IP Library Granted Patent US 7,883,609
Granted Patent B2
US 7,883,609 · App. 10/466,940 · Granted Feb 8, 2011

Ice modification removal and prevention

Assignee: The Trustees of Dartmouth College
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,883,609
App. No.
10/466,940
Granted
Feb 8, 2011
Kind
B2
Abstract

An alternating electric field is applied to ice ( 530 ) to generate a resistive AC having a frequency greater than 1000 Hz in interfacial ice at interface ( 554 ). A first electrode ( 510 ) and a second electrode ( 514 ) proximate to the interface are separated by an electrical insulator ( 512 ). An AC power source ( 520 ) provides a voltage of about 10 to 500 volts across the electrodes to create the alternating electric field. A portion of the capacitive AC associated with the alternating electric field is present in the interfacial ice as conductivity (resistive) AC, which causes dielectric loss heating in the interfacial ice.

Claims (48)

1. A system for melting interfacial ice 132 , comprising:

a first electrode 110 , 412 , 510 , 610 , 710 , 810

a second electrode 114 , 414 , 514 , 614 , 714 , 814 , the first electrode and the second electrode defining an interelectrode space 116 between the first electrode and the second electrode, the first electrode and the second electrode defining an interelectrode distance that separates the first electrode and the second electrode;

an AC power source 120 , 520 , 974 for providing an AC voltage across the first and second electrodes having a frequency greater than 100 Hz.

2. A system as in claim 1 , wherein the AC power source provides an AC voltage in a range of about from 10 volts to 500 volts.

3. A system as in claim 1 , further comprising an electrical insulator 112 , 512 , 712 , 812 , 813 , 972 located in the interelectrode space.

4. A system as in claim 3 , wherein the insulator comprises a nonconductive rubber windshield wiper blade 712 , 813 .

5. A system as in claim 1 , wherein the interfacial ice 132 is located in the interelectrode space 116 .

6. A system as in claim 1 , wherein the interelectrode distance has a value in a range of about from 50 μm to 500 μm.

7. A system as in claim 1 , wherein the interelectrode distance has a value less than 50 μm.

8. A system as in claim 1 , wherein the interelectrode distance has a value greater than 500 μm.

9. A system as in claim 1 , wherein the first electrode comprises a layer of conductive glass 110 , 510 .

10. A system as in claim 1 , wherein the second electrode 114 comprises a layer of conductive glass.

11. A system as in claim 1 , wherein the first electrode 110 comprises a transparent conductive metal oxide 304 .

12. A system as in claim 1 , wherein the first electrode comprises a conductive grid.

13. A system as in claim 1 , wherein the second electrode comprises a conductive grid 304 .

14. A system as in claim 1 , wherein the first and second electrodes 412 , 414 , 960 are interdigitated.

15. A system as in claim 1 , wherein the second electrode comprises a conductive rubber windshield wiper blade 514 .

16. A freezer system 2700 for melting ice in a freezer, comprising:

a freezer including a housing 2701 ;

a first movable electrode 2702 ;

a second electrode 2704 , the first movable electrode 2702 movable for forming an interelectrode space 2706 to accommodate a freezer package between the first movable electrode and the second electrode; and

an AC power source 2710 for providing an AC voltage across the first and second electrodes with a frequency not less than about 1000 Hz.

17. A system as in claim 16 , wherein the second electrode 2704 is a movable electrode.

18. A system 2300 for melting ice, comprising:

a first electrode 2302 ;

a second electrode 2304 , the first electrode and the second electrode defining an interelectrode space 2306 between the first electrode and the second electrode;

a conductive layer 2364 located in the interelectrode space and proximate to the ice, the conductive layer being electrically insulated from the first and second electrodes and from ice;

an AC power source 2310 for providing an AC voltage across the first and second electrodes with a frequency not less than about 1000 Hz.

19. A system as in claim 18 , further comprising an outer dielectric film 2363 that electrically insulates the conductive layer from the first and second electrodes and from ice.

20. A system as in claim 18 , wherein the AC voltage has a frequency in a range of about from 10 kHz to 30 kHz.

21. A system as in claim 18 , wherein the AC voltage has an amplitude in a range of about from 10 V to 10 kV.

22. A system of melting and preventing ice using a high-frequency electric field, comprising:

a first electrode;

a second electrode, the first electrode and the second electrode separated by an interelectrode distance in a range of about from 100 μm to 2 cm;

an interelectrode space defined by the first electrode and the second electrode and located between the first electrode and the second electrode;

a power source for providing an AC voltage across the first electrode and the second electrode with a frequency not less than 100 Hz.

23. A system as in claim 22 , further comprising a plurality of first electrodes and a plurality of second electrodes, wherein the first electrodes alternate with the second electrodes, and wherein the interelectrode distance between adjacent first and second electrodes is in a range of about from 100 μm to 2 cm.

24. A system as in claim 23 , wherein the first electrodes and the second electrodes are interdigitated.

25. A system as in claim 23 , wherein the first and second electrodes are disposed on a surface of a solid object.

26. A system as in claim 25 , wherein the solid object is selected from the group consisting of: a cooling coil, a heat exchanger, an interior of a freezer, an external surface of an aircraft, an external surface of a ship, and a transportation surface.

27. A system as in claim 23 , wherein the first electrodes and the second electrodes include heat exchanger fins.

28. A system as in claim 27 , wherein each side surface of first electrode fins and second electrode fins has a surface area in a range of about from 1 cm 2 to 100 cm 2 .

29. A system as in claim 23 , wherein the first electrodes are physically connected to a cooling coil and are electrically connected to ground, and the second electrodes are electrically connected to the AC power source.

30. A system as in claim 23 , wherein the AC power source provides a voltage in a range of about 250 volts (rms) to 2.5 kV (rms).

31. A system as in claim 23 , wherein the AC power source generates an alternating electric field in a plurality of interelectrode spaces having a field strength in a range of about from 100 V/cm to 100 kV/cm.

32. A system as in claim 22 , wherein the AC power source provides a voltage having a frequency in a range of about from 100 Hz to 100 MHz.

33. A system as in claim 22 , wherein the AC power source provides power in a range of about from 1 W/m 2 to 50 kW/m 2 of protected surface area.

Assignments (2)
CONFIRMATORY LICENSE Recorded Dec 4, 2019
From: DARTMOUTH COLLEGE
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 051186/0327 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2004
From: PETRENKO, VICTOR; SULLIVAN, CHARLES; DERESH, LEV
To: DARTMOUTH COLLEGE, THE TRUSTEES OF
Reel/Frame 015252/0877 →
Continuity (37)
Continuation In Part 10043752 · Jan 9, 2002
Continuation In Part 09872295 · Jun 1, 2001
Continuation In Part 09426685 · Oct 25, 1999
Division 09094779 · Jun 15, 1998
Division 10466940
Continuation In Part 09971287 · Oct 4, 2001
Continuation In Part 09426685 · Oct 25, 1999
Division 09094779 · Jun 15, 1998
Division 10466940
Continuation In Part 09970555 · Oct 4, 2001
Continuation In Part 09426685 · Oct 25, 1999
Division 09094779 · Jun 15, 1998
Continuation In Part PCTUS0035529 · Dec 28, 2000
Continuation In Part 10466940
Continuation In Part 09976210 · Oct 11, 2001
Continuation In Part 09426685 · Oct 25, 1999
Division 09094779 · Jun 15, 1998
Division 10466940
Continuation In Part PCTUS0035529 · Dec 28, 2000
Continuation In Part 09426685 · Oct 25, 1999
Division 09094779 · Jun 15, 1998
Division 10466940
Continuation In Part PCTUS0005665 · Mar 1, 2000
Continuation In Part PCTUS9928330 · Nov 30, 1999
Continuation In Part PCTUS9925124 · Oct 26, 1999
Provisional Application 60262775 · Jan 19, 2001
Provisional Application 60263943 · Jan 24, 2001
Provisional Application 60272747 · Mar 1, 2001
Provisional Application 60283670 · Apr 12, 2001
Provisional Application 60299693 · Jun 20, 2001
Provisional Application 60347699 · Jan 11, 2002
Provisional Application 60173920 · Dec 30, 1999
Provisional Application 60122463 · Mar 1, 1999
Provisional Application 60105782 · Oct 27, 1998
Provisional Application 60131082 · Apr 26, 1999
Provisional Application 60110440 · Dec 1, 1998
Related Publication 20040149734A1 · Aug 5, 2004