Design of Solar-Powered Cooling Systems Using Concentrating Photovoltaic/Thermal Systems for Residential Applications
Abstract
:1. Introduction
2. Problem Statement and Operating Principle
3. System Description and Methodology
4. Theory
- The flow rate is at steady-state conditions.
- Negligible heat losses through the pumps.
- Negligible heat loss from the solar collector to the storage tank, since the pipes are well insulated.
- Negligible heat loss from the storage tank to the absorption chiller, since the temperature drop would be small and can be neglected.
- The pumping rate is constant in the absorption chiller loop.
4.1. Concentrating Photovoltaic Thermal (CPV/T) Collector
4.2. Storage Tank
4.3. Auxiliary Heater
4.4. Absorption Chiller
5. Results and Discussion
5.1. Transient Analysis Solar Radiation
5.2. Transient Analysis of Collector Outlet Temperature
5.3. Chiller Inlet Temperatures and Auxiliary Heater Requirement
5.4. Analysis of CPV/T Power Generation
5.5. Model Validation
- The area of the collector is 60 m2.
- The storage tank size is 1 m3.
- The mass flow rate is varied from 200 kg/h to 1500 kg/h.
6. Feasibility and Cost Analysis
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Symbols | Subscript | ||
area | aperture | ||
concentration ratio | ambient | ||
modified collector heat removal factor | photovoltaic cell | ||
solar irradiance | collector energy output | ||
enthalpy | electrical | ||
mass flow rate | evaporator | ||
electrical power | fluid at the inlet | ||
thermal capacity | heater | ||
temperature ) | system | ||
modified overall heat loss coefficient | thermal | ||
β | temperature coefficient of the solar cell | tot | total |
efficiency | |||
transmittance–absorptance product | |||
Abbreviations | |||
AED | United Arab Emirates Dirham | ||
AEC | Annual Electricity Consumption | ||
COP | Coefficient of Performance | ||
CPC | Compound Parabolic Collector | ||
CPV/T | Concentrating Photovoltaic Thermal | ||
DEWA | Dubai Electricity and Water Authority | ||
EIA | Energy Information Administration |
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Roof Area of Building = 400 m2 | |||||
---|---|---|---|---|---|
Component | Material | Thickness (mm) | Density (kg/m2) | Thermal Conductivity (W/mK) | Specific Heat Capacity (kJ/kgK) |
Exterior Walls | Plaster (light weight) | 0.02 | 2699 | 0.16 | 0.9 |
Light weight, dry, 750 kg/m3 | 0.07 | 30 | 0.83 | 1.12 | |
Extruded Polystyrene | 0.06 | 25 | 0.03 | 1.2 | |
Light weight, dry, 750 kg/m3 | 0.07 | 30 | 0.83 | 1.12 | |
Plaster (light weight) | 0.02 | 2699 | 0.16 | 0.9 | |
Floor | Concrete Slab | 150 | 2500 | 1.95 | 0.9 |
Sand cement screed | 50 | 2080 | 1 | 0.84 | |
Tiles | 20 | 2284 | 1.104 | 0.8 | |
Roof | Tiles | 0.028 | 1.1 | 0.8 | |
Cement mortar | 0.01 | 0.72 | 0.4 | ||
Alluvial Clay, 40% sands | 0.058 | 1.21 | 6 | ||
Polyisocyanate | 0.05 | 0.021 | 0.8 | ||
Fiber board, wet felted | 0.004 | 0.051 | 1.12 | ||
Foamed, 700 kg/m3 | 0.05 | 0.15 | 1.507 | ||
Dense, reinforced | 0.27 | 1.9 | 1.1 | ||
Plaster (light weight) | 0.02 | 0.16 | 0.9 | ||
Internal Heat Gains and Zone Infiltration | Flat Type | Office Type | |||
Number of People | 8 | 6 | |||
Lighting (W/m2) | 26 | 26 | |||
Electrical Equipment (W/m2) | 100 | 150 | |||
Zone Infiltration (ACH) | 1 | 0.5 |
CPV/T Model | |
---|---|
Aperture Area | |
Concentrating Ratio | 40 |
Heat Transfer Coefficient | |
Type of PV | Monocrystalline Silicon |
Single-Effect Absorption Chiller | |
Hot Water Inlet Temperature | 110 °C |
Hot Water Outlet Temperature | 90 °C |
Hot Water Flow Rate | |
Cooling Water Inlet Temperature | 35 °C |
Cooling Water Outlet Temperature | 40.5 °C |
Cooling Water Flow Rate | 138 |
Chilled Water Inlet Temperature | 12.2 °C |
Chilled Water Outlet Temperature | 6.7 °C |
Chilled Water Flow Rate | 57.2 |
Coefficient of Performance (COP) | 0.72 |
Auxiliary Heater | |
Efficiency | 95.4% |
Rated Power | 4.5 kW |
Components | Price (AED) | Reference |
---|---|---|
Collector | 887,477 | [31] |
Pump | 57,558 | [7] |
Abs. Chiller | 385,000 | [28] |
Battery | 130,634 | [32] |
Storage Tank | 16,250 | [29] |
AUX Heater | 16,000 | [32] |
Conv. Chiller | 222,975 | [31] |
Parameters | Description and Values | ||
---|---|---|---|
System Type | Single-Effect Hybrid System | Fully Conventional | |
Solar: Conventional Energy Share Percentage | Renewable | Conventional | 100% |
60% | 40% | ||
Type of Chiller | Absorption | Air Cooled | Air Cooled |
Load Consumption (kW) | 219.6 | 164.4 | 366 kW |
Initial Costs (AED) | 1,715,900 | 557,400 | 620,274.4 |
Installation Costs (15%) (AED) | 257,400 | 83,600 | 93,041.2 |
Total (Initial+ Installation) (AED) | 1,973,300 | 641,000 | 713,315.6 |
Total Renewable and Conventional (AED) | 2,614,300 | 713,315.6 | |
Operating Costs (AED) | 87,200 | 410,284.6 | |
Operating Cost Savings (AED) | 323,100 | - | |
Payback Period (Years) | 3.12 | - | |
Annual Energy Consumption (kWh) | 63,323 | 166,245 | 892,071.5 |
AEC Savings (kWh) | 670,718 | - | |
Annual CO2 Emissions (kg) | 69,655 | 182,869 | 713,657.2 |
Annual CO2 Emissions Saving (kg) | 460,474 | - | |
CO2 Savings (ton/year) | 460.47 | - | |
Equivalent to X Cars Not Used | 97.97 | - |
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Ghaith, F.; Siddiqui, T.; Nour, M. Design of Solar-Powered Cooling Systems Using Concentrating Photovoltaic/Thermal Systems for Residential Applications. Energies 2024, 17, 4558. https://doi.org/10.3390/en17184558
Ghaith F, Siddiqui T, Nour M. Design of Solar-Powered Cooling Systems Using Concentrating Photovoltaic/Thermal Systems for Residential Applications. Energies. 2024; 17(18):4558. https://doi.org/10.3390/en17184558
Chicago/Turabian StyleGhaith, Fadi, Taabish Siddiqui, and Mutasim Nour. 2024. "Design of Solar-Powered Cooling Systems Using Concentrating Photovoltaic/Thermal Systems for Residential Applications" Energies 17, no. 18: 4558. https://doi.org/10.3390/en17184558
APA StyleGhaith, F., Siddiqui, T., & Nour, M. (2024). Design of Solar-Powered Cooling Systems Using Concentrating Photovoltaic/Thermal Systems for Residential Applications. Energies, 17(18), 4558. https://doi.org/10.3390/en17184558