Search arXivSearch

arXiv · astro-ph/0304495

The Brightest Pulses in the Universe: Multifrequency Observations of the Crab Pulsar's Giant Pulses

Abstract

We analyze the Crab pulsar at ten frequencies from 0.43 to 8.8 GHz using data obtained at the Arecibo Observatory. Giant pulses occur only in the main and interpulse components manifest from radio frequencies to gamma-ray energies. Individual giant pulses reach brightness temperatures of at least $10^{32}$K in our data, which do not resolve the narrowest pulses, and are known to reach $10^{37}$K in nanosecond-resolution observations (Hankins et al 2003). Giant pulses are therefore the brightest known in the observable universe and represent an important milestone for theories of the pulsar emission mechanism to explain. Their short durations allow them to serve as especially sensitive probes of the Crab Nebula and the interstellar medium. We analyze frequency structure in individual giant pulses using a scintillating, amplitude-modulated,polarized shot-noise model. The frequency structure associated with multipath propagation decorrelates on a time scale of 25 sec at 1.5 GHz, which requires that multipath propagation be strongly influenced by material within the Crab Nebula. Additional frequency structure decorrelates faster than one spin period, as would be expected from the shot-noise pattern of nanosecond duration pulses emitted by the pulsar. Taking into account the Crab pulsar's locality inside a bright supernova remnant, we conclude that the brightest pulse in a typical 1-hour observation would be most easily detectable in our lowest frequency band (0.43 GHz) to a distance of 1.6 Mpc. We also discuss the detection of such pulses using future instruments such as LOFAR and the SKA.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J. M. Cordes, N. D. R. Bhat, T. H. Hankins, M. A. McLaughlin, J. Kern. 2003-04-28. The Brightest Pulses in the Universe: Multifrequency Observations of the Crab Pulsar's Giant Pulses. https://doi.org/10.1086/422495

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Cosmic Conundrums with Quantum Corrections

Darh energy was discovered over 25 years ago and we do not have an explanation of it. Dark matter comprises 95% of matter in the universe and we still don't know what it is. The Webb telescope has been finding fully formed galaxies with massive black holes millions of times the mass of the sun in the early universe and we don't have any explanation. A quantum density limitation will be used to solve these and other outstanding problems.

astro-ph

On binary pulsars and the force of gravity

The energy-momentum budget of the astrophysical systems can be studied by the exact local conservation equation derived by Landau and Lifshitz. We show that a similar equation is valid for the Einstein-Cartan gravity. We reanalyze a binary pulsar system using the Landau-Lifshitz conservation equation and show that the orbital period change rate can be completely understood as a curvature backreaction process. Taking into account the detailed theoretical and observational research of relativistic binary pulsar systems, especially the system of Hulse and Taylor, we conclude that general relativity and astrophysical observations rule out the existence of gravitational radiation. We comment upon the LIGO GW events and their alternative explanation, as well as the recent pulsar timing arrays data.

astro-ph

Oscillation frequencies and mode lifetimes in alpha Centauri A

We analyse our recently-published velocity measurements of alpha Cen A (Butler et al. 2004). After adjusting the weights on a night-by-night basis in order to optimize the window function to minimize sidelobes, we extract 42 oscillation frequencies with l=0 to 3 and measure the large and small frequency separations. We give fitted relations to these frequencies that can be compared with theoretical models and conclude that the observed scatter about these fits is due to the finite lifetimes of the oscillation modes. We estimate the mode lifetimes to be 1-2 d, substantially shorter than in the Sun.

astro-ph