论文标题

Glisse:具有应用于轨道稳定性计算的GPU优化的行星系统集成器

GLISSE: A GPU-optimized planetary system integrator with application to orbital stability calculations

论文作者

Zhang, Kevin, Gladman, Brett J.

论文摘要

我们提出了一个专门针对行星系统中小体稳定性计算的GPU加速数值集成符。具体而言,集成剂的设计是针对长时间(数百万轨道)需要遵循大量测试粒子(数十万或数十万)的情况,以评估其最初“无处不在”轨道的轨道稳定性。 GLISSE(GPU的太阳系演变长期集成器)代码实现了几种优化,以实现与在CPU上运行相同代码的大约提高100速度的系数。我们解释了如何通过仔细的代码设计来避免各种硬件速度瓶颈,尽管其中一些选择将使用限制在特定类型的应用程序中。 作为第一个应用,我们研究了小体最初在天王星和海王星之间的轨道上的长期稳定性。我们详细绘制了相位空间的一小部分,其中小物体可以生存45亿年的进化;整合大量粒子的能力使我们能够首次识别不稳定性诱导的平均动作共振如何急剧定义稳定区域。作为第二个应用程序,我们绘制了5:2和3:1的平均动作共振中的4个GYR稳定性或透射对象的边界,这表明长期扰动消除了最初稳定的Neptune跨成员。

We present a GPU-accelerated numerical integrator specifically optimized for stability calculations of small bodies in planetary systems. Specifically, the integrator is designed for cases when large numbers of test particles (tens or hundreds of thousands) need to be followed for long durations (millions of orbits) to assess the orbital stability of their initially "close-encounter free" orbits. The GLISSE (Gpu Long-term Integrator for Solar System Evolution) code implements several optimizations to achieve a roughly factor of 100 speed increase over running the same code on a CPU. We explain how various hardware speed bottlenecks can be avoided by the careful code design, although some of the choices restrict the usage to specific types of application. As a first application, we study the long-term stability of small bodies initially on orbits between Uranus and Neptune. We map out in detail the small portion of the phase space in which small bodies can survive for 4.5 billion years of evolution; the ability to integrate large numbers of particles allow us to identify for the first time how instability-inducing mean-motion resonance overlaps sharply define the stable regions. As a second application, we map the boundaries of 4 Gyr stability or transneptunian objects in the 5:2 and 3:1 mean-motion resonances, demonstrating that long-term perturbations remove the initially stable Neptune-crossing members.

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