Performance Evaluation of a Solar Heat-Driven Poly-Generation System for Residential Buildings Using Various Arrangements of Heat Recovery Units
Abstract
:1. Introduction
2. Systems Description
3. Thermodynamics Analysis and Mathematical Modeling
- All processes inside the system run at a constant rate;
- The system fails to account for air and water leaks in its components;
- Energy from motion and gravity is ignored;
- Wet-bulb air and blowdown water temperatures remain stable as they leave the humidifier;
- There is no difference in the mass flow rate between process air, return air, and water.
- At the outlet of the ORC condenser, the temperatures of the air (ta8) and the water (tw3) are the same;
- HE-2 operates at full efficiency (ta8 = ts1);
- At the turbine inlet, the ORC fluid is dry-saturated and superheated, depending on the values of tevap and the degree of superheating.
- At the pump input, the ORC fluid is in a saturated liquid condition due to the condenser’s pressure;
- The energy used by auxiliary components (such as fans) is not considered in the DCS and HDH systems;
- n-Octane, an organic fluid with desirable performance and thermodynamic characteristics [47], is used for comparative investigation of the suggested systems; and
3.1. Organic Rankine Cycle (ORC)
3.2. Desiccant Cooling System (DCS)
3.3. Humidification–Dehumidification Water Desalination System (HDH)
3.4. Hot Water for Domestic Application in IS-I
3.5. Air and Water Waste Heat Recovery in IS-II
3.6. System Performance Parameters and Evaluation
- : hours of daylight (12 h);
- WUR: water unit rate USD/kg
- EUR: Energy unit rate USD/kWh
4. Results and Discussion
4.1. Model Validation
4.2. System Productivity
4.3. System Performance
4.4. System Selection, Evaluation, and Assessment
4.5. Comparisons with Previous Related Systems
5. Conclusions and Recommendations
- With the suggested poly-generation systems, small and medium-sized buildings may generate their power, fresh water, and cooling/domestic heating while still providing a comfortable environment for their occupants.
- , , and all increase with tsup and are reduced with ORC condensing temperature, whereas tw1 has a negative impact on , a positive impact on , and a negligible impact on .
- Mass flow rate ratio (MR) has adverse effects on and a positive effect on until it reaches a maximum value at MR = 0.25, then reduces with increased MR.
- The IS-II system exhibits a higher freshwater productivity and space cooling capacity that the other systems (BS and IS-I).
- The GORHDH, TGOR, STG, and STGP values for the IS-I system are greater than those of the BS and IS-II systems, whereas the STG and STGP values for the IS-I system are higher than those of the BS system.
- Seawater inlet temperature adversely affects GORHDH, COPDCS (IS-II), TGOR, STG, and STGP for all systems.
- COPDCS, TGOR, STGP, and STG increase with increased MR until they reach the highest values at MR = 0.25, then decrease considerably.
- For MR > 0.25, the COPDCS of the IS-I and BS systems is higher than that of the IS-II system.
- The maximum , , and within the ranges of all studied parameters are 102.0 kW (all systems), 214.0 kg/h (IS-II), and 29.94 kW (IS-II), respectively.
- The maximum TGOR, STG, and STGP within the varieties of all studied parameters are 0.6303 (IS-I), 3.8239 kWh/m2 (IS-I), and USD 0.1490/m2 (IS-I), respectively.
- In conclusion, future research on poly-generation systems should focus on enhancing ORC to power various air conditioning (absorption and adsorption) and desalination (RO and MED) systems.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
A | Area, m2 |
Cp | Specific heat, kJ/kg K |
F1, F2 | Combined potential |
hfg | Water latent heat of evaporation, kJ/kg |
h | Specific enthalpy, kJ/kg |
Q• | Rate of heat transfer, kW |
t | Temperature, °C |
W | Humidity ratio, gv/kga |
Subscript | |
a | Air/dry air/actual |
atm | Atmosphere |
avg | Average |
g | Generator |
hum | Humidifier |
i = 1,2,3 | Index referring to numerous locations of the desiccant system |
imp | Improvement |
in | Input |
ind | Independent |
ma | Moist air |
v | Water vapor |
reg | Regeneration |
R,a | Return air |
P,a | Process air |
P | Pump |
t | Turbine |
w | Seawater |
1, 2, 3, … | State points |
Abbreviations | |
RO | Reverse osmosis |
SOFC | Solid oxide fuel cell |
STG | Specific total gained energy, kWh/m2 |
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Assumptions | |
---|---|
Pump efficiency of ORC, ηpump [49] | 0.85 |
Turbine efficiency of ORC, ηturbine [49] | 0.85 |
Evacuated tube solar collector efficiency, ηsolar [50] | 0.6320 |
ORC electrical generator efficiency, ηg [49] | 0.95 |
Desiccant wheel efficiency, ηF1 [49,51] | 0.05 |
Desiccant wheel efficiency, ηF2 [49,51] | 0.95 |
Evaporative cooler-1 efficiency, ηDEC-1 [49,51] | 0.90 |
Evaporative cooler-2 efficiency, ηDEC-2 [49,51] | 0.90 |
Heat exchanger effeciencies, ηHE-1, ηHE-2, ηHE-3, and ηHE-4 [49,51] | 0.80 |
Dehumidifier efficiency, ηDh [17]. | 0.95 |
HDH | ORC | DCS | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
m•w/m•a (kgw/kga) | GORHDH | Pevap [bar] | ηORC | Treg [°C] | COPDCS | ||||||
Exp. Zubair et al. [55] | Num. Current Model | Relative Error (%) | Exp. Galloni et al. [56] | Num. Current Model | Relative Error (%) | Exp. Panaras et al. [51] | Num. Current Model | Relative Error (%) | |||
1.36 | 0.335 | 0.325 | 3 | 6.180 | 6.313 | 5.842 | 7.46 | 50 | 0.387 | 0.402 | 3.8 |
6.897 | 6.347 | 6.35 | 0.05 | ||||||||
1.89 | 0.365 | 0.375 | 2.7 | 7.906 | 5.241 | 6.96 | 32 | 60 | 0.412 | 0.431 | 4.6 |
8.806 | 8.150 | 7.423 | 9 | ||||||||
2.27 | 0.375 | 0.387 | 3.2 | 9.587 | 8.981 | 7.777 | 13.4 | 70 | 0.443 | 0.470 | 6.1 |
9.955 | 8.889 | 7.931 | 10.8 |
Ref. | System Structure | System Productivities | Initial Motivator | Purpose | Description of the Research | Max. Freshwater Productivity (kg/h) | TGORmax/ηmax |
---|---|---|---|---|---|---|---|
Nada et al. [54] | co-generation | Cooling and fresh water | Vapor compression refrigeration cycle | Residential | Experimental | 17.42 | --- |
Fouda et al. [17] | Modeling | 21.5 | |||||
Nada et al. [52] | 375 | ||||||
Elattar et al. [60] | 534 | ||||||
Abdelhay et al. [34] | tri-generation | Electricity, cooling, and potable water | Solar/Rankine cycle | Residential | 22.9 | --- | |
Chen et al. [62] | Cooling, heating, and power | Solar/ORC combined | --- | 82.96% | |||
Fouda et al. [44] | Electricity, cooling, and potable water | 72.37 | 26.43 % | ||||
Bellos and Tzivanidis [38] | Cooling, heating, and power | Solar | Residential | --- | 87.39% | ||
Lian et al. [63] | Steam turbine (biomass) | Industrial | 72.8 % | ||||
Choi et al. [61] | Combined-cycle gas turbine | Commercial | 53.3% | ||||
Puig-Arnavat et al. [59] | Internal combustion engine | 64.2% | |||||
Al-Sulaiman et al. [57] | SOFC/ORC combined | 74% | |||||
Huang et al. [58] | ORC | 71.7% | |||||
Current systems | Poly-generation | Cooling, heating, power, and fresh water | Solar/ORC combined | Residential | Modeling | 214.7 (IS-II) | 63.03% (IS-I) |
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Alqaed, S.; Fouda, A.; Elattar, H.F.; Mustafa, J.; Almehmadi, F.A.; Refaey, H.A.; Alharthi, M.A. Performance Evaluation of a Solar Heat-Driven Poly-Generation System for Residential Buildings Using Various Arrangements of Heat Recovery Units. Energies 2022, 15, 8750. https://doi.org/10.3390/en15228750
Alqaed S, Fouda A, Elattar HF, Mustafa J, Almehmadi FA, Refaey HA, Alharthi MA. Performance Evaluation of a Solar Heat-Driven Poly-Generation System for Residential Buildings Using Various Arrangements of Heat Recovery Units. Energies. 2022; 15(22):8750. https://doi.org/10.3390/en15228750
Chicago/Turabian StyleAlqaed, Saeed, Ali Fouda, Hassan F. Elattar, Jawed Mustafa, Fahad Awjah Almehmadi, Hassanein A. Refaey, and Mathkar A. Alharthi. 2022. "Performance Evaluation of a Solar Heat-Driven Poly-Generation System for Residential Buildings Using Various Arrangements of Heat Recovery Units" Energies 15, no. 22: 8750. https://doi.org/10.3390/en15228750
APA StyleAlqaed, S., Fouda, A., Elattar, H. F., Mustafa, J., Almehmadi, F. A., Refaey, H. A., & Alharthi, M. A. (2022). Performance Evaluation of a Solar Heat-Driven Poly-Generation System for Residential Buildings Using Various Arrangements of Heat Recovery Units. Energies, 15(22), 8750. https://doi.org/10.3390/en15228750