相对论退化磁旋转恒星等离子体中的核声包络孤子

Swarniv Chandra, Gobinda Manna, Deepsikha Mahanta
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摘要

该研究探索了一个名为相对论退化磁旋转量子等离子体(RDMRQP)的模型,它由一个静态重核、一个惯性非退化轻核和温暖的非相对论或超相对论电子组成。重点是观测核声包络孤子(NAES)的出现。利用还原扰动法,我们推导出一个非线性薛定谔方程(NLSE),以描述非线性包络孤子的特性。我们分析了百灵鸟呼吸孤子解决方案。研究结果表明,暖退化物种的温度、等离子体系统的旋转速度以及重核物种的存在都会改变 WDMRQP 系统中 NAES 的基本特征(高度和宽度)。研究强调 NA 波势只存在正值。此外,还进行了相平面分析,以深入了解参数依赖关系。通过详细的数学和数值分析,研究避免了复杂数学的过多负担,同时通过相面分析展示了参数依赖性。该研究利用呼吸模式解增强了包络孤子模型,并利用本杰明-费尔指数讨论了调制不稳定性,突出了孤子在恒星形成过程中的重要性。包层孤子是恒星和原恒星内部的稳定波,影响着能量传输和恒星演化,在增殖过程和稳定结构的形成中起着至关重要的作用。研究的主要发现包括各种参数对NAES产生和传播的影响,其中非相对论和超相对论电子支持NAES,其振幅和宽度受温度、旋转频率、倾角和静态重核存在的影响。该研究适用于热白矮星和中子星,建议进一步探索量子效应和非平面或任意振幅的 NAES。
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Nuclear Acoustic Envelope Soliton in a Relativistically Degenerate Magneto-Rotating Stellar Plasma
The study explores a model called Relativistic Degenerate Magneto-Rotating Quantum Plasma (RDMRQP), which comprises a static heavy nucleus, an inertial non-degenerate light nucleus, and warm non-relativistic or ultra-relativistic electrons. The focus is on observing the emergence of Nucleus-Acoustic Envelope Solitons (NAESs). Using the reductive perturbation method, a Nonlinear Schrödinger Equation (NLSE) is derived to characterize the properties of NAESs. We have analysed the Peregrine breather soliton solution. The investigation reveals that the temperature of warm degenerate species, plasma system's rotational speed, and the presence of heavy nucleus species can alter the fundamental features (height and width) of NAESs in the WDMRQP system. The study emphasizes the existence of only positive NA wave potential. Additionally, a phase plane analysis is conducted to gain a deeper understanding of the parametric dependencies. Through detailed mathematical and numerical analysis, the study avoids overloading with complex mathematics while demonstrating parametric dependence via phase portrait analysis. The research augments the envelop soliton model with breather mode solutions and discusses modulation instability using the Benjamin-Feir Index, highlighting the significance of solitons in star formation. Envelop solitons, stable waves within stars and proto-stars, influence energy transport and stellar evolution, playing a crucial role in the accretion process and formation of stable structures. Key findings include the effects of various parameters on NAESs' generation and propagation in which non-relativistic and ultra-relativistic electrons support NAESs, with amplitude and width influenced by temperature, rotational frequency, inclination angle, and the presence of a static heavy nucleus. The research is applicable to hot white dwarfs and neutron stars, suggesting further exploration of quantum effects and non-planar or arbitrary amplitude NAESs.
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