Supersymmetry Via EDM (Electric Dipole Moment)

Qeios Pub Date : 2024-05-03 DOI:10.32388/6wu1m2
Rodney Bartlett
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Abstract

The article begins by mentioning the accepted correlation between Albert Einstein’s relativistic equations, as well as James Clerk Maxwell’s electromagnetic waves, with the Prandtl-Glauert equations for fluid flow. This equation-free mention nevertheless ends with 180° ΔO = + => - (180 Degree Change in Orientation Equals Positive Becomes Negative). Of course, it also means negative can become positive: 180° ΔO = - => +. Using this article’s new equations, the Electric Dipole Moment is introduced and the charges of the quarks composing a neutron are transformed. EDM’s undetectability is explained from the perspective of a hypothetical someone who doesn’t accept the Big Bang but believes the universe is literally infinite and eternal. Then quantum spin of matter particles is discussed, and extended to astronomy’s black holes, in terms of photons and gravitons not being elementary force-carrying particles but being in possession of EDM. The photon-graviton interaction producing quantum spin is proposed as electromagnetic and gravitational vectors in a figure that might be called “Vector-Tensor-Scalar Geometry”, as well as being related to quaternions plus the Higgs boson and field. Then the article returns to black holes, showing how the inability of light to escape them leads to a 4-dimensional space-time: via binary digits or base 2 mathematics, Mobius bands, figure-8 Klein bottles, and Wick rotation. The electric potential of photons and gravitons is then interpreted not strictly as a neutron-identical Electric Dipole Moment but as a vast array of pulses sharing similarities with modern computers and electronics – the binary digits of the previous sentence. As a consequence of the electric force-carriers bringing them into existence, particles of matter and antimatter are symmetrical with bosons in the sense that every boson or fermion is, at its most fundamental level, composed of binary digits. Imaginary numbers are essential to quantum mechanics, and this article connects the imaginary numbers of Wick rotation to the nature of time. Therefore, the words here are not painting a classical picture of space-time. The 1’s and 0’s of binary digits are compatible with quantum mechanics and may be referred to as the Hidden Variables which Einstein advocated to complete quantum physics, and to give its calculations an exactness which would bring a hidden order to its chaotic randomness and superficial uncertainty. If the universe can be quantized and viewed as comprised of infinitesimal ones and zeros, how could it not obey quantum physics? And if those ones and zeros are all ultimately connected by Quantum Gravity, waves and particles could never be separated but wave-particle duality would rule. To finish, many thanks to Albert Einstein for laying the foundations of this article 105 years ago when he published a paper titled “Do gravitational fields play an essential role in the structure of elementary particles?” Immediately before submission for publication, a few topics were added to this article - dark matter, precession, the Hodge conjecture, and the Riemann hypothesis.
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通过 EDM(电偶极矩)实现超对称
文章一开始就提到了阿尔伯特-爱因斯坦的相对论方程和詹姆斯-克拉克-麦克斯韦的电磁波与流体流动的普朗特-格劳尔特方程之间公认的相关性。然而,这个不含方程的提法以 180° ΔO = + => -(180 度方向变化等于正变负)结束。当然,这也意味着负可以变成正:180° ΔO = - => +。利用本文的新方程,引入了电偶极矩,组成中子的夸克的电荷也发生了变化。从一个不接受宇宙大爆炸但相信宇宙是无限和永恒的假设人的角度解释了 EDM 的不可探测性。然后讨论了物质粒子的量子自旋,并从光子和引力子不是基本的载力粒子却拥有 EDM 的角度延伸到天文学的黑洞。光子-引力子相互作用产生的量子自旋在一个可称为 "矢量-张量-量子几何 "的图中被提出为电磁矢量和引力矢量,并与四元数和希格斯玻色子及场相关联。然后,文章回到黑洞,展示了光无法逃离黑洞是如何导致四维时空的:通过二进制数字或二进制数学、莫比乌斯带、8 字克莱因瓶和威克旋转。这样,光子和引力子的电势就不能严格地解释为中子相同的电偶极矩,而可以解释为与现代计算机和电子设备相似的大量脉冲--也就是前一句话中的二进制数字。由于载电体的存在,物质和反物质粒子与玻色子是对称的,即每个玻色子或费米子在最基本的层面上都是由二进制数组成的。虚数对量子力学至关重要,本文将维克旋转的虚数与时间的本质联系起来。因此,这里的文字并不是在描绘时空的经典图景。二进制数字中的 1 和 0 与量子力学是相容的,可以被称为隐变量,爱因斯坦主张用它来完善量子物理学,并赋予其计算的精确性,从而为其混乱的随机性和表面的不确定性带来隐含的秩序。如果宇宙可以量子化,并被视为由无限小的 "1 "和 "0 "组成,那么它怎么会不服从量子物理学呢?而且,如果这些 "一 "和 "零 "最终都被量子引力连接起来,那么波和粒子就永远无法分离,而波粒二象性将统治一切。最后,非常感谢阿尔伯特-爱因斯坦在 105 年前发表了一篇题为 "引力场在基本粒子的结构中扮演重要角色吗?"的论文,为本文奠定了基础。在提交发表之前,本文又增加了几个主题--暗物质、前摄、霍奇猜想和黎曼假说。
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