Properties of general stationary axisymmetric spacetimes: circularity and beyond

IF 5.9 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Eugeny Babichev and Jacopo Mazza
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Abstract

We analyse properties of general stationary and axisymmetric spacetimes, with a particular focus on circularity — an accidental symmetry enjoyed by the Kerr metric, and therefore widely assumed when searching for rotating black hole solutions in alternative theories of gravity as well as when constructing models of Kerr mimickers. Within a gauge specified by seven (or six) free functions, the local existence of which we prove, we solve the differential circularity conditions and translate them into algebraic relations among the metric components. This result opens the way to investigating the consequences of circularity breaking in a controlled manner. In particular, we construct two simple analytical examples of non-circular deformations of the Kerr spacetime. The first one is “minimal”, since the horizon and the static limit are identical to their Kerr counterparts, except for the fact that the horizon is not Killing and its surface gravity is therefore not constant. The second is “not so minimal”, as the horizon's profile can be chosen arbitrarily and the difference between the horizon and the so-called rotosurface can be appreciated. Our findings thus pave the way for further research into the phenomenology of non-circular stationary and axisymmetric spacetimes.
一般静止轴对称时空的性质:圆度及其以外
我们分析了一般静止和轴对称时空的性质,特别关注圆形-克尔度量所享有的偶然对称性,因此在寻找替代引力理论中的旋转黑洞解以及构建克尔模拟器模型时被广泛假设。在由七个(或六个)自由函数指定的规范内,我们证明了这些自由函数的局部存在性,我们解出了圆度的微分条件,并将它们转化为度量分量之间的代数关系。这一结果为以可控的方式研究圆断裂的后果开辟了道路。特别地,我们构造了克尔时空非圆变形的两个简单解析例子。第一个是“最小”,因为视界和静态极限与它们的Kerr对应物是相同的,除了视界不是杀戮的,因此它的表面重力不是恒定的。第二个是“不那么小”,因为地平线的轮廓可以任意选择,地平线和所谓的旋转表面之间的差异可以被欣赏。因此,我们的发现为进一步研究非圆形静止和轴对称时空的现象学铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Cosmology and Astroparticle Physics
Journal of Cosmology and Astroparticle Physics 地学天文-天文与天体物理
CiteScore
10.20
自引率
23.40%
发文量
632
审稿时长
1 months
期刊介绍: Journal of Cosmology and Astroparticle Physics (JCAP) encompasses theoretical, observational and experimental areas as well as computation and simulation. The journal covers the latest developments in the theory of all fundamental interactions and their cosmological implications (e.g. M-theory and cosmology, brane cosmology). JCAP''s coverage also includes topics such as formation, dynamics and clustering of galaxies, pre-galactic star formation, x-ray astronomy, radio astronomy, gravitational lensing, active galactic nuclei, intergalactic and interstellar matter.
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