IP Library Granted Patent US 9,567,995
Granted Patent B2
US 9,567,995 · App. 14/574,868 · Granted Feb 14, 2017

Window opacity attenuation using microfluidic channels

Inventors: Simon A. S. Briggs (Winchester, GB); James K. Hook (Bristol, GB); Hamish C. Hunt (Ashford, GB); Nicholas K. Lincoln (Stockbridge, GB)
Assignee: International Business Machines Corporation
F04B49/065E06B7/28F04B19/006G01J1/42G02B26/004G02B26/02G05D7/0629B60J3/04
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Quick Facts
Patent No.
US 9,567,995
App. No.
14/574,868
Granted
Feb 14, 2017
Kind
B2
Abstract

A window has a pane of transparent material. A first set of microfluidic channels pass through a first area of the pane, and a second set of microfluidic channels pass through a second area of the pane. Microfluidic planes are in fluid communication with the first and second sets of microfluidic channels. A first pump is in fluid communication with the first set of microfluidic channels, and selectively moves a first fluid having a first level of opacity through the microfluidic planes via the first set of microfluidic channels. A second pump is in fluid communication with the second set of microfluidic channels, and selectively moves a second fluid having a second level of opacity through the microfluidic planes via the second set of microfluidic channels. Moving the second fluid into the microfluidic planes pushes the first fluid out of the microfluidic planes, thereby adjusting an opacity of the window.

Claims (40)

1. A physical window, comprising:

a pane of transparent material;

a first set of microfluidic channels through a first area of the pane;

a second set of microfluidic channels through a second area of the pane;

a plurality of microfluidic planes in fluid communication with the first and second sets of microfluidic channels;

a first pump in fluid communication with the first set of microfluidic channels, wherein the first pump selectively moves a first fluid having a first level of opacity through the microfluidic planes via the first set of microfluidic channels; and

a second pump in fluid communication with the second set of microfluidic channels, wherein the second pump selectively moves a second fluid having a second level of opacity through the microfluidic planes via the second set of microfluidic channels, wherein moving the second fluid into the microfluidic planes pushes the first fluid out of the microfluidic planes to adjust an opacity of the physical window.

2. The physical window of claim 1 , wherein the first fluid has opacity in a range of 80-100%, wherein the second fluid has opacity in a range of less than 5%.

3. The physical window of claim 1 , wherein the first pump and the second pump are from a group consisting of a syringe pump, a peristaltic pump, a piston pump, and a centrifugal pump.

4. The physical window of claim 2 , wherein the opacity of the first fluid is caused by suspended light absorbing particles in the first fluid.

5. The physical window of claim 2 , wherein the opacity of the first fluid is caused by suspended light reflecting particles in the first fluid.

6. The physical window of claim 2 , further comprising:

a photosensor, wherein the photosensor detects a level of light striking the physical window;

a microprocessor electrically coupled to the photosensor, wherein the microprocessor receives photosensor signals that describe the level of light striking the physical window; and

an actuator electrically coupled to the microprocessor, wherein the actuator is mechanically coupled to the first pump, and wherein the microprocessor, in response to receiving a signal from the photosensor indicating that the level of light striking the physical window is above a predefined value, transmits an activation signal to the actuator to activate the first pump, thereby darkening the physical window.

7. The physical window of claim 2 , further comprising:

a photosensor, wherein the photosensor detects a level of light striking the physical window;

a microprocessor electrically coupled to the photosensor, wherein the microprocessor receives photosensor signals that describe the level of light striking the physical window; and

an actuator electrically coupled to the microprocessor, wherein the actuator is mechanically coupled to the second pump, and wherein the microprocessor, in response to receiving a signal from the photosensor indicating that the level of light striking the physical window is below a predefined value, transmits an activation signal to the actuator to activate the second pump, thereby lightening the physical window.

8. A transportation vehicle, comprising:

a physical window, wherein the physical window comprises:

a pane of transparent material;

a first set of microfluidic channels through a first area of the pane;

a second set of microfluidic channels through a second area of the pane;

a plurality of microfluidic planes in fluid communication with the first and second sets of microfluidic channels;

a first pump in fluid communication with the first set of microfluidic channels, wherein the first pump selectively moves a first fluid having a first level of opacity through the microfluidic planes via the first set of microfluidic channels; and

a second pump in fluid communication with the second set of microfluidic channels, wherein the second pump selectively moves a second fluid having a second level of opacity through the microfluidic planes via the second set of microfluidic channels, wherein moving the second fluid into the microfluidic planes pushes the first fluid out of the microfluidic planes to adjust an opacity of the physical window.

9. The transportation vehicle of claim 8 , wherein the transportation vehicle is from a group consisting of a land craft, an aircraft, and a watercraft.

10. The transportation vehicle of claim 8 , wherein the first fluid has opacity in a range of 80-100%, wherein the second fluid has opacity in a range of less than 5%.

11. The transportation vehicle of claim 10 , wherein the opacity of the first fluid is caused by suspended light absorbing particles in the first fluid.

12. The transportation vehicle of claim 10 , wherein the opacity of the first fluid is caused by suspended light reflecting particles in the first fluid.

13. The transportation vehicle of claim 10 , wherein the physical window further comprises:

a photosensor, wherein the photosensor detects a level of light striking the physical window;

a microprocessor electrically coupled to the photosensor, wherein the microprocessor receives photosensor signals that describe the level of light striking the physical window; and

an actuator electrically coupled to the microprocessor, wherein the actuator is mechanically coupled to the first pump, and wherein the microprocessor, in response to receiving a signal from the photosensor indicating that the level of light striking the physical window is above a predefined value, transmits an activation signal to the actuator to activate the first pump, thereby darkening the physical window.

14. The transportation vehicle of claim 10 , wherein the physical window further comprises:

a photosensor, wherein the photosensor detects a level of light striking the physical window;

a microprocessor electrically coupled to the photosensor, wherein the microprocessor receives photosensor signals that describe the level of light striking the physical window; and

an actuator electrically coupled to the microprocessor, wherein the actuator is mechanically coupled to the second pump, and wherein the microprocessor, in response to receiving a signal from the photosensor indicating that the level of light striking the physical window is below a predefined value, transmits an activation signal to the actuator to activate the second pump, thereby lightening the physical window.

15. The transportation vehicle of claim 10 , wherein the first pump and the second pump are from a group consisting of a syringe pump, a peristaltic pump, a piston pump, and a centrifugal pump.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2024
From: INTERNATIONAL BUSINESS MACHINES CORPORATION
To: CROWN ELECTROKINETICS CORPORATION
Reel/Frame 068175/0681 →
RELEASE OF SECURITY INTEREST Recorded Aug 16, 2023
From: CAVALRY FUND I, LP
To: CROWN ELECTROKINETICS CORP.
Reel/Frame 064607/0468 →
SECURITY INTEREST Recorded Oct 20, 2022
From: CROWN ELECTROKINETICS CORP.
To: CAVALRY FUND I, LP
Reel/Frame 061484/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 13, 2021
From: INTERNATIONAL BUSINESS MACHINES CORPORATION
To: CROWN ELECTROKINETICS CORPORATION
Reel/Frame 057461/0826 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 18, 2014
From: BRIGGS, SIMON A. S.; HOOK, JAMES K.; HUNT, HAMISH C.; LINCOLN, NICHOLAS K.
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 034546/0384 →
Continuity (1)
Related Publication 20160178887A1 · Jun 23, 2016