Rescue system and method for recovering malfunctioning vehicle from rail system

A coordinated rescue system with two remotely operated vehicles lifts malfunctioning vehicles off rail systems, addressing lifting capacity and stability issues, ensuring efficient and safe retrieval.

JP2025186451APending Publication Date: 2025-12-23AUTOSTORE TECH AS
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Patent Information

Application Number
JP2025157233
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-11-12
Filing Date
2025-09-22
Publication Date
2025-12-23

AI Technical Summary

Technical Problem

Existing robotic service vehicles are unable to lift malfunctioning vehicles from rail systems effectively due to insufficient lifting capacity, instability during transport, and slow transport speed, especially when handling heavy containers.

Method used

A rescue system utilizing two remotely operated rescue vehicles with lifting devices positioned on opposite sides of a malfunctioning vehicle to lift it off the rail system, coordinated through communication means for synchronized operation, allowing for stable and efficient retrieval.

Benefits of technology

The system enables the retrieval of malfunctioning vehicles from rail systems while maintaining system operation, eliminating the need for manned service vehicles and improving safety, with enhanced stability and efficiency compared to single-vehicle solutions.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a rescue system and method for recovering a malfunctioning vehicle from a rail system.SOLUTION: A rescue system is for recovering a malfunctioning vehicle from a rail system of an automatic storage and retrieval system. The rail system includes: a plurality of rails having a track extending in the X direction; and a plurality of rails having a track extending in the Y direction orthogonal to the X direction. A plurality of remotely operated vehicles moves in the X direction and the Y direction on the track of the rail system. A first rescue vehicle travels on the track of the rail system. The first rescue vehicle is provided with a lifting device on one side of the vehicle. The lifting device faces in order to be engaged in the first X direction. A second rescue vehicle travels on the track of the rail system. The second rescue vehicle is provided with the lifting device on the opposite side of the vehicle. The lifting device faces in order to be engaged in the second X direction on the opposite side from the first one.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to an automated storage and retrieval system for the storage and retrieval of containers, and in particular to a rescue system for retrieving a malfunctioning vehicle from a rail system, a method for retrieving a malfunctioning container handling vehicle from a rail system, and a rescue vehicle for use in the system and method. [Background technology]

[0002] FIG. 1 discloses a typical prior art automated storage and retrieval system 1 with a framework structure 100, and FIGS. 2 and 3 disclose two different prior art container handling vehicles 201, 301 suitable for operating on such a system 1.

[0003] The skeletal structure 100 comprises upright members 102, horizontal members 103, and a storage volume comprising storage columns 105 arranged in a row between the upright members 102 and the horizontal members 103. In these storage columns 105, storage containers 106, also known as receptacles, are stacked on top of each other to form stacks 107. The members 102, 103 may typically consist of metal, for example, extruded aluminum profiles.

[0004] The framework structure 100 of the automated storage and retrieval system 1 includes a rail system 108 disposed across the top of the framework structure 100, on which a plurality of container handling vehicles 201, 301 are operable to raise storage containers 106 from, lower storage containers 106 into, and transport storage containers 106 up the storage columns 105. The rail system 108 includes a first set of parallel rails 110 disposed to guide movement of the container handling vehicles 201, 301 in a first direction X across the top of the framework structure 100, and a second set of parallel rails 111 disposed perpendicular to the first set of rails 110 for guiding movement of the container handling vehicles 201, 301 in a second direction Y that is perpendicular to the first direction X. The containers 106 stored in the columns 105 are accessed by the container handling vehicles through access openings 112 in the rail system 108. The container handling vehicles 201, 301 can move laterally above the storage columns 105, i.e. in a plane that is parallel to the horizontal XY plane.

[0005] The uprights 102 of the skeletal structure 100 can be used to guide the storage containers during their ascent out of and descent into the columns 105. The stacks 107 of containers 106 are typically freestanding.

[0006] Each prior art container handling vehicle 201, 301 includes a carbody 201a, 301a and first and second sets of wheels 201b, 301b, 201c, 301c, respectively, that enable lateral movement of the container handling vehicle 201, 301 in the X and Y directions. Two wheels in each set are fully visible in Figures 2 and 3. The first set of wheels 201b, 301b are positioned to engage two adjacent rails of the first set of rails 110, and the second set of wheels 201c, 301c are positioned to engage two adjacent rails of the second set of rails 111. At least one of the sets of wheels 201b, 301b, 201c, 301c can be raised and lowered so that the first set of wheels 201b, 301b and / or the second set of wheels 201c, 301c can be engaged with the respective set of rails 110, 111 at any one time.

[0007] Each prior art container handling vehicle 201, 301 also includes a lifting device (not shown) for vertically transporting the storage containers 106, e.g., lifting the storage containers 106 from the storage columns 105 and lowering them into the storage columns 105. The lifting device includes one or more gripping / engaging devices adapted to engage the storage containers 106, which can be lowered from the vehicle 201, 301, so that the position of the gripping / engaging devices relative to the vehicle 201, 301 can be adjusted in a third direction Z, which is orthogonal to the first direction X and the second direction Y. A portion of the gripping device of the container handling vehicle 301 is shown in FIG. 3 and is designated with reference numeral 304. The gripping device of the container handling device 201 is located within the vehicle body 301a of FIG. 2.

[0008] As is conventional, for purposes of this application, Z=1 identifies the top layer of storage containers, i.e., the layer immediately below rail system 108; Z=2 identifies the second layer below rail system 108; Z=3 identifies the third layer, etc. In the exemplary prior art disclosed in FIG. 1 , Z=8 identifies the lowest bottom layer of storage containers. Similarly, X=1·n and Y=1·n identify the position of each storage column 105 in the horizontal plane. As a result, using, by way of example, the Cartesian coordinate system X, Y, Z shown in FIG. 1 , the storage container identified as 106′ in FIG. 1 can be said to occupy storage location X=10, Y=2, Z=3. Container handling vehicles 201, 301 can be said to travel in layer Z=0, and each storage column 105 can be identified by its X and Y coordinates.

[0009] The storage volume of the skeleton structure 100 is often referred to as a grid 104, and the possible storage locations within this grid are referred to as storage cells. Each storage column may be identified by a position in the X and Y directions, while each storage cell may be identified by a container number in the X, Y, and Z directions.

[0010] Each prior art container handling vehicle 201, 301 includes a storage compartment or space for receiving and storing the storage containers 106 as they are transported across the rail system 108. The storage space may include a centrally located cavity within the vehicle body 201a, as shown in FIG. 2 and as described, for example, in WO 2015 / 193278 A1, the contents of which are incorporated herein by reference.

[0011] 3 shows an alternative configuration of a container handling vehicle 301 with a cantilever structure. Such a vehicle is described in detail, for example, in No. 317366, the contents of which are also incorporated herein by reference.

[0012] 2 may have a footprint covering an area with dimensions in the X and Y directions generally equal to the lateral extent of a storage column 105, as described, for example, in WO 2015 / 193278 A1, the contents of which are incorporated herein by reference. As used herein, the term "lateral" may mean "horizontal."

[0013] Alternatively, the central hollow container handling vehicle 101 may have a footprint that is larger than the lateral area defined by the storage columns 105, for example as disclosed in WO2014 / 090684A1.

[0014] The rail system 108 typically includes rails with grooves into which the vehicle wheels are inserted. Alternatively, the rails may include upwardly protruding elements, and the vehicle wheels may include flanges to prevent derailment. These grooves and upwardly protruding elements collectively form a Each rail may have one track, or each rail may have two parallel tracks.

[0015] WO2018146304 (the contents of which are incorporated herein by reference) illustrates a typical configuration of a rail system 108 comprising rails and parallel tracks in both the X and Y directions.

[0016] In the skeleton structure 100, the majority of the columns 105 are storage columns 105, i.e., columns 105 where storage containers 106 are stored in stacks 107. However, some columns 105 may have other purposes. In FIG. 1 , columns 119 and 120 are such special-purpose columns that are used by container handling vehicles 201, 301 to unload and / or load storage containers 106 so that they can be transported to access stations (not shown) (where the storage containers 106 can be accessed from outside the skeleton structure 100 or transferred out of or into the skeleton structure 100). Within the art, such locations are typically referred to as "ports," and the columns in which the ports are located may be referred to as "port columns" 119, 120. Transport to the access stations can be in any direction: horizontal, diagonal, and / or vertical. For example, storage containers 106 may be installed in random or dedicated columns 105 within the framework structure 100 and then loaded by any container handling vehicle and transported to port columns 119, 120 for further transport to an access station. Note that the term "diagonal" refers to the transport of storage containers 106 having a general transport orientation somewhere between horizontal and vertical.

[0017] In FIG. 1 , the first port column 119 may be, for example, a dedicated unloading port column where container handling vehicles 201, 301 may unload storage containers 106 to be transported to an access or transfer station, and the second port column 120 may be a dedicated loading port column where container handling vehicles 201, 301 may load storage containers 106 being transported from an access or transfer station.

[0018] An access station may typically be a picking station or stockpiling station where product items are removed from or placed into storage containers 106. At a picking or stockpiling station, the storage containers 106 are typically not removed from the automated storage and retrieval system 1, but are accessed and then placed back into the backbone structure 100. Ports can also be used to transfer storage containers to another storage facility (e.g., to another backbone structure or to another automated storage and retrieval system), to a transport vehicle (e.g., a train or lorry), or to a production facility.

[0019] A conveyor system comprising conveyors is typically employed to transport storage containers between the port columns 119, 120 and the access stations.

[0020] If the port columns 119, 120 and the access stations are located at different levels, the conveyor system may include a lifting device with a vertical component for transporting the storage containers 106 vertically between the port columns 119, 120 and the access stations.

[0021] A conveyor system may be arranged to transfer storage containers 106 between different skeletal structures, for example as described in WO2014 / 075937A1, the contents of which are incorporated herein by reference.

[0022] 1 is to be accessed, one of the container handling vehicles 201, 301 is commanded to retrieve the target storage container 106 from its location and transport it to the unloading port column 119. This operation involves moving the container handling vehicle 201, 301 to a location above the storage column 105 where the target storage container 106 is located, using a lifting device (not shown) of the container handling vehicle 201, 301 to retrieve the storage container 106 from the storage column 105, and transporting the storage container 106 to the unloading port column 119. If the target storage container 106 is located deep within the stack 107, i.e., with one or more other storage containers 106 positioned above the target storage container 106, the operation also involves temporarily moving the storage container(s) positioned above it prior to lifting the target storage container 106 from the storage column 105. This step, sometimes referred to within the art as "digging," may be subsequently performed using the same container handling vehicle used to transport the target storage container to the unloading port column 119, or using one or more other cooperating container handling vehicles. Alternatively, or in addition, the automated storage and retrieval system 1 may have a container handling vehicle specifically dedicated to the task of temporarily removing storage containers from storage column 105. Once the target storage container 106 is removed from storage column 105, the temporarily removed storage container can be repositioned in the original storage column 105. However, the removed storage container may alternatively be relocated to another storage column.

[0023] When a storage container 106 is to be stored in one of the columns 105, one of the container handling vehicles 201, 301 is commanded to load the storage container 106 from the load port column 120 and transport it to a location above the storage column 105 where it is to be stored. After any storage container located at or above the target location in the storage column stack 107 is removed, the container handling vehicle 201, 301 positions the storage container 106 in the desired location. The removed storage container can then be lowered back into the storage column 105 or relocated to another storage column.

[0024] To monitor and control the automated storage and retrieval system 1, for example, the location of each storage container 106 within the skeletal structure 100, the contents of each storage container 106, and the movements of the container handling vehicles 201, 301 so that the desired storage containers 106 can be delivered to the desired locations at the desired times without the container handling vehicles 201, 301 colliding with each other, the automated storage and retrieval system 1 typically includes a control system 500 that is computerized and typically includes a database for tracking the storage containers 106.

[0025] Prior art WO2015140216A1 discloses a robotic service device for use on a robotic picking system grid. The robotic service device can be driven to any location on the grid to perform maintenance operations or cleaning. In addition, the service device can be used to rescue a robotic load handling device operating within the picking system. The robotic service device may be equipped with a releasable docking mechanism to enable it to dock with and latch onto a malfunctioning load handling vehicle. The service device may also be provided with camera means to enable the status of the cleaning means and the grid and other robotic devices to be monitored.

[0026] The required lifting capacity of a single robotic service vehicle to lift a malfunctioning vehicle off the rail system is too high, thereby preventing the robotic service vehicle from operating. Problems with prior art robotic service vehicles can be that they are not able to lift malfunctioning vehicles, and / or, even if the robotic service vehicle is able to lift a malfunctioning vehicle off the rail system, they are unstable during transport, requiring a large counterweight and / or slow transport speed / acceleration.

[0027] If the malfunctioning vehicle is transporting heavy storage containers, the required lifting capacity may be even higher, which may pose an even greater problem.

[0028] It is an object of the present invention to solve the problem of retrieving vehicles from rail systems. [Prior art documents] [Patent documents]

[0029] [Patent Document 1] International Publication No. 2015 / 193278 [Patent Document 2] International Publication No. 2014 / 090684 [Patent Document 3] International Publication No. 2018 / 146304 [Patent Document 4] International Publication No. 2014 / 075937 [Patent Document 5] International Publication No. 2015 / 140216 Summary of the Invention [Means for solving the problem]

[0030] The present invention is set out and characterized in the independent claims, while the dependent claims describe other features of the invention. The present invention provides the possibility to rescue a container handling vehicle while the automated storage and retrieval system is in operation, i.e., while the remaining container handling vehicles are in operation on the rail system. The present invention eliminates the need for manned service vehicles and improves the HSE for the system. However, in the event of a major collision that causes a vehicle to come off the track, an operator may be required to enter the rail system.

[0031] A rescue system for retrieving a malfunctioning vehicle from a rail system of an automated storage and retrieval system is described, the rail system comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, a plurality of remotely operated vehicles configured to move in the X direction and the Y direction on the tracks of the rail system, the system comprising: a first rescue vehicle configured to travel on a track of a rail system, the first rescue vehicle being provided with a lifting device on one side of the vehicle, the lifting device facing for engagement in a first X-direction; and a second rescue vehicle configured to travel on a track of the rail system, the second rescue vehicle being provided with a lifting device on an opposite side of the vehicle, the lifting device facing for engagement in a second X-direction that is opposite to the first one; and Equipped with The first and second rescue vehicles are configured to cooperate such that when one of the plurality of remotely operated vehicles malfunctions, the first and second rescue vehicles position themselves on the rail system on opposite sides of the malfunctioning vehicle, engage their respective lifting devices with opposite sides of the malfunctioning vehicle, lift the malfunctioning vehicle away from the rail system, and simultaneously operate their lifting devices to transport the malfunctioning vehicle.

[0032] The lifting device may include a vertical plate with edges extending therefrom. Alternatively, other types of lifting devices may be used as long as they provide the required horizontal portion functionality that is engageable with the malfunctioning vehicle so that the malfunctioning vehicle can be lifted off the rail system by vertical movement of the horizontal portion relative to the rail system. The lifting device may include a motor, any necessary components for guiding the lifting device substantially vertically. It may further include any necessary components required to raise and lower the lifting device relative to the rail system, such as necessary guides or actuators, connections to a power source to drive the motor, etc. The motor, and in some cases the power source, may also be designed with a lower lifting capacity than prior art service vehicles that utilize only one motor to lift the container handling vehicle off the grid.

[0033] The container handling vehicle can be in the form of a prior art container handling vehicle such as that illustrated in Figures 2 and 3A configured to receive storage containers from below, or in the form of a container delivery vehicle configured to receive storage containers from above.

[0034] A rescue system for retrieving a malfunctioning vehicle from a rail system of an automated storage and retrieval system is further described, the rail system comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, the rails defining a plurality of grid cells, and a plurality of remotely operated vehicles configured to move in the X and Y directions on the tracks of the rail system, the system comprising: a first rescue vehicle configured to travel on a track of a rail system, the first wheel base unit providing a movable platform corresponding in area to a single grid cell for a first vehicle rescue module mounted thereon, the first vehicle rescue module being oriented in a first direction of the rail system; and a second rescue vehicle configured to run on a track of a rail system, the second wheel base unit comprising a second wheel base unit providing a movable platform corresponding in area to a single grid cell for a second vehicle rescue module mounted thereon, the second vehicle rescue module being oriented in a second direction of the rail system opposite the first direction; Equipped with The first and second rescue vehicles are configured to cooperate to perform rescue operations on a malfunctioning vehicle of the plurality of remotely operated vehicles, and the vehicle rescue module is arranged to engage opposite sides of the malfunctioning vehicle and, by being oriented in opposite directions, to lift it away from the rail system using the lifting device.

[0035] The vehicle rescue module may include a lifting plate with edges extending at a height above the upper surface of the wheel base unit. The height may be within 50 mm, or it may be lower, or it may be higher.

[0036] The plurality of remotely operated vehicles may each comprise a wheel base unit that provides a movable platform corresponding in area to a single grid cell of the rail system for the storage container lifting modules mounted thereon.

[0037] A grid cell may be defined as the area encompassing the track width subtended by a pair of tracks in the X and Y directions around an access opening of the rail system.

[0038] The wheel base units may be identical.

[0039] The first and second rescue vehicles may be equipped with communication means for synchronized operation, which may further increase the chances of a successful lifting operation by preventing jamming that may occur during a non-uniform lifting.

[0040] The communication means may enable communication between the first rescue vehicle and the second rescue vehicle. The communication can be internal or direct communication between the rescue vehicles. The means of internal or direct communication can be IR, wireless (WiFi), optical (LiFi), Bluetooth, NFC, or similar.

[0041] The system may further comprise a control system, which may comprise cooperable communication means configured to communicate with and operate synchronously with the communication means of the first and second rescue vehicles.

[0042] The first or second rescue vehicle may be a master rescue vehicle, and the other of the first or second rescue vehicles may be a slave rescue vehicle operated at least in part by commands from the master rescue vehicle. Master / slave operation may be limited to lifting operations, while the rescue vehicles' normal operation in terms of horizontal movement on the rail system may be under the control of the control system operating the container handling vehicles. Upon entering the rail system, the rescue vehicles may be added to the control system operating the remotely operated vehicles so that they are operated as standard container handling vehicles, reducing the probability of collision with the container handling vehicles. Once the two rescue vehicles lift the malfunctioning container handling vehicle, the control system will keep track of the number of cell spaces required by the two rescue vehicles and the malfunctioning container handling vehicle and take this into account when determining a route to use to transport the malfunctioning vehicle, for example, to a service area.

[0043] The rail system may be the top level of a storage and retrieval system.

[0044] The rail system may be a delivery rail system.

[0045] The rescue vehicle may be equipped with two sets of wheels for movement in the X and Y directions along the rail system.

[0046] The lifting device may include an actuator configured to raise and lower the malfunctioning vehicle relative to the rail system.

[0047] The lifting device may be configured to move only upwards and downwards (i.e., raised and lowered) in the Z direction. This may be achieved using a lifting device in the form of a linear actuator or the like.

[0048] However, alternatively, the lifting device may be configured for lateral movement in the X and / or Y directions in addition to being moved upward and downward in the Z direction, the latter being advantageous in operations requiring a larger contact area between the lifting device and the malfunctioning container handling vehicle.

[0049] At least one of the first and / or second rescue vehicles may include at least one rotary drive for hoisting the lifting frame and / or track shift motor of the inoperable container handling vehicle, which allows for manual / mechanical oversteering of any immobilized lifting devices or graspers and / or wheel sets of the container handling vehicle.

[0050] If a container handling vehicle is inoperable with the lifting device / grabber in a lowered position, a rescue vehicle may be provided with a rotary drive for connection to the inoperable vehicle to raise the lifting device / grabber before the inoperable vehicle is transported away from the rail system.

[0051] Rotation drive disables lift frame / grasper motor and / or track shift motor One or more cameras located on the same or another rescue vehicle may be positioned to monitor the process and provide useful information in view of the step of aligning the rotary drive with a complementary socket on the malfunctioning vehicle. In one aspect, the camera may be or form part of the communication means between the first rescue vehicle and the second rescue vehicle.

[0052] At least one rotary drive may be swivellable, and the axis of the rotary drive may be configured to be swiveled between stowed vertical positions during movement of the first or second rescue vehicle on the rail system, and further configured to be swiveled to a deployed horizontal position for hoisting the lifting frame and / or track shift motor of the malfunctioning container handling vehicle.

[0053] In particular, the rotary drive can be pivoted between its stowed position to a deployed horizontal position as the rescue vehicle is moved toward the disabled vehicle so that the drive shaft can protrude to engage a socket in the disabled vehicle as it approaches.

[0054] The rotary drive of the lifting frame may be arranged in the upper part of the rescue vehicle, and when the rotary drive is in the deployed horizontal position, the rotary drive may be supported by an actuator.

[0055] Alternatively, the rotary drive can be connected to a linear actuator for movement between a stowed position and a deployed position. When in the stowed position, the periphery of the rotary drive can be disposed within the horizontal periphery of the wheel base unit, and when in the deployed position, at least a portion of the rotary drive can extend beyond the periphery of the wheel base unit. In other words, when in the stowed position, the rescue vehicle can have an footprint equal to or smaller than a grid cell of the rail system, and when in the deployed position, the rotary drive can extend into a neighboring grid cell in response to actuation of the linear actuator. This provides the possibility that the service vehicle will not occupy more than one cell when moving on the rail system.

[0056] A rescue vehicle for retrieving a malfunctioning vehicle from a rail system of an automated storage and retrieval system is further described, the rail system comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, a plurality of remotely operated vehicles configured to move in the X and Y directions on the tracks of the rail system, the rescue vehicle comprising a wheel base unit configured to run on the tracks of the rail system, the wheel base unit providing a movable platform corresponding in area to a single grid cell for a vehicle rescue module mounted thereon, the vehicle rescue module oriented in a first direction of the rail system, the vehicle rescue module having an edge on at least one of the module's sides positioned at a level above the level of the wheel base unit.

[0057] The rescue vehicle may further comprise a rotary drive for hoisting the lifting frame and / or track shift motor of the malfunctioning container handling vehicle.

[0058] An automated storage and retrieval system is further described, the system comprising: a framework structure comprising upright members, horizontal members and a storage volume comprising storage columns arranged in a row between the upright members and the horizontal members; a plurality of storage containers stacked on top of each other to form a stack; a rail system comprising a plurality of rails with tracks extending in an -X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction; a plurality of remotely operated vehicles configured to move in an X direction and a Y direction on a track of a rail system; - a rescue system as defined above; It is equipped with:

[0059] A method for retrieving a malfunctioning container handling vehicle from a rail system with orthogonal tracks in X and Y directions is further described, the method comprising: a plurality of remotely operated vehicles disposed on the rail system, each of the vehicles comprising a body and a side portion, at least two opposite side portions on each vehicle comprising a recess; - determining anomalies in the operating state of vehicles on the rail system; - registering a vehicle with an abnormal operating condition as a malfunctioning vehicle; - registering the position of the malfunctioning vehicle relative to the support rail system; - operating a first rescue vehicle configured to travel on a track of a rail system, the first rescue vehicle being provided with a lifting device on one side of the vehicle, the lifting device facing for engagement in a first X-direction; - operating a second rescue vehicle configured to travel on a track of the rail system, the second rescue vehicle being provided with a lifting device on an opposite side of the vehicle, the lifting device facing for engagement in a second X-direction opposite to the first one; - coordinating the first and second rescue vehicles by positioning the first and second rescue vehicles on opposite sides of the malfunctioning vehicle; - engaging a lifting device of each of the first and second rescue vehicles with opposite sides of the malfunctioning vehicle; simultaneously operating the lifting device to lift the malfunctioning vehicle away from the rail system and transport the malfunctioning vehicle; Includes.

[0060] The malfunctioning container handling vehicle may be equipped with a lifting device for lifting and lowering storage containers from below, or the malfunctioning container handling vehicle may be a delivery vehicle configured to receive storage containers from above.

[0061] A method for retrieving a malfunctioning container handling vehicle from a rail system with orthogonal tracks in X and Y directions is further described, the method comprising: a plurality of remotely operated vehicles disposed on the rail system, each of the vehicles comprising a body and a side portion, at least two opposite side portions on each vehicle comprising a recess; - determining anomalies in the operating state of vehicles on the rail system; - registering a vehicle with an abnormal operating condition as a malfunctioning vehicle; - registering the position of the malfunctioning vehicle relative to the support rail system; - operating a first rescue vehicle comprising a first wheel base unit configured to travel on a track of a rail system, the first wheel base unit providing a movable platform corresponding in area to a single grid cell for a first vehicle rescue module mounted thereon, the first vehicle rescue module being oriented in a first direction of the rail system; - operating a second rescue vehicle comprising a second wheel base unit configured to travel on a track of a rail system, the second wheel base unit providing a movable platform corresponding in area to a single grid cell for a second vehicle rescue module mounted thereon, the second vehicle rescue module being oriented in a second direction of the rail system opposite the first direction; - coordinating first and second rescue vehicles to perform rescue operations on a malfunctioning vehicle of the plurality of remotely operated vehicles; - engaging a lifting device on an opposite side of the malfunctioning vehicle; - lifting the malfunctioning vehicle away from the rail system; Includes.

[0062] The method may further include operating the rotary drive to hoist the lift frame and / or track shift motor of the malfunctioning container handling vehicle prior to engaging the lift device on the opposite side of the malfunctioning vehicle.

[0063] A rescue system for retrieving a malfunctioning vehicle from a rail system with orthogonal tracks in X and Y directions is further described, the rescue system comprising: a plurality of remotely operated vehicles configured to move laterally on the rail system; a first rescue vehicle with a vehicle body, the first rescue vehicle being provided with a lifting device configured to be raised and lowered relative to an underlying rail system; and a second rescue vehicle with a vehicle body, the second rescue vehicle being equipped with a lifting device configured to be raised and lowered relative to an underlying rail system; and Equipped with The first rescue vehicle is configured to extend beyond the perimeter of a first side of the malfunctioning vehicle and the second rescue vehicle is configured to extend beyond the perimeter of an opposite second side of the malfunctioning vehicle, and when the first and second rescue vehicles extend beyond the perimeter of the malfunctioning vehicle, the first and second lifting devices are configured to be operated simultaneously such that synchronous operation of the lifting devices lifts the malfunctioning vehicle away from the rail system.

[0064] In all of the disclosed examples, utilizing two rescue vehicles operating in tandem would require a smaller lift motor than when lifting a container handling vehicle using only one rescue vehicle, where a single motor would need to be able to lift the malfunctioning vehicle off the rail system.

[0065] Furthermore, the solution provides a more stable transport of the inoperable vehicle compared to when using a single rescue vehicle, since the solution provides an advantageous center of gravity.

[0066] Another advantage of the solution is the greater flexibility of accessing areas on the rail system compared to when using smaller rescue vehicles.

[0067] In order for the lifting device to support the malfunctioning container handling vehicle without horizontally moving the lifting device relative to the rescue vehicle during the lifting operation, a portion of the lifting device, such as an edge, may extend into a neighboring cell when the rescue vehicle is positioned at the center of the cell. In order for the rescue vehicle to pass the container handling vehicle in the neighboring cell and thereby occupy as little space as possible on the rail system, the container handling vehicle preferably has recesses on two or all sides through which the neighboring rescue vehicle may pass, while the delivery vehicle and the so-called single cell robot may have recesses on all sides. The recesses may extend along the entire length of each side of the container handling vehicle. In addition, the recesses may have sufficient extension in the Z direction to account for different heights of the container handling vehicle depending on the wheel set that contacts the rail system.

[0068] These could run on a separate control system, but it would be simplest to run them on the same system as the rest of the vehicle.

[0069] Note that the (single cell) drone can be lifted from both the short side (Y) and the long side (X).

[0070] Container handling vehicles may be engaged with malfunctioning container handling vehicles. The vehicle may have at least one recess that is complementary shaped to the lifting plate of the rescue vehicle to be lifted. However, alternatively, the container handling vehicle may be lifted from the rail system by being sandwiched between two rescue vehicles from opposite sides and then lifted away from the rail system, or by using magnets or the like. For example, the rescue vehicles may be equipped with a vertically movable surface, such as a conveyor device or the like, and the two rescue vehicles may then push together, holding the malfunctioning vehicle sandwiched between them.

[0071] The recess may be at the interface where a carrier module for container support on a delivery vehicle or a container lift module is mounted on the wheel base unit.

[0072] The same rescue vehicle can be used whether operating on the top level of the storage and retrieval system, or on the delivery rail system, or on single / single, single / dual, or dual / dual tracks. This provides great flexibility, as the rescue vehicle is the same whether retrieving a container handling vehicle with a lifting device / grabber or retrieving a delivery vehicle. For example, using the same rescue vehicle with opposite orientations, such as one lifting device facing east and one facing west, would provide the possibility of retrieving both a malfunctioning vehicle facing north and a malfunctioning vehicle facing south.

[0073] The rescue vehicle may further be provided with visual inspection means for carrying out visual inspections on the rail system, or for controlling or checking vehicles with problems on the rail system, etc. The visual inspection means may comprise one or more cameras.

[0074] The following drawings are included to facilitate an understanding of the invention: The drawings illustrate embodiments of the invention, which will herein be described by way of example only. The present invention provides, for example, the following. (Item 1) A rescue system for retrieving a malfunctioning vehicle (240, 340) from a rail system (108, 308) of an automated storage and retrieval system (1), the rail system (108, 308) comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, and a plurality of remotely operated vehicles (201, 301, 340) configured to move in the X and Y directions on the tracks of the rail system; a first rescue vehicle (40) configured to travel on the track of the rail system (108, 308), said first rescue vehicle (40) being provided with a lifting device (41) on one side of said vehicle (40), said lifting device (41) facing for engagement in a first X-direction; a second rescue vehicle (40) configured to travel on the track of the rail system (108, 308), said second rescue vehicle (40) being provided with a lifting device (41) on the opposite side of said vehicle (40), said lifting device (41) facing for engagement in a second X-direction opposite to said first, The first and second rescue vehicles (40) are configured to cooperate with each other, and when one of the plurality of remotely operated vehicles (201, 301, 240, 340) malfunctions, the first and second rescue vehicles (40) position themselves on the rail system (108, 308) on opposite sides of the malfunctioning vehicle (240, 340), engage their respective lifting devices (41) with the opposite sides of the malfunctioning vehicle (240, 340), and simultaneously operate their lifting devices (41) to lift the malfunctioning vehicle (240, 340) away from the rail system (108, 308) and transport the malfunctioning vehicle (240, 340). (Item 2) 2. A rescue system according to item 1, wherein the lifting device (41) comprises a vertical plate (42) having an edge (43) extending therefrom. (Item 3) A rescue system for retrieving a malfunctioning vehicle (240, 340) from a rail system (108, 308) of an automated storage and retrieval system (1), the rail system (108, 308) comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, the rails defining a plurality of grid cells, and a plurality of remotely operated vehicles (201, 301, 340) configured to move in the X and Y directions on the tracks of the rail system (108, 308); a first rescue vehicle (40) comprising a first wheel base unit (2) configured to travel on the tracks of the rail system (108, 308), the first wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a first vehicle rescue module (48) mounted thereon, the first vehicle rescue module (48) being oriented in a first direction of the rail system (108, 308); a second rescue vehicle (40) on the track of the rail system (108, 3008); a second wheel base unit (2) configured to travel on a rail system (108, 308) opposite the first direction, the second wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a second vehicle rescue module (48) mounted thereon, the second vehicle rescue module (48) oriented in a second direction of the rail system (108, 308) opposite the first direction; A rescue system, wherein the first and second rescue vehicles (40) are configured to cooperate to perform rescue operations on malfunctioning vehicles (240, 340) of the plurality of remotely operated vehicles (201, 301, 340), and the vehicle rescue module (48) is arranged to engage opposite sides of the malfunctioning vehicles (240, 340) and, by being oriented in opposite directions, to lift the malfunctioning vehicles (240, 340) away from the rail system (108, 308) using a lifting device (41). (Item 4) Item 4. The rescue system of item 3, wherein the vehicle rescue module (48) comprises a lifting plate (42), the lifting plate (42) having an edge (43) extending at a height above the upper surface of the wheel base unit (2). (Item 5) 5. A rescue system as described in item 3 or 4, wherein the plurality of remotely operated vehicles (201, 301, 340) comprise wheel base units (2) providing movable platforms for storage container lifting modules mounted thereon, each of the movable platforms corresponding in area to a single grid cell of the rail system (108, 308). (Item 6) 6. A rescue system according to any one of items 3-5, wherein the wheel base units (2) are identical. (Item 7) 7. A rescue system according to any one of items 1 to 6, wherein the first and second rescue vehicles (40) are equipped with communication means for synchronous operation. (Item 8) 8. The rescue system according to item 7, wherein the communication means enables communication between the first and second rescue vehicles (40). (Item 9) 7. A rescue system according to any one of items 1 to 6, wherein the system further comprises a control system, the control system comprising cooperable communication means configured to communicate with and operate synchronously with the communication means of the first and second rescue vehicles (40). (Item 10) Item 9. The rescue system described in item 8, wherein the first or second rescue vehicle (40) is a master rescue vehicle, and the other of the master rescue vehicles is a slave rescue vehicle that is operated at least in part by commands from the master rescue vehicle. (Item 11) A rescue system according to any one of items 1 to 10, wherein the rail system is at the top level of a storage and retrieval system (108). (Item 12) 11. A rescue system according to any one of items 1-10, wherein the rail system is a delivery rail system (308). (Item 13) 13. A rescue system according to any one of items 1 to 12, wherein the rescue vehicle (40) is provided with two sets of wheels (32a, 32b) for movement in the X and Y directions along the rail system (108, 308). (Item 14) The lifting device (41) is configured to move relative to the rail system (108, 308). The rescue system according to any one of items 1 to 13, further comprising an actuator configured to raise and lower the disabled vehicle (240, 340). (Item 15) A rescue system according to any of items 1 to 14, wherein at least the first or second rescue vehicle (40) is provided with at least one rotary drive (49', 49'', 49''') for hoisting the lifting frame and / or track shift motor of the malfunctioning container handling vehicle (240, 340). (Item 16) Item 16. The rescue system according to item 15, wherein the at least one rotary drive (49', 49'') is swivellable, the axis of the rotary drive (49', 49'') being configured to be swiveled between a stowed vertical position during movement of the first or second rescue vehicle (40) on the rail system (108, 308) and to a deployed horizontal position for hoisting a lifting frame and / or a track shift motor of a malfunctioning container handling vehicle (240, 340). (Item 17) 17. The rescue system according to item 16, wherein the rotary drive (49', 49'') for the lifting frame is arranged in an upper part of the rescue vehicle (40), and the rotary drive (49', 49'') is supported by an actuator when in the deployed horizontal position. (Item 18) 16. A rescue system according to item 15, wherein the rotary drive unit (49', 49") is connected to a linear actuator (49'") for movement between the stowed position and the deployed position, and when in the stowed position, the periphery of the rotary drive unit (49'") is arranged within the horizontal periphery of the wheel base unit (2), and when in the deployed position, at least a portion of the rotary drive unit (49'") extends beyond the periphery of the wheel base unit (2). (Item 19) a rescue vehicle (40) for retrieving a malfunctioning vehicle (240, 340) from a rail system (108, 308) of an automated storage and retrieval system (1), the rail system (108, 308) comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, a plurality of remotely operated vehicles (201, 301, 340) configured to move in the X and Y directions on the tracks of the rail system (108, 308), the rescue vehicle (40) comprising a wheel base unit (2) configured to travel on the tracks of the rail system (108, 308), the wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a vehicle rescue module (48) mounted thereon, the vehicle rescue module (48) being oriented in a first direction of the rail system (108, 308); A rescue vehicle (40) wherein the vehicle rescue module (48) has a rim (43) on at least one of the sides of the module (48), the rim (43) being positioned at a level above the level of the wheel base unit (2). (Item 20) 20. The rescue vehicle according to item 19, further comprising a rotary drive (49′, 49″, 49′″) for hoisting the lifting frame and / or track shift motor of the malfunctioning container handling vehicle (240, 340). (Item 21) An automated storage and retrieval system (1), comprising: a framework (100) comprising upright members (102), horizontal members (103) and a storage volume, said storage volume comprising storage columns (105) arranged in a row between said upright members (102) and said horizontal members (103); a plurality of storage containers (106) stacked on top of each other to form a stack (107); a rail system including a plurality of rails with tracks extending in a −X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction; a plurality of remotely operated vehicles configured to move in the X and Y directions on the tracks of the rail system (108, 308); - a rescue system according to any of items 1 to 18; A system (1) comprising: (Item 22) A method for recovering a malfunctioning container handling vehicle from a rail system (108, 308) with orthogonal tracks in X and Y directions, comprising: a plurality of remotely operated vehicles (230, 240, 340, 250) disposed on the rail system (108, 308), each of the vehicles (40) comprising a body and a side portion, at least two opposite side portions on each vehicle comprising a recess (50), the method comprising: - determining anomalies in the operating conditions of vehicles (240, 340) on said rail system (108, 308); - registering said vehicle with said abnormal operating condition as a malfunctioning vehicle (240, 340); - registering the position of said malfunctioning vehicle (240, 340) relative to said support rail system (108, 308); - operating a first rescue vehicle (40) configured to travel on the track of the rail system (108, 308), the first rescue vehicle (40) being provided with a lifting device (41) on one side of the vehicle (40), the lifting device (41) facing for engagement in a first X-direction; - operating a second rescue vehicle (40) configured to travel on the track of the rail system (108, 308), the second rescue vehicle (40) being provided with a lifting device (41) on an opposite side of the vehicle (40), the lifting device (41) facing for engagement in a second X-direction opposite to the first; - coordinating the first and second rescue vehicles (40) by positioning them on opposite sides of the malfunctioning vehicle (240, 340); - engaging the respective lifting devices (41) of the first and second rescue vehicles (40) with the opposite sides of the malfunctioning vehicle (240, 340); - simultaneously operating the lifting devices (41) to lift the malfunctioning vehicle (240, 340) away from the rail system (108, 308) and transport the malfunctioning vehicle (240, 340); A method comprising: (Item 23) A method for retrieving a malfunctioning container handling vehicle (240, 340) from a rail system (108, 308) with orthogonal tracks in X and Y directions, comprising: a plurality of remotely operated vehicles (201, 301, 340) disposed on said rail system (108, 308), each of said vehicles comprising a body and a side portion, at least two opposite side portions on each vehicle comprising a recess (50), said method comprising: - determining anomalies in the operating conditions of vehicles (240, 340) on said rail system (108, 308); - registering said vehicle with said abnormal operating condition as a malfunctioning vehicle (240, 340); - registering the position of said malfunctioning vehicle (240, 340) relative to said support rail system (108, 308); - a vehicle configured to travel on the tracks of the rail system (108, 308); operating a first rescue vehicle (40) having one wheel base unit (2), the first wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a first vehicle rescue module (48) mounted thereon, the first vehicle rescue module (48) being oriented in a first direction of the rail system (108, 308); - operating a second rescue vehicle (40) comprising a second wheel base unit (2) configured to travel on the tracks of the rail system (108, 308), the second wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a second vehicle rescue module (48) mounted thereon, the second vehicle rescue module (48) being oriented in a second direction of the rail system (108, 308) opposite the first direction; - cooperating the first and second rescue vehicles (40) to perform rescue operations on the malfunctioning vehicle (240, 340) of the plurality of remotely operated vehicles; - engaging said lifting device (41) on the opposite side of said malfunctioning vehicle (240, 340); - lifting said malfunctioning vehicle (240, 340) away from said rail system (108, 308); A method comprising: (Item 24) 24. The method according to claim 22 or 23, further comprising the step of operating a rotary drive (49', 49'', 49''') to hoist a lifting frame and / or a track shift motor of the malfunctioning container handling vehicle (240, 340) prior to the step of engaging the lifting device (41) with the opposite side of the malfunctioning vehicle (240, 340). [Brief explanation of the drawings]

[0075] [Figure 1] FIG. 1 is a perspective view of the skeletal structure of a prior art automated storage and retrieval system. [Figure 2]FIG. 2 is a perspective view of a prior art container handling vehicle having a centrally located cavity for holding storage containers therein. [Figure 3-1] FIG. 3A is a perspective view of a prior art container handling vehicle having a cantilever beam for holding storage containers underneath. [Figure 3-2] 3B and 3C are perspective views of exemplary automated storage and retrieval systems according to the present invention, with FIG. 3B showing a portion of the system having a delivery rail system with a container delivery vehicle operating below the rail system of the container handling vehicle, and FIG. 3C showing an example of a container delivery vehicle having a storage container stored therein. [Figure 4] 4A, 4B and 4C are perspective views of a rescue vehicle seen from different sides, the rescue vehicle being equipped with a pivotable actuator for moving the rotary drive. [Figure 5] 5A and 5B show an example of a rescue vehicle equipped with a linear actuator for moving the rotary drive. [Figure 6-1] 6A-6E show the two rescue vehicles of FIGS. 4A-4C step by step as they rescue a container handling vehicle with a cantilever structure. [Figure 6-2] 6A-6E show the two rescue vehicles of FIGS. 4A-4C step by step as they rescue a container handling vehicle with a cantilever structure. [Figure 7-1] 7A-7E show the two rescue vehicles of FIGS. 4A-4C step by step as they rescue a container handling vehicle in the form of a delivery vehicle configured to receive a storage container from above. [Figure 7-2] 7A-7E show the two rescue vehicles of FIGS. 4A-4C step by step as they rescue a container handling vehicle in the form of a delivery vehicle configured to receive a storage container from above. [Figure 8] 8A and 8B show an exemplary wheel base unit. [Figure 9]9A-9C show an example of the rescue vehicle of FIGS. 4A-C illustrating step-by-step movement of the rotary drive from a stowed vertical position to a deployed position using a pivotable actuator for operating the track shift motor of the container handling vehicle. [Figure 10] 10A and 10B show one example of the rescue vehicle of FIGS. 9A-9C for operating the lift frame motor of a container handling vehicle. DETAILED DESCRIPTION OF THE INVENTION

[0076] In the following, embodiments of the present invention will be discussed in more detail with reference to the accompanying drawings, however, it should be understood that the drawings are not intended to limit the invention to the subject matter depicted in the drawings.

[0077] The skeleton structure 100 of the automated storage and retrieval system 1 is constructed in accordance with the prior art skeleton structure 100 described above in connection with FIGS. 1-3 (i.e., several upright members 102 and several horizontal members 103 supported by the upright members 102), and the skeleton structure 100 further comprises a first upper rail system 108 in the X and Y directions.

[0078] The skeleton structure 100 further comprises storage compartments in the form of storage columns 105 provided between the members 102, 103, with storage containers 106 being stackable in stacks 107 within the storage columns 105.

[0079] Skeleton structure 100 can be of any size. In particular, it should be understood that skeletal structure can be significantly wider and / or longer and / or deeper than that disclosed in Figure 1. For example, skeletal structure 100 can have a horizontal extent of greater than 700 x 700 columns and a storage depth of greater than 12 containers.

[0080] A different automated storage and retrieval system 1 is shown in part in Figure 3B. The upright member 102 forms part of a framework 100 in which a transport rail system 108 with a number of container handling vehicles 201, 301 operates.

[0081] Below this transport rail system 108, near floor level, another skeletal structure 300 is shown, extending partially below some of the storage columns 105 of the skeletal structure 100. As with the other skeletal structures 100, a plurality of vehicles 340 may operate on the rail system 308, which comprises a first set 310 of parallel rails oriented in a first direction X and a second set 311 of parallel rails oriented in a second direction Y perpendicular to the first direction X, thereby forming a lower horizontal plane P L Within the lower delivery rail system 308, a grid pattern is formed comprising a plurality of rectangles and uniform grid locations or grid cells 322. Each grid cell 322 of this lower delivery rail system 308 comprises a grid opening 315 bounded by a pair of adjacent rails 310 a, 310 b of the first set of rails 310 and a pair of adjacent rails 311 a, 311 b of the second set of rails 311.

[0082] The portion of the lower rail system 308 that extends below the storage column 105 is in plane P L , is aligned so that its grid cells 322 coincide with the grid cells 122 of the upper rail system 108 in the horizontal plane P.

[0083] Thus, with this particular alignment of the two rail systems 108, 308, a storage container 106 being lowered downward into a storage column 105 by a container handling vehicle 250 travels on the rail system 308 and removes the storage container 106 from the storage column 105. In other words, the delivery vehicle 340 is configured to receive the storage container 106 from above, preferably directly from the container handling vehicle 201, 301.

[0084] FIG. 3C shows an example of such a delivery vehicle 340 having a wheel assembly 351 similar to the wheel assembly 251 described with respect to the prior art container handling vehicle 250 and a storage container support 352 for receiving and supporting the storage containers 106 delivered by the container handling vehicles 201, 301 described above.

[0085] After receiving the storage container 106, the delivery vehicle 340 may be driven to an access station adjacent the rail system 308 (not shown) for delivery of the storage container 106 for further handling and shipping.

[0086] 4A, 4B, and 4C are perspective views of a rescue vehicle 40 seen from different sides. The rescue vehicle 40 includes a wheel base 2 and a rescue module 48 mounted thereon. A lifting device 41 is shown with a vertical plate 42, from which a lip 43 extends. In the example shown, the lifting device 41 is on a short side of the rescue vehicle 40, with the lip 43 extending along the entire side and also around a corner of the rescue vehicle 40 and at least partially along the adjacent long side. Portions of the lip 43 on the long side of the rescue vehicle may be shorter and / or may extend along the entire length of the long side. In one example, there may be a continuous lip 43 around the entire rescue vehicle 40, i.e., there may be a lip 43 on all sides of the rescue vehicle 40.

[0087] The rescue vehicle 40 is disclosed with a visual inspection means 44 for performing visual inspections of the rail system 108, 308, or for controlling or checking vehicles with problems on the rail system 108, 308, and / or for monitoring or assisting rescue operations, etc. The visual inspection means 44 may comprise one or more cameras.

[0088] A rescue vehicle is disclosed with two pivotable actuators 45', 45" for moving two rotary drives 49', 49". The rotary drives designated 49' are for operating the track shift motors of the malfunctioning container handling vehicle, and the rotary drives designated 49" are for operating the lift frame / grabber motors of the malfunctioning container handling vehicle, rotating the lift frame motors to position any transported storage containers 106 up and above the top of the rail system 108, 308 so that the malfunctioning vehicle can be transported across the rail system 108, 308. In all of FIGS. 4A-4C, the rotary drives 49', 49" are in a stowed vertical position. Furthermore, as disclosed in all of FIGS. 4A-4C, the footprint of the rescue vehicle 40 is equal to or less than the grid of the underlying rail system 108, 308.

[0089] 5A and 5B show an example of a rescue vehicle 40 including a wheel base unit 2 and a vehicle rescue module 48 mounted thereon. Instead of the pivotable actuator of the rescue vehicle 40 of FIGS. 4A-4C, the rescue vehicle 40 includes a linear actuator 46 for moving the rotary drive 49'''. The linear actuator 46 is arranged to move the rotary drive 49''' between a stowed position (FIG. 5A) and a deployed position (FIG. 5B). As shown in FIG. 5A, when in the stowed position, the periphery of the rotary drive 49''' is disposed within the horizontal periphery of the wheel base unit 2 of the rescue vehicle 40, and when in the deployed position, at least a portion of the rotary drive 49''' can extend beyond the periphery of the wheel base unit 2. Other components of the rescue vehicle 40 can be similar to those described in connection with FIGS. 4A-4C.

[0090] 6A-6E show the two rescue vehicles of FIGS. 4A-4C step by step as they rescue a container handling vehicle 240 with a cantilever structure (i.e., the prior art container handling vehicle 301 as shown in FIG. 3A).

[0091] In Figure 6A, the container handling vehicle 240 is malfunctioning and the lifting frame carrying the storage container 106 is in the upper position (i.e., the lowest portion of the storage container 106 is above the underlying rail system 108, 308 so that the container handling vehicle can be transported on the rail system 108, 308). The first rescue vehicle 40 is equipped with a lifting device 41 and faces for engagement in a first direction, while the second rescue vehicle 40 is equipped with a lifting device on the opposite side of the vehicle to the first rescue vehicle 40, with the lifting device 41 facing for engagement in a second direction opposite the first direction. In Figures 6A and 6B, both rescue vehicles 40 are positioned a distance away from the malfunctioning container handling vehicle 240.

[0092] 6C, one of the rescue vehicles 40 positions itself in a neighboring cell to the malfunctioning container handling vehicle 240, which is provided with a recess 50 on one of its sides for engagement with the lifting device 41 of the rescue vehicle 40. In the disclosed example, the lifting device 41 comprises a vertical plate 43 with an edge 43 for engagement with the recess 50.

[0093] In Figure 6D, the second rescue vehicle 40 positions itself on the opposite side of the malfunctioning container handling vehicle 240, with the edge 43 of the lifting device 41 engaging the recess 50. As can be further seen in Figure 6D, the first and second rescue vehicles 40 simultaneously operate the lifting devices 41 (i.e., cooperate) to lift the malfunctioning container handling vehicle 240 away from the rail system 108, 308. The malfunctioning container handling vehicle 240 can be transported away from the rail system 108, 308 to a dedicated area, such as a service area. Figure 6E is the opposite view of Figure 6D.

[0094] 7A-7E show the two rescue vehicles of FIGS. 4A-4C step by step as they rescue a malfunctioning container handling vehicle, which is in the form of a delivery vehicle 340 (see, for example, FIG. 3C). A rescue vehicle 40 similar to that disclosed in FIGS. 6A-6E is used when rescuing the delivery vehicle 340. The delivery vehicle 340 is provided with recesses 50 around its entire periphery for engagement with the lifting device 41 of the rescue vehicle 40. The recesses 50 may be located between the wheel base unit 2 of the delivery vehicle 340 and the container support unit 3 of the delivery vehicle 340.

[0095] 7A, one of the rescue vehicles 40 positions itself within a neighboring cell relative to the malfunctioning container handling vehicle 340, on one of the opposite sides of the malfunctioning delivery vehicle 340. The other rescue vehicle 40 is located a distance from the malfunctioning delivery vehicle 340.

[0096] 7B and 7C, another of the rescue vehicles 40 positions itself on the opposite side of the malfunctioning delivery vehicle 340. 7C is the opposite view of FIG. 7B.

[0097] 7D and 7E, the first and second rescue vehicles 40 simultaneously operate the lifting devices 41 (i.e., in cooperation) to lift the malfunctioning container handling vehicle away from the rail system 108, 308. The malfunctioning container handling vehicle 340 can be transported away from the rail system 108, 308 to a dedicated area, such as a service area. FIG. 7E is a perspective side view of FIG. 7D.

[0098] An exemplary combined wheel base unit for the rescue vehicle 40 and delivery vehicle 340 is shown in FIGS. 8A and 8B. The wheel base unit 2 features a wheel arrangement 32a, 32b having a first set of wheels 32a for movement in a first direction on a rail system (i.e., either the upper rail system 108 or the delivery rail system 308) and a second set of wheels 32b for movement in a second direction perpendicular to the first direction. Each set of wheels includes two pairs of wheels located on opposite sides of the wheel base unit 2. To change the direction in which the wheel base unit can travel on the rail system, one of the sets of wheels 32b is connected to a wheel displacement assembly 7. The wheel displacement assembly is capable of lifting and lowering the connected set of wheels 32b relative to the other set of wheels 32a so that only the set of wheels traveling in the desired direction contacts the rail system. The wheel displacement assembly 7 is driven by an electric motor 8. Furthermore, two electric motors 4, 4' powered by a rechargeable battery 6 are connected to the wheel sets 32a, 32b to move the wheel base unit in the desired direction.

[0099] 8A and 8B, the horizontal perimeter of the wheel base unit 2 is dimensioned to fit within the horizontal area defined by a grid cell such that two wheel base units can pass each other on any adjacent grid cell of the rail system 108, 308. In other words, the wheel base unit 2 may have a footprint, i.e., extent in the X and Y directions, that is generally equal to the horizontal area of ​​the grid cell, i.e., the extent of the grid cell in the X and Y directions, as described, for example, in WO2015 / 193278A1, the contents of which are incorporated herein by reference.

[0100] The wheel base unit 2 has a top panel / flange 9 (i.e., upper surface) configured as a connection interface for connection to a selected vehicle rescue module 48 or container support unit 3 connection interface. The top panel 9 has a central opening 20 and features a plurality of through-holes 10 (i.e., connection elements) suitable for connection of bolts 11 via corresponding through-holes 10' in the connection interface of the vehicle rescue module 48 or container support unit 3. In other embodiments, the connection elements on the top panel 9 may be, for example, threaded pins for interaction with the through-holes 10' of the connection interface of the vehicle rescue module 48 or container support unit 3, or vice versa. The presence of the central opening 20 is advantageous because it provides access to the wheel base unit's internal components, such as the rechargeable battery 6 and electronic control system 21. The access allows the rechargeable battery 6 and electronic control system 21 to be easily connected to a rescue module connected to the wheel base unit 2, and therefore neither the vehicle rescue module 48 nor the container support unit 3 is required to have its own dedicated power source and / or control system.

[0101] 9A-9C show an example of the rescue vehicle 40 of FIGS. 4A-C, illustrating the step-by-step movement of a rotary drive 49′ (from a stowed vertical position to a deployed horizontal position using a pivotable actuator 45′) for operating the track shift motor of the container handling vehicle 240. FIGS. 9A and 9B are two different perspective views of the rescue vehicle 40, in which the rotary drive 49′ for operating the track shift has been pivoted to the deployed horizontal position using the pivotable actuator 45′. In FIG. 9C, the rotary drive 49′ is connected to the track shift unit of the malfunctioning container handling vehicle 240 and can operate the track shift motor. The other rotary drive 49″ for operating the lift frame / grabber motor of the malfunctioning vehicle 240 is in the stowed vertical position in all of FIGS. 9A-9C.

[0102] 10A and 10B show an example of the rescue vehicle 40 of FIGS. 9A-9C for operating the lifting frame motor of a container handling vehicle, and in FIG. 10A, 10B , the rotary drive 49″ is connected to an interface for hoisting the lifting frame motor of the container handling vehicle 240, whereby the lifting frame (possibly carrying a storage container 106) can be lifted up and above the rail system, allowing the container handling vehicle 240 to be transported. When the rotary drive 49″ is in the stowed position, the rescue vehicle 40 has an occupation area equal to or less than a grid cell of the rail system, and when in the deployed position, the rotary drive 49″ extends into a neighboring grid cell by being swiveled from the deployed vertical position to the deployed horizontal position. This provides the possibility for the service vehicle 40 not to occupy more than one cell when traveling on the rail system.

[0103] In the foregoing description, various aspects of the delivery vehicle and automated storage and retrieval system according to the present invention have been described with reference to illustrative embodiments. For purposes of explanation, specific numbers, systems, and configurations have been set forth to provide a thorough understanding of the system and its operation. However, this description is not intended to be construed in a limiting sense. Various modifications and variations of the illustrative embodiments, and other embodiments of the system, that are obvious to those skilled in the art to which the disclosed subject matter pertains, are deemed to be within the scope of the present invention.

[0104] (List of reference numbers) [Table 1-1] [Table 1-2] [Table 1-3]

Claims

1. A rescue system for retrieving a malfunctioning vehicle (240, 340) from a rail system (108, 308) of an automated storage and retrieval system (1), wherein the rail system (108, 308) comprises a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction, and wherein a plurality of remotely operated vehicles (201, 301, 240, 340) are configured to move in the X and Y directions on the tracks of the rail system (108, 308); a first rescue vehicle (40) configured to travel on the track of the rail system (108, 308), said first rescue vehicle (40) being provided with a first lifting device (41) on one side of said first rescue vehicle (40), said first lifting device (41) facing for engagement in a first X-direction; a second rescue vehicle (40) configured to travel on the track of the rail system (108, 308), the second rescue vehicle (40) being provided with a second lifting device (41) on one side of the second rescue vehicle (40), the one side of the second rescue vehicle (40) facing the one side of the first rescue vehicle (40) provided with the first lifting device (41), the second lifting device (41) facing for engagement in a second X-direction opposite to the first X-direction; The first and second rescue vehicles (40) are configured to cooperate with each other, and when one of the plurality of remotely operated vehicles (201, 301, 240, 340) malfunctions, the first and second rescue vehicles (40) can position themselves on the rail system (108, 308) on each side of the malfunctioning vehicle (240, 340), the each side being opposite to the lifting devices (41) of the first and second rescue vehicles (40), whereby the first and second rescue vehicles (40) can engage their respective lifting devices (41) with the each side of the malfunctioning vehicle (240, 340) and simultaneously operate their respective lifting devices (41) to lift the malfunctioning vehicle (240, 340) away from the rail system (108, 308), and lift the malfunctioning vehicle (240, 340) away from the rail system (108, 308). A rescue system positioned to transport a vehicle (240, 340).

2. A rescue system as described in claim 1, wherein the first and second lifting devices (41) each comprise a vertical plate (42), the vertical plate (42) having an edge (43) extending from the vertical plate (42), the edge (43) extending into the neighboring cell.

3. A rescue system for retrieving a malfunctioning vehicle (240, 340) from a rail system (108, 308) of an automated storage and retrieval system (1), said rail system (108, 308) comprising a plurality of rails with tracks extending in an X direction and a plurality of rails with tracks extending in a Y direction perpendicular to said X direction, said rails defining a plurality of grid cells, and a plurality of remotely operated vehicles (201, 301, 240, 340) configured to move in said X and Y directions on said tracks of said rail system (108, 308); a first rescue vehicle (40) comprising a first wheel base unit (2) configured to run on the tracks of the rail system (108, 308), the first wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a first vehicle rescue module (48) mounted thereon; a second rescue vehicle (40) comprising a second wheel base unit (2) configured to run on the tracks of the rail system (108, 308), the second wheel base unit (2) providing a movable platform corresponding in area to a single grid cell for a second vehicle rescue module (48) mounted thereon; the first and second rescue vehicles (40) are configured to cooperate to perform rescue operations on malfunctioning vehicles (240, 340) of the plurality of remotely operated vehicles (201, 301, 240, 340), and the first and second vehicle rescue modules (48) each include a lifting device (41); the first vehicle rescue modules (48) are oriented with their respective lifting devices (41) facing a first direction of the rail system (108, 308), and the second vehicle rescue modules (48) are oriented with their respective lifting devices (41) facing a second direction of the rail system (108, 308) opposite to the first direction, both the first direction and the second direction being in one of the X direction or the Y direction; a rescue system in which the first and second vehicle rescue modules (48) are arranged to engage with respective sides of the malfunctioning vehicle (240, 340), the respective sides being on opposite sides of the malfunctioning vehicle (240, 340) that face the respective lifting devices (41) of the first and second vehicle rescue modules (48), whereby the first and second vehicle rescue modules (48) are positioned to engage their respective lifting devices (41) with the respective sides of the malfunctioning vehicle (240, 340) and use their respective lifting devices (41) to lift the malfunctioning vehicle (240, 340) away from the rail system (108, 308).

4. A rescue system as described in claim 3, wherein the first and second vehicle rescue modules (48) each comprise a lifting plate (42) having an edge (43) extending at a height above the upper surface of the respective wheel base unit (2), the edge (43) extending into the neighboring cell.

5. A rescue system as described in claim 3 or 4, wherein the plurality of remotely operated vehicles (201, 301, 240, 340) are equipped with wheel base units (2) providing movable platforms, each of which corresponds in area to a single grid cell of the rail system (108, 308) for a storage container lifting module mounted thereon.

6. A rescue system described in any of claims 3 to 5, wherein the first wheel base unit (2) of the first vehicle rescue module (48) and the second wheel base unit (2) of the second vehicle rescue module (48) are identical.

7. A rescue system as described in any one of claims 1 to 6, wherein the first and second rescue vehicles (40) are equipped with communication means for synchronous operation.

8. A rescue system as described in Claim 7, wherein the communication means enables communication between the first and second rescue vehicles (40).

9. A rescue system as described in any of claims 1 to 6, further comprising a control system, the control system comprising a cooperative communication means configured to communicate with and operate synchronously with the communication means of the first and second rescue vehicles (40).

10. A rescue system as described in claim 8, wherein the first or second rescue vehicle (40) is a master rescue vehicle, and the other of the first or second rescue vehicle is a slave rescue vehicle that is operated at least in part by commands from the master rescue vehicle.

11. A rescue system as described in any one of claims 1 to 10, wherein the rail system (108, 308) is at the top level of the storage and retrieval system (108).

12. A rescue system as described in any of claims 1-10, wherein the rail system (108, 308) is a delivery rail system (308).

13. A rescue system as described in any one of claims 1 to 12, wherein the first and second rescue vehicles (40) are provided with two sets of wheels (32a, 32b) for movement in the X and Y directions along the rail system (108, 308).

14. A rescue system as described in any one of claims 1 to 13, wherein each lifting device (41) has an actuator configured to raise and lower the malfunctioning vehicle (240, 340) relative to the rail system (108, 308).

15. A rescue system as described in any one of claims 1 to 14, wherein at least the first or second rescue vehicle (40) is provided with at least one rotary drive (49', 49'', 49''') for hoisting the lifting frame and / or track shift motor of the malfunctioning container handling vehicle (240, 340).

16. A rescue system as described in claim 15, wherein the at least one rotary drive unit (49', 49'') is swivellable, and the axis of the rotary drive unit (49', 49'') is configured to be swiveled between stowed vertical positions during movement of the first or second rescue vehicle (40) on the rail system (108, 308), and to be swiveled to a deployed horizontal position for hoisting the lifting frame and / or track shift motor of a malfunctioning container handling vehicle (240, 340).

17. A rescue system as described in Claim 16, wherein the rotary drive unit (49', 49'') for the lifting frame is arranged within the upper part of the first or second rescue vehicle (40), and the rotary drive unit (49', 49'') is supported by an actuator when in the deployed horizontal position.

18. A rescue system as described in claim 16 when dependent on any one of claims 3 to 6, wherein the rotary drive unit (49', 49'') is connected to a linear actuator (49''') for movement between the stowed vertical position and the deployed horizontal position, and when in the stowed vertical position, the periphery of the rotary drive unit (49''') is arranged within the horizontal periphery of the wheel base unit (2), and when in the deployed horizontal position, at least a part of the rotary drive unit (49''') extends beyond the periphery of the wheel base unit (2).

19. An automated storage and retrieval system (1), comprising: a framework (100) comprising upright members (102), horizontal members (103) and a storage volume, said storage volume comprising storage columns (105) arranged in a row between said upright members (102) and said horizontal members (103); - a plurality of storage containers (106) stacked on top of each other to form a stack (107); a rail system (108, 308) including a plurality of rails with tracks extending in a −X direction and a plurality of rails with tracks extending in a Y direction perpendicular to the X direction; a plurality of remotely operated vehicles configured to move in the X and Y directions on the tracks of the rail system (108, 308); a rescue system according to any one of claims 1 to 18; The system (1) comprises:

20. A method for recovering a malfunctioning container handling vehicle from a rail system (108, 308) with orthogonal tracks in X and Y directions, comprising: a plurality of remotely operated vehicles (230, 240, 340, 250) disposed on said rail system (108, 308), each of said remotely operated vehicles (230, 240, 340, 250) having a body and a side portion, at least two opposite side surfaces on each of said remotely operated vehicles (230, 240, 340, 250). The portion comprises a recess (50), and the method comprises: - determining an anomaly in the operating state of one of said plurality of remotely operated vehicles (240, 340) on said rail system (108, 308); - registering said one of said plurality of remotely operated vehicles (240, 340) with said abnormal operating condition as a malfunctioning vehicle (240, 340); - registering the position of said malfunctioning vehicle (240, 340) relative to said rail system (108, 308); - operating a first rescue vehicle (40) configured to travel on the track of the rail system (108, 308), said first rescue vehicle (40) being provided with a first lifting device (41) on one side of said first rescue vehicle (40), said first lifting device (41) facing for engagement in a first X-direction; - operating a second rescue vehicle (40) configured to travel on the track of the rail system (108, 308), said second rescue vehicle (40) being provided with a second lifting device (41) on one side of said second rescue vehicle (40), said second lifting device (41) facing for engagement in a second X-direction opposite to said first X-direction; - coordinating the first and second rescue vehicles (40) by positioning each of the first and second rescue vehicles (40) on a respective side of the malfunctioning vehicle (240, 340), said respective sides being opposite the sides of the malfunctioning vehicle (240, 340) to the respective lifting devices (41) of the first and second rescue vehicles (40), whereby the first and second rescue vehicles (40) are positioned to engage their respective lifting devices (41) with said respective sides of the malfunctioning vehicle (240, 340); - engaging the respective lifting devices (41) of the first and second rescue vehicles (40) with the respective sides of the malfunctioning vehicle (240, 340); - lifting said malfunctioning vehicle (240, 340) away from said rail system (108, 308) by simultaneously operating said respective lifting devices (41) and transporting said malfunctioning vehicle (240, 340); A method comprising:

21. A method for retrieving a malfunctioning container handling vehicle (240, 340) from a rail system (108, 308) with orthogonal tracks in X and Y directions, comprising: a plurality of remotely operated vehicles (201, 301, 240, 340) disposed on said rail system (108, 308), each of said remotely operated vehicles (201, 301, 240, 340) comprising a body and a side portion, at least two opposite side portions on each of said remotely operated vehicles (201, 301, 240, 340) comprising a recess (50), said method comprising: - determining anomalies in the operating conditions of the container handling vehicles (240, 340) on the rail system (108, 308); - registering said container handling vehicle with said abnormal operating condition as a malfunctioning vehicle (240, 340); - registering the position of said malfunctioning vehicle (240, 340) relative to said rail system (108, 308); - operating a first rescue vehicle (40) comprising a first wheel base unit (2) configured to run on the tracks of the rail system (108, 308), the first wheel base unit (2) providing a mobile platform corresponding in area to a single grid cell for a first vehicle rescue module (48) mounted thereon; - operating a second rescue vehicle (40) comprising a second wheel base unit (2) configured to run on the tracks of the rail system (108, 308), the second wheel base unit (2) providing a mobile platform corresponding in area to a single grid cell for a second vehicle rescue module (48) mounted thereon; - cooperating the first and second rescue vehicles (40) to perform rescue operations on a malfunctioning vehicle (240, 340) of the plurality of remotely operated vehicles (201, 301, 240, 340), wherein the first and second vehicle rescue modules (48) each comprise a lifting device (41); - engaging portions of the first and second lifting devices (41) of the first and second rescue vehicles (40) extending into the neighboring cells with respective sides of the malfunctioning vehicle (240, 340), the respective sides being opposite the respective lifting devices (41) of the first and second rescue vehicles (40); the first vehicle rescue module (48) is oriented with its respective lifting device (41) facing a first direction of the rail system (108, 308), and the second vehicle rescue module (48) is oriented with its respective lifting device (41) facing a second direction of the rail system (108, 308) opposite to the first direction, both of the first direction and the second direction being in one of the X direction or the Y direction; - lifting said malfunctioning vehicle (240, 340) away from said rail system (108, 308); A method comprising:

22. A method as described in claim 20 or 21, wherein the method further comprises the step of operating a rotary drive (49', 49'', 49''') to hoist a lifting frame and / or track shift motor of the malfunctioning container handling vehicle (240, 340) prior to the step of engaging each lifting device (41) on each side of the malfunctioning vehicle (240, 340).

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