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Thermodynamics of the self-gravitating ring model.

We present the phase diagram, in both the microcanonical and the canonical ensemble, of the self-gravitating-ring (SGR) model, which describes the motion of equal point masses constrained on a ring and subject to 3D gravitational attraction. If the interaction is regularized at short distances by the introduction of a softening parameter, a global entropy maximum always exists, and thermodynamics is well defined in the mean-field limit. However, ensembles are not equivalent and a phase of negative specific heat in the microcanonical ensemble appears in a wide intermediate energy region, if the softening parameter is small enough. The phase transition changes from second to first order at a tricritical point, whose location is not the same in the two ensembles. All these features make of the SGR model the best prototype of a self-gravitating system in one dimension. In order to obtain the stable stationary mass distribution, we apply an iterative method, inspired by a previous one used in 2D turbulence, which ensures entropy increase and, hence, convergence towards an equilibrium state.

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Binaries and core-ring structures in self-gravitating systems.

Low-energy states of self-gravitating systems with finite angular momentum are considered. A constraint is introduced to confine cores and other condensed objects within the system boundaries by gravity alone. This excludes previously observed astrophysically irrelevant asymmetric configurations with a single core. We show that, for an intermediate range of a short-distance cutoff and small angular momentum, the equilibrium configuration is an asymmetric binary. For larger angular momentum or for a smaller range of the short-distance cutoff, the equilibrium configuration consists of a central core and an equatorial ring. The mass of the ring varies between zero for vanishing rotation and the full system mass for the maximum angular momentum L(max) a localized gravitationally bound system can have. The value of L(max) scales as square root of ((ln(1/x0)), where x0 is a ratio of a short-distance cutoff range to the system size. An example of the soft gravitational potential is considered; the conclusions are shown to be valid for other forms of short-distance regularization.

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Virial theorem and dynamical evolution of self-gravitating Brownian particles in an unbounded domain. II. Inertial models.

We propose a general kinetic and hydrodynamic description of self-gravitating Brownian particles in d dimensions. We go beyond the usual approximations by considering inertial effects and finite-N effects while previous works use a mean-field approximation valid in a proper thermodynamic limit (N --> +infinity) and consider an overdamped regime (xi --> +infinity). We recover known models in some particular cases of our general description. We derive the expression of the virial theorem for self-gravitating Brownian particles and study the linear dynamical stability of isolated clusters of particles and uniform systems by using techniques introduced in astrophysics. We investigate the influence of the equation of state, of the dimension of space, and of the friction coefficient on the dynamical stability of the system. We obtain the exact expression of the critical temperature Tc for a multicomponents self-gravitating Brownian gas in d = 2. We also consider the limit of weak frictions, xi --> 0, and derive the orbit-averaged Kramers equation.

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Gravitational energy-momentum density in teleparallel gravity

In the context of a gauge theory for the translation group, a conserved energy-momentum gauge current for the gravitational field is obtained. It is a true spacetime and gauge tensor, and transforms covariantly under global Lorentz transformations. By rewriting the gauge gravitational field equation in a purely spacetime form, it becomes the teleparallel equivalent of Einstein's equation, and the gauge current reduces to the Moller's canonical energy-momentum density of the gravitational field.

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Possible direct method to determine the radius of a star from the spectrum of gravitational wave signals

We computed the spectrum of gravitational waves from a dust disk star of radius R inspiraling into a Kerr black hole of mass M and specific angular momentum a. We found that when R is much larger than the wave length of the quasinormal mode, the spectrum has several peaks and the separation of peaks Deltaomega is proportional to R-1 irrespective of M and a. This suggests that the radius of the star in coalescing binary black hole-star systems may be determined directly from the observed spectrum of gravitational waves. This also suggests that the spectrum of the radiation may give us important information in gravitational wave astronomy as in optical astronomy.

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Millisecond pulsars with r-modes as steady gravitational radiators.

Millisecond pulsars (MSPs) probably achieve their fast rotation by mass transfer from their companion stars in low-mass x-ray binaries (LMXBs). The lack of MSPs and LMXBs rotating near breakup has been attributed to the accretion torque being balanced, at fast rotation, by gravitational radiation, perhaps caused by an unstable oscillation mode. It has been argued that internal dissipation involving hyperons may cause LMXBs to evolve into a quasisteady state, with nearly constant rotation rate, temperature, and mode amplitude. We show that MSPs descending from these LMXBs spend a long time in a similar state, as extremely steady sources of gravitational waves and thermal x rays, while they spin down due to gravitational radiation and the standard magnetic torque. Observed MSP braking torques already place meaningful constraints on this scenario.

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Displacement-noise-free gravitational-wave detection.

We present a new idea that allows us to detect gravitational waves without being disturbed by any kind of displacement noise, based on the fact that gravitational waves and test-mass motions affect the propagations of light differently. We demonstrate this idea by analyzing a simple toy model consisting of three equally-separated objects on a line. By taking a certain combination of light travel times between these objects, we construct an observable free from the displacement of each object, which has a reasonable sensitivity to gravitational waves.

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Upper limits on a stochastic background of gravitational waves.

The Laser Interferometer Gravitational-Wave Observatory has performed a third science run with much improved sensitivities of all three interferometers. We present an analysis of approximately 200 hours of data acquired during this run, used to search for a stochastic background of gravitational radiation. We place upper bounds on the energy density stored as gravitational radiation for three different spectral power laws. For the flat spectrum, our limit of omega0 < 8.4 x 10(-4) in the 69-156 Hz band is approximately 10(5) times lower than the previous result in this frequency range.

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A new mechanism for gravitational-wave emission in core-collapse supernovae.

We present a new theory for the gravitational-wave signatures of core-collapse supernovae. Previous studies identified axisymmetric rotating core collapse, core bounce, postbounce convection, and anisotropic neutrino emission as the primary processes and phases for the radiation of gravitational waves. Our results, which are based on axisymmetric Newtonian supernova simulations, indicate that the dominant emission process of gravitational waves in core-collapse supernovae may be the oscillations of the protoneutron star core. The oscillations are predominantly of mode character, are excited hundreds of milliseconds after bounce, and typically last for several hundred milliseconds. Our results suggest that even nonrotating core-collapse supernovae should be visible to current LIGO-class detectors throughout the Galaxy, and depending on progenitor structure, possibly out to megaparsec distances.

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Displacement- and timing-noise-free gravitational-wave detection.

Motivated by a recently invented scheme of displacement-noise-free gravitational-wave detection, we demonstrate the existence of gravitational-wave detection schemes insusceptible to both displacement and timing (laser) noises and are thus realizable by shot-noise-limited laser interferometry. This is possible due to two reasons: first, gravitational waves and displacement disturbances contribute to light propagation times in different manners; second, for an N-detector system, the number of signal channels is of the order Omicron(N(2)), while the total number of timing- and displacement-noise channels is of the order Omicron(N).

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Disentangling gravitational, environmental, and egocentric reference frames in spatial neglect.

Previous studies in neglect patients using rotation of the body around the roll-axis revealed neglect of visual stimuli not only in the egocentric, body-centered left but also in the environmental left. The latter has been taken as evidence for a gravity-based environment-centered component of neglect occurring independently of the subject's actual body orientation. However, by using visual stimuli in a normally lightened room, the studies confounded the gravitational upright with the visible upright of the surround. Thus, it is possible that the visible upright of the environment may have served the role of the gravitational upright relative to which neglect occurred. The present experiment evaluated the influence of gravity on contralateral neglect when no visual information was presented. In complete darkness, neglect patients' exploratory eye movements were recorded in five experimental conditions: body in normal upright position, body titled 30 degrees to the left and 30 degrees to the right, and body pitched 30 degrees backward and 30 degrees forward. In the upright orientation, the patients with neglect showed a bias of ocular exploration to the ipsilesional right side. In egocentric body coordinates, we found no significant differences between the orientation of the biased search field in the different experimental conditions showing that the search field shifted with the orientation of the body. No significant decrease or enhancement of neglect was observed when body orientation was varied in the different conditions. In conclusion, the present results revealed that the modulation of gravitational forces has no significant influence on the exploratory bias of these patients. When visual information was excluded and only graviceptive information was available, the patients' failure to explore the contralesional part of space appeared purely body-centered. The results argue against a disturbed representation of space in neglect that encodes locations in a gravity-based reference system.

Aged↗

[The use of gravitation overloading in the treatment of obliterative atherosclerosis of lower extremity arteries].

The article sums up results of treatment of 152 patients with obliterating atherosclerosis of the lower extremity arteries which were exposed to 2-3 G gravitation overloading made in a centrifuge of a short radius in direction head--pelvis. The gravitation overloading in the regimen followed were not found to have negative effects of central hemodynamics. Peripheral circulation was noted to considerably improve which is confirmed: 1) by clinical data showing 2-5 times longer distance of painless walking; 2) by the data of ultrasound dopplerography manifested as larger volume rate of blood flow and regional perfusion index; 3) by thermographic explorations evidencing the recovery of the thermoprophile of the legs and feet. Thus, the application of gravitation overloading is a new effective method of conservative treatment of patients with the pathology in question.

Aged↗

The change of HSP47, collagen specific molecular chaperone, expression in rat skeletal muscle may regulate collagen production with gravitational conditions.

It is well known that unloading of skeletal muscle with spaceflight leads skeletal muscle atrophy. However, it remains unclear how the extracellular matrix within the muscle and the connective tissues such as tendon and ligament respond to reduced mechanical load including microgravity, although they have been thought to play important roles in both the transmission of force and the signal transduction between cells and tissues. Type-I collagen and type-IV collagen, both of the major components of extracellular matrix and connective tissues. We focused on change of these collagen synthesis with mechanical load. To obtain an insight into the effects of gravitational changing on the protein metabolism of collagen in skeletal muscle during mechanical unloading, reloading after unloading, we investigated changes in the amount of Heat shock protein 47 (HSP47), has been postulated to be a collagen-specific molecular chaperone localized in the ER (Nagata et al, 1992). Western blot analysis revealed that HSP47 in rat soleus muscle decreases at 5 days after hindlimb suspension (HS). On the other hand, HSP47 in rat soleus muscle increases at 5 days after hypergravity (HG) induced by the centrifugation. RT-PCR analysis showed HSP47 mRNA decreased with HS earlier, as compared with collagen type-I and type-IV mRNA. From these results, the amount of HSP47 changing by gravitational condition may effect on signal transfers in the primary stage of adaptation and the change of HSP47 expression in skeletal muscle may regulate collagen production with gravitational conditions.

Animals↗

The intrinsic electro-gravitational mechanism of life, the basis of neoplasia, and the clinical method of repair.

The fundamental intrinsic electro-gravitational (neutrino-photon-phonon transduction) mechanism of human life is proposed. The essential physico-mathematical model for chemical electromagnetic photon-phonon conversions in human systems is presented, the underpinning of which is Jacobson resonance which is represented by mc2 = Bvl coulomb. This equation sets in dual resonance gravitational potential and electromagnetic potential. Basic EM interactions occurring in human systems produce gravity waves through elastic deformation of the gravitational field, thus promulgating a monopolar wave which results in a quantized vibration of the crystalline lattices of particulate masses. An essential feature of this presentation is the demonstration of how the ultrafine interactions in the human system propagates the regulation of the atomic crystalline lattice structures of critical molecules to metabolism and segments of the bioelectric connectional system described by F. Bistolfi. Also maintained are thermonuclear fusions in the midst of genomic and mitochondrial DNA to therein maintain the integrity of growth, development and repair. Furthermore, we demonstrate how fundamental thermal noise is a concomitant manifestation with weak electric and magnetic fields being propitiated by terrestrial and inertial interactions of the human being with the geomagnetic field and flux densities permeating outer space. The finding is that the subtle forces of life and flux densities on the order of magnitude 10(-8) gauss are the critical factors in maintaining physiological homeostasis and repair when imbalance such as cancer occurs.

Electromagnetic Phenomena↗

[Gravitational surgical correction of the aggregative status of the blood in ischemic heart disease].

Gravitation surgical correction (500 sessions of gravitation plasmapheresis and thrombocytapheresis) of blood aggregation was performed in patients with myocardial infarction and unstable angina pectoris. At surgery 30% of circulating plasma was removed and substituted for rheologically active solutions and albumin. Final results of the treatment indicate a return to normal values of blood aggregation, improved hemodynamics, cardiac and visceral functions, performance and social status. Coronary disease ran more advantageous course. The correction of the internal medium in coronary heart disease using gravitation plasmapheresis promotes adaptation and removes blood material substrates responsible for emergence of pathology in the chain blood aggregation-blood rheology-myocardial function-hemodynamics. Recovery of normal functioning of the system entails improvement of related functional systems.

Blood Coagulation↗

The influence of small changes in the gravitational field on the weight regulation in female Wistar rats.

OBJECTIVE: To determine effect of small gravitational changes on weight regulation in female Wistar rats. METHOD AND RESULTS: Rats submitted to moderate increases in the gravitational field will lose weight. We increased the g force in steps between 1 and 2.5g and found an exponential correlation between weight loss and the gravitational field. The weight loss was reversible upon return to normal g force. In adult fully grown rats we found a marked 'overshooting' upon return to 1g force after a stay at 2g for 5 weeks. CONCLUSION: A hypothesis is proposed suggesting that the weight loss and regain represent the effect of regulatory mechanisms on the appetite control presumably mediated via impulses from the proprioceptive nerves in the extremities.

Animals↗

[A case of tuberculous pyothorax with retroperitoneal gravitation abscess].

A 65-year-old woman being treated under the diagnosis of pneumonia was subjected to further evaluation for right back tenderness. Chest radiography revealed a granular, net-like shadow in the right lower lung field, and right pleural thickening with pleural fluid retention. Ultrasonography demonstrated a cystic mass of uniformly low echo density, corresponding to the site of tenderness. This lesion was located on the right renal dorsal, right iliopsoas muscle ventral side. Based on CT findings of internal water density and marginal enhancement, the lesion was diagnosed as an abscess. With the suspicion of right tuberculous pyothorax with retroperitoneal gravitation abscess, puncture was attempted. The diagnosis was confirmed by the presence of Mycobacterium tuberculosis in the specimen. Antituberculosis chemotherapy was initiated, with drainage for symptom relief and lesion range definition. The abscess cavity communicated with the right pleural cavity via s stalk. The stalk path was confirmed by CT, and surgical curettage was performed. Tuberculous pyothorax with retroperitoneal gravitation abscess is rare and is not discussed in standard textbooks. In large series of cases it is not mentioned. In this patient we assumed that retroperitoneal gravitation abscess occurred as a result of the advanced state of tuberculous pyothorax.

Abdominal Abscess↗

Insect gravitational biology: ground-based and shuttle flight experiments using the beetle Tribolium castaneum.

Many of the traditional experimental advantages of insects recommend their use in studies of gravitational and space biology. The fruit fly, Drosophila melanogaster, is an obvious choice for studies of the developmental significance of gravity vectors because of the unparalleled description of regulatory mechanisms controlling oogenesis and embryogenesis. However, we demonstrate that Drosophila could not survive the conditions mandated for particular flight opportunities on the Space Shuttle. With the exception of Drosophila, the red flour beetle, Tribolium castaneum, is the insect best characterized with respect to molecular embryology and most frequently utilized for past space flights. We show that Tribolium is dramatically more resistant to confinement in small sealed volumes. In preparation for flight experiments we characterize the course and timing of the onset of oogenesis in newly eclosed adult females. Finally, we present results from two shuttle flights which indicate that a number of aspects of the development and function of the female reproductive system are not demonstrably sensitive to microgravity. Available information supports the utility of this insect for future studies of gravitational biology.

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