IP Library › Granted Patent US 10,351,223
Granted Patent B2
US 10,351,223 · App. 15/265,663 · Granted Jul 16, 2019

Balloon altitude control system

Inventors: Taylor Evan Matthews (San Diego, CA); Anthony Paul Fry (San Diego, CA); Jessica Marie Lavigne (San Diego, CA); Rafy Uddin Athar (San Diego, CA)
Assignee: NORTHROP GRUMMAN SYSTEMS CORPORATION
B64B1/62B64B1/40B64B1/44
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Quick Facts
Patent No.
US 10,351,223
App. No.
15/265,663
Granted
Jul 16, 2019
Kind
B2
Abstract

One example includes an altitude control system arranged in a balloon. The system includes a transparent outer chamber configured to receive incident infrared radiation. The system also includes an inner chamber comprising suspended particles configured to change the optical transmission of the inner chamber between a first state having a first transmissivity and a second state having a second transmissivity. The first transmissivity is greater than the second transmissivity. The system further includes a state controller configured to electrically activate the suspended particles to change the optical transmission of the inner chamber from the first state to the second state to change an altitude of the balloon based on the incident infrared radiation.

Claims (33)

1. An altitude control system arranged in a balloon, the system comprising:

a transparent outer chamber configured to receive incident infrared radiation;

an inner chamber comprising suspended particles configured to change the optical transmission of the inner chamber between a first state having a first transmissivity and a second state having a second transmissivity, the first transmissivity being greater than the second transmissivity, wherein the inner chamber is arranged as a hollow structure comprising a first opening and a second opening to allow convection of a gas associated with the balloon between the inner chamber and the transparent outer chamber; and

a state controller configured to electrically activate the suspended particles to change the optical transmission of the inner chamber from the first state to the second state to change an altitude of the balloon based on the incident infrared radiation.

2. The system of claim 1 , wherein the inner chamber is configured to pass the incident infrared radiation in the first state and is configured to absorb the incident infrared radiation in the second state to heat a gas associated with the balloon to change the altitude of the balloon.

3. The system of claim 1 , wherein the state controller is configured to receive an altitude control signal configured to control transition of the optical transmission of the inner chamber between the first state and the second state.

4. The system of claim 1 , wherein the state controller comprises a sensor configured to control transition of the optical transmission of the inner chamber between the first state and the second state in response to the altitude of the balloon decreasing below a predetermined threshold.

5. The system of claim 1 , wherein the inner chamber is arranged as a first hollow structure, and wherein the outer chamber is arranged as a second hollow structure comprising an enclosed first end and a second end.

6. The system of claim 5 , wherein the transparent outer chamber is arranged as substantially surrounding the inner chamber and enclosing the first opening of the inner chamber, and wherein the second end of the transparent outer chamber comprises a flange that circumscribes an outer surface of the inner chamber to define a substantially enclosed volume between the inner chamber and the outer chamber.

7. The system of claim 6 , wherein the flange comprises at least one opening to allow transfer of a gas between the outer chamber and the inner volume of the balloon.

8. The system of claim 5 , wherein the inner chamber coaxially extends from the second end of the transparent outer chamber to expose the second opening of the inner chamber to an inner volume of the balloon.

9. The system of claim 8 , further comprising a fan arranged at the second opening of the inner chamber that is configured to circulate a gas associated with the balloon.

10. A stratospheric payload platform comprising the altitude control system of claim 1 , wherein the balloon substantially encloses the altitude control system and comprises a transparent material that is optically transmissive to the infrared radiation, wherein the stratospheric payload platform further comprises a communications payload.

11. A method for changing an altitude of a balloon, the method comprising:

providing an altitude activation signal to a state controller associated with an altitude control system; and

electrically activating suspended particles in a smart-glass structure associated with the altitude control system that is substantially enclosed by the balloon via the state controller in response to the altitude activation signal to change the optical transmission of the smart-glass structure from a first state having a first transmissivity to a second state having a second transmissivity that is greater than the first transmissivity, the smart-glass structure corresponding to an inner chamber of the altitude control system, the altitude control system further comprising a transparent outer chamber configured to receive the incident infrared radiation, the inner chamber being arranged as a hollow structure comprising a first opening and a second opening to allow convection of a gas associated with the balloon between the inner chamber and the transparent outer chamber to change the altitude of the balloon based on incident infrared radiation at the second state.

12. The method of claim 11 , wherein the inner chamber is arranged as a first hollow structure and wherein the outer chamber is arranged as a second hollow structure comprising an enclosed first end and a second end.

13. The method of claim 11 , wherein electrically activating the suspended particles comprises electrically activating the suspended particles in the smart-glass structure to change the optical transmission of the smart-glass structure from the first state having a first transmissivity that allows the incident infrared radiation to substantially entirely pass through the smart-glass structure to the second state having a second transmissivity that allows the incident infrared radiation to be substantially entirely absorbed by the smart-glass structure.

14. The method of claim 11 , wherein providing the altitude activation signal comprises transmitting a wireless altitude activation signal to a wireless receiver associated with a communications payload of the balloon.

15. The method of claim 14 , further comprising:

transmitting a wireless altitude deactivation signal to the wireless receiver; and

electrically deactivating the suspended particles in response to the wireless altitude deactivation signal to change the optical transmission of the smart-glass structure from the second state to the first state to facilitate dwell of the altitude of the balloon.

16. A stratospheric payload platform system comprising:

a balloon comprises a transparent material to substantially pass incident radiation;

a communications payload configured to at least one of transmit and receive communications signals; and

an altitude control system comprising:

a transparent outer chamber configured to receive incident infrared radiation;

an inner chamber comprising suspended particles configured to change the optical transmission of the inner chamber between a first state having a first transmissivity and a second state having a second transmissivity, the first transmissivity being greater than the second transmissivity, wherein the inner chamber arranged as a hollow structure comprising a first opening and a second opening to allow convection of a gas associated with the balloon between the inner chamber and the transparent outer chamber; and

a state controller configured to electrically activate the suspended particles to change the optical transmission of the inner chamber from the first state to the second state to change an altitude of the balloon based on the incident infrared radiation.

17. The system of claim 16 , wherein the inner chamber is configured to pass the incident infrared radiation in the first state and is configured to absorb the incident infrared radiation in the second state to heat a gas associated with the balloon to change the altitude of the balloon.

18. The system of claim 16 , wherein the communications payload is configured to receive an altitude control signal configured to control transition of the optical transmission of the inner chamber between the first state and the second state.

19. The system of claim 16 , wherein the inner chamber is arranged as a first hollow structure, and wherein the outer chamber is arranged as a second hollow structure comprising an enclosed first end and a second end.

20. The system of claim 19 , wherein the transparent outer chamber is arranged as substantially surrounding the inner chamber and enclosing the first opening of the inner chamber, and wherein the second end of the transparent outer chamber comprises a flange that circumscribes an outer surface of the inner chamber to define a substantially enclosed volume between the inner chamber and the outer chamber and which comprises at least one opening to allow transfer of a gas between the outer chamber and the inner volume of the balloon.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2016
From: MATTHEWS, TAYLOR EVAN; FRY, ANTHONY PAUL; LAVIGNE, JESSICA MARIE; ATHAR, RAFY UDDIN
To: NORTHROP GRUMMAN SYSTEMS CORPORATION
Reel/Frame 039743/0038 →
Continuity (1)
Related Publication 20180072396A1 · Mar 15, 2018
Cited By (1)
US 12,391,356