IP Library Granted Patent US 12,030,674
Granted Patent B2
US 12,030,674 · App. 17/194,277 · Granted Jul 9, 2024

Fluid transfer interface

Inventors: Geoffrey Thomas Licciardello (Denver, CO); Jonathan Andrew Goff (Lafayette, CO); Calvin James Murphy (Denver, CO)
Assignee: Voyager Space IP Holdings, LLC
B64G1/641
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Quick Facts
Patent No.
US 12,030,674
App. No.
17/194,277
Granted
Jul 9, 2024
Kind
B2
Abstract

A fluid transfer interface is provided. The fluid transfer interface includes one or more of first and second interface portions. The first interface portion includes a first portion of a fluid connector and one or more ferromagnetic surfaces. The second interface portion includes an extendable second portion of the fluid connector and one or more electropermanent magnets, laterally disposed around the second portion of the fluid connector, configured to be magnetized or demagnetized in unison. The one or more electropermanent magnets are further configured to provide attraction force to the one or more ferromagnetic surfaces when magnetized and couple the first interface portion to the second interface portion and provide no attraction force to the one or more ferromagnetic surfaces when demagnetized and allow the first interface portion to be decoupled from the second interface portion.

Claims (69)

1. A fluid transfer interface, comprising:

a first interface portion, comprising:

a first portion of a fluid connector, centrally disposed within the first interface portion and configured to allow a fluid to pass therethrough; and

one or more ferromagnetic surfaces, laterally disposed around the first portion of the fluid connector; and

a second interface portion, comprising:

an extendable second portion of the fluid connector, centrally disposed within the second interface portion and configured to allow the fluid to pass therethrough to the first portion of the fluid connector in response to the first portion of the fluid connector being coupled to the second portion of the fluid connector;

a plurality of actuators, concentrically disposed around the second portion of the fluid connector, configured to axially extend the second portion of the fluid connector relative to the second interface portion; and

a plurality of electropermanent magnets, laterally disposed around the second portion of the fluid connector, configured to be magnetized or demagnetized in unison, further configured to:

provide attraction force to the one or more ferromagnetic surfaces when magnetized and couple the first interface portion to the second interface portion; and

provide no attraction force to the one or more ferromagnetic surfaces when demagnetized and allow the first interface portion to be decoupled from the second interface portion.

2. The fluid transfer interface of claim 1 , wherein the plurality of actuators comprises a plurality of linear actuators.

3. The fluid transfer interface of claim 2 , wherein the second interface portion further comprises:

one or more linear guides, disposed around and parallel to the second portion of the fluid connector, configured to maintain axial alignment between the first and second portions of the fluid connector while the second portion of the fluid connector is extended toward the first portion of the fluid connector.

4. The fluid transfer interface of claim 1 , wherein the second interface portion further comprises:

one or more springs, laterally disposed around the second portion of the fluid connector, configured to provide axial tolerance between a bearing surface of the second interface portion and the second portion of the fluid connector.

5. The fluid transfer interface of claim 1 , wherein the first interface portion is affixed to a first object, wherein the second interface portion is configured to be movable relative to the first interface portion and transfer the fluid between a second object coupled to the second interface portion and the first object after the first interface portion is coupled to the second interface portion.

6. The fluid transfer interface of claim 1 , comprising:

a control circuit, electrically coupled to the plurality of electropermanent magnets, configured to magnetize the plurality of electropermanent magnets in response to one or more first commands, and to demagnetize the plurality of electropermanent magnets in response to one or more second commands.

7. The fluid transfer interface of claim 1 , comprising:

a valve configured to close and prevent fluid flow in response to the first portion of the fluid connector not being coupled to the second portion of the fluid connector, and to open and allow fluid flow in response to the first portion of the fluid connector being coupled to the second portion of the fluid connector.

8. A method, comprising:

maneuvering a second interface portion of a fluid transfer interface into approximate angular and axial alignment with a first interface portion of the fluid transfer interface, the first interface portion comprising a first portion of a fluid connector and the second interface portion comprising a second portion of the fluid connector, the fluid connector being configured to allow a fluid to pass therethrough;

axially extending the second interface portion toward the first interface portion;

establishing contact between an electropermanent magnet ring comprising a plurality of electropermanent magnets of the second interface portion and a ferromagnetic target of the first interface portion;

in response to establishing contact:

changing the electropermanent magnet ring from a demagnetized state to a magnetized state;

energizing a plurality of actuators of the second interface portion to extend the second portion of the fluid connector relative to the second interface portion, toward the first portion of the fluid connector;

mating the second portion of the fluid connector to the first portion of the fluid connector; and

enabling a fluid to pass between the second portion of the fluid connector and the first portion of the fluid connector.

9. The method of claim 8 , wherein a control circuit, electrically coupled to the electropermanent magnet ring, is configured to magnetize the electropermanent magnet ring in response to receiving one or more first commands, and to demagnetize the electropermanent magnet ring in response to receiving one or more second commands.

10. The method of claim 8 , wherein mating the second portion of the fluid connector to the first portion of the fluid connector comprises:

opening a valve in one or more of the first or second portions of the fluid connector,

wherein the valve is configured to close and prevent fluid flow in response to the first portion of the fluid connector not being coupled to the second portion of the fluid connector, and to open and allow fluid flow in response to the first portion of the fluid connector being coupled to the second portion of the fluid connector.

11. The method of claim 8 , wherein mating the second portion of the fluid connector to the first portion of the fluid connector comprises:

pressing one or more sealing surfaces of one or more of the first and second fluid connector portions against one or more seals of the other of the one or more of the first and second fluid connector portions, wherein the plurality of actuators comprises linear actuators.

12. The method of claim 8 , wherein enabling the fluid to pass between the second portion of the fluid connector and the first portion of the fluid connector comprises:

wherein mating the first and second portions of the fluid connector causes one or more valves of the first and second portions of the fluid connector to transition from a closed position to an open position,

blocking fluid transfer when in the closed position; and

allowing fluid transfer when in the open position.

13. The method of claim 8 , further comprising:

determining a fluid transfer operation is completed;

inhibiting providing fluid between the first and second interface portions;

unmating the second portion of the fluid connector from the first portion of the fluid connector;

changing the electropermanent magnet ring from a magnetized state to a demagnetized state; and

axially retracting the second interface portion away from the first interface portion.

14. The method of claim 13 , wherein unmating the second portion of the fluid connector from the first portion of the fluid connector comprises:

energizing the plurality of actuators of the second interface portion to retract the second portion of the fluid connector relative to the second interface portion; and

moving one or more sealing surfaces of the one or more of the first and second fluid connector portions away from contact with the other of the one or more of the first and second fluid connector portions.

15. A system, comprising:

a first object, configured to receive a fluid, comprising:

a first interface portion, comprising:

a first portion of a fluid connector, affixed to the first object; and

one or more ferromagnetic surfaces, orthogonally disposed around the first portion of the fluid connector and conformal with an exterior surface of the first object;

a second object, configured to provide the fluid;

a second interface portion, comprising:

a second portion of the fluid connector, the fluid connector being configured to allow the fluid to pass therethrough, and to extend with respect to the second interface portion;

a plurality of actuators, laterally disposed around the second portion of the fluid connector, configured to axially extend the second portion of the fluid connector relative to the second interface portion; and

a plurality of electropermanent magnets, laterally disposed around the second portion of the fluid connector, configured to be magnetized or demagnetized in unison, and further configured to:

provide attraction force to the one or more ferromagnetic surfaces when magnetized, and to couple the first interface portion to the second interface portion; and

provide no attraction force to the one or more ferromagnetic surfaces when demagnetized, and to allow the first interface portion to be decoupled from the second interface portion; and

a flexible member comprising first and second ends, the first end coupled to the second object and the second end coupled to the second interface portion and the second portion of the fluid connector, and configured to maneuver the second interface portion relative to the first interface portion, and pass the fluid therethrough.

16. The system of claim 15 , wherein the plurality of actuators comprises a plurality of linear actuators.

17. The system of claim 15 , wherein the second interface portion further comprises:

a control circuit, coupled to the plurality of electropermanent magnets, configured to magnetize the plurality of electropermanent magnets in response to one or more first commands, and to demagnetize the plurality of electropermanent magnets in response to one or more second commands.

18. The system of claim 15 , wherein one or more of the first and second portions of the fluid connector comprises a valve configured to close and prevent fluid flow in response to the first portion of the fluid connector not being coupled to the second portion of the fluid connector, and to open and allow fluid flow in response to the first portion of the fluid connector being coupled to the second portion of the fluid connector.

19. The system of claim 15 , wherein the second interface portion further comprises:

one or more springs, laterally disposed around the second portion of the fluid connector, configured to provide axial tolerance between a bearing surface of the second interface portion and the second portion of the fluid connector.

20. The system of claim 15 , wherein the second interface portion further comprises:

a ring of resilient material, concentric with the second portion of the fluid connector and comprising a hole for the first portion of the fluid connector to pass therethrough, comprising a flanged lead-in on an inner surface.

Assignments (4)
RELEASE OF INTELLECTUAL PROPERTY SECURITY INTEREST Recorded Jul 22, 2025
From: HERCULES CAPITAL, INC., AS COLLATERAL AGENT
To: VOYAGER TECHNOLOGIES, INC. (F/K/A VOYAGER SPACE HOLDINGS, INC.); NANORACKS LLC; VOYAGER SPACE IP HOLDINGS, LLC; VALLEY TECH SYSTEMS, INC.; DREAMUP, PBC; PIONEER INVENTION, LLC; SPACE MICRO INC.; ALTIUS SPACE MACHINES, INC.; ZIN TECHNOLOGIES, INC.
Reel/Frame 072129/0689 →
SECURITY INTEREST Recorded Jul 1, 2024
From: VOYAGER SPACE HOLDINGS, INC.; VOYAGER SPACE IP HOLDINGS, LLC; DREAMUP, PBC; SPACE MICRO INC.; ZIN TECHNOLOGIES, INC.; NANORACKS LLC; VALLEY TECH SYSTEMS, INC.; PIONEER INVENTION, LLC; ALTIUS SPACE MACHINES, INC.
To: HERCULES CAPITAL, INC., AS AGENT
Reel/Frame 068104/0818 →
PATENT SECURITY AGREEMENT Recorded Mar 24, 2023
From: PIONEER INVENTION, LLC; ALTIUS SPACE MACHINES, INC.; VALLEY TECH SYSTEMS, INC.; SPACE MICRO, INC.; NANORACKS LLC
To: JGB COLLATERAL LLC
Reel/Frame 063164/0430 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 8, 2021
From: LICCIARDELLO, GEOFFREY THOMAS; GOFF, JONATHAN ANDREW; MURPHY, CALVIN JAMES
To: ALTIUS SPACE MACHINES INC.
Reel/Frame 055517/0669 →
Continuity (2)
Provisional Application 62986644 · Mar 7, 2020
Related Publication 20210284363A1 · Sep 16, 2021
Cited By (1)
US 12,630,314