Mobile Storage System
The mobile storage system addresses the challenge of deploying automated warehouse systems by providing flexible, easily set-up mobile containers with precise alignment and customizable configurations for temporary locations.
Patent Information
- Application Number
- JP2024076307
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-10-12
- Filing Date
- 2024-05-09
- Publication Date
- 2025-10-07
- Estimated Expiration
- 2039-09-23
AI Technical Summary
Existing automated warehouse systems are not easily deployable to temporary or non-permanent locations, lacking flexibility in setup, container interchangeability, and precise alignment of grid structures.
A mobile storage system comprising multiple mobile containers, each with an automated storage system, allowing for easy setup and customization, featuring removable side panels for connection and alignment, and height-adjustable feet for precise alignment of rail systems.
Enables flexible and efficient deployment of automated warehouse systems to various locations with easy container addition/removal and precise alignment, enhancing operational efficiency.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an automated warehouse system for storing and retrieving storage bins. The present invention relates to a mobile storage system including at least one mobile container having a mobile storage and retrieval system. [Background technology]
[0002] A mobile container, such as an intermodal container or shipping container, is a container for storage of goods that can be transported, for example, by train, ship, plane, and truck, and that can be used across these different means of transportation.
[0003] Intermodal containers are used worldwide to store and transport goods efficiently and safely around the world. They are often called by different names, such as cargo containers, ISO containers, and shipping containers.
[0004] Intermodal containers exist in many different standardized sizes and are often made from steel or aluminum. Intermodal container dimensions can vary, ranging from 2.4 m to 17.1 m in length, 2.2 m to 2.5 m in width, and 2.2 m to 2.9 m in height.
[0005] Table 1 shows examples of dimensions and net loads for some of the most common standardized types of intermodal containers.
[0006] [Table 1]
[0007] Intermodal containers allow cargo and goods to be consolidated into larger unitized loads that are easily handled, moved, and stacked. Intermodal containers can be packed tightly together in a ship or yard. Intermodal containers share several construction features that allow them to withstand the stresses of intermodal shipping, facilitate their handling, and enable stacking. Additionally, they can be identifiable through their individual unique ISO 6346 reporting marks.
[0008] Automated warehouse systems, including grid storage systems, are known in the art. FIG. 1 discloses a typical prior art automated warehouse system 1 with a framework structure 100, and FIGS. 2 and 3 disclose two different prior art bin handling vehicles 201, 301 suitable for operating on such a system 1.
[0009] The framework structure 100 includes a plurality of upright / vertical members 102 and a plurality of horizontal members 103, which may be supported by the vertical members 102 and / or disposed at the base of the framework structure 100 (not shown). When the horizontal members 103 are disposed at the base of the framework structure 100, they may be arranged in a grid pattern to support the vertical members 102. The members 102, 103 may typically be made from metal, for example, from extruded aluminum profiles.
[0010] The framework structure 100 defines a storage grid structure 104, which includes storage columns 105 arranged in rows. Within these storage columns 105, storage bins 106 (also known as storage containers) are stacked one on top of the other to form stacks 107. The storage grid structure 104 prevents horizontal movement of the stacks 107 of storage bins 106 and guides vertical movement of the bins 106, but typically does not otherwise support the storage bins 106 when stacked.
[0011] The automated storage and retrieval system 1 includes a rail system 108 arranged in a grid pattern across the top of the storage grid structure 104, and a plurality of bin-handling vehicles 201, 301 operated on the rail system 108 to raise, lower, and transport storage bins 106 from and into the storage columns 105. The rail system 108 includes a first set of parallel rails 110 and a second set of parallel rails 111, the first set of parallel rails 110 arranged to guide movement of the bin-handling vehicles 201, 301 in a first direction X across the top of the frame structure 100, and the second set of parallel rails 111 arranged perpendicular to the first set of rails 110 to guide movement of the bin-handling vehicles 201, 301 in a second direction Y that is perpendicular to the first direction X. In this way, the rail system 108 defines grid columns 112 above which the bin handling vehicles 201, 301 can move laterally above the storage columns 105, i.e., in a plane parallel to the horizontal XY plane.
[0012] Each prior art bin-handling vehicle 201, 301 includes a vehicle body 201a, 301a and first and second sets of wheels 201b, 301b, 201c, 301c, which enable lateral movement of the bin-handling vehicle 201, 301 in the X and Y directions, respectively. 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. The wheels 201b, 301b, 201c, 301c can be lifted 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 sets of rails 110, 111 at any one time.
[0013] Each prior art bin-handling vehicle 201, 301 also includes a lifting device (not shown) for vertical transportation of the storage bins 106, e.g., for raising and lowering the storage bins 106 from and into the storage columns 105. The lifting device includes one or more gripping / engagement devices 303 adapted to engage with the storage bins 106. The gripping / engagement devices 303 can be lowered from the vehicle 201, 301 such that the position of the gripping / engagement devices 303 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. Further details regarding lifting devices are described, for example, in WO 2017 / 211634 A1, the contents of which are incorporated herein by reference.
[0014] Conventionally, and for purposes of this application, Z=1 identifies the top layer of the storage grid structure 104, i.e., the layer immediately below the rail system 108; Z=2 identifies the second layer below the rail system 108; Z=3 identifies the third layer below the rail system 108; and so on. In the exemplary prior art storage grid structure disclosed in FIG. 1 , Z=8 identifies the bottom layer, the lowest layer, of the storage grid structure 104. Similarly, X=1...n and Y=1...n identify the position of each grid column 112 in the horizontal plane. Accordingly, by way of example, and using the Cartesian coordinate system X, Y, Z shown in FIG. 1 , the storage bin identified as 106′ in FIG. 1 can be said to occupy grid location or cell X=10, Y=2, Z=3. The bin handling vehicles 201, 301 may be said to travel in layer Z=0, and each grid column 112 may be identified by its X and Y coordinates.
[0015] Each prior art bin handling vehicle 201, 301 includes a storage compartment or space for receiving and storing the storage bins 106 as they are transported across the rail system 108. The storage space may include a cavity centrally located within the vehicle body portion 201 a, as shown in FIG. 2 and as described, for example, in WO 2015 / 193278 A1 and WO 2018 / 033426 A1, the contents of which are incorporated herein by reference.
[0016] 3 shows an alternative configuration of a bin handling vehicle 301 having a cantilevered structure. Such a vehicle is described in detail, for example, in NO 317366, the contents of which are also incorporated herein by reference.
[0017] The central cavity bin handling vehicle 201 shown in Figure 2 may have a footprint that covers an area having dimensions in the X and Y directions that are generally equal to the lateral extension of the grid columns 112, i.e., generally equal to the extension of the grid columns 112 in the X and Y directions, as described, for example, in WO2015 / 193278A1, the contents of which are incorporated herein by reference. As used herein, the term "lateral" may mean "horizontal."
[0018] Alternatively, the central cavity bin handling vehicle 201 may be any of the bin handling systems described in, for example, WO2014 As disclosed in US Pat. No. 6,999,999, it is possible for the grid columns 112 to have a footprint that is larger than the lateral area defined by the grid columns 112.
[0019] The rail system 108 can be a single-rail system, as shown in Figure 4. Alternatively, the rail system 108 can be a double-rail system, as shown in Figure 5, thus allowing a bin-handling vehicle 201, having a footprint generally corresponding to the lateral area defined by the grid columns 112, to travel along a row of grid columns (even when another bin-handling vehicle 201 is positioned above a neighboring grid column of that row). Both the single-rail system and the double-rail system, or a combination including single-rail and double-rail configurations within the single-rail system 108, form a grid pattern in the horizontal plane P including a plurality of rectangular and uniform grid locations or grid cells 122, where each grid cell 122 includes a grid opening 115 bounded by a pair of rails 110a, 110b of the first set of rails 110 and a pair of rails 111a, 111b of the second set of rails 111. In FIG. 5, grid cells 122 are indicated by dashed boxes.
[0020] Consequently, rails 110a and 110b form a pair of rails that define parallel rows of grid cells running in the X direction, and rails 111a and 111b form a pair of rails that define parallel rows of grid cells running in the Y direction.
[0021] As shown in FIG. 6, each grid cell 122 has a width W , typically spaced 30 cm to 150 cm apart. c , and length L, typically in the interval between 50 cm and 200 cm. c Each grid opening 115 has a width W o and has a width W o is typically the width W of a grid cell 122 c Each grid opening 115 has a length L o and has a length L o is typically the length L of the grid cell 122 c It is 2 to 10 cm smaller than the original.
[0022] In the X and Y directions, neighboring grid cells are placed in contact with each other such that there is no space between neighboring grid cells.
[0023] Within the storage grid structure 104, the majority of the grid columns 112 are storage columns 105, i.e., grid columns 105 in which storage bins 106 are stored in stacks 107. However, a storage grid structure 104 typically has at least one grid column 112 that is not used to store storage bins 106, but rather that includes a location where a bin-handling vehicle 201, 301 can drop off and / or pick up a storage bin 106 so that the storage bin 106 can be transported to an access station (not shown) where the storage bin 106 can be accessed from outside the storage grid structure 104 or transferred out of or into the storage grid structure 104. In the art, such locations are typically referred to as "ports," and the grid columns 112 in which the ports are located may be referred to as "port columns" 119, 120. Transport to the access station can be in any orientation (it can be horizontal, tilted, and / or vertical). For example, storage bins 106 can be placed in random or dedicated grid columns 112 in the storage grid structure 104, then picked up by any bin handling vehicle and transported to ports 119, 120 for further transport to the access station. The term "tilted" refers to any orientation between horizontal and vertical. It is noted that this refers to the transport of the storage bins 106 in a general transport orientation.
[0024] 1 includes two port columns 119 and 120. The first port column 119 may, for example, be a dedicated drop-off port column where bin-handling vehicles 201, 301 can drop off storage bins 106 for transport to an access or transfer station, and the second port column 120 may be a dedicated pickup port column where bin-handling vehicles 201, 301 can pick up storage bins 106 that have been transported from an access or transfer station to the storage grid structure 104.
[0025] The access stations may typically be picking or stocking stations where product items are removed from or positioned into storage bins 106. At picking or stocking stations, the storage bins 106 are typically never removed from the automated storage system 1, but rather are accessed and placed back into the storage grid structure 104. Ports 119, 120 may also be used to transfer storage bins out of or into the grid 104, for example, to another storage facility (e.g., to another grid or another automated storage system), to a transport vehicle (e.g., a train or lorry), or to a production facility.
[0026] A conveyor system including conveyors may typically be used to transport storage bins between the ports 119, 120 and the access stations. If the ports 119, 120 and the access station are located at different levels, the conveyor system may include a lift device with a vertical component for transporting the storage bins 106 vertically between the ports 119, 120 and the access station.
[0027] The conveyor system may be arranged to transport the storage bins 106 between the different grids, for example as described in WO2014 / 075937A1, the contents of which are incorporated herein by reference.
[0028] 1 is to be accessed, one of the bin-handling vehicles 201, 301 is directed to retrieve the target storage bin 106 from its position in the storage grid structure 104 and transport it to the drop-off port 119. This operation involves moving the bin-handling vehicle 201, 301 to a grid location above the storage column 105 in which the target storage bin 106 is positioned, using a lifting device (not shown) on the bin-handling vehicle 201, 301 to retrieve the storage bin 106 from the storage column 105, and transporting the storage bin 106 to the drop-off port 119. If the target storage bin 106 is positioned deep within the stack 107, i.e., one or more other storage bins 106 remain positioned above the target storage bin 106, the operation also involves temporarily moving the storage bin(s) positioned above it before lifting the target storage bin 106 from the storage column 105. This step, which may be referred to in the art as "digging," may be performed by the same bin-handling vehicle 201, 301 that is subsequently used to transport the target storage bin 106 to the drop-off port 119, or may be performed by one or more other cooperating bin-handling vehicles 201, 301. Alternatively or in addition, the automated warehouse system 1 may: It is possible to have bin handling vehicles 201, 301 specifically specialized for the task of temporarily removing storage bins 106 from storage columns 105. Once the target storage bin 106 is removed from the storage column 105, the temporarily removed storage bin 106 may be repositioned into the original storage column 105. However, the removed storage bin 106 may alternatively be repositioned into another storage column 105.
[0029] When a storage bin 106 is to be stored in the storage grid structure 104, one of the bin-handling vehicles 201, 301 is directed to pick up the storage bin 106 from the pickup port 120 and transport it to the grid location above the storage column 105 where it will be stored. After any storage bins positioned at or above the target location in the storage column stack 107 are removed, the bin-handling vehicle 201, 301 positions the storage bin 106 in the desired location. The removed storage bin 106 can then be lowered back into the storage column 105 or repositioned in another storage column 105.
[0030] The automated storage system 1 includes a control system for monitoring and controlling the automated storage system 1 (e.g., for monitoring and controlling the location of each storage bin 106 within the storage grid structure 104, for monitoring the contents of each storage bin 106, and for monitoring and controlling the movement of the bin handling vehicles 201, 301) so that the desired storage bins 106 can be delivered to the desired locations at the desired times without the bin handling vehicles 201, 301 colliding with each other. The control system is typically computerized and typically includes a database for tracking the storage bins 106.
[0031] The automated warehouse system 1 may include a bin-handling vehicle, a charging station for charging the bin-handling vehicle, and a wireless communication system, and such features are known from WO 2015 / 104263 A1, which document is incorporated herein by reference.
[0032] A bin lift device for transporting bins vertically from a storage grid structure 104 that is installed below another storage grid structure 104 is known from WO2014 / 075937A1, which document is incorporated herein by reference. Summary of the Invention [Problem to be solved by the invention]
[0033] SUMMARY OF THE INVENTION It is an object of the present invention to provide a mobile storage system for installing an automated warehouse system wherever it is needed.
[0034] At least preferred embodiments of the present invention provide a mobile storage system for setting up an automated warehouse system wherever needed (e.g., at a construction site, temporary storage area, field hospital, military camp, temporary store, etc.).
[0035] At least the preferred embodiments of the present invention provide a mobile storage system that is easy to set up for operation.
[0036] At least the preferred embodiment of the present invention provides a flexible mobile storage system in which containers can be easily interchanged.
[0037] At least preferred embodiments of the present invention provide a flexible mobile storage system in which containers can be easily added to or removed from the system. do.
[0038] At least the preferred embodiment of the present invention provides precise alignment between grid structures in adjacent mobile containers. [Means for solving the problem]
[0039] The invention is set out and characterized in the independent claims, while the dependent claims describe preferred or optional features of the invention.
[0040] A mobile storage system can include multiple mobile containers, each with an automated storage system for storing storage bins (the bins can contain items). One of the mobile containers can be a so-called master container, which has storage columns and dedicated columns for receiving and delivering storage bins from and to access stations. The remaining mobile containers can be so-called supply containers, which include automated storage systems without dedicated columns for receiving and delivering storage bins from and to access stations. Within the system, the master container can be connected to at least one supply container, allowing a bin-handling vehicle to move from the master container's storage grid structure to the supply container's storage grid structure. Furthermore, the master container and / or supply container can be connected to multiple supply containers, which can again be connected to multiple supply containers, and so on. Thus, the size of the mobile storage system can be customized according to needs. Additionally, the mobile storage system can provide a flexible system in which a mobile container located at any end of a side-by-side mobile container arrangement can be replaced by another mobile container.
[0041] The framework structure of the automated storage system according to embodiments of the present invention may be constructed according to the prior art framework structure described above in connection with Figures 1-6, i.e., such framework structure may include a plurality of vertical members and a plurality of horizontal members. As with the prior art, the automated storage system may include a rail system including a first set of parallel rails in the X direction and a second set of parallel rails in the Y direction, which are disposed across the top of the storage columns defined by the framework structure / grid columns defined by the two sets of rails.
[0042] A first embodiment of the present invention relates to a mobile storage system including a first mobile container with a first automated storage system disposed therein. The first automated storage system includes a first storage grid structure having vertical members defining a plurality of columns (e.g., storage columns for storing storage bins one above the other in vertical stacks). The vertical members are interconnected at their upper ends by a first rail system arranged to guide at least one bin-handling vehicle thereover. The bin-handling vehicle is configured to raise and lower storage bins from and into the storage columns, and to transport the storage bins above the storage columns.
[0043] The first mobile container may further include a first container frame having a base panel, a top panel, and four vertically extending profiles extending from respective corners of the base panel connecting the base panel and the top panel.
[0044] The first mobile container can include two long end side panels and two short end side panels, and at least a portion of at least one side panel can be removable.
[0045] The side panels may be secured (e.g., removably secured) to the vertically extending profiles (i.e., each side panel may be connected to two vertically extending profiles), and the side panels may be secured (e.g., removably secured) to the top and bottom panels.
[0046] In embodiments where the first mobile container is a stand-alone unit (i.e., not connected to any other mobile containers), a removable part of at least one side panel can form a doorway or similar opening for human access into the first mobile container.
[0047] In embodiments where a first mobile container is to be connected to another mobile container for the purpose of connecting two or more automated storage systems together, a removable part of at least one side panel can form an access opening to allow connection between a first automated storage system in the first mobile container and a second automated storage system in the second mobile container.
[0048] In particular, when at least a portion of the side panel is removed, it can create an opening, which should be at least the size of the largest cross section of the bin-handling vehicle carrying the bins moving on the rail system (as viewed in a vertical plane perpendicular to the axis of movement of the bin-handling vehicle as it moves through the opening (the vertical plane being parallel to the plane of the side panel in which the opening is formed)).
[0049] Moreover, the openings should, of course, be positioned accordingly, i.e., so that the bin-handling vehicles can move from one mobile container rail system onto another. That is, the openings can have a vertical extension that extends upward from at least just below the horizontal plane of the rail system, at least to the height of the bin-handling vehicles that carry the bins on the rails. The openings can extend vertically downward and / or vertically upward of such openings.
[0050] Of course, the opening can be larger than the size of the largest cross section of the bin-handling vehicle that carries the bins traveling on the rail system. For example, the opening can have a height that is at least the height of the bin-handling vehicle that carries the bins traveling on the rail system, but a width that extends across substantially the entire side where two containers will be connected. The opening can also be created by removing a panel, in which case the opening will of course be substantially the size of the panel that was removed.
[0051] The first mobile container can include at least two openings: a first opening that allows human access into the first mobile container (e.g., a doorway), and a second opening that allows connection between a first automated storage system in the first mobile container and a second automated storage system in the second mobile container (and, among other things, allows a bin-handling vehicle carrying bins to move from the rails of the first automated storage system in the first mobile container onto the rails of the second automated storage system in the second mobile container). The first mobile container may include openings on one, two, three, or four of its four side panels.
[0052] When connecting two mobile containers in a side-by-side arrangement along the long-end side, at least a portion of the long-end side panel can be removed to create an opening. In another exemplary embodiment, the entire long-end side panel can be removed. This can be advantageous to allow connection of the rail systems of the two mobile containers after they are connected. The rail systems can be connected to allow a bin-handling vehicle to travel from one storage and retrieval system to the other.
[0053] When connecting two mobile containers in a side-by-side arrangement along their short end sides, at least a portion of each short end side panel (on the short end side where the two mobile containers are connected) is removable to create an opening.
[0054] In another exemplary embodiment, the entire short end side panel (at the short end side where the two mobile containers are connected) may be removed.
[0055] In yet another exemplary embodiment, both the short end side panel and the long end side panel include at least a portion that is removable to create an opening, which should be at least the size of the largest cross section of a bin-handling vehicle that carries bins moving over the rail system. Moreover, the opening should, of course, be positioned accordingly, i.e., so that the bin-handling vehicle can move from one mobile container rail system onto another mobile container rail system.
[0056] To enable access to the storage bins from outside the first storage grid structure, at least one of the columns in the first warehousing system may be specialized for drop-off and / or pickup of storage bins by a bin-handling vehicle. Additionally, at least one access station may be located adjacent to the at least one specialized column, where an operator may have access to withdraw items from the storage bins and / or to supply items into the storage bins. At the access station, the storage bins may be accessed from outside the first storage grid structure or may be transferred to or from the at least one column of the first storage grid structure specialized for drop-off and / or pickup of storage bins. The specialized columns can be an integral part of the first storage grid structure.
[0057] The first mobile container having storage bins that can be accessed by an operator may be considered to be the master container if more containers are connected to it.
[0058] The first automated warehouse system of the first mobile container may further include at least one charging station for charging the bin handling vehicles, the charging station being disposed on or above the rail system, and the number of charging stations may be adjusted according to the number of vehicles operating in the system.
[0059] Additionally, the first automated storage system may include a storage bin for storing items. The system may further include a controller for storing, receiving, and / or transmitting data regarding the location of the storage bins and the location of the storage bins. In this manner, the system may be monitored as to where each stored item and / or bin is located and how many of each item are stored in the system.
[0060] In another embodiment of the present invention, the first mobile container can have height-adjustable feet fixed to its outer lower surface, thereby allowing for height adjustment and / or leveling of the first mobile container. As will be explained in detail in the detailed description, leveling is particularly important when connecting two mobile containers together for the purpose of connecting two or more automated storage and retrieval systems together, because the rail systems that will be connected together from each mobile container should be connected together with high precision and accuracy.
[0061] The mobile storage system may further include a second mobile container configured to removably connect to the first mobile container. The second automated storage system is disposed within the second mobile container. The second automated storage system includes a second storage grid structure having vertical members defining a plurality of storage columns for storing storage bins one above the other in vertical stacks. The vertical members are interconnected at their upper ends by a second rail system, the second rail system being configured to guide at least one bin-handling vehicle thereon. The bin-handling vehicle is configured to raise and lower storage bins from and into the storage columns, and to transport the storage bins above the storage columns.
[0062] The second mobile container may further include a second container frame having a base panel, a top panel, and four vertically extending profiles extending from each corner of the base panel and connecting the base panel and the top panel.
[0063] At least one of the base panel, the top panel and the vertically extending profile of both the first and second mobile containers may have a cubic shape with holes provided therein for receiving connecting elements when connecting the two mobile containers together.
[0064] The second container frame may further include two long end side panels and two short end side panels, with at least a portion of one of the side panels being removable (forming an opening into the second container).
[0065] The side panels may be secured (e.g., removably secured) to the vertically extending profiles (i.e., each side panel may be connected to two vertically extending profiles), and the side panels may be secured (e.g., removably secured) to the top and bottom panels.
[0066] Generally, the second container may be referred to as a “supply container.” A supply container is distinguished from a master container in that it does not include dedicated columns for receiving and delivering storage bins from and to the access station, whereas such dedicated columns for receiving and delivering storage bins from and to the access station are present in the master container.
[0067] Because the supply container does not have a dedicated column for receiving and delivering storage bins from and to the access station, no human access to the supply container is required. Thus, in some embodiments, the second container can include an opening solely for connection to another mobile container. The opening can be for connection to a master container or another supply container.
[0068] Thus, for the purpose of connecting two or more automated storage systems together, at least a portion of at least one side panel can be removable (as described above) when the mobile container is connected to a first (master) mobile container (or another, second (supply) mobile container). When at least a portion of the side panel is removed, it can create an opening that should be at least the size of the largest cross section of a bin-handling vehicle carrying bins moving on the rail system (when viewed in a vertical plane perpendicular to the axis of movement of the bin-handling vehicle as it moves through the opening, said vertical plane being parallel to the plane of the panel in which the opening is formed).
[0069] Moreover, the opening should, of course, be positioned accordingly, i.e., so that the bin-handling vehicle can move from the rail system of the first mobile container onto the rail system of the second mobile container. That is, the opening can have a vertical extension that extends upward from at least just below the horizontal plane of the rail systems, at least to the height of the bin-handling vehicle that carries the bins on the rails. The opening can extend vertically downward and / or vertically upward of such opening.
[0070] Of course, the opening can be larger than the size of the largest cross section of the bin-handling vehicle that carries the bins traveling on the rail system. For example, the opening can have a height that is at least the height of the bin-handling vehicle that carries the bins traveling on the rail system, but a width that extends across substantially the entire side where two containers will be connected. The opening can also be created by removing a panel, in which case the opening will of course be substantially the size of the panel that was removed.
[0071] When connecting two mobile containers in a side-by-side arrangement along the long end side, at least a portion of the long end side panel may be removable to create an opening. In another exemplary embodiment, the entire long end side panel is removable. In other embodiments, at least a portion of the short end side panel may be removable to create an opening. In another exemplary embodiment, the entire short end side panel is removable.
[0072] It should be understood that one, two, three, or all four side panels of the second mobile container can include openings, the openings being sized and positioned to allow a bin handling vehicle to move from the rail system of the second mobile container onto the rail system of another connected container. How many of the sides include openings will depend on how many other mobile containers the second mobile container is connected to.
[0073] Additionally, the second mobile container may include a controller for storing, receiving, and / or transmitting data regarding items stored in the storage bins and data regarding the locations of the storage bins of the second mobile container. The controller of the second mobile container may be in communication with another controller, for example the master controller of the first (master) mobile container.
[0074] To facilitate high precision alignment of the grid structure in a first mobile container with the grid structure of a connected second mobile container, the first storage grid structure of the first mobile container and / or the second storage grid structure of the second mobile container may be positioned on a horizontally displaceable base plate (within the respective mobile container), the base plate being configured to allow horizontal displacement of the plate itself which leads to displacement of the storage grid structure mounted thereon.
[0075] Additionally, the second mobile container may include height-adjustable feet secured to the outer lower surface, thereby allowing for height adjustment and / or leveling of the second mobile container.
[0076] When connecting two mobile containers together, the portions of the frames of each mobile container that face the other mobile container when connected may be connected by a coupling device. In one embodiment, the portions of the first container frame and the second container frame that face each other when connected include coupling devices that allow the first container frame and the second container frame to be aligned.
[0077] In one exemplary embodiment, at least one of the base panel, the top panel, and / or one of the vertically extending profiles of the first mobile container may include at least one hole facing at least one corresponding hole located in the vertical extension of at least one of the base panel, the top panel, and / or one of the vertically extending profiles of the second mobile container, the at least one hole for inserting a connecting pin between the first and second mobile containers to align the two containers in at least one of a vertical position and a horizontal position.
[0078] In a preferred embodiment, the first mobile container includes at least two apertures, the at least two apertures being arranged in the vertical extension of the base panel and facing at least two corresponding apertures being arranged above the vertical extension of the base panel of the second mobile container.
[0079] In a more preferred embodiment, the first mobile container includes at least four apertures, the at least four apertures being arranged in the vertical extension of the base panel and facing at least four corresponding apertures being arranged above the vertical extension of the base panel of the second mobile container.
[0080] In a preferred embodiment, the holes are uniformly distributed along the vertical extension and / or one of the vertically extending profiles. Instead of connecting the mobile containers by pins positioned in the holes, ball-and-socket type interlocking devices may also be used, or other known interlocking devices that ensure a tight-fit alignment between the connected mobile containers.
[0081] The hole can have a funnel shape, and the pin can be configured to match at least the smallest diameter of the funnel-shaped hole to create a tight fit. An example of a "funnel-shaped" hole is a smoothly tapered hole, with a small diameter at the entrance to the hole. The hole tapers from a maximum cross-section at the outer edge to a minimum cross-section at the other end of the hole inside the frame (i.e., inside the base panel, top panel, or vertically extending profile). The hole can have a circular cross-section along its length. Thus, a "funnel-shaped" hole can be a conical (or frusto-conical) hole. Alternatively, a "funnel-shaped" hole can include a broadly cylindrical outer portion (closest to the entrance to the hole) and a frusto-conical inner portion (farthest from the entrance to the hole). The cross-section of the hole is then initially constant along the outer portion before tapering along the inner portion.
[0082] The contact pins may be retractable such that, in a retracted state, the contact pins occupy either the holes in the first mobile container frame or the holes in the second mobile container frame.
[0083] An intermediate element may be used to connect a first rail system of a first mobile container to a second rail system of a second mobile container, allowing the storage bin vehicle to move between the first rail system and the second rail system.
[0084] In a further embodiment of the mobile storage system, a mobile container may be placed on top of another mobile container. In an exemplary embodiment, a second mobile container (supply container) may be placed on top of a first mobile container (master container). In this configuration, the base panel of the second mobile container will have an opening corresponding to the opening in the top panel of the first mobile container. The opening is created to allow storage bins to be moved between the first and second mobile containers.
[0085] It should be understood that the mobile storage system may include multiple mobile containers that are stacked vertically.
[0086] Two vertically stacked mobile containers may be engaged by an interlocking device (such as that shown in U.S. Pat. No. 5,346,084 A), but any type of interlocking device may be used for the purpose of maintaining the containers vertically aligned.
[0087] In another embodiment, the mobile container system includes a plurality of second mobile containers (supply containers) aligned adjacent to one another, for example, in a side-by-side arrangement.
[0088] In a further embodiment, one second mobile container (supply container) can be placed on top of another second mobile container (supply container), and the two second mobile containers can have corresponding openings that allow the storage bin to move between the two second mobile containers.
[0089] Additionally, the mobile container system can include a plurality of mobile containers arranged in a first row of mobile containers arranged side by side, where a second row of mobile containers arranged side by side is arranged above the first row, and the system can include a plurality of such vertically stacked rows of mobile containers.
[0090] In a further embodiment, the mobile container system may include at least one equipment container for storing equipment (e.g., air conditioning systems, generators, fire suppression systems, etc.) The equipment container may be connected to a first or second mobile container, i.e., to a master container or a supply container.
[0091] As described above, the two mobile containers can be connected and aligned to provide precise alignment of the two rail systems of the two automated storage systems located within the two mobile containers. If provided, the height-adjustable feet can align the mobile containers at the same horizontal level, thereby aligning the automated storage systems in the vertical Z direction. If provided, the base plate can adjust the alignment of the two storage systems in the horizontal Y direction and / or the horizontal X direction, and the intermediate element can connect the rails of the two storage systems in the X direction.
[0092] Additionally, the interlocking device preferably provides a tight fit alignment between the connected mobile containers.
[0093] The present invention also provides a method for providing a mobile storage system, the method comprising: - providing a first mobile container; - placing a first automated storage system inside a first mobile container; - transporting a first mobile container with a first automated storage system therein to a location for use; The present invention relates to a method, comprising:
[0094] The method is: - providing a second mobile container; - placing a second automated storage system inside a second mobile container; - transporting a second mobile container with a second automated storage system therein to a location for use; - connecting the first mobile container and the second mobile container together.
[0095] In one embodiment, the first mobile container includes a first container frame having a base panel, a top panel, four vertically extending profiles extending from respective corners of the base panel and connecting the base panel and the top panel, two long end side panels and two short end side panels, at least a portion of one of the side panels being removable; the second mobile container includes a second container frame having a base panel, a top panel, four vertically extending profiles extending from respective corners of the base panel and connecting the base panel and the top panel, two long end side panels and two short end side panels, at least a portion of one of the side panels being removable; and the method includes: a) removing at least a portion of one of the side panels of the first container frame, thereby creating an opening sized to at least a cross section of a bin-carrying bin-handling vehicle that travels on the rail system; b) removing at least a portion of one of the side panels of the second container frame, thereby creating an opening sized to at least the cross section of a bin-carrying bin-handling vehicle traveling on the rail system; c) positioning the opening of the first container frame corresponding to the opening of the second container frame; d) connecting the first rail system and the second rail system by placing an intermediate element therebetween; Includes:
[0096] Furthermore, step c) may further include connecting the first container frame with the second container frame by a coupling device that allows the first container frame and the second container frame to be aligned.
[0097] The method may further include adjusting the height and / or horizontal level of the first mobile container or the second mobile container relative to the height of the other mobile container using the height-adjustable feet.
[0098] In one embodiment of the mobile container system, the mobile container has the size and shape of a 20', 40', and / or 45' intermodal container.
[0099] The following drawings are included to facilitate an understanding of the invention and illustrate embodiments of the invention, which will be described by way of example only. [Brief explanation of the drawings]
[0100] [Figure 1] FIG. 1 is a perspective view of a prior art automated warehouse system. [Figure 2] 1 is a perspective view of a prior art bin-handling vehicle having a centrally located cavity for containing a storage bin therein; FIG. [Figure 3] 1 is a perspective view of a prior art bin-handling vehicle having a cantilever beam for containing storage bins thereunder. FIG. [Figure 4] FIG. 1 is a top view of a prior art single rail grid. [Figure 5] FIG. 1 is a top view of a prior art double rail grid. [Figure 6] FIG. 2 is a top view of a rail system of the automated warehouse system according to FIG. [Figure 7] 1 is a perspective view of a first mobile container including an automated warehouse system having an access station. FIG. [Figure 8] FIG. 10 is a perspective view of a second mobile container. [Figure 9] FIG. 1 is a front view of a mobile storage system showing an open first mobile container with a second mobile container in a side-by-side arrangement. [Figure 10]FIG. 10 is an open-top view of the mobile storage system of FIG. [Figure 11(a)] A view of the open tops of two second mobile containers. [Figure 11(b)] FIG. [Figure 11(c)] A view of the open tops of two second mobile containers. [Figure 11(d)] FIG. [Figure 11(e)] FIG. [Figure 12] FIG. 1 is a perspective view of a mobile storage system. [Figure 13] FIG. 1 is a side view of a connection between two mobile containers. [Figure 14] Figure 14(a) is a side view of a second mobile container including a base plate, and Figure 14(b) is a detailed view of the adjustment device. [Figure 15] Figure 15(a) is a side view of two connected second mobile containers standing on height-adjustable feet, and Figure 15(b) is a detailed view of the height-adjustable feet. [Figure 16] Figure 16(a) is a perspective view of the mobile storage system, and Figure 16(b) is a detailed view of the pin. [Figure 17] FIG. 10 is a perspective view of two second mobile containers placed one on top of the other. [Figure 18] Figure 18(a) is an enlarged view of a portion of Figure 17. Figure 18(b) is an enlarged view of a portion of Figure 17. Figure 18(c) is a detailed view of the storage bin handling arrangement and bin conveyor. [Figure 19]Figure 19(a) is a detailed view of the storage bin handling arrangement and bin conveyor in different operating conditions; Figure 19(b) is a detailed view of the storage bin handling arrangement and bin conveyor in different operating conditions; Figure 19(c) is a detailed view of the storage bin handling arrangement and bin conveyor in different operating conditions; Figure 19(d) is a detailed view of the storage bin handling arrangement and bin conveyor in different operating conditions; and Figure 19(e) is a detailed view of the storage bin handling arrangement and bin conveyor in different operating conditions. [Figure 20] FIG. 1 is a perspective view of a mobile storage system including an equipment container. DETAILED DESCRIPTION OF THE INVENTION
[0101] In the following, embodiments of the invention will be discussed in more detail with reference to the accompanying drawings, in which: Figure 1 is a schematic diagram of a semiconductor device according to the present invention; The framework of the automated storage system according to the present invention may be constructed in accordance with the prior art framework described above in relation to Figures 1 to 6, i.e., it may include a plurality of upright / vertical members and preferably a plurality of horizontal members, and further the framework may include a rail system of parallel rails in the X and Y directions arranged across the top of the storage columns / grid columns.
[0102] The prior art grid shown in Figure 1 has a height of eight cells. However, it is understood that the grid could, in principle, be of any height that fits inside a mobile container. Similarly, the prior art grid shown in Figure 1 has 11 cells in the X direction and 13 cells in the Y direction. However, it is understood that the grid could, in principle, be of any size that fits inside a mobile container. Furthermore, the mobile container could be of any suitable size.
[0103] The mobile storage system and the mobile container having the automated warehouse system therein will now be discussed in more detail.
[0104] The mobile container with the automated storage system can be transported to any desired location by airplane, truck, train, etc. During transportation, the container frame includes a base panel, a top panel, four vertically extending profiles, and four side panels, the four side panels being attached at their vertical edges to the vertically extending profiles, with the first side panel preferably including a door for accessing the automated storage system inside the mobile container. When the mobile container is installed at its desired location, it can be ready for operation. However, if the mobile container is to be interconnected with one or more mobile containers to allow bin-handling vehicles to move between the interconnected mobile containers, at least a portion of one of the mobile container's side walls must be removed.
[0105] FIG. 7 illustrates an exemplary embodiment of a mobile storage system for a first mobile container 600 with a first automated warehouse system 500 .
[0106] The first mobile container 600 has a base panel / floor 601 and a top panel / roof 602. The top panel 602 is positioned directly above the base panel 601, which are separated by four vertically extending profiles 606 (e.g., upright poles) that extend from corners of the base panel 601 to corresponding corners of the top panel. Four side panels 603, 604 are joined at their vertical edges by adjacent vertically extending profiles 606. 7, a first short-end side panel 604 is attached at its vertical edges to two adjacent vertically extending profiles 606. Between two other vertically extending profiles 606 is a door 605, which acts as the second short-end side panel 604 when closed. In FIG. 7, the first long-end side panel has been physically removed, while the second long-end side panel is not visible for illustrative purposes.
[0107] The first automated storage system 500 is disposed inside the container frame 600′ of the first mobile container 600 on a base panel 601. The first automated storage system 500 has a grid structure 504 having vertical members 502 defining a plurality of storage columns 505. The vertical members 502 are interconnected at their upper ends by a rail system 508 that is arranged in a grid pattern across the top of the first storage grid structure 504. A plurality of bin-handling vehicles 201, 301 operate on this rail system 508 to raise storage bins (not shown) from the storage columns 505, lower storage bins into the storage columns 505, and transport storage bins above the storage columns 505. The rail system 508 includes a first set of parallel rails and a second set of parallel rails arranged to guide movement of the bin-handling vehicles 201, 301 in a first direction X across the rail system 508, and a second set of parallel rails arranged perpendicular to the first set of rails to guide movement of the bin-handling vehicles 201, 301 in a second direction Y that is perpendicular to the first direction X. The rail system 508 thus defines grid columns / storage columns 505 above which the bin-handling vehicles 201, 301 can move laterally above the storage columns 505, i.e., in a plane that is parallel to the horizontal XY plane.
[0108] Each bin-handling vehicle 201, 301 includes a vehicle body / chassis and first and second sets of wheels that enable lateral movement of the bin-handling vehicle 201, 301 in the X and Y directions, respectively. Referring to Figures 2 and 3, two wheels in each set are fully visible. The first set of wheels 201b, 301b are positioned to engage two adjacent rails of the first set of rails, and the second set of wheels 201c, 301c are positioned to engage two adjacent rails of the second set of rails. The wheels 201b, 301b, 201c, 301c of each set can be lifted and lowered such that either the first set of wheels 201b, 301b and / or the second set of wheels 201c, 301c can be engaged with the rails of their respective sets at any one time.
[0109] To allow access to the storage bins from outside the storage grid structure 504, four columns 512 are shown, which are dedicated for drop-off and / or pick-up of the storage bins by the bin handling vehicles 201, 301. In association with two of the four columns 512, two adjacent access stations 509 are shown at which an operator may have access to withdraw items from the storage bins and / or to supply items into the storage bins. Such a first mobile container 600 including a first storage grid structure 504 from which the storage bins may be accessed by an operator may be referred to as a master container. Access 605 allows an operator access to the inside of master container 600.
[0110] The master container may include one or more charging stations 550 for charging the bin-handling vehicles. The charging stations are preferably located on or above the rail system 508. In Figure 7 the charging stations 550 are located around the rail system 508, allowing the bin-handling vehicles 201, 301 to access the charging stations 550. Such charging stations are known from WO2015 / 104263A2.
[0111] The master container may include a controller / control unit (not shown) for storing, receiving, and / or transferring data regarding the items stored in the storage bins and for storing, receiving, and / or transferring data regarding the location of each storage bin. The controller may also communicate with the bin-handling vehicles 201, 301, for example via a wireless link, so that the bin-handling vehicles 201, 301 can be recharged at a charging station 550 when needed (typically overnight).
[0112] The master container may further include a master controller / control system for storing, receiving, and / or forwarding data from other controllers in the system. The master controller may further store, receive, and / or forward data regarding items being removed or added by an operator at an access station.
[0113] The mobile storage system may consist of only one master container as described above, where the container frame includes a base panel, a top panel, and four vertically extending profiles that form the edges of four side walls, one of which includes a door for an operator to access an access station of the automated storage system inside the master container.
[0114] The first container frame 600' of the first mobile container 600 shown in Figure 7 can be a prior art intermodal container, as described. It can be a 20' container, a 40' container, or a 45' container, as described. If the first mobile container 600 is to be interconnected with another mobile container, at least a portion of one of the side walls of the first mobile container 600 must be removed in order for the bin handling vehicle to move between the interconnected mobile containers.
[0115] FIG. 8 illustrates a mobile storage system with a second mobile container 700 with a second automated warehouse system 500'.
[0116] The second mobile container 700 has a base panel / floor 701 and a top panel / roof 702. The top panel 702 is positioned directly above the base panel 701, which are separated by four vertically extending profiles 706 that extend from corners of the base panel 701 to corresponding corners of the top panel 702. Four side panels may be attached at their vertical edges between adjacent vertically extending profiles 706. In FIG. 7, two adjacent vertically extending profiles 706 are shown as short A vertically extending profile 706 forms the edge of the long-end side panel 704, and two other vertically extending profiles 706 form the edges of the door 705, which, when closed, acts as the short-end side panel 704. In Figure 7, the long-end side panel has been physically removed to allow for the installation of a second mobile container with two other mobile containers, one on each side. The mobile containers can be the first mobile container or the second mobile container (see Figures 9-12).
[0117] During transportation of the second mobile container 700, two long-end side panels (not shown) will be attached to a second container frame 700' that surrounds the automated storage system 500' located inside the second mobile container. When the second mobile container 700 arrives at the appropriate location, the second mobile container 700 will be connected to at least one other mobile container that includes the automated storage system. Before or during connection, at least one of the long-end side walls will be at least partially removed to allow bin-handling vehicles 201, 301 to move between the two mobile containers that each include an automated storage system. The connected mobile container will then have a corresponding opening in its long-end side wall.
[0118] 7 shows a second automated storage system 500′ disposed inside a second container frame 700′ of a second mobile container 700. The second automated storage system 500′ includes a rail system 508′ arranged in a grid pattern across the top of a second storage grid structure 504′. The second storage grid structure 504′ includes a plurality of vertical members 502′ defining a plurality of storage columns 505′, the vertical members 502′ being interconnected at their upper ends by the rail system 508′. A plurality of bin-handling vehicles (not shown) may operate on the rail system 508′ to raise and lower storage bins 106 from and into the storage columns 505′, and to transport storage bins 106 above the storage columns 505′. The rail system 508' includes a first set of parallel rails and a second set of parallel rails, the first set of parallel rails arranged to guide movement of the bin-handling vehicle in a first direction X across the top of the second storage grid structure 504', and the second set of parallel rails arranged perpendicular to the first set of rails to guide movement of the bin-handling vehicle in a second direction Y that is perpendicular to the first direction X. The rail system 508' thus defines grid columns / storage columns 505' above which the bin-handling vehicle can move horizontally, i.e., in a plane that is parallel to the horizontal XY plane.
[0119] Each bin-handling vehicle includes a vehicle body and first and second sets of wheels that enable lateral movement of the bin-handling vehicle in the X and Y directions, respectively. Referring to Figures 2 and 3, two wheels in each set are fully visible. The first set of wheels 201b, 301b are positioned to engage two adjacent rails of the first set of rails, and the second set of wheels 201c, 301c are positioned to engage two adjacent rails of the second set of rails. The wheels 201b, 301b; 201c, 301c of each set can be lifted 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 rails of their respective sets at any one time.
[0120] The second mobile container 700 may be referred to as a supply container because it can supply storage bins to the master container and deliver the storage bins to its access ports, which will be described in more detail in Figures 9 to 12.
[0121] The second mobile container 700 may include one or more charging stations for charging the bin handling vehicles 201, 301. The charging stations are preferably located on or above the rail system 508′.
[0122] The second mobile container 700 may include a controller for storing, receiving, and / or transmitting data regarding items stored in storage bins within the second mobile container 700 and for storing, receiving, and / or transmitting data regarding the location of each storage bin. The controller may also communicate with the bin handling vehicles 201, 301, for example via a wireless link.
[0123] The controller may also communicate (e.g., via a wireless link) with the master controller of the first mobile container 600 to transfer data regarding the items stored in the storage bins in the second mobile container 700 and the location of each storage bin.
[0124] The second container frame 700' of the second mobile container 700 shown in Figure 8 can be a prior art intermodal container, as described above. It can be a 20' container, a 40' container, or a 45' container, as described. If the second mobile container 700 is to be interconnected with another mobile container, at least a portion of one of the side walls of the second mobile container 700 must be removed in order for the bin handling vehicle to move between the interconnected mobile containers.
[0125] A 20' container as described in the prior art can store a maximum of 279 bins, where each bin has a width of 449mm, a length of 649mm and a height of 220mm.
[0126] A 20' container as described in the prior art can store a maximum of 186 bins, where each bin has a width of 449mm, a length of 649mm and a height of 330mm.
[0127] A 40' container as described in the prior art can store twice the number of storage bins that a 20' container can store.
[0128] 9 illustrates a mobile storage system having one first mobile container 600 and four second mobile containers 700 arranged in a side-by-side configuration. This figure shows that when the mobile containers 600, 700 are removably connected, an opening exists in the connecting long-end side panel 603, 703 of the two connected mobile containers 600, 700, or the connecting long-end side panel has been removed. In this embodiment, at least a portion of one of the long-end side panels 603, 703 is removed before or during connection of the container frames 600′, 700, and is shown as removed in FIG. 9. After or during disconnection of the mobile containers, the removed panel of the side panel The parts are reassembled to close the opening.
[0129] Additionally, one of the short end side panels 604, 704 of the mobile containers is shown to have a door 605, 705, allowing access to the interior space of the respective container frame 600', 700. The long end side panel 603, 703 at the end of the system, which does not include another mobile container 600, 700 connected to it, generally does not include an opening.
[0130] 9 illustrates a mobile storage system having one master container / first mobile container 600 connected to one supply container / second mobile container 700 which is further connected to another supply container which is connected to yet another supply container, etc. Thus, the mobile storage system can be customized depending on the storage required.
[0131] Figure 10 is an open-top view of the mobile storage system shown in Figure 9. As can be seen, openings in the connected long end side panels allow the first and second automated storage systems 500, 500' to be interconnected, allowing bin handling vehicles 201, 301 to move between the rail system 508 of the first grid structure 504 and the rail system 508' of the second grid structure 504'.
[0132] If a gap exists between the first rail system 508 and the second rail system 508', an intermediate element 450 may be connected to the first and / or second rail system 508, 508', allowing the bin handling vehicle 201, 301 to move thereon between the first rail system 508 and the second rail system 508'.
[0133] For purposes of illustration, in FIG. 10, intermediate element 450 is shown as hanging over the gap, and when connected, intermediate element 450 will cover the gap.
[0134] 11 illustrates an example of how an intermediate element 450 can connect a first rail 508'a of one rail system 508' to a second rail 508'b of another rail system 508' of two adjacent second mobile containers 700. It should be understood that the same is applicable when connecting two rail systems between a first mobile container and a second mobile container that are located adjacent to each other, or when connecting two rail systems between two adjacent first mobile containers.
[0135] FIG. 11(a) shows two connected second mobile containers 700, where one rail system 508′ of the second mobile containers 700 has an intermediate element 450 connected to it, but where the two rail systems 508′ are not yet connected.
[0136] FIG. 11(b) shows a detailed view of the circled area in FIG. 11(a), where the intermediate connection element 450 is connected to the first rail 508'a of the first rail system 508' via a pivotal connection arrangement 460. The pivotal connection arrangement 460 may be fastened by any suitable fastening means known to those skilled in the art (e.g., screws, bolts, pins, etc.). The first rail 508'a is connected to the intermediate connecting element 450 via a pivot bracket 461 connected thereto.
[0137] In the disconnected state (in the disconnected state, the intermediate connection element 450 is disconnected from the second rail 508'b of the second rail system 508'), the pivotal connection arrangement 460 and the intermediate connection element 450 are pivoted upwardly relative to the rail system 508', as shown in Figures 11(a) and 11(b), and in Figures 11(a) and 11(b), the two rail systems 508' of the two second mobile containers are not connected.
[0138] In another example (not shown), the pivot connection arrangement 460 can be pivoted to be placed in a downward position and adapted to be pivoted upward for connection with another rail system 508'.
[0139] 11(a) to 11(d), the intermediate connection element 450 can be considered to form part of the first rail 508'a of one rail system 508' to which it is connected. In the solution disclosed in FIGS. 11(a) to 11(d), the intermediate connection element 450 comprises first and second ends 451, 452. The second end 452 can be seen as a receiving part, which will be connected to the second rail 508'b of the other rail system 508'.
[0140] The receiving part at the second end 452 of the intermediate connecting element 450 can include a recess (i.e., a female part) that is complementary to the second rail 508'b (i.e., a male part). Additionally, the first end 451 of the intermediate connecting element 450 connectable to the first rail 508'a can be formed with a similar recess to provide some flexibility in the connection between the intermediate connecting element 450 and the first rail 508'a.
[0141] When the intermediate connection element 450 is arranged to connect a first rail 508'a of one rail system 508' and a second rail 508'b of the other rail system 508' in a primarily horizontal direction, the cooperation between the intermediate connection element 450 and the first rail 508'a can be such that a portion of the intermediate connection element 450 rests on an upper surface of the second rail 508'b, the surface preferably being substantially horizontal, such that the intermediate connection element 450 provides a substantially coplanar drive rail between the first rail 508'a and the second rail 508'b for the bin-handling vehicles 201, 301.
[0142] Figures 11(c) to 11(e) show the intermediate element 450 in Figures 11(a) and 11(b), but with the intermediate element 450 in the connected position so that the first and second rails 508'a, 508'b are connected.
[0143] FIG. 11(e) is a top view of the intermediate element 450 of FIGS. 11(c) and 11(d) in the connected position.
[0144] 11(d) and 11(e) show in more detail the recesses in the first and second ends 451, 452 of the intermediate connecting element 450 and the complementary parts of the first and second rails 508'a, 508'b. As shown, the connecting part of the second rail 508'b can extend approximately halfway into the recess in the second end 452 of the intermediate connecting element 450, allowing some relative axial movement between the second rail 508'b and the first rail 508'a when connected. It is performed as a Noh play.
[0145] As shown in FIG. 11, the intermediate connecting element 450 is pivoted between a connecting position and a non-connecting position.
[0146] The rail system of Figure 11 includes a single rail in the Y direction and double rails in the X direction, but this is only one option, since it is also possible to have either only single rails or only double rails in both the X and Y directions.
[0147] It should be noted that a very high degree of precision is required when connecting two automated storage systems together. This is primarily due to the low degree of flexibility of the bin-handling vehicles and the low tolerance for irregularities in the associated rail systems. To avoid or at least reduce the possibility of interruptions during the operation of the mobile storage system, the rails to be connected should be aligned as precisely as possible. When looking at the connection of the first and second rails 508'a, 508'b in FIG. 11, both the first and second rails 508'a, 508'b should have the same Z coordinate and the same axis in the X direction to allow the bin-handling vehicle to move from one rail system 508' to the other. The difference in positioning at the point where the first and second rails 508'a, 508'b are connected should preferably not exceed 1 / 10 mm in the Y direction.
[0148] When connected, the axial flexibility of the intermediate element 450 allows some relative movement between the first rail 508'a and the second rail 508'b in the X direction (e.g., + / - 40 mm, + / - 15 mm, or more or less).
[0149] FIG. 12 is a top view of the mobile storage system shown in FIGS. 9 and 10, showing the top panels 602, 702.
[0150] 13 illustrates how mobile containers can be connected in a side-by-side arrangement with four coupling / connection devices 400 positioned between the mobile containers to be connected. While this exemplary embodiment shows a connection between a first mobile container 600 and a second mobile container 700, the same applies if two first mobile containers 600 or two second mobile containers 700 are connected together in a side-by-side arrangement.
[0151] Due to the high degree of precision described above when connecting two automated storage and retrieval systems together as shown in FIG. 11, the connection of the two mobile containers shown in FIG. 13 should also have a high degree of precision, which means that the first mobile container 600 and the second mobile container 700 should have equal Z and Y coordinates and should be aligned parallel in the X direction.
[0152] As already mentioned above with respect to Figure 9, at least a portion of one of the long end side panels of the first and second mobile containers 600, 700 may be removably connected to the container frames 600', 700. As shown in Figure 9, the entire long end side panel has been removed, however, to enable the system to operate, only a portion of the panel needs to be removed to create an opening, allowing a bin handling vehicle to move from the rail system of one mobile container onto the rail system of another mobile container. Thus, In this mobile storage system, when the system includes two or more mobile containers arranged side by side, the opening should be at least the size of the largest cross section of the bin-handling vehicle carrying the bins moving on the rail system (when viewed in a vertical plane perpendicular to the axis of movement of the bin-handling vehicle as it moves through the opening, said vertical plane being parallel to the plane of the panel in which the opening is formed). Moreover, the opening should, of course, be positioned accordingly, i.e., so that the bin-handling vehicle can move from the rail system of one mobile container onto the rail system of another mobile container.
[0153] In the exemplary embodiment shown in FIG. 13, the long end side panels corresponding to the connecting vertical faces of the mobile container have been removed, thereby creating an opening that is larger than the vertical size of the rail system having the bin handling vehicle carrying the bins traveling thereover.
[0154] The base panels of the first mobile container 600 and the second mobile container 700 each have a cubical shape, and thus each base panel has a length and a width (which define the upper and lower surfaces of the base panel) and a depth (i.e., vertical extension) that extends between the upper and lower surfaces of the base panel.
[0155] The top panels of the first and second mobile containers 600, 700 each have a cubical shape, and thus each top panel has a length and a width (which define the upper and lower surfaces of the top panel) and a depth (i.e., vertical extent) that extends between the upper and lower surfaces of the top panel.
[0156] The vertically extending profiles of the first mobile container 600 and the second mobile container 700 each have a cubical shape, and thus each vertically extending profile has a length and a width (which define upper and lower surfaces of the vertically extending profile) and a depth (i.e., vertical extension) that extends between the upper and lower surfaces of the vertically extending profile.
[0157] Furthermore, the vertical extension of the base panel 601 of the first mobile container 600, facing the vertical extension of the base panel 701 of the second mobile container (to which the first mobile container 600 will be connected), has at least one hole 401 for inserting the coupling device 400 (having the shape of a connecting pin) in a tight-fit configuration. Similarly, a corresponding hole is provided in the vertical extension of the base panel 701 of the second mobile container.
[0158] Although the figures illustrate that the first and second mobile containers include holes for connecting the coupling devices that are located in the vertical extension of the base panels, it should be understood that alternatively or additionally, the connection can be made by locating the holes on any vertical extension of the top panels and / or vertically extending profiles of the first and second mobile containers that face each other when connected.
[0159] In other words, the holes can be distributed in any arrangement along the frames of the mobile containers that face each other during connection, allowing for a tight-fit configuration after inserting the coupling device to connect the two mobile containers.
[0160] The hole 401 has a funnel shape, and the pin 400 has at least the funnel-shaped hole 40 It is configured to match the smallest diameter of the hose, creating a tight fit.
[0161] The pin shown in FIG. 13 has a smaller cross section at its ends than at its midpoint, such that the cross section of the pin 400 expands from the ends of the pin 400 towards the midpoint, which corresponds to the funnel-shaped opening.
[0162] The cross-sectional diameter at the midpoint may be at least 1.05 times larger than the cross-sectional diameter at the end of the contact pin, preferably at least 1.07 times larger, and more preferably at least 1.09 times larger.
[0163] The cross-sectional diameter of the pin at the midpoint can be, for example, 4 cm to 10 cm, the cross-sectional diameter at the ends can be 2 cm to 7 cm, and the total length of the pin can be 10 cm to 50 cm.
[0164] In one example, the cross-sectional diameter of the pin at the midpoint is 5.5 cm, the cross-sectional diameter at the ends is 5 cm, and the total length of the pin is 25 cm.
[0165] The number of holes and the connecting pins to be inserted therein will vary depending on the size of the mobile container to be connected.
[0166] In an exemplary embodiment in which two 20' mobile containers are connected, the mobile containers include two holes distributed along the connecting surfaces of the base panels of the two mobile containers, and two pins are inserted into the holes during connection.
[0167] Furthermore, the pin 400 may be telescopic, and then the pin will be in a retracted state when the mobile container is to be removed from the system and in an extended state when the mobile container is to be connected or attached to the system, such that when the pin is in its retracted state, it will not protrude outside the frame of the mobile container into which it is inserted.
[0168] 14(a) illustrates a second mobile container 700 having a second storage structure 500' disposed on a base plate 950. The base plate 950 is disposed on a base panel 701 of the second mobile container 700. Due to the high degree of precision required when connecting two automated storage systems, the base plate 950 is horizontally displaceable, thereby enabling horizontal displacement of the automated storage structure disposed thereon. The base plate 950 may be made of, for example, fiberboard or hardboard, and may be 10 to 100 mm thick, for example, 25 mm or 30 mm thick.
[0169] Figure 14(b) shows a detailed view of the circled area in Figure 14(a). Figure 14(b) illustrates how the base plate 950 can be horizontally displaced in the Y direction by using one or more adjustment devices 951. The adjustment devices 951 are rigidly secured to the base panel 700 and the base plate 950 using brackets 952, 953.
[0170] The adjustment device 951 may include a middle bracket 952 connected to the upper surface of the base panel 701 and two side brackets 953, which are connected to the base plate 950 located on either side of the middle bracket 952, as shown in FIG. 14(b). A hole in each of the brackets passes through the bar, allowing it to be displaced in the horizontal Y direction and limiting movement in the Z and X directions. With this arrangement, the bar 954 can be displaced by loosening and tightening fasteners (e.g., nuts), which in this case are attached to the threaded bar 954, one on each side of the middle bracket 952 and one on each side bracket 953. The nuts attached to the bar, middle bracket 952, and side bracket 953 can also rigidly secure the bar 954 in a desired position, thereby rigidly securing the base plate 950 to the base panel 701. When the bar 954 is displaced, the base plate 950 is also displaced, thus allowing fine adjustment in the Y direction of the automated storage structure 500′ installed thereon.
[0171] A similar adjustment device 951 may be provided on the opposite side of the base plate 950, in which case the two adjustment devices 951 may be adjusted in unison.
[0172] Alternatively, one or more adjustment devices 951 may be provided on adjacent sides to allow horizontal movement in the X direction.
[0173] Thus, the base plate 950 may be provided with one or more adjustment devices 951, allowing horizontal movement in the X and / or Y directions.
[0174] 15(a) illustrates the first and second mobile containers positioned on height-adjustable feet 960. The feet 960 are installed at the respective corners of the lower surfaces of the base panels 601, 701 of the first and second mobile containers 600, 700, allowing the first mobile container 600 and the second mobile container 700 to be leveled and providing a substantially flush lower surface between the base panels 601, 701 of the first and second mobile containers 600, 700.
[0175] FIG. 15(b) shows a detailed view of the exemplary height-adjustable foot 960 shown in FIG. 15(a). The foot 960 includes a bracket 961, which includes a lower base 967 for standing / resting on the ground. The bracket includes at least two side walls 962 extending vertically from either side of the base 967. The at least two side walls 962 are interconnected by a bridge 963, which includes a hole 964 in its center. A bar 965 is disposed inside the hole 964 of the bridge 963 and is displaceable in the vertical Z direction while limiting movement in the horizontal X and Y directions. The bar 965 includes a resting plate 966, which is disposed above the bridge 963 and allows a mobile container to be placed on it. With this arrangement, the bar 954 can be displaced by loosening and tightening fasteners (e.g., nuts), which in this case are attached to the threaded bar 954 and are attached to either side of the bridge 963 of the bracket 961. As shown, the bar can pass through a centrally located hole in the base 967 of the bracket 961. Furthermore, the bar 965 can be secured at its upper end to the mobile container, for example by welding or attachment means.
[0176] When the bar 964 is displaced, the part of the mobile container that is located on the foot 960 is displaced, thus allowing fine adjustment of the mobile container in the Z direction.
[0177] When multiple mobile containers are placed in a side-by-side arrangement and height-adjustable feet are installed under all corners of the base plate of each mobile container, The mobile containers may all be positioned so that the outer surfaces of the base panels of the two connecting mobile containers are flush with each other during and after connection.
[0178] Although the height-adjustable feet have been described as being located under all corners of the base plate of each mobile container, they may additionally be provided at other locations around the bottom periphery of the base plate of each mobile container.
[0179] Figure 16(a) illustrates a perspective view of a mobile storage system in which supply containers 700 are positioned on top of other supply containers 700. As illustrated in Figure 16(a), the mobile storage system can include a first row of multiple mobile containers arranged in a side-by-side configuration and a second row of multiple mobile containers arranged in a side-by-side configuration positioned above the first row. FIG. 16(b) is a detailed view of the pin 400 shown in FIG.
[0180] Figure 17 shows two mobile containers placed on top of each other. The upper mobile container is the second mobile container 700 (supply container), while the lower mobile container can be the first (master) mobile container or the second (supply) mobile container, but the figure shows two second mobile containers placed on top of each other.
[0181] 17 illustrates that one upper second mobile container 700U is positioned directly above another lower second mobile container 700L, such that a corner of the base panel 701U of the upper second mobile container 700U is positioned directly above a corresponding corner of the top panel 702L of the lower second mobile container 700L. To allow the storage bin 106 to be moved between the upper second mobile container 700U and the lower second mobile container 700L, the base panel 701U of the upper second mobile container 700U has a storage bin opening (910, see FIG. 18a) to allow the storage bin 106 to pass through it, and the top panel 702L of the lower second mobile container 700L can then have a corresponding storage bin opening (910, see FIG. 18a) for the same purpose. The bin handling vehicles 201, 301, which are positioned on the rail system in the upper second mobile container 700U, can use the lifting devices in the bin handling vehicles 201, 301 to lower the storage bin 106 from the upper second mobile container 700U through the storage bin opening and into the lower second mobile container 700L.
[0182] The storage bin handling arrangement 900 is disposed in connection with the rail system 508' in the lower second mobile container 700L. An exemplary operation of moving a storage bin 106 between the upper second mobile container 700U and the lower second mobile container 700L will be described in detail in Figures 18 and 19.
[0183] 18(a) and 18(b) illustrate a portion of the upper second mobile container 700U positioned above the lower second mobile container 700L as shown in FIG.
[0184] FIG. 18(a) further illustrates a storage bin 106 mounted to a lifting system on a cantilever bin-handling vehicle 301. The lifting system has a mounting structure 302 (see FIG. 19) connected to the bin-handling vehicle 301 by an adjustable wire or belt (not shown). The mounting structure 302 carries a set of gripping devices 303 adapted to engage the storage bins 106 and means for controlling each gripping device 303. The gripping device 303 of the lifting system is connected to the bin handling vehicle 301 and ensures the vertical transport of the storage bins 106, for example, raising the storage bins 106 from the storage column and lowering the storage bins 106 into the storage column.
[0185] The mounting structure 302 having the gripping device 303 can be lowered from the bin-handling vehicle 301 so that the position of the gripping device 303 relative to the bin-handling vehicle 301 can be adjusted in a third direction Z that is perpendicular to the first direction X and the second direction Y.
[0186] FIG. 18( b ) illustrates that the bin-handling vehicle 301 has lowered the mounting structure 302 and its connected storage bin 106 into the storage bin opening 910 .
[0187] 18(c) illustrates a storage bin handling structure 900 positioned above the rail system 508' of the lower second mobile container. The storage bin handling structure 900 receives and / or delivers storage bins from and / or to the upper second mobile container. The storage bin handling structure 900 includes a vertically extending barrier 901 for vertically guiding the storage bin between a storage bin opening 910 and the rail system 508' of the lower mobile container. The bin-handling arrangement 900 further includes a bin-moving structure 902 (e.g., a bin conveyor 902) for moving bins to and / or from the bin-handling arrangement to a bin-lifting position 903 on the rail system 508′ of the lower second mobile container, where the storage bins can be picked up or delivered by a bin-handling vehicle. Thus, the bin conveyor 902 transports storage bins horizontally between the bin-handling arrangement 900 and the bin-lifting position 903 in the rail system 508′ of the lower second mobile container. When a storage bin is positioned in the bin-lifting position 903, the bin-handling vehicle can pick up the storage bin and move it to a target position in the storage grid structure of the lower second mobile container 700L. The bin handling vehicle is also capable of delivering a storage bin to the bin lifting position, so that the storage bin is moved to a position inside the storage bin handling structure 900, so that the storage bin is picked up by a gripping device connected to the bin handling vehicle located in the upper second mobile container 700U, and then the bin handling vehicle containing the storage bin is moved to a target position for the storage bin in the storage grid structure of the upper second mobile container.
[0188] 18(c) includes a conveyor belt 904 having attached thereto a bin resting arrangement 905. The bin resting arrangement 905 can be any type of arrangement that allows a storage bin to be moved horizontally from its position adjacent the storage bin handling arrangement 900 to the bin lifting position 903.
[0189] 19(a) to 19(e) illustrate an exemplary process in which a storage bin handling arrangement 900 is positioned on the rail system 508′ of a lower second mobile container 700L, and the storage bin handling arrangement 900 receives a storage bin 106 from a bin handling vehicle 301 that is positioned on the rail system 508′ of an upper mobile container 700U, and FIGS. 19(a) to 19(e) illustrate an exemplary process in which a storage bin handling arrangement 900 is positioned on the rail system 508′ of a lower second mobile container 700L, and the storage bin handling arrangement 900 receives a storage bin 106 from a bin handling vehicle 301 that is positioned on the rail system 508′ of an upper mobile container 700U, and This shows how a storage bin 106 is removed from a position adjacent to the storage bin handling arrangement 900 to a bin lifting position 903 where another bin handling vehicle 301 positioned on the rail system 508' of the second lower mobile container 700L can pick up the storage bin.
[0190] In Figure 19(a), the storage bin handling arrangement 900 is empty and ready to accept a storage bin.
[0191] Figure 19(b) illustrates the storage bin 106 positioned adjacent to the bin handling arrangement 900 after the storage bin has been delivered from the bin handling vehicle which is positioned in the upper second mobile container 700U (see Figure 17). The bin handling vehicle's mounting structure 302 is still connected to the storage bin 106.
[0192] 19(c) illustrates the mounting structure 302 including the gripping device 303 after the storage bin 106 has been released from the gripping device 303. The storage bin 106 is placed on a resting structure 905 of a bin conveyor 902 positioned in the storage bin handling structure 900.
[0193] FIG. 19(d) illustrates a storage bin positioned at the bin lifting position 903 after being transported by the conveyor belt 904 of the conveyor 902 from a position adjacent the bin handling arrangement 900 to the bin lifting position 903.
[0194] FIG. 19( e ) illustrates how the bin-handling vehicle 301 can pick up a storage bin 106 from the bin-lifting position 903 .
[0195] 18 and 19 illustrate a cantilever bin handling vehicle, a single cell bin handling vehicle 201 could, of course, also be used for the same purpose.
[0196] 20 illustrates a mobile storage system having a first mobile container 600 (master container) and four second mobile containers 700 (supply containers) connected in a side-by-side arrangement, where the system includes two equipment containers 800 for storing equipment (e.g., air conditioning systems, generators, fire suppression systems, etc.) The equipment containers 800 are connected to the first mobile container 600 on the side opposite the connection with the second mobile container 700.
[0197] As can be seen from the drawings of the exemplary mobile storage system, the mobile storage system provides a flexible system in which a mobile container located at any end of a side-by-side arrangement can be replaced by another mobile container. For example, by viewing a system including one master container and four supply containers arranged in a side-by-side arrangement as shown in FIG. 12, the grid structure of master containers and supply containers can be thought of as all full storage bins containing goods. As the system operates, more and more items are removed from the bins in the system. If the system then operates such that all empty storage bins are positioned within the supply container located at the end of the side-by-side arrangement, either by replacing the storage bins containing goods or by occupying free space for the empty storage bins, then over time the supply container receiving all empty storage bins will become filled with empty storage bins. The supply container can then be removed and replaced by another supply container having storage bins with goods. [Explanation of symbols]
[0198] 1. Warehouse System (Prior Art) 100 Framework Structure 102 Framework Structure Uprights / Vertical Members 103 Horizontal members of framework structures 104 Storage Grid Structure 105 Storage Column 106 Storage Bin 106' Specific location of storage bin 107 stacks 108 Rail System / Track System 110 Parallel rails in the first direction (X) 110a: First rail of neighboring rail 110 110b: the second rail of the neighboring rail 110 111 Parallel rail in the second direction (Y) 111a Nearby Rail 111 First Rail 111b The second rail of the nearby rail 111 112 Grid Column 115 Grid Opening 119 First Port Column / First Port 120 Second Port Column / Second Port 122 grid cells / storage cells 201 Prior art single cell bin handling vehicle 201a Vehicle body of bin handling vehicle 201 201b Drive means / wheel arrangement, first direction (X) 201c Drive means / wheel arrangement, second direction (Y) 301 Prior Art Cantilever Bin Handling Vehicle 301a Vehicle body of bin handling vehicle 301 301b Drive means in the first direction (X) 301c Drive means in the second direction (Y) 302 Mounting structure 303 Grasping / Engaging Devices 400 connected devices / connecting pins 401 Hole 450 Intermediate element / Intermediate connecting element 451 first end of intermediate element 452 second end of intermediate element 460 Pivot connection structure The first warehouse system for 500 mobile containers 500' Secondary Mobile Container Secondary Warehouse System 502 Vertical members of the first storage system 502' Vertical member of second storage system 504 first storage grid structure of first warehouse system 504' a second storage grid structure of a second warehouse system 505 Storage column of the first warehouse system 505' Storage column for the second warehouse system 508 First rail system of first warehouse system 508' Second rail system for second warehouse system 508'a First Track 508'b 2nd track 509 Access Station 512 columns 550 Charging Station 600 First Mobile Container / Master Container 600' First mobile container frame 601 Base panel / floor of first mobile container 602 Top panel / roof of first mobile container 603 Short end side panel of first mobile container 604 Long end side panel of first mobile container 605 First mobile container door 606 Vertically extending profile of first mobile container 700 Second Mobile Container / Supply Container 700' Secondary Mobile Container Secondary Container Frame 700U Upper second mobile container 700L Lower Second Mobile Container 701 Second Mobile Container Base Panel / Floor 701U Upper Second Mobile Container Base Panel / Floor 702 Second mobile container top panel / roof 702L Lower second mobile container top panel / roof 703 Short end side panel of second mobile container 704 Long end side panel of second mobile container 705 Second Mobile Container Door 706 Vertically extending profile of second mobile container 800 equipment containers 900 Storage Bin Handling Assembly 901 Barrier 902 Conveyor 903 Bin Lifting Position 904 Conveyor Belt / Belt 905 Binlessing Construct 910 Storage bin opening 950 base plate 951 Regulating Device 952 Intermediate bracket 953 Side Bracket 954 Adjustment Device Bar 960 Height Adjustable Foot / Foot 961 Bracket 962 Side wall portion of bracket 961 963 Bridge 964 Hole in Bridge 963 965 Foot Bar 966 Resting Plate 967 Bracket 961 base X first direction Y Second direction Z third direction
Claims
1. A mobile storage system, the mobile storage system comprising: a first mobile container (600), a first automated storage system (500) arranged inside said first mobile container (600); Including, The first automated warehouse system (500) comprises: a first storage grid structure (504) having vertical members (502) defining a plurality of storage columns (505) for storing storage bins (106), said vertical members (502) being interconnected at their upper ends by a first rail system (508); A mobile storage system, wherein the first storage grid structure (504) is disposed on a horizontally displaceable base plate (650) configured to allow horizontal displacement.
2. The first mobile container (600) includes a first container frame (600'), the first container frame (600') comprising: a base panel (601), a top panel (602), - four vertically extending profiles (606) extending from each corner of said base panel (601) and connecting said base panel (601) and said top panel (602); The system of claim 1 , comprising:
3. 3. The system of claim 2, wherein the first container frame (600′) further includes two long-end side panels (603) and two short-end side panels (604), and at least a portion of at least one of the side panels (603, 604) is removable.
4. 3. The system of claim 2, wherein the first container frame (600′) further includes two long end side panels (603) and two short end side panels (604), at least a portion of one long end side panel (603) being removable.
5. 3. The system of claim 2, wherein the first container frame (600′) further includes two long end side panels (603) and two short end side panels (604), at least one of the long end side panels (603) being removable.
6. 6. The system of claim 1, wherein the first automated storage system (500) further comprises at least one column (512) dedicated for drop-off and / or pick-up of storage bins (106) by bin handling vehicles (201, 301) and an access station (509), at which the storage bins (106) can be accessed from outside the first storage grid structure (504) or can be transferred from or into the at least one column (512) of the first storage grid structure (504) dedicated for drop-off and / or pick-up of storage bins (106).
7. 7. The system of claim 1, wherein the first automated warehouse system further includes a charging station for charging the bin handling vehicles, the charging station being located on or above the rail system.
8. 8. The system of claim 1, wherein the first automated warehouse system (500) further comprises a controller for storing, receiving, and / or transmitting data regarding items stored in the storage bins (106) and data regarding the locations of the storage bins (106).
9. 9. The system of claim 1, wherein the first mobile container (600) includes height-adjustable feet (960) fixed to an outer lower surface of the first mobile container (600), thereby enabling height adjustment and / or leveling of the first mobile container (600).
10. The system further includes a second mobile container (700) configured to be removably connected to the first mobile container (600), and a second automated storage system (500′) is disposed within the second mobile container (700), the second automated storage system (500′) comprising: a second storage grid structure (504') having vertical members (502') defining a plurality of storage columns (505') for storing the storage bins (106), said vertical members (502') being interconnected at their upper ends by a second rail system (508'); 10. A system according to any one of claims 1 to 9.
11. The second mobile container (700) comprises a second container frame (700'), the second container frame (700') comprising: a base panel (701), a top panel (702), - four vertically extending profiles (706) extending from each corner of said base panel (701) and connecting said base panel (701) and said top panel (702); The system of claim 10, comprising:
12. 12. The system of claim 11, wherein the second container frame (700') further comprises two long-end side panels (703) and two short-end side panels (704), at least a portion of one of the side panels (703, 704) being removable.
13. 12. The system of claim 11, wherein the second container frame (700′) further includes two long end side panels (703) and two short end side panels (704), and at least a portion of one of the long end side panels (703) is removable.
14. 12. The system of claim 11, wherein the second container frame (700′) further comprises two long end side panels (703) and two short end side panels (704), at least one of the long end side panels (703) being removable.
15. 15. The system of any one of claims 11 to 14, wherein the second mobile container (700) includes a controller for storing, receiving, and / or transmitting data regarding items stored in the storage bins and data regarding the location of the storage bins on the second mobile container (700).
16. 16. The system of any one of claims 11 to 15, wherein the second storage grid structure (504') is disposed on a horizontally displaceable base plate (950) configured to allow horizontal displacement.
17. 17. The system of any one of claims 11 to 16, wherein the second mobile container (700) includes height-adjustable feet (960) fixed to an outer lower surface of the second mobile container (700), thereby enabling height adjustment and / or leveling of the second mobile container (700).
18. 18. The system according to any one of claims 11 to 17, wherein a first container frame (600') and a second container frame (700') of the first mobile container (600) are connected by a coupling device (400), which enables the first container frame (600') and the second container frame (700') to be aligned.
19. 19. The system according to claim 11, wherein the vertical extension of at least one of the base panel (601), the top panel (602), and the vertically extending profile (606) of the first mobile container (600) includes at least one hole (401), which faces at least one corresponding hole (401) arranged in the vertical extension of at least one of the base panel (701), the top panel (702), and the vertically extending profile (706) of the second mobile container (700), the at least one hole (401) for inserting a connecting pin (400) between the first mobile container (600) and the second mobile container (700) to align the two containers in at least one of a vertical position and a horizontal position.
20. 20. The system of claim 19, wherein the connection pins (400) are telescopic such that, in a retracted state, the connection pins (400) occupy either the holes (401) in the first container frame (600′) or the holes (401) in the second container frame (700′).
21. A mobile storage system, the mobile storage system comprising: a first mobile container (600), a first automated storage system (500) arranged inside said first mobile container (600); Including, The first automated warehouse system (500) comprises: a first storage grid structure (504) having vertical members (502) defining a plurality of storage columns (505) for storing storage bins (106), said vertical members (502) being interconnected at their upper ends by a first rail system (508); The mobile storage system further includes an intermediate element (450) for connecting the first rail system (508) to a second rail system (508') of a second storage grid structure (504'), the intermediate element (450) being configured to allow a bin handling vehicle (201, 301) to move between the first rail system (508) and the second rail system (508').
22. 18. The system of claim 11, wherein the second mobile container (700) is positioned above the first mobile container (600), and the base panel (701) of the second mobile container (700) has an opening corresponding to the opening in the top panel (602) of the first mobile container (600), and the opening (910) allows a storage bin (106) to be moved between the second mobile container (700) and the first mobile container (600).
23. 23. The system of any one of claims 11 to 22, wherein the system includes a plurality of second mobile containers (700) aligned adjacent to one another.
24. 24. The system of claim 23, wherein one second mobile container (700) is positioned above another second mobile container (700).
25. 25. The system of claim 24, wherein at least two of the second mobile containers (700) have corresponding openings (910) that allow a storage bin (106) to be moved between the two second mobile containers (700).
26. The system of any one of claims 1 to 25, wherein the system further comprises an equipment container (800) for storing equipment.
27. 1. A method of providing a mobile storage system, the method comprising: - providing a first mobile container (600); - placing a first automated storage system (500) inside said first mobile container (600); - transporting said first mobile container (600) with said first automated storage system (500) inside to a place for use; Including, The first automated warehouse system (500) comprises: a first storage grid structure (504) having vertical members (502) defining a plurality of storage columns (505) for storing storage bins (106), said vertical members (502) being interconnected at their upper ends by a first rail system (508); The method of claim 1, wherein the first storage grid structure (504) is disposed on a horizontally displaceable base plate (650) configured to allow horizontal displacement.
28. The method comprises: - providing a second mobile container (700); - placing a second automated storage system (500') inside said second mobile container (700); - transporting said second mobile container (700) with said second automated storage system (500') inside to said place of use; - connecting said first mobile container (600) and second mobile container (700) together; Including, The second automated warehouse system (500') comprises: a second storage grid structure (504') having vertical members (502') defining a plurality of storage columns (505') for storing the storage bins (106), said vertical members (502') being interconnected at their upper ends by a second rail system (508'); 28. The method of claim 27.
29. The first mobile container (600) includes a first container frame (600'), the first container frame (600') comprising: a base panel (601), a top panel (602), - four vertically extending profiles (606) extending from each corner of said base panel (601) and connecting said base panel (601) and said top panel (602); - two long end side panels (603) and two short end side panels (604); Including, At least a portion of one of the side panels (603, 604) is removable; The second mobile container (700) comprises a second container frame (700'), the second container frame (700') comprising: a base panel (701), a top panel (702), - four vertically extending profiles (706) extending from each corner of said base panel (701) and connecting said base panel (701) and said top panel (702); - two long end side panels (703) and two short end side panels (704); Including, At least a portion of one of the side panels (703, 704) is removable; The method comprises: a) removing said at least a portion of one of said side panels (603, 604) of said first container frame (600'), thereby creating an opening sized at least to a cross section of a bin-carrying bin-handling vehicle that travels on said rail system; b) removing said at least a portion of one of said side panels (703, 704) of said second container frame (700'), thereby creating an opening sized to at least a cross section of a bin-carrying bin-handling vehicle that travels on said rail system; c) positioning said openings of said first container frame (600') corresponding to said openings of said second container frame (700'); d) connecting said first rail system (508) and said second rail system (508') by placing an intermediate element (450) between them; 29. The method of claim 28, comprising:
30. 30. The method of claim 29, wherein step c) of the method further comprises connecting the first container frame (600') with the second container frame (700') by a coupling device (400) that enables the first container frame (600') and the second container frame (700') to be aligned.
31. 31. The method of claim 28, 29 or 30, further comprising adjusting the height and / or horizontal level of the first mobile container (600) or the second mobile container (700) relative to the height of the other mobile container using height-adjustable feet (960).
32. 1. A method of providing a mobile storage system, the method comprising: - providing a first mobile container (600); - placing a first automated storage system (500) inside said first mobile container (600); - transporting said first mobile container (600) with said first automated storage system (500) inside to a place for use; Including, The first automated warehouse system (500) comprises: a first storage grid structure (504) having vertical members (502) defining a plurality of storage columns (505) for storing storage bins (106), said vertical members (502) being interconnected at their upper ends by a first rail system (508); The method comprises: - providing a second mobile container (700); - placing a second automated storage system (500') inside said second mobile container (700); - transporting said second mobile container (700) with said second automated storage system (500') inside to said place of use; - connecting said first mobile container (600) and second mobile container (700) together; Including, The second automated warehouse system (500') comprises: a second storage grid structure (504') having vertical members (502') defining a plurality of storage columns (505') for storing the storage bins (106), said vertical members (502') being interconnected at their upper ends by a second rail system (508'); The method includes connecting the first rail system (508) and the second rail system (508') by placing an intermediate element (450) therebetween, the intermediate element (450) being configured to enable a bin handling vehicle (201, 301) to travel between the first rail system (508) and the second rail system (508').
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