liquid lithium
Recently Published Documents


TOTAL DOCUMENTS

739
(FIVE YEARS 89)

H-INDEX

39
(FIVE YEARS 5)

2022 ◽  
Vol 2155 (1) ◽  
pp. 012022
Author(s):  
Ye Yu Tulubayev ◽  
Yu V Ponkratov ◽  
V V Baklanov ◽  
V S Bochkov ◽  
I S Karambayeva

Abstract This work is devoted to testing a lithium CPS based on carbon fabric reinforced with carbon nanotubes under conditions of thermal and radiation loads. The paper considers and analyzes: the properties of carbon nanotubes and methods of their synthesis, the nature of the interaction of carbon materials with liquid lithium at different temperatures. A description of all the main stages in the manufacture of lithium CPS based on carbon fabric reinforced with carbon nanotubes is given. Microstructural studies of a manufactured lithium CPS sample based on carbon fabric reinforced with carbon nanotubes are presented. Studies have shown that a carbon fabric with a fiber surface reinforced with carbon nanotubes is completely wetted by liquid lithium. The developed technology is fully suitable for the manufacture of lithium CPS samples for further research. The results of experiments on the interaction of lithium CPS based on graphite fabric reinforced with carbon nanotubes with hydrogen isotopes under thermal and radiation loads are presented.


Author(s):  
Xiao-Zhong Fan ◽  
Meng Liu ◽  
Ruiqi Zhang ◽  
Yuezhou Zhang ◽  
Songcan Wang ◽  
...  

2021 ◽  
Author(s):  
Matthew Szott ◽  
Steven Stemmley ◽  
Cody D Moynihan ◽  
Alfonso de Castro ◽  
David N Ruzic

Abstract As magnetically confined fusion devices improve, the conditions at the walls become increasingly intense. Plasma facing components (PFCs) must withstand these extreme heat and particle loads without damage or degradation. Liquid lithium PFCs are known to be quite resilient, and the presence of lithium also serves to improve plasma properties. The Liquid Metal Infused Trench (LiMIT) concept is an open surface liquid lithium PFC design that has been tested extensively at the University of Illinois and in fusion devices around the world. LiMIT utilizes thermoelectric magnetohydrodynamics (TEMHD) to passively drive liquid lithium flow. This work demonstrates an extension of the LiMIT trench geometry to 3 dimensions. Additively manufactured large pore metallic foams maintain TEMHD drive while drastically improving heat flux handling and resistance to lithium dryout, a phenomenon where locally high TEMHD forces depresses the lithium level and exposes underlying solid structure. COMSOL Multiphysics modeling of the system yields insight into the forces at play in dryout development, and shows the 3-D structures can eliminate dryout. Low heat proof-of-concept experimental testing of the system matches computational results, and high heat flux electron beam tests more than double the proven operational range of a LiMIT-style PFC, to 6.8 MW/m2, with no indications of dryout or impending damage.


Author(s):  
Kay Schönherr ◽  
Dr. rer. nat. Benjamin Schumm ◽  
Dr. rer. nat. Felix Hippauf ◽  
Robin Lissy ◽  
Holger Althues ◽  
...  

Energies ◽  
2021 ◽  
Vol 14 (20) ◽  
pp. 6569
Author(s):  
Danilo Nicola Dongiovanni ◽  
Matteo D’Onorio

A Demo-Oriented early NEutron Source (DONES) facility for material irradiation with nuclear is currently being designed. DONES aims to produce neutrons with fusion-relevant spectrum and fluence by means of D–Li stripping reactions occurring between a deuteron beam impacting a stable liquid lithium flowing film implementing the target. Given the hazard constituted by the liquid lithium inventory and the potential risk of reactions with water, air, and concrete eventually resulting in fire events, the Target Test Cell (TTC) is filled with helium and the reinforced concrete walls forming the bio-shield are covered with steel liners. A loss of Li in TTC, due to a large break in the Quench Tank, is postulated, and consequences are deterministically studied. With the TTC liner being water-cooled, the impact of the liner temperature rise following a leakage event is evaluated. Two separate MELCOR code models have been defined for the liquid lithium loop and water-cooled loop and are numerically coupled. The amount of leaked inventory dependent on the implemented safety logic and impact on TTC containment is evaluated. The water pressurization pattern within the liner cooling loop is studied to highlight possible risks of lithium–water/concrete reactions.


Energies ◽  
2021 ◽  
Vol 14 (20) ◽  
pp. 6506
Author(s):  
Björn Brenneis ◽  
Sergej Gordeev ◽  
Sebastian Ruck ◽  
Leonid Stoppel ◽  
Wolfgang Hering

Wakes appearing downstream of disturbances on the surface of a water flow in a concave open channel were examined experimentally. The investigated channel geometry was similar to the liquid lithium target in DONES (Demonstration fusion power plant Oriented NEutron Source). The objective of the measurements was to analyze the effect of a disturbance on the downstream layer thickness. For measuring the height profiles in the channel, an optical measurement system based on laser triangulation was developed. It was shown that the wake of the undisturbed flow emerged from the nozzle corner, which was in accordance with analytical solutions. For sufficiently large disturbances at the nozzle edge, the height profiles located downstream showed symmetrical minima and maxima on both sides of the disturbance. The wake depth strongly depended on the diameter and penetration depth of the disturbance, as well as the circumferential position in the channel, which yields to a critical wake depth of one millimeter for the lithium target in DONES.


Nanomaterials ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 2562
Author(s):  
Shuang Lian ◽  
Yu Wang ◽  
Haifeng Ji ◽  
Xiaojie Zhang ◽  
Jingjing Shi ◽  
...  

The development of solid-state polymer electrolytes is an effective way to overcome the notorious shuttle effect of polysulfides in traditional liquid lithium sulfur batteries. In this paper, cationic cyclopropenium based cross-linked polymer was firstly prepared with the one pot method, and then the counter ion was replaced by TFSI− anion using simple ion replacement. Cationic cyclopropenium hyper-crosslinked polymer (HP) was introduced into a polyethylene oxide (PEO) matrix with the solution casting method to prepare a composite polymer electrolyte membrane. By adding HP@TFSI to the PEO-based electrolyte, the mechanical and electrochemical properties of the solid-state lithium-sulfur batteries were significantly improved. The PEO-20%HP@TFSI electrolyte shows the highest Li+ ionic conductivity at 60 °C (4.0 × 10−4 S·cm−1) and the highest mechanical strength. In the PEO matrix, uniform distribution of HP@TFSI inhibits crystallization and weakens the interaction between each PEO chain. Compared with pure PEO/LiTFSI electrolyte, the PEO-20%HP@TFSI electrolyte shows lower interface resistance and higher interface stability with lithium anode. The lithium sulfur battery based on the PEO-20%HP@TFSI electrolyte shows excellent electrochemical performance, high Coulombic efficiency and high cycle stability. After 500 cycles, the capacity of the lithium-sulfur battery based on PEO-20%HP@TFSI electrolytes keeps approximately 410 mAh·g−1 at 1 C, the Coulomb efficiency is close to 100%, and the cycle capacity decay rate is 0.082%.


2021 ◽  
Vol 170 ◽  
pp. 112548
Author(s):  
Ryo Omura ◽  
Juro Yagi ◽  
Keisuke Mukai ◽  
Makoto Oyaidzu ◽  
Kentaro Ochiai ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document