A next-generation inverse-geometry spallation-driven ultracold neutron source
Abstract
The physics model of a next-generation spallation-driven high-current ultracold neutron (UCN) source capable of delivering an extracted UCN rate of around an-order-of-magnitude higher than the strongest proposed sources, and around three-orders-of-magnitude higher than existing sources, is presented. This UCN-current-optimized source would dramatically improve cutting-edge UCN measurements that are currently statistically limited. A novel "Inverse Geometry" design is used with 40 L of superfluid He (He-II), which acts as a converter of cold neutrons (CNs) to UCNs, cooled with state-of-the-art sub-cooled cryogenic technology to 1.6 K. Our design is optimized for a 100 W maximum heat load constraint on the He-II and its vessel. In our geometry, the spallation target is wrapped symmetrically around the UCN converter to permit raster scanning the proton beam over a relatively large volume of tungsten spallation target to reduce the demand on the cooling requirements, which makes it reasonable to assume that water edge-cooling only is sufficient. Our design is refined in several steps to reach s under our other restriction of 1 MW maximum available proton beam power. We then study effects of the He-II scattering kernel as well as reductions in due to pressurization to reach s. Finally, we provide a design for the UCN extraction system that takes into account the required He-II heat transport properties and implementation of a He-II containment foil that allows UCN transmission. We estimate a total useful UCN current from our source of s from a 18 cm diameter guide 5 m from the source. Under a conservative "no return" approximation, this rate can produce an extracted density of cm in 1000~L external experimental volumes with a Ni (335 neV) cut-off potential.
Keywords
Cite
@article{arxiv.1905.09459,
title = {A next-generation inverse-geometry spallation-driven ultracold neutron source},
author = {K. K. H. Leung and G. Muhrer and T. Hügle and T. M. Ito and E. M. Lutz and M. Makela and C. L. Morris and R. W. Pattie, and A. Saunders and A. R. Young},
journal= {arXiv preprint arXiv:1905.09459},
year = {2020}
}
Comments
Submitted to Journal of Applied Physics