XE-100 Modeling and Simulation for Neutronic Analysis in MCNP6.2

4Citations
Citations of this article
1Readers
Mendeley users who have this article in their library.
Get full text

Abstract

XE-100 is a Generation IV high-temperature, helium-cooled, graphite-moderated, pebble-bed reactor (HTGR). As part of the pathway toward a conceptually designing and licensing this reactor, an independent Monte Carlo model was created in MCNP6.2, and several distinct neutronic analyses were then performed. The double heterogeneity of TRISO fuel within graphite pebbles introduces unique modeling challenges related to particle and pebble clipping. The results show that for neutron and photon heating of ex-core components such as the reflector, RCSS, CB, the model that contains clipping produces higher heating values. It is therefore concluded that removing clipping via compression of the particles and pebbles within the model distributes the neutrons and gammas preferentially toward the core center, and reduces the heating that is experienced toward the reactor periphery. Thus, the most conservative model for ex-core heating contains particle and pebble clipping. Also presented are results on the impact of chamfers that exist on the corners of graphite reflector blocks. As these chamfers could potentially create streaming paths, the neutron and gamma flux from the core to the core barrel (CB) were analyzed. It was determined that the chamfers do not significantly impact the neutron or gamma signatures on the CB, in that the shape of the neutron and photon flux on a detector imposed on the CB shows no preferential streaming path.

Cite

CITATION STYLE

APA

Carter, A., Lange, T., Balestra, P., Strydom, G., Sen, S., & Wang, R. (2022). XE-100 Modeling and Simulation for Neutronic Analysis in MCNP6.2. In Proceedings of the International Conference on Physics of Reactors, PHYSOR 2022 (pp. 58–67). American Nuclear Society. https://doi.org/10.13182/PHYSOR22-37642

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free