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PHENOMENOLOGY OF SPACE TIME FLUCTUATIONS

机译:空间时间波动的现象学

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Quantum gravitational effects may induce stochastic fluctuations in the structure of space-time, to produce a characteristic foamy structure. It has been known for some time now that these fluctuations may have observable consequences for the propagation of cosmic ray particles over cosmological distances. While invoked as a possible explanation for the detection of the puzzling cosmic rays with energies in excess of the threshold for photopion production (the so-called super-GZK particles), we demonstrate here that lower energy observations may provide strong constraints on the role of a fluctuating space-time structure. We note also that the same fluctuations, if they exist, imply that some decay reactions normally forbidden by elementary conservation laws, become kinematically allowed, inducing the decay of particles that are seen to be stable in our universe. Due to the strength of the prediction, we are led to consider this finding as the most severe constraint on the classes of models that may describe the effects of gravity on the structure of space-time. We also propose and discuss several potential loopholes of our approach, that may affect our conclusions. In particular, we try to identify the situation in which despite a fluctuating energy-momentum of the particles, the reactions mentioned above may not take place.
机译:量子重力效应可能在时空结构中诱导随机波动,以产生特征泡沫结构。现在已经知道,现在这些波动可能对宇宙射线颗粒在宇宙学距离上传播的可观察结果。虽然调用作为检测具有超出照相生产的阈值的令人难以置的宇宙射线的可能解释(所谓的超级GZK粒子),但我们在此表明​​,较低的能量观察可能为角色提供强制性的限制波动的时空结构。我们还注意到,如果存在相同的波动,暗示了基本保守法通常禁止的一些衰减反应,变得运动,诱导看到在我们宇宙中稳定的粒子的腐烂。由于预测的强度,我们被认为将这一发现是对可以描述重力对时空结构的模型的最严重的制约。我们还提出并讨论了我们方法的几个潜在漏洞,这可能会影响我们的结论。特别是,我们尝试确定尽管颗粒的能量动量波动的情况,但是可能不会发生上述反应。

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