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Relativistic dust accretion of charged particles in Kerr-Newman spacetime

机译:Kerr-Newman Spacetime中的带电粒子的相对论粉尘吸收

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We describe a new analytical model for the accretion of particles from a rotating and charged spherical shell of dilute collisionless plasma onto a rotating and charged black hole. By assuming a continuous injection of particles at the spherical shell and by treating the black hole and a featureless accretion disk located in the equatorial plane as passive sinks of particles, we build a stationary accretion model. This may then serve as a toy model for plasma feeding an accretion disk around a charged and rotating black hole. Therefore, our new model is a direct generalization of the analytical accretion model introduced by E. Tejeda, P. A. Taylor, and J. C. Miller [Mon. Not. R. Astron. Soc. 429, 925 (2013)]. We use our generalized model to analyze the influence of a net charge of the black hole, which will in general be very small, on the accretion of plasma. Within the assumptions of our model we demonstrate that already a vanishingly small charge of the black hole may in general still have a non-negligible effect on the motion of the plasma, as long as the electromagnetic field of the plasma is still negligible. Furthermore, we argue that the inner and outer edges of the forming accretion disk strongly depend on the charge of the accreted plasma. The resulting possible configurations of accretion disks are analyzed in detail.
机译:我们描述了一种新的分析模型,用于从稀释的碰撞等离子体的旋转和带电球形壳体上涂覆颗粒上的颗粒上的旋转和带电的黑洞。通过假设在球面壳体处连续注入颗粒并通过将位于赤道平面中的黑洞和无特色的吸收盘作为颗粒的被动沉积,我们构建了静止的吸收模型。然后,这可以用作等离子体围绕带电和旋转的黑洞馈送吸积盘的玩具模型。因此,我们的新模型是由E.Tejeda,P. A. Taylor和J. C. Miller [Mon.的分析吸收模型的直接概括。不是。 R. Astron。 SOC。 429,925(2013)]。我们利用我们的广义模型分析了黑洞净电荷的影响,这通常非常小,血浆的增生。在我们模型的假设中,我们证明已经一般而言,已经缺乏缺陷的黑洞的电荷可能对等离子体的运动产生不可忽略的影响,只要等离子体的电磁场仍然可以忽略不计。此外,我们认为成形膨胀盘的内边缘强烈取决于增强血浆的电荷。详细分析了所得的产生磁盘的可能配置。

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  • 来源
    《Physical Review D》 |2017年第8期|063015.1-063015.18|共18页
  • 作者单位

    University of Bremen Center of Applied Space Technology and Microgravity (ZARM) 28359 Bremen Germany;

    University of Bremen Center of Applied Space Technology and Microgravity (ZARM) 28359 Bremen Germany;

    University of Bremen Center of Applied Space Technology and Microgravity (ZARM) 28359 Bremen Germany;

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