首页> 外文会议>Xiamen-CUSTIPEN Workshop on the Equation of State of Dense Neutron-Rich Matter in the Era of Gravitational Wave Astronomy >Equation-of-state Constraints and the QCD Phase Transition in the Era of Gravitational-Wave Astronomy
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Equation-of-state Constraints and the QCD Phase Transition in the Era of Gravitational-Wave Astronomy

机译:州方程的约束和引力航波天文学时代的QCD相转变

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We describe a multi-messenger interpretation of GW170817, which yields a robust lower limit on NS radii. This excludes NSs with radii smaller than about 10.7 km and thus rules out very soft nuclear matter. We stress the potential of this type of constraints when future detections become available. For instance, a very similar argumentation may yield an upper bound on the maximum mass of nonrotating NSs. We also discuss simulations of NS mergers, which undergo a first-order phase transition to quark matter. We point out a different dynamical behavior. Considering the gravitational-wave signal, we identify an unambiguous signature of the QCD phase transition in NS mergers. We show that the occurrence of quark matter through a strong first-order phase transition during merging leads to a characteristic shift of the dominant postmerger frequency. The frequency shift is indicative for a phase transition if it is compared to the postmerger frequency which is expected for purely hadronic EoS models. A very strong deviation of several 100 Hz is observed for hybrid EoSs in an otherwise tight relation between the tidal deformability and the postmerger frequency. In future events the tidal deformability will be inferred with sufficient precision from the premerger phase, while the dominant postmerger frequency can be obtained when current detectors reach a higher sensitivity in the high-frequency range within the next years. Finally, we address the potential impact of a first-order phase transition on the electromagnetic counterpart of NS mergers. Our simulations suggest that there would be no significant qualitative differences between a system undergoing a phase transition to quark matter and purely hadronic mergers. The quantitative differences are within the spread which is found between different hadronic EoS models. This implies on the one hand that GW170817 is compatible with a possible transition to quark matter. On the other hand these considerations show that it may
机译:我们描述GW170817的多信使解释,这将产生对NS半径强大的下限。这排除了NS的使用半径比约10.7公里小,因此排除了非常柔软的核物质。我们强调这类约束的潜在的未来时检测变得可用。例如,一个非常类似的论证可以产生一个上界非旋转NS的最大质量。我们还讨论了NS兼并,其经历一阶阶段过渡到夸克物质的模拟。我们指出一个不同的动力学行为。考虑到引力波信号,我们确定在NS兼并的QCD相变的明确标志。我们表明,夸克物质通过强大的一阶相变合并导致的主导购并频率的特性改变时发生。如果它是相对于预计用于纯粹强子的EoS模型合并后频率的频移是指示用于在相变。几个100Hz的非常强的偏差在潮汐变形和合并后的频率之间的否则密封关系观察混合EOSS。在未来事件的潮汐变形将与从合并前阶段足够的精度来推断,而主导合并后频率可以当电流检测器达到,在未来几年内的高频范围内的更高的灵敏度来获得。最后,我们地址NS并购的电磁对口一阶相变的潜在影响。我们的模拟表明,将有发生相变到夸克物质和纯粹强子合并系统之间没有显著质的差别。定量差异是其不同的强子EOS系列之间找到了内蔓延。这意味着,一方面是GW170817是有可能过渡到夸克物质兼容。在另一方面,这些因素表明,它可能

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