In Quantum Engine, Zoltan J. Kiss builds upon the revolutionary ideas he introduced in his previous books, Energy Balance of Relativity and Quantum Energy and Mass Balance, and provides a blueprint for solving Earth's energy crisis. In this, his third book, Kiss takes the discussion of quantum energy and mass-energy balance to its logical conclusion-the quantum engine. Kiss's calculations prove that acceleration generates electricity. This energy comes from the transformation of blue-shift energy into electron flow. The quantum impact of Earth's gravitation on the speeding particles results in the generation of an electron surplus, a source of electricity. Kiss's groundbreaking original research demonstrates that this mass-energy balance approach is the key to unlocking Earth's energy future. The transformation of mass into energy and the retransformation of energy into mass can produce a limitless supply of energy via the quantum engine-our future source of energy.
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I Summary of Book 1 and Book 2...................................................................................................................................1P.1 Time relations of systems of reference in motion.............................................................................................................2P.2 Change of the mass status is the key — drive of time What is the work, necessary for the acceleration of mass system of reference?.....................19P.3 Energy quantum is the non-mass status of the matter in transformation........................................................................................24P.4 Sphere symmetrical expanding acceleration for infinite time..................................................................................................26P.5 Sphere symmetrical accelerating collapse.....................................................................................................................32P.6 Energy Quantum...............................................................................................................................................33P.7 Particles are the processes of mass-energy transformation....................................................................................................36II Quantum Engine................................................................................................................................................47S.24 Elementary processes........................................................................................................................................48S.25 Quarks — transformation again.........................................................................................................................59S.26 Acceleration effect of rotation.............................................................................................................................78S.27 Rotating Disc Quantum Device................................................................................................................................90S.28 Intensity reserve: Energy Quantum...........................................................................................................................105S.29 Speeding up results in quantum communication................................................................................................................120S.30 Electron flow generation....................................................................................................................................131S.31 Rotating Disc Experiments...................................................................................................................................136
Energy Balance of Relativity and Quantum Energy and Mass Balance
Part 1 Time relations of systems of reference in motion
1.1 Motion with constant speed
In order to characterise the motion with v=const, we have to take a universal event and assess the impact of the motion on the description of the event. This universal event is a light beam across a system of reference in motion with v=const.
Two systems of reference are taken: SORto is supposed to be a stationary one, SORtv is supposed to be in motion with speed v=const relative to SORto in direction, parallel with increasing axis yo. The speed of SORtv in direction, parallel to xo is zero. Both are understood as three-dimensional systems. For the simplicity of the projection we picture only two coordinates of the systems. They are respectively xo-yo and x-y.
The light signal enters SORtv at the spot, marked by e(1) at y, and crosses the system of reference not changing its direction. This direction is a straight line, parallel with axis xo, as observed within SORto. While the light beam crosses the systems, SORtv moves upward in direction yo with speed v=const and makes a path of Δyo within SORto. As the result of this motion, axis x(1) moves upward and takes position x(2). This means that the spot of the access of the light signal SORtv moves together with the system upward into position e(2).
We are looking for the description of this event within SORtv.
The light beam exits SORtv at distance of Δxo = cΔto.
The description of the light beam within SORtv, the direction, which would be observed within SORtv is a straight line e(2) - e(exit) declined under a certain angle to axis x, as it shown in Fig.1.1.
While the event is one and the same, its appearances in these two systems of reference are different:
in SORto, the observed trajectory is parallel with xo;
in SORtv, which is in motion, the observed trajectory is also a straight line, but declined on a certain angle to axis x.
(We may observe these trajectories, or we may not. We may be aware of the existence of any other system/s of reference, different to the one within which we may make our observations, or we may not. Therefore, it is better to use a word description for the characterisation of the event.)
We suppose that the light beam enters SORtv at time moment to = 0, measured in SORto and τv = 0, measured in SORtv. The descriptions of the event in the two systems of reference are different.
The length of the path of the light beam in SORto, is: Δxo = cΔto or dxo = cdto 1A1 The description (or observation, if any) of the same event within SORtv is:
L = cτv 1A2
τv is the time period while the light beam crosses SORtv: τv =Δτv = τv - 0
The length of the path SORtv makes within SORto in direction yo, while the light beam crosses SORtv is the distance between spots e(2) and e(1) measured within SORto:
[MATHEMATICAL EXPRESSION NOT REPRODUCIBLE IN ASCII] 1A3
The distance, SORtv makes, measured within SORtv
for Δτv = τv - 0, the duration of the event, also measured within SORtv is:
Δy = vΔτv 1A4
Function for SORtv that satisfies these three (1A2, 1A3, 1A4) conditions is
[MATHEMATICAL EXPRESSION NOT REPRODUCIBLE IN ASCII]; or [MATHEMATICAL EXPRESSION NOT REPRODUCIBLE IN ASCII];
Speed is reciprocal, therefore: [MATHEMATICAL EXPRESSION NOT REPRODUCIBLE IN ASCII]
and
[MATHEMATICAL EXPRESSION NOT REPRODUCIBLE IN ASCII]
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