The geometry of the double-pulsar system J0737–3039 from systematic intensity variations
- 1 April 2004
- journal article
- Published by Springer Nature in Nature
- Vol. 428 (6986) , 919-921
- https://doi.org/10.1038/nature02509
Abstract
The recent discovery of J0737-3039A & B-two pulsars in a highly relativistic orbit around one another - offers an unprecedented opportunity to study the elusive physics of pulsar radio emission. The system contains a rapidly rotating pulsar with a spin period of 22.7 ms and a slow companion with a spin period of 2.77 s, hereafter referred to as 'A' and 'B', respectively. A unique property of the system is that the pulsed radio flux from B increases systematically by almost two orders-of-magnitude during two short portions of each orbit. Here, we describe a geometrical model of the system that simultaneously explains the intensity variations of B and makes definitive and testable predictions for the future evolution of the emission properties of both stars. Our model assumes that B's pulsed radio flux increases when illuminated by emission from A. This model provides constraints on the spin axis orientation and emission geometry of A and predicts that its pulse profile will evolve considerably over the next several years due to geodetic precession until it disappears entirely in 15-20 yearsKeywords
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This publication has 10 references indexed in Scilit:
- Orientations of Spin and Magnetic Dipole Axes of Pulsars in the J0737-3039 Binary Based on Polarimetry Observations at the Green Bank TelescopeThe Astrophysical Journal, 2004
- Green Bank Telescope Observations of the Eclipse of Pulsar "A" in the Double Pulsar Binary PSR J0737-3039The Astrophysical Journal, 2004
- Green Bank Telescope Measurement of the Systemic Velocity of the Double Pulsar Binary J0737-3039 and Implications for Its FormationThe Astrophysical Journal, 2004
- A Double-Pulsar System: A Rare Laboratory for Relativistic Gravity and Plasma PhysicsScience, 2004
- General Relativistic Geodetic Spin Precession in Binary Pulsar B1913+16: Mapping the Emission Beam in Two DimensionsThe Astrophysical Journal, 2002
- Determination of the Geometry of the PSR B1913+16 System by Geodetic PrecessionThe Astrophysical Journal, 1998
- The Parkes Southern Pulsar Survey -- II. Final results and population analysisMonthly Notices of the Royal Astronomical Society, 1998
- The shape of pulsar radio beamsMonthly Notices of the Royal Astronomical Society, 1988
- Gravitational two-body problem with arbitrary masses, spins, and quadrupole momentsPhysical Review D, 1975
- Relativistic effects in the binary pulsar PSR 1913+16The Astrophysical Journal, 1975