IP Library › Granted Patent US 12,415,614
Granted Patent B2
US 12,415,614 · App. 18/129,699 · Granted Sep 16, 2025

Air to air active refueling system and method for generating aerodynamic radial loads at a hose-end

Inventors: Gonzalo Martín Gómez (Madrid, ES); Samuel De La Fuente López (Madrid, ES)
Assignee: AIRBUS DEFENCE AND SPACE S.A.U.
B64D39/02B64D39/06
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Quick Facts
Patent No.
US 12,415,614
App. No.
18/129,699
Granted
Sep 16, 2025
Kind
B2
Abstract

A method for compensating for aerodynamic radial loads applied to a drogue coupling of a hose and drogue air to air active refueling system including: deploying a refueling hose from a tanker aircraft, wherein the drogue coupling is at a distal end of the hose and the drogue coupling is connected to a hose end control unit which includes at least three fins extending outward into air flowing over the hose end control unit; sensing acceleration of the hose end control unit and/or the drogue coupling, generating an acceleration signal with data representing the sensed acceleration; determining at least one deflection angle for at least one of the three fins based on the acceleration signal, and rotating at least one of the three fins by the at least one deflection angle.

Claims (41)

1. A method for compensating for aerodynamic radial loads applied to a drogue coupling of a hose and drogue air to air active refueling system of a tanker aircraft, the method comprising:

deploying a refueling hose from a tanker aircraft, wherein the drogue coupling is at a distal end of the hose and the drogue coupling is connected to a hose end control unit which includes at least three fins extending outward into air flowing over the hose end control unit;

after the drogue coupling is coupled to a receiver aircraft for transferring fuel from the tanker aircraft to the receiver aircraft:

sensing acceleration of the hose end control unit and/or the drogue coupling, generating an acceleration signal with data representing the sensed acceleration;

determining, based on the acceleration signal, at least one deflection angle for at least one of the three fins to reduce an aerodynamic load applied to the drogue coupling and/or the hose end control unit, and

rotating at least one of the three fins by the at least one deflection angle, wherein the rotation reduces the aerodynamic load applied to the drogue coupling and/or the hose end control unit.

2. The method of claim 1 , further comprising determining, based on the acceleration signal, the aerodynamic radial force applied to the hose end control unit and/or the drogue coupling,

wherein the step of rotating the at least one of the three fins reduces the radial aerodynamic load.

3. The method of claim 1 , wherein the rotating of the at least one of the three fins is performed by the hose end control unit.

4. The method according to claim 1 , wherein the steps of sensing of the acceleration, generating the acceleration signal, determining the at least one deflection angle and the rotation of the at least one of three fins are performed by at least one processing unit that performs the steps in real time and repeatedly.

5. The method according to claim 1 , wherein the step of determining the at least one deflection angle includes determining a deflection angle to counteract the sensed acceleration.

6. The method according to claim 1 , wherein the step of determining the at least one deflection angle includes determining the deflection angle to reduce the sensed acceleration.

7. The method according to claim 1 , further comprising:

determining a radial load on the hose control end unit and/or the drogue coupling due to the acceleration, and

the determining of the at least one deflection angle includes determining the deflection angle to reduce the radial load.

8. A method for air-to-air refueling comprising:

deploying a refueling hose from a tanker aircraft, wherein the refueling hose includes at distal portion including a hose end and hose control unit, and the hose control unit includes a moveable aerodynamic surface extending into an airflow over the hose control unit;

after the distal portion is coupled to a receiver aircraft for transferring fuel from the tanker aircraft to the receiver aircraft:

sensing an acceleration associated with the distal portion;

determining an aerodynamic force applied to the distal portion based on the sensed acceleration,

determining a movement to be applied to the aerodynamic surface to reduce the aerodynamic force,

moving the aerodynamic surfaces in accordance with the determined movement, and

reducing the aerodynamic force applied to the distal portion by the moving of the aerodynamic surfaces.

9. The method for air-to-air refueling of claim 8 , further comprising connecting the hose end to a receiver probe of a receiver aircraft before the reducing the aerodynamic force by moving the aerodynamic surfaces.

10. The method for air-to-air refueling of claim 9 , wherein the aerodynamic surface includes a rotatable fin extending outward from the hose control unit, and the movement is a rotation of the fin.

11. The method for air-to-air refueling according to claim 8 , wherein the steps of sensing of the acceleration, determining the aerodynamic force, determining the movement, and the moving the aerodynamic surface are performed by at least one processing unit that performs the steps in real time and repeatedly.

12. The method for air-to-air refueling according to claim 8 , wherein the step of determining the movement includes determining the movement to counteract the sensed acceleration.

13. The method for air-to-air refueling according to claim 8 , wherein the determination of the aerodynamic force is a determination of a radial aerodynamic force applied to the hose end and/or hose end control unit due to the sensed acceleration, and

the determining of the movement includes determining the movement to reduce the radial aerodynamic force.

14. A method for air-to-air refueling comprising:

deploying a refueling hose from a tanker aircraft, wherein the refueling hose includes at distal portion including a hose end and hose control unit, and the hose control unit includes a moveable aerodynamic surface extending into an airflow over the hose control unit;

after the distal portion is coupled to a receiver aircraft for transferring fuel from the tanker aircraft to the receiver aircraft:

sensing a radial aerodynamic force applied radially to the distal portion of the deployed refueling hose;

determining a movement for the aerodynamic surface to reduce the radial aerodynamic force;

moving the aerodynamic surface relative to the airflow to achieve the determined movement;

reducing the radial aerodynamic force applied radially to the distal portion by the moving of the aerodynamic surface;

connecting the hose end to a receiver probe of a receiver aircraft, and

delivering fuel to the receiver aircraft from the refueling hose, through the hose end and into the receiver probe.

15. The method for air-to-air refueling of claim 14 , wherein the aerodynamic surface is a rotatable fin extending outward from the hose control unit, and the movement is a rotation of the fin.

16. The method for air-to-air refueling according to claim 14 , wherein the steps of sensing of the acceleration, determining the movement, and the moving the aerodynamic surface are performed by at least one processing unit that performs the steps in real time and repeatedly.

17. The method for air-to-air refueling according to claim 14 , wherein the step of determining the movement includes determining the movement to counteract the radial aerodynamic force.

Priority Claims (1)
EP 20382943 · Oct 29, 2020 · regional
Continuity (2)
Division 17512250 · Oct 27, 2021
Related Publication 20230242270A1 · Aug 3, 2023
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