Anisotropic Durgapal-Fuloria compact stars in f(R) gravity

IF 2.5 3区 物理与天体物理 Q2 PHYSICS, PARTICLES & FIELDS Nuclear Physics B Pub Date : 2024-09-20 DOI:10.1016/j.nuclphysb.2024.116690
Rajesh Kumar , S.K. Maurya , Abdelghani Errehymy , G. Mustafa , Abdel-Haleem Abdel-Aty , H.I. Alrebdi , Mona Mahmoud
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Abstract

This study presented a new exact solution for anisotropic compact stellar objects within the framework of f(R)=R+αR2 gravity. In this context, the Durgapal-Fuloria metric potential has been employed to solve the field equation derived for f(R) theory. Furthermore, we have derived the generalized Darmois-Israel junction condition necessary for seamlessly connecting the interior region to the Schwarzschild exterior metric across the boundary hypersurface of the star in the context of f(R) gravity, and the interior solution is matched with the Schwarzschild exterior metric over the bounding surface of a compact star. These junction conditions stipulate that the pressure must not be zero at the boundary and should be proportional to the non-linear terms of f(R) gravity, a crucial aspect often overlooked by many researchers when investigating compact stellar models. Additionally, we derived the values of these parameters by using observational data of various compact stars (CSs), namely Her X-1, SAX J1808.4-3658, SMC X-1, LMC X-4, Cen X-3, 4U 1820-30, PSR J1903+327, 4U 1608-52, Vela X-1, and PSR J1416-2230. This approach enables us to investigate the comprehensive analysis of solutions numerically and graphically. We conducted various physical tests, including gradient of energy density and pressures, anisotropy, stability, equilibrium conditions, energy-density constraints, mass function, compactness, redshift, and adiabatic index, to assess the feasibility of our models. Our findings demonstrate the consistent behavior of our models provides a satisfactory physical situation as far as the observational results are confirmed.
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f(R)引力下的各向异性杜尔加帕尔-富勒里亚紧凑星
这项研究提出了在 f(R)=R+αR2 引力框架内各向异性紧凑恒星天体的新精确解法。在这种情况下,我们采用了 Durgapal-Fuloria 度量势来求解 f(R) 理论推导出的场方程。此外,我们还推导出了广义的达莫斯-伊斯雷尔(Darmois-Israel)交界条件,它是在 f(R) 引力的背景下将内部区域与恒星边界超表面上的施瓦兹柴尔德外部度量无缝连接的必要条件,内部解与紧凑恒星边界表面上的施瓦兹柴尔德外部度量相匹配。这些交界条件规定,边界处的压力不能为零,而且应与 f(R) 引力的非线性项成正比,这是许多研究人员在研究紧凑型恒星模型时经常忽略的一个重要方面。此外,我们还利用各种紧凑型恒星(CSs)的观测数据推导出了这些参数的值,它们是Her X-1、SAX J1808.4-3658、SMC X-1、LMC X-4、Cen X-3、4U 1820-30、PSR J1903+327、4U 1608-52、Vela X-1和PSR J1416-2230。这种方法使我们能够以数值和图形方式研究解的综合分析。我们进行了各种物理测试,包括能量密度和压力梯度、各向异性、稳定性、平衡条件、能量密度约束、质量函数、紧凑性、红移和绝热指数,以评估模型的可行性。我们的研究结果表明,我们的模型行为一致,为观测结果的证实提供了令人满意的物理状况。
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来源期刊
Nuclear Physics B
Nuclear Physics B 物理-物理:粒子与场物理
CiteScore
5.50
自引率
7.10%
发文量
302
审稿时长
1 months
期刊介绍: Nuclear Physics B focuses on the domain of high energy physics, quantum field theory, statistical systems, and mathematical physics, and includes four main sections: high energy physics - phenomenology, high energy physics - theory, high energy physics - experiment, and quantum field theory, statistical systems, and mathematical physics. The emphasis is on original research papers (Frontiers Articles or Full Length Articles), but Review Articles are also welcome.
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