Measuring the Energy Efficiency of Evaporative Systems through a New Index—EvaCOP
Abstract
:1. Introduction
- AHRI 210/240 (2017)—Performance Rating of Unitary Air-Conditioning and Air-Source Heat Pump Equipment [10].
- AHRI 340/360 (2019)—Performance Rating of Commercial and Industrial Unitary Air-Conditioning and Heat Pump Equipment [11].
- AHRI 365 (2009)—Performance Rating of Commercial and Industrial Unitary Air-Conditioning Condensing Units [12].
- AHRI 551/591 (2011)—Performance Rating of Water-Chilling and Heat Pump Water-Heating Packages Using the Vapor Compression Cycle [13].
- AHRI 560 (2000)—Absorption Water-Chilling and Water-Heating Packages [14].
- AHRI 310/380 (2017)—Packaged terminal air conditioners and heat pumps [15].
- AHRI 390 (2003)—Performance Rating of Single Package Vertical Air Conditioners and Heat Pumps [16].
- AHRI 1230 (2014)—Performance Rating of Variable Refrigerant Flow (VRF) Multi-split Air-Conditioning and Heat Pump Equipment [17].
- AHRI 1361 (2017)—Performance Rating of Computer and Data Processing Room Air Conditioners [18].
- AHRI 1360 (2017)—Performance Rating of Computer and Data Processing Room Air Conditioners [19].
- AHRI 1201 (2017)—Performance Rating of Portable Flue Gas Combustion Analyzers [20].
- AHRI 921 (2015)—Performance Rating of DX-Dedicated Outdoor Air System Units [21].
- Ef: Evaporative efficiency;
- Tin: Input dry-bulb temperature (°C);
- Tout: Outside dry-bulb temperature (°C);
- Tsat: Saturation temperature (°C).
2. Method for Analyzing Energy Efficiency of Evaporative Equipment
- DBT = 32 °C.
- WBT = 23 °C.
- : Total rejected sensible heat (W);
- : Flow rate (m3/h);
- Density (kg/m3);
- : Specific heat of the air (W/kg.°C);
- ΔT: Sensible temperature difference (°C), based on the standard air intake DBT = 32 °C minus the evaporative discharge temperature.
- W: Total power input given by the sum of all electrical supplies in the system; that is, fans and pumps (W).
- EvaCOPMunters Bb 150 = 45.58 W/W.
- EvaCOPMunters FCA 5–20 = 25.77 W/W.
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Conflicts of Interest
Abbreviations
AHRI | Air-Conditioning, Heating, and Refrigeration Institute |
EvaCOP | Evaporative System Coefficient of Performance |
COP | Coefficient of performance |
EUED | Energy usage effectiveness design |
PDD | Perfect Design Data Center |
DC | Data center |
ASHRAE | American Society of Heating, Refrigeration, and Air Conditioning Engineers |
IPLV | Integrated part-load value |
LEED | Leadership in Energy and Environmental Design |
VRF | Variable refrigerant volume |
USA | United States of America |
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N.° | City | Country | Population (×1000) |
---|---|---|---|
1 | Tokyo | Japan | 37,468 |
2 | Delhi | India | 28,514 |
3 | Shanghai | China | 25,582 |
4 | São Paulo | Brazil | 21,650 |
5 | Mexico City | Mexico | 21,581 |
6 | Al-Qāhirah, Cairo | Egypt | 20,076 |
7 | Mumbai | India | 19,980 |
8 | Beijing | China | 19,618 |
9 | Dhaka | Bangladesh | 19,578 |
10 | Osaka | Japan | 19,281 |
11 | New York | USA | 18,810 |
12 | Karachi | Pakistan | 15,400 |
13 | Buenos Aires | Argentina | 14,967 |
14 | Chongqing | China | 14,838 |
15 | Istanbul | Turkey | 14,751 |
16 | Calcutta | India | 14,681 |
17 | Manila | Philippines | 13,482 |
18 | Lagos | Nigeria | 13,462 |
19 | Rio de Janeiro | Brazil | 13,293 |
20 | Tianjin | China | 13,215 |
21 | Kinshasa | Democratic Republic Congo | 13,171 |
22 | Guangzhou | China | 12,638 |
23 | Los Angeles | USA | 12,458 |
24 | Moscow | Russia | 12,410 |
25 | Shenzhen | China | 11,908 |
26 | Lahore | Pakistan | 11,738 |
27 | Bangalore | India | 11,440 |
28 | Paris | France | 10,901 |
29 | Bogota | Colombia | 10,574 |
N.° | City | Country | DBT(2%) [°C] | WBT(2%) [°C] |
---|---|---|---|---|
1 | Tokyo | Japan | 31.1 | 24.3 |
2 | Delhi | India | 40.8 | 22.5 |
3 | Shanghai | China | 32.6 | 26.3 |
4 | São Paulo | Brazil | 30.0 | 20.4 |
5 | Mexico City | Mexico | 26.9 | 13.6 |
6 | Al-Qahirah-Cairo | Egypt | 35.8 | 21.8 |
7 | Mumbai | India | 33.9 | 23.4 |
8 | Beijing | China | 32.0 | 22.4 |
9 | Dhaka | Bangladesh | 35.4 | 26.8 |
10 | Osaka | Japan | 32.2 | 24.7 |
11 | New York | USA | 28.7 | 21.7 |
12 | Karachi | Pakistan | 36.0 | 23.5 |
13 | Buenos Aires | Argentina | 28.5 | 22.3 |
14 | Chongqing | China | 34.2 | 25.2 |
15 | Istanbul | Turkey | 29.1 | 21.0 |
16 | Calcutta | India | 35.4 | 26.8 |
17 | Manila | Philippines | 33.2 | 26.3 |
18 | Lagos | Nigeria | 40.8 | 20.8 |
19 | Rio de Janeiro | Brazil | 31.8 | 24.8 |
20 | Tianjin | China | 31.7 | 23.0 |
21 | Kinshasa | Democratic Republic Congo | 32.9 | 24.5 |
22 | Guangzhou | China | 33.8 | 26.1 |
23 | Los Angeles | USA | 25.3 | 17.9 |
24 | Moscow | Russia | 25.6 | 19.1 |
25 | Shenzhen | China | 32.4 | 26.2 |
26 | Lahore | Pakistan | 40.1 | 23.0 |
27 | Bangalore | India | 32.6 | 19.8 |
28 | Paris | France | 26.6 | 18.6 |
29 | Bogota | Colômbia | 20.1 | 13.3 |
Average | 32.05 | 23.14 |
Parameter | Bb 150 Munters | FCA 5–20 Munters |
---|---|---|
Environment DBT (°C) | 32 | 32 |
Environment WBT (°C) | 23 | 23 |
Flow rate (measured), (m3/h) | 14,800 | 5050 |
Flow rate (catalog), (m3/h) | 15,000 | 5000 |
Discharge DBT (°C) | 25.4 | 26.8 |
Discharge air density, ρ (kg/m3) | 1.02 | 1.02 |
Power consumption, W (W) | 610 | 290 |
Cooling pad type | Celdek Munters 8 inch (≈200 mm thick) | Celdek Munters 4 inch (≈100 mm thick) |
HVAC System | Capacity Range (kW) | COP ASHRAE 90.1-2019 (W/W) |
---|---|---|
Air-cooled air conditioners | <19 | 3.81 |
Space constrained, air cooled | <9 | 3.52 |
Small duct, high velocity, air cooled | <19 | 3.52 |
Air-cooled air conditioners | >19 and <40 | 3.22 |
Air-cooled air conditioners | >70 and <223 | 3.22 |
Air-cooled air conditioners | >40 and <71 | 2.87 |
Air-cooled chillers | <528 | 2.98 |
Air-cooled chillers | >528 | 2.98 |
Water-cooled centrifugal chillers | <528 | 5.77 |
Water-cooled centrifugal chillers | >528 and <1055 | 5.77 |
Water-cooled centrifugal chillers | >1055 and <1407 | 6.29 |
Water-cooled centrifugal chillers | >1407 and <2110 | 6.29 |
Water-cooled centrifugal chillers | >2110 | 6.29 |
Capacity range (kW) | Laboratory test (W/W) | |
EvaCOP Munters Bb 150 | 20.7 | 45.58 |
EvaCOP Munters FCA 5–20 | 7.47 | 25.77 |
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Santos, A.F.; Gaspar, P.D.; Souza, H.J.L. Measuring the Energy Efficiency of Evaporative Systems through a New Index—EvaCOP. Energies 2021, 14, 2689. https://doi.org/10.3390/en14092689
Santos AF, Gaspar PD, Souza HJL. Measuring the Energy Efficiency of Evaporative Systems through a New Index—EvaCOP. Energies. 2021; 14(9):2689. https://doi.org/10.3390/en14092689
Chicago/Turabian StyleSantos, Alexandre F., Pedro D. Gaspar, and Heraldo J. L. Souza. 2021. "Measuring the Energy Efficiency of Evaporative Systems through a New Index—EvaCOP" Energies 14, no. 9: 2689. https://doi.org/10.3390/en14092689
APA StyleSantos, A. F., Gaspar, P. D., & Souza, H. J. L. (2021). Measuring the Energy Efficiency of Evaporative Systems through a New Index—EvaCOP. Energies, 14(9), 2689. https://doi.org/10.3390/en14092689