Goods handling equipment

By dividing the floor into unit areas and implementing abnormality handling processes, the system prevents collisions between transport vehicles, ensuring efficient article conveyance in logistics systems.

JP7848766B2Active Publication Date: 2026-04-21DAIFUKU CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
DAIFUKU CO LTD
Filing Date
2023-07-19
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing article conveyance equipment lacks effective measures to prevent collisions between conveyance vehicles, particularly during sudden events or abnormalities, leading to reduced efficiency.

Method used

The system divides the floor into unit areas that can accommodate transport vehicles, controls their movement to avoid simultaneous entry into the same area, and implements abnormality handling processes to designate restricted areas when collisions or deviations occur, using location information holders and reading units to manage vehicle positions.

Benefits of technology

This approach ensures safe and efficient transportation of articles by preventing collisions between vehicles under normal and abnormal conditions, even without collision prevention sensors.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an article conveyance facility capable of appropriately conveying articles while avoiding collision between conveyance vehicles.SOLUTION: An article conveyance vehicle (1) includes: a plurality of conveyance vehicles (10); and a control system that controls the conveyance vehicles (10). The control system executes abnormality processing of setting, upon the occurrence of abnormality with any of the plurality of conveyance vehicles (10), a unit area (U) where an abnormal conveyance vehicle (10E) with the aforementioned abnormality may be present, as an approach-prohibited area (K) into which the approach of the other normal conveyance vehicles (10) is prohibited.SELECTED DRAWING: Figure 13
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Description

Technical Field

[0001] The present invention relates to article conveyance equipment.

Background Art

[0002] For example, in a logistics warehouse or the like, article conveyance equipment is used to convey articles. An example of such article conveyance equipment is disclosed in Japanese Unexamined Patent Application Publication No. 2020-100482 (Patent Document 1). The article conveyance equipment (article conveyance equipment F) of Patent Document 1 includes a plurality of conveyance vehicles (article conveyance vehicles V) that convey articles (articles W), and a control system (overall control device Cf) that controls the conveyance vehicles.

[0003] In the article conveyance equipment of Patent Document 1, the conveyance vehicles can freely travel vertically and horizontally on the floor (floor surface 70), and there is a possibility that the conveyance vehicles may collide with each other. When a collision occurs, the conveyance efficiency is significantly reduced. Therefore, it is preferable to take preventive measures in advance so that the conveyance vehicles do not collide with each other. Also, even if some preventive measures are taken, there is a possibility that a collision may occur when a sudden event occurs (for example, when some abnormality occurs in any of the plurality of conveyance vehicles). However, in Patent Document 1, avoiding collisions between the conveyance vehicles, particularly avoiding collisions between the conveyance vehicles even when a sudden event occurs, has not been particularly considered.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] Therefore, it is desired to realize article conveyance equipment that can appropriately convey articles while avoiding collisions between the conveyance vehicles.

Means for Solving the Problems

[0006] The article transport equipment related to this disclosure is An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the unit area at the starting point to the unit area at the destination point. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, If an abnormality occurs in any of the multiple transport vehicles, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle in question) may be located as a restricted area where other normal transport vehicles are prohibited from entering. ru. child According to this configuration, by executing normal processing, goods can be transported appropriately while avoiding collisions between transport vehicles, provided that no abnormalities occur in any of the transport vehicles. Furthermore, if an abnormality occurs in any of the transport vehicles, abnormal processing is executed to designate the unit area where the abnormal transport vehicle may be located as a no-entry area. Therefore, even if the unit area where the abnormal transport vehicle is located cannot be determined, the possibility of collision between the abnormal transport vehicle and other normal transport vehicles can be reduced. Thus, goods can be transported appropriately while avoiding collisions between transport vehicles, not only under normal conditions but also in the event of a sudden abnormality in some of the transport vehicles.

[0007] [1] The first article conveying equipment relating to this disclosure is, An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the unit area at the starting point to the unit area at the destination point. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, To any of the multiple transport vehicles , deviating from the planned route or stopping point If an abnormality occurs, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle in question) may be located as a restricted area where other normal transport vehicles are prohibited from entering. death, In the abnormality handling process, the control system sets different ranges of the no-entry areas depending on the nature of the abnormality that occurred in the abnormal transport vehicle. do. [2] The second article conveying equipment relating to this disclosure is, An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the unit area at the starting point to the unit area at the destination point. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, If an abnormality occurs in any of the multiple transport vehicles, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle in question) may be located as a restricted area where other normal transport vehicles are prohibited from entering. death, In the abnormality processing, if the control system cannot determine one unit area in which the abnormal transport vehicle is located, or multiple unit areas in which the abnormal transport vehicle straddles a boundary, it sets different ranges of restricted entry areas according to the nature of the abnormality that occurred in the abnormal transport vehicle. . [3] The third article conveying equipment relating to this disclosure is: An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. Control the transport vehicle to travel by moving it in sequence through the adjacent unit areas from the unit area at the starting point to the unit area at the destination point, Execute normal processing to control a plurality of the transport vehicles so that a plurality of the transport vehicles do not enter the same unit area at the same time, and When an abnormality occurs in any one of the plurality of transport vehicles, execute abnormal-time processing to set the unit area in which there may be an abnormal transport vehicle, which is the transport vehicle in which the abnormality has occurred, as an entry-prohibited area where entry of other normal transport vehicles is prohibited. death, Each of the aforementioned unit areas is provided with a location information holder that holds the location information of that unit area. The transport vehicle is equipped with a reading unit that reads the position information held in the position information holder, The abnormalities of the transport vehicle include a first abnormality, which is an abnormality caused by the transport vehicle deviating from the stop target position within a range that allows the position information holder provided at the stop target position to be read; a second abnormality, which is an abnormality caused by the transport vehicle deviating from the stop target position to such an extent that the position information holder provided at the stop target position cannot be read; and a third abnormality, which is an abnormality caused by the transport vehicle colliding with another transport vehicle. The control system is If the abnormality that occurred in the abnormal transport vehicle is the first abnormality, the range of L (where L is an integer of 2 or more) unit areas located in front of the abnormal transport vehicle in the direction of travel, starting from the unit area that existed immediately before the abnormal transport vehicle became abnormal, is set as the no-entry area. If the abnormality that occurred in the abnormal transport vehicle is the second abnormality, the area of ​​M × M (where M is an integer of 2 or more) of the unit areas in the forward direction of travel, including the unit area that existed immediately before the abnormal transport vehicle became abnormal, is set as the no-entry area. If the abnormality that occurred in the abnormal transport vehicle is the third abnormality, the area of ​​N × N (where N is an integer greater than M) of the unit area centered on the unit area that existed immediately before the abnormal transport vehicle became abnormal will be set as the no-entry area. .

[0008] Further features and advantages of the technology according to the present disclosure will become clearer from the following description of exemplary and non-limiting embodiments described with reference to the drawings.

Brief Description of the Drawings

[0009] [Figure 1] Plan view of an article sorting facility including the article transport facility of the embodiment [Figure 2] Front view of the passage area )]] [Figure 3] Block diagram of the control system [Figure 4] Schematic diagram showing an example of the travel route of the transport vehicle [Figure 5] Schematic diagram showing an example of normal processing [Figure 6] Schematic diagram showing another example of normal processing [Figure 7] Schematic diagram showing an example of the state of the first abnormality [Figure 8] Schematic diagram showing an example of abnormal-time processing when the first abnormality occurs [Figure 9]A schematic diagram showing an example of the second abnormality. [Figure 10] A schematic diagram showing an example of emergency handling when a second abnormality occurs. [Figure 11] A schematic diagram illustrating an example of the third abnormality. [Figure 12] A schematic diagram showing an example of how to handle abnormal situations when a third abnormality occurs. [Figure 13] A schematic diagram showing an example of error handling. [Modes for carrying out the invention]

[0010] An embodiment of the goods transport equipment will be described with reference to the drawings. The goods transport equipment 1 of this embodiment is used, for example, in a logistics center (e.g., goods sorting equipment) to transport goods A that are to be taken out of a warehouse and sorted according to their delivery destination.

[0011] As shown in Figure 1, the goods transport equipment 1 comprises a transport vehicle 10, a supply unit 20, and a receiving unit 30. The goods transport equipment 1 also comprises a control system 40 (see Figure 3). The goods transport equipment 1 of this embodiment comprises a plurality of transport vehicles 10, a plurality of supply units 20, a plurality of receiving units 30, and a control system 40. The transport vehicles 10 travel across the floor 6 to transport goods A. The supply units 20 supply goods A to the transport vehicles 10. The receiving units 30 receive goods A from the transport vehicles 10. The control system 40 controls the plurality of transport vehicles 10, the plurality of supply units 20, and the plurality of receiving units 30.

[0012] As shown in Figure 2, the floor 6 on which the transport vehicle 10 travels is a raised floor in this embodiment. The floor 6 has a flooring material 61 whose upper surface is the travel surface for the transport vehicle 10, and a plurality of support columns 62 that support the flooring material 61 from below. The floor 6 is formed so that its upper surface (the upper surface of the flooring material 61 in this embodiment) is flush with the horizontal plane. A location information holder 65 is provided on the upper surface of the floor 6 (the upper surface of the flooring material 61). The location information holder 65 is, for example, a one-dimensional code (barcode), a two-dimensional code (e.g., a QR code), or an IC tag. Multiple location information holders 65 are provided, each holding its own unique location information.

[0013] In this embodiment, a specific direction along the floor 6 is defined as the X direction, and a direction perpendicular to the X direction along the floor 6 is defined as the Y direction. In this embodiment, the left-right direction in Figure 1 is defined as the X direction as the "specific direction," and the up-down direction in Figure 1, which is perpendicular to it, is defined as the Y direction. The direction perpendicular to both the X and Y directions (the direction perpendicular to the plane of the paper in Figure 1) is defined as the Z direction. This Z direction is the up-down direction of the goods transport equipment 1 (see Figure 2).

[0014] As shown in Figure 1, the floor 6 is configured with a supply area R1 where a supply unit 20 is provided, a connection area R2, and a passage area R3 where a receiving unit 30 is provided. In this embodiment, the supply area R1 and passage area R3 are linear areas extending along the Y direction, and multiple and equal numbers of each are provided. One supply area R1 and one passage area R3 are arranged in a straight line at the same position in the X direction, and multiple sets of these supply area R1 and passage area R3 are arranged intermittently at intervals in the X direction.

[0015] The connection area R2 connects the supply area R1 and the passage area R3. In this embodiment, the supply area R1 and the passage area R3 are spaced apart in the Y direction, and the connection area R2 connects the supply area R1 and the passage area R3 in the Y direction. Furthermore, the connection area R2 in this embodiment is a rectangular area in plan view that extends in the X and Y directions while extending in the Y direction and connecting all of the supply areas R1 and all of the passage areas R3.

[0016] Thus, floor 6 is configured such that, from a rectangular connection area R2 located in the center in the Y direction, multiple supply areas R1 extend intermittently in the X direction and then in the Y direction on one side in the Y direction (upper side in Figure 1), and multiple passage areas R3 extend in the Y direction at the same positions as the corresponding supply areas R1 on the other side in the Y direction (lower side in Figure 1).

[0017] As shown in Figure 2, the transport vehicle 10 that travels on floor 6 comprises a travel section 11 and a transfer section 15. The travel section 11 has a body 12 and wheels 13 that are rotatably supported at the bottom of the body 12. The wheels 13 roll on the travel surface on floor 6. Multiple wheels 13 are provided, and at least one of them is a drive wheel to which the driving force of a power source (e.g., a drive motor or internal combustion engine) is transmitted. The transport vehicle 10 in this embodiment is an electric vehicle equipped with a drive motor as a power source, and travels by receiving power from, for example, a battery, a fuel cell, or contact or non-contact power supply from floor 6.

[0018] The transfer unit 15 includes a mounting platform 16 supported above the vehicle body 12 and a drive mechanism 17. The mounting platform 16 is configured to be able to change its orientation between a horizontal orientation aligned with the horizontal direction and an inclined orientation tilted relative to the horizontal direction. Furthermore, in this embodiment, the mounting platform 16 is configured to be able to change its orientation between a first inclined orientation in which it is tilted about one end in the X direction as an axis while facing the Y direction, and a second inclined orientation in which it is tilted about the other end in the X direction as an axis. That is, the mounting platform 16 is configured to be able to change its orientation between a horizontal orientation, a first inclined orientation, and a second inclined orientation. The drive mechanism 17 drives the mounting platform 16 to change its orientation between a horizontal orientation and an inclined orientation (first inclined orientation and second inclined orientation). The drive mechanism 17 may be, for example, a bar mechanism, a cylinder mechanism, a ball screw mechanism, etc.

[0019] The transport vehicle 10 is also equipped with a reading unit 19 for reading information held in a location information holder 65 located on the upper surface of the floor 6. The reading unit 19 is selected according to the type of location information holder 65, and may include, for example, a barcode reader, a QR code reader, and an IC tag reader. The transport vehicle 10 may also be equipped with a speed sensor to detect the travel speed and an acceleration sensor to detect acceleration.

[0020] Multiple supply units 20, spaced apart from each other in the X direction, are each provided with a supply and conveying device 21. In this embodiment, one supply and conveying device 21 is provided corresponding to each of the multiple supply areas R1. The supply and conveying device 21 is formed in a loop shape with a forward path and a return path so that it can transport goods A from an automated warehouse (not shown) and transport goods A to the automated warehouse. The supply and conveying device 21 can be, for example, a conveyor or an automated guided vehicle, and may be a combination of multiple types.

[0021] In this embodiment, the item A is supplied to the transport vehicle 10 by the work entity W transferring the item A to the transport vehicle 10 at the supply unit 20. That is, the item A, which has been transported from the automated warehouse by the supply transport device 21, is transferred to the transport vehicle 10 by the work entity W at the supply unit 20, thereby supplying the item A to the transport vehicle 10. The work entity W may be, for example, a worker or a work device (for example, an arm-type robot), and may be a combination of multiple types. The transport vehicle 10 receives the item A on a horizontally positioned platform 16 and travels toward the receiving unit 30 with the item A placed on the platform 16.

[0022] Multiple receiving sections 30, spaced apart from each other in the X direction, are each provided with a receiving and conveying device 31 and a shipping device 32. As shown in Figures 1 and 2, in this embodiment, multiple receiving and conveying devices 31 and shipping devices 32 are provided, corresponding to each of the multiple aisle areas R3. Multiple receiving and conveying devices 31 are provided adjacent to both sides in the X direction of one aisle area R3, and arranged in the Y direction (seven on each side in this example). One shipping device 32 is provided adjacent to both sides in the X direction of one aisle area R3, flanking the receiving and conveying device 31, and extending in the Y direction. The receiving and conveying devices 31 may be, for example, conveyors, cranes, or robotic arms, and may be a combination of multiple types. The shipping devices 32 may be, for example, conveyors or automated guided vehicles, and may be a combination of multiple types.

[0023] In this embodiment, in the receiving section 30, the mounting platform 16 of the transport vehicle 10 changes its orientation to an inclined position (first inclined position or second inclined position), thereby transferring article A from the transport vehicle 10 to the receiving transport device 31, and then transferring article A from the receiving transport device 31 to the corresponding shipping device 32 (see Figure 2). When the mounting platform 16 is in the first inclined position, article A is transferred to the shipping device 32 via the receiving transport device 31 on one side in the X direction, and when it is in the second inclined position, article A is transferred to the shipping device 32 via the receiving transport device 31 on the other side in the X direction.

[0024] The height of the conveying surface of the receiving conveying device 31 is set to be less than or equal to the height of the mounting surface 16 of the transport vehicle 10 on the floor 6. In addition, a container C is placed on the shipping device 32, and the difference between the height of the conveying surface of the receiving conveying device 31 and the height of the conveying surface of the shipping device 32 is set to be greater than or equal to the height of container C. The goods A transferred from the transport vehicle 10 are loaded into container C placed on the shipping device 32 via the receiving conveying device 31.

[0025] Furthermore, each container C corresponds to one delivery destination, and the type and number of items A specified in a single order information are sequentially placed into the container C corresponding to that order information. Once all the items A specified in the order information have been placed in container C, the collected container C is transported by the shipping device 32.

[0026] After receiving item A in passage area R3, the transport vehicle 10 is returned to supply area R1 via the return route. The return route may be located on floor 6, or it may be located at a different position in the Z direction from floor 6. If the transport vehicle 10 is battery-powered, a charging station may be provided on the return route.

[0027] As shown in Figure 3, the control system 40 includes a control device 41 that controls the transport vehicle 10 (traveling section 11 and transfer section 15). In addition to the transport vehicle 10, the control system 40 (control device 41) is configured to control the supply transport device 21, the receiving transport device 31, and the shipping device 32. The control device 41 includes an arithmetic processing unit such as a CPU (Central Processing Unit) and a main memory such as RAM (Random Access Memory) and ROM (Read Only Memory). Each function of the control device 41 is realized through the cooperation of the arithmetic processing unit and the program executed on the arithmetic processing unit.

[0028] Furthermore, the control device 41 may not be a single piece of hardware, but rather a collection of multiple pieces of hardware (multiple separate pieces of hardware) that can communicate with each other by wired or wireless means. For example, the control device 41 may be configured to include a higher-level control device installed in a control facility (not shown) and control terminal devices mounted on each transport vehicle 10 that can communicate with the higher-level control device.

[0029] As shown in Figure 4, in this embodiment, the control system 40 divides the floor 6 into multiple unit areas U, each large enough to accommodate the transport vehicles 10 when viewed in the Z direction, and manages them accordingly. In this embodiment, the floor 6 is configured with multiple linear supply areas R1 along the Y direction, a rectangular connection area R2 extending in the X and Y directions, and multiple linear passage areas R3 along the Y direction. The supply areas R1 and passage areas R3 are managed by multiple unit areas U arranged in a straight line along the Y direction. The connection area R2 is managed by multiple unit areas U arranged in a grid (orthogonal grid) along the X and Y directions. Each unit area U is provided with a position information holder 65 that holds its own unique position information. The control system 40 controls each of the multiple transport vehicles 10 based on the information obtained from the position information holder 65.

[0030] The control system 40 is configured to control the transport vehicle 10 so that it moves sequentially through adjacent unit areas U from the unit area U at the starting point S to the unit area U at the destination point D. Here, the starting point S is the point where the transport vehicle 10 of interest receives item A from the supply transport device 21 in one of the supply areas R1. The destination point D is the point in the passage area R3 adjacent in the X direction with the receiving transport device 31 in between to the container C to which the transport vehicle 10 that has received item A is to deliver item A.

[0031] As shown in Figure 4, when the position of the starting point S in the X direction and the position of the destination point D in the X direction are the same, the set of the unit area U of the starting point S, the unit area U of the destination point D, and a plurality of unit areas U arranged in a straight line between them in the Y direction constitutes the travel path P of the transport vehicle 10.

[0032] On the other hand, if the position of the starting point S in the X direction and the position of the destination point D in the X direction are different, the travel path P of the transport vehicle 10 is a collection of the unit area U of the starting point S, the unit area U of the first turning point, the unit area U of the second turning point which is in the same Y direction as the first turning point and in the same X direction as the destination point D, the unit area U of the destination point D, and a plurality of unit areas U arranged in a straight line between these in the X or Y direction.

[0033] The control system 40 performs normal processing and abnormal processing when controlling multiple transport vehicles 10. Normal processing is performed when no abnormality occurs in any of the multiple transport vehicles 10. Abnormal processing is performed when an abnormality occurs in any of the multiple transport vehicles 10. Normal processing is performed for transport vehicles 10 traveling in all areas of the supply area R1, connection area R2, and passage area R3. Abnormal processing is mainly performed for transport vehicles 10 traveling in the connection area R2, which has a rectangular shape in plan view and extends in the X and Y directions.

[0034] The control system 40 determines whether or not an abnormality has occurred in each of the multiple transport vehicles 10 based on information obtained from each of the transport vehicles 10. For example, the control system 40 determines whether or not the transport vehicle 10 is traveling along the planned route P or stopping correctly at a predetermined position based on position information read by a reading unit 19 provided on the transport vehicle 10. In this case, the control system 40 determines that an abnormality has occurred in the transport vehicle 10 if it confirms that the transport vehicle has deviated from the planned route P or has deviated from the planned stopping position.

[0035] Alternatively, the control system 40 determines whether the transport vehicle 10 is traveling smoothly without sudden deceleration, etc., based on acceleration information acquired by an acceleration sensor installed on the transport vehicle 10. In this case, the control system 40 determines that there is an abnormality in the transport vehicle 10 if it detects a negative acceleration that exceeds a predetermined value set in advance based on absolute values.

[0036] In the normal process, which is executed when no abnormality occurs in any of the multiple transport vehicles 10, the control system 40 controls the multiple transport vehicles 10 so that they do not enter the same unit area U at the same time. In executing this normal process, the control system 40 sets a set number of reserved unit areas U in the occupied area O of each transport vehicle 10 in the direction of travel along the travel path P from the current position of each transport vehicle 10 to the destination point D (see Figures 5 and 6). This occupied area O can be called an area that is reserved in advance by the transport vehicle 10 to prevent other transport vehicles 10 from entering (a reserved area). The occupied area O also includes the current position of the transport vehicle 10. Furthermore, when a transport vehicle 10 moves, the occupied area O, starting from its current position, also moves accordingly.

[0037] The number of reservations that defines the size of the occupied area O may be a uniform fixed value, or it may be a variable value that varies depending on the state of the transport vehicle 10. The number of reservations can be appropriately determined by the user so as to increase the overall transport efficiency of the goods transport equipment 1.

[0038] In normal processing, when the occupied areas O of different transport vehicles 10 intersect (here, the unit area U at the intersection is referred to as the "overlapping area"), the control system 40 of this embodiment prioritizes the transport vehicle 10 that first set the overlapping area as its occupied area O. For example, in the example shown in Figure 5, before the transport vehicle 10 that is about to start traveling along the Y direction, the transport vehicle 10 traveling along the X direction has already set the overlapping area, shown by the diagonal lines in the figure, as its occupied area O. Therefore, the control system 40 prioritizes the transport vehicle 10 traveling along the X direction and allows it to travel through its occupied area O.

[0039] Furthermore, in the example shown in Figure 6, for example, before the transport vehicle 10 that is about to start traveling along the X direction, the transport vehicle 10 traveling along the Y direction has already set the overlapping area shown by the diagonal lines in the figure as its occupied area O. For this reason, the control system 40 prioritizes the transport vehicle 10 traveling along the Y direction and allows it to travel through its occupied area O.

[0040] In this way, the control system 40 controls multiple transport vehicles 10 so that multiple transport vehicles 10 do not enter the same unit area U at the same time, by prioritizing the transport vehicle 10 that has previously been set as the occupied area O in the overlapping area during normal processing. This allows for the proper transport of goods A while avoiding collisions between transport vehicles 10.

[0041] However, even if the normal processing prevents multiple transport vehicles 10 from entering the same unit area U simultaneously, a collision may occur if some kind of abnormality suddenly occurs in any of the transport vehicles 10. Therefore, in this embodiment, in the abnormality processing that is executed when an abnormality occurs in any of the multiple transport vehicles 10, the control system 40 sets the unit area U in which the abnormal transport vehicle 10 (hereinafter referred to as "abnormal transport vehicle 10E") may be located as an entry-restricted area K in which entry by other normal transport vehicles 10 is prohibited.

[0042] As described above, each unit area U is provided with a location information holder 65 that holds its own unique location information, and the transport vehicle 10 is provided with a reading unit 19 for reading the information held in the location information holder 65. Therefore, the control system 40 may be able to determine, based on the location information read by the reading unit 19 of each transport vehicle 10, one unit area U in which an abnormal transport vehicle 10E exists, or multiple unit areas U in which the abnormal transport vehicle 10E exists across boundaries. In such cases, the control system 40 sets all of at least one unit area U in which the presence of the abnormal transport vehicle 10E has been confirmed as a no-entry area K.

[0043] For example, as shown in Figure 7, the transport vehicle 10 may deviate from the target stopping position T within a range in which the position information holder 65, which is installed in the unit area U where it was scheduled to stop (hereinafter referred to as the "target stopping position T"), can be read. This is known as an overrun. In such a case, since the transport vehicle 10 can read the position information holder 65, it is possible to determine the single unit area U in which it exists, or multiple unit areas U that exist across boundaries. In this embodiment, such an anomaly is referred to as the "first anomaly".

[0044] If the abnormality in the abnormal transport vehicle 10E is a first abnormality, the control system 40 sets the range of L unit areas U located in front of the abnormal transport vehicle 10E in the direction of travel, starting from the unit area U that existed immediately before the abnormal transport vehicle 10E became abnormal (specifically, the unit area U where the abnormal transport vehicle 10E last read the position information holder 65; hereinafter referred to as "immediate area B", in this case the stop target position T), as shown in Figure 8, as a no-entry area K. Here, L is an integer of 2 or more. In this embodiment, the control system 40 sets the two unit areas U that the abnormal transport vehicle 10E has crossed the boundary of due to an overrun as the no-entry area K, in which case L is "2".

[0045] On the other hand, the control system 40 may not be able to determine the location of a single unit area U where an abnormal transport vehicle 10E exists, or multiple unit areas U where the abnormal transport vehicle 10E exists across boundaries, for example, if the reading unit 19 cannot read the location information of each transport vehicle 10. In such cases, the control system 40 sets different no-entry areas K depending on the nature of the abnormality that occurred in the abnormal transport vehicle 10E.

[0046] For example, as shown in Figure 9, the transport vehicle 10 may deviate from the target stopping position T to such an extent that it cannot read the position information holder 65 located at the target stopping position T. This is what is known as a derailment. In such a case, the transport vehicle 10 cannot read the position information holder 65, and therefore cannot determine the single unit area U in which it exists, or multiple unit areas U that exist across boundaries. In this embodiment, such an abnormality is referred to as a "second abnormality".

[0047] If the abnormality that occurs in the abnormal transport vehicle 10E is a second abnormality, the control system 40 sets the range of M × M unit areas U on the forward side in the direction of travel, including the immediate preceding area B (in this case, the stopping target position T), as shown in Figure 10, as a no-entry area K. Here, M is an integer of 2 or more. In the case of a second abnormality (derailment), the forward deviation in the direction of travel may be greater than in the case of a first abnormality (overrun), and there may also be a deviation in the width direction relative to the direction of travel. For this reason, the range of M × M unit areas U, including the immediate preceding area B (stopping target position T) and with a slight margin on the forward side in the direction of travel relative to the immediate preceding area B (stopping target position T), is set as a no-entry area K.

[0048] Furthermore, as shown in Figure 11, for example, it cannot be said with certainty that there will never be a case where the transport vehicle 10 collides with another transport vehicle 10. In this embodiment, an abnormality caused by a transport vehicle 10 colliding with another transport vehicle 10 is referred to as the "third abnormality".

[0049] If the abnormality in the abnormal transport vehicle 10E is a third-type abnormality, the control system 40 sets the range of N × N unit areas U centered on the immediate preceding area B as a no-entry area K, as shown in Figure 12. Here, N is an integer greater than M. In the case of a third-type abnormality (collision), the direction of departure and the amount of displacement vary depending on the severity of the collision. For this reason, the range of N × N unit areas U centered on the immediate preceding area B with a certain margin is set as the no-entry area K.

[0050] Note that in Figure 12, for the sake of clarity, only one of the colliding transport vehicles 10 is shown as an abnormal transport vehicle 10E, and its no-entry area K is indicated. However, the other transport vehicle 10 that collided also becomes an abnormal transport vehicle 10E, and the range of N×N unit areas U centered on it is set as the no-entry area K (see Figure 13). In the case of multiple collisions, even more transport vehicles 10 may become abnormal transport vehicles 10E. Therefore, looking at the whole picture, the union of the ranges of N×N unit areas U centered on the area B immediately in front of all the colliding transport vehicles 10 is set as the no-entry area K.

[0051] In this embodiment, the control system 40 distinguishes and recognizes three types of abnormalities that may occur in the transport vehicle 10: a first abnormality, a second abnormality, and a third abnormality. If the abnormality in the abnormal transport vehicle 10E is a first abnormality, the control system 40 sets the range of L unit areas U located in front of the abnormal transport vehicle 10E in the direction of travel, starting from the immediate preceding area B (stop target position T in this example), as a no-entry area K. If the abnormality in the abnormal transport vehicle 10E is a second abnormality, the control system 40 sets the range of M × M unit areas U in front of the direction of travel, including the immediate preceding area B (stop target position T in this example), as a no-entry area K. If the abnormality in the abnormal transport vehicle 10E is a third abnormality, the control system 40 sets the range of N × N unit areas U centered on the immediate preceding area B as a no-entry area K.

[0052] In the case of a first abnormality, "L", which defines the size of the no-entry area K, is an integer of 2 or more. However, in the case of a first abnormality, the abnormal transport vehicle 10E can read the position information holder 65 and determine the two unit areas U that straddle the boundary, so it is preferable that it be "2". In this way, based on the determined position of the abnormal transport vehicle 10E where the first abnormality (overrun) occurred, the no-entry area K can be reduced to the minimum necessary size. Therefore, it is possible to avoid collisions between the abnormal transport vehicle 10E and other normal transport vehicles 10 while minimizing the impact on other normal transport vehicles 10.

[0053] The value "M" that defines the size of the no-entry area K in the case of a second abnormality is an integer of 2 or more, but it is preferable that it be 5 or less from the viewpoint of avoiding the no-entry area K becoming excessively large. Furthermore, it is preferable that the no-entry area K includes one row starting from the immediately preceding area B and includes the same number of rows on both sides thereof, and from this viewpoint, it is preferable that M be an odd number. Taking all of these into consideration, it is preferable that "M" be "3". In this way, even if the position of the abnormal transport vehicle 10E in which the second abnormality (derailment) has occurred cannot be determined, it is possible to appropriately avoid collisions between the abnormal transport vehicle 10E and other normal transport vehicles 10 while keeping the no-entry area K as small as possible.

[0054] In the case of a third anomaly, "N", which defines the size of the no-entry area K, is an integer greater than M. However, even though the abnormal transport vehicle 10E may move significantly due to the collision, it is preferable that N be 8 or less from the viewpoint of avoiding an excessively large no-entry area K. Furthermore, it is preferable that the no-entry area K be set so that it extends equally in each direction from the immediately preceding area B as the center, and from this viewpoint, it is preferable that N be an odd number. Taking these factors together with the preferred value of the reference "M", it is preferable that "N" be 7 or less, and more preferable that it be 5. In this way, even if the position of the abnormal transport vehicle 10E where the third anomaly (collision) has occurred cannot be determined, secondary collisions between the abnormal transport vehicle 10E and other normal transport vehicles 10 can be appropriately avoided.

[0055] When an abnormal transport vehicle 10E is stopped and a no-entry area K is set, the control system 40 controls the transport vehicle 10 to bypass the no-entry area K if the travel path P of another transport vehicle 10 overlaps with the no-entry area K, as shown in Figure 13. In this case, it is preferable for the control system 40 to redraw the travel path P for each transport vehicle 10 whose travel path P is changed, so as to minimize the extension of the path length and the number of places where the vehicle has to change direction. Furthermore, if the occupied areas O in the changed travel paths P of each transport vehicle 10 intersect, the control system 40 prioritizes the transport vehicle 10 whose occupied area O was set first, as described in the normal processing. Also, when the abnormal transport vehicle 10E resumes travel, the control system 40 releases the no-entry area K.

[0056] By performing the abnormality handling described above and setting an entry-restricted area K when an abnormality occurs in any of the multiple transport vehicles 10, it is possible to properly transport goods A while avoiding collisions between the transport vehicles 10, even if a sudden abnormality occurs in some of the transport vehicles 10. The technology disclosed in this embodiment is particularly suitable for configurations in which each transport vehicle 10 of the goods transport equipment 1 is not equipped with a collision prevention sensor.

[0057] [Other Embodiments] (1) In the above embodiment, the configuration described mainly assumes a fixed value for setting the occupied area O in normal processing. However, the configuration is not limited to such a configuration, and the number of setting reservations for setting the occupied area O may be a variable value depending on the state of the transport vehicle 10. For example, the number of setting reservations when the transport vehicle 10 is traveling along the Y direction (first setting reservation) may be greater than the number of setting reservations when the transport vehicle 10 is traveling along the X direction (second setting reservation). Also, if the travel path P of the transport vehicle 10 includes a turning point, the number of setting reservations may be a number that gradually decreases as the transport vehicle 10 travels from its current position to the turning point.

[0058] (2) In the above embodiment, an overrun was given as an example of a first abnormality, and a configuration was described as one in which a unit area U of two squares starting from the immediate preceding area B (stopping target position T) is designated as a no-entry area K when the abnormality that occurs in the abnormal transport vehicle 10E is a first abnormality. However, the configuration is not limited to this, and the abnormal transport vehicle 10E may be contained within a single unit area U in the case of a first abnormality. In such a case, the control system 40 designates only one square of the immediate preceding area B (stopping target position T) as a no-entry area K.

[0059] (3) In the above embodiment, derailment was given as an example of a second abnormality, and the explanation assumed that if a derailment occurs, the abnormal transport vehicle 10E cannot grasp the multiple unit areas U that exist across the boundary. However, the system is not limited to such a configuration, and even if a derailment occurs, if the abnormal transport vehicle 10E can determine the multiple unit areas U that exist across the boundary, the control system 40 may set all (two or four) unit areas U in which the presence of the abnormal transport vehicle 10E can be determined as no-entry areas K.

[0060] (4) In the above embodiment, the no-entry area K when the abnormality in the abnormal transport vehicle 10E is a second abnormality was described as an example in which the area of ​​M × M unit areas U located in front of the area B in the direction of travel. However, the configuration is not limited to such an example, and the no-entry area K may be an area of ​​M × M unit areas U centered on the area B in the direction of travel. Also, the no-entry area K does not necessarily have to be a square, and may be a rectangular area consisting of M × (M+1) or M × (M+2) unit areas U. Alternatively, the no-entry area K may be an area of ​​other shapes, such as a triangle or a trapezoid.

[0061] (5) In the above embodiment, the no-entry area K when the abnormality in the abnormal transport vehicle 10E is a third abnormality was described as an example in which the area of ​​N × N unit areas U centered on the area B immediately preceding the vehicle was defined. However, the embodiment is not limited to such a configuration, and for example, the no-entry area K may be defined as the area of ​​N × N unit areas U on the forward side in the direction of travel relative to the area B immediately preceding the vehicle. Furthermore, the no-entry area K does not necessarily have to be a square, and may be a rectangular area consisting of, for example, N × (N+1) or N × (N+2) unit areas U. Alternatively, the no-entry area K may be an area of ​​other shapes, such as a rhombus, circle, or ellipse.

[0062] (6) In the above embodiment, a configuration was described as in which a position information holder 65 is provided in each unit area U, a reading unit 19 for reading the information held in the position information holder 65 is provided in the transport vehicle 10, and the control system 40 controls the multiple transport vehicles 10 based on the information obtained from the position information holder 65. However, the configuration is not limited to such a configuration, and for example, sensors, cameras, etc. may be installed in each transport vehicle 10 or on the equipment side, and the control system 40 may control the multiple transport vehicles 10 based on the information obtained from them.

[0063] (7) In the above embodiments, the supply area R1, connection area R2, and passage area R3 were mainly assumed to represent areas demarcated by the actual outer edge of the floor 6. However, the invention is not limited to such a configuration, and the supply area R1, connection area R2, and passage area R3 may be virtual areas that are simply set up on the floor 6.

[0064] (8) In the above embodiment, a configuration in which the supply area R1 and the passage area R3 are linear areas extending along the Y direction, and the connection area R2 is a rectangular area in plan view that extends in the X and Y directions was described as an example. However, the configuration is not limited to such a configuration, and for example, at least one of the supply area R1 and the passage area R3 may be a rectangular area in plan view that extends in the X and Y directions, or the entire supply area R1, connection area R2, and passage area R3 may be a rectangular area in plan view that extends in the X and Y directions. In these cases, it is preferable that the abnormality processing be performed in a rectangular area in plan view that extends in the X and Y directions (supply area R1 + connection area R2 / connection area R2 + passage area R3 / supply area R1 + connection area R2 + passage area R3).

[0065] (9) In the above embodiment, the control device 41 constituting the control system 40 was mainly described as comprising a higher-level control device and a control terminal device mounted on each transport vehicle 10 that can communicate with the higher-level control device. However, the system is not limited to such a configuration, and for example, the control system 40 may be a system in which control terminal devices mounted on each of the multiple transport vehicles 10 communicate with each other and operate autonomously based on their own judgments. In this case, the control terminal devices mounted on each of the multiple transport vehicles 10 communicate with each other to execute normal processing and abnormal processing.

[0066] (10) In the above embodiments, the description mainly assumed a configuration in which each transport vehicle 10 is not equipped with a collision avoidance sensor. However, the technology according to the present disclosure is not limited to such a configuration and can naturally be applied to an article transport system 1 equipped with multiple transport vehicles 10 that are equipped with collision avoidance sensors.

[0067] (11) The configurations disclosed in each of the above-described embodiments (including the above-described embodiments and other embodiments; the same applies hereinafter) can be applied in combination with configurations disclosed in other embodiments, insofar as they do not cause a conflict. With respect to other configurations, the embodiments disclosed herein are illustrative in all respects and can be modified as appropriate without departing from the spirit of the disclosure.

[0068] [Summary of the Embodiments] In summary, the article transport equipment relating to this disclosure preferably comprises the following components.

[0069] An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the unit area at the starting point to the unit area at the destination point. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, If an abnormality occurs in any of the multiple transport vehicles, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle in question) may be located as a restricted area where other normal transport vehicles are prohibited from entering.

[0070] With this configuration, by executing normal processing, goods can be transported appropriately while avoiding collisions between transport vehicles, provided that no abnormalities occur in any of the transport vehicles. Furthermore, if an abnormality occurs in any of the transport vehicles, abnormal processing is executed to designate the unit area where the abnormal transport vehicle may be located as a no-entry area. Therefore, even if the unit area where the abnormal transport vehicle is located cannot be determined, the possibility of collision between the abnormal transport vehicle and other normal transport vehicles can be reduced. Thus, goods can be transported appropriately while avoiding collisions between transport vehicles, not only under normal conditions but also when some of the transport vehicles experience abnormalities.

[0071] As one aspect, In the abnormality processing, if the control system can determine one unit area in which the abnormal transport vehicle is located, or multiple unit areas in which the abnormal transport vehicle is located across boundaries, it is preferable to set all of at least one unit area in which the presence of the abnormal transport vehicle has been determined as an entry-restricted area.

[0072] With this configuration, if one or more unit areas containing abnormal transport vehicles can be identified, the restricted area can be minimized based on that identification. Therefore, if an abnormality occurs in any transport vehicle, the impact on the operation of other normal transport vehicles can be minimized.

[0073] As one aspect, In the abnormality processing, if the control system cannot determine one unit area in which the abnormal transport vehicle is located, or multiple unit areas in which the abnormal transport vehicle straddles a boundary, it is preferable to set different ranges of no-entry areas depending on the nature of the abnormality that occurred in the abnormal transport vehicle.

[0074] With this configuration, if it is not possible to determine one or more unit areas where an abnormal transport vehicle is located, it is easier to set the no-entry area to an appropriate size depending on the nature of the abnormality in the abnormal transport vehicle. Therefore, depending on the nature of the abnormality in the abnormal transport vehicle, it is possible to appropriately reduce the possibility of collision between the abnormal transport vehicle and other normal transport vehicles while minimizing the impact on the movement of other normal transport vehicles.

[0075] in particular, Each of the aforementioned unit areas is provided with a location information holder that holds the location information of that unit area. The transport vehicle is equipped with a reading unit that reads the position information held in the position information holder, The abnormalities of the transport vehicle include a first abnormality, which is an abnormality caused by the transport vehicle deviating from the stop target position within a range that allows the position information holder provided at the stop target position to be read; a second abnormality, which is an abnormality caused by the transport vehicle deviating from the stop target position to such an extent that the position information holder provided at the stop target position cannot be read; and a third abnormality, which is an abnormality caused by the transport vehicle colliding with another transport vehicle. The control system is If the abnormality that occurred in the abnormal transport vehicle is the first abnormality, the range of L (where L is an integer of 2 or more) unit areas located in front of the abnormal transport vehicle in the direction of travel, starting from the unit area that existed immediately before the abnormal transport vehicle became abnormal, is set as the no-entry area. If the abnormality that occurred in the abnormal transport vehicle is the second abnormality, the area of ​​M × M (where M is an integer of 2 or more) of the unit areas in the forward direction of travel, including the unit area that existed immediately before the abnormal transport vehicle became abnormal, is set as the no-entry area. If the abnormality that occurred in the abnormal transport vehicle is the third abnormality, it is preferable to set the range of N × N (where N is an integer greater than M) unit areas centered on the unit area that existed immediately before the abnormal transport vehicle became abnormal as the no-entry area.

[0076] This configuration allows for the appropriate determination of reference positions for setting no-entry areas according to the nature of the abnormality, and the range of the no-entry area to be set wider as the severity of the abnormality increases. This makes it possible to appropriately set the range of the no-entry area depending on whether the abnormality in the abnormal transport vehicle is a first, second, or third abnormality. Therefore, depending on whether the abnormality in the abnormal transport vehicle is a first, second, or third abnormality, the possibility of collision between the abnormal transport vehicle and other normal transport vehicles can be appropriately reduced, while minimizing the impact on the movement of other normal transport vehicles.

[0077] The goods transport equipment relating to this disclosure only needs to achieve at least one of the effects described above. [Explanation of Symbols]

[0078] 1. Goods handling equipment 6 floors 10 Transport vehicles 10E Abnormal Transport Vehicle 19 Reading section 40 Control Systems 65 Location information holder U Unit Area K No entry area B Immediately before area P Driving Route S Starting point D Destination point T Stop target position A Goods

Claims

1. An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the starting unit area to the destination unit area. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, If an abnormality occurs in any of the multiple transport vehicles, causing it to deviate from its scheduled route or stopping point, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle that experienced the abnormality) may be located as a restricted area where other normal transport vehicles are prohibited from entering. The control system is an article transport equipment that, in the abnormality handling process, sets different ranges of no-entry areas depending on the nature of the abnormality that occurred in the abnormal transport vehicle.

2. The article transport equipment according to Claim 1, wherein the control system sets the no-entry area when the abnormality in the abnormal transport vehicle is due to deviating from the planned travel path to be wider than the no-entry area when the abnormality in the abnormal transport vehicle is due to deviating from the planned stopping point.

3. The article transport equipment according to claim 1 or 2, wherein, in the abnormality processing, if the control system can determine one unit area in which the abnormal transport vehicle is located, or a plurality of unit areas in which the abnormal transport vehicle is located across boundaries, all of the unit areas in which the presence of the abnormal transport vehicle can be determined are set as the no-entry area.

4. The article transport equipment according to claim 1 or 2, wherein, in the abnormality processing, the control system sets different ranges of no-entry areas according to the nature of the abnormality that occurred in the abnormal transport vehicle if it is not possible to determine one unit area in which the abnormal transport vehicle is located, or a plurality of unit areas in which the abnormal transport vehicle is located across boundaries.

5. An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the starting unit area to the destination unit area. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, If an abnormality occurs in any of the multiple transport vehicles, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle in question) may be located as an entry-restricted area where other normal transport vehicles are prohibited from entering. The control system, in the abnormality handling process, if it is not possible to determine one unit area in which the abnormal transport vehicle is located, or multiple unit areas in which the abnormal transport vehicle is located across boundaries, sets different ranges of no-entry areas according to the nature of the abnormality that occurred in the abnormal transport vehicle, for goods transport equipment.

6. An article transporting system comprising a plurality of transport vehicles that travel across the floor to transport articles, and a control system that controls the transport vehicles, The control system is The aforementioned floor is divided into multiple unit areas of a size that can accommodate the transport vehicle and managed accordingly. The transport vehicle is controlled to move sequentially through adjacent unit areas from the starting unit area to the destination unit area. The normal process of controlling multiple transport vehicles is performed so that multiple transport vehicles do not enter the same unit area at the same time, If an abnormality occurs in any of the multiple transport vehicles, an abnormality handling process is executed to set the unit area where the abnormal transport vehicle (the transport vehicle in question) may be located as an entry-restricted area where other normal transport vehicles are prohibited from entering. Each of the aforementioned unit areas is provided with a location information holder that holds the location information of that unit area. The transport vehicle is equipped with a reading unit that reads the position information held in the position information holder, The abnormalities of the transport vehicle include a first abnormality, which is an abnormality caused by the transport vehicle deviating from the stop target position within a range that allows the position information holder provided at the stop target position to be read; a second abnormality, which is an abnormality caused by the transport vehicle deviating from the stop target position to such an extent that the position information holder provided at the stop target position cannot be read; and a third abnormality, which is an abnormality caused by the transport vehicle colliding with another transport vehicle. The control system is If the abnormality that occurred in the abnormal transport vehicle is the first abnormality, the range of L (where L is an integer of 2 or more) unit areas located in front of the abnormal transport vehicle in the direction of travel, starting from the unit area that existed immediately before the abnormal transport vehicle became abnormal, is set as the no-entry area. If the abnormality that occurred in the abnormal transport vehicle is the second abnormality, the area of ​​M × M units (where M is an integer of 2 or more) in the forward direction of travel, including the unit area that existed immediately before the abnormal transport vehicle became abnormal, is set as the no-entry area. If the abnormality that occurred in the abnormal transport vehicle is the third abnormality, the goods transport equipment sets the range of N × N (where N is an integer greater than M) of the unit areas centered on the unit area that existed immediately before the abnormal transport vehicle became abnormal as the no-entry area.

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