STORAGE SYSTEM
20220234827 · 2022-07-28
Assignee
Inventors
Cpc classification
E04B2001/5881
FIXED CONSTRUCTIONS
E04B1/2403
FIXED CONSTRUCTIONS
International classification
Abstract
A storage system includes a storage grid structure and multiple remotely operated storage bin handling vehicles. The storage grid structure includes vertical storage column profiles defining multiple storage columns in which storage bins can be stored one on top of another in vertical stacks. Each of the storage column profiles have an upper end and a lower end and the storage column profiles are interconnected at their upper ends by rails forming a horizontal rail grid upon which the bin handling vehicles may move in two perpendicular directions. The storage grid structure features grid supports include multiple base angle brackets. Each base angle bracket includes a vertical flange and a horizontal flange. The vertical flange is connected to a storage column profile. The horizontal flange is connected by bolts to a floor upon which the storage grid is arranged and a web interconnecting the flanges. Each of the flanges has a first end and a second end. The first end is arranged closer than the second end to the lower end of the storage column profile to which the vertical flange is connected. The web has a recess arranged between the first ends of the flanges.
Claims
1. A storage system comprising a storage grid structure and multiple remotely operated storage bin handling vehicles, the storage grid structure comprises vertical storage column profiles defining multiple storage columns in which storage bins can be stored one on top of another in vertical stacks, each of the storage column profiles have an upper end and a lower end and the storage column profiles are interconnected at the upper ends by rails forming a horizontal rail grid upon which the bin handling vehicles may move in two perpendicular directions, wherein the storage grid structure features grid supports comprise multiple base angle brackets, each base angle bracket comprises a vertical flange connected to a storage column profile, a horizontal flange connected by bolts to a floor upon which the storage grid is arranged and a web interconnecting the flanges, each of the flanges comprises a first end and a second end, wherein the first end is arranged closer than the second end to the lower end of the storage column profile to which the vertical flange is connected, and the web has a recess arranged between the first ends of the flanges.
2. The storage system according to claim 1, wherein the lower end of each of the storage column profiles is arranged upon a levelling foot comprising a horizontally moveable levelling device, the levelling device may extend horizontally beyond a lateral cross-section of the storage column profile, and the recess is sized to accommodate the levelling device.
3. The storage system according to claim 2, wherein the recess is higher than the levelling device and wider than a maximum length the levelling device may extend beyond the lateral cross-section of the storage column profile during use.
4. The storage system according to claim 1, wherein the first end of the vertical flange is at a level of or above the lower end of the storage column profile.
5. The storage system according to claim 1, wherein the horizontal flange is at the same level as the floor or at an upper level of a grid guiding rail arranged upon the floor.
6. The storage system according to claim 1, wherein the web comprises an inclined upper edge extending between the second ends of the flanges.
7. The storage system according to claim 1, wherein each storage column profile has a cross-section comprising a hollow centre section and four corner sections, each corner section comprises two perpendicular bin guiding plates for accommodating a corner of a storage bin, and the vertical flange has a width (W1) allowing connection to the centre section without crossing a plane (P) of an adjacent bin guiding plate, such that the base angle bracket may be connected to a storage column profile without interfering with a storage bin whose corner is accommodated by a corner section comprising the adjacent bin guiding plate.
8. The storage system according to claim 7, wherein two bin guiding plates, one of each of two corner sections, are parallel and extend in the same direction forming a recess delimited by the two bin guiding plates and an external surface of the centre section, and the recess has a width (W2) suitable for accommodating the vertical flange.
9. The storage system according to claim 1, comprising multiple rail angle brackets connecting the storage profile columns to the rails, each rail angle bracket comprises a vertical flange connected to a storage column profile and a horizontal flange connected to a rail arranged at the upper end of the storage column profile.
10. The storage system according to claim 9, wherein the vertical flange and the horizontal flange of the rail angle bracket have a maximum width equal to the width (W2) of the recess of the storage column profile.
11. The storage system according to claim 8, comprising multiple support struts arranged between at least some neighbouring storage column profiles, each support strut having a maximum width equal to the width (W2) of the recess of the storage column profiles, such that the support strut is connected to the centre sections of the neighbouring storage column profiles without crossing a plane (P) of an adjacent bin guiding plate.
12. The storage system according to claim 11, wherein the support struts comprise vertically inclined support struts, horizontal support struts or a combination thereof.
13. A method of earthquake reinforcing a storage grid structure of a storage system, the storage grid structure is arranged on a floor and comprises vertical storage column profiles defining multiple storage columns in which storage bins can be stored one on top of another in vertical stacks, each of the storage column profiles have an upper end and a lower end and the storage column profiles are interconnected at the upper ends by rails forming a horizontal rail grid upon which the bin handling vehicles may move in two perpendicular directions, wherein the method comprises the steps of: a) connecting a base angle bracket to a storage column profile and to the floor by use of bolts, the base angle bracket comprises a vertical flange for connection to a storage column profile, a horizontal flange for connection to the floor and a web interconnecting the flanges, each of the flanges comprises a first end and a second end, such that the first end is arranged closer than the second end to the lower end of the storage column profile to which the vertical flange is connected; and b) repeating step a) until multiple storage column profiles are connected to a base angel bracket and the storage grid structure has a sufficient resistance to lateral forces.
14. The method according to claim 13, wherein the base angle brackets connected in step b) comprises angle brackets arranged in four different directions staggered by 90 degrees.
15. The method according to claim 13, comprising a step of arranging rail angle brackets connecting the storage profile columns to the rails.
16. The method according to claim 13, comprising a step of providing support struts connecting at least some neighbouring storage column profiles.
Description
SHORT DESCRIPTION OF THE DRAWINGS
[0050] Embodiments of the invention will now be described in greater detail by way of example only and with reference to the following drawings:
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DETAILED DESCRIPTION OF THE INVENTION
[0061] As discussed above, the prior art storage system shown in
[0062] The grid structure 20 of the prior art storage system in
[0063] A cross-sectional view of a storage column 2, made up of four prior art profiles 1, is shown in
[0064] An exemplary storage grid structure 20 according to the invention is shown in
[0065] An exemplary first grid support element 6 of the exemplary storage grid 20 is shown in
[0066] The storage grid structure comprises a horizontal grid of guiding rails 25 (i.e. grid guiding rails). The function of the guiding rails is to facilitate the accurate positioning of the storage column profiles. In the exemplary embodiment, the base angle bracket is connected to the floor via through-holes (not shown) in the guiding rails. The vertical and horizontal flanges may be connected to the storage column profile and the floor, by use of suitable bolts 32,33. The bolts 32 connecting the vertical flange to the storage column profile are commonly through bolts and may be used to connect two base angle brackets connected at opposite sides of a storage column profile. In alternative embodiments, the vertical flange may also be riveted to the storage column profile. The bolts 33 connecting the base angle bracket 6 to the floor 16 may be any type of bolt suitable for the material or construction of the specific floor upon which the storage grid structure is arranged, e.g. a bolt having a concrete anchor.
[0067] Having the base angel brackets 6 connected to the floor 16 and the storage column profiles is highly advantageous in that movement of the storage column profiles, and consequently the storage grid structure, relative to the floor is restricted in both lateral and vertical directions. In case of an earthquake, having the storage grid structure following the movement of the floor 6 is believed to at least minimize the potential damage caused to the storage system. Further, having the storage column profiles connected to the floor also prevents them from moving relative to each other. If the storage column profiles could move relative to each other during an earthquake, even a relatively weak earthquake would cause many of the containers stacked within the storage columns to become stuck. Due to the interconnection of the different elements of the storage grid structure, it is commonly not required to have a base angel bracket connected to each of the storage column profiles.
[0068] In the exemplary storage grid structure, each storage column profile 1 is arranged upon a levelling foot 21. In practice, the floor 16 upon which the storage grid structure 20 is to be arranged will not have a sufficiently even surface, and each storage column profile is commonly levelled to provide a level grid of rails 5 upon which the remotely operated vehicles 40 may move, see description of prior art and
[0069] To allow connection of the base angle bracket to the base and the centre section of a storage column profile, the web 24 of the base angel bracket features a recess 23 arranged between the first ends 14,15 of the flanges 12,13 to accommodate the levelling device 22. The recess 23 extends higher than the levelling device 22 and is deeper than the maximum length the levelling device 22 may extend beyond the lateral cross-section of the storage column profile during use. The recess 23 ensures that the mounting of the base angle brackets 6 is both simple, cost-efficient and does not require any intermediate connecting elements between the base angle bracket 6, the storage column profile 1 and the floor 16. In addition to the advantageous mounting, the disclosed base angle brackets 6 may also be manufactured in a very cost-efficient and simple manner by making a suitable steel sheet template wherein the required vertical and horizontal flanges are obtained by folding/bending two edges of the steel sheet template. That is, the base angle bracket 6 is made up of a single steel sheet, wherein the flanges are sections of the steel sheet being bent into respective planes being perpendicular to the section of the steel sheet making up the web.
[0070] The number of base angle brackets 6 used to support a storage grid structure 20 may vary depending on the support requirements and/or a cost/benefit analysis regarding an earthquake reinforcement. However, a free-standing storage grid structure will commonly comprise multiple base angle brackets arranged in four different directions staggered by 90 degrees.
[0071] Exemplary second grid support elements are shown in
[0072] Exemplary third grid support elements are shown in
[0073] The support struts may be vertically inclined support struts 31a, horizontal support struts 31b or a combination thereof. In the exemplary storage grid structure, the support struts are riveted to the centre section of the respective storage column profiles. Connecting the support struts by rivets allows for easy mounting of the support struts on an existing storage grid structure. However, the support struts may also be connected by for instance bolts as described for the base angle brackets.
[0074] The exemplary storage grid structure 20 in