Free Cooling for Saving Energy: Technical Market Analysis of Dry, Wet, and Hybrid Cooling Based on Manufacturer Data
Abstract
:1. Introduction
1.1. Previous Research
1.2. Study’s Objective
2. Materials and Methods
2.1. System Definition
- dry cooling towers,
- wet cooling towers with open circuit (direct),
- wet cooling towers with closed circuit (indirect),
- directly wetted hybrid cooling towers,
- sprayed hybrid cooling towers, and
- hybrid cooling towers with wetting-mats.
2.2. Data Acquisition
adry = ϑw,o − ϑDBT.
2.3. Statistical Evaluation
3. Results
3.1. Limits of Cooling Tower Use
3.2. Electricity and Water Consumption
3.3. Exemplary Application
4. Discussion
5. Conclusions and Outlook
- The free cooling potential with cooling towers depends on whether the required cooling temperature is achievable, which the cooling tower approach and ambient temperature determine. Dry cooling has a median approach of 10 K towards ambient DBT. In contrast, open wet cooling enables a median approach of 5 K towards ambient WBT, while the median of wet cooling with a closed circuit is 6.5 K. Additionally, a safety gap of around 5 K towards freezing applies to wet cooling.
- All cooling tower types exhibit a typical coolant temperature range of at least 5 K. Thus, free cooling with cooling towers is mostly not feasible if the desired coolant outlet temperature is less than 5 K higher than the inlet temperature.
- Open wet cooling has the lowest specific electricity demand, ranging approximately from 0.012 to 0.021 kWel/kWth. The data of the other cooling tower types vary widely depending on factors such as design, size, and operating point.
- Data on water consumption are scarce but indicate that sprayed hybrid cooling towers use less water per MWth than hybrid systems with wetting-mats.
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Disclaimer
Nomenclature
Abbreviations | Subscripts | ||
DBT | dry-bulb temperature | 0.25 | 25%-quartile |
EC | European Commission | 0.75 | 75%-quartile |
IQR | interquartile range | a | air |
ns | not specified | DBT | ambient DBT |
VDI | Association of German Engineers | el | related to electricity |
(German: Verein Deutscher Ingenieure) | h | heating element | |
WBT | wet-bulb temperature | i | input, inlet |
o | output, outlet | ||
Symbols | p | pump | |
c | heat capacity [kJ/(kgK)] | th | thermal |
H | enthalpy [J] | v | vapor |
p | pressure [Pa] | w | water |
Q | heat [J] | WBT | ambient WBT |
q | specific electricity consumption [kWel/kWth] | wt | water treatment |
T | temperature [K] | ||
V | volume [m3] | ||
ϑ | temperature [°C] | ||
φ | relative moisture [%] |
Appendix A
Manufacturer’s Name | Name of Data Source | Ref. |
---|---|---|
Alfa-Laval AB | Niagara Wet Surface Air Coolers—Website | [46] |
Alfa-Laval AB | Niagara Wet Surface Air Coolers—Product brochure | [44] |
Baltimore Aircoil International nv | Operating points PTE—Technical documentation | [47] |
Baltimore Aircoil International nv | Operating points VT0-VT1—Technical documentation | [48] |
Baltimore Aircoil International nv | Operating points VTL-E—Technical documentation | [49] |
Baltimore Aircoil International nv | TVCF Cooler—Product brochure | [50] |
Baltimore Aircoil International nv | Adiabatic Cooler—Model TRF—Website | [51] |
Baltimore Aircoil International nv | FXVS—Operating and maintenance manual | [52] |
Baltimore Aircoil International nv | FXVT—Operating and maintenance manual | [53] |
Baltimore Aircoil International nv | HFL—Operating and maintenance manual | [54] |
Baltimore Aircoil International nv | NXF—Operating and maintenance manual | [55] |
Baltimore Aircoil International nv | PFI—Operating and maintenance manual | [56] |
Baltimore Aircoil International nv | PTE—Operating and maintenance manual | [57] |
Baltimore Aircoil International nv | S1500E—Operating and maintenance manual | [58] |
Baltimore Aircoil International nv | S3000E—Operating and maintenance manual | [59] |
Baltimore Aircoil International nv | VFL—Operating and maintenance manual | [60] |
Baltimore Aircoil International nv | VT0—Operating and maintenance manual | [61] |
Baltimore Aircoil International nv | VTL-E—Operating and maintenance manual | [62] |
Baltimore Aircoil International nv | VXI—Operating and maintenance manual | [63] |
Baltimore Aircoil International nv | FXT—Operating and Maintenance Instructions | [64] |
Baltimore Aircoil International nv | HXI—Operating and Maintenance Instructions | [65] |
Baltimore Aircoil International nv | Operating points S1500E—Technical documentation | [66] |
Carrier Global Corporation | 09PE- 09 VE—Manual for control system | [67] |
Decsa S.r.l | TMA—EU—Product catalog | [68] |
Decsa S.r.l | TMR—Product catalog | [69] |
Decsa S.r.l | REF-A—Product catalog | [43] |
Decsa S.r.l | REF-C—Product catalog | [70] |
Decsa S.r.l | SQA—Product catalog | [71] |
ENGIE Refrigeration GmbH | Re-cooling systems—Product catalog | [72] |
EUROCONFORT GRUP (JACIR-GOHL) | Adiabatic Cooler—Topaz—Product brochure | [73] |
EUROCONFORT GRUP (JACIR-GOHL) | Product Overview | [74] |
EUROCONFORT GRUP (JACIR-GOHL) | Dunstturm EcoTec—Product brochure | [75] |
EUROCONFORT GRUP (JACIR-GOHL) | LW Air-cooled Water Cooler—Website | [76] |
EUROCONFORT GRUP (JACIR-GOHL) | Cooling Tower DT—Product brochure | [77] |
EUROCONFORT GRUP (JACIR-GOHL) | Cooling Tower SK—Product brochure | [78] |
EUROCONFORT GRUP (JACIR-GOHL) | Evaporative Cooler VK—Product brochure | [79] |
EUROCONFORT GRUP (JACIR-GOHL) | Hybrid Water Cooler HK—Product brochure | [80] |
Evapco Europe GmbH | LPT—Product brochure | [81] |
Evapco Europe GmbH | LSTE—Product brochure | [82] |
Evapco Europe GmbH | LSWA-H/LRW-H—Product brochure | [83] |
Evapco Europe GmbH | ATWB—Product brochure | [84] |
Evapco Europe GmbH | Air-cooled and adiabatic liquid coolers—Installation, operating, and maintenance manual | [85] |
Evapco Europe GmbH | AT Thermal Performance—Technical documentation | [86] |
Evapco Europe GmbH | AT Atlas—Product brochure | [87] |
Evapco Europe GmbH | AT, AT Atlas, AXS, SUN, LPT, LSTE—Operating and maintenance manual | [88] |
Evapco Europe GmbH | Closed Circuit Coolers—Product brochure | [89] |
EWK Kühlturm GmbH | EWK-A—Operating and maintenance manual | [90] |
EWK Kühlturm GmbH | EWK-I—Operating and maintenance manual | [91] |
EWK Kühlturm GmbH | EWK-C—Operating and maintenance manual | [92] |
EWK Kühlturm GmbH | EWB—Operating and maintenance manual | [93] |
EWK Kühlturm GmbH | EWK—Operating and maintenance manual | [94] |
EWK Kühlturm GmbH | EWK-D—Operating and maintenance manual | [95] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWK—Website | [96] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWK-A—Website | [97] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWK-C—Website | [92] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWK-D—Website | [98] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWK-DC—Website | [99] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWB—Website | [100] |
EWK Kühlturm GmbH | Cooling tower Ty p. EWK-I—Website | [101] |
Frigosystem S.r.l. | Corema—Product catalog | [102] |
Frigosystem S.r.l. | ACE—Website | [103] |
Frigosystem S.r.l. | Performance of adiabatic hybrid coolers—Website | [104] |
Frigosystem S.r.l. | DCS—Website | [105] |
Friterm AS | Horizontal- and vertical-type dry coolers with axial fans—Product catalog | [106] |
Gohl-KTK GmbH | ERD—Product information | [107] |
Gohl-KTK GmbH | WRD—Product information | [108] |
Gohl-KTK GmbH | KAHV—Product flyer | [109] |
Gohl-KTK GmbH | Product information Topaz—Website | [110] |
JACIR SAS | Performance Table DTC—Technical documentation | [111] |
JACIR SAS | Performance Table VAP—Technical documentation | [112] |
JAEGGI Hybridtechnologie AG 1 | Re-cooling systems in the cooling circuit, presentation, evaluation, calculation of economic efficiency—Technical article | [34] |
JAEGGI Hybridtechnologie AG 1 | Operating cost reduction in the data center—Presentation | [113] |
JAEGGI Hybridtechnologie AG 1 | Innovative and sustainable cooling with hybrid or adiabatic dry coolers—Technical article | [114] |
JAEGGI Hybridtechnologie AG 1 | ADC—Product information | [115] |
JAEGGI Hybridtechnologie AG 1 | HTK—Product information | [116] |
JAEGGI Hybridtechnologie AG 1 | Data center cooling with hybrid coolers—Technical article | [33] |
JAEGGI Hybridtechnologie AG 1 | HTK-SE—Product information | [36] |
JAEGGI Hybridtechnologie AG 1 | Efficient cooling of data centers with hybrid dry coolers—Technical article | [117] |
JAEGGI Hybridtechnologie AG 1 | Phone call on the design and energetic evaluation of cooling towers | [118] |
Kaltra Innovativtechnik GmbH | Bora—Product catalog | [38] |
Kelvion Holding GmbH | Phone call on the design and electricity consumption of hybrid cooling towers | [119] |
Kelvion Holding GmbH | Adiabatic Systems—Customer presentation | [120] |
Kelvion Holding GmbH | Adiabatic Systems—Installation and maintenance manual | [121] |
Kelvion Holding GmbH | Selection Tool | [122] |
LU-VE S.p.A.—LU-VE AIA AB | Emeritus—Product brochure | [123] |
LU-VE S.p.A.—LU-VE AIA AB | Dri-Batic Spray System—Produktinformationsblatt | [124] |
LU-VE S.p.A.—LU-VE Exchangers | Heat-Exchangers-Production-Range—Product catalog | [125] |
LU-VE S.p.A.—LU-VE Exchangers | Dry-Coolers—Product catalog | [126] |
MITA Cooling Technologies S.r.l | PMS-K12-Open-Circuit-Cooling-Towers—Product catalog | [127] |
MITA Cooling Technologies S.r.l | PME-K12-Open-Circuit-Cooling-Towers—Product catalog | [128] |
MITA Cooling Technologies S.r.l | PMM-Cooling-Towers—Product catalog | [129] |
Multi Kühlsysteme GmbH | Hybride Trockenkühler—Website | [130] |
Multi Kühlsysteme GmbH | Kühltürme—Website | [131] |
Multi Kühlsysteme GmbH | Dry coolers for dry and hybrid cooling—Website | [132] |
Multi Kühlsysteme GmbH | Dry coolers in horizontal design—Website | [133] |
Multi Kühlsysteme GmbH | Dry coolers V-type—Website | [134] |
Refrion S.r.l. | Adiabatic Systems—Product information | [135] |
SECESPOL Sp. z o.o. | Dry-Coolers—Product catalog | [136] |
Secon GmbH | Adiabate Rückkühler—Product catalog | [35] |
Secon GmbH | Trockenrückkühler—Product catalog | [137] |
SPX Cooling Technologies Inc. | Marley CP Cooling Tower—Produktinformation | [138] |
SPX Cooling Technologies Inc. | Marley CP Cooling tower—Operating and maintenance manual | [139] |
SPX Cooling Technologies Inc. | Marley MCW Cooling tower—Operating and maintenance manual | [140] |
SPX Cooling Technologies Inc. | Marley MD Cooling Tower—Operating and maintenance manual | [141] |
SPX Cooling Technologies Inc. | Marley MD Cooling tower—Technical data | [142] |
SPX Cooling Technologies Inc. | Marley MH Fluid Cooler—Operating and maintenance manual | [143] |
SPX Cooling Technologies Inc. | Marley MH liquid cooler—Technical data | [144] |
SPX Cooling Technologies Inc. | Marley NC Stahl Cooling tower—Operating and maintenance manual | [145] |
SPX Cooling Technologies Inc. | Marley NC Stahl Cooling tower—Technical data | [146] |
Stefani S.p.A. | Scirocco—Dry Cooler—Product catalog | [147] |
Stefani S.p.A. | Zonda—Dry Cooler—Product catalog | [148] |
Stefani S.p.A. | Ostro—Dry Cooler—Product catalog | [149] |
Swegon Germany GmbH | Heat exchanger—Product brochure | [150] |
Thermofin GmbH | Adiabatic precooling—Product catalog | [151] |
Thermofin GmbH | Hybrid cooling—Product data sheet | [37] |
ThermoKey S.P.A. | Dry Cooler—Product brochure | [152] |
ThermoKey S.P.A. | V-Tower—Product brochure | [153] |
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Analyzed Parameters 1 | Dry | Wet | Hybrid | Operating Points | Reference Object(s) | |
---|---|---|---|---|---|---|
DIN 15240 [19] (p. 53) | Pf,el | X | X | ns | example values | |
EC [14] (p. 40) | ; Pf,el; ; a; | X | X | X | 1 | example values |
Eurovent [20] (p. 9) | Pf,el | X | 3 | efficiency targets | ||
Hincke et al. [17] | ; a | X | X | X | variation | example values |
Qi et al. [21] | X | variation | neural network | |||
Schlei-Peters [11] | ; Pf,el; | X | variation | modeling | ||
Schulze et al. [22] | Pf,el; ; | X | variation | simulation | ||
Wang et al. [12] | ; Pf,el; ; a; | X | variation | experiment + simulation |
Parameter | Symbol | Unit | |
---|---|---|---|
Item Details | name of manufacturer | [-] | [-] |
name of cooler model | [-] | [-] | |
type of cooling tower | [-] | [-] | |
Resource Consumption | fan power 1 | Pf,el | kWel |
wetting pump power 1 | Pp,el | kWel | |
specific electricity demand (calculated) 1 | qel | kWel/kWth | |
freshwater consumption 1 | m3/h | ||
specific freshwater consumption 1 | w,fresh,i/ | m3/h/kWth | |
Utility | nominal heat load 1 | kWth | |
cooling medium (coolant) | [-] | [-] | |
coolant volume flow rate | m3/h | ||
coolant inlet temperature | °C | ||
maximum coolant inlet temperature | °C | ||
coolant outlet temperature | °C | ||
minimum coolant outlet temperature | °C | ||
range z | z | K | |
Physical Constraints | ambient DBT (DBT) | °C | |
relative humidity | φ | % | |
ambient WBT | °C | ||
Technical Constraints | approach a | a | K |
switchover point (hybrid) | °C | ||
fan arrangement | [-] | [-] | |
flow arrangement | [-] | [-] | |
area × height (L × W × H) | A·H | mm2·mm | |
weight | m | kg | |
thermal capacity per area (calculated) 1 | /A | kWth/m2 | |
thermal capacity per weight (calculated) 1 | /m | kWth/kg | |
nominal air volume flow rate 1 | m3/h |
Operating Point 1 | Dry | Open Wet | Closed Wet 2 | Wetted Hybrid 2 | Sprayed Hybrid 2 | Mats Hybrid 2 |
---|---|---|---|---|---|---|
ϑw,i/ϑw,o/ϑD/WBT [°C] | Pel | Pel | Pel | Pel | Pel | Pel |
32/27/21 | ns | 0.012–0.018 | ns | ns | 0.020–0.039 | 0.028–0.050 |
32/26/21 | ns | 0.013–0.021 | 0.045–0.058 | ns | ns | ns |
35/30/24 | ns | 0.012–0.018 | 0.025–0.031 | ns | ns | ns |
36/30/21 | ns | ns | ns | 0.045–0.05 | ns | ns |
40/35/25 | 0.014–0.029 | ns | ns | ns | ns | ns |
Operating Point 1 | Dry | Open Wet | Closed Wet | Wetted Hybrid | Sprayed Hybrid 1 | Mats Hybrid 1 |
---|---|---|---|---|---|---|
ϑw,i/ϑw,o/ϑWBT [°C] | w,i | w,i | w,i | w,i | w,i | w,i |
32/27/21 | 0 | ns | ns | ns | 3.32–4.60 | 2.06–2.69 |
Parameter | Source | Dry | Open Wet | Closed Wet | Wetted Hybrid | Sprayed Hybrid | Mats Hybrid |
---|---|---|---|---|---|---|---|
approach a [K] | this study | 8.5–11.8; 10 | 3.9–6; 5 | 4.5–9.5; 6.5 | 5.3–9.5; 7 | 6–7; 6.5 | ns–7; 6 |
literature | 7–8 1 8–15 2 | 4 1 4–7 3 | 3 2 | 4–7 3 4–5 4 | 6–8 2 | 5–8 2 | |
range z [K] | this study | 5–5; 5 | 5–10; 6 | 5–15; 6.5 | 5–7; 6 | 7–15; 10.5 | 5–5; 5 |
literature | 4–10 5 5–6 3 | 4–10 5 5–6 3 | 4–10 5 5–6 3 | 4–10 5 5–6 3 | 4–10 5 5–6 3 | 4–10 5 5–6 3 | |
[°C] | this study | 75–95; 90 | 55–78; 68 | 82–91; 85 | ns | ns | 60–95; 78 |
literature | ns | 85 6 | ns | 40 4 | ns | ns | |
[°C] | this study | 38.5–41.8 | 24.9–27 | 25.5–30.5 | 26.3–30.5 | 27–28 | ns |
literature | 40–45 7 | 27–31 7 | 28–35 7 | 28–35 7 | ns | ns | |
[°C] | this study | - | - | - | 13.5–18; 16 | 18–20; 19.5 | 23–25; 24 |
literature | - | - | - | 20–25 8 2–18 4 | 20–25 8 26 3 | 20–25 8 | |
qel [kWel/kWth] | this study | 0.014–0.029 a | 0.012–0.018 b 0.013–0.021 c 0.012–0.018 d | 0.045–0.058 c 0.025–0.031 d | 0.045–0.050 f | 0.020–0.039 a | 0.028–0.050 a |
literature | 0.045 9 | 0.018–0.021 9 0.014–0.028 b,10 | 0.033–0.040 9 0.031–0.067 e,10 | ns | ns | ns | |
w,fresh,i [l/h/kWth] | this study | 0 | ns | ns | ns | 3.32–4.60/3.97 | 2.06–2.69/2.25 |
literature | 2.5–4.5 4 2 7 | 2.5–4.5 4 | 1.6–2.0 4 1.5 7 | ns | ns |
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Wenzel, P.M.; Mühlen, M.; Radgen, P. Free Cooling for Saving Energy: Technical Market Analysis of Dry, Wet, and Hybrid Cooling Based on Manufacturer Data. Energies 2023, 16, 3661. https://doi.org/10.3390/en16093661
Wenzel PM, Mühlen M, Radgen P. Free Cooling for Saving Energy: Technical Market Analysis of Dry, Wet, and Hybrid Cooling Based on Manufacturer Data. Energies. 2023; 16(9):3661. https://doi.org/10.3390/en16093661
Chicago/Turabian StyleWenzel, Paula M., Marc Mühlen, and Peter Radgen. 2023. "Free Cooling for Saving Energy: Technical Market Analysis of Dry, Wet, and Hybrid Cooling Based on Manufacturer Data" Energies 16, no. 9: 3661. https://doi.org/10.3390/en16093661
APA StyleWenzel, P. M., Mühlen, M., & Radgen, P. (2023). Free Cooling for Saving Energy: Technical Market Analysis of Dry, Wet, and Hybrid Cooling Based on Manufacturer Data. Energies, 16(9), 3661. https://doi.org/10.3390/en16093661