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首页> 外文期刊>Intelligence: A Multidisciplinary Journal >Non-singular solution for anisotropic model by gravitational decoupling in the framework of complete geometric deformation (CGD)
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Non-singular solution for anisotropic model by gravitational decoupling in the framework of complete geometric deformation (CGD)

机译:全几何变形框架中引力去耦的各向异性模型的非奇异解决方案(CGD)

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摘要

We presented a non-singular solution of Einstein's field equations using gravitational decoupling by means of complete geometric deformation (CGD) in the anisotropic domain for compact star models. In this approach both the gravitational potentials are deformed as nu=xi+beta h(r) and e-lambda=mu+beta f(r), where beta is a coupling constant. Then we solve more complex field equations under above transformations by using a particular form of deformation function h(r) for two different cases namely the mimic constraint for the pressure {p(r)=theta 11} and the mimic constraint for the density {rho (r)=theta 00} (Ovalle in Phys Lett B 788:213, 2019). The compact star models have been constructed by taking M0/R=0.2 for two different non-zero values of beta. Moreover, the boundary conditions are also performed for the said complete geometric deformation in the presence of anisotropic matter distribution. We also find pressure, density, anisotropy and causality conditions that are physically acceptable throughout the model. The M-R curve is also presented to support our model for describing a realistic compact object such as neutron stars.
机译:我们通过在光学星形模型中的各向异性域中的完全几何变形(CGD)来提出了一种非奇异的Einstein的场方程解决方案。在这种方法中,重力电位都变形为nu = xi + beta h(r)和e-lambda = mu + beta F(R),其中β是耦合常数。然后,通过使用针对两个不同情况的特定形式的变形函数h(r)来解决更复杂的现场方程,在两个不同的情况下使用特定形式的变形函数h(r)即压力的模拟约束{p(r)= theta 11 }和对密度的模拟约束{rho(r)= theta 00}(在物理Lett B 788:213,2019中的ovalle。 Compact Star模型是通过为Beta的两个不同非零值的 m0 / r = 0.2构成。此外,在存在各向异性物质分布的存在下,还对所述完全几何变形进行边界条件。我们还发现整个模型身体上可接受的压力,密度,各向异性和因果关系条件。还提出了M-R曲线以支持我们的模型,用于描述诸如中子恒星的逼真的紧凑型物体。

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