segunda-feira, 8 de outubro de 2012

Relativity Theory and Paraquantum Logic—Part II

Physics & Mathematics

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Relativity Theory and Paraquantum Logic—Part II: Fundamentals of an Unified Calculation

Full Text(PDF, 2540KB)  PP.972-988  DOI: 10.4236/jmp.2012.39127
Author(s)
João Inácio Da Silva Filho
KEYWORDS
Paraconsistent Logic; Paraquantum Logic; Classical Physic; Relativity Theory; Quantum Mechanics
Cite this paper
J.I. Da Silva Filho, "Relativity Theory and Paraquantum Logic—Part II: Fundamentals of an Unified Calculation," Journal of Modern Physics, Vol. 3 No. 9, 2012, pp. 972-988. doi: 10.4236/jmp.2012.39127.
The studies of the PQL are based on propagation of Paraquantum logical states ψ in a representative Lattice of four vertices. Based in interpretations that consider resulting information of measurements in physical systems are found paraquantum equations for computation of the physical quantities in real physical systems. In the first part of this work we presented a study of Relativity theory which involved the time and the space with their characteristics as degrees of evidence applied in Paraquantum Logical Model. Now, in this second Part we present a study of application of the PQL in resolution of phenomena of physical systems that involve concepts of the Relativity Theory and the correlation of these effects with the Newtonian Universe and Quantum Mechanics. Considering physical fundamental quantities varying periodically in amplitude, we introduce the paraquantum equations which consider frequency in the analysis. From of these mathematical relationships obtained in the PQL Lattice some main physical constants related to the studies of De Broglie appeared. With the equations of Energy obtained through the analyses is demonstrated that the Paraquantum Logic is capable to correlate values and to unify the several study areas of the Physical Science.

 

Relativity Theory and Paraquantum Logic—Part I

Physics & Mathematics

is an openly accessible and peer-reviewed journal.
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http://www.scirp.org/journal/PaperInformation.aspx?paperID=22673#abstract

Relativity Theory and Paraquantum Logic—Part I: The Time and Space in the Paraquantum Logical Model

Full Text(PDF, 798KB)  PP.957-971  DOI: 10.4236/jmp.2012.39126
Author(s)
João Inácio Da Silva Filho
KEYWORDS
Paraconsistent Logic; Paraquantum Logic; Classical Physic; Relativity Theory; Quantum Mechanics
Cite this paper
J.I Da Silva Filho, "Relativity Theory and Paraquantum Logic—Part I: The Time and Space in the Paraquantum Logical Model," Journal of Modern Physics, Vol. 3 No. 9, 2012, pp. 957-971. doi: 10.4236/jmp.2012.39126.
From fundamental concepts of the Paraconsistent Annotated Logic with annotation of two values (PAL2v), whose main feature is to be capable of treating contradictory information, was created the Paraquantum Logic (PQL). The studies of the PQL are based on propagation of Paraquantum logical states ψ in a representative Lattice of four vertices. Based in interpretations that consider resulting information of measurements in physical systems, are found two Paraquantum factors: the Paraquantum Gamma Factor γ, that has his action in the measurements of Observable Variables in the Physical world and the Paraquantum Factor of quantization , which has his action in the Paraquantum World represented by the PQL Lattice. Correlation between γ and produces paraquantum equations for computation of the physical quantities in real physical systems. In this work we present a study of application of the PQL in resolution of phenomena of physical systems that involve concepts of the Relativity Theory. Initially the time t is considered like an Observable Variable and the paraquantum analysis is done with the same conditions assumed in the relativity theory for the study of the time dilatation. After the time considerations, paraquantum equations are involved with the space-time and velocity creating conditions for a relativistic/paraquantum analysis. In the part II of this work a new approaches of the relativistic phenomena in the Paraquantum Logical Model will show the correlation of these effects with the Newtonian universe and with quantum mechanics.