On the Implementation of the Nearly Zero Energy Building Concept for Jointly Acting Renewables Self-Consumers in Mediterranean Climate Conditions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Description of Collective Self-Consumption nZEB under Study
2.2. Definition of the Energy Consumption Profiles
2.2.1. Thermal Energy Consumption (for Heating) Calculation
2.2.2. Thermal Energy Consumption (for Cooling) Calculation
2.2.3. Electrical Energy Consumption Calculation
2.3. Geothermal Energy System Design
2.4. PV System Design
2.5. Sizing of the Electrical Energy Storage Unit
2.6. Optimal EESU Sizing
3. Techno-Economic Analysis and Discussions
3.1. The LCCA Method
- (a)
- the Initial Cost (IC) of the investment, and
- (b)
- the payback period of the proposed investment.
3.2. LCCA of the Proposed Energy System
3.2.1. LCCA of the Building Energy Consumption
3.2.2. LCCA of the PV System
3.2.3. LCCA of the Geothermal Energy System
3.2.4. LCCA of the TES Unit
3.2.5. LCCA of the EESU
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
AC | Alternative Current |
ASHP | Air-source heat pump |
BAPV | Building Applied Photovoltaic System |
BEA | Building Energy Analysis |
BHEs | Borehole heat exchangers |
BIPV | Building Integrated Photovoltaic System |
BIPV/T | Building Integrated Photovoltaic/Thermal system |
CCHP | Combined cooling, heating and power system |
CHP | Cooling, heating and power system or cogeneration system |
CO2 | Carbon dioxide |
COP | Coefficient of performance |
Cstorage | Storage capacity (kWhe) |
Cstorage,ref | Reference value of storage capacity (kWhe) |
d | Discount rate (%) |
D | Down payment (%) |
DHW | Domestic hot water |
DSO | Distribution System Operator |
e | Escalation of energy costs (%) |
e(K) | Cost function of optimal storage capacity |
E | Annual cost of the energy (€) |
EABSORBED | Absorbed energy (€) |
EAHP | Exhaust air heat pump |
EER | Energy efficiency ratio |
EESU | Electrical energy storage unit |
ESS | Energy storage system |
ESUs | Energy storage units |
EU | European Union |
g | Inflation rate (%) |
GCHP | Gound-coupled heat pump |
GDHS | Geothermal district heating system |
GHEs | Geothermal heat exchangers or Ground heat exchangers |
GHP | Geothermal heat pump |
GSHP | Ground-source heat pump |
GWHP | Ground-water heat pump |
HEDNO | Hellenic Electricity Distribution Network Operator |
HPSU | Heat pump storage unit |
HVAC | Heating, ventilation and air-conditioning |
i | Borrowing rate (%) |
I | Funding of the investment (%) |
IC | Initial Cost (€) |
K | Normalized variable |
LCCTOTAL | Total life cycle cost of the building (€) |
LCCA | Life Cycle Cost Assessment |
Li-ion | Lithium iodide battery |
LPG | Liquified Pretroleum Gas |
LVDS | Low Voltage Distribution System |
N | Period of analysis (years) |
N1 | The minimum between N and N1 (years) |
NΔ | Borrowing period (years) |
nZEB | nearly Zero Energy Building |
OM | Operation and Maintenace (€) |
PV | Photovoltaic system |
PV | Present Value (€) |
PVABSORBED | Present value of absorbed energy (€) |
PVENER | Present value of the energy cost that is supplied by the grid (€) |
PVINT | Present value of the annual interest (€) |
PVITC | Present value of the funding of the investment (€) |
PVLOAN | Present value of the lean installment (€) |
PVMISC | Present value of the various costs during the life cycle, such as maintenance costs (€) |
PVREP | Present value of the replacement costs (€) |
PVSYS | Present value of total system cost (€) |
PVSV | Present value of the system remaining value at the end of the period of analysis (€) |
PVTOTAL | Total present value of the investment (€) |
PVF | Present Value Function (€) |
PV/GHP | Photovoltaic/Geothermal heat pump system |
PV/ST | Photovoltaic/Solar thermal system |
PV/T | Photovoltaic/Thermal system |
r | The number of replacements during the analysis period |
R | Replacement cost of a subsystem with reference to the first year of operation (€) |
RES | Renewable Energy Sources |
SOCmax | Maximum State of Charge value (%) |
SOCmin | Mimimum State of Charge value (%) |
STC | Standard Test Conditions |
t | Income tax (%) |
TES | Thermal energy storage |
UTES | Underground thermal energy storage |
WPP | Wind power plant |
X | Any investment to be analyzed (€) |
ΔEgrid, month | Absolute value of the maximum energy transaction between the building and the electricity grid during the 10 – years period (kWhe) |
ΔEgrid, month,ref | Reference value of maximum energy transaction between the building and the electricity grid during the 10 – years period (kWhe) |
ΔEpeak-to-peak | Peak-to-peak stored energy fluctuation in EESU (kWhe) |
ΔEstorage, month | Maximum permitted energy fluctuation in the EESU per month (kWhe) |
ΔEstorage, month,ref | Reference value of maximum permitted energy fluctuation in the EESU per month (kWhe) |
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Energy Source | Primary Energy Factor | Emissions kg CO2/kWh |
---|---|---|
Natural Gas | 1.05 | 0.196 |
Heating Diesel | 1.1 | 0.264 |
Electric Energy | 2.9 | 0.989 |
LPG | 1.05 | 0.238 |
Biomass | 1 | - |
District heating by thermal stations | 0.7 | 0.347 |
District heating by RES | 0.5 | - |
GHP Technical Data | HPSU Technical Data | |
---|---|---|
Heating capacity (kWth,h) | 22.26 | 71.8 |
Cooling capacity (kWth,c) | 24.9 | 50.5 |
COP | 3.13 | 5.04 |
EER | 4.4 | 3.46 |
Cstorage (kWh) | Maximum Permitted EESU Energy Fluctuations Per Month (kWhe/Month) |
---|---|
1040 | ±100 |
2264 | ±250 |
3377 | ±400 |
4342 | ±500 |
5988 | ±750 |
7400 | ±1000 |
13,080 | ±2000 |
Cstorage (kWh) | ΔEgrid,month (kWh) | Reduction of Energy Transactions (%) | Optimum Storage Capacity Normalized in Terms of Building Energy Consumption (%) |
---|---|---|---|
0 | 2389 | 0 | 0 |
1040 | 2289 | 4.19 | 0.31 |
2264 | 2184 | 8.58 | 0.68 |
3377 | 1989 | 16.75 | 1.02 |
4342 | 1889 | 20.93 | 1.31 |
5988 | 1639 | 31.40 | 1.81 |
7400 | 1389 | 41.86 | 2.23 |
13,080 | 389 | 83.73 | 3.95 |
Economic Parameters | |
Discount rate, d | 0.25%, 0% (*) |
Inflation rate, g | 0.30% |
Borrowing rate, i | 0% |
Down payment, D Escalation of energy costs, e | 0% 0.50% |
Time Parameters | |
Period of analysis, N | 25 years |
Borrowing period, NΔ | 10 years, 0 years (*) |
(*) Values that correspond to the LCCA of the initial building |
Cstorage (kWh) | LCCTOTAL (€) | Total Initial Cost (€) | Funding for the Investment (€) | Rate of Required Subsidy (%) |
---|---|---|---|---|
0 | 289k€ | 114k€ | 26k€ | 23.31 |
100 | 376k€ | 146k€ | 113k€ | 77.60 |
250 | 424k€ | 170k€ | 160k€ | 94.44 |
400 | 447k€ | 194k€ | 184k€ | 94.50 |
500 | 503k€ | 211k€ | 240k€ | 113.83 |
750 | 582k€ | 251k€ | 319k€ | 127.01 |
1000 | 662k€ | 292k€ | 398k€ | 136.5 |
2000 | 979k€ | 454k€ | 716k€ | 157.52 |
Cstorage (kWh) | Total Absorbed Energy on 25 Year Basis (MWhe) | Total Cost of Absorbed Energy (€) |
---|---|---|
0 | 159.2 | 6949 |
100 | 156.9 | 6848 |
250 | 152.6 | 6662 |
400 | 150.1 | 6554 |
500 | 146.5 | 6395 |
750 | 142.4 | 6215 |
1000 | 137.2 | 5991 |
2000 | 116.7 | 5097 |
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Kotarela, F.; Kyritsis, A.; Papanikolaou, N. On the Implementation of the Nearly Zero Energy Building Concept for Jointly Acting Renewables Self-Consumers in Mediterranean Climate Conditions. Energies 2020, 13, 1032. https://doi.org/10.3390/en13051032
Kotarela F, Kyritsis A, Papanikolaou N. On the Implementation of the Nearly Zero Energy Building Concept for Jointly Acting Renewables Self-Consumers in Mediterranean Climate Conditions. Energies. 2020; 13(5):1032. https://doi.org/10.3390/en13051032
Chicago/Turabian StyleKotarela, Faidra, Anastasios Kyritsis, and Nick Papanikolaou. 2020. "On the Implementation of the Nearly Zero Energy Building Concept for Jointly Acting Renewables Self-Consumers in Mediterranean Climate Conditions" Energies 13, no. 5: 1032. https://doi.org/10.3390/en13051032
APA StyleKotarela, F., Kyritsis, A., & Papanikolaou, N. (2020). On the Implementation of the Nearly Zero Energy Building Concept for Jointly Acting Renewables Self-Consumers in Mediterranean Climate Conditions. Energies, 13(5), 1032. https://doi.org/10.3390/en13051032