IP Library Granted Patent US 8,772,687
Granted Patent B2
US 8,772,687 · App. 12/210,230 · Granted Jul 8, 2014

Microwave oven window

Inventors: Revuen Boxman (Herzliya, IL); Vladimir Dikhtyar (Tel Aviv, IL); Evgeny Gidalevich (Ramle, IL); Vladimir Zhitomirsky (Haifa, IL)
Assignee: Clear Wave, Ltd.
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Quick Facts
Patent No.
US 8,772,687
App. No.
12/210,230
Granted
Jul 8, 2014
Kind
B2
Abstract

An observation window for a microwave device exhibiting microwave radiation of a predetermined frequency, the observation window comprising two optically transparent panels to which an optically transparent conductive film has been applied to a single side thereof, each of the transparent conductive films primarily reflecting incident microwave radiation and being substantially parallel and spatially separated from each other by a predetermined distance, the predetermined distance being equal to an odd integer multiple of one quarter of the wavelength of the microwave radiation of the predetermined frequency in the interstice between the transparent films, the predetermined distance having a tolerance of plus or minus 0.15 of the wavelength in the interstice.

Claims (48)

1. An observation window for a microwave device exhibiting microwave radiation of a predetermined frequency, the observation window comprising:

a first transparent panel having a first major surface and a second major surface opposing said first major surface, said first transparent panel having a first predetermined thickness defining the distance between the first major surface and the second major surface thereof,

said first major surface of said first transparent panel having a first optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto, and

said second major surface of said first transparent panel not exhibiting an optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto; and

a second transparent panel having a first major surface and a second major surface opposing said first major surface, said second transparent panel having a second predetermined thickness defining the distance between the first major surface and the second major surface thereof,

said first major surface of said second transparent exhibiting a second optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto, and

said second major surface of said second transparent panel not exhibiting an optically transparent conductive film which primarily reflects incident microwave radiation, applied thereto,

wherein said second major surface of said first transparent panel abuts said second major surface of second transparent panel such that the first optically transparent conductive film is substantially parallel with the second optically transparent conductive film, and

wherein the first predetermined thickness and the second predetermined thickness define a predetermined spatial separation of the first optically transparent conductive film from the second optically transparent conductive film, said predetermined spatial separation defining an interstice,

said predetermined spatial separation being equal to an odd integer multiple of one quarter of the wavelength of the microwave radiation of the predetermined frequency in the interstice between said first and second transparent conductive films, said predetermined distance having a tolerance of plus or minus 0.15 of said wavelength in the interstice.

2. An observation window, for a microwave device exhibiting microwave radiation of a predetermined frequency, the observation window comprising:

a first transparent panel having a first major surface and a second major surface opposing said first major surface, said first transparent panel having a first predetermined thickness defining the distance between the first major surface and the second major surface thereof,

said first major surface of said first transparent panel having a first optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto, and

said second major surface of said first transparent panel not exhibiting an optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto; and

a second transparent panel having a first major surface and a second major surface opposing said first major surface, said second transparent panel having a second predetermined thickness defining the distance between the first major surface and the second major surface thereof,

said first major surface of said second transparent exhibiting a second optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto, and

said second major surface of said second transparent panel not exhibiting an optically transparent conductive film which primarily reflects incident microwave radiation, applied thereto; and

a third transparent panel having a first major surface and a second major surface opposing said first major surface and a third predetermined thickness defining the distance between the first major surface and the second major surface of the third transparent panel,

wherein said second major surface of said first transparent panel abuts the first major surface of said third transparent panel and said second major surface of said second transparent panel abuts the second major surface of said third transparent panel such that the first optically transparent conductive film is substantially parallel with the second optically transparent conductive film, the combination of the first predetermined thickness, the second predetermined thickness and the third predetermined thickness defines a predetermined spatial separation of the first optically transparent conductive film from the second optically transparent conductive film, said predetermined spatial separation defining an interstice,

said predetermined spatial separation being equal to an odd integer multiple of one quarter of the wavelength of the microwave radiation of the predetermined frequency in the interstice between said first and second transparent conductive films, said predetermined distance having a tolerance of plus or minus 0.15 of said wavelength in the interstice.

3. An observation window for a microwave device exhibiting microwave radiation of a predetermined frequency, the observation window comprising:

a first transparent panel having a first major surface and a second major surface opposing said first major surface,

said first major surface of said first transparent panel having a first optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto, and

said second major surface of said first transparent panel not exhibiting an optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto; and

a second transparent panel having a first major surface and a second major surface opposing said first major surface,

said first major surface of said second transparent exhibiting a second optically transparent conductive film, which primarily reflects incident microwave radiation, applied thereto, and

said second major surface of said second transparent panel not exhibiting an optically transparent conductive film which primarily reflects incident microwave radiation, applied thereto; and

a third transparent panel having a first major surface and a second major surface opposing said first major surface and a predetermined thickness defining the distance between the first major surface and the second major surface of the third transparent panel,

wherein said first major surface of said first transparent panel abuts the first major surface of said third transparent panel and said first major surface of said second transparent panel abuts the second major surface of said third transparent panel opposing said first major face of said third transparent panel, such that the first optically transparent conductive film is substantially parallel with the second optically transparent conductive film, and the predetermined thickness of said third transparent panel defines a predetermined spatial separation of the first optically transparent conductive film from the second optically transparent conductive film, said predetermined spatial separation defining an interstice,

said predetermined spatial separation being equal to an odd integer multiple of one quarter of the wavelength of the microwave radiation of the predetermined frequency in the interstice between said first and second transparent conductive films, said predetermined distance having a tolerance of plus or minus 0.15 of said wavelength in the interstice.

4. An observation window according to claim 2 , wherein said third transparent panel is constituted of a plurality of transparent panels each of the constituent plurality of transparent panels exhibiting a major surface abutted to a major surface of another of the constituent plurality of transparent panels.

5. An observation window according to claim 1 , where said first transparent panel and said second transparent panel are each comprised of float glass, and wherein said first and second optically transparent conductive films are applied to said first major surface of said first and second optically transparent panels, respectively, by atmospheric pressure chemical vapor deposition.

6. An observation window according to claim 1 , wherein at least one of said first and second optically transparent films contains a layer of a metal.

7. An observation window according to claim 6 , where said metal is silver.

8. An observation window according to claim 1 , where at least one of said first and second optically transparent films comprises a layer of a transparent conducting oxide.

9. An observation window according to claim 8 , wherein said layer of a transparent conducting oxide comprises one of indium tin oxide, tin oxide, zinc oxide and indium oxide.

10. An observation window according to claim 1 , wherein said interstice has disposed therein wires having a length of approximately one half of the microwave radiation wavelength in said interstice.

11. An observation window according to claim 10 , wherein said wires are generally parallel to said optically transparent conductive films.

12. An observation window according to claim 10 , wherein said wires are of a width so that they are not visible to the naked eye.

13. An observation window according to claim 10 , wherein said wires have a resistance approximately equal to the radiation resistance of a half-wave dipole antenna in said interstice.

14. An observation window according to claim 10 , wherein said wires are arranged with a density of about the inverse of the ideal dipole antenna capture cross section.

15. An observation window according to claim 1 , wherein the surface resistivity of at least one of said first and second optically transparent conductive films is less than 150Ω/□.

16. An observation window according to claim 1 , wherein the surface resistivity of at least one of said first and second optically transparent conductive films is less than 94Ω/□.

17. An observation window according to claim 1 , wherein the surface resistivity of at least one of said first and second optically transparent conductive films is between 2 and 20Ω/□.

18. An observation window according to claim 1 , wherein the thickness of at least one of said first and second optically transparent conductive films is less than 5 μm.

19. An observation window according to claim 1 , wherein the thickness of at least one of said first and second optically transparent conductive films is less than 1 μm.

20. An observation window according to claim 1 , wherein the odd integer is 1.

21. An observation window according to claim 3 , wherein said third transparent panel is constituted of a plurality of transparent panels each of the constituent plurality of transparent panels exhibiting a major surface abutted to a major surface of another of the constituent plurality of transparent panels.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 19, 2008
From: BOXMAN, REUVEN; DIKHTYAR, VLADIMIR; GIDALEVICH, EVGENY; ZHITOMIRSKY, VLADIMIR
To: CLEAR WAVE, LTD.
Reel/Frame 021855/0382 →
Continuity (3)
Continuation In Part 12090356
Provisional Application 60727875 · Oct 19, 2005
Related Publication 20090008387A1 · Jan 8, 2009