System and method for circulating gas within an automated grid-based storage and recovery system

The integration of ventilation columns and ducts with adjustable inlets in automated storage systems addresses uneven airflow issues, ensuring consistent environmental conditions and improved cooling and fire suppression.

JP7775294B2Active Publication Date: 2025-11-25AUTOSTORE TECH AS
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Patent Information

Application Number
JP2023515754
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-09-11
Filing Date
2021-09-01
Publication Date
2025-11-25
Estimated Expiration
2041-09-01

AI Technical Summary

Technical Problem

Existing automated storage and retrieval systems face challenges in providing uniform environmental conditions, particularly airflow, to storage containers located in the middle of the storage system, leading to uneven cooling and potential isolation of containers.

Method used

Incorporating ventilation columns between storage columns with fans and ducts that circulate gas through under-stack voids and inlets, allowing for uniform airflow distribution using adjustable inlet sizes and sensors for quality control.

Benefits of technology

Ensures uniform airflow and environmental conditions across all storage containers, enhancing cooling efficiency and fire suppression capabilities.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

The present invention relates to an automated grid-based storage and retrieval system and a method for circulating gas therein. The system includes a skeletal structure (100) comprising upright members (102) and a grid of horizontal rails (110) provided at upper ends of the upright members (102), the skeletal structure (100) defining a storage volume comprising a plurality of columns (105) arranged in a grid pattern below the horizontal rails (110) between the upright members (102), a plurality of storage containers (106) stacked vertically in stacks of columns (107) to provide a plurality of storage columns (105), an under-stack void (402) extending beneath the stack of storage containers, a plurality of inlets (403) to the under-stack void (402) between the stack of storage containers, and at least one column arranged between the storage columns that does not have a storage container.
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Description

[Technical Field]

[0001] FIELD OF THE INVENTION The present invention relates to automated storage and retrieval systems for the storage and retrieval of containers, and more particularly to a system and method for ventilating an automated storage and retrieval system. [Background technology]

[0002] Background and Prior Art FIG. 1 discloses a typical prior art automated storage and retrieval system 1 with a framework 100, and FIGS. 2 and 3 disclose two different prior art container handling vehicles 201, 301 suitable for operating on such a system 1.

[0003] The skeletal structure 100 comprises upright members 102, horizontal members 103, and a storage volume comprising storage columns 105 arranged side by side between the upright members 102 and the horizontal members 103. In these storage columns 105, storage containers 106, also known as receptacles, are stacked on top of each other to form stacks 107. The members 102, 103 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 arranged across the top of the framework structure 100, with a plurality of container handling vehicles 201, 301 operable on the rail system 108 to lift storage containers 106 from storage columns 105, lower storage containers 106 into storage columns 105, and transport storage containers 106 up the storage columns 105. The rail system 108 comprises a first set 110 of parallel rails arranged to guide movement of the container handling vehicles 201, 301 in a first direction X across the top of the framework structure 100, and a second set 111 of parallel rails arranged perpendicular to the first set of rails 110 for guiding movement of the container handling vehicles 201, 301 in a second direction Y that is perpendicular to the first direction X. The containers 106 stored in the columns 105 are accessed by the container handling vehicles through access openings 112 in the rail system 108. The container handling vehicles 201, 301 can move laterally above the storage columns 105, ie in a plane that is parallel to the horizontal XY plane.

[0005] The uprights 102 of the skeletal structure 100 can be used to guide the storage containers during lifting and lowering of the containers out of and into the columns 105. The stacks 107 of containers 106 are typically freestanding.

[0006] Each prior art container handling vehicle 201, 301 comprises a carbody 201a, 301a and first and second sets of wheels 201b, 301b, 201c, 301c that respectively enable lateral movement of the container handling vehicle 201, 301 in the X and Y directions. In Figures 2 and 3, two wheels in each set are fully visible. The first set of wheels 201b, 301b are arranged to engage two adjacent rails of the first set of rails 110, and the second set of wheels 201c, 301c are arranged to engage two adjacent rails of the second set of rails 111. At least one of the sets of wheels 201b, 301b, 201c, 301c can be raised and lowered so that the first set of wheels 201b, 301b and / or the second set of wheels 201c, 301c can be engaged with the respective set of rails 110, 111 at any one time.

[0007] Each prior art container handling vehicle 201, 301 also includes a lifting device (not shown) for vertical transportation of the storage containers 106 (e.g., for lifting 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 / engaging devices adapted to engage the storage containers 106, and the gripping / engaging devices can be lowered from the vehicle 201, 301 such that the position of the gripping / engaging devices relative to the vehicle 201, 301 can be adjusted in a third direction Z that is orthogonal to the first direction X and the second direction Y. A portion of the gripping device of the container handling vehicle 301 is shown in FIG. 3 and designated by reference numeral 304. The gripping device of the container handling device 201 is located within the vehicle body 301a of FIG. 2.

[0008] As before, and for purposes of this application, Z=1 identifies the top layer of storage containers, i.e., the layer immediately below rail system 108, Z=2 identifies the second layer below rail system 108, Z=3 identifies the third layer, and so on. In the exemplary prior art disclosed in FIG. 1, Z=8 identifies the lowest bottom layer of storage containers. Similarly, X=1...n and Y=1...n identify the position of each storage column 105 in the horizontal plane. Consequently, 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 location X=10, Y=2, Z=3, the container handling vehicle 201, 301 can be said to travel at layer Z=0, and each storage column 105 can be identified by its X and Y coordinates.

[0009] The storage volume of the skeleton 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 position in the X and Y directions, while 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 includes a storage compartment or space for receiving and storing the storage containers 106 as they are transported across the rail system 108. The storage space may include a centrally arranged cavity within the vehicle body 201 a, as shown in FIG. 2 and as described, for example, in WO 2015 / 193278 A1 (Patent Document 1), the contents of which are incorporated herein by reference.

[0011] 3 shows an alternative configuration of a container handling vehicle 301 with a cantilever structure. Such a vehicle is described in detail, for example, in No. 317366, the contents of which are also incorporated herein by reference.

[0012] 2 may have a footprint covering an area with dimensions in the X and Y directions generally equal to the lateral extent of a storage column 105, as described, for example, in WO 2015 / 193278 A1, the contents of which are incorporated herein by reference. As used herein, the term "lateral" may mean "horizontal."

[0013] Alternatively, the central hollow container handling vehicle 101 may have a footprint that is larger than the lateral area defined by the storage columns 105, as disclosed, for example, in WO2014 / 090684A1 (Patent Document 2).

[0014] Rail system 108 typically includes rails with grooves along which the vehicle wheels run. Alternatively, the rails may include upwardly projecting elements, in which case the vehicle wheels include flanges to prevent derailment. These grooves and upwardly projecting elements are collectively known as tracks. Each rail may include one track, or each rail may include two parallel tracks.

[0015] WO2018 / 146304 (Patent Document 3), the contents of which are incorporated herein by reference, illustrates a typical configuration of a rail system 108 comprising rails and parallel tracks in both the X and Y directions.

[0016] In the skeleton structure 100, most of the columns 105 are storage columns 105, i.e., columns 105 where storage containers 106 are stored in stacks 107. However, some columns 105 may have other purposes. In FIG. 1 , columns 119 and 120 are such special-purpose columns used by container handling vehicles 201, 301 to unload and / or load storage containers 106 so that they can be transported to access stations (not shown), where they can be accessed from outside the skeleton structure 100 or transferred in and out of the skeleton structure 100. In the art, such locations are typically referred to as "ports," and the columns in which the ports are located may be referred to as "port columns" 119, 120. Transport to the access stations can be horizontal, diagonal, and / or vertical. For example, storage containers 106 may be installed in random or dedicated columns 105 within the framework structure 100, then loaded by any container handling vehicle and transported to port columns 119, 120 for further transport to an access station. Note that the term "diagonal" refers to the transport of storage containers 106 having a general transport orientation somewhere between horizontal and vertical.

[0017] In FIG. 1 , the first port column 119 may be, for example, a dedicated loading port column where container handling vehicles 201, 301 may unload storage containers 106 to be transported to an access or transfer station, and the second port column 120 may be a dedicated loading port column where container handling vehicles 201, 301 may load storage containers 106 being transported from an access or transfer station.

[0018] An access station may typically be a picking or stocking station where product items are removed from or placed into storage containers 106. At a picking or stocking station, the storage containers 106 are typically not removed from the automated storage and retrieval system 1, but are accessed and then placed back into the backbone structure 100. Ports may also be used to transfer storage containers to another storage facility (e.g., another backbone structure or another automated storage and retrieval system), to a transport vehicle (e.g., a train or lorry), or to a production facility.

[0019] A conveyor system, typically comprising conveyors, is employed 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 on different levels, the conveyor system may include a lifting device with a vertical component for vertically transporting the storage containers 106 between the port columns 119, 120 and the access stations.

[0021] The conveyor system may be arranged to transport storage containers 106 between different skeletal structures, for example as described in WO2014 / 075937A1 (Patent Document 4), the contents of which are incorporated herein by reference.

[0022] 1 is to be accessed, one of the container handling vehicles 201, 301 is commanded to retrieve the target storage container 106 from its location and transport it to the loading port column 119. This operation involves moving the container handling vehicle 201, 301 to a location above the storage column 105 in which the target storage container 106 is located, using a lifting device (not shown) on the container handling vehicle 201, 301 to retrieve the storage container 106 from the storage column 105, and transporting the storage container 106 to the loading port column 119. If the target storage container 106 is located deep within the stack 107 and one or more other storage containers 106 are located above the target storage container 106, the operation also involves temporarily moving the storage container(s) located above prior to raising the target storage container 106 from the storage column 105. This step, sometimes referred to in the art as "digging," may then be performed using the same container handling vehicle used to transport the target storage container to the loading port column 119, or may be performed using 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 specifically dedicated to the task of temporarily removing the storage container 106 from the storage column 105. Once the target storage container 106 is removed from the storage column 105, the temporarily removed storage container 106 may be relocated into the original storage column 105. However, the removed storage container 106 may alternatively be relocated 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 is commanded to load the storage container 106 from the load port column 120 and transport it to a location above the storage column 105 where it is to be stored. After any storage container 106 located at or above the target location in the stack 107 is removed, the container handling vehicle 201, 301 places the storage container 106 in the desired location. The removed storage container 106 can then be lowered back into the storage column 105 or relocated to another storage column 105.

[0024] To monitor and control the automated storage and retrieval system 1 (e.g., to monitor and control the location of each storage container 106 within the skeletal structure 100, the contents of each storage container 106, and the movements of the container handling vehicles 201, 301 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 colliding with each other), the automated storage and retrieval system 1 typically includes a control system 500, which is computerized and typically includes a database for tracking the storage containers 106.

[0025] Some of the above systems 1 may be used to store product items that require a certain environment. For example, some types of food require a low-temperature environment (typically temperatures between 1°C and 6°C), and some types of food require even lower-temperature environments (typically temperatures below -15°C). If live plants are stored in the system, a desired gas mixture (a mixture of oxygen, nitrogen, and carbon dioxide) may be required. Such plants and other product items may also require a certain air humidity (humid air or dry air). Flammable product items, such as oil / gas-containing products and fireworks, may be advantageously stored in an oxygen-free environment. Here, it may be desirable to distribute a gas, such as nitrogen, into containers within the storage system. Dispersion of fire suppression gas into such storage and retrieval systems may also be appropriate for extinguishing fires.

[0026] In buildings where such storage systems are located, ventilation systems are typically used to provide the desired environment. However, because the purpose of such storage systems is to store containers in stacks adjacent to one another, providing a uniform environment for all product items stored within the storage system is a challenge. Specifically, when the system is fully filled with storage containers, airflow through the system is a challenge. If there is no gas movement along the sides of the storage container, the storage container becomes isolated. This can lead to, for example, a slow cooling process.

[0027] WO2016 / 193419 (Patent Document 5) discloses a storage system in which containers are cooled during storage within a grid. The cooling system includes a quencher for cooling the air and a fan above the grid that circulates cooled air through the storage system by drawing air through the system into the open space below the stack of storage containers so that the air is circulated through the stack, moderated, or moderated in temperature. The fan is positioned externally, on the side of the grid, above a bounded volume that draws air from the multiple stacks. As air is drawn in from outside the grid, airflow is highest near the fan, e.g., near the edge of the grid, and decreases toward the center of the grid.

[0028] A problem with prior art solutions is that it is difficult to provide storage containers in the middle of a storage system with the same environment as storage containers on the outer periphery of the storage system.

[0029] In light of the above, it would be desirable to provide an automated storage and retrieval system and method of operating such a system that solves or at least alleviates one or more of the aforementioned problems associated with the use of prior art storage and retrieval systems. [Prior art documents] [Patent documents]

[0030] [Patent Document 1] International Publication No. 2015 / 193278 [Patent Document 2] International Publication No. 2014 / 090684 [Patent Document 3] International Publication No. 2018 / 146304 [Patent Document 4] International Publication No. 2014 / 075937 [Patent Document 5] International Publication No. 2016 / 193419 Summary of the Invention [Means for solving the problem]

[0031] (Summary of the Invention) The present invention is set out and characterized in the independent claims, while the dependent claims describe further characteristics of the invention.

[0032] In a first aspect, the present invention relates to an automated grid-based storage and retrieval system, the system comprising: - a skeletal structure comprising upright members and a grid of horizontal rails provided at upper ends of the upright members, the skeletal structure defining a storage volume comprising a plurality of columns arranged in a grid pattern below the horizontal rails between the upright members; - a plurality of storage containers stacked vertically in a stack in a column to provide a plurality of storage columns; - an under-stack void extending beneath the stack of storage containers; - multiple entrances to the under-stack void between stacks of storage containers; - at least one column arranged between the storage columns without storage containers to provide a ventilation column, the ventilation column including a fan, a plurality of duct walls surrounding the ventilation column defining a duct having a first end adjacent the horizontal rail and a second end adjacent the under-stack void, the fan arranged to circulate gas along a side of the stack, through the plurality of inlets, the under-stack void, and through the duct; Equipped with.

[0033] The benefit of providing ventilation column(s) between storage columns is uniform gas flow, for example, to provide storage containers in the middle of the grid with the same environment as storage containers at the outer periphery of the storage system.

[0034] In one embodiment, the total area of ​​each of the multiple inlets may increase with the inlet's horizontal distance from the ventilation column, for example, with smaller openings closer to the duct where the airflow is stronger in the under-stack void and larger openings further away from the duct where the airflow is weaker to create a more uniform gas flow between the storage columns.

[0035] In one embodiment, the system may further include a nozzle plate arranged at each of the plurality of inlets, the nozzle plate including a plurality of holes, the total area of ​​the plurality of holes increasing with the distance of the nozzle plate from the ventilation column. The nozzle plate is easier to fit than adjusting the size of the inlets, allowing for easier reconfiguration of the ventilation system.

[0036] In one embodiment, the system may further include a plurality of liftable floor panels arranged at the bottom of each storage column, the liftable floor panels providing an under-stack void. The liftable floor panels are easy to install. In one embodiment, a plurality of entrances to the under-stack void are defined by gaps between adjacent liftable floor panels. Varying the gaps between adjacent plates varies the total area of ​​each entrance.

[0037] In one embodiment, each of the elevating floor panels may include a support plate for supporting a stack of storage containers and a plurality of feet adapted to elevate the support plate. The support plate and feet may be one piece or may be made from separate pieces connected by fasteners. In one embodiment, the support plate may be made from metal and the plurality of feet may be made from plastic.

[0038] In one embodiment, the liftable floor panel may be made from a sheet metal plate, with a central portion of the sheet metal plate forming a support plate and multiple outer portions of the sheet metal plate arranged perpendicular to the central portion forming multiple feet. The outer portions of the sheet metal may include openings that allow gas flow below the floor panel and / or tubes to pass therethrough.

[0039] In one embodiment, the duct may include at least one sensor arranged to measure at least one quality of the gas flowing through the duct. Exemplary gas qualities may include at least one of temperature, humidity, particles, smoke, pollution, fungi, and bacteria. A sensor within the duct may provide an earlier warning compared to a sensor arranged above the grid. Gas within the duct may also be more concentrated than above the grid, and a better measurement of gas quality may be achieved.

[0040] The present invention also relates to a system as described above, further comprising at least one cooling device arranged above the framework, adapted to cool gas to be circulated from above the storage columns, along the sides of the stack, through the multiple inlets, the under-stack void, and to the ducts. This system can be used to cool products, such as foodstuffs, within the grid.

[0041] The present invention also relates to a system as described above, further comprising at least one gaseous fire suppression device arranged above the skeletal structure, adapted to release a fire suppression gas to be circulated from above the storage columns, along the sides of the stack, through the multiple inlets, the under-stack void, and to the duct to suppress a fire in the storage columns. The gaseous fire suppression device may be combined with a system comprising a cooling device. Exemplary fire suppression gases include, but are not limited to, CO2 and Inergen®.

[0042] In one embodiment, the system may be adapted to increase the fan speed when releasing the fire suppression gas, increasing the fan speed to increase circulation of the fire suppression gas and improve fire suppression.

[0043] In one embodiment, the fan may be located at a first end of the duct adjacent the upper end of the upright member.

[0044] In a second aspect, the present invention also relates to a method of circulating gas within an automated grid-based storage and retrieval system, the system comprising: - a skeletal structure comprising upright members and a grid of horizontal rails provided at upper ends of the upright members, the skeletal structure defining a storage volume comprising a plurality of columns arranged in a grid pattern below the horizontal rails between the upright members; - a plurality of storage containers stacked vertically in a stack in a column to provide a plurality of storage columns; - an under-stack void extending beneath the stack of storage containers; - multiple entrances to the under-stack void between stacks of storage containers; - at least one column arranged between the storage columns without storage containers for providing a ventilation column, the ventilation column including a fan, and a plurality of duct walls surrounding the ventilation column defining a duct having a first end adjacent the horizontal rail and a second end adjacent the under-stack void; The method includes using a fan to circulate gas along the sides of the stack, through the multiple inlets, the under-stack void, and through ducts.

[0045] In one embodiment, the step of circulating the gas may include using a fan to draw the gas from the under-stack cavity.

[0046] In one embodiment, the method may further include providing at least one cooling device above the skeletal structure to cool the storage container and cooling the gas to be circulated above the storage column.

[0047] In one embodiment, the method may further include providing at least one gaseous fire suppression device above the skeletal structure to suppress a fire in the storage column, and releasing the fire suppression gas to be circulated from above the storage column.

[0048] In one embodiment, the method may further include increasing the speed of the fan when releasing the fire suppression gas.

[0049] In one embodiment, the method may further include releasing fire suppression gas in response to detecting a fire in the storage column using at least one sensor provided in the duct, the at least one sensor arranged to measure at least one quality of the gas flowing through the duct. The present specification also provides, for example, the following: (Item 1) An automated grid-based storage and retrieval system (1), comprising: - a framework (100) comprising upright members (102) and a grid of horizontal rails (110) provided at upper ends of the upright members (102), the framework defining a storage volume comprising a plurality of columns (105) arranged in a grid pattern below the horizontal rails (110) between the upright members (102); a plurality of storage containers (106) stacked vertically in a stack (107) in said columns to provide a plurality of storage columns (105); - an under-stack void (402) extending beneath the stack of storage containers; - a plurality of inlets (403) to the under-stack void (402) between the stacks of storage containers; at least one column arranged between the storage columns without storage containers to provide a ventilation column (404), the ventilation column (404) including a fan (405), a plurality of duct walls (410) surrounding the ventilation column defining a duct (406) having a first end (407) adjacent the horizontal rail (110) and a second end (408) adjacent the under-stack void (402), the fan (405) arranged to circulate gas along the side of the stack (107), through the plurality of inlets (403), the under-stack void (402), and through the duct (406); A system comprising: (Item 2) Item 1. The system of item 1, wherein the total area of ​​each of the plurality of inlets (403) increases with the horizontal distance of the inlet (403) from the ventilation column (404). (Item 3) Item 1. The system of item 1, further comprising a nozzle plate (600) arranged at each of the plurality of inlets (403), the nozzle plate (600) comprising a plurality of holes (601, 602), the total area of ​​the plurality of holes (601, 602) increasing with the distance of the nozzle plate (600) from the ventilation column (404). (Item 4) The system according to any one of items 1 to 3, further comprising a plurality of liftable floor panels (401) arranged at the bottom of each storage column (105), the liftable floor panels (401) providing the under-stack void (402). (Item 5) Item 5. The system of item 4, wherein the plurality of entrances (403) to the under-stack void (402) are defined by gaps between adjacent lift-up floor panels (401). (Item 6) 6. The system according to any one of items 4 to 5, wherein each of the liftable floor panels (401, 401a, 401b) comprises a support plate (900) for supporting the stack of storage containers (107) and a plurality of feet (901) adapted to lift the support plate (900). (Item 7) 7. The system of claim 6, wherein the support plate (900) is made of metal and the plurality of feet (901) are made of plastic. (Item 8) Item 7. The system of item 6, wherein the liftable floor panel (401b) is made from a sheet metal plate, a central portion (903) of the sheet metal plate forming the support plate (900), and a plurality of outer portions (904) of the sheet metal plate arranged perpendicular to the central portion (903) forming the plurality of feet (901). (Item 9) Item 9. The system of item 8, wherein the outer portions (904) of the sheet metal include openings (905). (Item 10) 10. The system of any of items 1 to 9, wherein the duct (406) comprises at least one sensor (411, 1101) arranged to measure at least one quality of the gas (409) flowing through the duct (406). (Item 11) 11. The system according to any one of items 1 to 10, further comprising at least one cooling device (1000) arranged above the framework structure (100), adapted to cool the gas to be circulated from above the storage column (105), along the side of the stack (107), through the multiple inlets (403), the under-stack void (402), and to the duct (406). (Item 12) 11. The system according to any one of items 1 to 10, further comprising at least one gaseous fire suppression device (1100) arranged above the framework structure (100), adapted to release a fire suppression gas (1102) to be circulated from above the storage column (105), along the side of the stack (107), through the multiple inlets (403), the under-stack void (402), and into the duct (406) in order to suppress a fire in the storage column (105). (Item 13) Item 13. The system of item 12, further adapted to increase the speed of the fan (405) when releasing the fire suppression gas (1102). (Item 14) 14. The system according to any one of items 1 to 13, wherein the fan (405) is disposed at the first end (407) of the duct (406) adjacent to an upper end of the upright member (102). (Item 15) A method for circulating gas in an automated grid-based storage and retrieval system (1), said system comprising: - a framework (100) comprising upright members (102) and a grid of horizontal rails (110) provided at upper ends of the upright members (102), the framework defining a storage volume comprising a plurality of columns (105) arranged in a grid pattern below the horizontal rails (110) between the upright members (102); a plurality of storage containers (106) stacked vertically in a stack (107) in said columns to provide a plurality of storage columns (105); - an under-stack void (402) extending beneath the stack of storage containers; - a plurality of inlets (403) to the under-stack void (402) between the stacks of storage containers; at least one column arranged between the storage columns without storage containers to provide a ventilation column (404), the ventilation column (404) including a fan (405), and a plurality of duct walls (410) surrounding the ventilation column defining a duct (406) having a first end (407) adjacent the horizontal rail (110) and a second end (408) adjacent the under-stack void (402); the method comprising using the fan to circulate gas along the side of the stack (107), through the plurality of inlets (403), the under-stack void (402), and through the duct (406). (Item 16) Item 16. The method according to item 15, wherein the step of circulating gas includes using the fan (405) to draw gas from the under-stack space (402). (Item 17) Item 17. The method according to item 15 or 16, further comprising providing at least one cooling device (1000) above the framework structure (100) for cooling the storage container (106) and cooling the gas to be circulated above the storage column (105). (Item 18) Item 17. The method according to item 15 or 16, further comprising providing at least one gaseous fire suppression device (1100) above the framework structure (100) to suppress a fire in the storage column (105), and discharging a fire suppression gas (1102) to be circulated from above the storage column (105). (Item 19) 19. The method of claim 18, further comprising increasing the speed of the fan (405) when releasing the fire suppression gas (1102). (Item 20) 20. The method of claim 19, further comprising releasing the fire suppression (1102) gas in response to detecting a fire in the storage column (105) using at least one sensor (1101) provided in the duct (406), the at least one sensor (1101) being arranged to measure at least one quality of the gas (409) flowing through the duct (406). [Brief explanation of the drawings]

[0050] The following drawings are included to facilitate an understanding of the invention: The drawings illustrate embodiments of the invention which are herein described by way of example only.

[0051] [Figure 1] FIG. 1 is a perspective view of the skeletal structure of a prior art automated storage and retrieval system.

[0052] [Figure 2] FIG. 2 is a perspective view of a prior art container handling vehicle having a centrally arranged cavity for holding storage containers therein.

[0053] [Figure 3] FIG. 3 is a perspective view of a prior art container handling vehicle having a cantilever for holding a storage container underneath.

[0054] [Figure 4] FIG. 4 is a side view of an exemplary automated storage and retrieval system according to the present invention.

[0055] [Figure 5] FIG. 5 is a perspective view of an exemplary lift floor in accordance with the present invention.

[0056] [Figure 6] FIG. 6 is a perspective view of another exemplary lift floor according to the present invention.

[0057] [Figure 7a] FIG. 7a is a top view of an exemplary automated storage and retrieval system in accordance with the present invention.

[0058] [Figure 7b] FIG. 7b is a perspective cutaway view of an exemplary automated storage and retrieval system according to the present invention.

[0059] [Figure 8] FIG. 8 is a schematic top view of an exemplary automated storage and retrieval system in accordance with the present invention.

[0060] [Figure 9a] 9a and 9b are perspective views of an exemplary liftable floor panel according to the invention. [Figure 9b] 9a and 9b are perspective views of an exemplary liftable floor panel according to the invention.

[0061] [Figure 10] FIG. 10 is a perspective view of an exemplary automated storage and retrieval system for refrigeration in accordance with the present invention.

[0062] [Figure 11]FIG. 11 is a side view of an exemplary automated storage and retrieval system with a fire suppression system in accordance with the present invention.

[0063] [Figure 12] FIG. 12 is a schematic diagram of exemplary nozzle sizes according to the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0064] (Detailed Description of the Invention) In the following, embodiments of the present invention will be discussed in more detail with reference to the accompanying drawings, it being understood, however, that the drawings are not intended to limit the invention to the subject matter depicted in the drawings.

[0065] The skeleton structure 100 of the automated storage and retrieval system 1 is constructed in accordance with the prior art skeleton structure 100 described above in connection with Figures 1 to 3, i.e., several upright members 102 and several horizontal members 103 supported by the upright members 102, and further, the skeleton structure 100 comprises a first upper rail system 108 in the X and Y directions.

[0066] The skeleton structure 100 further comprises storage compartments in the form of storage columns 105 provided between the members 102, 103, with storage containers 106 being stackable in stacks 107 within the storage columns 105.

[0067] Skeleton structure 100 can be of any size. In particular, it should be understood that the skeletal structure can be significantly wider and / or longer and / or deeper than that disclosed in Figure 1. For example, skeletal structure 100 can have a horizontal extent of greater than 700 x 700 columns and a storage depth of greater than 12 containers.

[0068] An embodiment of an automated storage and retrieval system according to the present invention will now be considered in more detail with reference to FIGS.

[0069] FIG. 4 is a side view of an exemplary automated storage and retrieval system 1, comprising a skeleton structure 100, as described in detail above, including upright members 102 and a grid of horizontal rails 110 provided at the upper ends of the upright members 102. The skeleton structure 100 defines a storage volume comprising a plurality of columns 105 arranged in a grid pattern below the horizontal rails 110 between the upright members 102. A plurality of storage containers 106 are stacked vertically in stacks 107 in the columns to provide a plurality of storage columns 105. The system further comprises an under-stack void 402 extending beneath the stack of storage containers. The under-stack void 402 allows gas, such as air, to flow beneath the stack of containers and between adjacent stacks of storage containers. The under-stack void 402 can be provided using various types of spacers, such as special ventilated storage containers or elevating floor panels 401, as discussed in more detail below. Multiple inlets 403 to the under-stack void 402 exist between the stacks of storage containers. The distance between adjacent stacks is usually short, typically in the centimeter range, to achieve a compact storage and retrieval system. Therefore, airflow through the storage and retrieval system when the storage containers 106 are fully filled is a challenge. Airflow may be required, for example, for the cooling process or fire suppression. In the case of a rapidly cooling environment, it assists the cooling process by moving air along the sides of the container. If there is no air movement around the container, it will be isolated, leading to a slow cooling process. Prior art solutions solve this by forced air circulation through the storage container, where air is drawn in from areas outside the storage volume using a fan so that high airflow exists near the fan (i.e., near the edge of the storage volume) and decreases toward the inside of the storage volume. This leads to uneven cooling of the product within the storage volume.

[0070] In the automated storage and retrieval system 1 illustrated in FIG. 4, there is at least one column without storage containers arranged between the storage columns to provide a ventilation column 404. The ventilation column 404 includes a fan 405, and a plurality of duct walls 410 surrounding the ventilation column define a duct 406 having a first end 407 adjacent the horizontal rail 110 and a second end 408 adjacent the under-stack void 402, with the fan 405 arranged to circulate gas along the side of the stack 107, through the multiple inlets 403, the under-stack void 402, and through the duct 406. The ventilation column 404 between the storage columns creates a uniform airflow 409 by drawing air only over the edges of the storage volume.

[0071] In Figure 4, fan 405 is located at a first end 407 of duct 406 adjacent the upper end of upright member 102. Gas in the exemplary configuration of Figure 4 is circulated as illustrated by airflow 409, with gas being drawn from under-stack void 402 using fan 405, which draws gas up duct 404 and into the area above the storage volume. The underpressure created by drawing gas from under-stack void 402 draws gas from above the storage volume, down the side of stack 107, and into under-stack void 402 through multiple inlets 403.

[0072] Similar but limited non-uniformity may occur depending on the number of ventilation columns 404 and the distance between them. To reduce this non-uniformity, the system may be arranged so that the total area of ​​each of the multiple inlets 403 increases with the horizontal distance of the inlet 403 from the ventilation columns 404. Compared to inlets with smaller areas, inlets with larger total areas allow more gas to flow therethrough, thus compensating for the reduced gas flow due to the distance from the ventilation columns. Inlets with smaller areas allow less gas to flow therethrough, thus compensating for the higher gas flow near the ventilation columns. Thus, a more uniform and balanced gas flow may be achieved.

[0073] In one embodiment, the duct 406 may include at least one sensor 411 arranged to measure at least one quality of the gas flowing through the duct. Exemplary qualities of the gas may include at least one of temperature, humidity, particles, smoke, pollution, oxygen saturation, fungi, and bacteria. A sensor within the duct may provide an earlier warning compared to a sensor arranged above the grid. The gas within the duct may also be more concentrated than above the grid, and a better measurement of the gas quality may be achieved.

[0074] 5 is a perspective view of a plurality of liftable floor panels 401 arranged at the bottom of each storage column 105, with the liftable floor panels 401 providing under-stack voids 402. The liftable floor panels 401 are installed at the bottom of the framework 100, for example, on the floor 400. The position of the liftable floor panels 401 is fixed within the framework 100 by the upright members 102. The liftable floor panels 401 are typically disposed at the bottom of the framework 100 after it has been assembled.

[0075] 5, the multiple inlets 403 to the under-stack void 402 are defined by gaps between adjacent lift-up floor panels 401. The gaps between adjacent plates can be varied by varying the size of the panels or by having various sized cutouts across the inlet area between the stacks 107. The cutouts can be circular, square, or have any other suitable shape. The total area of ​​each of the multiple inlets 403 can be varied such that the total area of ​​each of the multiple inlets 403 increases with the horizontal distance of the inlet 403 from the ventilation column 404, as discussed above.

[0076] FIG. 6 illustrates an embodiment in which a nozzle plate 600 is arranged at each of the multiple inlets 403. The nozzle plate 600 includes multiple holes 601, 602, and the total area of ​​the multiple holes 601, 602 increases with the distance of the nozzle plate 600 from the ventilation column 404. The holes 601 are larger than the holes 602 closer to the ventilation column. In an alternative solution, the total area of ​​the multiple holes 601, 602 can alternatively or additionally be increased by increasing the number of holes 601, 602 in the nozzle plate 600. The nozzle plate 600 can have holes of the same size throughout its length, or smaller holes at one end and larger holes at the other end. The nozzle plate 600 is easier to fit by adjusting the size of the inlets 403, allowing for easier reconfiguration of the gas flow. In an alternative embodiment, a valve plate is arranged at each of the multiple inlets 403. The valve plate includes an adjustable valve for controlling the air flow. In one embodiment, the adjustable valve is a sliding gate.

[0077] Figure 7a is a top view of one embodiment of the invention. Figure 7a shows multiple stacks 107 of storage containers surrounding a ventilation column 404. Figure 7b is a perspective view of Figure 7a with the storage containers removed. Figures 7a and 7b show multiple duct walls 410 surrounding the ventilation column and defining a duct. The multiple duct walls 410 are wall panels of a suitable rigid, thin material, such as aluminum, that may be mounted to the upright members 102. Figures 7a and 7b show an uncovered inlet 403 to the under-stack void 402, with a nozzle plate 600 arranged across the inlet 403. The nozzle plate closest to the ventilation column 404 has holes 602 with smaller diameters than the holes 601 in a nozzle plate on one floor panel further from the ventilation column.

[0078] FIG. 8 is a schematic top view of an exemplary automated storage and retrieval system illustrating nine ventilation columns 404 positioned between storage columns 105.

[0079] 12 is a schematic diagram of nozzle sizes according to the present invention. Ventilation column 404 is at the center of a circle illustrating the distance from the ventilation column. In this example, nozzle A has a nozzle opening n, where n defines the area of ​​the nozzle opening and can be described, for example, by the diameter of the opening. Nozzle A is closer to ventilation column 404. Nozzle B, which is located farther from ventilation column 404 than nozzle A, has a nozzle opening larger than n (i.e., larger than nozzle A). Nozzle C, which is located farther from ventilation column 404 than nozzle B, has a nozzle opening larger than that of nozzle B.

[0080] 9a and 9b illustrate perspective views of exemplary liftable floor panels 401, 401a, 401b according to the present invention. Each of the liftable floor panels 401, 401a, 401b may include a support plate 900 for supporting a stack 107 of storage containers and a plurality of feet 901 adapted to elevate the support plate 900. The plurality of feet 901 may be positioned on the floor 400, for example. The support plate 900 and feet 901 may be one piece or may be made from separate pieces connected by fasteners. FIG. 9a illustrates an embodiment in which the plurality of feet 901 are made from plastic and the support plate 900 is made from metal.

[0081] FIG. 9b illustrates an embodiment in which the liftable floor panel 401b is made from a sheet metal plate. A central portion 903 of the sheet metal plate forms the support plate 900, and multiple outer portions 904 of the sheet metal plate, arranged perpendicular to the central portion 903, form the legs 901. The multiple outer portions 903 of the sheet metal may further include openings 905. The openings allow gas flow below the floor panel and / or pipes to pass through them. The openings 905 may be closed with a closing means, such as a plug, to regulate airflow within the under-stack void 402. Closing a decreasing number of openings 905 with the horizontal distance of the liftable floor panel 401b from the ventilation column 404 effectively increases the total area of ​​each of the multiple inlets 403 with the horizontal distance of the inlets 403 from the ventilation column 404. Openings 905 with a larger total area compared to openings 905 with a smaller area allow more gas to flow through them, thus compensating for the reduced gas flow due to the distance from the ventilation column. Openings 905 with a smaller total area allow less gas to flow through them, thus compensating for the higher gas flow near the ventilation column. Thus, a more uniform and balanced gas flow can be achieved.

[0082] The under-stack void 402 may be provided with a special ventilated storage container, preferably a low-profile storage container. The special ventilated storage container may have adjustable openings in the sides of the storage container to adjust airflow therethrough, as discussed above with reference to the lift-up floor panel 401b. The openings may be adjusted by a sliding gate, multiple flaps, or plugs.

[0083] 10 is a perspective view of a system as described above, further comprising at least one cooling device 1000 arranged above the framework structure 100. The at least one cooling device 1000 is adapted to cool gas to be circulated from above the storage columns 105, along the sides of the stack 107, through the multiple inlets 403, the under-stack void 402, and into the duct 406. This system can be used to cool products, e.g., food products, within the storage volume of the stack 107. The temperature within the storage volume of the stack 107 can be controlled by adjusting the temperature of the gas from the cooling device and / or the speed at which the gas flows through the storage volume.

[0084] FIG. 11 is a side view of the system as described above, further comprising at least one gaseous fire suppression device 1100 arranged above the framework structure 100. The fire suppression device 1100 is adapted to emit fire suppression gas 1102 to be circulated from above the storage column 105, along the side of the stack 107, through the multiple inlets 403, the under-stack void 402, and into the duct 406 to suppress a fire within the storage column 105. The system may also comprise at least one sensor 1101 for detecting a fire within the storage volume. The at least one sensor 1101 may be part of a separate fire sensor system or part of at least one sensor 411 arranged to measure at least one quality of the gas flowing through the duct. The sensors 411, 1104 within the duct may provide an earlier warning compared to sensors arranged above the grid. Gas within the duct may also be more concentrated than above the grid, and better measurement of gas quality may be achieved. This allows for earlier detection of a fire within the storage volume and earlier release of the fire suppression gas 1102. Exemplary fire suppression gases include, but are not limited to, CO2 and Inergen®. In one embodiment, the system may be adapted to increase the speed of the fan 405 when releasing the fire suppression gas 1102. Increasing the speed of the fan 405 increases the circulation of the fire suppression gas 1102 and improves fire suppression. The gaseous fire suppression device may be combined with a system that includes a cooling device.

[0085] 4-12, a method for circulating gas within an automated grid-based storage and retrieval system 1 will now be described. The automated grid-based storage system 1 includes: - a skeleton structure 100 comprising upright members 102 and a grid of horizontal rails 110 provided at the upper ends of the upright members 102, the skeleton structure defining a storage volume comprising a plurality of columns 105 arranged in a grid pattern below the horizontal rails 110 between the upright members 102; a plurality of storage containers 106 stacked vertically in a column stack 107 to provide a plurality of storage columns 105; - an under-stack void 402 extending beneath the stack of storage containers; - a plurality of entrances 403 to under-stack voids 402 between stacks of storage containers; - at least one column arranged between the storage columns without storage containers to provide a ventilation column 404, the ventilation column 404 including a fan 405, and a plurality of duct walls 410 surrounding the ventilation column defining a duct 406 having a first end 407 adjacent the horizontal rail 110 and a second end 408 adjacent the under-stack void 402; Equipped with.

[0086] The method includes circulating gas using a fan 405 along the side of the stack 107, through a plurality of inlets 403, an under-stack void 402, and through a duct 406. The step of circulating the gas may include drawing gas from the under-stack void 402 using the fan 405. The gas is drawn from the under-stack void 402 using the fan 405, which draws the gas up the duct 406 and into an area above the storage volume. The under-pressure created by drawing the gas from the under-stack void 402 draws gas from above the storage volume, down the side of the stack 107, through the plurality of inlets 403, and into the under-stack void 402.

[0087] The method may further comprise the step of providing at least one cooling device 1000 above the framework structure 100 for cooling the gas to be circulated above the storage columns 105 and for cooling the storage containers 106 .

[0088] The method may further include providing at least one gaseous fire suppression device 1100 that emits fire suppression gas 1102 to be circulated from above the storage column 105 to suppress a fire in the storage column 105 above the skeletal structure 100. In one embodiment, the method further includes increasing the speed of the fan 405 when emitting the fire suppression gas 1102.

[0089] The method may further include releasing fire suppression 1102 gas in response to detecting a fire in the storage column 105 using at least one sensor 1101 provided in the duct 406, the at least one sensor 1101 being arranged to measure at least one quality of the gas 409 flowing through the duct 406.

[0090] In the foregoing description, various aspects of the container handling vehicle and automated storage and retrieval 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. Various modifications and variations of the illustrative embodiments, as well as other embodiments of the system, that are obvious to those skilled in the art to which the disclosed subject matter pertains are deemed to be within the scope of the present invention.

[0091] List of Reference Numbers [Table 1-1] [Table 1-2]

Claims

1. An automated grid-based storage and retrieval system (1), comprising: a skeletal structure (100) comprising upright members (102) and a grid of horizontal rails (110) provided at upper ends of the upright members (102), the skeletal structure defining a storage volume comprising a plurality of storage columns (105) arranged in a grid pattern below the horizontal rails (110) between the upright members (102), the storage columns configured to store respective vertical stacks (107); a storage container (106); a sub-stack space (402) extending directly below the storage column (105); a plurality of inlets (403) into the under-stack space (402) between the storage columns (105); at least one ventilation column (404) configured to have no storage containers and arranged between the storage columns (105), the ventilation column (404) including a fan (405), a plurality of duct walls (410) surrounding the ventilation column defining a duct (406) having a first end (407) adjacent to the horizontal rail (110) and a second end (408) adjacent to the under-stack void (402), the fan (405) configured to circulate gas along the side of the vertical stack (107), through the plurality of inlets (403), the under-stack void (402), and through the duct (406); A system comprising:

2. 2. The system of claim 1, wherein a total area of ​​each of the plurality of inlets (403) increases with the horizontal distance of the inlet (403) from the ventilation column (404).

3. 2. The system of claim 1, further comprising a nozzle plate (600) arranged at each of the plurality of inlets (403), the nozzle plate (600) comprising a plurality of holes (601, 602), the total area of ​​the plurality of holes (601, 602) increasing with the distance of the nozzle plate (600) from the ventilation column (404).

4. 4. The system of claim 1, further comprising a plurality of liftable floor panels (401) arranged at the bottom of each storage column (105), the liftable floor panels (401) providing the under-stack voids (402).

5. The system of claim 4, wherein the plurality of entrances (403) to the under-stack void (402) are defined by gaps between adjacent lift-up floor panels (401).

6. 6. The system of claim 4, wherein each of the liftable floor panels (401, 401a, 401b) comprises a support plate (900) for supporting a vertical stack (107) of storage containers and a plurality of feet (901) adapted to lift the support plate (900).

7. The system of claim 6, wherein the support plate (900) is made from metal and the plurality of feet (901) are made from plastic.

8. 7. The system of claim 6, wherein the liftable floor panel (401b) is made from a sheet metal plate, a central portion (903) of the sheet metal plate forming the support plate (900), and a plurality of outer portions (904) of the sheet metal plate arranged perpendicular to the central portion (903) forming the plurality of feet (901).

9. The system of claim 8 , wherein the outer portions (904) of the sheet metal include openings (905).

10. The system of any one of claims 1 to 9, wherein the duct (406) comprises at least one sensor (411, 1101) arranged to measure at least one quality of the gas (409) flowing through the duct (406).

11. 11. The system of claim 1, further comprising at least one cooling device (1000) arranged above the framework structure (100), the cooling device (1000) adapted to cool the gas to be circulated from above the storage columns (105), along the sides of the vertical stacks (107), through the multiple inlets (403), the under-stack voids (402), and into the ducts (406).

12. 11. The system of claim 1, further comprising at least one gaseous fire suppression device (1100) arranged above the framework structure (100) adapted to emit fire suppression gas (1102) to be circulated from above the storage columns (105), along the sides of the vertical stacks (107), through the multiple inlets (403), the under-stack voids (402), and into the ducts (406) to suppress a fire in the storage columns (105).

13. 13. The system of claim 12, further adapted to increase the speed of the fan (405) when releasing the fire suppression gas (1102).

14. The system of any preceding claim, wherein the fan (405) is located at the first end (407) of the duct (406) adjacent an upper end of the upright member (102).

15. 1. A method of circulating gas within an automated grid-based storage and retrieval system (1), the method comprising: using a fan (405) to circulate gas along the side of a vertical stack (107) of storage containers, through a plurality of inlets (403), an under-stack void (402), and through a duct (406); The stacks (107) of storage containers are stored in respective storage columns (105) in the framework (100) of the storage and retrieval system (1), the plurality of inlets (403) are provided between the storage columns (105); the under-stack void (402) extends directly below the storage column (105); The fan (405) is provided in a ventilation column (404), the ventilation column (404) being free of storage containers and having a first end (407) adjacent to a horizontal rail (110) provided at the upper end of the framework structure (100), and a second end (408) adjacent to the under-stack void (402); The method of claim 1, wherein the duct (406) is defined by a plurality of duct walls (410) surrounding the ventilation column (404).

16. The method described in claim 15, wherein circulating the gas includes using the fan (405) to draw gas from the under-stack void (402).

17. 17. The method according to claim 15 or claim 16, further comprising providing at least one cooling device (1000) above the framework structure (100) for cooling the storage container (106) and cooling the gas to be circulated above the storage column (105).

18. 17. The method according to claim 15 or claim 16, further comprising providing at least one gaseous fire suppression device (1100) above the framework structure (100) to suppress a fire in the storage column (105), and discharging a fire suppression gas (1102) to be circulated from above the storage column (105).

19. 20. The method of claim 18, further comprising increasing the speed of the fan (405) when releasing the fire suppression gas (1102).

20. 20. The method of claim 19, further comprising releasing the fire suppression gas in response to detecting a fire in the storage column using at least one sensor provided in the duct, the at least one sensor arranged to measure at least one quality of the gas flowing through the duct.

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