture of alkali metal vapor and noble gas by concentrated solar (or gas lamp) irradiation. The ground, resonance and high-excitation levels, and atomic and molecular ions of an alkali metal were considered. The proposed self-consistent model along with plasma-chemical reactions and radiation transfer accounted for charge transport processes and ambipolar diffusion, unlike previous studies (LIBORS project and others). Spatial uniformity of resonance excitation rate in the all plasma volume was assumed. An iterative method to determine the main parameters of photoplasma was proposed and tested on the example of a mixture of Na vapor and Ar gas for pressures p(Na) = 0.02 and p(Ar) = 1 Torr in a cylindrical cell of radius R = 0.005 m and length L = 0.01 m in the range of resonance radiation flux density F-lambda 0 = 4x(1-10(3)) Wm(-2)nm(-1) inside the gas cell. The minimal value of resonance excitation rate, which is necessary to create a plasma in the considered gas cell, was evaluated as 1.1 x 10(22) m(-3) s(-1). According to our rough estimation, to provide this rate, the minimal value of F-lambda 0 of an external source should be 40 Wm(-2)nm(-1). This can be implemented by the concentration coefficient of solar irradiation about 30. The model and obtained results can be used for the calculation of plasma parameters in different mixtures of an alkali metal vapor and a noble gas induced by a nonlaser irradiation source (concentrated solar or gas lamp irradiation) and designing of photovoltaic converters on their base. Published under license by AIP Publishing.
机译:本研究的主题是通过浓缩的太阳能(或燃气灯)照射在碱金属蒸汽和惰性气体的低压混合物中获得光血管的机会的定量研究。考虑了碱金属的地基,共振和高激发水平,原子和分子离子。与先前的研究(Libors项目和其他人)不同,所提出的自我一致的模型以及等离子体化学反应和辐射转移占充电运输过程和Ambipolar扩散。假设所有等离子体体积中共振激励率的空间均匀性。提出了一种迭代方法,用于确定光血管产生的主要参数,并在Na蒸汽和Ar气体的混合物的实例上进行压力P(Na)= 0.02和P(Ar)= 1托在半径R =的圆柱形电池中的在燃气电池内的共振辐射磁通密度F-Lambda 0 = 4x(1-10(3))Wm(-2)nm(-1)的范围内0.005μm和0.01m。在所考虑的气体细胞中产生血浆所必需的共振激发速率的最小值被评价为1.1×10(22)m(-3)s(-1)。根据我们的粗略估计,为了提供此速率,外部源的F-Lambda 0的最小值应为40Wm(-2)nm(-1)。这可以通过大约30的太阳照射的浓度系数来实现。该模型和得到的结果可用于计算碱金属蒸气的不同混合物中的等离子体参数和由非激光照射源(浓缩太阳能或浓缩的太阳能或浓缩的惰性气体)来计算燃气灯照射)和底座上光伏转换器的设计。通过AIP发布在许可证下发布。

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