IP Library Granted Patent US 12,544,470
Granted Patent B2
US 12,544,470 · App. 17/389,808 · Granted Feb 10, 2026

Unmanned ground-based hygiene maintenance vehicle and method for improving hygiene conditions

Inventors: Christian Le Polotec (Hamburg, DE); Thomas Stopp (Heidgraben, DE); Matthias Kossow (Munich, DE)
Assignees: Airbus Operations GmbH; Capgemini Engineering Deutschland S.A.S. & Co. KG
A61L2/24A61L2/10A61L2/22B25J5/007B60G17/016G01N33/0027G05D1/028G05D1/0295H01M10/46H01M50/249A61L2202/11A61L2202/14A61L2202/15B60G2400/0512B60G2500/30B60G2600/182B60G2800/014B60G2800/9123H01M2220/20
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Quick Facts
Patent No.
US 12,544,470
App. No.
17/389,808
Granted
Feb 10, 2026
Kind
B2
Abstract

An unmanned ground-based hygiene maintenance vehicle, UGV, includes a housing with a base plate, top plate and housing side wall substantially perpendicular to the base plate. Arranged in the housing is at least one wheel drive coupled to at least one wheel in a recess in the base plate. The UGV includes sensors for sensing the environment of the UGV, and a controller for autonomous location and navigation of the UGV based on sensing parameters of the sensors. The UGV includes an articulated robot arm on the top plate of the housing and to support a hygiene maintenance tool. The UGV includes at least one load-receiving element coupled to the housing side wall and extending outwards from the housing side wall, wherein the load-receiving element includes a load support surface for supporting a hygiene maintenance tool supply module with respect to a vertical direction extending transverse to the base plate.

Claims (34)

1. An unmanned ground-based hygiene maintenance vehicle, UGV, comprising:

a housing having a base plate, a top plate and at least one housing side wall that is substantially perpendicular to the base plate;

at least one wheel drive, which is in the housing;

at least one wheel, which is coupled to the at least one wheel drive and in a recess in the base plate;

a plurality of sensors for sensing an environment of the UGV;

a controller for autonomous location and navigation of the UGV on a basis of sensing parameters of the plurality of sensors;

an articulated robot arm mounted on or through the top plate of the housing and configured to support a hygiene maintenance tool;

a hygiene maintenance tool supply module connected to the hygiene maintenance tool;

at least one load-receiving element that is coupled to the at least one housing side wall and extends outwards from the at least one housing side wall, the at least one load-receiving element comprising a load support surface for supporting the hygiene maintenance tool supply module with respect to a vertical direction which extends transverse to the base plate; and

a tool carrier mounted in the at least one housing side wall and a tool coupled to the tool carrier, the tool being arranged to support the hygiene maintenance tool supply module in position on the load support surface.

2. The UGV according to claim 1 , wherein the at least one load-receiving element extends substantially parallel to the base plate.

3. The UGV according to claim 1 , wherein the at least one load-receiving element is coupled to the at least one housing side wall to be stationary relative to the base plate, at least with respect to the vertical direction.

4. The UGV according to claim 1 , wherein the at least one load-receiving element is detachably coupled to the at least one housing side wall.

5. The UGV according to claim 4 , wherein the at least one housing side wall comprises at least one T-profile or dovetail groove, which extends parallel to the base plate and which is configured to receive a T-profile or dovetail tongue rail of the at least one load-receiving element in a form-fitting manner.

6. The UGV according to claim 1 , wherein the tool carrier comprises an electrical tool connection.

7. The UGV according to claim 6 , wherein the tool comprises an electrically operable suction pad that is connected to the electrical tool connection.

8. The UGV according to claim 1 , wherein the at least one wheel drive comprises at least one wheel suspension and at least one lifting motor, wherein each wheel is suspended on one wheel suspension, and wherein the at least one lifting motor is provided for each wheel, each lifting motor being kinematically coupled to one wheel to deflect the wheel relative to the housing in the vertical direction.

9. The UGV according to claim 8 , wherein the at least one wheel suspension comprises two wheel suspension arms, which are connected to the housing via two sawtooth-threaded rods coupled to two lifting motors provided for the wheel.

10. The UGV according to claim 8 , wherein the UGV comprises at least two wheels and an inclination sensor configured to capture an inclination of the base plate relative to a predefined reference direction, wherein the controller is configured to control the lifting motors coupled to the wheels such that the inclination of the base plate relative to the reference direction is kept within a predefined range.

11. The UGV according to claim 1 , wherein the UGV comprises exactly four wheels, which are coupled to four wheel drives, each wheel being arranged in one recess in the base plate.

12. The UGV according to claim 1 , wherein the hygiene maintenance tool supply module is an electrical energy storage, a UV radiation emitting unit or a liquid disinfectant tank.

13. The UGV according to claim 1 , wherein the hygiene maintenance tool is a UV radiation emitting unit, an air quality sensor or a liquid disinfectant spray gun.

14. The UGV according to claim 1 , the controller having a wireless communication module, via which the controller of one UGV is configured to exchange data with a controller of another UGV.

15. An unmanned hygiene maintenance system, comprising a plurality of UGVs according to claim 14 , one of the plurality of UGVs performing a role of a lead vehicle, and the controller of the lead vehicle being connected to the controllers of a rest of the plurality of UGVs via wireless communication, and being configured to control movements of the rest of the plurality of UGVs;

wherein the hygiene maintenance tool supply module of the plurality of UGVs comprises a single hygiene maintenance tool supply module that is supported between the at least one housing side wall of each of the plurality of UGVs.

16. The unmanned hygiene maintenance system according to claim 15 , further comprising a base station including an electrical charging interface, wherein the UGVs comprise an electrical energy storage device and an UGV charging interface configured to be coupled to the electrical charging interface of the base station for charging the electrical energy storage device.

17. A method for improving hygiene conditions by using a cooperatively acting swarm of unmanned ground-based hygiene maintenance vehicles, UGVs, the method comprising:

equipping at least one UGV according to claim 1 with at least one hygiene maintenance tool on the articulated robot arm and the hygiene maintenance tool supply module on the load-receiving element;

connecting the at least one equipped hygiene maintenance tools with the equipped hygiene maintenance tool supply module for each UGV;

coordinating cooperative movement of the at least one UGVs; and

using the at least one equipped hygiene maintenance tools of the at least one UGVs to perform local hygiene maintenance operations.

18. The method according to claim 17 , wherein the method uses at least two UGVs and wherein one of the at least two UGVs performs a role of a lead vehicle, the controller of the lead vehicle being connected to the controllers of a rest of the plurality of UGVs via wireless communication, and being configured to control movements of the at least one other UGVs.

19. The method according to claim 17 , wherein the local hygiene maintenance operations involve irradiating surfaces in a local environment of the at least one UGV with UV radiation and/or spraying liquid disinfectant on surfaces in the local environment of the at least one UGV.

20. The method according to claim 17 , further comprising equipping an air quality sensor on the articulated robot arm and measuring air quality in a local environment of the at least one UGV using the equipped air quality sensor.

Assignments (2)
CHANGE OF NAME Recorded Jan 29, 2024
From: ALTRAN DEUTSCHLAND S.A.S. & CO. KG
To: CAPGEMINI ENGINEERING DEUTSCHLAND S.A.S. & CO. KG
Reel/Frame 066377/0441 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2021
From: LE POLOTEC, CHRISTIAN; STOPP, THOMAS; KOSSOW, MATTHIAS
To: AIRBUS OPERATIONS GMBH; ALTRAN DEUTSCHLAND S.A.S. & CO. KG
Reel/Frame 057447/0136 →
Priority Claims (2)
DE 10 2020 209 701.1 · Jul 31, 2020 · national
DE 10 2020 209 746.1 · Aug 3, 2020 · national
Continuity (1)
Related Publication 20220031895A1 · Feb 3, 2022
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