IP Library Patent Application 14814537
Patent Application
App. No. 14/814,537

Reflective Transparent Optical Chamber

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 None
App. No.
14/814,537
Abstract

A chamber configured to increase an intensity of target radiation emitted therein is provided. The chamber includes an enclosure at least partially formed by a set of transparent walls. Each transparent wall can comprise a first material transparent to the target radiation and having a refractive index greater than 1.1 for the target radiation. The outer surface of the set of transparent walls can include a set of cavities, each cavity comprising an approximately prismatic void. Additionally, a medium located adjacent to an outer surface of the set of transparent walls can have a refractive index within approximately one percent of a refractive index of a vacuum for the target radiation.

Claims (25)

1 . A chamber comprising:

an enclosure configured to trap target radiation therein, wherein the enclosure is at least partially formed by a set of transparent walls having outer and inner surfaces, wherein each transparent wall comprises a first material transparent to the target radiation and having a refractive index greater than 1.1 for the target radiation, wherein a medium located adjacent to the outer surface of the set of transparent walls has a refractive index within approximately one percent of a refractive index of a vacuum for the target radiation, and wherein the outer surface of the set of transparent walls includes a set of cavities, each cavity comprising an approximately prismatic void configured to trap the target radiation within the enclosure by total internal reflection.

2 . The chamber of claim 1 , wherein the enclosure comprises a body of revolution.

3 . The chamber of claim 1 , further comprising an outer container at least partially formed by a set of container walls, wherein the enclosure is located within the outer container.

4 . The chamber of claim 3 , wherein the set of container walls are formed of at least one of: a reflective material having a reflectivity of at least seventy percent for the target radiation or an absorbing material configured to absorb the target radiation.

5 . The chamber of claim 1 , wherein each cavity comprises a triangular prism.

6 . The chamber of claim 5 , wherein two sides of the triangular prism are formed by the outer surface of the set of transparent walls and are orthogonal to each other.

7 . The chamber of claim 1 , wherein the set of transparent walls are formed of at least one of: sapphire or fused silica.

8 . The chamber of claim 1 , wherein the inner surface of the set of transparent walls includes a second set of cavities, and wherein the first and second sets of cavities are configured to cooperatively trap the target radiation within the enclosure by total internal reflection.

9 . The chamber of claim 1 , wherein at least a portion of an inner surface of at least one wall forming the enclosure includes a reflective material.

10 . The chamber of claim 1 , further comprising a light source located within the enclosure, wherein the light source is configured to emit the target radiation.

11 . The chamber of claim 10 , wherein the light source is configured to emit radiation having a wavelength in a range between approximately 230 nanometers and approximately 360 nanometers.

12 . The chamber of claim 10 , wherein the light source comprises a mercury lamp located in a central portion of the enclosure.

13 . The chamber of claim 10 , further comprising a light scattering center located in a central portion of the enclosure, wherein the light source is located adjacent to a wall forming the enclosure and is configured to direct radiation toward the light scattering center.

14 . A system comprising:

an enclosure having an inlet for receiving a fluid, wherein the enclosure is configured to trap target radiation therein, wherein the enclosure is at least partially formed by a set of transparent walls having outer and inner surfaces, wherein each transparent wall comprises a first material transparent to the target radiation and having a refractive index greater than 1.1 for the target radiation, wherein a medium located adjacent to the outer surface of the set of transparent walls has a refractive index within approximately one percent of a refractive index of a vacuum for the target radiation, and wherein the outer surface of the set of transparent walls includes a set of cavities, each cavity comprising an approximately prismatic void configured to trap the target radiation within the enclosure by total internal reflection; and

a light source located within the enclosure, wherein the light source is configured to emit the target radiation within the enclosure while the fluid is present in the enclosure.

15 . The system of claim 14 , wherein the target radiation is configured to disinfect the fluid.

16 . The system of claim 14 , wherein the target radiation is configured to detect a presence of a gas in the fluid.

17 . The system of claim 14 , further comprising a fluid source fluidly attached to the inlet of the enclosure, wherein the fluid source introduces the fluid into the enclosure using the inlet.

18 . A system comprising:

an enclosure having an inlet for receiving a fluid, wherein the enclosure is configured to trap target radiation therein, wherein the enclosure is at least partially formed by a set of transparent walls having outer and inner surfaces, wherein each transparent wall comprises one of: sapphire or fused silica, wherein a medium located adjacent to the outer surface of the set of transparent walls has a refractive index within approximately one percent of a refractive index of a vacuum for ultraviolet radiation, and wherein the outer surface of the set of transparent walls includes a set of cavities, each cavity comprising an approximately prismatic void configured to trap the target radiation within the enclosure by total internal reflection; and

a light source located within the enclosure, wherein the light source is configured to emit the ultraviolet radiation within the enclosure while the fluid is present in the enclosure.

19 . The system of claim 18 , wherein the ultraviolet radiation is configured to disinfect the fluid.

20 . The system of claim 18 , wherein the light source comprises a mercury lamp located in a central portion of the enclosure.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 18, 2015
From: DOBRINSKY, ALEXANDER; SHUR, MICHAEL; GASKA, REMIGIJUS
To: SENSOR ELECTRONIC TECHNOLOGY, INC.
Reel/Frame 036351/0483 →