Graphical Abstract Figure
Graphical Abstract Figure
Close modal

Abstract

Strong synergies exist between cogeneration and renewables for reducing emission of harmful gases in the transition period toward carbon neutrality. Integration of combined heat and power (CHP) with renewables and energy storage along with electrification of buildings is a pathway to create resilient and efficient solutions towards decarbonization. Optimizing the size of a CHP system to satisfy both electrical and thermal loads of a given facility while minimizing fuel consumption is a challenging problem. The thermal load consists of heating, cooling, or hot water production. Integration of renewable energy sources and energy storage presents additional design challenges. An interactive software was developed by the authors to quickly estimate the performance of different configurations of CHP and renewable energy sources and it was tested for an office complex of four commercial buildings found in National Renewable Energy Laboratory's dataset End-Use Load Profiles for the U.S. Building Stock. The software is intended to size CHP devices and calculate the Energy Utilization Factor (EUF), CO2 emissions, and the rate of Entropy Production. A heat pump module and solar photovoltaic with electrical power storage were introduced for this study. The objective of this paper is to compare different configurations of renewable or low-emission technologies and design an appropriate solution for a test data set for a Typical Metrological Year (TMY). The software requires energy inputs separated by cooling load, heating load, and electric demand as a time series and is used to optimize the plant size to match all the loads to the corresponding systems.

References

1.
Genovese
,
M.
,
Lucarelli
,
G.
, and
Fragiacomo
,
P.
,
2023
, “
Feasibility Analysis of a Fuel Cell-Based Tri-Generation Energy System Via the Adoption of a Multi-Objective Optimization Tool
,”
ASME J. Energy Resour. Technol.
,
145
(
9
), p.
091401
.
2.
Colakoglu
,
M.
, and
Durmayaz
,
A.
,
2022
, “
Multiobjective Optimization of a Novel Solar Tower-Based Gas Turbine-Driven Multi-Generation Plant With Energy, Exergy, Economic, and Environmental Impact Analysis
,”
ASME J. Energy Resour. Technol.
,
144
(
5
), p.
051302
.
3.
Szega
,
M.
, and
Żymełka
,
P.
,
2018
, “
Thermodynamic and Economic Analysis of the Production of Electricity, Heat, and Cold in the Combined Heat and Power Unit With the Absorption Chillers
,”
ASME J. Energy Resour. Technol.
,
140
(
5
), p.
052002
.
4.
Mokheimer
,
E. M. A.
, and
Dabwan
,
Y. N.
,
2019
, “
Performance Analysis of Integrated Solar Tower With a Conventional Heat and Power Co- Generation Plant
,”
ASME J. Energy Resour. Technol.
,
141
(
2
), p.
021201
.
5.
You
,
D.
,
Tatli
,
A. E.
,
Ghanavati
,
A.
, and
Metghalchi
,
H.
,
2022
, “
Design and Analysis of a Solar Energy Driven Tri-Generation Plant for Power, Heating, and Refrigeration
,”
ASME J. Energy Resour. Technol.
,
144
(
8
), p.
082105
.
6.
Sellers
,
D.
,
2022
, “
Learning About TMY
,”
ASHRAE J.
,
64
(
10
), pp.
26
35
.
7.
Alliance to Save Energy
,
2018
, https://www.ase.org/initiatives/buildings
8.
Rumsey
,
P.
,
LE Garrec
,
J.
, and
Levasseur
,
A.
,
2021
, “
How Building Decarbonization Can Transform HVAC
,”
ASHRAE J.
,
63
(
9
), pp.
14
27
.
9.
DOE
,
2020
, “
Compliance Certification Database
,” Energy Efficiency & Renewable Energy, U.S. Department of Energy. https://tinyurl.com/y4whu7xa
10.
Kowalski
,
G. J.
, and
Zenouzi
,
M.
,
2006
, “
Selection of Distributed Power Generating Systems Based on Electric, Heating and Cooling Loads
,”
ASME J. Energy Resour. Technol.
,
128
(
3
), pp.
168
178
.
11.
Kowalski
,
G. J.
, and
Zenouzi
,
M.
,
2007
, “
Renewable Energy and Hybrid Turbine-Fuel Cell Cogeneration System's Predicted Performance
,”
Proceedings of the IMECE 2007
,
Seattle, WA
,
Nov. 11–15
, Paper No. IMECE2007-43679.
12.
Kowalski
,
G. J.
, and
Zenouzi
,
M.
,
2008
, “
Predicted Performance of an Integrated Solar Thermal and Photovoltaic System With Hybrid Turbine-Fuel Cell Cogeneration System
,”
Proceeding of the ES2008
,
Jacksonville, FL
,
Aug. 10–14
, Paper No. ES2008-54071.
13.
Mao
,
S.
,
Kowalski
,
G. J.
, and
Zenouzi
,
M.
,
2016
, “
Evaluation of a Residential Scale Hybrid Co-Generation System
,”
Proceeding of the IMECE 2016
,
Phoenix, AZ
,
Nov. 11–17
,
Vol. 50589, p. V06AT08A013
.
14.
Naman
,
Y.
,
Kowalski
,
G. J.
, and
Zenouzi
,
M.
,
2021
, “
Introducing Students to Cogeneration Systems Using a Design and Analysis Software in Energy Systems
,”
Proceedings of the IMECE2021
,
Nov. 1–5
, Paper No. IMECE2021-73227.
15.
Zenouzi
,
M.
,
Naman
,
Y.
, and
Kowalski
,
G. J.
,
2022
, “
Strategic Integration of Renewable Energy, Energy Storage, and Heat Pump With CHP Devices to Reduce Carbon Dioxide Emissions and Operation Costs—Case Studies Using an Analysis and Design Software
,”
Proceedings of the 2022 ASHRAE Winter Conference
,
Las Vegas, NV
,
Jan. 29–Feb. 2
, Paper No. 30152 (LV-22-C014).
16.
Naman
,
Y.
,
Zenouzi
,
M.
, and
Kowalski
,
G.
,
2023
, “
An Energy Transition Pathway Towards Building Decarbonization—Coupling CHP Units With Renewable Energy and Energy Storage Systems
,” Paper No. IMECE2023-113992, p. V007T08A078.
17.
Bejan
,
A.
,
1982
, “
Second-Law Analysis in Heat Transfer and Thermal Design
,”
Adv. Heat Transfer
,
15
, pp.
1
58
.
18.
Bejan
,
A.
,
1996
, “
Entropy Generation Minimization: The New Thermodynamics of Finite-Time Processes
,”
J. Appl. Phys.
,
79
(
3
), pp.
1191
1218
.
19.
Wilson
,
E.
,
2014
, 11 25, “
Commercial and Residential Hourly Load Profiles for All TMY3 Locations in the United States
,” National Renewable Energy Laboratory, https://data.openei.org/submissions/153, Accessed February 1, 2021.
You do not currently have access to this content.