scispace - formally typeset
Journal ArticleDOI

HYLIFE-II: A Molten-Salt Inertial Fusion Energy Power Plant Design — Final Report

Reads0
Chats0
TLDR
In this article, the liquid-wall HYLIFE-II conceptual design has been presented, which has been shown to reduce the electricity cost by using a neutronically thick array of flowing molten-salt jets, which will not burn, has a low tritium solubility and inventory, and protects the chamber walls.
Abstract
Enhanced safety and performance improvements have been made to the liquid-wall HYLIFE reactor, yielding the current HYLIFE-II conceptual design. Liquid lithium has been replaced with a neutronically thick array of flowing molten-salt jets (Li[sub 2]BeF[sub 4] or Flibe), which will not burn, has a low tritium solubility and inventory, and protects the chamber walls, giving a robust design with a 30-yr lifetime. The tritium inventory is 0.5 g in the molten salt and 140 g in the metal of the tube walls, where it is less easily released. The 5-MJ driver is a recirculating induction accelerator estimated to cost $570 million (direct costs). Heavy-ion targets yield 350 MJ, six times per second, to produce 940 MW of electrical power for a cost of 6.5 cents/kW[center dot]h. Both larger and smaller yields are possible with correspondingly lower and higher pulse rates. When scaled up to 1934 MW (electric), the plant design has a calculated cost of electricity of 4.5 cents/kW[center dot]h. The design did not take into account potential improved plant availability and lower operations and maintenance costs compared with conventional power plant experience, resulting from the liquid wall protection. Such improvements would directly lower the electricity cost figures. For example,more » if the availability can be raised from the conservatively assumed 75% to 85% and the annual cost of component replacement, operations, and maintenance can be reduced from 6% to 3% of direct cost, the cost of electricity would drop to 5.0 and 3.9 cents/kW[center dot]h for 1- and 2-GW (electric) cases. 50 refs., 15 figs., 3 tabs.« less

read more

Citations
More filters
Journal ArticleDOI

Partial Pocket Experiments for IFE Thick-Liquid Pocket Disruption and Clearing

TL;DR: In this article, the authors present scaling analysis and experiments to show that cartridges loaded with smokeless gunpowder can match, in scaled water-jet experiments, the impulse-induced trajectories and clearing phenomena that IFE targets would generate with molten salt jets.
Journal ArticleDOI

Code O-SUKI: Simulation of direct-drive fuel target implosion in heavy ion inertial fusion

TL;DR: The O-SUKI code system provides an integrated tool to simulate the HIF DT fuel pellet implosion, ignition and burning of a direct-drive nuclear-fusion pellet in heavy ion beam (HIB) inertial confinement fusion.
Journal ArticleDOI

Accident consequences analysis of the HYLIFE-II inertial fusion energy power plant design

TL;DR: In this article, computer codes traditionally used for magnetic fusion safety analyses (CHEMCON, MELCOR) have been applied for simulating accident conditions in a simple model of the HYLIFE-II IFE design.
Journal ArticleDOI

Advances in direct numerical simulation for MHD modeling of free surface flows

TL;DR: In this article, a direct numerical simulation (DNS) with non-deformable surface was first succeeded by imposing freeslip and non-slip conditions as velocity boundary conditions at the upper and lower, respectively.
References
More filters
ReportDOI

High-Yield Lithium-Injection Fusion-Energy (HYLIFE) reactor

TL;DR: The High-Yield Lithium-Injection Fusion Energy (HYLIFE) concept to convent inertial confinement fusion energy into electric power has undergone intensive research and refinement at LLNL since 1978 as discussed by the authors, focusing on the HYLIFE reaction chamber (which includes neutronics, liquid-metal jet-array hydrocynamics, and structural design), supporting systems, primary steam system and balance of plant, safety and environmental protection, and costs.
Journal ArticleDOI

Waste Disposal Assessment of HYLIFE-II Structure

TL;DR: The initial scoping analysis indicates that by using Type 304 stainless steel (SS), most of the vacuum vessel's structural mass in the HYLIFE-II inertial fusion energy power plant conceptual design cou....
Journal ArticleDOI

HYLIFE-II Inertial Confinement Fusion Reactor Design

TL;DR: The HYLIFE-II inertial fusion power plant design study uses a liquid fall, in the form of jets to protect the first structural wall from neutron damage, x-rays, and blast to provide a 30-y lifetime.
Journal ArticleDOI

Hylife-II Inertial Fusion Energy Power Plant Design

TL;DR: In this article, an inertial fusion power plant design study uses a liquid fall, in the form of jets, to protect the first structural wall from neutron damage, x rays, and blast to provide a 30-y lifetime.
Journal ArticleDOI

Updated comparison of economics of fusion reactors with advanced fission reactors

TL;DR: In this article, the projected cost of electricity (COE) for fusion is compared with that from current and advanced nuclear fission and coal-fired plants, and the results show COEs of about 59--74 mills/kWh for the fusion designs considered.
Related Papers (5)