LAPSE:2023.9191
Published Article

LAPSE:2023.9191
Modeling and Analysis of a Thermophotovoltaic Integrated Self-Powered Furnace
February 27, 2023
Abstract
This work investigates the energy efficiency and carbon reduction potential of self-powered residential building heating equipment using a thermodynamic modeling approach. An integrated thermophotovoltaic power module and residential scale furnace system (40,000 Btu/h) were modeled and studied in detail to assess the influence of different design configurations on primary energy efficiency. Operational characteristics such as total power generation, electrical efficiency, and heat recovery were examined in a self-powered system configuration. A sensitivity analysis was conducted to determine the influence of the electric grid’s carbon dioxide footprint (carbon intensity) and the cost of electricity on the environmental, as well as the economic, benefit associated with the self-powered configuration. Compared with a traditional furnace powered by an electric grid at a carbon intensity of 0.5 kg CO2eq/kWhEL, the self-powered furnace was shown to decrease the annual carbon dioxide emissions by approximately 550 kg (~75% reduction), while also saving more than USD 200 in utility expenses, annually. Additionally, the carbon emission reduction potential of blending different concentrations of hydrogen in natural gas fuel was also studied.
This work investigates the energy efficiency and carbon reduction potential of self-powered residential building heating equipment using a thermodynamic modeling approach. An integrated thermophotovoltaic power module and residential scale furnace system (40,000 Btu/h) were modeled and studied in detail to assess the influence of different design configurations on primary energy efficiency. Operational characteristics such as total power generation, electrical efficiency, and heat recovery were examined in a self-powered system configuration. A sensitivity analysis was conducted to determine the influence of the electric grid’s carbon dioxide footprint (carbon intensity) and the cost of electricity on the environmental, as well as the economic, benefit associated with the self-powered configuration. Compared with a traditional furnace powered by an electric grid at a carbon intensity of 0.5 kg CO2eq/kWhEL, the self-powered furnace was shown to decrease the annual carbon dioxide emissions by approximately 550 kg (~75% reduction), while also saving more than USD 200 in utility expenses, annually. Additionally, the carbon emission reduction potential of blending different concentrations of hydrogen in natural gas fuel was also studied.
Record ID
Keywords
carbon footprint, primary energy efficiency, self-powered furnace, thermophotovoltaics
Subject
Suggested Citation
Cheekatamarla P, Kowalski S, Abu-Heiba A, LaClair T, Gluesenkamp K. Modeling and Analysis of a Thermophotovoltaic Integrated Self-Powered Furnace. (2023). LAPSE:2023.9191
Author Affiliations
Cheekatamarla P: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA [ORCID]
Kowalski S: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
Abu-Heiba A: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
LaClair T: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
Gluesenkamp K: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
Kowalski S: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
Abu-Heiba A: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
LaClair T: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
Gluesenkamp K: Building and Transportation Sciences Division, Ridge National Laboratory, 1 Bethel Valley Road, MS 6070, Oak Ridge, TN 37831, USA
Journal Name
Energies
Volume
15
Issue
19
First Page
7090
Year
2022
Publication Date
2022-09-27
ISSN
1996-1073
Version Comments
Original Submission
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PII: en15197090, Publication Type: Journal Article
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LAPSE:2023.9191
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https://doi.org/10.3390/en15197090
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Feb 27, 2023
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