IP Library Granted Patent US 12,617,558
Granted Patent B2
US 12,617,558 · App. 17/498,092 · Granted May 5, 2026

Tram systems for space vehicles

Inventor: Donald Wayne Denham (Redondo Beach, CA)
Assignee: THE AEROSPACE CORPORATION
B64G1/646H02K41/02
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Quick Facts
Patent No.
US 12,617,558
App. No.
17/498,092
Granted
May 5, 2026
Kind
B2
Abstract

Tram systems for space vehicles are movable thereon. When the space vehicle is a nested ring cell, for example, the structural ring portion of the design may be mostly or completely passive and contain conducting parts, such as electrical steel. The moving trams may use field coils instead of magnets to generate the magnetic flux to propel the tram. Additional coils on the tram may steer the magnetic flux to generate the forward or reverse thrust forces. These coils may also add the overall motive flux.

Claims (64)

1 . A movable tram for a space vehicle, comprising:

control electronics configured to control operation of the movable tram, wherein

the movable tram comprises a motive side and a connecting side,

the movable tram is configured to move along at least a portion of a track on an exterior of the space vehicle via the motive side,

the movable tram is configured to make connections to electrical tracks embedded in the track of the space vehicle, and

the movable tram is configured to:

connect the connecting side of the movable tram to at least one other space vehicle, at least one other tram of another space vehicle, or both,

provide data, fuel, heat, or any combination thereof, to at least one other space vehicle,

act as a support structure that holds external components that can be articulated, or

any combination of the above.

2 . The movable tram of claim 1 , further comprising:

a linking mechanism that is configured to linking operations with linking members of other trams, with other structures, or both.

3 . The movable tram of claim 2 , wherein the linking mechanism comprises a layered interface comprising hardware and software that provides visual pose estimation for docking, testing of signals and information to be passed between trams, and security against cyber threats.

4 . The movable tram of claim 2 , wherein the linking mechanism is motorized and comprises a portion of a hinge joint, a pivot joint, a ball and socket joint, an ellipsoid in socket joint, a saddle joint, plane joint, a mechanical and magnetic interlock, or a spring-loaded ball and groove joint.

5 . The movable tram of claim 1 , further comprising:

a motorized hinge operably connected to the tram and a device, wherein

the hinge enables the device to flip out from the tram and deploy.

6 . The movable tram of claim 5 , wherein the device comprises a lens, a mirror, a shade, a filter, a flip-out sensor, a flip-out angular momentum control device, a patterned electrode that serves as a linear motor, or any combination thereof.

7 . The movable tram of claim 1 , further comprising:

a primary coil;

a plurality of armature teeth; and

motor coils wound around the plurality of armature teeth on an end of the armature teeth closest to a conducting track.

8 . The movable tram of claim 7 , wherein permanent magnets are not used to cause levitation of the movable tram.

9 . The movable tram of claim 7 , wherein the movable tram is configured to move along linear actuators.

10 . The movable tram of claim 7 , wherein the control electronics are configured to control magnetic flux of the primary coil and the motor coils.

11 . A movable tram, comprising:

a primary coil;

a plurality of armature teeth;

respective motor coils wound around the plurality of armature teeth on an end of the armature teeth closest to a conducting track; and

control electronics configured to perform motor commutation and control operation of the movable tram, wherein

the movable tram is a component of a space vehicle, and

the conducting track is on an exterior of the space vehicle.

12 . The movable tram of claim 11 , further comprising:

a mechanical system configured to hold the movable tram on the conducting track when the primary coil and the motor coils are not powered on.

13 . The movable tram of claim 12 , further comprising:

respective passages for one or more linear bearings of the conducting track, wherein

the mechanical system comprises the respective passages and the linear bearings, and the movable tram is configured to move along linear actuators.

14 . The movable tram of claim 11 , wherein permanent magnets are not used to cause levitation of the movable tram.

15 . The movable tram of claim 11 , wherein the control electronics are configured to control magnetic flux of the primary coil and the motor coils.

16 . The movable tram of claim 11 , wherein the control electronics are configured to control the primary coil and the motor coils such that when powered on, the primary coil and the motor coils hold the movable tram on the conducting track.

17 . The movable tram of claim 11 , wherein power for the movable tram is provided exclusively by the conducting track.

18 . The movable tram of claim 11 , wherein

the controller is configured to provide power and communications from the conducting track to a payload attached to the movable tram, and

the attached payload comprises a linking mechanism configured to perform linking operations with trams of other space vehicles and/or structures, a sensor, a camera, solar panels, a battery, propellant, a motor, a rocket engine, a mirror, a lens, a transmitter, a receiver, an antenna, a laser, LIDAR, or any combination thereof.

19 . The tram of claim 11 , wherein the movable tram, when powered, is configured to move at least 1,000 kilograms (kg) of payload for each Newton meter (Nm) of force generated by the movable tram via the primary coil and the motor coils using 20 watts (W) of power or less, facilitating maneuvers of a payload attached to the movable tram in space.

20 . A movable tram, comprising:

a primary coil;

a plurality of armature teeth;

respective motor coils wound around the plurality of armature teeth on an end of the armature teeth closest to a conducting track;

control electronics configured to perform motor commutation and control operation of the movable tram; and

a mechanical system configured to hold the tram on the conducting track when the primary coil and the motor coils are not powered on, wherein

the movable tram is a component of a space vehicle, and

the conducting track is on an exterior of the space vehicle.

21 . The movable tram of claim 20 , further comprising:

respective passages for one or more linear bearings of the conducting track, wherein

the mechanical system comprises the respective passages and the linear bearings, and the movable tram is configured to move along linear actuators.

22 . The movable tram of claim 20 , wherein permanent magnets are not used to cause levitation of the movable tram.

23 . The movable tram of claim 20 , wherein the control electronics are configured to control magnetic flux of the primary coil and the motor coils.

24 . The movable tram of claim 20 , wherein the control electronics are configured to control the primary coil and the motor coils such that when powered on, the primary coil and the motor coils hold the movable tram on the conducting track.

25 . The movable tram of claim 20 , wherein power for the movable tram is provided exclusively by the conducting track.

26 . The movable tram of claim 20 , wherein

the controller is configured to provide power and communications from the conducting track to a payload attached to the movable tram, and

the attached payload comprises a linking mechanism configured to perform linking operations with trams of other space vehicles and/or structures, a sensor, a camera, solar panels, a battery, propellant, a motor, a rocket engine, a mirror, a lens, a transmitter, a receiver, an antenna, a laser, LIDAR, or any combination thereof.

27 . The movable tram of claim 20 , wherein the movable tram, when powered, is configured to move at least 1,000 kilograms (kg) of payload for each Newton meter (Nm) of force generated by the movable tram via the primary coil and the motor coils using 20 watts (W) of power or less, facilitating maneuvers of a payload attached to the movable tram in space.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 11, 2021
From: DENHAM, DONALD WAYNE
To: THE AEROSPACE CORPORATION
Reel/Frame 057751/0044 →
Continuity (3)
Continuation In Part 15945617 · Apr 4, 2018
Continuation In Part 15655972 · Jul 21, 2017
Related Publication 20220024610A1 · Jan 27, 2022
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