强CP违逆在重力的存在下被驯服

viXra Pub Date : 2020-07-01 DOI:10.31219/osf.io/6jw34
Stephane H Maes
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引用次数: 19

摘要

在多重宇宙中,引力通过多重机制从纠缠中产生。结果,在纠缠的粒子之间出现了类似引力的效应,它们是真实的还是虚拟的。远距离无质量引力是由无质量虚粒子的纠缠产生的。大质量虚粒子的纠缠导致在非常小的尺度上产生巨大的引力贡献。多重折叠机制也导致了一个离散的时空,具有随机行走的分形结构和洛伦兹不变量的非交换几何,其中时空节点和粒子可以用微观黑洞来建模。所有这些都在大尺度上恢复了广义相对论,半经典模型在比通常预期更小的尺度上仍然有效。因此,引力可以加入到标准模型中。这有助于解决标准模型的几个开放问题。强CP破坏问题就是这些问题之一:QCD预测了CP破坏,但是没有观察到涉及强相互作用的CP破坏(当它发生时,它是针对弱相互作用的)。在这篇论文中,我们证明了当在标准模型中加入重力时,在多重宇宙中,重力允许上夸克的质量更小(接近或等于零)。这种对称或准对称是一种消除量子cd中CP违背贡献的方法,从而解决了问题。它主张发展标准模型来增加引力,如果在非常小的尺度上不可忽略的话。没有新的物理学作为新的粒子被引入,这也可以解释为什么轴子从未被观察到,我们可能不得不把它们作为解释暗物质的候选者。
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Strong CP Violation Tamed in The Presence of Gravity
In a multi-fold universe, gravity emerges from entanglement through the multi-fold mechanisms. As a result, gravity-like effects appear in between entangled particles that they be real or virtual. Long range, massless gravity results from entanglement of massless virtual particles. Entanglement of massive virtual particles leads to massive gravity contributions at very smalls scales. Multi-folds mechanisms also result into a spacetime that is discrete, with a random walk fractal structure and non-commutative geometry that is Lorentz invariant and where spacetime nodes and particles can be modeled with microscopic black holes. All these recover General relativity at large scales and semi-classical model remain valid till smaller scale than usually expected. Gravity can therefore be added to the Standard Model. This can contribute to resolving several open issues with the Standard Model. The strong CP violation problem is one of these issues: QCD predicts CP violation, yet no CP violation has ever been observed involving the strong interaction (when it occurs, it is for the weak interaction). In this paper we show that when adding gravity to the Standard Model, in a multi-fold universe, gravity allows the mass of the up quark to be smaller (close to, or equal to zero). This symmetry, or quasi symmetry, is a way to eliminate the CP violation contributions in QCD, therefore resolving the problem. It argues for evolving the Standard Model to add gravity, if non negligible at very small scales. No New Physics are introduced as new particles, which could also explain why axions have never been observed, and we may have to remove them as candidates to explain dark matter.
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