Abstract

The hypothesis of the absolute reference system, unlike the existing physics theories, is not based on the concept of relativity (that is, it is not based on a relativistic description like Galileo’s relativity or Einstein’s theory of relativity). The absolute reference system is the framework of material in which any activity in the universe has begun. Also, each inertial reference system is accompanied by a peculiar electromagnetic wave due to the structure of matter. The physics of the absolute system of reference is based on three basic principles. The first of these principles is that the electromagnetic field quantitative estimates are made in the inertial reference system of the source of the electromagnetic field. The second principle is that the basic constituent of matter is “bound photons”, which make up the internal structure of the elementary particles. The third principle is that the framework of material of an inertial system undergoes a contraction of length which is a real physical contraction and a corresponding real change in “time flow”, not due to the geometry of space-time, but is due to the internal operation of the micro-structure of matter. These principles have the effect of changing the relativistic physical magnitudes, such as velocity, momentum and kinetic energy, into physical magnitudes described as absolute. This theory is consistent with experimental data so far and provides satisfactory answers to physics problems such as dark matter, particle physics experiments to confirm the dynamics, interpretation of experimental results of measurement of neutrinos velocity that are incompatible with the relativity, and magnetic induction experiments which are not explained by the classical electromagnetic theory.

Highlights

  • The third principle is that the framework of material of an inertial system undergoes a contraction of length which is a real physical contraction and a corresponding real change in “time flow”, not due to the geometry of space-time, but is due to the internal operation of the micro-structure of matter

  • This theory is consistent with experimental data so far and provides satisfactory answers to physics problems such as dark matter, particle physics experiments to confirm the dynamics, interpretation of experimental results of measurement of neutrinos velocity that are incompatible with the relativity, and magnetic induction experiments which are not explained by the classical electromagnetic theory

  • If we want to evaluate the force by using the clock and the physical meter of length of the inertial system of the laboratory, so that we are consistent with Galileo’s relativity, according to which the physical magnitude measurements are made by the length measure and the clock of the inertial system the observer’s reference, we should define the differential change of momentum as dp = γ dp

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Summary

Introduction

At the present work, is considered as a basic criterion of correctness of a theory the agreement between the theoretical results and all the experimental data so far. We will examine physical phenomena and experiments carried out in an inertial system of reference (possibly in a laboratory in the land reference system), based on the introduced hypothesis of the absolute reference system. This consideration gives a confirmation of the theoretical results relative to the corresponding experimental data, as will be seen below

Electromagnetism
The Electric Field
The Magnetic Field
Correlation with Maxwell Equations
Electromagnetic Field and Photons
Contraction of Length and Time
The Charge and the Force Carrier of Electromagnetic Interactions
Charge in the Electromagnetic Field
Radiating Power
Rotating Charged Particle
Gyromagnetic Ratio
Dynamics
Momentum and Force
Angular Momentum
Energy and Calculation of the Work Done by a Force
Correlation of Expressions for the Energy
The Kinetic Energy of a Rotating Body
Introduction to Particle Mechanics
The Structure of the Smallest Elementary Particle
Doppler Effect
Γ sin 2
The Fizeau Experiment
Speed of Light of a Moving Source
Conclusions

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