The Effect of ICRF and LHCD Waveguide and Launcher Location on Tritium Breeding Ratio and Radiation Damage in Fusion Reactors

The Effect of ICRF and LHCD Waveguide and Launcher Location on Tritium Breeding Ratio and Radiation Damage in Fusion Reactors PDF Author: Jennifer Marie Sierchio
Publisher:
ISBN:
Category :
Languages : en
Pages : 84

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Book Description
In most tokamak fusion reactor designs, ICRF (Ion Cyclotron Range of Frequencies) and LH (Lower Hybrid) radio frequency (RF) waves used to heat the plasma and drive current are launched from the low-field, outboard side where there is more access space. It has recently been proposed to launch these waves from the high-field side [1-3], which increases current-drive efficiency, allows for better wave penetration, and has favorable scrape-off-layer and plasma material interaction characteristics [4]. However the poloidal location and size of RF launchers will also affect important aspects of the neutronics of the tokamak fusion design, i.e. how the 14.1 MeV neutrons born out of the deuterium-tritium (D-T) fusion reaction interact with the surrounding blanket and structures. The goal of this thesis is to assess the dependence of RF launcher poloidal location on the important neutronics parameters of tritium fuel breeding, launcher damage and activation. To determine the effects of waveguide and antenna location on Tritium Breeding Ratio (TBR), damage, and activation, the MCNP Transport Code was used, as well as the EASY 2010 activation package to analyze the activation of the vacuum vessel components. A simple geometry was designed for MCNP, based on the original ARC model [1]. Seven locations for the waveguides and antenna were chosen: the inner and outer midplane, the inner and outer upper corners, two spaces between the midplane (inboard and outboard), and a central location directly above the vacuum vessel. TBR, DPA, and helium concentration were calculated at all seven points to find the optimal location for the waveguides and antenna. Four blanket materials were chosen: two liquid blankets (FliBe and Pb-17Li) and two solid blankets (Li4SiO4 and Li2TiO3). This was to test whether or not blanket material affects the optimal location of the launchers. We find that from the neutronics point of view the overall optimal location is the inboard upper corner, which minimizes DPA and helium concentration in the antenna and waveguide, and maximizes TBR. DPA in the waveguide was minimized when placed in the outboard upper corner, although the difference in DPA between the two locations was small. While TBR was maximized at the top of the vacuum vessel, the differences in TBR between all locations was less than 1%. These results reinforce the choice of inside, upper corner launch as the optimal location for current drive, launcher protection and neutronics. Activation was also assessed for the vacuum vessel, both without and with the waveguides and antenna, assuming irradiation times of one week, one month, and one year. Overall, activation was significant in the vacuum vessel, as expected, due to the use of Inconel 718. The IAEA recycling limit could be achieved, regardless of irradiation time. The dominant isotopes present after irradiation differed when the irradiation time was one week versus one month or one year. Activation was also assessed in the waveguides and antenna for the cases of the launchers being placed at the outboard midplane versus the inboard corner. The activation in the antenna was shown to be reduced by a factor of two and in the waveguides by a factor of four, when the launchers were placed in the inboard corner.

The Effect of ICRF and LHCD Waveguide and Launcher Location on Tritium Breeding Ratio and Radiation Damage in Fusion Reactors

The Effect of ICRF and LHCD Waveguide and Launcher Location on Tritium Breeding Ratio and Radiation Damage in Fusion Reactors PDF Author: Jennifer Marie Sierchio
Publisher:
ISBN:
Category :
Languages : en
Pages : 84

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Book Description
In most tokamak fusion reactor designs, ICRF (Ion Cyclotron Range of Frequencies) and LH (Lower Hybrid) radio frequency (RF) waves used to heat the plasma and drive current are launched from the low-field, outboard side where there is more access space. It has recently been proposed to launch these waves from the high-field side [1-3], which increases current-drive efficiency, allows for better wave penetration, and has favorable scrape-off-layer and plasma material interaction characteristics [4]. However the poloidal location and size of RF launchers will also affect important aspects of the neutronics of the tokamak fusion design, i.e. how the 14.1 MeV neutrons born out of the deuterium-tritium (D-T) fusion reaction interact with the surrounding blanket and structures. The goal of this thesis is to assess the dependence of RF launcher poloidal location on the important neutronics parameters of tritium fuel breeding, launcher damage and activation. To determine the effects of waveguide and antenna location on Tritium Breeding Ratio (TBR), damage, and activation, the MCNP Transport Code was used, as well as the EASY 2010 activation package to analyze the activation of the vacuum vessel components. A simple geometry was designed for MCNP, based on the original ARC model [1]. Seven locations for the waveguides and antenna were chosen: the inner and outer midplane, the inner and outer upper corners, two spaces between the midplane (inboard and outboard), and a central location directly above the vacuum vessel. TBR, DPA, and helium concentration were calculated at all seven points to find the optimal location for the waveguides and antenna. Four blanket materials were chosen: two liquid blankets (FliBe and Pb-17Li) and two solid blankets (Li4SiO4 and Li2TiO3). This was to test whether or not blanket material affects the optimal location of the launchers. We find that from the neutronics point of view the overall optimal location is the inboard upper corner, which minimizes DPA and helium concentration in the antenna and waveguide, and maximizes TBR. DPA in the waveguide was minimized when placed in the outboard upper corner, although the difference in DPA between the two locations was small. While TBR was maximized at the top of the vacuum vessel, the differences in TBR between all locations was less than 1%. These results reinforce the choice of inside, upper corner launch as the optimal location for current drive, launcher protection and neutronics. Activation was also assessed for the vacuum vessel, both without and with the waveguides and antenna, assuming irradiation times of one week, one month, and one year. Overall, activation was significant in the vacuum vessel, as expected, due to the use of Inconel 718. The IAEA recycling limit could be achieved, regardless of irradiation time. The dominant isotopes present after irradiation differed when the irradiation time was one week versus one month or one year. Activation was also assessed in the waveguides and antenna for the cases of the launchers being placed at the outboard midplane versus the inboard corner. The activation in the antenna was shown to be reduced by a factor of two and in the waveguides by a factor of four, when the launchers were placed in the inboard corner.

Radiation Effects and Tritium Technology for Fusion Reactors

Radiation Effects and Tritium Technology for Fusion Reactors PDF Author:
Publisher:
ISBN:
Category : Fusion reactors
Languages : en
Pages : 594

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An analysis of the effects of electromagnetic transients on the tritium breeding blanket and vacuum containment structure of the INTOR fusion reactor

An analysis of the effects of electromagnetic transients on the tritium breeding blanket and vacuum containment structure of the INTOR fusion reactor PDF Author: R.A. Bond
Publisher:
ISBN: 9780853111344
Category : Fusion reactors
Languages : en
Pages : 194

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Radiation Effects and Tritium Technology for Fusion Reactors

Radiation Effects and Tritium Technology for Fusion Reactors PDF Author: J. S. Watson
Publisher:
ISBN:
Category :
Languages : en
Pages : 0

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Effect of Polarized Fusion on the Neutronics of a Mirror Fusion Reactor

Effect of Polarized Fusion on the Neutronics of a Mirror Fusion Reactor PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Book Description
The conclusions of this study are that for the anisotropic neutron source: (1) the radiation damage in the first wall is reduced, and (2) both the fraction of energy (heat) deposited in the hot interior, and the tritium breeding ratio do not change significantly. These conclusions apply to this particular blanket design only. In order to increase the fractional heating and the breeding ratio, the blanket design must be modified.

Assessment of Tritium Breeding Requirements for Fusion Power Reactors

Assessment of Tritium Breeding Requirements for Fusion Power Reactors PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Book Description
This report presents an assessment of tritium-breeding requirements for fusion power reactors. The analysis is based on an evaluation of time-dependent tritium inventories in the reactor system. The method presented can be applied to any fusion systems in operation on a steady-state mode as well as on a pulsed mode. As an example, the UWMAK-I design was analyzed and it has been found that the startup inventory requirement calculated by the present method significantly differs from those previously calculated. The effect of reactor-parameter changes on the required tritium breeding ratio is also analyzed for a variety of reactor operation scenarios.

Comparison of the Cross-section Sensitivity of the Tritium Breeding Ratio in Various Fusion-reactor Blankets

Comparison of the Cross-section Sensitivity of the Tritium Breeding Ratio in Various Fusion-reactor Blankets PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Radiation Effects and Tritium Technology for Fusion Reactors

Radiation Effects and Tritium Technology for Fusion Reactors PDF Author: J.S. Watson
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Implications of Polarized DT Plasmas for Toroidal Fusion Reactors

Implications of Polarized DT Plasmas for Toroidal Fusion Reactors PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Book Description
Spin polarization of the deuterons and tritons in a reacting plasma can result in an increase in the fusion reactivity and variation of the angular distribution of emission of the fusion neutrons. The increased fusion reactivity relaxes the confinement-temperature conditions for breakeven and ignition. We have determined the effect of varying the angular distribution of the fusion neutrons on the spatial distribution of fusion neturon current and flux at the first wall, on the global tritium breeding ratio, and on the first-wall radiation damage in low-aspect-ratio toroidal geometry.

Tritium: Fuel of Fusion Reactors

Tritium: Fuel of Fusion Reactors PDF Author: Tetsuo Tanabe
Publisher: Springer
ISBN: 9784431567929
Category : Technology & Engineering
Languages : en
Pages : 365

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Book Description
This book focuses on tritium as a fuel for fusion reactors and a next-generation energy source. Following an introduction of tritium as a hydrogen radioisotope, important issues involved in establishing safe and economical tritium fuel cycles including breeding for a fusion reactor are summarized; these include the handling of large amounts of tritium: confinement, leakage, contamination, permeation, regulation and tritium accountancy, and impacts on surrounding areas. Targeting and encouraging the students and technicians who will design and operate fusion reactors in the near future, this book offers a valuable resource on tritium science and technology.