The present invention relates to a an automated storage and retrieval system comprising a framework structure. The present invention also relates to a an automated storage and retrieval system according any one of the above claims. The present invention also relates to a method for installation and/or de-installation of an access station in an automated storage and retrieval system.
The framework structure 100 comprises upright members 102 and a storage volume comprising storage columns 105 arranged in rows between the upright members 102. In these storage columns 105 storage containers 106, also known as bins, are stacked one on top of one another to form stacks 107. The members 102 may typically be made of metal, e.g. extruded aluminum profiles.
The framework structure 100 of the automated storage and retrieval system 1 comprises a rail system 108 arranged across the top of framework structure 100, on which rail system 108 a plurality of container handling vehicles 201,301,401 may be operated to raise storage containers 106 from, and lower storage containers 106 into, the storage columns 105, and also to transport the storage containers 106 above the storage columns 105. The rail system 108 comprises a first set of parallel rails 110 arranged to guide movement of the container handling vehicles 201,301,401 in a first direction X across the top of the frame structure 100, and a second set of parallel rails 111 arranged perpendicular to the first set of rails 110 to guide movement of the container handling vehicles 201,301,401 in a second direction Y which is perpendicular to the first direction X. Containers 106 stored in the columns 105 are accessed by the container handling vehicles 201,301,401 through access openings 112 in the rail system 108. The container handling vehicles 201,301,401 can move laterally above the storage columns 105, i.e. in a plane which is parallel to the horizontal X-Y plane.
The upright members 102 of the framework structure 100 may be used to guide the storage containers during raising of the containers out from and lowering of the containers into the columns 105. The stacks 107 of containers 106 are typically self-supporting.
Each prior art container handling vehicle 201,301,401 comprises a vehicle body 201a,301a,401a and first and second sets of wheels 201b, 201c, 301b, 301c,401b,401c which enable the lateral movement of the container handling vehicles 201,301,401 in the X direction and in the Y direction, respectively. In
Each prior art container handling vehicle 201,301,401 also comprises a lifting device for vertical transportation of storage containers 106, e.g. raising a storage container 106 from, and lowering a storage container 106 into, a storage column 105. The lifting device comprises one or more gripping/engaging devices which are adapted to engage a storage container 106, and which gripping/engaging devices can be lowered from the vehicle 201,301,401 so that the position of the gripping/engaging devices with respect to the vehicle 201,301,401 can be adjusted in a third direction Z which is orthogonal to the first direction X and the second direction Y. Parts of the gripping device of the container handling vehicles 301,401 are shown in
Conventionally, and also for the purpose of this application, Z=1 identifies the uppermost layer available for storage containers below the rails 110,111, i.e. the layer immediately below the rail system 108, Z=2 the second layer below the rail system 108, Z=3 the third layer etc. In the exemplary prior art disclosed in
The storage volume of the framework structure 100 has often been referred to as a grid 104, where the possible storage positions within this grid are referred to as storage cells. Each storage column may be identified by a position in an X- and Y-direction, while each storage cell may be identified by a container number in the X-, Y- and Z-direction.
Each prior art container handling vehicle 201,301,401 comprises a storage compartment or space for receiving and stowing a storage container 106 when transporting the storage container 106 across the rail system 108. The storage space may comprise a cavity arranged internally within the vehicle body 201a,401a as shown in
The cavity container handling vehicle 201 shown in
Alternatively, the cavity container handling vehicles 401 may have a footprint which is larger than the lateral area defined by a storage column 105 as shown in
The rail system 108 typically comprises rails with grooves in which the wheels of the vehicles run. Alternatively, the rails may comprise upwardly protruding elements, where the wheels of the vehicles comprise flanges to prevent derailing. These grooves and upwardly protruding elements are collectively known as tracks. Each rail may comprise one track, or each rail 110,111 may comprise two parallel tracks. In other rail systems 108, each rail in one direction (e.g. an X direction) may comprise one track and each rail in the other, perpendicular direction (e.g. a Y direction) may comprise two tracks. Each rail 110,111 may also comprise two track members that are fastened together, each track member providing one of a pair of tracks provided by each rail.
WO2018/146304A1, the contents of which are incorporated herein by reference, illustrates a typical configuration of rail system 108 comprising rails and parallel tracks in both X and Y directions.
In the framework structure 100, a 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
In
The access station may typically be a picking or a stocking station where product items are removed from or positioned into the storage containers 106. In a picking or a stocking station, the storage containers 106 are normally not removed from the automated storage and retrieval system 1, but are returned into the framework structure 100 again once accessed. A port can also be used for transferring storage containers to another storage facility (e.g. to another framework structure or to another automated storage and retrieval system), to a transport vehicle (e.g. a train or a lorry), or to a production facility.
A conveyor system comprising conveyors is normally employed to transport the storage containers between the port columns 119,120 and the access station.
If the port columns 119,120 and the access station are located at different levels, the conveyor system may comprise a lift device with a vertical component for transporting the storage containers 106 vertically between the port column 119,120 and the access station.
The conveyor system may be arranged to transfer storage containers 106 between different framework structures, e.g. as is described in WO2014/075937A1, the contents of which are incorporated herein by reference.
When a storage container 106 stored in one of the columns 105 disclosed in
When a storage container 106 is to be stored in one of the columns 105, one of the container handling vehicles 201,301,401 is instructed to pick up the storage container 106 from the pick-up port column 120 and transport it to a location above the storage column 105 where it is to be stored. After any storage containers 106 positioned at or above the target position within the stack 107 have been removed, the container handling vehicle 201,301,401 positions the storage container 106 at the desired position. The removed storage containers 106 may then be lowered back into the storage column 105, or relocated to other storage columns 105.
For monitoring and controlling the automated storage and retrieval system 1, e.g. monitoring and controlling the location of respective storage containers 106 within the framework structure 100, the content of each storage container 106, and the movement of the container handling vehicles 201,301,401 so that a desired storage container 106 can be delivered to the desired location at the desired time without the container handling vehicles 201,301,401 colliding with each other, the automated storage and retrieval system 1 comprises a control system 500 which typically is computerized and which typically comprises a database for keeping track of the storage containers 106.
An access station for picking storage containers is disclosed in WO2020/074717. This access station comprises an entry conveyor and an exit conveyor. Given the presence of both an entry and exit conveyor, the access station therefore has a footprint exceeding the width/length of a storage column. As such, where two access stations are situated adjacent to one another, there will therefore be some distance between the picking zone of two adjacent access stations.
The access station disclosed in WO2020/074717 also has many moving or rotating components, particularly associated with the conveyors, that are prone to wear and regularly require maintenance.
An objective of the present invention is therefore to provide a more compact access station where picking zones of adjacent access stations can be arranged closer to each other.
A further objective of the present invention is to reduce the complexity of the access station, particularly regarding the number of moving components.
The present invention relates to a an automated storage and retrieval system comprising a framework structure, wherein the framework structure comprises:
wherein the automated storage and retrieval system comprises:
characterized in that:
In one aspect, the framework structure comprises outer panels secured between at least some of the peripherical upright members and wherein the access station is insertable into and retrievable out from the access station compartment via a side opening in one of the panels.
The present invention also relates to a an automated storage and retrieval system according any one of the above claims, wherein the access station compartment has a width being larger than a distance between two upright members, wherein the width is measured in a direction coinciding with or in a direction parallel with the distance.
In one aspect, the width and the distance are measured perpendicular to the direction of horizontal movement of the storage container in the access station.
In one aspect, the framework structure comprises a receptacle frame defining the access station compartment, wherein the receptacle frame is forming a support for a plurality of upright members.
In one aspect, the receptacle frame comprises upright frame members and cross-members connected between the upright frame members.
In one aspect, the width of the access station compartment is measured as the distance between two upright frame members.
In one aspect, the access station compartment is located in the periphery of the framework structure.
In one aspect, the access station is situated in the access station compartment during operation of the access station.
In one aspect, the access station is situated outside of the access station compartment during maintenance, repair and/or service of the access station.
In one aspect, the access station is forming one single modular unit. Alternatively, the access station is forming a few modular units. Hence, the operation of inserting the access station into the access station compartment and the operation of retrieving the access station from the access station compartment can be relatively efficient.
In one aspect, the access station comprises an access module comprising a frame, wherein the access station comprises wheels secured to the frame for rolling the access station into and out from the access station compartment via the side opening.
In one aspect, the access station comprises two, three or four wheels. In one aspect, the wheels are in the form of rollers. In one aspect, the wheels are castor wheels, e.g., each provided at a lower end of a vertically extending mount. The castor wheels may be a rigid type of castor wheel or a swivel type of castor wheel.
In one aspect, the framework structure comprises a support plate situated within the access station compartment and secured between a plurality of the upright members, wherein the wheels of the access station are supported on the support plate when inserted into the access station compartment.
In one aspect, the support plate may ensure, or at least contribute to, a correct alignment of the access station within the access station compartment.
In one aspect, the access station comprises:
wherein the conveyor module is insertable into and retrievable out from the access station compartment.
According to the above, the access station comprises three modules.
In one aspect, the main module is surrounding the side opening. Hence, the only way to access a storage container received within the main module is through the top cover. In one aspect, the main module is secured to the panel and/or to upright members of the framework structure. In one aspect, the main module is a wall hanging module. Alternatively, the main module is a floor standing module comprising for example legs or another type of base structure. In one aspect, the main module is a furniture-like structure, such as a cabinet.
In one aspect, the access station comprises a top opening alignable below one of the columns when the access station is inserted into the access station compartment, wherein at least one of the container handling vehicles is configured to supply a storage container to the access station through the column and/or to retrieve a storage container from the access station through the column when the access station is inserted into the access station compartment and aligned with the column.
In one aspect, the framework structure comprises horizontal members connected between the upright members at a height that permits the access station to be inserted into the access station compartment underneath the horizontal members.
In one aspect, the access station comprises a jack for elevating an upper portion of the access station upwardly within the access station compartment.
In one aspect, access station compartment comprises a roof portion. The roof portion may be formed by downwardly facing surfaces of the horizontal members. In one aspect, the top opening is located between horizontal members. The jack may be configured to elevate the access station up towards the roof portion within the access station compartment once inserted therein.
In one aspect, the frame is defining a drawer compartment provided within the frame;
wherein the access station comprises:
wherein the drawer is protruding from the access station compartment in the presentation position and wherein the drawer is retracted within the access station compartment in the retracted position.
In one aspect, the access station comprises a front opening through which the drawer moves between the presentation position and retracted position, wherein the front opening is alignable with a side opening of the access station compartment in the framework structure.
In one aspect, the drawer front is aligned with the front opening when the drawer is in the retracted position.
In one aspect, the frame comprises vertical side guiding plates for guiding the drawer as it extends out to the presentation position and as it retracts to the retracted position.
In one aspect, the vertical side guiding plates are a snug fit to the drawer front to reduce gaps therebetween and thereby a possible risk of crushing fingers/hands during movement of the drawer. In one aspect, a resilient material is positioned between the vertical side guiding plates and the drawer front to reduce gaps and risks further.
In one aspect, the frame comprises a horizontal lower guiding plate for guiding the drawer. This lower guiding plate may be a snug fit to the drawer front to reduce gaps therebetween and thereby a possible risk of crushing fingers/hands during movement of the drawer.
In one aspect, the drawer base comprises a support on which a storage container can be supported in a front position or in a rear position.
In one aspect, the access station comprises a second actuator for moving a storage container from the front position to the rear position;
wherein the storage container is presented to a picker when the storage container is in the front position and when the drawer is in the presentation position.
In one aspect, the access station comprises a control system.
The control system may be configured to control the first and second actuators based on input from a user interface system and a safety mechanism.
The control system may be configured to control the cover module and the conveyor module based on input from the user interface system and a safety mechanism.
In one aspect, the user interface system and/or the safety mechanism may be provided outside of the access station compartment when the access station is inserted into the access station compartment.
In one aspect, the control system is secured to the frame. In one aspect, the control system is provided in communication with a control system for the automated storage and retrieval system.
In one aspect, the vertical side guiding plates and the horizontal lower guiding plate may extend/protrude from the access station compartment when the access station is inserted into the access station compartment.
In one aspect, a storage container retrievable from the drawer via the top opening and/or the drawer can receive a storage container via the top opening.
In one aspect, the front position is located below the top opening when the drawer is in the retracted position and wherein the rear position is located below the top opening when the drawer is in the presentation position.
In one aspect, the access station is configured to:
In one aspect, the second actuator is configured to move the storage container from the front position to the rear position when the drawer is in the retracted position or when the drawer is moving from the presentation position to the retracted position.
In one aspect, the frame comprises a guard defining an upper border of the front opening.
In one aspect, the safety mechanism is configured to prevent an object from being squeezed between the drawer front and the guard during movement of the drawer from the presentation position to the retracted position.
In one aspect, the safety mechanism comprises:
In one aspect, the flap element is movably connected to a flap holding structure secured to the frame.
In one aspect, the flap holding structure is a supporting structure for a user interface system.
In one aspect, the support comprises rollers for supporting the storage container in the rear position.
In one aspect, the support comprises a weight sensor for measuring a weight of the storage container when supporting the storage container in the front position.
In one aspect, the second actuator comprises an electric motor and an actuating element movable by means of the electric motor.
In one aspect, the drawer front and the guard are vertically aligned when the drawer is in the retracted position.
In one aspect, the drawer comprises a container stop for preventing movement of the storage container from the front position towards the rear position when the drawer is in the presentation position.
In one aspect, other parts of the framework structure comprises horizontal members. In one aspect, such horizontal members are integrated with the rail system.
According to the above, it is a achieved system in which a first access station may be replaced with a second access station in a simple and efficient way, in case the first access station needs repair, maintenance or service.
According to the above, it is achieved a system where the number of ports may be increased in an easy and cost-efficient way. In an initial phase, the system may comprise an initial number of access stations and an initial number of container handling vehicles. In a later phase, the capacity of the system may be increased by providing the side opening for the access station compartment in the panel and then inserting the access station. Before installation of the access station 10, the columns of the access station compartment may be used for stacking storage containers. Container handling vehicles may or may not be added as well.
In one aspect, the access station compartment is located below at least one column of the framework structure. The column may be a port column, i.e. which are not intended for a stack of storage containers, or a storage column which are intended for a stack of storage containers.
As used herein, the term “access station” is a station enabling access to a storage container. The station is typically enabling access for an operator to the storage container, but may also enabling access for a robot, for example a picking robot, to the storage container. The access station may typically be a picking or a stocking station where product items are removed from or positioned into the storage container. In a picking or a stocking station, the storage containers are normally not removed from the automated storage and retrieval system, but are returned into the framework structure again once accessed.
The present invention also relates to a method for installation and/or de-installation of an access station in an automated storage and retrieval system, wherein the method comprises the following steps:
In one aspect, the step of inserting the access station comprises:
In one aspect, the step of retrieving the access station comprises:
Following drawings are appended to facilitate the understanding of the invention. The drawings show embodiments of the invention, which will now be described by way of example only, where:
In the following, embodiments of the invention will be discussed in more detail with reference to the appended drawings. It should be understood, however, that the drawings are not intended to limit the invention to the subject-matter depicted in the drawings.
The framework structure 100 of the automated storage and retrieval system 1 is constructed in accordance with the prior art framework structure 100 described above in connection with
The framework structure 100 further comprises storage compartments in the form of storage columns 105 provided between the members 102, 103, where storage containers 106 are stackable in stacks 107 within the storage columns 105.
The framework structure 100 can be of any size. In particular it is understood that the framework structure can be considerably wider and/or longer and/or deeper than disclosed in
It is now referred to
The access station 10 comprises an access module 20 comprising a frame 21 defining a drawer compartment 25 provided within the frame 21. The drawer compartment 25 is also indicated as a dashed box 25 in
The access station 10 further comprises a drawer 40 movably connected to the frame 21.
In
It is further shown in
It is also shown in
The access station 10 further comprises a first actuator 62 for moving the drawer 40 relative to the frame 21 between two positions referred to as a presentation position PP and a retracted position RP. The presentation position PP is shown in
The access station 10 further comprises a second actuator 64. The second actuator 64 and other details of the access station 10 will be described in detail below.
The access station 10 may also comprise a control system CS for controlling the first and second actuators 62, 64. The control system CS may be a part of the control system 500 for the automated storage and retrieval system, or the control system CS may be a separate control system in communication with the control system 500 for the automated storage and retrieval system.
Drawer 40
The drawer 40 comprises a drawer base 41 movably connected to the frame 21 and a drawer front 42. The drawer base 41 comprises a support 50 on which two storage containers 106 can be supported, as shown in
It is now referred to
The second actuator 64 is mounted to the drawer base 41 and comprises an electric motor 64a and an actuating element 64b in the form of a vertical plate movable by means of the electric motor 64a along a guide or rail 62c. The second actuator 64 may then push a storage container 106 from the first position P1 to the second position P2, as will be described further in detail below. It should be noted that due to the sliding surface of the weight sensor 56 and due to the wheels 54, the power required to move the storage container 106 is relatively low.
The electric motor 64a is here a linear motor. However, the electric motor 64a could also be a rotating motor for moving the actuating element 64b by means of a chain drive, a belt drive etc.
The drawer 40 is provided within the drawer compartment 25 in the retracted position RP and at least partially protruding from the framework structure 100 in the presentation position PP. In the presentation position PP, the storage container in the first position P1 is accessible for the picker P, while the storage container in the second position P2 is still provided withing the drawer compartment 25.
The drawer further comprises wheels 44, 45 secured below the drawer base 41, on the rear side of the drawer front 42. The wheels 44,45 are running on plate 24c2 and on the horizontal lower guiding plate 22c during the movement of the drawer between its retraced position and its presentation position. In the present embodiment, the horizontal lower guiding plate 22c is a continuation of the plate 24c2, i.e. they are made as one plate member.
Access Module 20
In
It is now referred to
The rear side RS is shown in
In
As shown, the frame 21 has a footprint area A20 within the framework structure 100 corresponding to an area of two storage columns including at least parts of the area of surrounding upright members 102. In
In
It should be noted that above, the footprint area A20 is defined as the rear side footprint area A20, i.e. the footprint area A20 within the framework structure 100. This footprint area A20 is an indication of reduction of the storage capacity of the automated retrieval and storage system 1 due to the access station 10.
In an alternative embodiment, the two side plates 24a are also connected to each other by means of a horizontal cross plate 24d (shown in
In
The vertical side guiding plates 22b and the lower guiding plate 22c are a snug fit to the drawer front 42 to reduce gaps and a possible risk of crushing fingers/hands during movement of the drawer 40.
The side guiding plates 22b and the lower guiding plate 22c are fixed in relation to the access station and the automated storage and retrieval system 1 and is therefore visible for the picker P and other persons working near the framework of the system 1. Hence, when the drawer 40 is moved from the retracted position RP to the presentation position PP, this movement will not create a surprising obstacle for nearby personnel, as the drawer front 42 is moved in the space between the vertical guiding plates 22b and the lower, horizontal guiding plate 22c.
It is now referred to
The first actuator 62 is mounted to the lower cross plate 24c2 and comprises a linear motor 62a, an actuator element 62b and a guide 62c for guiding the linear movement of the actuator element 62b. The actuator element 62b is connected to the underside of the drawer 40, as shown in
Safety Mechanism
It is now referred to
The safety mechanism 66 comprises a flap element 66a provided adjacent to, and on the front side FS of, the guard 22d, and a sensor 66b for sensing movement of the flap element 66a relative to the guard 22d. The flap element 66a is movably connected to a flap holding structure 66c secured to the frame 21 by means of one or more hinges 66d.
In one aspect, the flap holding structure 66c is secured to the guard 22d. In one aspect, the flap element 66a is movably connected to the flap holding structure 66c by means of one or more hinges 66d.
The flap holding structure 66c is a supporting structure for a user interface system for example comprising a touch screen or other type of user interface.
The sensor 66b may be an integrated circuit type of sensor, such as an accelerometer etc., connected to the first actuator 62. The sensor 66b may be a push-button type of security switch, which are activated by the movement of the flap element 66a. Sensors 66b of this type are known to a person skilled in the art.
When activated, the sensor 66b controls the first actuator 62 to stop the movement of the drawer or controls the first actuator 62 to move the drawer 40 out from the compartment 25 again. The sensor 66b may also control the second actuator 64 to stop the movement of the actuating element 64b or to move in the reverse direction. The sensor 66b may be connected directly to the first and/or second actuator 62,64. Alternatively, the sensor 66b is connected to the first and/or second actuator 62,64 via the control system CS.
It is now referred to
In
However, the plate 24d described above may allow storage containers to be stacked also in the third column 105C, the third column 105C having a reduced stacking height corresponding to the height H20 of the frame 21.
Operation of the Access Station
The different steps for operation of the access station 10 are shown in
Initially, in
In a first step a) (
In a second step b) (
In a third step c) (
After step c) and d), the drawer 40 is in the retracted position RP and the first storage container 106A is in the rear position P2. The actuator element 64b will now return to its original position close to the front 42 of the drawer 40.
During or after step c) and d), the container handling vehicle 201, 301 may be controlled to pick a second storage container 106B from one of the storage columns 105 in the framework structure 100 and to lower it down to the buffer position P3.
In a next step e) (
In a next step f) (
During or after step f), the first storage container 106A is retrieved from the rear position P2 by means of a container handling vehicle 201, 301.
In a next step g) (
The actuator element 64b will now return to its original position close to the front 42 of the drawer 40.
During or after step f) and h), the container handling vehicle 201, 301 may be controlled to pick a third storage container 106C from one of the storage columns 105 in the framework structure 100 and to lower it down to the buffer position P3.
The above steps are then repeated.
It is now referred to
First, it should be noted that the first actuator 62 and the second actuator 64 works substantially in the same way as in the above embodiment.
The first actuator 62 comprises an electric rotating motor 62a for driving a belt 64d, to which the actuator element 62b is connected. The actuator element 62b is further connected to the drawer 40 and the drawer 40 is moved by means of the electric rotating motor 62a via the belt 62d and the actuator element 62b. The movement of the actuator element 62b is guided along rails 62c engaged with the actuator element 62b.
It is now referred to
In
In
It is now assumed that the drawer 40 (and hence the actuator element 62b) are in the retracted position. The belt 62d, including the first magnet element 71b is now moved by means of the motor 62a. Due to the magnetic coupling between the first and second magnet elements 71b, 71c, the first magnet element 71b will pull the actuating element 62b towards the presentation position PP as the belt moves. If the drawer 40 is held back, for example by an object obstructing the movement of the drawer from the retracted position RP to the presentation position PP, the first and the second magnet elements 71b, 71c will be pulled away from each other, causing the drawer 40, the actuating element 62b and hence the second magnet element 71c to stop while allowing the first magnet element 71b and the belt 62d to continue its linear movement. During movement of the first magnet element 71b and the belt 62d back to their initial position, the first magnet element 71b will reconnect to the second magnet element 71c again.
The second actuator 64 comprises a rotating electric motor 62a for driving a belt 64d to which the actuator element 64b is connected. The actuator element 64b is moved by means of the electric rotating motor 64a via the belt 64d. The movement of the actuator element 64b is guided along rails 64c engaged with the actuator element 64b.
It is now referred to
The container stop 80 comprises a profile 81 secured to the plate 24c2, the profile having a lowered profile section 81a, an elevated profile section 81b and an intermediate, inclining, profile section 81c between the profile sections 81a, 81b.
The container stop 80 further comprises a container stop element 82 secured to the wheel connector member 83.
The rear wheels 44 are running on top of the profile 81. In
In
It should be noted that in the first embodiment of the access station 10 described above, the access module 20 is integrated with the framework structure, due to the frame 21 comprising lintels 102a for supporting the upright members 102 from below. Hence, service, maintenance and repair operations of the access station may be cumbersome.
In the second embodiment shown in
Here, the framework structure 100 comprises an access station compartment 90 having a side opening 91 which can be covered by a panel (PA) when not in use. The access station 10 is then insertable into and retrievable from the access station compartment 90 by rolling the access station 10 into and out from the side opening 91. The access station 10 may comprise a jack for elevating an upper portion of the access station 10 upwardly within the access station compartment 90, for example up towards a roof portion 93 within the access station compartment 90, the roof portion 93 being defined by the downwardly facing surfaces of the horizontal members 103. It is also shown in
In
A similar embodiment of the receptacle frame 95 is shown in
In
It is now referred to
The second module is a cover module 14 provided above the main module 12 for controlling access to the storage container 106 when received by the main module 12. The second module 14 is shown from below in
The third module is a conveyor module 16. The conveyor module 16 comprises a conveyor belt, rollers and motors for powering the conveyor belt. The conveyor module 16 can easily be mounted to the receptacle frame 95 by means of drawer slides 95c (
The control system CS is connected to the conveyor module 16 and also to the central control system 500 of the automated storage and retrieval system 1.
In
In
The steps of installing the access station 10 is performed in the opposite sequence.
In the above description, the vertical movement of the storage containers through the top opening 26 is performed by container handling vehicles 201, 301. Alternatively, a type of container lift may be used to move the storage containers vertically to and from the access station 10.
In the above embodiment, the access station 10 occupies one storage column 105A for vertical transportation of storage containers, and two other storage columns 105B, 105C has reduced storage capacity due to the footprint areas A20, A40.
By reducing the first and second distances DA, DB, it is possible to achieve full storage capacity in the third storage column 105C. This may require a different and/or more space-efficient safety mechanism. One such possible safety mechanism is a movement detection type of sensor, for example a photoelectric sensor for sensing whether or not a finger/hand is present in the area close to the access opening 46 and or the front opening 22 during movement of the drawer 40 towards the retracted position RP.
It is now referred to
In the preceding description, various aspects of the access station and the automated storage and retrieval system according to the invention have been described with reference to the illustrative embodiment. For purposes of explanation, specific numbers, systems and configurations were set forth in order to provide a thorough understanding of the system and its workings. However, this description is not intended to be construed in a limiting sense. Various modifications and variations of the illustrative embodiment, as well as other embodiments of the system, which are apparent to persons skilled in the art to which the disclosed subject matter pertains, are deemed to lie within the scope of the present invention.
Number | Date | Country | Kind |
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20201433 | Dec 2020 | NO | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/087074 | 12/21/2021 | WO |