论文标题
二进制进化,重力 - 合并和富含气体的爆炸性瞬变
Binary evolution, gravitational-wave mergers and explosive transients in multiple-populations gas-enriched globular-clusters
论文作者
论文摘要
大多数球状簇(GC)都显示出多个恒星种群的证据,这表明发生了几种不同的恒星形成事件。观察到的第二个人群(2p)恒星的大部分需要一个非常大的2p气态质量才能积聚在簇芯中以形成这些恒星。因此,在形成后来的人群之前,簇核中的第一批恒星(1p)必须嵌入2p气体中。在这里,我们探讨了多个人群GC的环境2P气态培养基中二进制的演变。我们主要专注于黑洞二进制文件,并遵循它们的进化,因为它们从宽的二进制室发展到短时间,通过与环境气体的互动,然后是引力波(GW)主导的灵感和合并。我们显示,这种新颖的GW-Merger频道可以为GW源的生产提供重大贡献。我们考虑了各种假设和初始条件,并计算了由于气体催化的GW诱因而导致的气体介导的二进制群体变化以及预期的合并率。对于合理的条件和假设,我们发现Aligo可观察到的预期GW合并率,最多可达几十$ \ rm {gpc^{ - 3} yr^{ - 1}} $,以及我们各种型号的总体范围,$ 0.08-25.51 \ \ \ \ \ \ \ \ rm rm rm {最后,我们的结果表明,GC早期阶段的条件和二进制特性可能会受到气体相互作用的严重影响,并且可能需要在GC的当前建模中进行重大修订。
Most globular clusters (GCs) show evidence for multiple stellar populations, suggesting the occurrence of several distinct star-formation episodes. The large fraction of second population (2P) stars observed requires a very large 2P gaseous mass to have accumulated in the cluster core to form these stars. Hence the first population of stars (1P) in the cluster core has had to become embedded in 2P gas, just prior to the formation of later populations. Here we explore the evolution of binaries in ambient 2P gaseous media of multiple-population GCs. We mostly focus on black hole binaries and follow their evolution as they evolve from wide binaries towards short periods through interaction with ambient gas, followed by gravitational-wave (GW) dominated inspiral and merger. We show this novel GW-merger channel could provide a major contribution to the production of GW-sources. We consider various assumptions and initial conditions and calculate the resulting gas-mediated change in the population of binaries and the expected merger rates due to gas-catalyzed GW-inspirals. For plausible conditions and assumptions, we find an expected GW merger rate observable by aLIGO of the order of up to a few tens of $\rm{Gpc^{-3} yr^{-1}}$, and an overall range for our various models of $0.08-25.51 \ \rm{Gpc^{-3} yr^{-1}}$. Finally, our results suggest that the conditions and binary properties in the early stage of GCs could be critically affected by gas-interactions and may require a major revision in the current modeling of the evolution of GCs.