论文标题

通过相对论进动模型的黑洞质量和自旋测量:XTE J1859+226

Black hole mass and spin measurements through the Relativistic Precession Model: XTE J1859+226

论文作者

Motta, S. E, Belloni, T., Stella, L., Pappas, G., Casares, J. A., Muñoz-Darias, T., Torres, M. A. P., Yanes-Rizo, I. V.

论文摘要

在二进制系统中积聚黑洞和中子星的X射线光曲线显示了各种类型的准周期振荡(QPOS),其起源仍在争论中。相对论进动模型从一般相对论中标识了具有基本时间尺度的QPO频率,并已被提出是对某些类型的振荡的可能解释。在特定条件下(即检测特定QPOS三重态),该模型可用于获得对紧凑型物体的质量和自旋的自洽测量。到目前为止,仅在黑洞二进制GRO J1655-40中才有可能。 In the RXTE/PCA data from the 1999-2000 outburst of the black hole transient XTE J1859+226 we found a QPO triplet, and used the the Relativistic Precession Model to obtain high-precision measurements of the black hole mass and spin - M = (7.85+/-0.46) Msun, a* = 0.149+/-0.005 - the former being consistent with the most recent dynamical mass determination from光学测量。与在其他黑洞系统中已经观察到的相似,QPO和宽带噪声组件的频率与粒子运动的一般相对频率符合模型预测的紧凑对象的一般相对频率。我们的发现证实了先前的结果,并进一步支持了相对论进动模型的有效性,这是唯一一种基于电磁措施的方法,迄今为止,该方法一直在与二进制黑色孔合并产生的重力波的旋转始终产生的旋转。

The X-ray light curves of accreting black holes and neutron stars in binary systems show various types of quasi-periodic oscillations (QPOs), the origin of which is still debated. The Relativistic Precession Model identifies the QPO frequencies with fundamental time scales from General Relativity, and has been proposed as a possible explanation of certain types of such oscillations. Under specific conditions (i.e., the detection of a particular QPOs triplet) such a model can be used to obtain self-consistent measurements of the mass and spin of the compact object. So far this has been possible only in the black hole binary GRO J1655-40. In the RXTE/PCA data from the 1999-2000 outburst of the black hole transient XTE J1859+226 we found a QPO triplet, and used the the Relativistic Precession Model to obtain high-precision measurements of the black hole mass and spin - M = (7.85+/-0.46) Msun, a* = 0.149+/-0.005 - the former being consistent with the most recent dynamical mass determination from optical measurements. Similarly to what has been already observed in other black hole systems, the frequencies of the QPOs and broad-band noise components match the general relativistic frequencies of particle motion close to the compact object predicted by the model. Our findings confirm previous results and further support the validity of the Relativistic Precession Model, which is the only electromagnetic-measurement-based method that so far has consistently yielded spins close to those from the gravitational waves produced by merging binary black holes.

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