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Relativistic Approximations for Quantization and Harmony in the Schrodinger Equation, and Why Mechanics Is Quantized

机译:Schrodinger方程中量化和和谐的相对论近似,以及量化力学

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The initial purpose is to add two physical origins for the outstandingly clear mathematical description that Dirac has left in his Principles of Quantum Mechanics. The first is the "internal motion" in the wave function of the electron that is now expressed through dispersion dynamics; the second is the physical origin for mathematical quantization. Bohr's model for the hydrogen atom was "the greatest single step in the development of the theory of atomic structure." It leads to the Schrodinger equation which is non-relativistic, but which conveniently equates together momentum and electrostatic potential in a representation containing mixed powers. Firstly, we show how the equation is expansible to approximate relativistic form by applying solutions for the dilation of time in special relativity, and for the contraction of space. The adaptation is to invariant "harmonic events" that are digitally quantized. Secondly, the internal motion of the electron is described by a stable wave packet that implies wave-particle duality. The duality includes uncertainty that is precisely described with some variance from Heisenberg's axiomatic limit. Harmonic orbital wave functions are self-constructive. This is the physical origin of quantization.
机译:初始目的是为普通的明确数学描述添加两个物理起源,即Dirac留在他量子力学原理中。首先是通过色散动态表达的电子波形中的“内部运动”;第二是数学量化的物理来源。 Bohr的氢原子的模型是“原子结构理论的发展中最大的单一步骤”。它导致Schrodinger等式,这是非相对论的,而是方便地将含有混合动力的表示中的动量和静电电位等同。首先,我们展示了通过在特殊相对性中施加时间的膨胀和空间收缩来施加溶液来展示等式的近似相对论形式。自适应是不变的数字量化的“谐波事件”。其次,通过暗示波粒子二元性的稳定波分组来描述电子的内部运动。二元性包括恰恰不确定性,这些不确定性与海森伯格的公理极限的某些方差进行了精确描述。谐波轨道波功能是自我建设性的。这是量化的物理来源。

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