TY - GEN
T1 - GENERALIZATION OF RELAP5-3D MOLECULAR DIFFUSION MODEL TO A NONCONDENSABLE GAS PRIMARY COOLANT
AU - Mesina, George
AU - Martin, Robert P.
N1 - Publisher Copyright:
Copyright © 2022 by ASME.
PY - 2022/7/19
Y1 - 2022/7/19
N2 - The molecular diffusion model [1, 2] was developed within RELAP5-3D [3, 4] in 2005. Its objective was to implement the capability of calculating the ingress of air into a particular Very Hight Temperature gas-cooled Reactor (VHTR) by molecular diffusion following an accident, such as a large break in the primary coolant system, resulting in a complete loss of flow and depressurization. The existing coding was verified and validated [4]. However, the implementation was confined to only two different gases for the primary fluid, water vapor and helium. It has become of interest to implement other gases as the primary coolant, primarily for modeling designs for new Small Modular Reactors (SMR) and microreactors. This project adds the capability to specify, through use input, a variety of noncondensable (NC) gases as the primary coolant. The approach for molecular diffusion modeling has two parts. The first part solves the diffusion equation at each time step to calculate the various components of gas added or subtracted from each RELAP5-3D control volume due to molecular diffusion during the time step. The second part modifies the RELAP5-3D field equations with the molecular diffusion calculations so that the overall fluid behavior modeling accounts for molecular diffusion. The theory, algorithm, coding implementation and verification are given, and some numerical validation and calculational results are given.
AB - The molecular diffusion model [1, 2] was developed within RELAP5-3D [3, 4] in 2005. Its objective was to implement the capability of calculating the ingress of air into a particular Very Hight Temperature gas-cooled Reactor (VHTR) by molecular diffusion following an accident, such as a large break in the primary coolant system, resulting in a complete loss of flow and depressurization. The existing coding was verified and validated [4]. However, the implementation was confined to only two different gases for the primary fluid, water vapor and helium. It has become of interest to implement other gases as the primary coolant, primarily for modeling designs for new Small Modular Reactors (SMR) and microreactors. This project adds the capability to specify, through use input, a variety of noncondensable (NC) gases as the primary coolant. The approach for molecular diffusion modeling has two parts. The first part solves the diffusion equation at each time step to calculate the various components of gas added or subtracted from each RELAP5-3D control volume due to molecular diffusion during the time step. The second part modifies the RELAP5-3D field equations with the molecular diffusion calculations so that the overall fluid behavior modeling accounts for molecular diffusion. The theory, algorithm, coding implementation and verification are given, and some numerical validation and calculational results are given.
KW - RELAP5-3D
KW - Validation
KW - Verification
KW - molecular diffusion
UR - https://www.scopus.com/pages/publications/85144332930
UR - https://www.mendeley.com/catalogue/27ce3e9e-b0ee-3f40-acea-7fd2403f54d8/
U2 - 10.1115/POWER2022-87071
DO - 10.1115/POWER2022-87071
M3 - Conference contribution
AN - SCOPUS:85144332930
SN - 9780791885826
T3 - American Society of Mechanical Engineers, Power Division (Publication) POWER
BT - Proceedings of the ASME 2022 Power Conference, Power 2022
PB - American Society of Mechanical Engineers (ASME)
T2 - ASME 2022 Power Conference, Power 2022
Y2 - 18 July 2022 through 19 July 2022
ER -