Affiliation:
1. Department of Physics, Shiraz Branch , Islamic Azad University , Shiraz , Iran
Abstract
Abstract
In this paper, the time evolution of bremsstrahlung radiation loss, plasma frequency and electron particles density and the relationship between these parameters and black body radiation are investigated. The model used in this work is based on numerical solution of particle and energy balance equations in ITER with DT fuel. The fusion reaction takes places in a plasma of deuterium and tritium heated to millions of degrees. It is expected that at this temperature, the thermal noise could have a significant effect on plasma behavior. This effect is considered in the solution of equations for the first time in this work. In order to attain a proper set of particle and energy balance equations, an appropriate thermal noise term is considered in the set of coupled differential equations. These equations are solved simultaneously by numerical methods. The results of the calculations for bremsstrahlung radiation loss, plasma frequency, intensity of blackbody radiation, absorption coefficient and quality factor show that in the absence of thermal noise blackbody radiation doesn’t occur but in the presence of thermal noise blackbody radiation occurs in times of 55.7 s and 42.73 s for two cases of considering and ignoring impurity respectively. As it can be seen that with the addition of impurities to the system, bremsstrahlung radiation and intensity of blackbody radiation increase while absorption coefficient and quality factor decrease.
Subject
Safety, Risk, Reliability and Quality,General Materials Science,Nuclear Energy and Engineering,Nuclear and High Energy Physics,Radiation
Reference29 articles.
1. Anderson, D., Elevant, T., Hamnén, H., Lisak, M., and Persson, H. (1993). Studies of fusion burn control. Fusion Technol. 23: 5–41, https://doi.org/10.13182/FST93-A30117.
2. Basar, E. (2023). Communication by means of thermal noise: towards networks with extremely low power consumption. IEEE Trans. Commun. 71: 688–699, https://doi.org/10.1109/TCOMM.2022.3228290.
3. Blumenthal, G.R. and Gould, R.J. (1970). Bremsstrahlung, synchrotron radiation, and compton scattering of high-energy electrons traversing dilute gases. Rev. Mod. Phys. 42: 237, https://doi.org/10.1103/RevModPhys.42.237.
4. Callebaut, D.K. and Khater, A.H. (1997). Black-body radiation in plasmas, Available at: https://www.osti.gov/etdeweb/servlets/purl/20049725.
5. Di Siena, A., Görler, T., Poli, E., Navarro, A.B., Biancalani, A., and Jenko, F. (2019). Electromagnetic turbulence suppression by energetic particle driven modes. Nucl. Fusion 59: 124001, https://doi.org/10.1088/1741-4326/ab4088.