Article storage facility
09679795 ยท 2017-06-13
Assignee
Inventors
Cpc classification
H01L21/67393
ELECTRICITY
Y10T137/6966
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
An article storage facility is provided which is relatively simple in structure and in which it is easier to perform maintenance work of apparatus provided to each zone. A first switching valve is provided in each of a plurality of zone gas supply portions whereas a second switching valve is provided in each of a plurality of storage section gas supply portions. A plurality of relief passages is provided with each relief passage connected to the inactive gas supply passage on a downstream side, with respect to a gas supplying direction, of the position in which the first switching valve is provided and on an upstream side, with respect to the gas supplying direction, of the position in which the second switching valve is provided in the inactive gas supply passage. A zone relief switching valve is provided to each of the plurality of relief passages.
Claims
1. An article storage facility comprising: a plurality of storage sections for storing containers; an inactive gas supply passage for supplying inactive gas to each of the plurality of storage sections; inject portions, each of which is configured to inject the inactive gas supplied to an associated one of the storage sections by the inactive gas supply passage into inside an associated one of the containers stored in the associated one of the storage sections; wherein the plurality of storage sections are divided into a plurality of zones, wherein the inactive gas supply passage includes a base gas supply portion, a plurality of zone gas supply portions each of which branches off from the base gas supply portion to associated one of the plurality of zones to supply the inactive gas which flows through the base gas supply portion to the associated one of the plurality of zones, a plurality of storage section gas supply portions each of which is branched off from each zone gas supply portion to respective ones of the storage sections and configured to supply the inactive gas which flows through a corresponding zone gas supply portion individually to associated one of the plurality of storage sections that belong to one of the plurality of zones that corresponds to the corresponding zone gas supply portion, and is configured to allow the inactive gas to be injected from associated one of the inject portions, wherein the article storage facility further comprises: a first switching valve provided in each of the plurality of zone gas supply portions, and which can be switched between an open state in which the inactive gas is allowed to flow through the first switching valve and a closed state in which the inactive gas is prevented from flowing through the first switching valve; a second switching valve provided in either (a) each of the plurality of zone gas supply portions, on a downstream side, with respect to a gas supplying direction, of a position in which the first switching valve is provided, or (b) each of the plurality of storage section gas supply portions, wherein the second switching valve can be switched between an open state in which the inactive gas is allowed to flow through the second switching valve and a closed state in which the inactive gas is prevented from flowing through the second switching valve; and a plurality of relief passages connected to respective ones of the plurality of zone gas supply portions for discharging inactive gas from the respective ones of the zone gas supply portions; wherein each of the plurality of relief passages is connected to the inactive gas supply passage on the downstream side, with respect to the gas supplying direction, of a position in which the first switching valve is provided in the inactive gas supply passage and on the upstream side, with respect to the gas supplying direction, of a position in which the second switching valve is provided, and wherein each of the plurality of relief passages is provided with a zone relief switching valve which can be switched between an open state in which inactive gas is allowed to flow through the zone relief switching valve, and a closed state in which inactive gas is prevented from flowing through the zone relief switching valve.
2. The article storage facility as defined in claim 1, wherein walls are provided to enclose installation space in which the plurality of storage sections are installed, wherein each zone relief switching valve is located outside the walls, and is a manually operated switching valve which can be switched between the open state and the closed state by manual operation.
3. The article storage facility as defined in claim 2, wherein a merged relief passage connected to each of the plurality of relief passages at a location on a downstream side, with respect to a gas discharge direction, of a position in which the zone relief switching valve is provided in each of the plurality of relief passages, wherein a merged relief switching valve is provided in the merged relief passage wherein the merged relief switching valve can be switched by manual operation between an open state in which inactive gas is allowed to flow through the merged relief switching valve and a closed state in which inactive gas is prevented from flowing through the merged relief switching valve, and wherein the merged relief switching valve is located outside the walls.
4. The article storage facility as defined in claim 1, wherein a base portion relief passage which is connected to the base gas supply portion is provided, and wherein the base portion relief passage is provided with a base portion relief switching valve which can be switched between an open state in which inactive gas is allowed to flow through the base portion relief switching valve, and a closed state in which inactive gas is prevented from flowing through the base portion relief switching valve.
5. The article storage facility as defined in claim 1, wherein the plurality of relief passages are directly connected to respective ones of the plurality of zone gas supply portions for discharging inactive gas from the respective ones of the zone gas supply portions.
6. The article storage facility as defined in claim 2, wherein the plurality of relief passages are directly connected to respective ones of the plurality of zone gas supply portions for discharging inactive gas from the respective ones of the zone gas supply portions.
7. The article storage facility as defined in claim 3, wherein the plurality of relief passages are directly connected to respective ones of the plurality of zone gas supply portions for discharging inactive gas from the respective ones of the zone gas supply portions.
8. The article storage facility as defined in claim 4, wherein the plurality of relief passages are directly connected to respective ones of the plurality of zone gas supply portions for discharging inactive gas from the respective ones of the zone gas supply portions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(10) The embodiment of the present invention is described next with reference to the drawings.
(11) (Overall Structure)
(12) As shown in
(13) Note that a pair of storage racks 10 are provided such that they face each other. Also, in the present embodiment, each storage rack 10 stores FOUPs (Front Opening Unified Pod), which function as the containers 50, each of which holds or stores semiconductor substrates W (referred to hereinafter as substrates W).
(14) (Structure of the Container 50)
(15) As shown in
(16) As shown in
(17) Thus, the container 50 is configured to gain and maintain its airtightness by closing the opening by means of the lid 52 with the substrates W stored within the container 50, and by closing each of the gas supply opening 50i and the discharge opening 50o with respective opening and closing valves.
(18) The introducing side opening and closing valve of the gas supply opening 50i is urged in a valve closing direction, or toward its closed position, by an urging member, such as a spring. And when the inject pressure of the nitrogen gas supplied to the gas supply opening 50i becomes greater than or equal to a set valve opening pressure which is set to be a value greater than the atmospheric pressure, the introducing side opening and closing valve of the gas supply opening 50i is opened by that inject pressure.
(19) Also, the discharging side opening and closing valve of the discharge opening 50o is urged in a valve closing direction, or toward its closed position, by an urging member, such as a spring. And when the pressure inside the container 50 becomes greater than or equal to a set valve opening pressure which is set to be a value greater than the atmospheric pressure, the discharge side opening and closing valve of the discharge opening 50o is opened by that pressure.
(20) (Structure of the Stacker Crane 20)
(21) As shown in
(22) A transfer device 25 for transferring the container 50 to or from a storage section 10S and to or from the carry in and out conveyor CV is mounted on the vertically movable platform 24. And the stacker crane 20 is configured to perform a carry in operation for transporting a container 50 on the carry in and out conveyer CV to a storage section 10S, a carry out operation for transporting a container 50 stored in a storage section 10S to the carry in and out conveyer CV, and a relocating operation for transporting a container 50 in a storage section 10S to another storage section 10S, by performing a traveling operation of the travel carriage 21, a raising and lowering operation of the vertically movable platform 24 and a transfer operation of the transfer device 25.
(23) (Structure of the Storage Sections 10S)
(24) As shown in
(25) And as shown in
(26) As shown in
(27) In addition, the receiving support portion 10a is provided with a plurality (three in the present example) of positioning projections 10b for engaging a plurality (three in the present example) of engaged portions (not shown) formed in the undersurface of each container 50 to properly position the container 50 in a predetermined position, and load presence sensors 10z for detecting whether a container 50 is placed on the receiving support portion 10a (i.e., whether the container 50 is stored in the storage section 10S). Two load presence sensors 10z are provided to each receiving support portion 10a in the present example.
(28) In addition, as shown in
(29) As shown in
(30) In other words, when the container 50 is stored in the storage section 10S and placed on the receiving support portion 10a, the container 50 is properly positioned in a predetermined position in the horizontal direction by the positioning projections 10b, and the inject nozzle 10i fits into and is connected to the gas supply opening 50i whereas the discharging gas passage body 10o fits into and is connected to the discharge opening 50o.
(31) And with the container 50 received and supported by the receiving support portion 10a, nitrogen gas is injected into the interior of the container 50 through the gas supply opening 50i of the container 50 by causing the nitrogen gas to be injected from the inject nozzle 10i at a pressure greater than or equal to a set value which is greater than the atmospheric pressure, so that the gas in the container 50 is caused to be discharged, or removed, to the outside through the discharge opening 50o of the container 50.
(32) (Structure for Supplying Nitrogen Gas)
(33) As shown in
(34) Incidentally,
(35) Note that, in describing the nitrogen gas supply passages 60, the direction in which nitrogen gas passes, or flows, toward the inject nozzle 10i from the supply source is referred to as the gas supplying direction, and the description is given using the terms, upstream and downstream, with respect to the gas supplying direction as they are defined in terms of the flow of inactive gas in the gas supplying direction.
(36) (Base Gas Supply Portion)
(37) As shown in
(38) Each of the first manually operated base portion valve 65, the base portion control valve 66, and the second manually operated base portion valve 67 are configured to be switched between an open state, or open position, in which the nitrogen gas is allowed to flow from the base gas supply portion 61 to the zone gas supply portions 62 and a closed state, or closed position, in which the gas is not allowed to flow from the base gas supply portion 61 to the zone gas supply portions 62. The base portion control valve 66 is switched to each of the open state and the closed state based on a control command from the controller H. In addition, the first manually operated base portion valve 65 and the second manually operated base portion valve 67 are manually operated by a worker to be switched between the closed state and the open state.
(39) And nitrogen gas is allowed to flow from the base gas supply portion 61 to the zone gas supply portions 62 by switching each of the first manually operated base portion valve 65, the base portion control valve 66, and the second manually operated base portion valve 67 to the open state, whereas nitrogen gas is prevented from flowing from the base gas supply portion 61 to the zone gas supply portions 62 by switching at least one of the first manually operated base portion valve 65, the base portion control valve 66, and the second manually operated base portion valve 67 to the closed state.
(40) (Zone Gas Supply Portion)
(41) As shown in
(42) As shown in
(43) The manually operated zone valve 69 and the zone control valve 72 are configured to be switched between an open state or open position in which nitrogen gas is allowed to flow from the zone gas supply portion 62 to the storage section gas supply portions 63, and a closed state or closed position in which nitrogen gas is not allowed to flow from the zone gas supply portion 62 to the storage section gas supply portions 63. Each zone control valve 72 is operated individually to each of the open state and the closed state based on a control command from the controller H. In addition, the manually operated zone valve 69 is manually operated by a worker to be switched between the closed state and the open state.
(44) And the nitrogen gas is allowed to flow from the zone gas supply portion 62 to the storage section gas supply portions 63 by switching each of the manually operated zone valve 69 and the zone control valve 72 to the open state whereas the nitrogen gas is prevented from flowing from the zone gas supply portion 62 to the storage section gas supply portions 63 by switching at least one of the manually operated zone valve 69 and the zone control valve 72 to the closed state.
(45) In addition, the pressure regulating valve 70 adjusts the pressure of nitrogen gas in the storage section gas supply portions 63 by adjusting or regulating the flow rate of the nitrogen gas that flows from the zone gas supply portion 62 to the storage section gas supply portions 63. The pressure sensor 71 detects the pressure of the nitrogen gas in the storage section gas supply portion 63.
(46) (Storage Section Gas Supply Portion)
(47) As shown in
(48) Incidentally, the direction indicated in
(49) As shown in
(50) Note that, in the present embodiment, each manually operated storage section valve 74 functions as the second switching valve of the present invention.
(51) The manually operated storage section valve 74 and the storage section control valve 75 are configured to be switched between an open state or open position in which nitrogen gas is allowed to flow from the storage section gas supply portion 63 to the inject nozzle 10i, and a closed state or closed position in which nitrogen gas is prevented from flowing from the storage section gas supply portion 63 to the inject nozzle 10i. Each storage section control valve 75 is operated individually between the open state and the closed state based on a control command from the controller H. In addition, the manually operated storage section valve 74 is manually operated by a worker to be switched between the closed state and the open state.
(52) And the nitrogen gas is allowed to flow from the storage section gas supply portion 63 to the inject nozzle 10i by switching each of the manually operated storage section valve 74 and the storage section control valve 75 to the open state whereas the nitrogen gas is prevented from flowing from the storage section gas supply portion 63 to the inject nozzle 10i by switching at least one of the manually operated storage section valve 74 and the storage section control valves 75 to the closed state.
(53) In addition, each mass flow controller 40 has a function of a flow rate regulating valve which adjusts the flow rate of the nitrogen gas that flows from the storage section gas supply portion 63 to the inject nozzle 10i as well as a function of a flow rate sensor which detects the flow rate of the nitrogen gas that flows from the storage section gas supply portion 63 to the inject nozzle 10i.
(54) Each of the control valves, namely the base portion control valve 66, the zone control valves 72 and the storage section control valves 75, is operated individually between the open state and the closed state based on a control command from the controller H.
(55) In addition, each of the manually operated valves, namely the first manually operated base portion valve 65, the second manually operated base portion valve 67, the manually operated zone valves 69, and the manually operated storage section valves 74 is manually operated by a worker to be switched between the closed state and the open state.
(56) (Control Related Arrangements)
(57) As shown in
(58) To describe in more detail, when the controller H receives a carry in command from the superordinate controller, it performs a carry in transport process. In the carry in transport process, the controller H selects, as the target storage section 10S for storage and based on the storage status, one of the storage sections 10S that is an empty storage section 10S in which no container 50 is stored, and controls operation of the stacker crane 20 to transport a container 50 from the carry in and out conveyor CV to the target storage section 10S. Also, when the controller H receives a carry out command from the superordinate controller, it performs a carry out transport process. In the carry out transport process, the controller H controls operation of the stacker crane 20 to transport a target container 50 to be carried out from the storage section 10S in which the target container 50 is stored, to the carry in and out conveyor CV.
(59) In addition, a programmable logic controller P and a plurality of I/O enhancement modules A are connected the controller H by communication lines for mutual communication. A plurality of mass flow controllers 40 are connected to the programmable logic controller P. Connected to each I/O enhancement module A are the load presence sensors 10z, the pressure sensor 71, and a manifold 87, that belong to the corresponding zone CH.
(60) And the controller H controls the operation of the base portion control valve 66 and transmits, to the programmable logic controller P, supply information which indicates supply amount of nitrogen gas as well as which storage sections 10S to supply nitrogen gas to. The programmable logic controller P controls operations of the mass flow controllers 40 (flow rate regulating valves) based on the supply information from the controller H and transmits command information to each manifold 87 through corresponding I/O enhancement module A. Each manifold 87 operates based on the command information, and operates the zone control valve 72 and the storage section control valves 75 to supply nitrogen gas to the storage sections 10S that are targets of nitrogen gas supply.
(61) Thus, the controller H controls operations of the base portion control valve 66, the zone control valves 72, the storage section control valves 75, and the mass flow controllers 40 through the programmable logic controller P, and the I/O enhancement modules A, etc.
(62) (Bypass Passage)
(63) As shown in
(64) In the present example, the bypass passage 77 is provided to allow communication between two zone gas supply portions 62 that belong to two zones CH that are next to each other in the vertical direction. And so, three such bypass passages 77 are provided for the six zones CH. Note that the bypass passage 77 is of the same diameter as the pipe in the zone gas supply portion 62.
(65) As shown in
(66) (Relief Passage)
(67) As shown in
(68) (Base Portion Pressure Relief)
(69) As shown in
(70) Provided in the base portion relief passage 81 are a relief pressure regulating valve 86, and a manually operated base portion relief valve 83 which can be switched between an open state or open position in which inactive gas is allowed to flow through it, and a closed state or closed position in which inactive gas is prevented from flowing through it, in that order from the upstream side in the gas discharge direction. The relief pressure regulating valve 86 has the same structure as the pressure regulating valve 70. The manually operated base portion relief valve 83 is manually operated by a worker to be switched between the closed state and the open state. Note that, in the present embodiment, the manually operated base portion relief valve 83 functions as the base portion relief switching valve of the present invention.
(71) Thus, all of the nitrogen gas from the supply source (not shown) can be caused to flow to the zone gas supply portions 62 by switching the first manually operated base portion valve 65 and the second manually operated base portion valve 67 to the open state and by switching the manually operated base portion relief valve 83 to the closed state.
(72) In addition, by switching the first manually operated base portion valve 65, the second manually operated base portion valve 67, and the manually operated base portion relief valve 83 to the open state, the nitrogen gas from the supply source can be caused to flow to the zone gas supply portions 62 while allowing a part of nitrogen gas from the supply source to flow to the base portion relief passage 81 to cause it to be discharged to the outside, thus making it possible, for example, to take a sample of the nitrogen gas from the supply source.
(73) In addition, by switching the first manually operated base portion valve 65 to the open state, and switching the second manually operated base portion valve 67 to the closed state, and switching the manually operated base portion relief valve 83 to the open state, all of the nitrogen gas from the supply source can be caused to flow to the base portion relief passage 81, thus making it possible to cause the nitrogen gas to flow between the supply source and the base gas supply portion 61.
(74) In addition, by switching the first manually operated base portion valve 65 to the closed state, and switching the second manually operated base portion valve 67 and the manually operated base portion relief valve 83 to the open state, nitrogen gas in the base gas supply portion 61 can be caused to flow to the base portion relief passage 81 to perform pressure venting of the base gas supply portion 61.
(75) Incidentally, the direction indicated in
(76) (Zone Pressure Relief)
(77) As shown in
(78) The number of the zone relief portions 82a is the same as the number of the zones CH (six in the present example). And a manually operated zone relief valve 84 is provided in each of the zone relief portion 82a. Each manually operated zone relief valve 84 is configured to be manually switched by a worker between an open state or open position in which nitrogen gas is allowed to flow through it and a closed state or open position in which the nitrogen gas is prevented from flowing through it. Note that, in the present embodiment, the manually operated zone relief valve 84 functions as the zone relief switching valve of the present invention.
(79) And each of the plurality of zone relief portions 82a is connected to the zone gas supply portion 62 at a location on the downstream side, with respect to the gas supplying direction, of the position in which the manually operated zone valve 69 in the zone installation portion 62a of the zone gas supply portion 62 is provided. Thus, each zone relief portions 82a is connected to the zone gas supply portion 62 on the downstream side, with respect to the gas supplying direction, of the position in which the manually operated zone valve 69 is provided, and on the upstream side, with respect to the gas supplying direction, of the position in which the manually operated storage section valve 74 is provided.
(80) In addition, the merged relief portion 82b is connected to the plurality of zone relief portions 82a on the downstream side, with respect to the gas discharge direction, of the positions in which the manually operated zone relief valves 84 of respective ones of the plurality of zone relief portions 82a are provided. The merged relief portion 82b is provided with a manually operated merged relief valve 85 which can be manually switched by a worker between an open state or open position in which nitrogen gas is allowed to flow through it, and a closed state or closed position in which nitrogen gas is prevented from flow through it. Note that, in present embodiment, the manually operated merged relief valve 85 functions as the merged relief switching valve of the present invention.
(81) Thus, the nitrogen gas from the base gas supply portion 61 can be caused to be discharged from the inject nozzles 10i by switching the manually operated zone valves 69 and the manually operated storage section valves 74 to the open state.
(82) In addition, by switching, for any given zone, the manually operated zone valve 69 and the manually operated storage section valves 74 to the open state, and switching the corresponding manually operated zone relief valve 84 and the manually operated merged relief valve 85 to the open state, nitrogen gas from the base gas supply portion 61 can be caused to be discharged from the inject nozzles 10i while causing a portion of the nitrogen gas from the base gas supply portion 61 to flow to the zone relief passage 82 to discharge it to the outside, thus, making it possible, for example, to take a sample of the nitrogen gas for any given zone.
(83) In addition, by switching, for any given zone, the manually operated storage section valves 74 to the closed state, and switching the manually operated zone valve 69, the manually operated zone relief valve 84, and the manually operated merged relief valve 85 to the open state, all of the nitrogen gas from the base gas supply portion 61 can be caused to flow to the zone relief passage 82, thus, making it possible to cause the nitrogen gas to flow for any given zone.
(84) In addition, by switching, for any given zone, the manually operated zone valve 69 and the manually operated storage section valves 74 to the closed state, and switching the manually operated zone relief valve 84 and the manually operated merged relief valve 85 to the open state, nitrogen gas in the zone gas supply portion 62 (particularly, a target portion of the zone, that is on the downstream side, with respect to the gas supplying direction, of the position of the corresponding manually operated zone valve 69 and that is on the upstream side, with respect to the gas supplying direction, of the position of the corresponding manually operated storage section valve 74) can be caused to flow to the zone relief passage 82, which makes it possible to perform pressure venting of the zone gas supply portion 62 (i.e., the target portion of the zone).
(85) Incidentally, the direction indicated in
(86) As such, in the article storage facility of the present embodiment, the manually operated zone valve 69 is provided to each of the plurality of zone gas supply portions 62, and the manually operated storage section valve 74 is provided to each of the plurality of storage section gas supply portions 63. In addition, each zone relief passage 82 is connected to the nitrogen gas supply passage 60 on the downstream side of the manually operated zone valve 69 and on the upstream side of the manually operated storage section valve 74 in each nitrogen gas supply passage 60. This arrangement makes it possible to perform pressure venting, to take a sample of nitrogen gas, and to allow nitrogen gas to flow through, for each zone.
ALTERNATIVE EMBODIMENTS
(87) (1) In the embodiment described above, each of the first switching valve, the second switching valve, zone relief switching valves, the merged relief switching valve, and base portion relief switching valve is a manual valve configured to be manually operated and switched by a worker; however, one or more or all of these switching valves may be a control valve which is configured to be switched based on a control command from the controller H.
(88) More specifically, for example, the zone relief switching valves and the merged relief switching valve may be control valves. And the facility may be arranged such that, when a worker specifies one or more zones CH and issues a sampling command by means of the control panel, the zone relief switching valves of the specified zones CH and the merged relief switching valve are operated to the open state based on the control command from the controller H, and such that, when a set period elapses or when a sampling end command is issued by means of the control panel, the zone relief switching valves and the merged relief switching valve are operated to the closed state based on the control command from the controller H.
(89) (2) In the embodiment described above, arrangements are made such that the inactive gas discharged from the zone relief passages 82 is discharged from one location by providing a plurality of zone relief portions 82a and a merged relief portion 82b. However, only the plurality of zone relief portions 82a (between the plurality of zone relief portions 82a and the merged relief portion 82b) may be provided so that inactive gas discharged from the zone relief passages 82 is discharged from a separate location for each zone CH.
(90) (3) In the embodiment described above, the base portion relief switching valve, the zone relief switching valves, and the merged relief switching valve are provided outside the walls K. However, one or more or all of these relief switching valves may be provided inside the walls K.
(91) Incidentally, outside the walls K may simply mean outside the installation space in which the storage racks 10 and the stacker crane 20 are provided. For example, in a case where the walls K are arranged such as to define two separate space, namely the installation space and second space in which the controller H is provided, then the second space may be considered to be outside the walls K, and the relief switching valves may be provided in this second space.
(92) Also, when providing a relief switching valve outside the walls K, it is necessary only to provide at least a part of the relief switching valve (more specifically, control portion such as a control lever of the valve which a worker operates) outside the walls K. And it is not necessary to have the entire relief switching valve located outside the walls K.
(93) (4) In the embodiment described above, the second switching valve is provided to each of the plurality of storage section gas supply portions 63. However, a second switching valve may be provided to each of the plurality of zone gas supply portions 62 instead. In this case, each second switching valve may be provided on the downstream side, with respect to the gas supplying direction, of the position in which the first switching valve in the zone gas supply portion 62 is provided and of the position in which the zone relief passage 82 (zone relief portion 82a) is connected to the zone gas supply portion 62.
(94) (5) In the embodiment described above, an example is described in which each container 50 is a FOUP for storing semiconductor substrates; however, the invention is not limited to this arrangement. And, for example, the container 50 may be a reticle container for storing reticles. In addition, nitrogen gas is used as the inactive gas in the embodiment described above. However, various kinds of gas, other than the nitrogen gas, with low reactivity with the stored substrates W, such as gaseous argon etc., may be used as the inactive gas. Incidentally, a broad range of things, such as industrial products, food, medical supplies, etc. may be stored in the containers 50 as articles.
(95) (6) In the embodiment described above, the inactive gas supply passage is provided only to one storage rack 10 between the pair of the storage racks 10 provided in the article storage facility; however, the inactive gas supply passage may be provided to both of the storage racks 10. Incidentally, when the inactive gas supply passage is provided to both of the storage racks 10, the base gas supply portion 61 and the supply source may be provided to each of the storage racks 10. Alternatively, the base gas supply portion 61 and one supply source may be shared between the two storage racks 10.
(96) (7) With respect to these and other arrangements, and structures, the embodiments disclosed in the present specification are provided only as examples in every respect, and the scope of the present invention is not limited by these embodiments. And various suitable changes and modifications can be made without departing from the spirit of the present invention. Therefore, any other embodiment with changes and modifications made without departing from the spirit of the present invention would naturally fall within the scope the present invention.