专利摘要:
There is provided a robotic cart pulling vehicle for automated docking and pulling a cart, such as a wheeled hospital cart for e.g. linen. In particular the vehicle is provided with a unique gripping means for holding the cart. Furthermore, the robotic vehicle implements a positioning system for safely driving on hospital corridors and further comprises one or more sensors to indicate the position of the robot relative to the surroundings for avoiding unnecessary impacts.
公开号:DK201570212A1
申请号:DKP201570212
申请日:2015-04-13
公开日:2016-04-18
发明作者:Niels Jul Jacobsen
申请人:Mobile Ind Robots Aps;
IPC主号:
专利说明:

Robotic cart pulling vehicle for automated pulling of carts
FIELD OF THE INVENTION
The present invention relates to robotic cart pulling vehicles for automated hauling of materials indoors. More specifically, the present invention relates to a cart pulling guided mobile robot system enabling automatic docking and undocking of the cart.
BACKGROUND OF THE INVENTION
The transportation of articles within a structure, or between multiple structures has posed, to some degree, a problem. Many transportation options exist today as commercially available products, for example, conveyer belts, pneumatic tubes, gimbled carts, and mobile robots. Mobile robots, or Autonomous Guided Vehicles, are vehicles that have been equipped with a drive system under computer control which allows autonomous guidance between two locations.
Although, there is significant economic incentive to introduce mobile robots into hospitals and laboratories, relatively little progress has been made towards using mobile robots to deliver hospital supplies. For example, the physical movement of linen, medical specimens, pharmaceuticals, blood products, patient charts, x-rays, and meals cost huge amounts annually for hospitals with over 500 beds.
Towing trailers with a rear mounted towing apparatus on AGV's are well known in the art. Commonly a commercial hitch and ball are mounted at one end of the AGV, usually the rear, whereat a trailer comprising a releasable socket and tow bar is connected.
Robotic and automated vehicles for delivering or transporting material indoors have been developed and utilized in a number of applications. One well-known application is the automated mail delivery vehicles and robots. Rather than being an independent robotic vehicle, this is an automatic guided vehicle following a prepared track, such as a painted ultraviolet track positioned on the floor.
In the hospital environment some companies have developed robotic couriers for hospitals. The robotic couriers were essentially wheeled cabinets. These robotic couriers have many disadvantages; for instance they are only useful for transporting materials that can fit in or on the associated cabinet installed with the robot. In some of the commercially available solutions the robot vehicle drives in below and lifts the cart. Meanwhile this solution requires that the cart is specially built for that purpose in order to provide the necessary room for the robot vehicle below its frame.
US2004093650 discloses a mobile robot system for performing a plurality of separate operations comprising at least one autonomous wheeled mobile robot having at least one wheel-driving motor, an on-board computer; means for navigation, orientation, and maneuvering in an environment with moving obstacles; a sensor system; and a wireless communication system for receiving and sending signals. The mobile robot system disclosed in US2004093650 is useful for hauling materials on a variety of carts or wagons using a coupling hitch hook bar as cart attaching mechanism. Meanwhile, the cart attaching mechanism US2004093650 is not able to freely move over a pivot point and is not suitable for hauling carts on an uneven support. Thus, there is a need for flexible cart attachment mechanism on an automated guided vehicle suitable for attaching a variety of carts securely.
All of the above discussed prior art has substantial disadvantages. It is the object of the present invention to improve upon the prior art and provide a cart or wagon pulling deduced reckoning guide mobile robot system useful for industrial applications, such as in hospitals, assembly production, supermarkets and like.
SUMMARY OF THE INVENTION
Accordingly, the present invention provides an improved wheeled robot for automatic docketing and towing/hauling carts and similar wagons from one position to another. The robot implements a positioning system for safely driving on hospital corridors and further comprises one or more sensors to indicate the position of the robot relative to the surroundings for avoiding unnecessary impacts. The cart mobile robot system of the present invention enables automatic docking and undocking of the cart, which is a major improvement over existing solutions.
Specifically, the present invention provides an automatically guided vehicle for towing (or pushing) a wheeled cart having at least four wheels and provided with a cart frame, the vehicle comprising: • drive wheels; • a robot body mounted on said drive wheels; • a control system utilizing a navigational system; • a cart attaching mechanism mounted on said robot body for coupling the cart to said vehicle; • at least one proximity sensor mounted on the robot body, said control system coupled to said at least one proximity sensor for adjusting the calculated robotic position and detecting any obstacles; wherein the cart attaching mechanism includes a trailer arm that is freely rotatable in a horizontal plane, said arm mounted in a pivot point on the robot body in one end and provided with a gripping portion in the other end for gripping and holding the cart to be towed, said gripping portion comprising: a vertical bar element attached to the trailer arm; a horizontal bar element flexibly attached via a pivot point P1 to the vertical bar element; a hook element for gripping the cart frame, said hook element provided with a hook, and said hook element being flexibly attached via a pivot point P2 the horizontal bar element, and wherein the hook is movable (horizontally) by actuation means; at least two supporting brackets positioned on each side of the hook for providing a clamp force against the cart frame.
In one embodiment of the present invention each said proximity sensor is an infrared range sensor.
Preferably the flexibility provided around the horizontal bar element and the hook element is established by springs. In one embodiment of the present invention the springs are affixed to a common spring element that is pivotably attached to the pivot point P1. It is preferred that the springs will force the vertical bar element to be approximately vertical and the horizontal bar element to be approximately horizontal relative to the support on which the robot is moving.
In a particularly preferred embodiment of the present invention the navigational system includes an automatic control and guide system for reaching a given target and at the same time avoid collision with the surroundings.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 shows the cart attaching mechanism and its intended use.
Figure 2 shows cart attaching mechanism while driving on a ramp.
Figure 3 shows the flexible suspension of the cart attaching mechanism while driving on a ramp.
Figure 4 shows the flexible suspension of the cart attaching mechanism in idling (neutral) state.
Figure 5 shows the cart attaching mechanism.
Figure 6 shows the cart attaching mechanism and the control of the vehicle.
Figure 7 shows the procedure for linking the cart and the cart attaching mechanism.
DETAILED DESCRIPTION OF THE INVENTION
Figure 1 shows the cart attaching mechanism (1) mounted on the robot (2). The cart attaching mechanism has automatically made a coupling with a cart (3) and transports it to the destination.
Figure 2 shows the cart attaching mechanism (1) while driving on a small ramp (4). The flexible suspension ensures that obstacles such as ramps and similar may be traversed without any compensation means. It further ensures the flexible linkage to the coupling surface between the supporting bracket (22) and the vehicle frame is minimally burdened thereby achieving high safety against accidental uncoupling the towed cart.
Figure 3 shows the cart attaching mechanism (1) with a two stage mechanism having flexible suspension with the pivot points of the axles (13) and (14). The bar (10) allows the link (11) to rotate about the axle (13). The joint (12) in which the cart attaching mechanism is mounted can rotate about the axle (14). The springs (15) and (16) will constantly try to minimize the angles δ and ε to a neutral position, when the attaching mechanism isn’t attached to a cart.
Figure 4 shows the flexible suspension in the neutral position, i.e. the position to which the dual joint mechanism will return when no other forces the gravitational force is applied. The springs (15) and (16) pull the two parts (11) and (12) to their neutral position with the lowest spring tension.
Figure 5 shows how the cart attaching mechanism grips and holds a cart. Prior to this coupling the gap (S) between the hook (20) and the support bracket (22) is large. When the linear actuator 21 is extended the gap (S) is reduced until there is contact between the hook (20), the base frame (50) and the support bracket (22) and the coupling occurs. When the actuator (21) begins to extend from its contracted state the gap (S) decreases rapidly and the clamping force F will be small. As the gap (S) decreases the clamping force F increases considerably since the angle a is small. This results in a less elastic deformation of the base frame (50) before the actuator 21 stops. The deformation of the base frame (50) is purposely not drawn correctly in Figure 5. The elastic deformation ensures that the link with the base frame is resistant towards vibrations and other mechanical stress. Thus, a very high security against accidental disconnection of the base frame (50) is ensured. The coupling mechanism is designed so that the large clamping force is primarily absorbed by the axles (25), (26), (27) and (28) and to a lesser extent by the more sensitive linear actuator (21).
Figure 6 shows how the vehicle controls the cart. The safe coupling between the cart (3) and cart attaching mechanism (1) is established by the two support brackets (22) and hook (20), which means that the cart (3) position relative to the vehicle (2) exclusively depends on the angle β. A protractor (5) on the cart attaching mechanism (1) measures the angle β, whereby the robot can safely steer the cart around obstacles irrespective of whether the robot is moving forward or backward.
Figure 7 shows the procedure for linking the cart (3) and the cart attaching mechanism (1), wherein:
View A illustrates the situation where the vehicle (2) has determined the position of the cart (3), whereby the flexible suspension of the cart attaching mechanism is lowered by means of the linear actuator (31);
View B illustrates the situation where the vehicle (2) moves rearwards until there is contact between the supporting bracket (22) and the cart frame (50);
View C illustrates the situation where the flexible suspension coupling mechanism is raised by means of the linear actuator (31) until there is contact between the joint (12) and the frame (50);
View D illustrates the situation where the linear actuator (21) extends and pushes the base frame (50) back toward the hook (20) (View A) and the coupling between the cart attaching mechanism (1) and the cart (3) is established. Decoupling is done by the reverse operation (not shown).
权利要求:
Claims (5)
[1]
An automatically controlled vehicle to tow a trolley (3) with at least four wheels and provided with a trolley frame, the vehicle comprising: • drive wheels; A robot unit (2) mounted on said drive wheel; • a navigation system with navigation system; • a carriage attachment mechanism (1) mounted on the robot unit (2) for coupling the carriage to said vehicle; At least one proximity sensor mounted on the robot unit, said control system is coupled to the at least one proximity sensor for adjusting the calculated robot position and for detecting any obstacles; characterized in that the carriage attachment mechanism (1) comprises a trailer arm freely rotatable in a horizontal plane, the arm mounted at a pivot point on the robot unit at one end and provided with a gripping member at the other end for gripping and holding the carriage (3) being pulled, the gripping portion comprising: - a vertical rod element (10) attached to the trailer arm; - a horizontal bar element flexibly attached via a pivot point P1 to the vertical bar element (10); - a hook element for gripping the carriage frame, said hook is provided with a hook (20), and the hook element is flexibly connected via a pivot point P2 to the horizontal bar element and the hook can be moved (horizontally) by activating means; - at least two support brackets (22) located on each side of the hook to provide a clamping force against the carriage frame.
[2]
The auto-controlled vehicle of claim 1, wherein each proximity sensor is selected from the IR sensor, ultrasonic sensor, LIDAR sensor and stereo vision sensor.
[3]
The auto-steering vehicle of claim 1 or 2, wherein the flexibility around the horizontal bar element and the hook element is established by springs (15, 16).
[4]
The auto-guided vehicle of claim 3, wherein the springs (15, 16) are attached to a common spring element pivotally attached to the pivot point P1.
[5]
The auto-steering vehicle according to any one of claims 1-4, wherein the navigation system comprises an automatic steering and guide system to achieve a given target while avoiding collision with the surroundings.
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引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题

US861339A|1906-10-05|1907-07-30|Harry Lawrence Williams|Machine for straightening and cleaning cotton-ties.|
US4305601A|1980-03-17|1981-12-15|Kermit Berge|Shopping cart for the handicapped|
DE3302771A1|1983-01-27|1984-08-02|Krauss-Maffei AG, 8000 München|Towing vehicle for aircraft|
GB9101824D0|1991-01-28|1991-03-13|Stead And Wilkins Fabrications|Tow bar for trailer|
US5109940A|1991-03-05|1992-05-05|Eaton-Kenway, Inc.|Automated guided vehicle top disposed towing apparatus|
US5518260A|1994-12-12|1996-05-21|Chrysler Corporation|Disabled vehicle mover|
US6435803B1|1998-07-02|2002-08-20|Coy J. Robinson|Shopping cart collection vehicle and method|
US6244366B1|1997-08-07|2001-06-12|Smarte Carte, Inc.|Cart transporter|
NL1007225C2|1997-10-08|1999-04-09|Maasland Nv|Vehicle combination.|
SE0004465D0|2000-12-04|2000-12-04|Abb Ab|Robot system|
AU2002300806B2|2001-09-03|2008-02-14|Mine Ranger Pty Ltd|Detatchable gooseneck trailer hitch|
US6663132B1|2002-09-23|2003-12-16|The United States Of America As Represented By The Secretary Of The Army|Remotely controlled electro-hydraulic towing assembly|
US7503510B2|2002-10-30|2009-03-17|Deere & Company|Sprayer docking station and monitoring system|
US20040256166A1|2003-05-03|2004-12-23|Holtan Paul D.|Cart mover|
US6880652B2|2003-06-09|2005-04-19|Dane Industries, Inc.|Cart pulling vehicle with dual cable drums and dual torsion springs|
US7571914B2|2003-10-15|2009-08-11|Dane Industries, Inc.|Push-pull cart collection device and conversion assembly|
US7395886B2|2004-08-31|2008-07-08|Gatekeeper Systems Limited|Dual row cart collector and method|
WO2006089071A2|2005-02-17|2006-08-24|Dane Industries, Inc.|Push-pull cart collection device and conversion assembly|
CA2837477C|2005-10-14|2016-06-21|Aethon, Inc.|Robotic ordering and delivery apparatuses, systems and methods|
DE102006014338B4|2006-03-28|2019-08-22|Linde Material Handling Gmbh|Tractor for transporting mobile transport containers|
AT503295B1|2006-06-16|2007-09-15|Scharmueller Josef Ing|Lifting coupler has mounting support, which has locking device for locking carriage element in maximum pivoting condition of pivoted support, and carriage element is lockable in two different positions by locking device|
US8413752B2|2006-10-06|2013-04-09|Irobot Corporation|Robotic vehicle|
US7878277B2|2007-03-23|2011-02-01|Assembled Products Corporation|Motorized wheeled vehicle caddy|
JP4280940B2|2007-09-06|2009-06-17|トヨタ自動車株式会社|Automatic transfer device|
US7898470B2|2008-03-25|2011-03-01|Trimble Navigation Limited|Method and system for monitoring the positions of multiple towed vehicles using a single high accuracy receiver|
CA2674932A1|2008-04-11|2009-10-11|Dane Technologies, Inc.|Cart transporting apparatus|
US8864164B2|2010-12-06|2014-10-21|Seegrid Corporation|Tugger attachment|
US9288938B2|2012-06-01|2016-03-22|Rowbot Systems Llc|Robotic platform and method for performing multiple functions in agricultural systems|
US10807805B2|2013-05-17|2020-10-20|Intelligrated Headquarters, Llc|Robotic carton unloader|
US9650215B2|2013-05-17|2017-05-16|Intelligrated Headquarters Llc|Robotic carton unloader|
SG2013071808A|2013-09-24|2015-04-29|Ctrlworks Pte Ltd|Offboard navigation apparatus capable of being coupled to a movable platform|
CN203844860U|2014-05-04|2014-09-24|中山明杰自动化科技有限公司|Self-navigation logistic towing tractor|
US9669857B1|2015-07-01|2017-06-06|Randall D Rainey|Propulsion device for hand-pushed equipment|
US10233056B1|2015-08-05|2019-03-19|Jeffery L. Brauer|Grasping apparatus and methods for transporting rolling racks|
CA2961938A1|2016-04-01|2017-10-01|Wal-Mart Stores, Inc.|Systems and methods for moving pallets via unmanned motorized unit-guided forklifts|JP6578063B2|2016-07-14|2019-09-18|愛知機械テクノシステム株式会社|Traction device for automatic guided vehicle and automatic guided vehicle equipped with the same|
US20180341275A1|2017-05-23|2018-11-29|Walmart Apollo, Llc|Product distribution system|
US10646993B1|2017-07-26|2020-05-12|Facebook, Inc.|Robots linkable to perform tasks in coordinated teams|
JP6877300B2|2017-08-31|2021-05-26|シャープ株式会社|Coupling device, automatic towing vehicle and automatic towing system|
CN108860337B|2018-06-03|2020-10-20|惠安县崇武镇石板然茶叶店|Shopping cart recycling robot|
USD907677S1|2018-06-15|2021-01-12|Mobile Industrial Robots A/S|Mobile robot|
USD929478S1|2018-06-15|2021-08-31|Mobile Industrial Robots A/S|Mobile robot having an illuminated region|
JP6988751B2|2018-09-14|2022-01-05|オムロン株式会社|Automated guided vehicle and chocking device|
US10810687B2|2018-10-10|2020-10-20|Advanced Intelligent Systems Inc.|Systems and methods for automated article transportation and management thereof|
CN109733133A|2018-12-18|2019-05-10|南京理工大学|A kind of flexible trailer auxiliary alignment and drawn|
US11155247B1|2019-01-10|2021-10-26|AI Incorporated|Robotic towing device|
WO2020150368A1|2019-01-15|2020-07-23|Wal-Mart Stores, Inc.|Pallet rack and modular counter shelving tractor|
US10809734B2|2019-03-13|2020-10-20|Mobile Industrial Robots A/S|Route planning in an autonomous device|
US11254379B2|2019-04-16|2022-02-22|Cnh Industrial Canada, Ltd.|Transport system and method for autonomous work vehicles|
JP2021015413A|2019-07-11|2021-02-12|オムロン株式会社|Conveyance device with traction mechanism, conveyance system, and traction device|
JP2021015415A|2019-07-11|2021-02-12|オムロン株式会社|Towing device and carrier device including towing device|
EP3800113A1|2019-10-01|2021-04-07|Mobile Industrial Robots A/S|Mobile robot with adjustable traction weights|
EP3922417A1|2020-06-09|2021-12-15|Mobile Industrial Robots A/S|Gripping system for an autonomous guided vehicle|
EP3960691A1|2020-09-01|2022-03-02|Tractonomy Robotics BV|Autonomous mobile robot system for improved docking with a wheeled cart|
法律状态:
优先权:
申请号 | 申请日 | 专利标题
DKPA201570212A|DK178498B1|2015-04-13|2015-04-13|ROBOT-BASED VEHICLE TO TOUGH A CAR|DKPA201570212A| DK178498B1|2015-04-13|2015-04-13|ROBOT-BASED VEHICLE TO TOUGH A CAR|
US15/566,516| US10668617B2|2015-04-13|2016-04-11|Robotic cart pulling vehicle for automated pulling of carts|
EP16779651.5A| EP3283308B1|2015-04-13|2016-04-11|Robotic cart pulling vehicle for automated pulling of carts|
PCT/DK2016/050104| WO2016165721A1|2015-04-13|2016-04-11|Robotic cart pulling vehicle for automated pulling of carts|
CN201680021545.8A| CN107531116B|2015-04-13|2016-04-11|Robotic trailer tow vehicle for automatically towing a trailer|
CN202011173476.7A| CN112477532A|2015-04-13|2016-04-11|Robotic trailer tow vehicle for automatically towing a trailer|
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