Measurement of the electron density and magnetic field of the solar wind using millisecond pulsars
arXiv:1202.2263 · doi:10.1111/j.1365-2966.2012.20688.x
Abstract
The magnetic field of the solar wind near the Sun is very difficult to measure directly. Measurements of Faraday rotation of linearly polarized radio sources occulted by the solar wind provide a unique opportunity to estimate this magnetic field, and the technique has been widely used in the past. However Faraday rotation is a path integral of the product of electron density and the projection of the magnetic field on the path. The electron density near the Sun can be measured by several methods, but it is quite variable. Here we show that it is possible to measure the path integrated electron density and the Faraday rotation simultaneously at 6-10 using millisecond pulsars as the linearly polarized radio source. By analyzing the Faraday rotation measurements with and without the simultaneous electron density observations we show that these observations significantly improve the accuracy of the magnetic field estimates.
6 pages, 5 figures, accepted by MNRAS
References in corpus (7)
- PSRCHIVE and PSRFITS An Open Approach to Radio Pulsar Data Storage and Analysis
- Dispersion Measure Variations and their Effect on Precision Pulsar Timing
- The Strength and Radial Profile of Coronal Magnetic Field from the Standoff Distance of a CME-driven Shock
- Polarization observations of 20 millisecond pulsars
- An improved solar wind electron-density model for pulsar timing
- Probing the Large Scale Plasma Structure of the Solar Corona with Faraday Rotation Measurements
- The Magnetic Field of the Solar Corona from Pulsar Observations
Cited by in corpus (25)
- A Repeating Fast Radio Burst
- The Parkes Pulsar Timing Array Project
- Measurement and correction of variations in interstellar dispersion in high-precision pulsar timing
- The Parkes Pulsar Timing Array Third Data Release
- A study of spatial correlations in pulsar timing array data
- The Parkes Pulsar Timing Array Project: Second data release
- Pulsar polarisation below 200 MHz: Average profiles and propagation effects
- High-fidelity radio astronomical polarimetry using a millisecond pulsar as a polarized reference source
- The impact of Solar wind variability on pulsar timing
- Electron density distribution and solar plasma correction of radio signals using MGS, MEX and VEX spacecraft navigation data and its application to planetary ephemerides
- On the usefulness of existing Solar-wind models for pulsar timing corrections
- Science with the Murchison Widefield Array: Phase I Results and Phase II Opportunities
- The NANOGrav 11-year Data Set: Solar Wind Sounding Through Pulsar Timing
- The radial profile of the inner heliospheric magnetic field as deduced from Faraday rotation observations
- The NANOGrav 12.5-Year Data Set: Polarimetry and Faraday Rotation Measures from Observations of Millisecond Pulsars with the Green Bank Telescope
- Physical Conditions of Coronal Plasma at the transit of a Shock driven by a Coronal Mass Ejection
- VLA Measurements of Faraday Rotation through Coronal Mass Ejections
- Bayesian Solar Wind Modeling with Pulsar Timing Arrays
- Measurements of Coronal Faraday Rotation at 4.6 Solar Radii
- Pulsar Observations at Low Frequencies: Applications to Pulsar Timing and Solar Wind Models
- Detection of strong scattering close to the eclipse region of PSR B1957+20
- Using Coordinated Observations in Polarised White Light and Faraday Rotation to Probe the Spatial Position and Magnetic Field of an Interplanetary Sheath
- Determination of the Coronal and Interplanetary Magnetic-Field Strength and Radial Profiles from the Large-Scale Photospheric Magnetic Fields
- Correcting for the solar wind in pulsar timing observations: the role of simultaneous a nd l ow-frequency observations
- The Timing Residual Patterns Due to Pulsar Acceleration