论文标题
三粒子字段作为散射过程中重子的描述方法
Three-particle fields as a method of description of baryons in the scattering processes
论文作者
论文摘要
在本文中,我们提出了一个模型,其中可以同时描述质子内夸克内部的夸克和这些夸克与另一个强子的夸克的相互作用。为此目的使用了三粒子双球场的模型。与通常的单粒子场相比,这种场不在Minkowski空间上考虑,而是在三个Minkowski空间的张量产物的子集上,其特征在于三个事件的时间坐标的相等性(同时性的子集)。这样的子集不能通过洛伦兹不变方法来区分。但是,由于从一个惯性系统到另一个系统的过渡中的多颗粒场变换定律,三粒子场的动态方程与相对性的原理一致。夸克之间的相互作用是通过需要局部SUC(3)不变性引入的。但是,在本文中,提出了一种更通用的实现这种不变性的方法,而不是提出协方差的拉格朗日人的替换。应用程序导致仪表场和内部指数的两指数张量。讨论了该领域与粘合剂的界面状态 - 粘合球的联系。结果表明,该粘合球场可以表示为两个术语的总和:经典场,它在质子中扮演夸克相互作用的势能的作用,并且该场与经典场周围的量子波动相对应,并描述了质量与其他Hadron的质子相互作用。对于确定夸克相互作用的势能的场获得了动态方程。结果表明,该方程式的解决方案与夸克的限制相对应。
In this paper we propose a model within which the keeping of quarks inside a proton and the interaction of these quarks with quarks of another hadron can be described simultaneously. The model of a three-particle bispinor field is used for this purpose. Such a field, in comparison with the usual one-particle field, is considered not on Minkowski space, but on a subset of the tensor product of three Minkowski spaces, which is characterized by the equality of time coordinates of three events (subset of simultaneity). Such a subset cannot be distinguished by the Lorentz invariant method. But due to the multiparticle field transformation law in the transition from one inertial system to another one, the dynamic equations for a three-particle field are consistent with the principle of relativity. The interaction between quarks is introduced by requiring a local SUc(3) invariance. But in the paper a more general way to achieve this invariance than the replacement in Lagrangian of ordinary derivatives by covariance is proposed. The applied procedure leads to a two-index tensor of gauge field, both for Lorentz and internal indices. The connection of this field with the bound states of gluons - glueballs is discussed. It is shown that this glueball field can be represented as the sum of two terms: the classical field, which plays the role of the potential energy of quark interaction in the proton, and the field corresponding to quantum fluctuations around the classical field and describes the quark interaction in proton with other hadrons. A dynamic equation is obtained for the field that determines the potential energy of quark interaction. It is shown that this equation has solutions that correspond to the confinement of quarks.