Bayesian Solar Wind Modeling with Pulsar Timing Arrays
arXiv:2111.09361 · doi:10.3847/1538-4357/ac5829
Abstract
Using Bayesian analyses we study the solar electron density with the NANOGrav 11-year pulsar timing array (PTA) dataset. Our model of the solar wind is incorporated into a global fit starting from pulse times-of-arrival. We introduce new tools developed for this global fit, including analytic expressions for solar electron column densities and open source models for the solar wind that port into existing PTA software. We perform an ab initio recovery of various solar wind model parameters. We then demonstrate the richness of information about the solar electron density, , that can be gleaned from PTA data, including higher order corrections to the simple model associated with a free-streaming wind (which are informative probes of coronal acceleration physics), quarterly binned measurements of and a continuous time-varying model for spanning approximately one solar cycle period. Finally, we discuss the importance of our model for chromatic noise mitigation in gravitational-wave analyses of pulsar timing data and the potential of developing synergies between sophisticated PTA solar electron density models and those developed by the solar physics community.
22 pages, 7 figures, Submitted to ApJ
References in corpus (25)
- Array Programming with NumPy
- The NANOGrav 12.5-year Data Set: Search For An Isotropic Stochastic Gravitational-Wave Background
- Tempo2, a new pulsar timing package. II: The timing model and precision estimates
- On measuring the gravitational-wave background using Pulsar Timing Arrays
- PINT: A Modern Software Package for Pulsar Timing
- The NANOGrav 12.5 yr Data Set: Observations and Narrowband Timing of 47 Millisecond Pulsars
- New advances in the Gaussian-process approach to pulsar-timing data analysis
- The NANOGrav 12.5-year Data Set: Wideband Timing of 47 Millisecond Pulsars
- Identifying and mitigating noise sources in precision pulsar timing data sets
- A pulsar-based timescale from the International Pulsar Timing Array
- The NANOGrav Nine-Year Data Set: Excess Noise in Millisecond Pulsar Arrival Times
- Modeling the uncertainties of solar-system ephemerides for robust gravitational-wave searches with pulsar timing arrays
- The CHIME Pulsar Project: System Overview
- An improved solar wind electron-density model for pulsar timing
- A Measurement Model for Precision Pulsar Timing
- The impact of Solar wind variability on pulsar timing
- The Parallax and Proper Motion of PSR J0030+0451
- On the usefulness of existing Solar-wind models for pulsar timing corrections
- Pulsar Timing Errors from Asynchronous Multi-Frequency Sampling of Dispersion Measure Variations
- A new 3D solar wind speed and density model based on interplanetary scintillation
- Weighing The Evidence For A Gravitational-Wave Background In The First International Pulsar Timing Array Data Challenge
- Pulsar Observations at Low Frequencies: Applications to Pulsar Timing and Solar Wind Models
- Correcting for the solar wind in pulsar timing observations: the role of simultaneous a nd l ow-frequency observations
- Precision Timing of PSR J0437-4715 with the IAR Observatory and Implications for Low-Frequency Gravitational Wave Source Sensitivity
- Exploring the Asymmetry of the Solar Corona Electron Density with Very Long Baseline Interferometry
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- The NANOGrav 15-year Data Set: Evidence for a Gravitational-Wave Background
- The Parkes Pulsar Timing Array Third Data Release
- The gravitational-wave background null hypothesis: Characterizing noise in millisecond pulsar arrival times with the Parkes Pulsar Timing Array
- The NANOGrav 15-Year Data Set: Detector Characterization and Noise Budget
- The MeerKAT Pulsar Timing Array: The -year data release and the noise and stochastic signals of the millisecond pulsar population
- Accurate characterization of the stochastic gravitational-wave background with pulsar timing arrays by likelihood reweighting
- Exploring the time variability of the Solar Wind using LOFAR pulsar data
- Posterior predictive checking for gravitational-wave detection with pulsar timing arrays: II. Posterior predictive distributions and pseudo Bayes factors
- Choosing suitable noise models for nanohertz gravitational-wave astrophysics
- Bayesian pulsar timing and noise analysis with Vela.jl: an overview
- A Simultaneous Dual-Frequency Scintillation Arc Survey of Six Bright Canonical Pulsars Using the Upgraded Giant Metrewave Radio Telescope
- Rapid Construction of Joint Pulsar Timing Array Datasets: The Lite Method
- The NANOGrav 15 yr Data Set: Customized Chromatic Noise Models