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Fractional order plasma modeling based on linear polarization of LASER light: an Atangana- Baleanu Caputo approach

机译:基于激光线性偏振的分数阶等离子体建模:Atangana-Baleanu Caputo 方法

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Purpose The purpose of this offered research is to articulate a multifaceted kind of highly unstable initial perturbation and further analyze the performance of the plasma particles for time-fractional order evaluation. Design/methodology/approach For this purpose, the authors designed specific geometry and further interpreted it into the mathematical model using the concepts of the Vlasov Maxwell system. The suggested algorithm is based on the finite-difference and spectral estimation philosophy. The management of time and memory in generic code for computational purposes is also discussed. Findings The main purpose is to analyze the fractional behavior of plasma particles and also the capability of the suggested numerical algorithm. Due to initial perturbations, there are a lot of sudden variations that occurred in the formulated system. Graphical behavior shows that SR parameter produces devastation as compared to others. The variation of fractional parameter between the defend domain demonstrates the hidden pictures of plasma particles. The design scheme is efficient, convergent and has the capability to cover the better physics of the problem. Practical implications Plasma material is commonly used in different areas of science. Therefore, in this paper, the authors increase the capability of the mathematical plasma model with specific geometry, and further suitable numerical algorithm is suggested with detailed physical analysis of the outcomes. The authors gave a new direction to study the performance of plasma particles under the influence of LASER light. Originality/value In the recent era, science has produced a lot of advancements to study and analyze the physical natural process, which exist everywhere in the real word. On behalf of this current developments, it is now insufficient to study the first-order time evaluation of the plasma particles. One needs to be more precise and should move toward the bottomless state of it, that is, macroscopic and microscopic time-evaluation scales, and it is not wrong to say that there exits a huge gap, to study the time evaluation in this discussed manner. The presented study is entirely an advanced and efficient way to investigate the problem into the new directions. The capability of the proposed algorithm and model with fractional concepts can fascinate the reader to extend to the other dimensions.
机译:目的 本研究的目的是阐明一种多方面的高度不稳定的初始扰动,并进一步分析等离子体粒子的性能以进行时间分数阶评估。设计/方法/途径 为此,作者设计了特定的几何形状,并使用弗拉索夫麦克斯韦系统的概念将其进一步解释为数学模型。该算法基于有限差分和谱估计原理。还讨论了用于计算目的的通用代码中的时间和内存管理。研究结果 主要目的是分析等离子体粒子的分数行为以及所建议的数值算法的能力。由于最初的扰动,在制定的系统中发生了许多突然的变化。图形行为表明,与其他参数相比,SR 参数会产生破坏。防御域之间分数参数的变化证明了等离子体粒子的隐藏图片。该设计方案是高效的、收敛的,并且能够涵盖问题的更好物理特性。实际意义 等离子体材料通常用于不同的科学领域。因此,在本文中,作者增加了具有特定几何形状的数学等离子体模型的能力,并提出了进一步合适的数值算法,并对结果进行了详细的物理分析。作者为研究等离子体粒子在激光影响下的性能提供了新的方向。独创性/价值 在近代,科学在研究和分析物理自然过程方面取得了许多进步,这些过程在现实世界中无处不在。就目前的发展而言,现在还不足以研究等离子体粒子的一阶时间评估。人们需要更精确,应该走向它的无底状态,即宏观和微观的时间评估尺度,说存在巨大差距,以这种讨论的方式研究时间评估并没有错。本研究完全是将问题研究到新方向的一种先进而有效的方法。所提出的具有分数概念的算法和模型的能力可以吸引读者扩展到其他维度。

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