Automated warehouse system for storing fresh food and agricultural products
The automated warehouse system addresses storage challenges for temperature-sensitive items by integrating ventilation slots and a control system to manage container positioning, ensuring optimal conditions for fresh food and agricultural products.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-06-18
- Publication Date
- 2026-04-08
AI Technical Summary
Existing automated warehouse systems struggle to efficiently store temperature-sensitive products like fresh food and agricultural items, as they lack effective ventilation and temperature control, leading to potential quality deterioration.
The system incorporates a rail system with ventilation slots between adjacent tracks, allowing ventilated storage containers to face ventilation openings towards these slots, and a control system to manage storage positions based on container type, ensuring optimal airflow and temperature regulation.
This design enables efficient storage of fresh food and agricultural products by maintaining desired environmental conditions, preventing spoilage and ensuring effective ventilation and temperature control.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to an automated warehouse system for the storage and retrieval of containers, and more particularly, to an automated warehouse system for storing fresh food and agricultural products.
Background Art
[0002] FIG. 1 discloses a typical prior art automated warehouse system 1 with a skeletal structure 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 includes upright members 102, horizontal members 103, and storage columns 105 arranged in rows between the upright members 102 and the horizontal members 103, providing a storage volume. In these storage columns 105, storage containers 106, also known as containers, are stacked on top of each other to form a stack 107. The members 102, 103 may typically be made of metal, for example, extruded aluminum profiles.
[0004] The skeletal structure 100 of the automated warehouse system 1 includes a rail system 108 arranged across the top of the skeletal structure 100, on which multiple container handling vehicles 201, 301 are placed into storage columns 105 and storage containers 106 are transported above the storage columns 105. The rail system 108 includes a first set 110 of parallel rails arranged to guide the movement of the container handling vehicles 201, 301 in a first direction X that crosses the top of the frame structure 100, and a second set 111 of parallel rails arranged perpendicular to the first set 110 for guiding the movement of the container handling vehicles 201, 301 in a second direction Y that is perpendicular to the first direction X. Containers 106 stored in columns 105 are accessed by container handling vehicles through access openings 112 in the rail system 108. The container handling vehicles 201 and 301 can move laterally above the storage column 105, that is, in a plane parallel to the horizontal XY plane.
[0005] The upright members 102 of the skeletal structure 100 may be used to guide the storage containers during the lifting of the containers out of the column 105 and the lowering of the containers into it. The stack 107 of containers 106 is typically self-supporting.
[0006] Each of the prior art container handling vehicles 201, 301 comprises a body 201a, 301a and first and second sets of wheels 201b, 301b, 201c, 301c, respectively, which enable lateral movement of the container handling vehicles 201, 301 in the X and Y directions. In Figures 2 and 3, two wheels within each set are fully visible. The first set of wheels 201b, 301b is arranged to engage with two adjacent rails of the first set of rails 110, and the second set of wheels 201c, 301c is arranged to engage with two adjacent rails of the second set of rails 111. At least one of the sets of wheels 201b, 301b, 201c, and 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 engage with the individual sets of rails 110, 111 at any given time.
[0007] Each of the prior art container handling vehicles 201, 301 also includes a lifting device (not shown) for vertical transport of storage containers 106, for example, lifting a storage container 106 from a storage column 105 and lowering it into the storage column 105. The lifting device comprises one or more gripping / engaging devices, adapted to engage with the storage container 106 such that the position of the gripping / engaging devices relative to the vehicle 201, 301 can be adjusted in a third direction Z perpendicular to a first direction X and a second direction Y, and the gripping / engaging devices can be lowered from the vehicle 201, 301. A portion of the gripping devices of container handling vehicle 301 is shown in Figure 3, indicated with reference numeral 304. The gripping devices of container handling device 201 are located within the vehicle body 301a in Figure 2.
[0008] As in the conventional and for the purposes of the present invention, Z=1 identifies the top layer of the storage container, i.e., the layer directly below the rail system 108; Z=2 identifies the second layer below the rail system 108; Z=3 identifies the third layer, and so on. In the exemplary prior art disclosed in Figure 1, Z=8 identifies the bottommost layer of the storage container. Similarly, X=1...n and Y=1...n identify the position of each storage column 105 in the horizontal plane. As a result, in an embodiment and using the Cartesian coordinate system X, Y, Z shown in Figure 1, the storage container identified as 106' in Figure 1 can be said to occupy storage positions X=10, Y=2, Z=3. Container handling vehicles 201 and 301 can be said to move within layer Z=0, and each storage column 105 can be identified by its X and Y coordinates.
[0009] The storage volume of the skeletal 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 can be identified by its position in the X and Y directions, while each storage cell can be identified by the number of containers in the X, Y, and Z directions.
[0010] Each prior art container handling vehicle 201, 301 is equipped with a storage compartment or space for receiving and housing storage containers 106 when transporting storage containers 106 across the rail system 108. The storage space may comprise a cavity arranged in the center of the vehicle body 201a, as shown in Figure 2 and, for example, as described in WO2015 / 193278A1 (the contents of which are incorporated herein by reference).
[0011] Figure 3 shows an alternative configuration of container handling vehicle 301 with a cantilevered structure. Such vehicles are described in detail, for example, in Patent No. 317366 (the contents of which are also incorporated herein by reference).
[0012] The centrally located container handling vehicle 201 shown in Figure 2 may have an occupied area that generally covers an area with dimensions in the X and Y directions equal to the lateral range of the storage column 105, as described, for example, in WO2015 / 193278A1 (the contents of which are incorporated herein by reference). The term “lateral” as used herein may mean “horizontal”.
[0013] Alternatively, the hollow container handling vehicle 101 may have a larger occupied area than the lateral area defined by the storage column 105, for example, as disclosed in WO2014 / 090684A1.
[0014] The rail system 108 typically comprises rails with grooves on which the wheels of a vehicle run. Alternatively, the rails may have upward-projecting elements, and the wheels of the vehicle may have flanges to prevent derailment. These grooves and upward-projecting elements are collectively known as tracks. Each rail may have one track, or each rail may have two parallel tracks.
[0015] WO2018146304 (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 skeletal structure 100, the majority of the columns 105 are storage columns 105, i.e., columns 105 in which storage containers 106 are stored in stacks 107. However, some columns 105 may have other purposes. In Figure 1, columns 119 and 120 are such special-purpose columns used by container handling vehicles 201, 301 for loading and unloading and / or loading storage containers 106 so that they can be transported to an access station (not shown) in which the storage containers 106 can be accessed from outside the skeletal structure 100 or transported outside or into the skeletal structure 100. In the art, such a location is usually referred to as a “port,” and the columns in which the port is located may be referred to as “port columns” 119, 120. Transport to the access station may be in any direction, horizontal, oblique, and / or vertical. For example, the storage container 106 may be placed in a random or dedicated column 105 within the skeletal 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 the storage container 106 having a common transport orientation in a location between horizontal and vertical.
[0017] In Figure 1, the first port column 119 may be a dedicated loading / unloading port column from which container handling vehicles 201 and 301 can load and 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 from which container handling vehicles 201 and 301 can load storage containers 106 being transported from an access or transfer station.
[0018] Access stations may typically be picking stations or stocking stations where product items are removed from or placed in storage containers 106. At picking or stocking stations, storage containers 106 are not usually removed from the automated warehouse system 1, but once accessed, they are returned to the skeletal structure 100. Ports may also be used to transfer storage containers to other storage facilities (e.g., to another skeletal structure or another automated warehouse system), to transport vehicles (e.g., trains or large trucks), or to production facilities.
[0019] A conveyor system, equipped with a conveyor, is typically used to transport storage containers between port columns 119 and 120 and access stations.
[0020] If the port columns 119, 120 and the access stations are located at 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 the storage container 106 between different skeletal structures, for example, as described in WO2014 / 075937A1 (the contents of which are incorporated herein by reference).
[0022] When a storage container 106 stored in one of the columns 105 disclosed in Figure 1 is to be accessed, one of the container handling vehicles 201, 301 is commanded to retrieve the target storage container 106 from its position and transport it to the loading / unloading port column 119. This operation involves moving the container handling vehicles 201, 301 to a location above the storage column 105 in which the target storage container 106 is located, and using the lifting devices (not shown) of the container handling vehicles 201, 301 to retrieve the storage container 106 from the storage column 105 and transport the storage container 106 to the loading / unloading 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 involves temporarily moving the storage containers located above before raising the target storage container 106 from the storage column 105. This step, sometimes referred to as "excavation" within the art, may be carried out using the same container handling vehicle, or one or more other cooperating container handling vehicles, which are subsequently used to transport the target storage container to the loading / unloading port column 119. Alternatively, or in addition, the automated warehouse system 1 may have container handling vehicles 201, 301 specialized for the task of temporarily removing storage containers 106 from storage column 105. Once the target storage container 106 has been removed from storage column 105, the temporarily removed storage container 106 can be repositioned in its original storage column 105. However, the removed storage container 106 may, as an alternative, be repositioned in 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 ordered to load the storage container 106 from the loading 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 position in the stack 107 is removed, the container handling vehicles 201, 301 position the storage container 106 in the desired position. The removed storage container 106 may then be lowered back into the storage column 105 or repositioned in another storage column 105.
[0024] To monitor and control the automated warehouse system 1, for example, to monitor and control the location of individual storage containers 106 within the skeletal structure 100, the contents of each storage container 106, and the movement of the container handling vehicles 201, 301, so that desired storage containers 106 can be delivered to a desired location at a desired time without the container handling vehicles 201, 301 colliding with each other, the automated warehouse system 1 typically includes a control system 500 which is computerized and typically includes a database for tracking the storage containers 106.
[0025] Some products require special storage conditions to avoid quality deterioration and spoilage. Examples of such products include fresh foods and agricultural products that are temperature-sensitive and should be stored at approximately 4°C, within a temperature range of 0.5–8°C. In addition, some products such as herbs, vegetables, and fruits may require a supply of fresh air.
[0026] As shown in Figure 9a, air may circulate between storage containers within the prior art system 1. As indicated by the bidirectional arrows, air may circulate between the two columns 102 (the dashed portion of the arrow) and upward through the access opening 112 between the rails 111 (the solid portion of the arrow). However, this airflow is limited.
[0027] WO2016193419 describes an automated warehouse system in which the temperature is regulated, adjusted, controlled, and / or maintained. The storage containers have ventilation openings in two or more side walls. The storage system has compartments on separate sides of the storage system and also below the storage system to allow air circulation and control of the temperature.
[0028] One objective is to provide an automated warehouse system in which fresh food and agricultural products can be efficiently stored. Another objective is that fresh food and agricultural products can be stored in a desired environment (i.e., at a desired temperature and with a desired air quality).
[0029] A further objective is that other products can also be stored in the same storage system. Summary of the Invention Means for Solving the Problems
[0030] The present invention is an automated warehouse system for storing product items, comprising a skeletal structure with upright members and horizontal members and a storage volume with storage columns between the members, the skeletal structure comprising a rail system arranged above the members, a storage container in which product items are stored and which can be stacked within the storage columns, a container handling vehicle that moves along the rail system to transport the storage containers, and comprising, the rail system comprising rails, each rail comprising a track, characterized in that adjacent tracks of at least one rail of the rail system are separated by ventilation slots extending in a vertical plane between two adjacent storage columns.
[0031] The term "adjacent track" here refers to two adjacent columns or two separate tracks between rows of columns, where one track is used by a vehicle moving over one of the adjacent columns, and the other track is used by a vehicle moving over the second of the adjacent columns.
[0032] In one respect, the first type of storage container is a ventilated storage container.
[0033] On one side, when a ventilated storage container is located in a storage column adjacent to a ventilation slot, it has ventilation openings in at least one side wall facing the ventilation slot.
[0034] In one aspect, the ventilated storage container has a single side wall with a ventilation opening that faces toward the ventilation slot when located in a storage column adjacent to the ventilation slot.
[0035] Alternatively, a ventilated storage container has only two side walls, with ventilation openings within the two side walls, and one of the two side walls has an opening that faces the ventilation slot when located in a storage column adjacent to the ventilation slot.
[0036] On one side, the ventilation slot has a first horizontal width of 1 to 30%, preferably 5 to 20%, of the first horizontal width of the adjacent storage column.
[0037] On one side, the skeletal structure has one ventilation slot for each second storage column.
[0038] On one side, the skeletal structure has one ventilation slot for each second storage column in the first horizontal direction.
[0039] On one side, the first area of the skeletal structure is provided with one ventilation slot for each second storage column, and the second area of the skeletal structure is provided without ventilation slots between adjacent tracks, and container handling vehicles are movable along the rail system between the first and second areas.
[0040] On one side, this system further, The control system provides a unique identifier for each storage container. The control system is configured to determine whether a storage container is a ventilated or non-ventilated storage container based on a unique identifier. The control system is configured to determine the storage position for a ventilated storage container in one of the storage columns, where its ventilation opening will be directed toward the ventilation slot. It is equipped with a control system for monitoring and controlling the system.
[0041] In one respect, the control system is The system is configured to determine the location of the ventilation openings of the ventilated storage container based on a unique identifier before the storage location is determined.
[0042] On one hand, the position of the ventilation slots is stored in the control system, and the container handling vehicles are configured to detect the position of the ventilation slots during their operation on the rail system.
[0043] In one aspect, at least one of the container handling vehicles includes a lifting device with a gripping unit, the lifting device with a gripping unit being rotatably connected to first and second sets of wheels.
[0044] On one side, the first track of an adjacent track is used by a vehicle moving above one of the adjacent columns, and the second track of an adjacent track is used by a vehicle moving above the second of the adjacent columns.
[0045] On one side, the rails in the first horizontal direction form a bridge across ventilation slots at a certain interval in the second direction, allowing vehicles to pass through the ventilation gaps. The present invention provides, for example, the following: (Item 1) An automated warehouse system (1) for storing product items (80), wherein the system (1) A skeletal structure (100) comprising upright members (102) and horizontal members (103), and a storage volume having storage columns (105) between the members (102, 103), wherein the skeletal structure (100) comprises a rail system (108) arranged above the members (102, 103), A storage container (6, 106) in which the product item (80) is stored, wherein the storage container (6, 106) is stackable within the storage column (105) and the stack (107), A container handling vehicle (201, 301) moves along the rail system (108) to transport the aforementioned storage containers (6, 106) and Equipped with, The rail system (108) comprises rails (110, 111), and each rail (110, 111) comprises a track (110a, 110b, 111a, 111b), The adjacent tracks (111a, 111b) of at least one rail (111) of the rail system (108) are separated by a ventilation slot (30) that extends into the vertical plane (VP) between two adjacent storage columns (105). An automated warehouse system (1) characterized by the following. (Item 2) The first type of the storage container (6, 106) is a ventilated storage container (6), as described in item 1 of the automated warehouse system (1). (Item 3) The automated warehouse system (1) according to item 2, wherein the ventilated storage container (6) is located in a storage column (105) adjacent to the ventilation slot (30) and has a ventilation opening (12) in at least one side wall (11) facing toward the ventilation slot (30). (Item 4) The automated warehouse system (1) according to item 2 or 3, wherein the ventilated storage container (6) has a ventilation opening (12) in only one side wall (11), and the one side wall having the ventilation opening (12) faces toward the ventilation slot (30) when it is located in a storage column (105) adjacent to the ventilation slot (30). (Item 5) The automated warehouse system (1) according to any one of the above items, wherein the ventilation slot (30) has a width (d30) in the first horizontal direction (Y) of the adjacent storage column (105) that is 1 to 30%, preferably 5 to 20%, of the width (d105) in the first horizontal direction (Y). (Item 6) The automated warehouse system (1) according to any one of the above items, wherein the skeletal structure (100) comprises one ventilation slot (30) for each second storage column (105). (Item 7) The first area (A1) of the aforementioned skeletal structure (100) is provided with one ventilation slot (30) for each second storage column (105), The second area (A2) of the skeletal structure (100) is provided between adjacent tracks (111a, 111b) without ventilation slots (30), The container handling vehicles (201, 301) are movable along the rail system (108) between the first and second areas (A1, A2). An automated warehouse system (1) as described in any one of the above items. (Item 8) The system (1) further comprises a control system (500) for monitoring and controlling the system. The control system (500) is provided with a unique identifier for each storage container (6, 106), The control system (500) is configured to determine, based on the unique identifier, whether the storage container is a ventilated storage container (6) or a non-ventilated storage container (106). The control system (500) is configured to determine the storage position for the ventilated storage container (6) in one of the storage columns (105) in which its ventilation opening (12) will be directed toward the ventilation slot (30). An automated warehouse system (1) as described in any one of the above items. (Item 9) The control system (500) is The automated warehouse system (1) according to item 8, configured to determine the location of the ventilation opening (12) of the ventilated storage container (6) based on the unique identifier before the storage location is determined. (Item 10) The position of the ventilation slot (30) is stored in the control system (500). The container handling vehicles (201, 301) are configured to detect the position of the ventilation slot (30) during their operation on the rail system (108). An automated warehouse system as described in item 8 or 9 (1). (Item 11) An automated warehouse system (1) according to any one of the above items, wherein at least one of the container handling vehicles (301) is equipped with a lifting device with a gripping unit (304), the lifting device having a gripping unit (304) rotatably connected to first and second sets of its wheels (201b, 301b, 201c, 301c). (Item 12) An automated warehouse system (1) according to any one of the above items, wherein the first track (111a) of the adjacent tracks (111a, 111b) is used by a vehicle moving above one of the adjacent columns (105), and the second track (111b) of the adjacent tracks (111a, 111b) is used by a vehicle moving above the second of the adjacent columns (105). (Item 13) The automated warehouse system (1) according to any one of the above items, wherein the rail (110) in the first horizontal direction (Y) forms a bridge across the ventilation slot (30) at a certain interval in the second direction (X), allowing the vehicle to pass through the ventilation gap. [Brief explanation of the drawing]
[0046] The following drawings are attached to facilitate understanding of the present invention. The drawings illustrate embodiments of the present invention, which will be described herein only as examples. [Figure 1] Figure 1 is a perspective view of the skeletal structure of an advanced automated warehouse system.
[0047] [Figure 2] Figure 2 is a perspective view of an earlier technology container handling vehicle having a centrally aligned cavity for transporting storage containers inside.
[0048] [Figure 3] Figure 3 is a perspective view of an earlier technology container handling vehicle having a cantilever beam for transporting storage containers directly downwards.
[0049] [Figure 4] Figure 4 shows the rail system of the prior art warehouse system from above.
[0050] [Figure 5] Figure 5 shows the rail system of one embodiment of this warehouse system from above.
[0051] [Figure 6a] Figure 6a shows a stack of three storage containers.
[0052] [Figure 6b] Figure 6b shows the stack from Figure 6a rotated by 180°.
[0053] [Figure 7] Figure 7 illustrates how the storage containers are stacked on top of each other within the storage system shown in Figure 5.
[0054] [Figure 8] Figure 8 is an enlarged view of the box database in Figure 7, with the dashed lines.
[0055] [Figure 9] Figures 9a-b illustrate a side view of the upper part of the skeletal structure.
[0056] [Figure 10] Figure 10 illustrates a combination of the prior art system shown in Figure 4 and the present system shown in Figure 5.
[0057] [Figure 11] Figures 11a and 11b illustrate a container handling vehicle in which the container lifting device can be rotated. [Modes for carrying out the invention]
[0058] Detailed description of the invention Embodiments of the present invention will be discussed in more detail below with reference to the accompanying drawings. However, it should be understood that the drawings are not intended to limit the present invention to the subject matter depicted therein.
[0059] The automated warehouse system 1 is constructed according to the prior art skeletal structure 100 described above in relation to Figure 1-3, namely several upright members 102 and several horizontal members 103 supported by the upright members 102, and furthermore, the skeletal structure 100 includes a rail system 108 in the X and Y directions.
[0060] The skeletal structure 100 further comprises storage compartments in the form of storage columns 105 provided between members 102 and 103, and storage containers 106 are stackable in stacks 107 within the storage columns 105.
[0061] The skeletal 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, the skeletal structure 100 may have a horizontal range of more than 700 × 700 columns and a storage depth of more than 12 containers.
[0062] In Figure 4, the prior art skeletal structure 100 is shown from above. Since members 102 and 103 are provided beneath the rails 110 and 111 of the rail system 108, the rails 110 and 111 are visible only in Figure 4. In addition, the storage column 105 is shown here as empty for simplification, i.e., there are no storage containers stacked on top of each other within the storage column 105.
[0063] First, refer to Figures 6a and 6b, which show a stack 107 of three storage containers 6 stacked on top of each other. Each storage container 6 has a ventilation opening 12 in one of its four side walls 11. In Figure 6a, the ventilation opening 12 is provided on the right side of the storage container 6, while in Figure 6b, the ventilation opening 12 is provided on the left side of the storage container 6. These storage containers 6 will hereafter be referred to as ventilated storage containers.
[0064] Note that the ventilated storage containers 6 in Figures 6a and 6b are identical to each other, but rotated 180° around the perpendicular axis (Z direction) relative to each other.
[0065] Refer here to Figure 5 (top view) and Figure 7 (side view). Using the coordinate system of the drawings, the rows of storage columns extend in the X direction, and these rows of storage columns are placed next to each other in the Y direction. The storage containers 6 are stacked above each other in the Z direction.
[0066] The rail system 108 of the skeletal structure 100 includes ventilation slots 30 extending in the vertical plane VP between two adjacent rows of storage columns, i.e., the vertical plane VP extends in the X and Z directions. The ventilation slots 30 are provided between two vertical members of the skeletal structure 100, as shown in Figure 8.
[0067] Now, refer to Figure 9b. On the left side, rail 111, with its two adjacent tracks 111b and 111a, is located above the vertical member 102, which is the same as the prior art configuration shown in Figure 9a. On the right side, below rail 111, there are two spaced-out vertical members 102 separated by ventilation slots 30. The adjacent tracks 111b and 111a of the left rail 111 are also separated by ventilation slots 30.
[0068] The ventilation slot 30 has a width d30 in the Y direction. The width d30 of the ventilation slot 30 is herein denoted as the distance over which air can flow between the tracks 111b and 111a. The width of the ventilation slot 30 between the vertical members 102 is denoted as d102. Preferably, the width d102 is equal to or substantially equal to the width d30 of the ventilation slot 30.
[0069] In this embodiment, the ventilation slot 30 has a width d30 of 5 cm. The storage system is sized to fit a storage container having a length of 60 cm (Y direction) and a width of 40 cm (X direction). The width and length of the storage column are slightly larger than the width and length of the storage container. Preferably, the width d30 of the ventilation slot 30 is 3 to 12 cm.
[0070] Therefore, according to the above, the ventilation slot 30 extends across the rail system. However, it should be noted that the vertical members 102 in Figure 9b will be mechanically fixed to each other in a manner similar to that in Figure 9a, i.e., using horizontal columns and rails 110 in the Y direction. The rails 110 in the Y direction will therefore bridge the ventilation slot 30 at intervals in the X direction, allowing vehicles to pass through the ventilation gaps.
[0071] In Figures 9a and 9b, when a container handling vehicle, arranged to collect storage containers from storage column 105, is driven in the X direction (i.e., in the image), it will use track 111a on the left rail and track 111b on the right rail 111. When a cantilever-type container handling vehicle 301 (Figure 3) lifts / lowers storage containers 6, 106 out of / into compartment 105, its wheels will be lowered into rail 110 in the Y direction, while its wheels used to drive in the X direction will be lifted, assuming the cantilever structure protrudes in the X direction relative to the body (as shown in Figure 5). A single-cell-type container handling vehicle 201 (Figure 2) may lower its wheels into rail 110 and / or rail 111.
[0072] Now, refer again to Figures 7 and 8. What is shown here is that when the ventilated storage containers 6 are located in the storage column 105 adjacent to the ventilation slots 30, their ventilation openings 12 are stored facing toward the ventilation slots 30.
[0073] A control system 500 for monitoring and controlling system 1 stores a unique identifier for each storage container 6,106. The control system 500 is configured to determine, based on the unique identifier, whether a storage container is a ventilated storage container 6 or a non-ventilated storage container 106. In this embodiment, if each ventilated storage container 6 has either a right-side ventilation opening or a left-side ventilation opening, a parameter indicating the location of that ventilation opening is also stored for each storage container 6.
[0074] Based on the above information, the control system 500 is configured to determine the storage position for each ventilated storage container 6 and to ensure that the ventilation opening 12 of each ventilated storage container 6 is positioned so that it faces the ventilation slot 30.
[0075] As a result, the ventilated storage container 6 with a right-side ventilation opening 12 is stored in the storage column 105 on the left side of the ventilation slot 30, while the ventilated storage container 6 with a left-side ventilation opening 12 is stored in the storage column 105 on the right side of the ventilation slot 30.
[0076] The illustrated skeletal structure 100 has one ventilation slot 30 for every second storage column 105. Figures 5 and 6 show that the skeletal structure 100 has one ventilation slot 30 for every second storage column 105 in the first horizontal direction Y, as this is assumed to be a favorable trade-off between effective storage capacity and effective ventilation.
[0077] Refer to Figure 10. Shown here is a skeletal structure viewed from above, divided into a first area A1 and a second area A2. Here, the first area A1 of the skeletal structure 100 has one ventilation slot 30 for every second storage column 105. The second area A2 of the skeletal structure 100 is provided without ventilation slots 30 between adjacent tracks 111a, 111b, i.e., this is similar to the prior art skeletal structure of Figure 1. Ventilated storage containers 6 are mainly stored in the first area A1, while non-ventilated storage containers 106 are mainly stored in the second area A2. However, it is also possible to store non-ventilated storage containers 106 in the first area A1 and ventilated storage containers 6 in the second area A2. Note that container handling vehicles 201, 301 are freely movable along the rail system 108 between the first and second areas A1, A2. (Alternative embodiment)
[0078] In the above embodiment, a storage container 6 having a right-side ventilation opening 12 is stored in a storage column on the left side of the ventilation slot 30, while a storage container 6 having a left-side ventilation opening 12 is stored in a storage column 105 on the right side of the ventilation slot 30.
[0079] Refer here to Figures 11a and 11b. What is shown here is a cantilevered container handling vehicle 301 (similar to, but not identical to, the prior art type shown in Figure 3), with a lifting device with a gripping unit 304 rotatably connected to its wheels. Here, a storage container 6 with a right-side ventilation opening 12 can be converted into a storage container 6 with a left-side ventilation opening 12 by rotating the storage container 180°.
[0080] The storage container 6 may also have ventilation openings 12 in two of its side walls 11, where the two side walls 11 are opposite side walls. The storage container 6 can be stored in the storage columns 105 on either side of the ventilation slot without any 180° rotation.
[0081] In the foregoing description, various aspects of the automated warehouse system according to the present invention are described with reference to illustrative embodiments. For illustrative purposes, specific figures, systems, and configurations have been provided to give a thorough understanding of the system and its operation. However, this description is not intended to be constrained. Various modifications and variations of the illustrative embodiments, and other embodiments of the system, which are obvious to those skilled in the art related to the disclosed subject matter, are considered to be within the scope of the invention. List of reference numbers Prior art (Figures 1-4): [Table 1]
Claims
1. An automated warehouse system (1) for storing product items (80), wherein the system (1) A skeletal structure (100) comprising upright members (102) and horizontal members (103), and a storage volume having storage columns (105) between the members (102, 103), wherein the skeletal structure (100) comprises a rail system (108) arranged above the members (102, 103). Equipped with, The rail system (108) comprises rails (110, 111), and each rail (110, 111) comprises adjacent tracks (110a, 110b, 111a, 111b), An automated warehouse system (1), characterized in that the adjacent tracks (111a, 111b) of at least one rail (111) of the rail system (108) are separated by ventilation slots (30) extending into a vertical plane (VP) between two adjacent storage columns (105).
2. The automated warehouse system (1) according to claim 1, further comprising storage containers (6, 106) in which the product items (80) are stored, wherein the storage containers (6, 106) are stackable in stacks (107) within the storage columns (105), and the first type of storage container (6, 106) is a ventilated storage container (6).
3. The automated warehouse system (1) according to claim 2, wherein the ventilated storage container (6), when located in a storage column (105) adjacent to the ventilation slot (30), has a ventilation opening (12) in at least one side wall (11) facing toward the ventilation slot (30).
4. The automated warehouse system (1) according to claim 2 or 3, wherein the ventilated storage container (6) has a ventilation opening (12) in only one side wall (11), and the one side wall having the ventilation opening (12) faces toward the ventilation slot (30) when it is located in a storage column (105) adjacent to the ventilation slot (30).
5. The automated warehouse system (1) according to any one of claims 1 to 4, wherein the ventilation slot (30) has a width (d30) in the first horizontal direction (Y) of the adjacent storage column (105) that is 1 to 30%, preferably 5 to 20%, of the width (d105) in the first horizontal direction (Y).
6. The automated warehouse system (1) according to any one of claims 1 to 5, wherein the skeletal structure (100) comprises one ventilation slot (30) for every two storage columns (105).
7. The automated warehouse system (1) according to any one of claims 2 to 4, further comprising container handling vehicles (201, 301) configured to move along the rail system (108) for transporting the storage containers (6, 106).
8. The first area (A1) of the skeletal structure (100) is provided with one ventilation slot (30) for every two of the storage columns (105), The second area (A2) of the skeletal structure (100) is provided between adjacent tracks (111a, 111b) without ventilation slots (30), The automated warehouse system (1) according to claim 7, wherein the container handling vehicles (201, 301) are movable along the rail system (108) between the first and second areas (A1, A2).
9. A control system (500) for monitoring and controlling the aforementioned system (1), A storage container (6, 106) in which the product item (80) is stored, wherein the storage container (6, 106) is stackable within the storage column (105) and the storage container (6, 106) is stackable within the storage column (105) and Furthermore, The control system (500) is provided with a unique identifier for each storage container (6, 106), The control system (500) is configured to determine, based on the unique identifier, whether the storage container is a ventilated storage container (6) or a non-ventilated storage container (106). The automated warehouse system (1) according to any one of claims 1 to 8, as dependent on claim 3, wherein the control system (500) is configured to determine a storage position for the ventilated storage container (6) in one of the storage columns (105) such that its ventilation opening (12) faces toward the ventilation slot (30).
10. The automated warehouse system (1) according to claim 9, wherein the control system (500) is configured to determine the location of the ventilation opening (12) of the ventilated storage container (6) based on the unique identifier before the storage position is determined.
11. The position of the ventilation slot (30) is stored in the control system (500). The automated warehouse system (1) according to claim 9 or 10, as dependent on claim 7, wherein the container handling vehicles (201, 301) are configured to detect the position of the ventilation slots (30) during their operation on the rail system (108).
12. An automated warehouse system (1) according to any one of claims 1 to 11 as dependent on claim 7, wherein at least one of the container handling vehicles (301) comprises a lifting device with a gripping unit (304), the lifting device with the gripping unit (304) is rotatably connected to first and second sets of wheels (201b, 301b, 201c, 301c).
13. The automated warehouse system (1) according to any one of claims 1 to 12, wherein the first track (111a) of the adjacent tracks (111a, 111b) is used by a vehicle moving above one of the adjacent columns (105), and the second track (111b) of the adjacent tracks (111a, 111b) is used by a vehicle moving above the second of the adjacent columns (105).
14. The automated warehouse system (1) according to claim 13, as dependent on claim 5, wherein the rail (110) in the first horizontal direction (Y) forms a bridge across the ventilation slot (30) at a certain interval in the second direction (X), allowing the vehicle to pass through the ventilation gap.
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