Investigation of a Solar-Driven Organic Rankine Cycle with Reheating
Abstract
:1. Introduction
2. Material and Methods
2.1. The Configurations of the Solar-Power Units
2.2. The Developed Mathematical Formulation
2.2.1. Modeling of the Solar System and Storage Tank
2.2.2. Mathematical Background for the Organic Rankine Cycle
2.2.3. Yearly Analysis and Financial Evaluation
2.3. Simulation of the Developed Models
3. Results and Discussion
3.1. Thermodynamic Analysis of the ORCs in the Steady-State Analysis
3.2. Dynamic Comparison for a Typical Day
3.3. Yearly Energetic Performance
3.4. Financial Performance
3.5. Discussion
4. Conclusions
- -
- The reheating system presents higher performance mainly due to the lower expansion ratio in every expanding device and consequently to higher isentropic efficiency.
- -
- For the reheat ORC, the global maximum system efficiency is found for 25 kW electricity capacity and 140 °C saturation temperature. The yearly system efficiency is 7.33%, ORC efficiency is 18.09%, and solar field efficiency is 40.70%.
- -
- For the simple ORC, the global maximum system efficiency is found for 25 kW electricity capacity and 90 °C saturation temperature. The yearly system efficiency is 5.45%, ORC efficiency is 10.81%, and solar field efficiency is 50.51%.
- -
- The optimum financial capacity is 15 kW for the reheat case and 10 kW for the simple case. The optimum saturation temperature is 130 °C for the reheat system and 90 °C for the simple case.
- -
- It is important to state that the optimum financial designs are found for the smaller capacities, while these present lower efficiency than higher capacities. This result indicates that the increase in capacity does not lead to a significant energy yield increase in order to overcome the extra cost due to the extra capacity.
- -
- It is useful to highlight that the results of this work indicate that the reheat system can operate in higher saturation temperatures compared to the simple system.
- -
- For optimum cases according to the NPV maximization, system efficiency for the reheat system is 6.98%, presenting an increase of 37.1% compared to the conventional case.
- -
- The maximum NPV for the reheat ORC is found at 68 k€, while it is 44 k€ for the simple ORC.
- -
- In the future, this system can be investigated with different working fluids (e.g., mixtures), phase change materials in storage devices, and other heat sources. Biomass and concentrating solar collectors are interesting choices that can be checked with the ORC reheat cycle.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
A | Area, m2 |
C0 | Investment cost, € |
c1 | Coefficient of equation 16, - |
c2 | Coefficient of equation 21, - |
CF | Cash flow, € |
d | Discount factor, % |
Eel | Yearly electricity yield, kWh |
Esol | Yearly solar yield, kWh |
GT | Solar incident irradiation, W/m2 |
h | Specific enthalpy, kJ/kg |
Kcol | Collector specific cost, €/m2 |
Ktank | Tank specific cost, €/m3 |
KORC | Thermodynamic cycle’s specific cost, €/kW |
mORC | Mass flow rate of the organic fluid, kg/s |
N | System life span, years |
NPV | Net present value, € |
O&M | Cost for operation and maintenance, € |
p | Pressure, bar |
Pel | Net electricity production, kW |
Pgen | Generator electrical production, kW |
Ppump | Pump electricity demand, kW |
Qloss | Tank thermal losses, kW |
Qhrs | Heat input in the heat recovery system, kW |
Qu | Useful heat production, kW |
Qout | Heat rejection, kW |
Qsol | Solar energy rate, kW |
PP | Pinch Point in the heat recovery system, K |
SPP | Simple payback period, € |
T | Temperature, K |
Utank | Thermal loss coefficient, W/m2 K |
V | Storage system volume, m3 |
Vr | Volumetric ratio of the expander, - |
Vout | Specific volume in the expander outlet, m3/kg |
Wexp | Work production of the expander, kW |
Wpump | Work consumption in the pump, kW |
Greek Symbols | |
ΔTrec | Approach Temperature in the recuperator, K |
ΔTsh | Superheating in the high-pressure expander inlet, K |
ηcol | Collector thermal efficiency, - |
ηgen | Electrical generator efficiency, - |
ηis,exp | Expander isentropic efficiency, - |
ηis,pump | Pump isentropic efficiency, - |
ηm | Mechanical efficiency, - |
ηmotor | Motor efficiency, - |
ηORC | Organic Rankine cycle efficiency, - |
ηsys | System efficiency, - |
ηsys,y | Yearly system efficiency, - |
Subscripts and Superscripts | |
am | Ambient |
c | Condenser |
col | Collector |
fluid | Working fluid |
is | Isentropic |
h | High |
l | Low |
m | Medium |
nom | Nominal |
sat | Saturation |
simple | Simple—conventional cycle |
st | Storage |
opt | Optimum |
reheat | Reheating |
y | Yearly |
Abbreviations | |
ETC | Evacuated tube collector |
HRS | Heat recovery system |
ORC | Organic Rankine cycle |
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Parameter | Symbol | Value |
---|---|---|
Volume of the tank | V | 5 m3 |
Solar field area | Acol | 300 m2 |
Tank’s thermal losses coefficient | Utank | 0.5 W/m2 K |
Pinch Point of the HRS | PP | 5 K |
Superheating in the high-pressure turbine | ΔTsh | 5 K |
Minimum temperature approach in the recuperator | ΔTrec | 5 K |
Pump isentropic efficiency | ηis,pump | 80% |
Mechanical efficiency | ηm | 99% |
Electrical generator efficiency | ηgen | 98% |
Motor efficiency | ηmotor | 80% |
Parameter | Symbol | Value |
---|---|---|
Project life span | N | 25 years |
Discount factor | d | 3% |
Cost for operation and maintenance | (O&M) | 0.5% ∙ C0 |
Solar cost per area | Kcol | 150 €/m2 |
Tank cost per volume | Ktank | 500 €/m3 |
Simple ORC per electrical power | KORC,simple | 2500 €/kWel |
Reheat ORC per electrical power | KORC,reheat | 3000 €/kWel |
Examined Cases | EES Model | Literature [29] | Deviation | ||||||
---|---|---|---|---|---|---|---|---|---|
Working Fluid | m | ph | pl | Pel | ηorc | Pel | ηorc | Pel | ηorc |
(kg/s) | (bar) | (bar) | (kW) | (%) | (kW) | (%) | (%) | (%) | |
R245fa | 0.020 | 7.05 | 2.09 | 139.1 | 2.83 | 139.1 | 2.84 | 0.000 | 0.352 |
R1224yd(Z) | 0.020 | 6.10 | 1.94 | 76.5 | 1.80 | 76.9 | 1.81 | 0.520 | 0.552 |
R1233zd(E) | 0.020 | 6.82 | 1.82 | 174.1 | 3.66 | 174.8 | 3.67 | 0.400 | 0.272 |
R245fa | 0.035 | 9.68 | 2.23 | 311.7 | 4.07 | 317.5 | 4.08 | 1.827 | 0.245 |
R1233zd(E) | 0.035 | 8.74 | 1.94 | 268.1 | 3.46 | 270.2 | 3.45 | 0.777 | 0.290 |
R1224yd(Z) | 0.035 | 9.21 | 2.19 | 286.7 | 4.19 | 286.5 | 4.15 | 0.070 | 0.964 |
Parameter | Reheat ORC | Simple ORC |
---|---|---|
Tsat,opt (°C) | 130 | 90 |
Pel,nom,opt (kW) | 15 | 10 |
ηsys,y | 6.98% | 5.09% |
ηORC,y | 16.94% | 10.46% |
ηcol,y | 41.44% | 48.82% |
Eel (kWh) | 38,721 | 28,213 |
SPP (years) | 10.04 | 10.84 |
NPV (€) | 68,004 | 44,008 |
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Bellos, E.; Lykas, P.; Tzivanidis, C. Investigation of a Solar-Driven Organic Rankine Cycle with Reheating. Appl. Sci. 2022, 12, 2322. https://doi.org/10.3390/app12052322
Bellos E, Lykas P, Tzivanidis C. Investigation of a Solar-Driven Organic Rankine Cycle with Reheating. Applied Sciences. 2022; 12(5):2322. https://doi.org/10.3390/app12052322
Chicago/Turabian StyleBellos, Evangelos, Panagiotis Lykas, and Christos Tzivanidis. 2022. "Investigation of a Solar-Driven Organic Rankine Cycle with Reheating" Applied Sciences 12, no. 5: 2322. https://doi.org/10.3390/app12052322
APA StyleBellos, E., Lykas, P., & Tzivanidis, C. (2022). Investigation of a Solar-Driven Organic Rankine Cycle with Reheating. Applied Sciences, 12(5), 2322. https://doi.org/10.3390/app12052322