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Can gravitation anisotropy be detected by pendulum experiments?

机译:可以通过摆实验来检测重力各向异性吗?

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摘要

After some 170 years of Foucault pendulum experiments, the linear theory fails to quantitatively explain the results of any honest meticulous experiment. The pendulum motion usually degenerates into elliptical orbits after a few minutes. Moreover, unexplained discrepancies up to ±20% in precession velocity are not uncommon. They are mostly regarded as a consequence of the elliptic motion of the bob associated with suspension anisotropy or as a lack of care in starting the pendulum motion. Over some 130 years, an impressive amount of talented physicists, engineers and mathematicians have contributed to a better partial understanding of the pendulum behaviour. In this work, the concept of biresonance is introduced to represent the motion of the spherical pendulum. It is shown that biresonance can be represented graphically by the isomorphism of the Poincare sphere. This new representation of the pendulum motion greatly clarifies its natural response to various anisotropic situations, including Airy precession. Anomalous observations in pendulum experiments by Allais are analyzed. These findings suggest that a pendulum placed within a mass distribution such as the earth, the moon and the sun should be treated as an interior problem, which can better be addressed by Santilli's new theory of gravitation than by those of Newton and Einstein.
机译:在进行了170年的Foucault摆实验之后,线性理论无法定量地解释任何诚实,细致的实验结果。摆运动通常在几分钟后退化为椭圆形轨道。此外,进动速度高达±20%的无法解释的差异并不少见。它们主要是由于鲍勃的椭圆运动与悬架各向异性有关或在开始摆运动时缺乏注意。在大约130年的时间里,大量的才华横溢的物理学家,工程师和数学家为更好地部分了解摆的行为做出了贡献。在这项工作中,引入了双共振的概念来表示球形摆的运动。结果表明,双共振可以通过庞加莱球的同构图来表示。摆运动的这种新表示极大地阐明了其对各种各向异性情况(包括艾里进动)的自然反应。分析了Allais在摆实验中的异常观察。这些发现表明,摆在诸如地球,月亮和太阳这样的质量分布中的摆应该被视为内部问题,与桑顿利的新引力理论相比,牛顿和爱因斯坦可以更好地解决这一问题。

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