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String theory suggests the existence of a minimum length scale. An exciting quantum mechanical implication of this feature is a modification of the uncertainty principle. In contrast to the conventional approach, this generalised uncertainty principle does not allow to resolve space time distances below the Planck length. In models with extra dimensions, which are also motivated by string theory, the Planck scale can be lowered to values accessible by ultra high energetic cosmic rays (UHECRs) and by future colliders, i.e. M f approximately equal to 1 TeV. It is demonstrated that in this novel scenario, short distance physics below 1/M f is completely cloaked by the uncertainty principle. Therefore, Planckian effects could be the final physics discovery at future colliders and in UHECRs. As an application, we predict the modifications to the e+ e- to f+ f- cross-sections.
A new chiral SU(3) Lagrangian is proposed to describe the properties of kaons and anti-kaons in the nuclear medium. The saturation properties of nuclear matter are reproduced as well as the results of the Dirac-Brückner theory. After introducing the coupling between the omega meson and the kaon, our results for e ective kaon and anti-kaon energy are quite similar as calculated in the one-boson-exchange model.
A new chiral SU(3) Lagrangian is proposed to describe the properties of kaons and antikaons in the nuclear medium, the ground state of dense matter and the kaon-nuclear interactions consistently. The saturation properties of nuclear matter are reproduced as well as the results of the Dirac-Brückner theory. After taking into account the coupling between the omega meson and the kaon, we obtain similar results for the e ective kaon and antikaon energies as calculated in the one-boson-exchange model while in our model the parameters of the kaon-nuclear interactions are constrained by the SU(3) chiral symmetry. PACS number(s): 14.40.Aq, 12.39.Fe, 21.30.Fe
Nonequilibrium models (three-fluid hydrodynamics, UrQMD, and quark molecular dynamics) are used to discuss the uniqueness of often proposed experimental signatures for quark matter formation in relativistic heavy ion collisions from the SPS via RHIC to LHC. It is demonstrated that these models - although they do treat the most interesting early phase of the collisions quite differently (thermalizing QGP vs. coherent color fields with virtual particles) -- all yield a reasonable agreement with a large variety of the available heavy ion data. Hadron/hyperon yields, including J/Psi meson production/suppression, strange matter formation, dileptons, and directed flow (bounce-off and squeeze-out) are investigated. Observations of interesting phenomena in dense matter are reported. However, we emphasize the need for systematic future measurements to search for simultaneous irregularities in the excitation functions of several observables in order to come close to pinning the properties of hot, dense QCD matter from data. The role of future experiments with the STAR and ALICE detectors is pointed out.
String theory suggests the existence of a minimum length scale. An exciting quantum mechanical implication of this feature is a modification of the uncertainty principle. In contrast to the conventional approach, this generalised uncertainty principle does not allow to resolve space–time distances below the Planck length. In models with extra dimensions, which are also motivated by string theory, the Planck scale can be lowered to values accessible by ultra high energetic cosmic rays (UHECRs) and by future colliders, i.e., Mf≈ 1 TeV. It is demonstrated that in this novel scenario, short distance physics below 1/Mf is completely cloaked by the uncertainty principle. Therefore, Planckian effects could be the final physics discovery at future colliders and in UHECRs. As an application, we predict the modifications to the e+e−→f+f− cross-sections.
Die auf dem ACDM-Modell beruhenden numerischen Simulationen der gravitativen Strukturbildung sind auf Skalen M >> 10 hoch 10 M sehr erfolgreich, insbesondere konvergieren die Verfahren hinsichtlich des vorhergesagten Masseanteils der Halos an der Gesamtmasse von Galaxien. Jedoch konvergieren die Simulationen nicht bezüglich der lokalen Überdichten von CDM in den Halos, vielmehr setzt sich gravitative Strukturbildung auf immer kleinere Skalen fort. Numerisch kann keine Massen-Schwelle berechnet werden, unterhalb derer keine CDM-Strukturen mehr gravitativ gebildet werden. Die Kenntnis der lokalen Überdichten in den CDM-Wolken und die Verteilung der CDM-Wolken ist jedoch für Experimente zum direkten und indirekten Nachweis von CDM-Teilchen essentiell. Aus den lokalen Überdichten folgen für Experimente zum direkten Nachweis die einfallende Stromdichten der CDM-Teilchen und für Experimente zum indirekten Nachweis die Stromdichte der Annihilationsprodukte. Außerdem können die lokalen Überdichten als Gravitationslinsen wirken. In dieser Arbeit werden Massen Schwellen analytisch berechnet, unterhalb derer akustische Störungen in CDM nicht mehr zur gravitativen Strukturbildung beitragen können. Das Massen-Spektrum von lokalen Überdichten ist nach unten durch zwei unterschiedliche Mechanismen beschränkt: (1) Während der kinetischen Entkopplung formieren sich Nichtgleichgewichtsprozesse, die sich kollektiv als Reihungsphänomene konstituieren. Im lineare Regime sind dies die Volumenviskosität, die Scherungsviskosität und die Wärmeleitung. Die dissipativen Prozesse deponieren Energie und Impuls der akustischen Störungen in die Ebene senkrecht zur Ausbreitungsrichtung der Störungen und schmieren diese so aus. (II) Nach dem kinetischen Entkopplungsprozeß strömt CDM frei auf Geodäten. Dies ermöglicht einen Strom von Teilchen von überdichten in unterdichte Regionen, so daß die Amplituden der lokalen Überdichten weiter gedämpft werden. Die lokalen Transportkoeffizienten in (1) werden durch einen legitimen Vergleich von hydrodynamischer und kinetischer Beschreibung schwach dissipativer Prozesse gewonnen. Dissipative Prozesse induzieren eine Dämpfungsmasse Mc ungefähr gleich 10 hoch minus 9 M in SUSY-CDM und beschränken damit das Spektrum akustischer Störungen in SUSY-CDM. Freies Strömen (II) von CDM-Teilchen auf Geodäten induziert eine weitere Dämpfungsmasse M fs ungefähr gleich 10 hoch minus 6 M in SUSY-CDM, wobei das berechnete M d als Anfangswert dient. Die berechneten Schwellen liefern konsistente Schranken für numerische Simulationen, die weit unterhalb des momentanen numerischen Auflösungsvermögens liegen. Weiterhin folgt aus den Schwellen die Masse der ersten rein gravitativ gebundenen CDM-Wolken. Aus diesen bilden sich im Rahmen der hierarchischen Strukturbildung größere Substrukturen bis hin zu den heute vorhandenen CDM-Halos.
The quark-molecular-dynamics model is used to study microscopically the dynamics of the coloured quark phase and the subsequent hadron formation in relativistic S+Au collisions at the CERN-SPS. Particle spectra and hadron ratios are compared to both data and the results of hadronic transport calculations. The non-equilibrium dynamics of hadronization and the loss of correlation among quarks are studied.
A microscopic model of deconfined matter based on color interactions between semi-classical quarks is studied. A hadronization mechanism is imposed to examine the properties and the disassembly of a thermalized quark plasma and to investigate the possible existence of a phase transition from quark matter to hadron matter.
The lightest supersymmetric particle, most likely the lightest neutralino, is one of the most prominent particle candidates for cold dark matter (CDM). We show that the primordial spectrum of density fluctuations in neutralino CDM has a sharp cut-off, induced by two different damping mechanisms. During the kinetic decoupling of neutralinos, non-equilibrium processes constitute viscosity effects, which damp or even absorb density perturbations in CDM. After the last scattering of neutralinos, free streaming induces neutralino flows from overdense to underdense regions of space. Both damping mechanisms together define a minimal mass scale for perturbations in neutralino CDM, before the inhomogeneities enter the non- linear epoch of structure formation. We find that the very first gravitationally bound neutralino clouds ought to have masses above 10-6M , which is six orders of magnitude above the mass of possible axion miniclusters.
The lightest supersymmetric particle, most likely the neutralino, might account for a large fraction of dark matter in the Universe.We show that the primordial spectrum of density fluctuations in neutralino cold dark matter (CDM) has a sharp cut-off due to two damping mechanisms: collisional damping during the kinetic decoupling of the neutralinos at (10 MeV) and free streaming after last scattering of neutralinos. The cut-off in the primordial spectrum defines a minimal mass for CDM objects in hierarchical structure formation. For typical neutralino and sfermion masses the first gravitionally bound neutralino clouds have masses above 10 -6 M .