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The Doppler effect according to complete relativity

机译:根据相对论的多普勒效应

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The paper is a study of the Doppler effect for a γ-ray formed by the superposition of the electromagnetic standing waves of an electron and a positron. This analysis uses complete relativity, thus differing from Einstein's special relativity, as it introduces the new postulate of a minimum nonzero speed under which a particle cannot move. When an electron - positron pair moves away from the laboratory observer with a value of β > 0.5774, in the complete relativistic Doppler effect we can notice an inversion of the normal response: a decrease instead of an increase in the measured wavelengths of both the electron and the positron. This result seems to be due to the remarkable properties of reference systems with speeds approaching the speed of light. In fact, for β > 0.5774, the relativistic addition of the speeds can take on a particular weight that produces an inversion of the normal effects.
机译:本文研究了由电子和正电子的电磁驻波叠加形成的γ射线的多普勒效应。该分析使用了完全相对论,因此不同于爱因斯坦的相对论,因为它引入了粒子不能运动的最小非零速度的新假设。当一个电子-正电子对离开实验室观察者,其β> 0.5774时,在完整的相对论多普勒效应中,我们可以注意到正响应的倒置:两个电子的测量波长均减小而不是增大和正电子。该结果似乎是由于参考系统的显着特性,其速度接近光速。实际上,当β> 0.5774时,速度的相对论性加法会承担特定的权重,从而导致正常效果的倒置。

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