DOE PAGES title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Simulation of 15% and 50% Thermal Power Dispatch to an Industrial Facility Using a Flexible Generic Full-Scope Pressurized Water Reactor Plant Simulator

Journal Article · · Energies
DOI: https://doi.org/10.3390/en15031151 · OSTI ID:1924799

Nuclear power plants in the United States are increasingly challenged to compete in wholesale electricity markets due to the low electricity costs and increasingly dynamic grid conditions from competing generation sources. An alternative market for nuclear power is industrial facilities that can use the thermal and/or electrical power generated by a nuclear power plant to offset the economic losses incurred by electricity market challenges. A generic pressurized water reactor (PWR) simulator was used to show the results of a basic design for a generic thermal power extraction system and tests were run using a set of procedures to show what happens when a nuclear power plant transitions from full electrical power dispatch to 15% and 50% thermal power dispatch. This type of operation leads to losses in turbine performance efficiency due to the deviation from the design operating point, but because the thermal power is also used by the industry load without conversion losses, the combined thermal efficiency of the PWR increases. For the 15% case, the thermal efficiency increased from 32% to 41.9%, while for the 50% case, the efficiency increased up to 60.1%. In addition, for 50% thermal power dispatch, the power dissipated by the condenser decreased from approximately 2000 to approximately 1300 MW (thermal), indicating a substantially diminished impact on the environment in terms of releasing heat into the cooling water reservoir.

Research Organization:
Idaho National Laboratory (INL), Idaho Falls, ID (United States)
Sponsoring Organization:
USDOE Office of Nuclear Energy (NE)
Grant/Contract Number:
AC07-05ID14517
OSTI ID:
1924799
Report Number(s):
INL/INT-21-61773-Rev000
Journal Information:
Energies, Journal Name: Energies Journal Issue: 3 Vol. 15; ISSN 1996-1073
Publisher:
MDPICopyright Statement
Country of Publication:
United States
Language:
English

References (9)

Using next generation nuclear power reactors for development of a techno‐economic model for hydrogen production journal July 2019
Thermodynamic modeling of a nuclear energy based integrated system for hydrogen production and liquefaction journal July 2016
Development and assessment of a novel integrated nuclear plant for electricity and hydrogen production journal February 2017
District heating and cooling in Sweden journal May 2017
Regress in nuclear district heating. The need for rethinking cogeneration journal December 2020
A Dynamic Model of Small Modular Reactor Based Nuclear Plant for Power System Studies journal June 2020
The Impact of Climate Changes on the Thermal Performance of a Proposed Pressurized Water Reactor: Nuclear-Power Plant journal April 2014
Effects of Wetness in Steam Turbines
  • Hesketh, J. A.; Walker, P. J.
  • Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, Vol. 219, Issue 12 https://doi.org/10.1243/095440605X32110
journal December 2005
Status Report on the High-Temperature Steam Electrolysis Plant Model Developed in the Modelica Framework (FY17) report August 2017