首页> 外文期刊>Nuclear Physics, A: Journal Devoted to the Experimental Study of the Fundamental Constituents of Matter and Their Actions >Gauge invariance and canonical quantization applied in the study of internal structure of gauge field systems
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Gauge invariance and canonical quantization applied in the study of internal structure of gauge field systems

机译:规范不变性和规范量化在规范场系统内部结构研究中的应用

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摘要

It is unavoidable to deal with the quark and gluon momentum and angular momentum contributions to the nucleon momentum and spin in the study of nucleon internal structure. However, we never have the quark and gluon momentum, orbital angular momentum and gluon spin operators which satisfy both the gauge invariance and the canonical momentum and angular momentum commutation relations. The conflicts between the gauge invariance and canonical quantization requirement of these operators are discussed. A new set of quark and gluon momentum, orbital angular momentum and spin operators, which satisfy both the gauge invariance and canonical momentum and angular momentum commutation relations, are proposed. The key point to achieve such a proper decomposition is to separate the gauge field into the pure gauge and the gauge covariant parts. The same conflicts also exist in QED and quantum mechanics and have been solved in the same manner. The impacts of this new decomposition to the nucleon internal structure are discussed.
机译:在研究核子内部结构时,不可避免地要考虑夸克和胶子动量以及角动量对核子动量和自旋的贡献。但是,我们从来没有满足规范不变性和规范动量与角动量换向关系的夸克和胶子动量,轨道角动量和胶子自旋算子。讨论了这些算子的规范不变性和规范量化要求之间的冲突。提出了一套既满足规范不变性又满足规范动量和角动量换向关系的夸克和胶子动量,轨道角动量和自旋算子。实现这种适当分解的关键是将量规字段分为纯量规和量规协变部分。 QED和量子力学中也存在相同的冲突,并且已经以相同的方式解决了。讨论了这种新分解对核子内部结构的影响。

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