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Angular Correlations of Particle Momentum in the Hot Dense Medium

机译:热致密介质中颗粒动量的角度相关性

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The early universe consists of element particles such as quarks and gluons after the big bang. Understanding their interactions is crucial for the physics, especially their interaction strength: do they behave like a gas or like water? A lot of experiments and theoretical calculations have been performed in labs, using different particles to study the properties of the early universe. Luckily, scientists can create this state of matter on earth by proton-proton collisions (or nucleus-nucleus collisions). As this matter produced in the particle collisions last only a very short of time ~ fm/c where c is the speed of light. How to probe this medium becomes difficult? This work suggests that people can study the momentum correlations between particles moving in the opposite direction in the hot medium. If the early universe is a STRONGLY coupled medium, then the medium will change both particles' momentum. After they move out of the hot medium, their momentum angular is NOT pi anymore. In summary, the hot medium random interactions will change the momentum angular between two particles even their initial momentum is in the opposite direction. This work employs the Langevin equation to simulate their evolutions in the hot medium, and get good results.
机译:早期宇宙由大爆炸后的夸克和胶子等元素粒子组成。了解它们的相互作用对物理学至关重要,特别是它们的相互作用强度:它们的行为像气体还是水?在实验室中已经进行了许多实验和理论计算,使用不同的粒子来研究早期宇宙的性质。幸运的是,科学家可以通过质子-质子碰撞(或核-核碰撞)在地球上创建这种物质状态。由于粒子碰撞中产生的这种物质仅持续很短的时间〜fm / c,其中c是光速。如何探测这种介质变得困难?这项工作表明人们可以研究在热介质中沿相反方向移动的粒子之间的动量相关性。如果早期宇宙是强耦合介质,那么该介质将改变两个粒子的动量。从热介质中移出后,它们的动量角不再为pi。总之,即使它们的初始动量方向相反,热介质的随机相互作用也会改变两个粒子之间的动量角。这项工作使用Langevin方程来模拟它们在热介质中的演化,并获得良好的结果。

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