TY - JOUR T1 - The Electromagnetic Field in the Relativistic Uniform Model TT - Göreli Uniform Modelde Elektromanyetik Alan AU - Fedosin, Sergey G. PY - 2018 DA - December Y2 - 2018 DO - 10.29132/ijpas.430614 JF - International Journal of Pure and Applied Sciences PB - Munzur University WT - DergiPark SN - 2149-0910 SP - 110 EP - 116 VL - 4 IS - 2 LA - en AB - The potentials and the field strengths of the electromagnetic field, theenergies of particles and of the field are calculated for the relativisticuniformly charged system with invariant charge density. The difference betweenthe relativistic approach and the classical uniform model is shown. Theconclusion is proved that in the absence of the general magnetic field theenergy of particles, associated with the scalar field potential, is twice aslarge in the absolute value as the energy, determined with the help of thetensor invariant of the electromagnetic field, which is part of the system’sHamiltonian. KW - Electromagnetic field KW - energy KW - relativistic uniform system N2 - Elektromanyetikalanın potansiyelleri ve alan kuvvetleri, parçacıkların ve alanın enerjileri,değişmez yük yoğunluğuna sahip göreceli olarak uniform yüklü sistem içinhesaplanır. Rölativistik yaklaşım ile klasik uniform modeli arasındaki farkgösterilmektedir. Sonuç olarak, genel manyetik alanın yokluğunda, skaler alanpotansiyeline bağlı parçacıkların enerjisinin, Hamiltonian sistemin bir parçasıolan elektromanyetik alanın tensör değişmezinin yardımıyla belirlenen enerjikadar mutlak değerde iki kat daha fazla olduğu sonucuna varılmıştır. CR - Fedosin, S.G., 2012a. The radius of the proton in the self-consistent model. Hadronic Journal, 35(4):349-363. CR - Fedosin, S.G., 2012b. The Hamiltonian in covariant theory of gravitation. Advances in Natural Science, 5(4):55-75. CR - Fedosin, S.G., 2014a. The integral energy-momentum 4-vector and analysis of 4/3 problem based on the pressure field and acceleration field. American Journal of Modern Physics, 3(4):152-167. CR - Fedosin, S.G., 2014b. The procedure of finding the stress-energy tensor and equations of vector field of any form. Advanced Studies in Theoretical Physics, 8(18):771-779. CR - Fedosin, S.G., 2015. Relativistic energy and mass in the weak field limit. Jordan Journal of Physics, 8(1):1-16. CR - Fedosin, S.G., 2016a. Estimation of the physical parameters of planets and stars in the gravitational equilibrium model. Canadian Journal of Physics, 94(4):370-379. CR - Fedosin, S.G., 2016b. About the cosmological constant, acceleration field, pressure field and energy. Jordan Journal of Physics, 9(1):1-30. CR - Fedosin, S.G., 2016c. The virial theorem and the kinetic energy of particles of a macroscopic system in the general field concept. Continuum Mechanics and Thermodynamics, 29(2):361-371. CR - Feynman, R., Leighton, R., Sands, M., 1964. The Feynman lectures on physics. 2: Addison Wesley. CR - Huang, K., 1987. Statistical mechanics (2nd ed.). John Wiley and Sons. pp. 136-138. CR - Kelly, J.J., 2001. Nucleon charge and magnetization densities. arXiv:hep-ph/0111251. https://arxiv.org/abs/hep-ph/0111251 CR - Yakhshiev, U., Kim, H.C., 2013. Transverse charge densities in the nucleon in nuclear matter. Physics Letters B, 726(1–3):375-381. UR - https://doi.org/10.29132/ijpas.430614 L1 - https://dergipark.org.tr/en/download/article-file/613429 ER -