Gauge boundary conditions to mitigate center-of-mass drift in BBH simulations
Abstract
Long-term numerical relativity simulations of binary black hole systems in the Spectral Einstein Code (SpEC) code exhibit an unexpected exponential drift of the center-of-mass (CoM) away from the simulation’s origin. In our work, we analyze this phenomenon and demonstrate that it is not a physical effect but rather a manifestation of a gauge artifact. The origin of this drift is the reflection of the gauge waves off the outer boundary of the computational domain. These reflections are introduced by inaccuracies in the gauge boundary condition, specifically, the application of the Sommerfeld condition to the time derivative of the gauge fields. Such an approach fails to completely suppress or correctly absorb the outgoing modes, thereby generating artificial feedback into the simulation. To mitigate this problem, we introduce a modified boundary condition that incorporates an explicit CoM correction source term designed to counteract the CoM motion. Our numerical experiments, performed with the SpEC code, reveal that this new boundary treatment reduces the CoM drift by several orders of magnitude compared to the standard implementation, and does not introduce any unwanted physical artifacts.
Copyright and License
© 2026 American Physical Society.
Acknowledgement
We thank Nils Deppe, Kyle Nelli, Himanshu Chaudhary, Qing Dai and Harald Pfeiffer for useful discussions. This work was supported in part by the Sherman Fairchild Foundation, by NSF Grants No. PHY-2309211, No. PHY-2309231, and No. OAC-2209656 at Caltech, and Grants No. PHY-2207342 and No. OAC-2209655 at Cornell. Research at Perimeter Institute is supported in part by the Government of Canada through the Department of Innovation, Science and Economic Development and by the Province of Ontario through the Ministry of Colleges and Universities. Computations for this work were preformed on the Wheeler cluster at Caltech, which is supported by the Sherman Fairchild Foundation and by Caltech, and on the Resnick High Performance Computing (HPC) Cluster at the Caltech High Performance Computing Center.
Data Availability
The data that support the findings of this article are not publicly available because they are owned by a third party and the terms of use prevent public distribution. The data are available from the authors upon reasonable request.
Files
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Additional details
Related works
- Is new version of
- Discussion Paper: arXiv:2510.25465 (arXiv)
Funding
- National Science Foundation
- PHY-2309211
- National Science Foundation
- PHY-2309231
- National Science Foundation
- OAC-2209656
- National Science Foundation
- PHY-2207342
- National Science Foundation
- OAC-2209655
- Government of Canada
- Innovation, Science and Economic Development Canada
- Ministry of Colleges and Universities
- Sherman Fairchild Foundation
Dates
- Accepted
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2026-01-15
- Available
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2026-02-06Published
Caltech Custom Metadata
- Caltech groups
- TAPIR , Walter Burke Institute for Theoretical Physics , Astronomy Department , Division of Physics, Mathematics and Astronomy (PMA) , Physics Department
- Publication Status
- Published