论文标题

通过燃气辅助捕获及对恒星,行星和紧凑对象进化的影响二进制形成

Binary formation through gas-assisted capture and the implications for stellar, planetary and compact-object evolution

论文作者

Rozner, Mor, Generozov, Aleksey, Perets, Hagai B.

论文摘要

二元系统无处不在,它们的形成需要两体相互作用和耗散。在气态介质中,两个最初未结合的物体之间的相互作用可能导致气体辅助的二进制形成,这是由于对环境气体介质失去动能而引起的。在这里,我们通过分析通过气体动力摩擦耗散来分析气体辅助二元捕获标准。我们通过少量的模拟对它们进行验证,并在不同的气体环境中探索这一过程:气体装饰的恒星形成区域(SFR),富含气体的球状簇,AGN磁盘和原行星盘。我们发现,气体辅助二进制捕获在SFR中高效,有可能为形成二进制的主要通道提供了效率。它也可以在富含气体的球状簇中在某些条件下运行。薄的AGN磁盘还可以为燃气辅助二进制捕获提供肥沃的地面,尤其是黑洞/其他紧凑型物体二进制物的形成,重力波(GW)(GW)和其他高能瞬变。大规模的气态磁盘可能太厚而无法实现气体辅助二进制捕获,并且先前对GW源生产的估计值可能被高估,并且对特定条件和磁盘的结构敏感。在原星盘中,虽然二元捕获的二进制捕获可以产生二元kbos,但小行星动态摩擦可能会更有效。总体而言,我们表明,气体辅助的二进制形成是强大的,并且可以在许多环境中对二元形成率产生重大贡献。实际上,气体辅助的二进制捕获率足够高,以至于它们会导致多次攻击,并形成较高的多样性系统。

Binary systems are ubiquitous and their formation requires two-body interaction and dissipation. In gaseous media, interactions between two initially unbound objects could result in gas-assisted binary formation, induced by a loss of kinetic energy to the ambient gas medium. Here we derive analytically the criteria for gas-assisted binary capture through gas dynamical friction dissipation. We validate them with few-body simulations and explore this process in different gas-rich environments: gas-embedded star-forming regions (SFR), gas-enriched globular clusters, AGN disks and protoplanetary-disks. We find that gas-assisted binary capture is highly efficient in SFRs, potentially providing a main channel for the formation of binaries. It could also operate under certain conditions in gas-enriched globular clusters. Thin AGN disks could also provide a fertile ground for gas-assisted binary capture and in particular the formation of black-hole/other compact object binaries, the production of gravitational-wave (GW) and other high-energy transients. Large-scale gaseous disks might be too thick to enable gas-assisted binary capture and previous estimates of the production of GW-sources could be overestimated, and sensitive to specific conditions and the structure of the disks. In protoplanetary-disks, while gas-assisted binary capture can produce binary KBOs, dynamical friction by small planetsimals is likely to be more efficient. Overall, we show that gas-assisted binary formation is robust and can contribute significantly to the binary formation rate in many environments. In fact, the gas-assisted binary capture rates are sufficiently high such that they will lead to multicaptures, and the formation of higher multiplicity systems.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源