IP Library Granted Patent US 10,951,307
Granted Patent B1
US 10,951,307 · App. 16/111,197 · Granted Mar 16, 2021

Window heater with reduced wavefront distortion

Inventors: Paolo Zambon (Campbell, CA); Siegfried Fleischer (Campbell, CA)
Assignee: EOS Defense Systems USA, Inc.
H04B10/11H04B10/40H05B3/86
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 10,951,307
App. No.
16/111,197
Granted
Mar 16, 2021
Kind
B1
Abstract

An optical communication system includes a free space optical transceiver within a housing to transmit and receive optical communication signals along an optical pathway through a window in the housing. Heating elements applied to the interior surface of the window substantially uniformly heat the window such that the window is kept free from condensation and ice without introducing significant distortions in the wavefront. Accordingly, the heating elements are designed and placed on the window such that the obscuration caused by the presence of the heating elements within the optical pathway and the wavefront distortion caused by temperature gradients within the cross-section of the window in the optical pathway cause less than 1 decibel (dB) in transmission loss as compared to the same system without the heating elements on the window.

Claims (29)

1. An optical communication system comprising:

a free-space optical transceiver inside of a housing;

a window in a side of the housing, the window having an interior surface nearest the transceiver and an opposite exterior surface, the window positioned in an optical pathway of the transceiver; and

a plurality of heating element segments on the interior surface of the window,

wherein at least two of the plurality of heating element segments adjacent to each other on the interior surface of the window comprise parallel line segments with varying pitch between them, the pitch decreasing with increasing distance from a point located at or near the center of the window, wherein the parallel line segments are connected by arc segments at ends of the parallel line segments to form one or more groups, each group comprising one contiguous heating element.

2. The optical communication system of claim 1 , wherein the plurality of heating element segments substantially uniformly heats the window.

3. The optical communication system of claim 2 , wherein the plurality of heating element segments causes less than 1 dB of transmission loss due to obscuration and temperature variations across a field of view of the optical communication system protected on the window.

4. The optical communication system of claim 1 , wherein the window is round with a radius of approximately 140 millimeters and thickness of approximately 10 millimeters.

5. The optical communication system of claim 1 , wherein the window comprises glass.

6. The optical communication system of claim 1 , wherein the plurality of heating element segments comprises conductive epoxy.

7. The optical communication system of claim 6 , wherein each of the plurality of heating element segments is on an order of magnitude 10 microns thick.

8. The optical communication system of claim 1 , wherein the arc segments alternately connect the line segments at top and bottom ends of the parallel line segments.

9. The optical communication system of claim 1 , further comprising a rim heater comprising a ring-shaped heating element.

10. The optical communication system of claim 9 , wherein the rim heater is independently connected to a power supply in order to compensate for uncertainty in heat transfer between the window and the housing.

11. The optical communication system of claim 1 , wherein the free-space optical transceiver operates at a wavelength of 1,550 nanometers.

12. The optical communication system of claim 1 , wherein the free-space optical transceiver operates at an eye-safe wavelength.

13. The optical communication system of claim 1 , wherein the optical communication system is installed outdoors.

14. An optical communication system comprising:

a free-space optical transceiver inside of a housing;

a window in a side of the housing, the window having an interior surface nearest the transceiver and an opposite exterior surface, the window positioned in an optical pathway of the transceiver; and

a plurality of heating element segments on the interior surface of the window,

wherein the plurality of heating element segments comprises concentric ring segments that are concentric about a point located at or near the center of the window,

wherein distances between adjacent concentric ring segments decrease with increasing distance from the point located at or near the center of the window, and

wherein the concentric ring segments are connected by arc segments at ends of the concentric ring segments to form one or more groups, each group comprising one contiguous heating element.

15. The optical communication system of claim 14 , wherein the plurality of heating element segments substantially uniformly heats the window.

16. The optical communication system of claim 15 , wherein the plurality of heating element segments causes less than 1 dB of transmission loss due to obscuration and temperature variations across a field of view of the optical communication system protected on the window.

17. The optical communication system of claim 14 , wherein each of the plurality of heating element segments is on an order of magnitude 10 microns thick.

18. The optical communication system of claim 14 , wherein the window is round with a radius of approximately 140 millimeters and thickness of approximately 10 millimeters.

19. The optical communication system of claim 14 , further comprising a rim heater comprising a ring-shaped heating element, wherein the rim heater is independently connected to a power supply in order to compensate for uncertainty in heat transfer between the window and the housing.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2020
From: COLLINEAR NETWORKS, INC.
To: COLLINEAR NET (ASSIGNMENT FOR THE BENEFIT OF CREDITORS), LLC
Reel/Frame 054614/0183 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 11, 2020
From: COLLINEAR NET (ASSIGNMENT FOR THE BENEFIT OF CREDITORS), LLC
To: EOS DEFENSE SYSTEMS USA, INC.
Reel/Frame 054614/0518 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2018
From: ZAMBON, PAOLO; FLEISCHER, SIEGFRIED
To: COLLINEAR NETWORKS, INC.
Reel/Frame 047240/0004 →