Numerical and Experimental Study of a Novel Additively Manufactured Metal-Polymer Composite Heat-Exchanger for Liquid Cooling Electronics
Abstract
:1. Introduction
2. Experimental Study
2.1. Test Setup
2.2. Instrumentation
2.3. Data Reduction
2.4. Uncertainty Analysis
3. Effect of Printing Variabilities
- The wires were extremely squashed in the water flow direction (y axis), such that they acquired spatially varying ellipsoidal shapes instead of nominal circular shapes (see Figure 4a). This could be due to improper functioning of the wire-extruder mechanism of the printer’s metal head.
- The wire spacings, particularly SL, varied with a high standard deviation, which is evident in Figure 4a. This misalignment among a few rows of wires deviated from the nominal staggered configuration and might have occurred due to precision errors in the movement of the printer’s metal head.
- Water channel width, Ww, also varied spatially due to variable polymer wall thickness (see Figure 4b), which is possibly caused by precision errors in the movement of the printer’s polymer head. The deviation in the average reading of the width of the water channel from its nominal reading was the highest of all geometrical parameters.
- The coating thickness of polyurethane sealant (tcoat) around the wire was measured to be around 20
4. Numerical Study
4.1. 3D CFD Model
4.2. Analytical Model for the Entire HX
5. Results and Discussion
5.1. Validation of Numerical Results with Water-Side Testing Data
5.2. Validation of Numerical Results with Air-Side Testing Data
5.3. Comparison to a High-Performance, Commercially Available CPU Cooler Radiator
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
the ratio of maximum heat capacity to minimum heat capacity | |
Euler number | |
fin-parameter | |
number of fins | |
number of channels | |
Nusselt number | |
the direction along x axis | |
axis | |
axis | |
Greek Symbols | |
uncertainty | |
fin effectiveness | |
fin efficiency | |
Subscripts | |
air | |
average | |
conductive | |
equivalent | |
flow | |
hydraulic | |
longitudinal direction | |
maximum | |
minimum | |
no flow | |
overall | |
ratio | |
transverse direction | |
thermal | |
water | |
Superscripts | |
corrected | |
cross-section | |
inlet | |
outlet | |
surface | |
Abbreviations | |
acrylonitrile butadiene styrene | |
coefficient of performance | |
central processing unit | |
data acquisition | |
energy balance | |
embedded fiber composite additive manufacturing | |
fused deposition modeling | |
heat exchanger | |
integrated cross-media heat exchanger | |
not applicable | |
number of transfer units | |
Scanning Electron Microscope | |
Volume |
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Fluid | Equipment | Specifications | |
---|---|---|---|
Water side | Chiller | ThermoNESLAB RTE 7 (R134A) 800 W heater | NA |
Pump | Micropump I-Drive (Type 76,003) 0 to 12.33 g/s | NA | |
Coriolis Flowmeter | Endress+Hauser Promass 83 A Nominal Diameter: 1/12” 0 to 27.7 g/s | 0.1% of measured value | |
Manometer | 0 to 17.85 kPa | 50 Pa | |
Parallel Thermopile | Omega T-type thermocouples | ||
Air side | Blower | Baldor Industrial Motor—3Phase (F198 series) 0 to 89 g/s | NA |
Pre-Chiller | Forma Scientific Model 2067 650 W heater | ||
Rotameter | Fischer & Porter (Model No. 10A4557S) 0 to 32 g/s | ||
Analogue Pressure Gauge | Magnehelic Dyer Instruments 0 to 64 Pa | ||
Thermopile Parallel | Omega T-type thermocouples |
iCMHX | Conventional Unit | |||
Temperature Conditions | ||||
12.8–16.6 | 12.5–15.4 | |||
42.4–45.5 | 44–48 | |||
Flow Conditions | ||||
Air-side Test | Water-side Test | Air-side Test | Water-side Test | |
10–30.8 | 21.9 | 12–29 | 29.2 | |
9.5 | 3.5–9.5 | 9.6 | 3.6–9.6 |
Derived Quantities | |
---|---|
1.8–3% | |
1.7–2.6% | |
1.1–2.2% | |
3.3–12% |
Nominal | Measured | ||||
---|---|---|---|---|---|
(mm) | Average (mm) | Standard Deviation (mm) | Range (mm) | Number of Measurement Points | |
0.44 | 0.48 | 0.042 | 0.343–0.686 | 982 | |
0.44 | 0.42 | 0.045 | 0.275–0.566 | 1025 | |
1.4 | 1.4 | 0.15 | 0.472–2.78 | 941 | |
1 | 0.94 | 0.253 | 0.224–1.74 | 850 | |
2 | 1.79 | 0.18 | 1.23–2.13 | 106 | |
1 | 1.08 | 0.127 | 0.85–1.48 | 49 |
iCMHX | Conventional CPU Radiator | |
---|---|---|
Overall design | ||
16 | 15 | |
119.6 | 118 | |
119 | 109.75 | |
253.2 | ||
2.27 × 105 | ||
Polymer geometrical parameters | ||
19 | 7.23 | |
1.79 | 1.9 | |
1.08 | 0.13 | |
5 | 12 | |
6 | 13 | |
Fin geometrical parameters | ||
1.4 | 1.241 | |
- | 0.2 | |
0.9 | - | |
0.48 | - | |
0.42 | - | |
14 | - | |
84 | 94 |
Assumptions |
Laminar flow, steady-state, incompressible flow |
Constant fluid and material properties |
Uniform fluid flow and temperature profiles at the inlets |
Solver Details and Methods |
PRESTO for pressure 1st order upwind for momentum and energy Coupled scheme for pressure and velocity |
for energy |
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Kailkhura, G.; Mandel, R.K.; Shooshtari, A.; Ohadi, M. Numerical and Experimental Study of a Novel Additively Manufactured Metal-Polymer Composite Heat-Exchanger for Liquid Cooling Electronics. Energies 2022, 15, 598. https://doi.org/10.3390/en15020598
Kailkhura G, Mandel RK, Shooshtari A, Ohadi M. Numerical and Experimental Study of a Novel Additively Manufactured Metal-Polymer Composite Heat-Exchanger for Liquid Cooling Electronics. Energies. 2022; 15(2):598. https://doi.org/10.3390/en15020598
Chicago/Turabian StyleKailkhura, Gargi, Raphael Kahat Mandel, Amir Shooshtari, and Michael Ohadi. 2022. "Numerical and Experimental Study of a Novel Additively Manufactured Metal-Polymer Composite Heat-Exchanger for Liquid Cooling Electronics" Energies 15, no. 2: 598. https://doi.org/10.3390/en15020598