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81、On the Logical Paradox of Quantum Superposition and Quantum Transition
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Preprint of CERN doi :10.5281/zenodo.20290451 or https://doi.org/10.5281/zenodo.20290451 My academic identifier: orcid id: 0009-0005-2185-5790. You may go to the official academic website to retrieve and view relevant research content. Readers may copy this number to search on the official zenodo website (search by English title or English keywords) to view the full English and Chinese pdf texts. Abstract Mainstream quantum mechanics holds that microscopic particles such as electrons exhibit the property of superposition, have no fixed trajectories, and can undergo random quantum transitions. This theoretical system contains two fatal, irreconcilable logical flaws when confronted with macroscopic engineering facts. First, if electrons could indeed teleport instantaneously and randomly via superposition, all particle accelerators built by humans would be completely meaningless, and the huge investment and acceleration principles behind them would be redundant. Second, quantum transition without trajectory or time process is essentially a spacetime jump exceeding the speed of light or even without speed limits, directly violating the fundamental rule of the constancy of the speed of light in physics. Based on real experiments and engineering facts, this paper demonstrates inversely that the elusive quantum superposition and instantaneous transition without process are paper theoretical hypotheses divorced from the real motion laws of particles, and are completely contradictory to the precisely controllable electron acceleration experiments. Keywords: quantum superposition; quantum transition; particle accelerator; speed-of-light paradox; microscopic particle motion 1. Introduction In the popular interpretation and theoretical definition of mainstream quantum mechanics, electrons are not stable physical particles in motion. The academic community has long claimed that: 1.Electrons have no fixed orbits and exist in a superposition of multiple states; 2.Electrons can undergo random quantum transitions without motion processes or trajectory transitions; 3.The motion of microscopic particles is random and uncertain and cannot be accurately predicted. However, in modern physical engineering, particle accelerators, electron beam manipulation, and precise electromagnetic experiments control the trajectory, speed, direction, and energy of electrons with high precision every day. There is a serious separation between theoretical description and engineering practice, forming an irreconcilable physical paradox. |
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