Submitted:
06 August 2026
Posted:
07 August 2026
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Abstract
Keywords:
1. Introduction
2. Analytical Theory and Finite Element Analysis (FEA)
2.1. ICD Minimum Energy Requirement Calculations
2.2. COMSOL 5.4 Modeling Validation
2.3. Calculations of the Maximum Expansion Work by Water Vapor
2.4. Overheating Ice-Free Areas of ICD
2.5. Thermal Stress in the Foil and Adhesive Layer
3. Experimental Work
3.1. Metals Selection and Preparation
| Metal | σTS/σyield at 400 °C |
ρe, Ω∙m Experimental |
Oxidation resistance to intermittent 400 °C pulses |
| Ti Grade 5, cold worked | 0.66 | 1.64∙10-6 | High |
| Ti Grade 3 cold worked | 1.32 | 0.52∙10-6 | High |
| Copper | 1.92 | 1.72∙10-8 | High |
| Invar | 0.24 | 0.82∙10-6 | modest |
| SS17_7PH | 0.63 | 1.02∙10-6 | High |
| SS304, cold rolled thin foil | 1.34 | 0.72∙10-6 | High |
| Tantalum cold worked | 0.825 | 1.35∙10-7 | High |
3.2. Substrate Materials Selection
| Adhesive |
ρ kg/m3 |
C J(/kg∙K) |
k W/(m∙K) |
E GPa |
α 10-5/K |
Kg2/(s5∙K2) |
σbond MPa |
σmax MPa |
Tmax °C |
| CA Resbond 905 | 1310 | 800 | 1.44 | 7.5 | 0.054 | 1228 | 22 | 1370 | |
| CA Resbond 907 | 1281 | 1050 | 0.865 | 190 | 3.9 | 1080 | 4 | 24 | |
| SA Permatex Optimum 399 | 1180 | 1050 | 0.2 | 0.0014 | 30 | 665 | 2.8 | 1.9 | 399 |
| SA Duraseal 1531 | 998 | 1465 | 0.3 | 0.0012 | 2 | 1710 | 1.9 | NA | 427 |
| Duralco 4703 | 1800 | 1043 | 2.59 | 5 | 2.6 | 2200 | 21 | NA | 343 |
| 3M HT VHB 4646 tape | 840 | 1000 | 0.11 | 520kPa | 18 | 304 | NA | 232 |
3.3. Measurements of Ice Velocity
3.4. Electronics
3.5. Experimental Results
3.6. Principal Experimental Findings
- Explosive vaporization of the melted interfacial water layer was reproducibly observed whenever the applied ICD energy density exceeded the threshold value for a given foil material, geometry, and heating rate.



- The majority of successful LTICD and MTICD experiments were conducted within the intermediate heating-rate range of approximately – K/s identified by Skripov et al. [9].
- The experimentally determined threshold temperatures approximately followed the heating-rate dependence of the nucleation temperature shown in Figure 1.
- Hydrophilic foil surfaces consistently produced higher and more reproducible ice-ejection velocities than untreated hydrophobic surfaces.
- Functional Low-Temperature, Medium-Temperature, and High-Temperature Ice Cavitation Deicing (LTICD, MTICD, and HTICD) systems were successfully designed and experimentally demonstrated.
- Equation (13) provided reasonable estimates of the experimentally observed ice-ejection velocities for LTICD and MTICD (approximately 2–4 m/s). The model was less accurate for HTICD, where cavitation pressures substantially exceed the equilibrium vapor pressure assumed in the present analysis [7,8].
- Once the threshold energy density had been exceeded, ice cubes were consistently ejected with velocities ranging from approximately 1 to 10 m/s, depending on the applied ICD energy density.
3.7. Engineering Observations
- Permatex Optimum 399 silicone adhesive demonstrated the best combination of reliability and durability, although complete curing required several days.
- 3M HT VHB tape performed well up to maximum intermittent temperatures of approximately 300 °C, exceeding its nominal continuous service temperature.
- Magnetic support proved to be highly effective for ferromagnetic foils (SS17-7PH, SS430, and Invar). Although slight foil displacement occurred during the ICD pulse, full contact was restored within approximately one second.
- Thermal strains were greatest near the massive electrical bus bars. This effect can be reduced by using thinner bus bars that are heated by the same discharge current, thereby reducing differential thermal expansion.
- Compared with HTICD, LTICD required approximately one-half of the operating voltage and one-fifth of the peak current.
- The use of high-capacitance aluminum electrolytic capacitors increased the area deiced by a single pulse by approximately one order of magnitude compared with the original HTICD implementation.
4. Discussion
5. Conclusion
Supplementary Materials
References
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| Size, mm | V0 | C | Qrate | TICD°C | Tno_ice | vi | Trate |
| V | mF | kJ/m2 | °C,COMSOL | °C,COMSOL | m/s | K/s | |
| SS17-7PHC | |||||||
| 0.05 x 40x 210 SS17-7PH, on Kapton | 170 | 35 | 51 | 130 | 245 | 0.4 | 3.2e4 |
| 0.05 x 40x 210 SS17-7PH, on Kapton | 180 | 35 | 57.5 | 148 | 276 | 0.6 | 3.6e4 |
| 0.05 x 40x 210 SS17-7PH, on Kapton | 200 | 35 | 71 | 184 | 342 | 1.4 | 4.44e4 |
| 0.05 x 40x 210 SS17-7PH, on Kapton | 220 | 35 | 86 | 223 | 414 | 2 | 5.55e4 |
| 0.05 x 40x 210 SS17-7PH on Kapton | 250 | 35 | 96 | 248 | 462 | 3 | 5.92e4 |
| 0.05 x 40x 210 SS17-7PH on Kapton | 290 | 15 | 58 | 182 | 284 | 1.4 | 1.02e5 |
| 0.05 x 40x 210 SS17-7PH on Kapton | 350 | 15 | 84 | 264 | 416 | 3 | 1.46e5 |
| 0.076 x 20 x 150 SS17-7PH on 907 | 700 | 1.5 | 115 | 358 | 404 | 6 | 2.2e6 |
| 0.076 x 20 x 150 SS17-7PH on 907 | 720 | 1.5 | 136 | 423 | 479 | 8 | 2.6e6 |
| 0.076 x 20 x 150 SS17-7PH on 907 | 760 | 1.5 | 139 | 432 | 490 | 10 | 2.6e6 |
| 0.076 x 20 x 150 SS17-7PH on 907 | 760 | 1.5 | 139 | 432 | 490 | 6 | 2.6e6 |
| 0.076 x 20 x 150 SS17-7PH on 907 | 700 | 1.5 | 117 | 364 | 411 | 3.9 | 2.2e6 |
| 0.076 x 20 x 150 SS17-7PH on 907 | 675 | 1.5 | 110 | 342 | 386 | 2 | 2.1e6 |
| 0.0257 x 25.4 x 38 SS304 on 3M 4611 | 314 | 0.383 | 19.6 | ≈ 300 | 1 | 9e6 | |
| Titanium Grade 5 and 1 | 3M/905/4703 | 3M/905/4703 | |||||
| 0.05 x 50 x 85 Ti5 on 3M 4646, UV | 190 | 35 | 102 | 413/332/281 | 689/477/360 | 6.6 | 1.12e5 |
| 0.05 x 50 x 85 Ti5 on 3M 4646, UV | 175 | 35 | 86.6 | 330/280/223 | 584/404/304 | 4.4 | 9.64e4 |
| 0.05 x 50 x 85 Ti5 on 3M 4646, UV | 160 | 35 | 72.4 | 278/220/173 | 486/336/253 | 2.2 | 8.14e4 |
| 0.05 x 50 x 85 Ti5 on 3M 4646, UV | 150 | 35 | 63.6 | 213/175/143 | 426/294/222 | 1.6 | 7.14e4 |
| 0.05 x 50 x 85 Ti5 on 3M 4646, UV | 135 | 35 | 51.5 | 153/124/104 | 343/237/177 | 0 | 5.82e4 |
| 0.105 x 25 x 185 Ti5 on 3M 4611, UV | 250 | 15 | 83.7 | 165 | 301 | 0.35 | 8.3e4 |
| 0.105 x 25 x 185 Ti5 on 3M 4611, UV | 275 | 15 | 101 | 247 | 366 | 1 | 9.95e4 |
| 0.105 x 25 x 185 Ti5 on 3M 4611, UV | 300 | 15 | 120 | 293 | 436 | 2.4 | 1.17e5 |
| 0.01 x 37 x 75 Ti1 on Porcelain | 790 | 0.1 | 11.3 | ≈ 300 | 2 | 2.5e7 | |
| 0.05 x 25 140 Invar on 3M 4646 | 160 | 35 | 101 | 177 | 304 | 2 | 4.3e4 |
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