skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Magnetohydrodynamic pressure drop and flow balancing of liquid metal flow in a prototypic fusion blanket manifold

Journal Article · · Physics of Fluids
DOI:https://doi.org/10.1063/1.5026404· OSTI ID:1540189

Understanding magnetohydrodynamic (MHD) phenomena associated with the flow of electrically conducting fluids in complex geometry ducts subject to a strong magnetic field is required to effectively design liquid metal (LM) blankets for fusion reactors. Specifically, accurately predicting the 3D MHD pressure drop and flow distribution is important. To explore these topics, we simulate a LM MHD flow through an electrically non-conducting prototypic manifold for a wide range of flow and geometry parameters using a 3D MHD solver, HyPerComp incompressible MHD solver for arbitrary geometry. The reference manifold geometry consists of a rectangular feeding duct which suddenly expands such that the duct thickness in the magnetic field direction abruptly increases by a factor rexp. Downstream of the sudden expansion, the LM is distributed into several parallel channels. As a first step in qualifying the flow, a magnitude of the curl of the induced Lorentz force was used to distinguish between inviscid, irrotational core flows and boundary and internal shear layers where inertia and/or viscous forces are important. Scaling laws have been obtained which characterize the 3D MHD pressure drop and flow balancing as a function of the flow parameters and the manifold geometry. Associated Hartmann and Reynolds numbers in the computations were ~103 and ~101-103, respectively, while rexp was varied from 4 to 12. An accurate model for the pressure drop was developed for the first time for inertial-electromagnetic and viscous-electromagnetic regimes based on 96 computed cases. Analysis reflects that flow balance can be improved by lengthening the distance between the manifold inlet and the entrances of the parallel channels by utilizing the effect of flow transitioning to a quasi-two-dimensional state in the expansion region of the manifold.

Research Organization:
Univ. of California, Los Angeles, CA (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Fusion Energy Sciences (FES)
Grant/Contract Number:
FG02-86ER52123
OSTI ID:
1540189
Alternate ID(s):
OSTI ID: 1435673
Journal Information:
Physics of Fluids, Vol. 30, Issue 5; ISSN 1070-6631
Publisher:
American Institute of Physics (AIP)Copyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 18 works
Citation information provided by
Web of Science

References (18)

Mhd flow tailoring in first wall coolant channels of self-cooled blankets journal January 1989
Turbulent transport of momentum and heat in magnetohydrodynamic rectangular duct flow with strong sidewall jets journal March 2000
Fields of a finite cylindrical coil with axial current flow journal March 1966
MHD simulations of liquid metal flow through a toroidally oriented manifold journal December 2008
MHD considerations for the DCLL inboard blanket and access ducts journal December 2010
Experimental study of MHD flows in a prototypic inlet manifold section of the DCLL test blanket module journal January 2009
A current density conservative scheme for incompressible MHD flows at a low magnetic Reynolds number. Part I: On a rectangular collocated grid system journal November 2007
Effect of electromagnetic coupling on MHD flow in the manifold of fusion liquid metal blanket journal October 2014
Dual-coolant lead–lithium (DCLL) blanket status and R&D needs journal November 2015
Three-dimensional MHD duct flows with strong transverse magnetic fields. Part 3. Variable-area rectangular ducts with insulating walls journal November 1972
R&D Needs and Approach to Measure Progress for Liquid Metal Blankets and Systems on the Pathway from Present Experimental Facilities to FNSF journal September 2015
Magnetohydrodynamic flow in channels of variable cross-section with strong transverse magnetic fields journal May 1967
A current density conservative scheme for incompressible MHD flows at a low magnetic Reynolds number. Part II: On an arbitrary collocated mesh journal November 2007
Slow steady flows of a conducting fluid at large Hartmann numbers journal January 1971
Effect of a magnetic field on stability and transitions in liquid breeder flows in a blanket journal October 2013
Magnetohydrodynamic flow in a right-angle bend in a strong magnetic field journal November 1996
MHD thermofluid issues of liquid-metal blankets: Phenomena and advances journal December 2010
Magnetohydrodynamic Flow in a Manifold and Multiple Rectangular Coolant Ducts of Self-Cooled Blankets journal January 1991

Similar Records

Related Subjects