IP Library Granted Patent US 12,649,589
Granted Patent B2
US 12,649,589 · App. 18/315,765 · Granted Jun 9, 2026

Space vehicle imaging studio

Inventors: Jonathan Glen Metts (Austin, TX); Alice Clare Watts (North Bend, WA)
Assignee: Blue Origin Manufacturing, LLC
B64G1/66B64G1/244B64G1/247
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Quick Facts
Patent No.
US 12,649,589
App. No.
18/315,765
Granted
Jun 9, 2026
Kind
B2
Abstract

Systems and methods for high performance, professional-grade photography and filmmaking in a spacecraft during space flights are provided. The systems may include an imaging studio, which is a partially enclosed volume within a spacecraft. The imaging studio may enable photography during microgravity coast phases of space flight while allowing astronauts to tend to non-photographic activities. The imaging studio may allow for commercially-valuable imagery that includes a background of an illuminated, curved Earth horizon. Imagery may also involve, among other things, a unique microgravity environment. Such imagery, without use of an imaging studio as described herein, may otherwise require artificial visual effects that may appear less realistic. Additionally, the novelty of capturing images during an actual space flight may itself be valuable.

Claims (38)

1 . An imaging studio inside a space vehicle, the imaging studio comprising:

a window to provide a view of outside the space vehicle from inside the imaging studio;

fasteners to attach photographic equipment to portions of the imaging studio;

a ballast slidably mounted on a rail, wherein a location of the ballast on the rail is based on flight dynamics of the space vehicle or operations of the photographic equipment; and

opaque screens to block light to and from the imaging studio, wherein the opaque screens extend substantially from a ceiling of the imaging studio to a floor of the imaging studio, and wherein the opaque screens partition the imaging studio from other portions of the inside of the space vehicle.

2 . The imaging studio of claim 1 , further comprising a transceiver to receive commands from a ground control system, wherein the commands control the photographic equipment or positions and orientations of the photographic equipment.

3 . The imaging studio of claim 2 , further comprising transducers to impart movement of the opaque screens based on the commands.

4 . The imaging studio of claim 2 , further comprising a control system to at least partially control flight dynamics of the space vehicle based on the commands.

5 . The imaging studio of claim 1 , further comprising a control system to at least partially control flight dynamics of the space vehicle.

6 . The imaging studio of claim 5 , wherein the flight dynamics comprise rotation of the space vehicle about an axis of symmetry of the space vehicle so as to change the view of outside the space vehicle from one or more windows of the space vehicle.

7 . The imaging studio of claim 1 , wherein the photographic equipment comprises one or more cameras and lights that are compatible with the space vehicle with respect to mounting method, weight, and electromagnetic interference.

8 . A space vehicle comprising:

a crew capsule partitioned into a crew portion and an imaging studio portion;

a window to provide a view of outside the space vehicle from inside the imaging studio portion;

fasteners to attach photographic equipment to parts of the imaging studio portion;

a ballast, which is slidably mounted on a rail and moveable by a transducer, in the imaging studio portion, wherein a location of the ballast on the rail is based on flight dynamics of the space vehicle or operations of the photographic equipment; and

opaque screens to block light between the crew portion and the imaging studio portion, wherein the opaque screens are slidably attached to a ceiling and a floor of the imaging studio portion.

9 . The space vehicle of claim 8 , further comprising a transceiver to receive commands from a ground control system, wherein the photographic equipment or positions and orientations of the photographic equipment are responsive to the commands.

10 . The space vehicle of claim 8 , further comprising a transceiver to receive commands from a ground control system, wherein positions of the opaque screens are responsive to the commands.

11 . The space vehicle of claim 8 , further comprising:

a transceiver to

receive commands from a ground control system, and

transmit images of the view of outside the space vehicle; and

a flight control system to at least partially control flight dynamics of the space vehicle to adjust the view of outside the space vehicle, wherein the flight control system is responsive to the commands and the commands are responsive to an image of the view of outside the space vehicle, wherein the image is captured by the photographic equipment.

12 . The space vehicle of claim 11 , wherein the flight dynamics comprise rotation of the space vehicle about an axis of symmetry of the space vehicle.

13 . A method of operating a space vehicle that includes an imaging studio and a crewed portion adjacent to the imaging studio, the method comprising:

controlling, from a ground control system, photographic equipment or positions and orientations of the photographic equipment in the imaging studio;

controlling, from the ground control system, positions of opaque screens that at least partially partition the imaging studio from the crewed portion, wherein the opaque screens are slidably attached to a ceiling and a floor of the imaging studio; and

controlling a ballast disposed in the imaging studio and slidably mounted on a rail, including positioning the ballast along the rail based on flight dynamics of the space vehicle or to accommodate operations of the photographic equipment.

14 . The method of claim 13 , further comprising:

receiving, from the space vehicle, an image captured by the photographic equipment through a window of the space vehicle of a scene outside the space vehicle, wherein the controlling of the photographic equipment, or the controlling of the positions and orientations of the photographic equipment, is based at least in part on the scene of the image.

15 . The method of claim 14 , further comprising:

identifying one or more objects in the scene of the image based on telemetry data of the space vehicle and a database of landscape or astronomical objects.

16 . The method of claim 15 , further comprising:

modifying flight dynamics of the space vehicle in response to the identifying of the one or more objects in the image.

17 . The method of claim 16 , wherein the flight dynamics comprise rotation of the space vehicle about an axis of symmetry of the space vehicle.

18 . The method of claim 13 , further comprising:

producing, before a launch of the space vehicle, a procedure for operating the photographic equipment with respect to a flight sequence of the space vehicle.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 20, 2025
From: BLUE ORIGIN, LLC
To: BLUE ORIGIN MANUFACTURING, LLC
Reel/Frame 070585/0358 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2023
From: METTS, JONATHAN GLEN; WATTS, ALICE CLARE
To: BLUE ORIGIN, LLC
Reel/Frame 063614/0277 →
Continuity (1)
Related Publication 20240375798A1 · Nov 14, 2024
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