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A radiating Kerr black hole and Hawking radiation

机译:辐射的Kerr黑洞和Hawking辐射

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摘要

This study proposes an axisymmetric generalization of the Vaidya metric, namely the Vaidya–Kerr metric, to describe a radiating rotating black hole, and presents its Hawking radiation temperature. This study is an improved version of our previous research via ellipsoid coordinate transformation, and the Einstein field equations are solved concisely and intuitively by an orthogonal ansatz. The results demonstrate that the energy–momentum tensor of the derived radiating Kerr metric satisfies the energy-conservation law and is classified as a Petrov type II fluid, whereas the stationary Kerr metric is a Petrov type IV vacuum. The inner and outer event-horizon radii, the ergosphere radii, as well as the angular velocity at the event horizon are solved, and then, surface gravity, entropy, and Hawking radiation are derived. We estimate the Hawking-radiation temperature of the black holes with the angular momentum and the same mass of Pluto and the sun, as well as the supermassive black hole in the core of the M87 galaxy to be 9.42K, K, and K, respectively. Only the value of the rotating Pluto-mass black hole is slightly greater than the 3K cosmic microwave background radiation and may be detected by high-resolution tools in the future.
机译:这项研究提出了Vaidya度量(即Vaidya-Kerr度量)的轴对称概括,以描述辐射旋转的黑洞,并给出其Hawking辐射温度。这项研究是我们通过椭球坐标变换进行的先前研究的改进版本,爱因斯坦场方程通过正交ansatz简洁直观地求解。结果表明,导出的辐射克尔度量的能量动量张量满足能量守恒定律,被分类为彼得罗夫II型流体,而静止克尔度量为彼得罗夫IV型真空。求解事件视界的内部和外部半径,地球运动半径以及事件视界处的角速度,然后得出表面重力,熵和霍金辐射。我们估计角动量和冥王星与太阳质量相同的黑洞的霍金辐射温度以及M87星系核心的超大质量黑洞分别为9.42K,K和K。 。只有旋转的冥王星黑洞的值略大于3K宇宙微波本底辐射,将来可能会被高分辨率工具检测到。

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