Expansion joints, systems, and methods for connecting zones of a rail-based grid storage system

The expansion joint addresses rail misalignment and expansion/contraction issues in automated storage systems by enabling smooth weight transfer and stability through sliding, profiled rail elements, improving system reliability.

JP7823125B2Active Publication Date: 2026-03-03AUTOSTORE TECH AS
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Patent Information

Application Number
JP2024118389
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-10-09
Filing Date
2024-07-24
Publication Date
2026-03-03
Estimated Expiration
2039-09-25

AI Technical Summary

Technical Problem

Existing automated storage and retrieval systems face issues with rail misalignment and expansion/contraction due to temperature differences, leading to potential derailment and buckling of container handling vehicles.

Method used

An expansion joint for connecting rail systems, featuring elongated rail elements that slide longitudinally and include a profiled upper surface with tracks, allowing for smooth weight transfer and relative movement, supported by a guide structure to maintain continuity and stability.

Benefits of technology

The expansion joint ensures seamless transitions between rail systems, reducing the risk of derailment and buckling, thereby enhancing the stability and efficiency of container handling vehicles.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an expansion joint for connecting areas of grid storage systems of a rail base to each other.SOLUTION: In an expansion joint (10) for connecting areas of grid storage systems (50', 50") of a rail base, rail elements (11, 12) are constituted so as to slide in a joining area where they are overlapped each other. The expansion joint has an upper surface for defining a track for supporting a container handling vehicle, and, in the joining area, each of the rail elements has a transition part extending along the expansion joint. A method is provided which connects the areas of the grid storage system and / or deliver rail system of the rail base by using an automatic warehouse system containing the expansion joint and the expansion joint.SELECTED DRAWING: Figure 5A
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Description

[Technical Field]

[0001] The present invention relates to an expansion joint for connecting a first set of rails and a second set of rails, such as rails in an automated storage and retrieval system, and related systems and methods utilizing such expansion joints. [Background technology]

[0002] Figures 1A and 1C disclose a typical prior art automated warehouse system 1 with a framework structure 100. Figures 1B and 1D disclose prior art container handling vehicles 200, 300, respectively, that operate the system 1 disclosed in Figures 1A and 1C.

[0003] The framework structure 100 includes a plurality of upright members 102 and, optionally, a plurality of horizontal members 103 that support the upright members 102. The members 102, 103 may typically be made from metal, for example, from extruded aluminum profiles.

[0004] The framework structure 100 defines a storage grid 104 that includes storage columns 105 arranged in rows within which storage containers 106 (also known as bins) are stacked one on top of the other to form stacks 107.

[0005] Each storage container 106 can typically hold multiple product items (not shown), and the product items in a storage container 106 can be the same or can be of different product types depending on the application.

[0006] The storage grid 104 prevents horizontal movement of the storage containers 106 in the stack 107 and guides vertical movement of the storage containers 106, but typically does not otherwise support the storage containers 106 when stacked.

[0007] The automated storage and warehousing system 1 includes a container handling vehicle rail system 108 arranged in a grid pattern across the top of the storage facility 104, and a plurality of container handling vehicles 200, 300 (as illustrated in FIGS. 1B and 1D ) operate on the rail system 108 to raise, lower, and transport storage containers 106 from and into, and above, the storage columns 105. The horizontal extent of one of the grid cells 122 making up the grid pattern is marked by a bold line in FIGS. 1A and 1C .

[0008] Each grid cell 122 has a width that is typically in intervals of 30 cm to 150 cm and a length that is typically in intervals of 50 cm to 200 cm. Each grid opening 115 has a width and length that are typically 2 cm to 10 cm smaller than the width and length of the grid cell 122 due to the horizontal extent of the rails 110, 111.

[0009] 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 being connected to the frame structure 100. a second set of parallel rails 111 are arranged perpendicular to the first set of rails 110 and guide the movement of the container handling vehicles 200, 300 in a second direction Y which is perpendicular to the first direction X. The rail system 108 thus defines a grid column above which the container handling vehicles 200, 300 can move laterally above the storage columns 105, i.e. in a plane which is parallel to the horizontal XY plane.

[0010] Each prior art container handling vehicle 200, 300 includes a vehicle body and a wheel arrangement 201, 301 of eight wheels, with a first set of four wheels allowing lateral movement of the container handling vehicle 200, 300 in the X direction and a second set of four wheels allowing lateral movement in the Y direction. One or both sets of wheels in the wheel arrangement can be lifted and lowered so that the first set of wheels and / or the second set of wheels can be engaged with the respective set of rails 110, 111 at any one time.

[0011] Each prior art container handling vehicle 200, 300 also includes a lifting device (not shown) for vertical transportation of the storage containers 106, for example, the lifting device raising the storage containers 106 from the storage columns 105 and lowering the storage containers 106 into the storage columns 105. The lifting device includes one or more gripping / engagement devices (not shown) adapted to engage with the storage containers 106, such that the gripping / engagement devices can be lowered from the vehicle 201, 301 and the position of the gripping / engagement devices relative to the vehicle 201, 301 can be adjusted in a third direction Z, the third direction Z being orthogonal to the first direction X and the second direction Y.

[0012] Conventionally, and for purposes of this application, Z=1 identifies the top layer of the grid 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, and so on. In the exemplary prior art grid 104 disclosed in FIGS. 1A and 1C, Z=8 identifies the bottom layer at the bottom of the grid 104. Accordingly, by way of example and using the Cartesian coordinate system X, Y, Z shown in FIGS. 1A and 1D, a storage container identified as 106′ in FIG. 1A may be said to occupy grid location or cell X=10, Y=2, Z=3. The container handling vehicle 101 may be said to travel in layer Z=0, and each grid column may be identified by its X and Y coordinates.

[0013] Each container handling vehicle 200 includes a storage compartment or space (not shown) for receiving and storing the storage containers 106 as they are transported across the rail system 108. The storage space may include, for example, a cavity centrally located within the vehicle body, as described in WO 2014 / 090684 A1, the contents of which are incorporated herein by reference.

[0014] Alternatively, the container handling vehicle 300 may have a cantilevered structure as described in NO 317366, the contents of which are also incorporated herein by reference.

[0015] The container handling vehicle 200 has a predetermined footprint, i.e., a width in the X and Y directions. , which is generally equal to the lateral extent of the grid cells 122, i.e., generally equal to the extent of the grid cells 122 in the X and Y directions, as described, for example, in WO 2015 / 193278 A1, the contents of which are incorporated herein by reference. As used herein, the term "lateral" can mean "horizontal."

[0016] Alternatively, the container handling vehicle 200 may have a footprint that is larger than the lateral extent of the grid column 105 (the lateral area defined by the grid column 105), as disclosed, for example, in WO2014 / 090684A1.

[0017] The rail system 108 can be a single rail (also referred to as single track) system, as shown in Figure 2A. Alternatively, the rail system 108 can be a double rail (also referred to as double track) system, as shown in Figure 2B, thus allowing a container 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 container handling vehicle 200 is positioned above a neighboring grid column in that row). Both the single-rail and double-rail systems, or a combination including single and double-rail components 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. 2B , the grid cells 122 are indicated by dashed boxes. For example, a section of a rail-based system made from aluminum is a rail, and on the upper surface of the rail is a pair of tracks within which the vehicle wheels run. However, the sections can be separate rails, each with its own track.

[0018] Consequently, rails 110a and 110b form a pair of adjacent rails that define parallel rows of grid cells running in the X direction, and rails 111a and 111b form a pair of adjacent rails that define parallel rows of grid cells running in the Y direction.

[0019] As shown in FIG. 2C, 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 typically has a grid cell 122 width W c and length L c Width W 2cm to 10cm smaller than o and length L o It has the following characteristics.

[0020] In the X and Y directions, neighboring grid cells 122 are positioned so that they touch each other and there is no space between them.

[0021] In the storage grid 104, the majority of the grid columns are storage columns 105, i.e., grid columns 105 in which storage containers 106 are stored in stacks 107. However, the grid 104 will typically have at least one grid column that is not used to store storage containers 106, but rather that includes a location where a container handling vehicle 200, 300 can drop off and / or pick up a storage container 106 so that the storage container 106 can be transported to a second location (not shown). At the second location, storage containers 106 may be accessed from outside the grid 104 or may be transported out of or into the grid 104. In the art, such locations are commonly referred to as "ports," and the grid columns in which the ports are located may be referred to as "distribution columns" 119, 120. The drop-off and pick-up ports for container handling vehicles are referred to as "upper ports of the distribution column" 119, 120, while the opposite end of the distribution column is referred to as the "lower port of the distribution column."

[0022] 1A and 1C includes two distribution columns 119 and 120. The first distribution column 119 may, for example, include a dedicated drop-off port where container handling vehicles 200, 300 can drop off storage containers 106 for transport through the distribution column 119 and onward to an access or transfer station (not shown), and the second distribution column 120 may include a dedicated pickup port where container handling vehicles 200, 300 can pick up storage containers 106 that have been transported through the distribution column 120 from the access or transfer station (not shown). Each of the ports in the first and second distribution columns 119, 120 may include ports suitable for both pickup and drop-off of storage containers 106.

[0023] The second location may typically be a picking or stocking station where product items are removed from or placed into the storage containers 106. At the picking or stocking station, the storage containers 106 are typically never removed from the automated storage system 1, but rather are accessed and placed back into the storage grid 104. There are also lower ports provided in the delivery column for the transfer of storage containers out of or into the storage grid 104, such as for transferring the storage containers 106 to another storage facility (e.g., to another storage grid), directly to a transport vehicle (e.g., a train or lorry), or to a production facility.

[0024] To monitor and control the automated warehouse system 1 (e.g., to monitor and control the location of each storage container 106 within the storage grid 104; the contents of each storage container 106; and the movements of the container handling vehicles 200, 300 so that the desired storage containers 106 can be delivered to the desired locations at the desired times without the container handling vehicles 200, 300 colliding with each other), the automated warehouse system 1 includes a control system (not shown), which is typically computerized and which typically includes a database for tracking the storage containers 106.

[0025] A conveyor system including conveyors may be used to transport storage containers between the lower ports of the delivery columns 119, 120 and the access stations.

[0026] If the lower ports and access stations of the delivery columns 119, 120 are located at different levels, the conveyor system may include a lift device for transporting the storage containers 106 vertically between the ports and the access stations.

[0027] The conveyor system may be arranged to transport storage containers between different grids, for example as described in WO2014 / 075937A1, the contents of which are incorporated herein by reference.

[0028] Furthermore, WO2016 / 198467A1 (the contents of which are incorporated herein by reference) discloses an example of a prior art access system having a conveyor belt (Figures 5a and 5b of WO2016 / 198467A1) and frame-mounted rails (Figures 6a and 6b of WO2016 / 198467A1) for transporting storage containers between a delivery column and a workstation where an operator can access the storage containers.

[0029] 1A is to be accessed, one of the container handling vehicles 200, 300 is directed to retrieve the target storage container 106 from its location in the grid 104 and transport it to or through the delivery column 119. This operation involves moving the container handling vehicle 200, 300 to a grid location above the storage column 105 in which the target storage container 106 is positioned, using a lifting device (not shown) on the container handling vehicle to retrieve the storage container 106 from the storage column 105, and transporting the storage container 106 to the delivery column 119. If the target storage container 106 is positioned deep within the stack 107, i.e., if one or more other storage containers remain positioned above the target storage container 106, the operation also involves temporarily moving the storage container positioned above it before lifting the target storage container 106 from the storage column 105. This step, which is sometimes referred to in the art as "digging," may be performed by the same container handling vehicle 200, 300 subsequently used to transport the target storage container 106 to the delivery column, or it may be performed by one or more other cooperating container handling vehicles 200, 300. Alternatively or additionally, the automated warehouse system 1 may have container handling vehicles 200, 300 specifically specialized for the task of temporarily removing storage containers 106 from storage columns 105. Once the target storage container 106 is removed from the storage column 105, the temporarily removed storage container may be repositioned into the original storage column 105. However, the removed storage container may alternatively be repositioned into another storage column 105.

[0030] When a storage container 106 is to be stored in a grid 104, one of the container handling vehicles 200, 300 is directed to pick up the storage container 106 from the delivery column 120 and transport it to the grid location above the storage column 105 where it will be stored. After any storage containers positioned at or above the target location in the storage column stack 107 are removed, the container handling vehicle 200, 300 positions the storage container 106 in the desired location. The removed storage container can then be lowered back into the storage column 105 or repositioned in another storage column 105.

[0031] In situations where two rail systems are to be connected or are being constructed simultaneously for later connection, only minimal tolerances for misalignment between the rail systems are possible. Significant misalignment can result in rolling stock derailing.

[0032] Additionally, room temperature or temperature differences within the building or area in which the rail system is located can cause problems with automated warehouse systems. The rails can expand and contract significantly, resulting in buckling or excessive tension within the rails, potentially causing movement within the rails and ultimately causing container handling vehicles to derail. The expansion and contraction problem will depend in part on the length of the rail. Thus, for rail systems of any significant length in either the X and / or Y directions, there is an increased risk of movement, with associated buckling and / or excessive tension in the rail system. Summary of the Invention [Problem to be solved by the invention]

[0033] In view of the above, it would be desirable to provide an automated storage system, and a method for operating such a system, that overcomes or at least alleviates one or more of the above-mentioned problems associated with the use of prior art storage and retrieval systems.

[0034] Another object is to provide a connection that simplifies the connection of two rail systems. Another object is to provide a connection that solves or at least reduces problems related to expansion and / or contraction of rails, especially rails of considerable length that are subjected to large temperature differences with the risk of expansion and contraction as a result. [Means for solving the problem]

[0035] The invention is set out in the independent claims, while the dependent claims describe alternatives to the invention.

[0036] The present invention relates to an expansion joint for connecting zones of a rail-based grid storage system, comprising: - first and second rail elements, the rail elements being elongated and configured to slide longitudinally relative to one another at a junction area where the rail elements overlap; - the expansion joint has a profiled upper surface defining one or more tracks, the tracks extending from a first rail element through a junction area to a second rail element, in which each rail element provides a portion of the or each track of the profiled upper surface, such that for the or each track there is a transition extending from the first rail element to the second rail element along the expansion joint.

[0037] The first rail element can include a male protruding part and the second rail element can include a female receiving part that includes a recess. Alternatively, the first rail element can include a recess and the second rail element can include a male protruding part.

[0038] The first and second rail elements of the expansion joint are arranged so that a wheel of a vehicle transfers weight from the first region to the second region through one of the first or second rail elements to the other of the first or second rail elements without experiencing a step in the track when passing through the expansion joint.

[0039] In other words, portions of the first and second rail elements that are arranged side by side with each other in the transition section form part of a continuous drive track in the junction area where they overlap.

[0040] The junction area can define a dividing line between the first and second rail elements, the dividing line running along the center of the track or tracks where the first and second rail elements overlap (i.e., in the area where the first and second rail elements are positioned side-by-side / transversely relative to one another).

[0041] When the first and second rail elements overlap (ie, are arranged side-by-side), the total combined width of the first and second rail elements is equal to the width of the respective tracks.

[0042] The expansion joint can include first and second tracks, and portions of the tracks can form a dividing line running along the center of the first and second tracks, respectively.

[0043] The expansion joint can further include a guide structure provided below the one or more tracks to support ends of the first and second rail elements and guide their relative longitudinal movement as portions of the one or more tracks slide relative to one another in the joint area. The guide structure can include one or more of an intermediate connecting element, a sliding connection, a roller-based connection, a link, a recess in the second rail element, a recess in the intermediate connecting element, or a link.

[0044] Where the guide arrangement includes a roller-based connection, the roller-based connection may be arranged to prevent movement in a direction perpendicular to the longitudinal direction.

[0045] If the guide arrangement includes a link, the link may be connected to the first rail element via a pivot connection arrangement and may be capable of spanning the gap between the first and second rail elements. The pivot connection arrangement may allow the link to be pivoted between a disconnected position and a connected position, where the first and second rail elements of the expansion joint are not connected together and where the first and second rail elements of the expansion joint are connected together by the link.

[0046] Further described is an automated storage system including first and second regions of a rail-based grid storage system and / or distribution rail system, including one or more expansion joints as described above, each of the first and second regions having a rail with a profiled upper surface, the profiled upper surface defining one or more tracks of the same gauge and profile as the one or more tracks in the expansion joint, and the expansion joints arranged as one or more connections between the first and second regions.

[0047] The first and second areas can be two areas of a rail-based grid storage system or two areas of a distribution rail system, i.e., the areas can be the first and second rail systems of a rail-based grid storage system, or the areas can be the first and second rail systems of a distribution rail system.

[0048] Rail-based grid storage systems and / or distribution rail systems first and The second region may include a grid arrangement of rails defining a plurality of grid cells.

[0049] The expansion joint can be positioned so that the tracks in the first set of rails overlap the tracks in the expansion joint, which again overlap the tracks in the second set of rails, thereby forming a continuous track in the longitudinal direction while allowing sliding movement of the first rail system relative to the second rail system and providing a smooth transition across the joint. For example, the expansion joint can be positioned so that there is no continuous slot extending laterally across the track that can be pulled apart; instead, the track is formed by two overlapping sections, allowing the vehicle wheels to transfer weight from one to the other without experiencing a step in the track.

[0050] From the midpoint of the expansion joint, it is preferable to allow longitudinal movement of, for example, ±40 mm, but the allowed longitudinal movement can be more, or it can be less.

[0051] Also described is a method of connecting regions of a rail-based grid storage system and / or distribution rail system using one or more expansion joints as described above, each of the regions having a rail with a profiled upper surface, the profiled upper surface defining one or more tracks of the same gauge and profile as the one or more tracks in the expansion joint, the method comprising: - arranging the regions with a predetermined separation; - connecting the regions together using one or more of the expansion joints, thereby forming a continuous network of rails linking one end of a first region to an opposite end of a second region via the expansion joints; The method includes:

[0052] The method includes, before connecting the first and second regions: The method may further comprise the step of leveling the first and second regions such that the profiled upper surfaces of the first and second regions are on the same elevation.

[0053] The first and second areas connected in this manner may be areas of a rail-based storage grid system or a distribution rail system.

[0054] The expansion joint can be used in any rail-based system (both grid storage systems and distribution rail systems). Expansion joints can be used in the connection between two grid systems with rails in the X or Y direction.

[0055] The connection can also be between one grid system with rails in the X and Y direction and one rail system with single / double rails.

[0056] When connecting two sections of a rail-based storage system and / or distribution rail system, the respective first and second rail parts to be connected can terminate approximately halfway across the cell. When connected, the cell in which the expansion joint is located can be nearly identical to a standard cell. A cell can be of a similar size, or it can be longer, or it can be shorter. Vehicles can typically pass through such a cell in one direction (i.e., in the direction of the expansion joint) because the distance between the tracks for the wheels of the vehicle in the opposite direction can vary. The distance between the wheels is fixed. Moreover, due to the varying distance between the tracks, the row in which the expansion joint is located may not be used to store storage containers.

[0057] The following drawings illustrate exemplary embodiments of the invention and are included to facilitate an understanding of the invention. [Brief explanation of the drawings]

[0058] [Figure 1A] FIG. 1 is a perspective view of a prior art automated storage system showing the complete system. [Figure 1B] 1 is a perspective view of a prior art automated warehouse system showing an example of a prior art container handling vehicle capable of operating in the system. [Figure 1C] FIG. 1 is a perspective view of a prior art automated storage system showing the complete system. [Figure 1D] 1 is a perspective view of a prior art automated warehouse system showing an example of a prior art container handling vehicle capable of operating in the system. [Figure 2] Figure 2A is a top view of a container handling vehicle rail system showing a single rail / track system, Figure 2B is a top view of a container handling vehicle rail system showing a double rail / track system, and Figure 2C is a top view of a container handling vehicle rail system showing a double rail / track system and showing the width and length of a container handling vehicle grid cell. [Figure 3A]FIG. 10 is a side view of two connected areas, exemplified as two storage grids, using an expansion joint, which connects the X-direction rails of the storage grids. [Figure 3B] FIG. 3B is an enlarged top side view of the expansion joint of FIG. 3A. [Figure 3C] FIG. 3B is a top view of the expansion joint and storage grid as disclosed in FIG. 3A. [Figure 3D] FIG. 10 is a top side view of an expansion joint including a roller-based connection, the expansion joint connecting Y-direction rails and positioned above a storage grid. [Figure 3E] FIG. 3E is an alternative top side view of FIG. 3D. [Figure 3F] FIG. 3E is a side view of FIG. 3E. [Figure 4A] FIG. 1 is a side view of a rail system (e.g., a distribution rail system) positioned below two storage grids, where regions of the distribution rail system are connected in the X direction of the rails in the rail system using an exemplary expansion joint according to the present invention, the expansion joint including a sliding connection. [Figure 4B] FIG. 4B is an enlarged view of section A in FIG. 4A showing a container handling vehicle of the delivery rail system. [Figure 4C] FIG. 4C is an enlarged view of the delivery rail system of FIG. 4B. [Figure 4D] FIG. 4D is a top side view of the expansion joint of FIG. 4C. [Figure 4E] 4A-4D, including a sliding connection, is an exploded view of the expansion joint disclosed in FIG. [Figure 5A] This is an example of a rail expansion joint in the Y direction, including a sliding connection. [Figure 5B] 5B is an exploded side view of the expansion joint of FIG. 5A in the Y direction of the rail, including the sliding connection. FIG. [Figure 5C] 5B is an exploded view of the expansion joint of FIG. 5A in the Y direction of the rail, including the sliding connection, and a top side view. FIG. [Figure 5D] FIG. 10 is a close-up view of an expansion joint including a sliding connection in the Y direction of the rail, showing the Y direction wheel of a container handling vehicle about to pass through the sliding connection. [Figure 6A] FIG. 10 shows an example of a rail expansion joint in the Y direction, including a roller-based connection. [Figure 6B] FIG. 6B is a view from below of FIG. 6A. [Figure 6C] FIG. 6C is an exploded view of the expansion joint of FIGS. 6A and 6B, including a roller-based connection, showing one component of the expansion joint between two rail systems in the Y direction of the rails. [Figure 7A] FIG. 10 is an example of an expansion joint including a pivot connection for connection to a first set of rails or a second set of rails, showing the expansion joint in a non-connected position. [Figure 7B] 7B is an example of the expansion joint of FIG. 7A including a pivot connection connectable to a first set of rails or a second set of rails, showing the expansion joint in a connected position. FIG. [Figure 7C] FIG. 7C is a top view of the expansion joint of FIGS. 7A and 7B in a connected position. [Figure 8] FIG. 10 shows an example of an expansion joint used in connecting single tracks. DETAILED DESCRIPTION OF THE INVENTION

[0059] In the following, embodiments of the present invention will be discussed in more detail with reference to the accompanying drawings. However, it should be understood that the drawings are not intended to limit the invention to the subject matter shown in the drawings. Moreover, even if some of the features are described only in relation to an expansion joint or system, it is clear that they are equally valid for a method of connecting rail-based storage systems together, and vice versa. Thus, any feature described in relation to a method is also valid for the expansion joint and system.

[0060] FIG. 3A is a side view of two storage grids 104′, 104″ connected using an expansion joint 10. The expansion joint 10 of FIG. 3A connects rails extending in the X direction of the two storage grids 104′, 104″. The storage grids 104′, 104″ can be of equal size or can have different sizes, both in terms of the horizontal extent of the grids 104′, 104″ and the vertical extent of the grids 104′, 104″. Both of the disclosed storage grids 104′, 104″ have the capacity to store a stack 107 of four storage containers 106. However, it is advantageous if the rails in the storage grids 104', 104" are coplanar with one another so that a container handling vehicle traveling between the storage grids 104', 104" can travel mainly in the same horizontal plane P, independently of whether the container handling vehicle 300 is on the storage grid with reference 104', on the storage grid with reference 104", or on the expansion joint 10 between the two storage grids 104', 104". In other words, when the two areas of the storage grids 104', 104" are connected, they function as one common large grid. Similarly, and as described in more detail, for example, with reference to Figures 4A-4E, 5A-5C, and 6A-6C, when two regions of delivery rail system 50, 50', 50" are connected, they function as one common large grid.

[0061] As shown above, two storage grids 104′, 104″ are connected in the X direction of the rails in FIG. 3A , where a first set of rails 20X in the X direction on the storage grid with reference number 104′ is connected to a second set of rails 21X in the X direction on the storage grid with reference number 104″. Similar expansion joints 10 are disposed along the same horizontal axis between all of the first set of rails 20X with corresponding second set of rails 21X. In FIG. 3A , there are a total of four expansion joints 10 connecting each of the four first set of rails 20X with a dedicated second set of rails 21X. However, it is clear that the number of expansion joints 10 and first and second sets of rails 20X, 21X can vary and can be more or less.

[0062] Due to the change in length of the expansion joint 10, the space 22 (i.e., the row formed below the expansion joint 10) will not typically serve as storage space for the containers 106, 107, but may instead be used as a walkway or the like.

[0063] All rails extending in the X direction are identical, so in all figures that refer to a first set of rails 20X, 21X can be either an individual rail in the X direction (double rail / track system or single rail / track system).

[0064] Similarly, all rails extending in the Y direction are identical, so in a diagram referring to a first set of rails 20Y, 21Y can be either an individual rail in the Y direction (a double rail / track system or a single rail / track system).

[0065] FIG. 3B is an enlarged top view of three of the expansion joints 10 between the first set of rails 20X in the X direction and the second set of rails 21X in the X direction of FIG. 3A. In FIG. 3B, the storage grids 104′, 104″, the expansion joints 10, and the container handling vehicle 300 are seen on the opposite side compared to FIG. 3A. The container handling vehicle 300 is shown carrying a storage container 106.

[0066] FIG. 3C is a top view of four expansion joints 10 connecting the first set of rails 20X and the second set of rails 21X of FIG. 3A.

[0067] FIG. 3D is a top side view of an expansion joint 10 with roller-based connections, where the expansion joint 10 connects a first set of rails 20Y in the Y direction of the storage grid, designated 104′, and a second set of rails 21Y in the Y direction of the storage grid, designated 104″. The expansion joint 10 connects the rail systems of the respective storage grids 104′, 104″. The expansion joint 10 with roller-based connections is the same regardless of whether it is used to connect rails extending in the X direction or the Y direction. Details of the kisspansion joint 10 are provided below with reference to Figures 6A-6C.

[0068] FIG. 3E is an alternative top side view of FIG. 3D showing more details of the expansion joint 10, including the roller-based connection. FIG. 3F is a side view of FIG. 3E.

[0069] FIG. 4A is a side view of a delivery rail system 50 positioned below two storage grids 104′, 104″. The delivery rail system 50 results from two delivery rail systems connected using an expansion joint 10 according to an embodiment of the present invention.

[0070] FIG. 4B is an enlarged view of section A in FIG. 4A , showing a container handling vehicle 400 equipped with a wheel arrangement 401 on a delivery rail system 50. Similar to the connection of the storage grids 104′, 104″ described in relation to FIGS. 3A-3E , the two delivery rail systems 50′, 50″ are connected in the X direction of the rails in FIGS. 4B-4E , where a first set of rails 20X in the X direction on the delivery rail system with reference numeral 50′ is connected to a second set of rails 21X in the X direction on the delivery rail system with reference numeral 50″ via an expansion joint 10 including a first rail element 12 and a second rail element 11. The same expansion joint 10 is disposed between all of the first set of rails 20X with corresponding second set of rails 21X. In FIGS. 4B-4E , a total of four first set of rails 20X are connected to their respective dedicated second set of rails 21X. There are a total of four expansion joints 10. First and second rail elements 12, 11 are connected on either side of the expansion joint 10 between the expansion joint 10 and the respective areas that will be connected (in the disclosed embodiment, the first and second sets of rails 20X, 21X). This number is merely by way of example; it provides three lanes for vehicles to travel along; two or more lanes would reduce the problem if a vehicle stalls due to grid placement (single point failure). From the perspective of flexibility for routing without taking up too much space, at least three lanes may be preferred; however, it could be more.

[0071] FIG. 4C is an enlarged view of the delivery rail system of FIG. 4B. FIG. 4D is a top side view of the expansion joint of FIG. 4C. 4E is an exploded view of the expansion joint 10 disclosed in FIGS. 4A-4D, used in connecting the first and second sets of rails 20X, 21X in the X direction. The expansion joint 10 includes a first rail element 12 (in this embodiment, a male protruding part connectable to the first set of rails 20X) and a second rail element 11 (in this embodiment, a female receiving part connectable to the second set of rails 20X). The first rail element 12 extends in an axial direction equal to the direction of the first set of rails 20X, and the second rail element 11 includes a receiving part extending in an axial direction opposite to the first rail element 12. In FIG. 4E, the expansion joint 10 further includes an intermediate connecting element 14. The intermediate connecting elements 14 are shown as sliding connections and are adapted to be connected to the underside of the first rail elements 12 using suitable fastening means (e.g., screws, pins, or bolts 15) through vertical holes 16 in the intermediate connecting elements 14. The second set of delivery rails 50' are provided below the second rail elements 11 with recesses for receiving the intermediate connecting elements 14 when the first and second sets of rails 50', 50" are connected. When connected, In this example, the first rail element 12 and the second rail element 11 at least partially overlap in a direction perpendicular to the axial direction and form part of a rail system over which the container handling vehicles 300, 400 can travel. When connected, the first rail element 12 (i.e., the male part) is allowed to move axially relative to the second rail element 11, with the protruding part 12 of the first rail element being received in the recess 17 in the second rail element 11, thereby forming an axially continuous drive track between the first set of delivery rails 50' and the second set of delivery rails 50" (e.g., + / - 40 mm, + / - 15 mm, or more or less). A non-continuous drive track is not acceptable for container handling vehicles. Any discontinuity in the axial direction of the rail can lead to an unstable container handling vehicle and / or derailment.

[0072] FIG. 5A is an example of an expansion joint in the Y direction between regions in a rail-based storage system, illustrated as a first set of delivery rails 50′ and a second set of delivery rails 50″. The expansion joint 10 includes a sliding connection.

[0073] 5B and 5C are exploded views of the expansion joint 10 of FIG. 5A in the Y direction of the first and second sets of delivery rails 50′, 50″, including the sliding connections, where FIG. 5B is a side view and FIG. 5C is a top side view. The expansion joint 10 of FIGS. 5A-5C has almost all features in common with the expansion joint 10 described above in connection with FIG. 4E, which are not repeated except for the intermediate connection element 14, which is provided with holes 16 in its side walls instead of vertical holes. Consequently, the first set of rails 50′ has corresponding holes 16 for receiving fastening means (see FIG. 5A). This is due to the different construction of the rails running in the Y direction relative to the rails running in the X direction.

[0074] 5D is a close-up view of the expansion joint 10, including the sliding connection of the rails in the Y direction, showing a Y-direction wheel 401 of a container handling vehicle 400 passing through the expansion joint 10. As is clear from the figure, the complementary shapes of the recess 17 in the second rail element 11 and the protruding part of the first rail element 12 ensure a continuous drive track for the wheel of the container handling vehicle, in that the protruding part and the recess 17 overlap in a direction perpendicular to the axial direction of the Y rail. In other words, the parts of the first and second rail elements 12, 11, which are arranged side-by-side with each other at the transition, form a continuous drive track in the joint area where they overlap.

[0075] FIG. 6A is an example of a rail Y-direction expansion joint 10 including a roller-based connection. FIG. 6B is a view from below of FIG. 6A. FIG. 6C is an exploded view of the expansion joint 10 of FIGS. 6A and 6B including a roller-based connection, showing one component of the expansion joint 10 between a first rail system 20Y and a second rail system 21Y in the Y-direction. The expansion joint 10 includes a first rail element 12 (in this embodiment, a male part connectable to a first set of rails 20Y) and a second rail element 11 (in this embodiment, a female part connectable to a second set of rails 21Y). The rail element 12 extends in an axial direction equal to that of the first set of rails 20Y, and the second rail element 11 includes a receiving part extending in an axial direction opposite to that of the first rail element 12. The expansion joint 10 further includes an intermediate connection element 14, which is shown as a roller-based connection 14. The roller-based connection 14 includes two brackets 30′, 30′, which are connected to each side of the first set of rails 20Y and are connected to each other using suitable fastening means, such as screws and / or bolts 32. To ensure that the brackets 30′, 30″ are positioned at a predefined distance from each other, a fixed distance element 31 can be placed between the two brackets 30′, 30″. Additionally, as disclosed in FIG. 6B, two screws 35 are connected to the first set of rails 20Y. Each bracket 30', 30" is further provided with a recess 33 (only one recess is shown in FIG. 6B). A roller 34 (only one is shown in FIGS. 6A and 6B) is connected to the second set of rails 21Y and is provided to move inside each recess 33 in the horizontal plane (i.e., in the axial direction of the drive track). The recesses 33 and rollers 34 lock the first set of rails 20Y relative to the second set of rails 21Y in the vertical direction (i.e., in the Z direction) and in the X direction, but allow relative translational movement between the first set of rails 20Y relative to the second set of rails 21Y in the Y direction. When connected, the axial flexibility of the expansion joint 10 allows some relative movement between the rails in the first set of rails 20Y and the rails in the second set of rails 21Y (e.g., + / - 40 mm, + / - 15 mm, or more or less).Moreover, when connected, the first rail element 12 (i.e., the male part) is allowed to move axially relative to the second rail element 11, with the protruding part 12 of the first rail element being received in the recess 17 in the second rail element 11, thereby forming an axially continuous drive track between the first set of rails 20Y and the second set of rails 21Y.

[0076] 7A is an example of an expansion joint 10 including a link 14' connected to a second rail element 11 (and a second set of rails 21Y) via a pivotal connection arrangement 19. The pivotal connection arrangement 19 is connected to the second set of rails 21Y and the link 14' via suitable fastening means known to those skilled in the art (e.g., a pivot bracket 18 fastened by screws, bolts, pins, etc.).

[0077] In Figure 7A, the pivot connection arrangement 19 and link 14' are shown pivoted in an upward direction relative to the second set of rails 21Y. In Figure 7A, the first set of rails 20Y and the second set of rails 21Y are not connected, i.e., the expansion joint 10 is in a non-connected position. Alternatively, the pivot connection arrangement 19 can be pivoted to a downward position so that it can be pivoted upward for connection with the first set of rails 20Y.

[0078] Although the pivot connection arrangement 19 is disclosed as being connected to the second rail element 11 (and thereby to the second set of rails 21Y), it is clear that the pivot connection arrangement 19 (and link 14') may instead be connected to the first rail element 12 (and thereby to the first set of rails 20Y).

[0079] As disclosed in FIGS. 7A to 7C, the link 14′ (which may be considered to form part of the second rail element 11 in the solution disclosed in FIGS. 7A to 7C) is received at the end that will be connected to the first rail element 12. The first rail element 12 is formed with a recess 17" (i.e., a female part) and a complementary first rail element 12 (i.e., a male protruding part) in a manner similar to that discussed above in connection with FIGS. 4E and 5A. In addition, the end of the link 14' closest to the second rail element 11 is formed with a similar recess 17" (as disclosed in FIGS. 7A-7C), which can provide some flexibility in the connection between the link 14' and the second rail element 11 (and thereby the second set of rails 21Y).

[0080] When the link 14' is primarily horizontally oriented and connects the first set of rails 20Y and the second set of rails 21Y, the cooperation between the link 14' and the first set of rails 20Y can be such that a portion of the link 14' rests on an upper surface 25 of the first rail element 12. The surface 25 is preferably substantially horizontal, such that the expansion joint 10 provides a substantially coplanar drive track between the first set of rails 20Y and the second set of rails 21Y for the container handling vehicles 200, 300, 400.

[0081] FIG. 7B is an example of the expansion joint 10 of FIG. 7A, showing the expansion joint 10 in a connected position, where the first and second sets of rails 20Y, 21Y are connected.

[0082] FIG. 7C is a top view of the expansion joint 10 of FIGS. 7A and 7B in the connected position. In FIG. 7C, the recesses 17', 17" in the link 14' and the complementary parts of the first and second rail elements 11, 12 are shown in more detail. The male part of the first rail element 12 extends approximately halfway into the recess 17' of the link 14', allowing some relative axial movement between the first set of rails 20Y and the second set of rails 21Y when connected.

[0083] The first rail element 12 can be a male part, or the second rail element 11 can be a male part and the first rail element 12 can be a female part, or the second rail element 11 can be a female part. In this embodiment, there is no separate intermediate element 14, i.e., the expansion joint 10 is simply pivoted between the connected and disconnected positions by pivoting the link 14' between the resting position (i.e., the disconnected position) and the active position (i.e., the connected position).

[0084] The rail system of Figure 7C includes a single track in the X direction and a double track in the Y direction, but this is only one option, as it is also possible to have either only a single rail or only double rails in both the X and Y directions.

[0085] In the preceding description, various aspects of the expansion joint and automated warehouse system according to the present invention have been described with reference to illustrative embodiments. For purposes of explanation, specific numbers, systems, and configurations have been set forth to provide a thorough understanding of the system and its operation. However, this description is not intended to be construed in a limiting sense. For example, rail sensors in container handling vehicles typically emit light toward the side where it is reflected back by side walls in the rail. When the container handling vehicle enters an XY intersection, there are no side walls present, and therefore the light is not reflected back to the sensor. However, if the expander joint does not have side walls, the light may be reflected back to the sensor. If the container handling vehicle has an unspecified part, an erroneous signal can result. Software in the vehicle, possibly in conjunction with size measurements (the size of a cell with an expander joint is not fixed like a grid cell, which is fixed), can correct any such erroneous light on the rail / track sensors in the container handling vehicle when passing through the expander joint. The overall control system (which tracks all vehicles in the system) knows when a vehicle is entering a cell with an expansion joint. When a vehicle enters a cell with an expansion joint, the overall control system can then ignore the signal representing the erroneous light at the expansion joint or turn off the sensor in the vehicle when passing through the expansion joint. Alternatively, the risk of such erroneous light can be reduced by placing a sliding sidewall at the expansion joint that moves with the expansion joint or is sized to cover the expansion joint even when it is in its fully expanded position.

[0086] FIG. 8 shows an example of an expansion joint used in connecting single tracks. The joint area of ​​the expansion joint for a single track is formed in an S-shape, as can be seen in FIG. 8. This is because both the first rail element 12 and the second rail element 11 are S-shaped. The dividing line between the first rail element 12 and the second rail element 11 preferably runs along the centerline of the track 27'. If the rail is a single-track rail, the joint area will likely be S-shaped, but typically it will be a double-track rail, so they are arranged as mirror-symmetric profiles, allowing for the creation of male and female parts. As shown in FIG. 8, the joint area has an S-shape, which connects from one track to another S-shape across a similarly arranged track, with the slot in the track 27' widening along the track 27'. The intermediate gap between the first and second rail elements 12, 11 need not be as large as shown, but will correspond to the size of the gap at the sides. If providing male and female shapes is important for lateral stability, the tracks on opposite sides of the grid cell can have mirror-symmetrical profiles to provide the same interlocking effect.

[0087] The disclosed figures disclose a solution to the problems mentioned in relation to the prior art, namely an expansion joint that simplifies the connection of two rail systems. Additionally, the disclosed solution provides a connection that solves or at least mitigates problems related to the expansion and / or contraction of rails (and especially rails of significant lengths that are exposed to large temperature differences with the resulting risk of expansion and contraction).

[0088] Various modifications and variations of the illustrative embodiments, as well as other embodiments of the system, which will be apparent to those skilled in the art of the disclosed subject matter, are deemed to be within the scope of the invention as defined in the claims. [Explanation of symbols]

[0089] 1. Warehouse System 10 Expansion joint 11 Second rail element / female part 12 First rail element / male part 14 Intermediate connecting element / Roller-based connection 14' Link 15 Fastening means / pins / screws / bolts 16 Hole 17, 17', 17" Recess in second rail element / recess in intermediate connecting element or link 18 Bracket 19 Pivot connection structure 20X First set of rails in the X direction 20Y First set of rails in the Y direction 21X Second set of rails in the X direction 21Y Second set of rails in the Y direction 22 spaces 25 Surface first rail element 27', 27" Track in profiled upper surface 30', 30" bracket 31 Fixed Distance Elements 32 screws / bolts 33 Recess 34 Roller 35 Screw 50, 50', 50" Delivery Rail System P horizontal plane 100 Framework Structure 102 Framework structure upright members 103 Horizontal members of framework structures 104, 104', 104" Storage Grid / 3D Grid 105 Storage Column 106, 106' Storage Container 107 stacks 108 Rail System / Container Handling Vehicle Rail System 110 First set of parallel rails in the first direction (X) 110a First adjacent rail of first set 110b second adjacent rail of first set 111 A second set of parallel rails in the second direction (Y) 111a 1st adjacent rail of 2nd set 111b Second adjacent rail of second set 115 Grid Opening / Container Handling Vehicle Grid Opening 119 Shipping Column 120 Shipping Column 122 Grid Cells / Container Handling Vehicle Grid Cells 200 First Container Handling Vehicle 201 Wheel structure 300 Second Container Handling Vehicle 301 Wheel structure 400 Third Container Handling Vehicle 401 Wheel structure X first direction Y Second direction P Horizontal plane of the rail system Wo Container handling vehicle grid opening width Wc Width of container handling vehicle grid cell Lo Container handling vehicle grid opening length Lc Length of the container handling vehicle grid cell

Claims

1. An expansion joint (10) for connecting sections of a rail-based grid storage system (50, 50', 50"; 104, 104', 104"), comprising: - a first rail element (12) and a second rail element (11), said rail elements (12, 11) being elongated and configured to slide longitudinally relative to each other in a joint area where said rail elements (12, 11) overlap, the expansion joint (10) has a profiled upper surface defining one or more tracks (27', 27") for supporting a container handling vehicle (200, 300, 400), the tracks (27', 27") extending from the first rail element (12) through the junction area to the second rail element (11), in which each rail element (11, 12) provides a portion of the or each track (27', 27") of the profiled upper surface, such that for the or each track (27', 27") there is a transition extending from the first rail element (12) to the second rail element (10) along the expansion joint (10); a guide structure (14) provided below the one or more tracks (27′, 27″) to support ends of the first and second rail elements (12, 11) and to guide their relative longitudinal movement when the portions of the one or more tracks (27′, 27″) slide against each other in the joint area; The guide structure (14) includes a roller-based connection (14) having a recess (33) along the longitudinal direction and a roller (34) movable within the recess (33), the recess (33) and the roller (34) being configured to prevent movement in a direction perpendicular to the longitudinal direction.

2. 2. The expansion joint (10) according to claim 1, wherein the first rail element (12) comprises a male protruding part (12) and the second rail element (11) comprises a female receiving part (11) comprising a recess (17, 17', 17").

3. 3. The expansion joint (10) according to claim 1 or 2, wherein the joining area defines a dividing line between the first rail element (12) and the second rail element (11), the dividing line running along the center of the or each track (27', 27") at the location where the first and second rail elements (12, 11) overlap.

4. 4. The expansion joint (10) of claim 3, including first and second tracks (27′, 27″), portions of said tracks defining respective dividing lines running along the centers of said first and second tracks (27′, 27″), respectively.

5. 5. An automated storage and retrieval system including first and second regions (50, 50', 50"; 104, 104', 104") of a rail-based grid storage system (104, 104', 104") and / or a distribution rail system (50, 50', 50"), the automated storage and retrieval system including one or more expansion joints (10) according to any one of claims 1 to 4, wherein each of the first and second regions has a rail with a profiled upper surface, the profiled upper surface defining one or more tracks (27', 27") of the same gauge and profile as one or more tracks (27', 27") in the expansion joint (10), the expansion joint (10) being arranged as one or more connections between the first and second regions (50, 50', 50"; 104, 104', 104").

6. 6. The automated warehouse system of claim 5, wherein the first and second regions are two regions of a rail-based grid storage system (104, 104', 104") or two regions of a delivery rail system (50, 50', 50")

7. The automated warehouse system of claim 5 or 6, wherein the first and second regions of the rail-based grid storage system and / or distribution rail system comprise a grid arrangement of rails defining a plurality of grid cells.

8. 5. A method of connecting sections (50, 50', 50"; 104, 104', 104") of a rail-based grid storage system and / or distribution rail system using one or more expansion joints (10) according to any one of claims 1 to 4, each of said sections having a rail with a profiled upper surface, said profiled upper surface defining one or more tracks (27', 27") of the same gauge and profile as one or more tracks (27', 27") in said expansion joint (10), said method comprising: - arranging said regions (50, 50', 50"; 104, 104', 104") with a predetermined separation; - connecting said areas (50, 50', 50"; 104, 104', 104") together using one or more of said expansion joints (10), thereby forming a continuous network of rails linking one end of a first area (50, 50', 50"; 104, 104', 104") to the opposite end of a second area (50, 50', 50"; 104, 104', 104") via said expansion joints (10); A method comprising:

9. Before connecting the first and second regions (50, 50', 50"; 104, 104", 104"), 9. The method of claim 8, further comprising the step of leveling the first and second regions (50, 50', 50"; 104, 104", 104") so that the profiled upper surfaces of the first and second regions (50, 50', 50"; 104, 104', 104") are on the same elevation.

10. 10. The method of claim 8 or 9, wherein the first and second areas are areas of a rail-based storage grid system (104, 104', 104") or a distribution rail system (50, 50', 50")

11. 11. The method according to any of claims 8 to 10, wherein the expansion joints allow a relative movement of up to ±40 mm between the regions (50, 50', 50"; 104, 104', 104") of the rail-based grid storage system and / or the delivery rail system to accommodate changes in room temperature.

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