Expansion joint for connecting a first region and a second region of a rail system
Patent Information
- Application Number
- JP2023572576
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-05-27
- Filing Date
- 2022-05-19
- Publication Date
- 2025-05-26
- Estimated Expiration
- 2042-05-19
AI Technical Summary
Existing rail joints in automatic storage and retrieval systems fail to adequately address issues such as buckling, excessive tension, and derailment caused by expansion and contraction of rails due to temperature changes, particularly in systems with perpendicular rails, leading to potential wear and derailment of container handling vehicles.
The introduction of an expansion joint with elongated rail elements that allow for longitudinal and lateral movement, featuring pivotable connections and support profiles to maintain alignment and prevent buckling, ensuring continuous track guidance for container handling vehicles.
The solution effectively minimizes rail distortion and derailment risks by accommodating thermal expansion and contraction, maintaining smooth operation of container handling vehicles across interconnected rail regions.
Smart Images

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Abstract
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 system. [Background technology]
[0002] FIG. 1 discloses a prior art automated storage and retrieval system 1 having a framework structure 100, and FIGS. 2, 3 and 4 disclose three different prior art container handling vehicles 201, 301, 401 suitable for operating on such a system 1.
[0003] The framework structure 100 comprises upright members 102 and a storage volume comprising storage columns 105 arranged side by side between the upright members 102. In these storage columns 105, storage containers 106, also known as bins, are stacked on top of each other to form stacks 107. The members 102 may typically be made of metal, for example extruded aluminum profiles.
[0004] The framework structure 100 of the automated storage and retrieval system 1 comprises a rail system 108 (i.e., a rail grid) disposed across the top of the framework structure 100, on which a plurality of container handling vehicles 201, 301, 401 can be operated to raise storage containers 106 from storage columns 105, lower storage containers 106 into storage columns, and transport storage containers 106 above storage columns 105. The rail system 108 comprises a first set of parallel rails 110 disposed to guide movement of the container handling vehicles 201, 301, 401 in a first direction X across the top of the framework structure 100, and a second set of parallel rails 111 disposed perpendicular to the first set of rails 110 to guide movement of the container handling vehicles 201, 301, 401 in a second direction Y perpendicular to the first direction X. The containers 106 stored in the columns 105 are accessed by the container handling vehicles 201, 301, 401 through access openings 112 in the rail system 108. The container handling vehicles 201, 301, 401 can move laterally above the storage columns 105, i.e. in a plane parallel to the horizontal XY plane.
[0005] The uprights 102 of the framework 100 may be used to guide the storage containers during their ascent out of and descent into the column 105. The stack 107 of containers 106 is typically freestanding.
[0006] Each prior art container handling vehicle 201, 301, 401 comprises a body 201a, 301a, 401a and first and second sets of wheels 201b, 201c, 301b, 301c, 401b, 401c, which allow lateral movement of the container handling vehicle 201, 301, 401 in the X and Y directions, respectively. In Figures 2, 3 and 4 two wheels of each set are fully visible. The first set of wheels 201b, 301b, 401b are arranged to engage two adjacent rails of the first set of rails 110 and the second set of wheels 201c, 301c, 401c are arranged to engage two adjacent rails of the second set of rails 111. At least one of the sets of wheels 201b, 201c, 301b, 301c, 401b, 401c can be raised and lowered so that the first set of wheels 201b, 301b, 401b and / or the second set of wheels 201c, 301c, 401c can be engaged with the respective set of rails 110, 111 at any one time.
[0007] Each prior art container handling vehicle 201, 301, 401 is also equipped with a lifting device for vertical transport of the storage container 106, e.g. for raising the storage container 106 from the storage column and lowering the storage container 106 into the storage column 105. The lifting device comprises one or more gripping / engaging devices adapted to engage with the storage container 106, which can be lowered from the vehicle 201, 301, 401 such that the position of the gripping / engaging device relative to the vehicle 201, 301, 401 can be adjusted in a third direction Z perpendicular to the first direction X and the second direction Y. Part of the gripping device of the container handling vehicle 301, 401 is shown in Figures 3 and 4, indicated by reference numbers 304, 404. The gripping device of the container handling device 201 is located in the vehicle body 201a in Figure 2.
[0008] By convention, and for the purposes of this application, Z=1 identifies the top layer for storing storage containers below the rail system 108, i.e., the layer immediately below the rail system 108, Z=2 identifies the second layer below the rail system 108, and Z=3 identifies the third layer. In the exemplary prior art disclosed in FIG. 1, Z=8 identifies the bottom layer of storage containers. Similarly, X=1···n and Y=1···n identify the location of each storage column 105 in the horizontal plane. Thus, using the Cartesian coordinate system X, Y, Z shown in FIG. 1 as an example, the storage container identified as 106' in FIG. 1 can be said to occupy storage position X=17, Y=1, Z=6. The container handling vehicles 201, 301, 401 can be said to be moving in layer Z=0, and each storage column 105 can be identified by its X and Y coordinates. Thus, the storage containers shown in FIG. 1 that extend above the rail system 108 are also said to be located at layer Z=0.
[0009] The storage volume of the framework structure 100 is often referred to as a grid 104, and the possible storage locations within this grid are referred to as storage cells. Each storage column may be identified by a location in the X and Y directions, and each storage cell may be identified by a container number in the X, Y and Z directions.
[0010] Each prior art container handling vehicle 201, 301, 401 includes a storage compartment or space for receiving and housing the storage containers 106 as they are transported across the rail system 108. The storage space may include a cavity disposed internally within the vehicle body 201a, as shown in Figures 2 and 4 and described, for example, in WO 2015 / 193278 and WO 2019 / 206487, the contents of which are incorporated herein by reference.
[0011] Figure 3 shows an alternative configuration of a container handling vehicle 301 having a cantilever structure. Such a vehicle is described in detail, for example, in Norwegian Patent No. 317366, the contents of which are also incorporated herein by reference.
[0012] 2 may have a footprint covering an area having dimensions in the X and Y directions approximately equal to the lateral extent of the storage column 105, for example, as described in WO 2015 / 193278, the contents of which are incorporated herein by reference. As used herein, the term "lateral" may mean "horizontal."
[0013] Alternatively, the hollow container handling vehicle 401 may have a footprint larger than the lateral area defined by the storage column 105 as shown in Figures 1 and 4, as disclosed, for example, in WO 2014 / 090684 or WO 2019 / 206487.
[0014] Rail systems 108 typically include rails with grooves in which the vehicle wheels run. Alternatively, the rails may include upwardly protruding elements and the vehicle wheels may include flanges to prevent derailment. These grooves and upwardly protruding elements are collectively known as tracks. Each rail may include one track, or each rail may include two parallel tracks.
[0015] WO 2018 / 146304, the contents of which are incorporated herein by reference, shows a typical configuration of a rail system 108 comprising rails and parallel tracks in both the X and Y directions forming a rail grid.
[0016] In the framework 100, most columns 105 are storage columns 105, i.e. columns 105 where storage containers 106 are stored in stacks 107. However, some columns 105 may have other purposes. In FIG. 1, columns 119 and 120 are such dedicated columns used by container handling vehicles 201, 301, 401 to drop off and / or pick up storage containers 106 so that they can be accessed from outside the framework 100 or transported to an access station (not shown) where they can be transferred outside or inside the framework 100. In the art, such locations are usually called "ports" and the columns where the ports are located are sometimes called "port columns" 119, 120. The transport to the access station may be in any orientation, i.e. horizontal, inclined and / or vertical. For example, storage containers 106 may be placed in random or dedicated columns 105 within the framework structure 100 and then picked up by any container handling vehicle and transported to port columns 119, 120 for further transport to an access station. Note that the term "inclined" refers to the transportation of storage containers 106 having a general transport direction somewhere between horizontal and vertical.
[0017] In FIG. 1 , the first port column 119 may be, for example, a dedicated drop-off port column where the container handling vehicles 201, 301, 401 can drop off storage containers 106 that are accessed or transported to the transfer station, and the second port column 120 may be a dedicated pick-up port column where the container handling vehicles 201, 301, 401 can pick up storage containers 106 that are accessed or transported from the transfer station.
[0018] An access station may typically be a picking or stock station where products are removed from or placed into a storage container 106. At a picking or stock station, the storage container 106 is typically not removed from the automated storage and retrieval system 1 but is returned to the framework 100 again once accessed. A port may also be used to transfer a storage container to another storage facility (e.g., to another framework or to another automated storage and retrieval system), to a transport vehicle (e.g., a train or truck), or to a production facility.
[0019] A conveyor system comprising conveyors is typically used to transport storage containers between the port columns 119, 120 and the access stations.
[0020] If the port columns 119, 120 and the access stations are located at different levels, the conveyor system may include a lift device having a vertical component for vertically transporting the storage containers 106 between the port columns 119, 120 and the access stations.
[0021] A conveyor system may be arranged to transport the storage containers 106 between the different framework structures, for example as described in WO 2014 / 075937, the contents of which are incorporated herein by reference.
[0022] When a storage container 106 stored in one of the columns 105 disclosed in FIG. 1 is to be accessed, one of the container handling vehicles 201, 301, 401 is instructed to retrieve the target storage container 106 from its position and transport it to the drop-off port column 119. This operation includes moving the container handling vehicle 201, 301, 401 to a position above the storage column 105 where the target storage container 106 is located, retrieving the storage container 106 from the storage column 105 using a lifting device (not shown) of the container handling vehicle 201, 301, 401, and transporting the storage container 106 to the drop-off port column 119. If the target storage container 106 is located deep within the stack 107, i.e., one or more other storage containers 106 are located above the target storage container 106, the operation also includes temporarily moving the storage container located above before lifting the target storage container 106 from the storage column 105. This step, sometimes referred to in the art as "mining", may be performed by the same container handling vehicle that is subsequently used to transport the target storage container to the drop-off port column 119, or one or more other cooperating container handling vehicles. Alternatively, or in addition, the automated storage and retrieval system 1 may have container handling vehicles 201, 301, 401 dedicated to the task of temporarily retrieving the storage container 106 from the storage column 105. Once the target storage container 106 has been retrieved from the storage column 105, the temporarily retrieved storage container 106 may be repositioned in the original storage column 105. However, the retrieved storage container 106 may alternatively be transferred to another storage column 105.
[0023] When a storage container 106 is to be stored in one of the columns 105, one of the container handling vehicles 201, 301, 401 is directed to pick up the storage container 106 from the pickup port column 120 and transport it to a position above the storage column 105 where the storage container is to be stored. After any storage container 106 located at or above the target location in the stack 107 has been removed, the container handling vehicle 201, 301, 401 places the storage container 106 in the desired location. The removed storage container 106 may then be placed back into the storage column 105 or transferred to another storage column 105.
[0024] To monitor and control the automated storage and retrieval system 1, for example, the location of each storage container 106 within the framework structure 100, the contents of each storage container 106, and the movements of the container handling vehicles 201, 301, 401 so that the desired storage containers 106 can be delivered to the desired locations at the desired times without the container handling vehicles 201, 301, 401 colliding with each other, the automated storage and retrieval system 1 typically includes a control system 500 that is computerized and typically includes a database for tracking the storage containers 106.
[0025] In situations where two rail systems 108 are to be connected or constructed simultaneously for later connection, only a minimum tolerance on misalignment between the rail systems is permitted. Significant misalignment could result in a vehicle derailing.
[0026] Ambient temperatures or temperature differences within the building or area in which the rail system is located can also pose problems for automated storage and retrieval systems. The rails can expand and contract significantly, resulting in buckling or excessive tension in the rails, potentially causing movement in the rails and ultimately the risk of derailing the container handling vehicles. The expansion and contraction problems depend in part on the length of the rails. Thus, for rail systems of significant length in either the X and / or Y directions, there is an increased risk of movement in the rail system, with its buckling and / or excessive tension. Rail joints suitable for minimizing such buckling and / or excessive tension are described in WO 2020 / 074257.
[0027] However, prior art rail joints do not mitigate all potential problems that may arise when connecting two rail systems, especially rail systems that feature two perpendicular horizontal rails. Rail expansion and / or contraction may also cause lateral movement of the two rail systems relative to one another. The lateral movement may cause the rail joints to buckle and / or become over-tensioned. Buckling and / or over-tension of the rail joints caused by the lateral movement of the rail systems may cause excessive wear on the rail joints as well as derailment of container handling vehicles traveling between the two rail systems.
[0028] It is an object of the present invention to provide an improved rail joint for connecting two rail systems which mitigates or minimizes problems of the prior art. [Prior art documents] [Patent documents]
[0029] [Patent Document 1] International Publication No. 2015 / 193278 [Patent Document 2] International Publication No. 2014 / 090684 [Patent Document 3] International Publication No. 2018 / 146304 Summary of the Invention [Means for solving the problem]
[0030] The invention is defined by the appended claims and the following:
[0031] In a first aspect, the present invention provides a storage system including a first region and a second region of a rail system, each of the first region and the second region having rails with a contoured upper surface defining one or more tracks for supporting a container handling vehicle, each rail of at least a pair of parallel rails in the first region being connected to a corresponding rail of a pair of rails in the second region via an expansion joint, the expansion joint comprising: - first and second rail elements, the rail elements being elongated and configured at first ends to allow the first ends of the first and second rail elements to move relative to one another in a longitudinal direction at a joint region where the first ends overlap; a contoured upper surface defining one or more tracks, the tracks extending from a first rail element through a joint region to a second rail element; Equipped with A storage system is provided in which a second end of a first rail element is pivotally connected to a first region of the rail system about a first vertical axis, and a second end of a second rail element is pivotally connected to a second region of the rail system about a second vertical axis.
[0032] The second ends of the rail elements are pivotally connected such that the first and second regions may move laterally relative to one another, i.e., without distorting or twisting the expansion joint.
[0033] The first rail element is pivotally connected to the first region such that the first rail element may not move longitudinally relative to the first region.
[0034] The second rail element is pivotally connected to the second region such that the second rail element may not move longitudinally relative to the second region.
[0035] The first and second rail elements are pivotally connected to the first and second regions such that the first and second rail elements can pivot transversely to the longitudinal direction.
[0036] The longitudinal direction in which the first rail element and the second rail element may move relative to each other is the same as the longitudinal direction of the rails connected by the expansion joint.
[0037] Each rail of at least one pair of parallel rails extends in the same direction as the corresponding rail to which it is connected.
[0038] A container handling vehicle, which may be supported by the rails, may include at least one set of wheels guided by a track, the track of the expansion joint extending a sufficient distance to guide the container handling vehicle from the first area to the second area.
[0039] In an embodiment of the storage system, the rail system may include two orthogonally extending rails forming a rail grid, the rail system may be supported on vertical column profiles defining a plurality of storage columns in which the storage containers may be stacked on top of each other, each of the storage columns being defined by four of the vertical column profiles, and the rail system may define an access opening above each storage column.
[0040] In an embodiment of the storage system, the expansion joint has a length substantially equal to the length or width of the access opening or storage container.
[0041] In an embodiment of the storage system, a first end of the first rail element includes a male portion and a first end of the second rail element includes a cooperating female portion, the male portion and the female portion configured to interengage within a joint region.
[0042] In an embodiment of the storage system, the longitudinal movement of the first rail element relative to the second rail element is guided by a support profile.
[0043] The support profile can be a longitudinal support profile. The support profile can be positioned to prevent lateral movement between the first and second rail elements such that the first and second rail elements pivot in the same direction about their respective first and second vertical axes during lateral movement of the expansion joint. The support profile can be configured to allow the first end of the rail element to slide within the support profile.
[0044] In an embodiment of the storage system, the support profile may include a first end configured to be pivotable about a first vertical axis and a second end configured to be pivotable about a second vertical axis.
[0045] In an embodiment of the storage system, at least one of the first end and the second end of the support profile may be slidably connected to the first region or the second region, respectively, such that at least one of the first region and the second region may move longitudinally relative to the support profile.
[0046] In an embodiment of the storage system, the support profile comprises a longitudinally extending vertical surface arranged to prevent lateral movement of the first rail element relative to the second rail element, the support profile preferably ensuring that the first and second rail elements pivot in the same direction about their respective first and second vertical axes during lateral movement between the first and second regions.
[0047] In an embodiment of the storage system, the support profile may include an upper horizontal surface arranged to support the first rail element and the second rail element from below.
[0048] In an embodiment of the storage system, the support profile may have a U-shaped cross-section.
[0049] In an embodiment of the storage system, each of the first and second rail elements is pivotally connected to the first and second regions, respectively, by a bracket. The bracket may include a vertically extending connection element for rigidly connecting to the first or second region by a fastener, such as a bolt, and a horizontally extending connection element for pivotally connecting to the second end of the first or second rail element.
[0050] In an embodiment of the storage system, the first and second rail elements can be pivotally connected to the corresponding brackets by fasteners. The fasteners are configured to secure the second ends of the rail elements to the respective brackets and allow pivotal movement of the rail elements relative to the first and second regions. The fasteners can be, for example, bolts or pins having centerlines collinear with the first or second vertical axes.
[0051] In an embodiment of the storage system, at least one of the first end and the second end of the support profile is slidably connected to a corresponding bracket.
[0052] In an embodiment of the storage system, the support profile is supported by at least one of the brackets.
[0053] In an embodiment of the storage system, the first area and the second area each have rails extending in two perpendicular directions forming a rail grid along which container handling vehicles may move in two perpendicular directions.
[0054] In an embodiment of the storage system, each of the first ends of the rail elements can be spaced a distance from the connected rail such that a gap is formed between the first end and the end of the opposing connected rail, the gap allowing for pivotal movement of the rail element relative to the connected rail.
[0055] In embodiments of the storage system, the bracket may include a contoured upper surface defining one or more tracks that form an extension of one or more tracks of the first rail element or second rail element to which the bracket is connected.
[0056] In an embodiment of the storage system, each of the first ends of the rail elements can have a convex perimeter and the bracket can include a corresponding concave perimeter adjacent the concave perimeter, and either the first rail element or the second rail element can pivot relative to their respective brackets without forming a gap between the respective rail element and the bracket.
[0057] In an embodiment of the storage system, the first rail element and the second rail element each provide a contoured upper surface track or portion of each track such that there is a transition for the track or each track at a joint area extending along the expansion joint from the first rail element to the second rail element.
[0058] In a second aspect, the present invention provides an expansion joint for connecting a first region and a second region of a rail system, the expansion joint comprising a first rail element, a second rail element, and two brackets; Each of the first rail element and the second rail element is elongated and includes a first end, a second end, and a portion of a contoured upper surface that defines one or more tracks; the first ends of the first rail element and the second rail element are configured to move relative to one another in a longitudinal direction at a juncture region where they overlap; the contoured upper surface portion extends from the first rail element through the interface region to the second rail element; The second end of the first rail element is pivotally connected to one of the brackets about a first vertical axis, and the second end of the second rail element is pivotally connected to the other bracket about a second vertical axis, each bracket being connectable to either the first region or the second region.
[0059] In an embodiment, the expansion joint may include a support profile having a first end configured to be pivotable about a first vertical axis and a second end configured to be pivotable about a second vertical axis, at least one of the first end and the second end being slidably connected to one of the brackets.
[0060] In further embodiments, the expansion joint according to the second aspect may comprise any of the features disclosed in relation to the expansion joint used in the storage system according to the first aspect.
[0061] In a third aspect, the present invention provides a method for enabling rail expansion / contraction between a first region and a second region of a rail system, each of the first region and the second region having a rail with a contoured upper surface defining one or more tracks for supporting a container handling vehicle, the method comprising: - connecting each rail of at least one pair of parallel rails in a first region to a corresponding rail of a pair of rails in a second region via an expansion joint; The expansion joint includes a first rail element and a second rail element, the rail elements being elongated and configured at the first ends to allow the first ends of the first rail element and the second rail element to move relative to one another in a longitudinal direction at a joint region where they overlap; a contoured upper surface defining one or more tracks, the tracks extending from a first rail element through a joint region to a second rail element; Equipped with A second end of the first rail element is pivotally connected to a first region of the rail system about a first vertical axis, and a second end of the second rail element is pivotally connected to a second region of the rail system about a second vertical axis.
[0062] In further embodiments, the method according to the third aspect may comprise any of the features disclosed in relation to the expansion joint used in the storage system according to the first aspect.
[0063] Alternatively, the method may be referred to as a method for enabling lateral and longitudinal movement between a first region and a second region of a rail system. [Brief description of the drawings]
[0064] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS With reference to the following drawings, an embodiment of the present invention will be described in detail.
[0065] [Figure 1] FIG. 1 is a perspective view of a framework of a prior art automated storage and retrieval system.
[0066] [Diagram 2] FIG. 2 is a perspective view of a prior art container handling vehicle having a centrally located cavity for carrying storage containers therein.
[0067] [Diagram 3] FIG. 3 is a perspective view of a prior art container handling vehicle having a cantilever section for carrying storage containers downward.
[0068] [Figure 4] FIG. 4 is a bottom perspective view of a prior art container handling vehicle showing a lift device.
[0069] [Diagram 5] FIG. 5 is a top perspective view of a first exemplary storage system according to the present invention.
[0070] [Figure 6] FIG. 6 is a top perspective view of a second exemplary storage system according to the present invention.
[0071] [Figure 7] FIG. 7 is a detailed view of a portion of the storage system of FIG.
[0072] [Figure 8] 8-13 are diagrams of a first exemplary expansion joint according to the present invention. [Figure 9] 8-13 are diagrams of a first exemplary expansion joint according to the present invention. [Figure 10] 8-13 are diagrams of a first exemplary expansion joint according to the present invention. [Figure 11] 8-13 are diagrams of a first exemplary expansion joint according to the present invention. [Figure 12] 8-13 are diagrams of a first exemplary expansion joint according to the present invention. [Figure 13] 8-13 are diagrams of a first exemplary expansion joint according to the present invention.
[0073] [Figure 14] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 15] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 16] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 17] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 18] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 19] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 20] 14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention. [Figure 21]14-21 are diagrams of a second exemplary expansion joint in accordance with the present invention.
[0074] [Figure 22] 21-22 are top views of a third exemplary expansion joint in accordance with the present invention. [Figure 23] Same as above DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0075] Embodiments of the invention will now be described in more detail with reference to the accompanying drawings, in which: The drawings are not intended to limit the invention to the subject matter shown.
[0076] When interconnecting separate regions of a rail system featuring rails in two perpendicular horizontal directions, expansion and / or contraction of the rails due to, for example, temperature differences, can cause lateral and longitudinal movement of the regions relative to one another. These movements can result in the rail joints interconnecting the regions being subjected to buckling, excessive tension and / or twisting.
[0077] An exemplary embodiment of a framework structure 100' for a storage system according to the present invention is shown in FIGS.
[0078] The framework structure 100' of FIG. 5 comprises a rail system 108, 108', 108'' featuring three regions 50, 50', 50'' interconnected by a rail joint assembly 10. The regions comprise two orthogonally disposed rails 110, 111 forming a rail grid on which the container handling vehicles 201, 301, 401 may operate. The rail joint assembly 10 can accommodate longitudinal and lateral movements between the two connected regions 50, 50', 50'' such that buckling, twisting and distortion of the rail joint assembly 10 may be avoided.
[0079] The rail joint assembly 10 is hereinafter referred to as an expansion joint 10.
[0080] The framework structure 100' of Figure 6 comprises two regions 50, 50', a first region 50 and a second region 50', interconnected by an expansion joint 10. Each of the first and second regions comprises rails 110, 111 having a contoured upper surface defining one or more tracks 27', 27'' for supporting container handling vehicles 201, 301, 401. Each rail 110 of at least a pair of parallel rails in the first region 50 is connected via an expansion joint 10 to a corresponding rail 110' of a pair of rails in the second region (50').
[0081] 7-13, the expansion joint comprises a first rail element 12 and a second rail element 11. The rail elements 12, 11 are elongated and configured at first ends 22, 23 to allow the first ends 22, 23 of the first rail element and the second rail element to move relative to one another in a longitudinal direction at a junction region 14 where they overlap. The longitudinal direction is the direction in which the rails 110 interconnected by the expansion joint extend. The junction region 14 is defined by a male portion 26 disposed at the first end 22 of the first rail element 12 and a cooperating female portion 28 disposed at the first end 23 of the second rail element 11.
[0082] The expansion joint features a contoured upper surface that defines one or more tracks 27', 27'' that extend from the first rail element 12 through the joint area 14 to the second rail element 11, with reference to FIG. 11. The tracks of the expansion joint are similar to the tracks of the rails 110, 111.
[0083] The possibility of relative movement between the first rail element 12 and the second rail element 11 within the joint region 14 ensures that the expansion joint 10 provides a continuous track 27, 27' between the two regions even if the distance between the first region 50 and the second region 50' changes, for example due to temperature differences causing contraction / expansion of the rail 110.
[0084] In addition to causing a difference in the distance between the first region 50 and the second region 50', the temperature difference may also cause a lateral displacement between the two regions. Such a lateral displacement may cause buckling / twisting of the joints interconnecting the two regions.
[0085] To avoid buckling / twisting of the expansion joints caused by lateral movement between the two interconnected regions, the first rail element 12 has a second end 24 pivotally connected to the first region 50 about a first vertical axis V1, and the second rail element has a second end 25 pivotally connected to the second region 50' about a second vertical axis V2 (see FIG. 10).
[0086] Each of the first rail element 12 and the second rail element 11 is pivotally connected to the first and second regions 50 and 50', respectively, via a bracket 20 using a bolt 18. The bracket 20 features a vertically extending connection element 30 for rigid connection to the first or second region by a fastener 29 (e.g. a bolt for connecting the bracket to a recess 34 in the first or second region) and a horizontally extending connection element 31 for pivotally connecting to the first or second rail element. The bracket 20 is arranged on the periphery of the rail system 108, 108' of the region 50, 50' to which it is connected, with the first vertical axis V1 and the second vertical axis V2 lying in a vertical plane outside the periphery. Each bracket 20 can be connected to the respective region 50, 50' via a recess 34 in the side wall of a rail 111 arranged on the periphery of the rail system 108, 108'.
[0087] In the exemplary expansion joint of Figures 7-13, each of the rail element second ends 24, 25 has a convex perimeter and the bracket 20 has a corresponding concave perimeter adjacent the concave perimeter. This configuration allows both the first rail element 12 and the second rail element 11 to pivot relative to their respective brackets 20 without creating a gap between the respective rail elements 12, 11 and the brackets 20. In this particular embodiment, the pivotal connection between the rail elements 12, 11 and the brackets 20 allows for a wide range of pivotal movement about the vertical axes V1, V2.
[0088] It should be noted that the pivoting connections of the rail elements 12, 11 to the regions 50, 50' do not need to allow for more than a small pivoting movement, for example in the range of 0.5 degrees to 3.0 degrees, to provide the required effect of avoiding buckling / twisting of the expansion joint caused by lateral movement between the two interconnected regions 50, 50'.
[0089] The bracket 20 of FIGS. 7-13 includes a contoured upper surface 32 that defines one or more tracks 27', 27'' that form an extension of the one or more tracks 27', 27'' of the first rail element 12 or second element 11 to which the bracket 20 is connected. The contoured upper surface blocks unused tracks 27''' at the periphery of the first or second regions. The contoured upper surface may provide improved guidance of container handling vehicles passing over the expansion joint, although it is not required.
[0090] Movement of the first rail element 12 in the longitudinal direction relative to the second rail element 11 is guided by the support profile 15. The support profile 15 is supported by a bracket 20 and may be configured such that the first rail element 12 and the second rail element 11 may slide relative to each other within the support profile 15.
[0091] The support profile 15 has a first end 16' configured to be pivotable about a first vertical axis V1 and a second end 16'' configured to be pivotable about a second vertical axis V2. In the illustrated embodiment, the first end 16' of the support profile 15 is slidably connected to the second region 50' via a bracket 20. In other exemplary embodiments, both ends 16', 16'' of the support profile 15 may be slidably connected to the respective regions (see, for example, Figures 15-17). The slidable connection of the support profile 15 to at least one of the regions 50, 50' connected by an expansion joint is necessary to allow for a change in the distance between the two regions 50, 50'.
[0092] The support profile has a substantially U-shaped cross section and features a vertical surface 17 extending in the longitudinal direction of the first and second rail elements and an upper horizontal surface 21. The vertical surface 17 is arranged to prevent lateral movement of the first rail element 12 relative to the second rail element 11. The upper horizontal surface 21 is arranged to support the first rail element 11 and the second rail element 12 from below. The support profile 15 ensures that the first and second rail elements 12, 11 pivot in the same direction about their respective first and second vertical axes during lateral movement between the two regions 50, 50'.
[0093] A portion of a storage system featuring a second exemplary embodiment of an expansion joint 10' is shown in FIG. 14, with details of the expansion joint 10' shown in FIGS. 15-21.
[0094] The function and effect of the expansion joint 10' are similar to those of the expansion joints in FIGS.
[0095] Considering the first exemplary expansion joint 10, the primary differentiating feature of the second exemplary expansion joint 10' is the manner in which the first rail element 12 and the second rail element 11 are pivotally connected to the two regions 50, 50' of the rail system 108, 108'. Additionally, the bracket 20' does not provide an upper contoured surface that forms an extension between the rail elements 12, 11 and the rails 110, 110' that are interconnected by the expansion joint 10'. Instead, the rail elements 12, 11 themselves are extended to provide the necessary upper surface.
[0096] The first and second rail elements 12, 11 are pivotally connected at second ends 24, 25 to respective regions 50, 50' via pins 19 disposed in a bracket 20' (see FIG. 15).
[0097] The first end 16' and the second end 16'' of the support profile 15' are provided with an elongated through hole 28 and are slidably connected to the bracket 20' via a bolt 26a and a sleeve 26b. The bolt 26a further fastens the rail elements 12, 11 to the bracket 20' via a through hole 27.
[0098] To allow the necessary pivoting movement of the rail elements 12, 11 relative to the bracket 20' or the connection area 50, 50', the diameter of the through holes 27 of the rail elements 12, 11 and the width of the elongated through holes 28 of the support profile 15' are greater than the diameter of the sleeve 26b. In this particular embodiment, the diameter and width of the through holes 27, 28 are 11 mm and the diameter of the sleeve is 9.5 mm, allowing a pivoting movement of about 2 degrees about the first and second vertical axes V1, V2.
[0099] Furthermore, due to the straight or flat edges of the second ends 24, 25 of the rail elements 12, 11, the pivoting movement requires that the second ends 24, 25 of the rail elements be positioned a small distance away from the connected rail 110, 110' forming a gap 33. In this particular embodiment, the gap 33 between the second ends 24, 25 and the corresponding rail 110, 110' is approximately 5 mm.
[0100] A third exemplary expansion joint 10'' is shown in Figures 22 and 23. The expansion joint 10'' has most features in common with the expansion joint of Figures 15-21, differing only in that it is suited to a slightly different rail system configuration. In the third exemplary expansion joint 10'', the second ends 24, 25 of the rail elements 12, 11 do not intersect the perimeter of the rail system 108, 108' to which the expansion joint 10'' is connected. [Explanation of symbols]
[0101] List of Reference Numbers 1. Prior Art Automatic Storage and Retrieval System 10,10',10'' expansion joint 11 Second Rail Element 12 Fist rail elements 14 Joint area 15 Support Profile 16' First end (of the support profile) 16'' (second end of support profile) 17 Vertical surface (of the support profile) 18 Fasteners, bolts 19 Fasteners, pins 20 Bracket 21 Upper horizontal surface (of the support profile) 22 (of the first rail element) first end 23 (of the second rail element) first end 24 (of the first rail element) second end 25 (of the second rail element) second end 26 Male 27',27'' orbit 28 Female 29 Fastener (for connecting the bracket to the area of the rail system) 30 (of a bracket) a vertically extending connecting element 31 (of a bracket) horizontally extending connecting element 32 Contoured top surface (of bracket) 33 Gap 34 Recess 100 Frame structure 102 Upright members of frame structures 104 Storage Grid 105 Storage Column 106 Storage Container 106' Specific location of storage container 107 Stack 108 Rail System 110 Parallel rail in the first direction (X) 110a: first rail in first direction (X) 110b second rail in first direction (X) 111 Parallel rail in the second direction (Y) 111a First rail in second direction (Y) 111b second rail in second direction (Y) 112 Access opening 119 First Port Column 120 Second Port Column 201 Prior Art Container Handling Vehicles 201a Body of container handling vehicle 201 201b Drive means / wheel arrangement, first direction (X) 201c Drive means / wheel arrangement, second direction (Y) 301 Prior Art Cantilever Container Handling Vehicle 301a Body of container handling vehicle 301 301b Driving means in the first direction (X) 301c second direction (Y) driving means 401 Prior art container handling vehicles 401a Body of container handling vehicle 401 401b Driving means in the first direction (X) 401c Driving means in the second direction (Y) Y Second Direction Z third direction
Claims
1. A storage system comprising a first region (50) and a second region (50') of a rail system (108), each of said first region and said second region having a rail (110, 111) with a contoured upper surface defining one or more tracks (27', 27'') for supporting a container handling vehicle (201, 301, 401), each rail of at least a pair of parallel rails (110) in said first region (50) being connected via a telescopic joint (10, 10') to a corresponding rail of a pair of rails (110') in said second region (50'), said telescopic joint comprising - a first rail element (12) and a second rail element (11), said rail elements (12, 11) being elongate and configured at first ends (22, 23) thereof such that the first ends (22, 23) of said first rail element and said second rail element are movable longitudinally relative to each other in a joint region (14) where they overlap, the first rail element and the second rail element, - a contoured upper surface defining one or more tracks (27', 27''), and said tracks (27', 27'') extending from said first rail element (12) through said joint region (14) to said second rail element (11), a second end (24) of said first rail element (12) being pivotally connected about a first vertical axis (V1) to said first region (50) of said rail system (108), a second end (25) of said second rail element (11) being pivotally connected about a second vertical axis (V2) to said second region (50') of said rail system (108). A storage system.
2. The storage system according to claim 1, wherein the movement of said first rail element (12) in said longitudinal direction relative to said second rail element (11) is guided by a support profile (15).
3. The storage system according to claim 2, wherein said support profile (15) comprises a first end (16') configured to pivot about said first vertical axis and a second end (16'') configured to pivot about said second vertical axis.
4. The storage system according to claim 3, wherein at least one of the first end (16') and the second end (16'') of the support profile (15) is slidably connected to the first region (50) or the second region (50'), respectively.
5. The storage system according to any one of claims 2 to 4, wherein the support profile comprises a vertical plane (17) extending in the longitudinal direction, and the vertical plane is arranged to prevent lateral movement of the first rail element (12) relative to the second rail element (11).
6. The storage system according to any one of claims 2 to 4, wherein the support profile (15) comprises an upper horizontal plane (21) arranged to support the first rail element (12) and the second rail element (11) from below.
7. The storage system according to any one of claims 2 to 4, wherein the support profile has a U-shaped cross-section.
8. The storage system according to any one of claims 1 to 4, wherein each of the first rail element and the second rail element is pivotally connected to the first region and the second region, respectively, by a bracket (20).
9. The storage system according to claim 8, wherein the first rail element (12) and the second rail element (11) are pivotally connected to the corresponding brackets (20) by fasteners (18, 19).
10. Each of the first rail element and the second rail element is pivotally connected to the first region and the second region, respectively, by a bracket (20), and at least one of the first end (16') and the second end (16'') of the support profile (15) is slidably connected to one of the brackets (20). The storage system according to claim 3.
11. The movement of the first rail element (12) in the longitudinal direction relative to the second rail element (11) is guided by a support profile (15), and the support profile (15) is supported by at least one of the brackets (20). The storage system according to claim 8.
12. Each of the first region (50) and the second region (50') forms a rail grid and has rails (110, 111) extending in two perpendicular directions. The container handling vehicle (201, 301, 401) can move in two perpendicular directions on the rail grid. The storage system according to any one of claims 1 to 4.
13. An expansion joint for connecting a first region (50) and a second region (50') of a rail system (108), the expansion joint (10) comprising a first rail element (12), a second rail element (11), and two brackets (20). Each of the first rail element and the second rail element is elongated and includes a first end (22, 23), a second end (24, 25), and a part of a contoured upper surface defining one or more tracks (27', 27''). The first ends (22, 23) of the first rail element and the second rail element are configured to move longitudinally relative to each other in an overlapping joint region (14). The contoured part of the upper surface extends from the first rail element (12) through the joint region (14) to the second rail element (11). The second end (24) of the first rail element (12) is pivotally connected to one of the brackets (20) about a first vertical axis (V1), and the second end (25) of the second rail element (11) is pivotally connected to the other bracket (20) about a second vertical axis (V2). Each bracket (20) is connectable to the first region (50) or the second region (50'). An expansion joint.
14. A support profile (15) having a first end (16') configured to pivot about the first vertical axis and a second end (16'') configured to pivot about the second vertical axis. At least one of the first end (16') and the second end (16'') is slidably connected to one of the brackets (20). The expansion joint according to claim 13.
15. A method for enabling rail expansion / contraction between a first region (50) and a second region (50') of a rail system (108), wherein each of the first region and the second region has a rail (110, 111) with a contoured upper surface defining one or more tracks (27', 27'') for supporting a container handling vehicle (201, 301, 401). The method comprises - connecting each rail of at least a pair of parallel rails (110) in the first region (50) to a corresponding rail of a pair of rails (110') in the second region (50') via expansion joints (10, 10'). including The expansion joint comprises a first rail element (12) and a second rail element (11), the rail elements (12, 11) being elongate and configured at a first end (22, 23) thereof such that the first ends of the first rail element and the second rail element are movable longitudinally relative to each other in a joint region (14) where they overlap, the first rail element and the second rail element; a contoured upper surface defining one or more tracks (27', 27''); comprising the tracks (27', 27'') extending from the first rail element (12) through the joint region (14) to the second rail element (11); wherein a second end (24) of the first rail element (12) is pivotally connected to the first region (50) of the rail system (108) about a first vertical axis (V1), and a second end (25) of the second rail element (11) is pivotally connected to the second region (50') of the rail system (108) about a second vertical axis (V2).