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Effects of different nuclear reactions on internal tritium breeding in deuterium fusion

S. Eliezer, Z. Henis, J. M. Martı́nez-Val, I Vorobeichik

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Abstract

A catalytic regime for tritium in deuterium-tritium (DT x ) fusion is investigated, including ion-electron collisions, mechanical expansion, bremsstrahlung radiation and inverse Compton scattering losses. It is shown that the consideration of the three main nuclear reactions of the hydrogen isotopes (D(D,n) 3 He, D(D,p)T and T(D,n) 4 He) only leads to erroneous results for internal tritium breeding. Among the secondary reactions in DT fusion, the reaction 3 He(D,p) 4 He is the most important in the tritium catalytic regime, due to its large contribution to the plasma heating. When all the nuclear reactions are taken into account, internal tritium breeding is found to be possible in a short range of parameters defining the target performance (tritium content parameter x, areal density and ignition temperature).

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A catalytic regime for tritium in deuterium-tritium (DT x ) fusion is investigated, including ion-electron collisions, mechanical expansion, bremsstrahlung radiation and inverse Compton scattering losses. It is shown that the consideration of the three main nuclear reactions of the hydrogen isotopes (D(D,n) 3 He, D(D,p)T and T(D,n) 4 He) only leads to erroneous results for internal tritium breeding. Among the secondary reactions in DT fusion, the reaction 3 He(D,p) 4 He is the most important in the tritium catalytic regime, due to its large contribution to the plasma heating. When all the nuclear reactions are taken into account, internal tritium breeding is found to be possible in a short range of parameters defining the target performance (tritium content parameter x, areal density and ignition temperature).

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Available abstract

A catalytic regime for tritium in deuterium-tritium (DT x ) fusion is investigated, including ion-electron collisions, mechanical expansion, bremsstrahlung radiation and inverse Compton scattering losses. It is shown that the consideration of the three main nuclear reactions of the hydrogen isotopes (D(D,n) 3 He, D(D,p)T and T(D,n) 4 He) only leads to erroneous results for internal tritium breeding. Among the secondary reactions in DT fusion, the reaction 3 He(D,p) 4 He is the most important in the tritium catalytic regime, due to its large contribution to the plasma heating. When all the nuclear reactions are taken into account, internal tritium breeding is found to be possible in a short range of parameters defining the target performance (tritium content parameter x, areal density and ignition temperature).

Key concepts: Tritium, Deuterium, Nuclear fusion, Nuclear physics, National Ignition Facility, Nuclear reaction, Hydrogen, Fusion power

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