30,632 research outputs found
A Simple Transition-Free Lattice of an 8 Gev Proton Synchrotron
A transition-free lattice is a basic requirement of a high-intensity
medium-energy (several GeV) proton synchrotron in order to eliminate beam
losses during transition crossing. An 8 GeV synchrotron is proposed as a
principal component in an alternative hybrid design of Project-X [1]. This
machine would be housed in the Fermilab antiproton source enclosure replacing
the present Debuncher. A simple doublet lattice with high transition gamma has
been designed. It uses just one type of dipoles and one type of quadrupoles (QF
and QD are of the same length). It has no transition crossing. It has a
triangular shape with three zero dispersion straight sections, which can be
used for injection, extraction, RF and collimators. The beta-functions and
dispersion are low. This lattice has plenty of free space for correctors and
diagnostic devices, as well as good optical properties including large dynamic
aperture, weak dependence of lattice functions on amplitude and momentum
deviation.Comment: 3 pages, 2 figures, presentation at the 2009 Particle Accelerator
Conference PAC0
A unified approach to one-dimensional elastic waves by the method of characteristics
Unified approach to one-dimensional elastic waves by method of characteristic
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Status of the proton driver study at Fermilab
In order to enhance Fermilab hadron research program and to provide a proton source to a future muon storage ring or a muon collider, the study of a new high intensity proton ma-chine called the Proton Driver is being pursued at Fermilab. It would replace the present linac and 8 GeV Booster and produce 20 times the proton intensity as the Booster. This paper gives a status report on a number of design issues of this machine
Reduction of the radar cross section of arbitrarily shaped cavity structures
The problem of the reduction of the radar cross section (RCS) of open-ended cavities was studied. The issues investigated were reduction through lossy coating materials on the inner cavity wall and reduction through shaping of the cavity. A method was presented to calculate the RCS of any arbitrarily shaped structure in order to study the shaping problem. The limitations of this method were also addressed. The modal attenuation was studied in a multilayered coated waveguide. It was shown that by employing two layers of coating, it was possible to achieve an increase in both the magnitude of attenuation and the frequency band of effectiveness. The numerical method used in finding the roots of the characteristic equation breaks down when the coating thickness is very lossy and large in terms of wavelength. A new method of computing the RCS of an arbitrary cavity was applied to study the effects of longitudinal bending on RCS reduction. The ray and modal descriptions for the fields in a parallel plate waveguide were compared. To extend the range of validity of the Shooting and Bouncing Ray (SBR) method, the simple ray picture must be modified to account for the beam blurring
Finite-size effect of antiferromagnetic transition and electronic structure in LiFePO4
The finite-size effect on the antiferromagnetic (AF) transition and
electronic configuration of iron has been observed in LiFePO4. Determination of
the scaling behavior of the AF transition temperature (TN) versus the
particle-size dimension (L) in the critical regime 1-TN(L)/TN(XTL)\simL^-1
reveals that the activation nature of the AF ordering strongly depends on the
surface energy. In addition, the effective magnetic moment that reflects the
electronic configuration of iron in LiFePO4 is found to be sensitive to the
particle size. An alternative structural view based on the polyatomic ion
groups of (PO4)3- is proposed.Comment: To be published in Phys. Rev. B - Rapid Communicatio
The NASA-IGES geometry data visualizer
NIGESview, an interactive software tool for reading, viewing, and translating geometry data available in the Initial Graphics Exchange Specification (IGES) format, is described. NIGESview is designed to read a variety of IGES entities, translate some of the entities, graphically view the data, and output a file in a specific IGES format. The software provides a modern graphical user interface and is designed in a modular fashion so developers can utilize all or part of the code in their grid generation software for computational fluid dynamics
Temporal Dynamics of Photon Pairs Generated by an Atomic Ensemble
The time dependence of nonclassical correlations is investigated for two
fields (1,2) generated by an ensemble of cold Cesium atoms via the protocol of
Duan et al. [Nature Vol. 414, p. 413 (2001)]. The correlation function R(t1,t2)
for the ratio of cross to auto-correlations for the (1,2) fields at times
(t1,t2) is found to have a maximum value Rmax=292(+-)57, which significantly
violates the Cauchy-Schwarz inequality R<=1 for classical fields. Decoherence
of quantum correlations is observed over 175 ns, and is described by our model,
as is a new scheme to mitigate this effect.Comment: 5 pages, 5 figure
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