22,556 research outputs found
Long Time Evolution of Phase Oscillator Systems
It is shown, under weak conditions, that the dynamical evolution of an
important class of large systems of globally coupled, heterogeneous frequency,
phase oscillators is, in an appropriate physical sense, time-asymptotically
attracted toward a reduced manifold of system states. This manifold, which is
invariant under the system evolution, was previously known and used to
facilitate the discovery of attractors and bifurcations of such systems. The
result of this paper establishes that attractors for the order parameter
dynamics obtained by restriction to this reduced manifold are, in fact, the
only such attractors of the full system. Thus all long time dynamical behavior
of the order parameters of these systems can be obtained by restriction to the
reduced manifold.Comment: Improved discussion of Eqs. (28)- (30) Corrected typos. Made notation
consisten
Radioactive nuclei from cosmochronology to habitability
In addition to long-lived radioactive nuclei like U and Th isotopes, which
have been used to measure the age of the Galaxy, also radioactive nuclei with
half-lives between 0.1 and 100 million years (short-lived radionuclides, SLRs)
were present in the early Solar System (ESS), as indicated by high-precision
meteoritic analysis. We review the most recent meteoritic data and describe the
nuclear reaction processes responsible for the creation of SLRs in different
types of stars and supernovae. We show how the evolution of radionuclide
abundances in the Milky Way Galaxy can be calculated based on their stellar
production. By comparing predictions for the evolution of galactic abundances
to the meteoritic data we can build up a time line for the nucleosynthetic
events that predated the birth of the Sun, and investigate the lifetime of the
stellar nursery where the Sun was born. We then review the scenarios for the
circumstances and the environment of the birth of the Sun within such a stellar
nursery that have been invoked to explain the abundances in the ESS of the SLRs
with the shortest lives - of the order of million years or less. Finally, we
describe how the heat generated by radioactive decay and in particular by the
abundant 26Al in the ESS had important consequences for the thermo-mechanical
and chemical evolution of planetesimals, and discuss possible implications on
the habitability of terrestrial-like planets. We conclude with a set of open
questions and future directions related to our understanding of the
nucleosynthetic processes responsible for the production of SLRs in stars,
their evolution in the Galaxy, the birth of the Sun, and the connection with
the habitability of extra-solar planets.Comment: Review published in Progress in Particle and Nuclear Physics. The
article is being published Open Access, access to the full article is not
restricted in any way. Please download the final version of the paper at
https://doi.org/10.1016/j.ppnp.2018.05.00
The Role of Turbulence in Neutrino-Driven Core-Collapse Supernova Explosions
The neutrino-heated "gain layer" immediately behind the stalled shock in a
core-collapse supernova is unstable to high-Reynolds-number turbulent
convection. We carry out and analyze a new set of 19 high-resolution
three-dimensional (3D) simulations with a three-species neutrino
leakage/heating scheme and compare with spherically-symmetric (1D) and
axisymmetric (2D) simulations carried out with the same methods. We study the
postbounce supernova evolution in a - progenitor star and vary the
local neutrino heating rate, the magnitude and spatial dependence of
asphericity from convective burning in the Si/O shell, and spatial resolution.
Our simulations suggest that there is a direct correlation between the strength
of turbulence in the gain layer and the susceptability to explosion. 2D and 3D
simulations explode at much lower neutrino heating rates than 1D simulations.
This is commonly explained by the fact that nonradial dynamics allows accreting
material to stay longer in the gain layer. We show that this explanation is
incomplete. Our results indicate that the effective turbulent ram pressure
exerted on the shock plays a crucial role by allowing multi-D models to explode
at a lower postshock thermal pressure and thus with less neutrino heating than
1D models. We connect the turbulent ram pressure with turbulent energy at large
scales and in this way explain why 2D simulations are erroneously exploding
more easily than 3D simulations.Comment: 13 pages, 8 figures, accepted by Ap
Claudins in the Renal Collecting Duct
The renal collecting duct fine-tunes urinary composition, and thereby, coordinates key physiological processes, such as volume/blood pressure regulation, electrolyte-free water reabsorption, and acid-base homeostasis. The collecting duct epithelium is comprised of a tight epithelial barrier resulting in a strict separation of intraluminal urine and the interstitium. Tight junctions are key players in enforcing this barrier and in regulating paracellular transport of solutes across the epithelium. The features of tight junctions across different epithelia are strongly determined by their molecular composition. Claudins are particularly important structural components of tight junctions because they confer barrier and transport properties. In the collecting duct, a specific set of claudins (Cldn-3, Cldn-4, Cldn-7, Cldn-8) is expressed, and each of these claudins has been implicated in mediating aspects of the specific properties of its tight junction. The functional disruption of individual claudins or of the overall barrier function results in defects of blood pressure and water homeostasis. In this concise review, we provide an overview of the current knowledge on the role of the collecting duct epithelial barrier and of claudins in collecting duct function and pathophysiology
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