Proposal and Investigation of a New Tower Solar Collector-Based Trigeneration Energy System
Abstract
:1. Introduction
- To model a new trigeneration system based on a tower solar collector, a process heat exchanger, and a cogeneration cycle employing the concept of separation and flashing for simultaneous generation of heating, power, and predominantly high cooling output.
- To perform exergy analysis of the system and parametric investigation of the effects of varying selected operating parameters on overall energy and exergy efficiencies.
- To quantify the distribution of irreversibilities in system components with the aim of identifying the weak spots, meaning the component accounts for the highest exergy loss whose reduction helps to improve system performance.
2. Materials and Methods
2.1. System Description
2.2. Thermodynamic Modeling of the Proposed Trigeneration System
2.2.1. Energetic and Exergetic Analyses
2.2.2. Overall Performance Analyses
3. Results and Discussion
3.1. Impact of Solar Irradiance and Ambient Temperature
3.2. Impact of Hot Oil Supply Temperature
3.3. Impact of Process Heat Pressure
3.4. Validation of Proposed Methodology
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Con sent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Symbols | |
e | Specific flow exergy [kJ/kg] |
Exergy rate [kW] | |
h | Specific enthalpy [kJ/kg] |
Rate of flowing mass [kg/s] | |
P | Pressure (MPa) |
Heat transfer per unit time [kW] | |
T | Temperature (K) |
s | Entropy per unit mass [kJ/kg-K] |
Output power [kW] | |
Greek symbols | |
ηEUF | Energy utilization factor [%] |
ηex | Exergy efficiency [%] |
Ammonia mass fraction | |
Subscript | |
abs | Absorber |
Cond Condenser | |
d | Destruction |
el | Electrical |
ev | Evaporator |
Exp | Expander |
FC | Flash chamber |
Gen | Generator |
i | Inlet |
o | Outlet |
PH | Process heater |
SC | Subcooler |
SH | Superheater |
Sep | Separator |
SFP | Solar fluid pump |
SP | Solution pump |
SHX | Solution heat exchanger |
TV | Throttling valve |
Abbreviations | |
CSP | Concentrated solar power |
CR | Central receiver |
DNI | Direct normal irradiations |
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Property | Value |
---|---|
Temperature considered (°C) | 200 |
Viscosity (Centistoke) | 5.6 at 100 °C |
Density of oil (g/mL) | 0.693 at 260 °C |
Thermal conductivity (W. K−1.m−1) | 0.13 at 260 °C |
Specific heat (Average) (kJ. K−1.kg−1) | 2.33 |
Thermal expansion coefficient (/°C) | 0.012 |
Component | Energy Balance Rate |
---|---|
Heliostat (Halio) | |
Central Receiver (CR) | |
Process Heater (PH) | |
Expander (Exp) | |
Superheater (SH) | |
Evaporator (Eva)) | |
Condenser (Cond) | & |
Separator (Sep) | |
Subcooler (SC) | |
Generator (Gen) | |
Flash chamber (FC) | |
Solution heat exchanger (SHX) | |
Absorber (Abs) |
; & |
Throttle valve1 (TV1) | |
Throttle valve2 (TV2) | |
Throttle valve3 (TV3) | |
Solar fluid pump (SFP) | |
Solution pump (SP) |
Component | Exergy Balance Rate |
---|---|
Heliostat (Helio) | |
Central Receiver (CR) | |
Process Heater (PH) | |
Expander (Exp) | |
Superheater (SH) | |
Evaporator (Eva) | |
Condenser (cond) | |
Separator (Sep) | |
Subcooler (SC) | |
Generator (Gen) | |
Flash chamber (FC) | |
Solution heat exchanger (SHX) | |
Absorber (Abs) | |
Throttle valve1 (TV1) | |
Throttle valve2 (TV2) | |
Throttle valve3 (TV3) | |
Solar fluid pump (SFP) | |
Solution pump (SP) |
Operating Parameter | Value |
---|---|
Restricted dead state temperature (K) | 298 |
Restricted dead state pressure (MPa) | 0.10132 |
Variation in the outlet temperature of hot oil (K) | 433–503 |
Inlet temperature of hot oil (K) | 388 |
Solar radiations collected on area considered DNI (W/m2) | 500–1000 |
Temperature of Sun (K) | 5000 |
Heliostat field area (m2) | 10,000 |
Isentropic efficiency of expander (%) | 95 |
Concentration ratio | 300 |
Working fluid considered for Kalina cycle | NH3-H2O solution |
Isentropic efficiency of pump (%) | 95 |
Heliostat’s energy efficiency (%) | 75 |
Exergy based efficiency of heliostat field (%) | 75 |
Solution heat exchanger and superheater effectiveness (%) | 100 |
Description | Lu and Goswami (2003) [38] | Present Methodology with Same Working Conditions | Deviation, % |
---|---|---|---|
Source pressure, bar | 13.00 | 12.80 | 1.50 |
Sink pressure, bar | 5.50 | 5.45 | 0.91 |
Strong solution concentration, kg/kg | 0.6733 | 0.6737 | −0.06 |
Turbine exit temperature, °C | 7.60 | 7.20 | 5.20 |
Generator heat input, kW | 272.90 | 295.90 | −8.40 |
Absorber heat rejection, kW | 269.10 | 301.40 | −12.00 |
Power output, kW | 21.00 | 20.4 | 2.85 |
Vapor quality at turbine exit, % | 93.93 | 96.00 | −2.20 |
Energy Utilization Factor (EUF) | 13.26 | 13.47 | 1.58 |
Cooling output, kW | 16.20 | 16.90 | −4.32 |
Total output, kW | 37.20 | 37.84 | 6.66 |
Hot fluid supply temperature, °C | 87.00 | 85.00 | 2.30 |
Hot fluid exit temperature, °C | 57.20 | 54.30 | 5.00 |
Hot fluid mass flow rate, kg/s | 2.183 | 2.30 | −5.36 |
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Almatrafi, E.; Khaliq, A.; Kumar, R.; Bamasag, A.; Siddiqui, M.E. Proposal and Investigation of a New Tower Solar Collector-Based Trigeneration Energy System. Sustainability 2023, 15, 7474. https://doi.org/10.3390/su15097474
Almatrafi E, Khaliq A, Kumar R, Bamasag A, Siddiqui ME. Proposal and Investigation of a New Tower Solar Collector-Based Trigeneration Energy System. Sustainability. 2023; 15(9):7474. https://doi.org/10.3390/su15097474
Chicago/Turabian StyleAlmatrafi, Eydhah, Abdul Khaliq, Rajesh Kumar, Ahmad Bamasag, and Muhammad Ehtisham Siddiqui. 2023. "Proposal and Investigation of a New Tower Solar Collector-Based Trigeneration Energy System" Sustainability 15, no. 9: 7474. https://doi.org/10.3390/su15097474
APA StyleAlmatrafi, E., Khaliq, A., Kumar, R., Bamasag, A., & Siddiqui, M. E. (2023). Proposal and Investigation of a New Tower Solar Collector-Based Trigeneration Energy System. Sustainability, 15(9), 7474. https://doi.org/10.3390/su15097474