Newtonian quantum gravity

被引:12
作者
Ziefle, Reiner Georg [1 ]
机构
[1] Brunnenstr 17, D-91598 Colmberg, Germany
关键词
Quantum Gravity; General Theory of Relativity; General Relativity; Newton's Theory of Gravity; Equivalence of Energy and Mass; Equivalence of Inertial and Heavy Mass; Gravitational Time Dilatation; Precession of Mercury's Perihelion; Binary Pulsar PSR B1913+16; GENERAL-RELATIVITY; EINSTEINS THEORY; VELOCITY; FAILURE; SPEED;
D O I
10.4006/0836-1398-33.1.99
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Newtonian Quantum Gravity (NQG) unifies quantum physics with Newton's theory of gravity and calculates the so-called "general relativistic" phenomena more precisely and in a much simpler way than General Relativity, whose complicated theoretical construct is no longer needed. Newton's theory of gravity is less accurate than Albert Einstein's theory of general relativity. Famous examples are the precise predictions of General Relativity at binary pulsars. This is the reason why relativistic physicists claim that there can be no doubt that Einstein's theory of relativity correctly describes our physical reality. With the example of the famous "Hulse-Taylor binary" (also known as PSR 1913+16 or PSR B1913+16), the author proves that the so-called "general relativistic phenomena" observed at this binary solar system can be calculated without having any knowledge on relativistic physics. According to philosophical and epistemological criteria, this should not be possible, if Einstein's theory of relativity indeed described our physical reality. Einstein obviously merely developed an alternative method to calculate these phenomena without quantum physics. The reason was that in those days quantum physics was not yet generally taken into account. It is not the first time that a lack of knowledge of the underlying physical phenomena has to be compensated by complicated mathematics. Einstein's theory of general relativity indirectly already includes additional quantum physical effects of gravitation. This is the reason why it cannot be possible to unite Einstein's theory of general relativity with quantum physics, unless one uses "mathematical tricks" that make the additional quantum physical effects disappear again in the end. (C) 2020 Physics Essays Publication.
引用
收藏
页码:99 / 113
页数:15
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