Nothing Special   »   [go: up one dir, main page]

JP6863698B2 - Compressed gas supply system - Google Patents

Compressed gas supply system Download PDF

Info

Publication number
JP6863698B2
JP6863698B2 JP2016180630A JP2016180630A JP6863698B2 JP 6863698 B2 JP6863698 B2 JP 6863698B2 JP 2016180630 A JP2016180630 A JP 2016180630A JP 2016180630 A JP2016180630 A JP 2016180630A JP 6863698 B2 JP6863698 B2 JP 6863698B2
Authority
JP
Japan
Prior art keywords
compressed gas
storage container
gas storage
compressor
supplied
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
JP2016180630A
Other languages
Japanese (ja)
Other versions
JP2018044630A (en
Inventor
安彦 浦辺
安彦 浦辺
徹 波多江
徹 波多江
崇 大和久
崇 大和久
勲 瀧本
勲 瀧本
建信 橋本
建信 橋本
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Tokyo Gas Co Ltd
Original Assignee
Tokyo Gas Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Tokyo Gas Co Ltd filed Critical Tokyo Gas Co Ltd
Priority to JP2016180630A priority Critical patent/JP6863698B2/en
Publication of JP2018044630A publication Critical patent/JP2018044630A/en
Application granted granted Critical
Publication of JP6863698B2 publication Critical patent/JP6863698B2/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Filling Or Discharging Of Gas Storage Vessels (AREA)

Description

本発明は、圧縮気体を貯蔵する圧縮気体貯蔵容器を備えた圧縮気体供給システムに関する。 The present invention relates to a compressed gas supply system including a compressed gas storage container for storing compressed gas.

従来、気体を圧縮して圧縮気体を生成する複数の圧縮機と、複数の圧縮機にて生成された圧縮気体を貯蔵する圧縮気体貯蔵容器とを備える圧縮気体供給システムがある(例えば、特許文献1参照)。この圧縮気体供給システムは、圧縮気体貯蔵容器を備えるので、圧縮気体の需要量に瞬間的な変動がある場合でも、圧縮気体貯蔵容器から圧縮気体を供給することにより、圧縮気体の需要量の瞬間的な変動に対応可能である。 Conventionally, there is a compressed gas supply system including a plurality of compressors for compressing a gas to generate a compressed gas and a compressed gas storage container for storing the compressed gas generated by the plurality of compressors (for example, Patent Document). 1). Since this compressed gas supply system includes a compressed gas storage container, even if there is a momentary fluctuation in the demand amount of the compressed gas, the compressed gas is supplied from the compressed gas storage container at the moment of the demand amount of the compressed gas. It is possible to respond to various fluctuations.

特開2004−084540号公報Japanese Unexamined Patent Publication No. 2004-084540

しかしながら、圧縮空気の需要量を常時満たす供給量を確保できる圧縮機を設置する場合、圧縮機の負荷率(定格供給量に対する実供給量)は低くなる。圧縮機は定格(負荷率100%)時に最も圧縮空気の製造効率がよいことから、低い負荷率で圧縮機を運転することは、製造効率が低くなる。また、大量の圧縮気体を必要とする需要家の場合、圧縮気体貯蔵容器を大きくする必要がある。圧縮気体貯蔵容器を大きくすると、圧縮気体供給システムが大型化する。 However, when a compressor that can secure a supply amount that constantly satisfies the demand amount of compressed air is installed, the load factor of the compressor (actual supply amount with respect to the rated supply amount) becomes low. Since the compressor has the highest production efficiency of compressed air at the rated value (load factor 100%), operating the compressor at a low load factor lowers the production efficiency. Also, for consumers who need a large amount of compressed gas, it is necessary to increase the size of the compressed gas storage container. The larger the compressed gas storage container, the larger the compressed gas supply system.

本発明は、上記事情に鑑みて成されたものであって、圧縮空気の製造効率の改善および圧縮機の削減、圧縮気体貯蔵容器の小型化、ひいては、この圧縮気体貯蔵容器を備えた圧縮気体供給システムの小型化を目的とする。 The present invention has been made in view of the above circumstances, and has improved the production efficiency of compressed air, reduced the number of compressors, miniaturized the compressed gas storage container, and by extension, the compressed gas provided with the compressed gas storage container. The purpose is to reduce the size of the supply system.

請求項1に記載の圧縮気体供給システムは、気体を圧縮して圧縮気体を生成する複数の圧縮機と、圧縮気体を貯蔵する容器本体と、前記容器本体の内部に設けられ、前記容器本体の内部の圧縮気体を吸着する吸着材と、を備える圧縮気体貯蔵容器と、消費機器による圧縮気体の需要量を検出する圧縮気体需要量検出部と、前記圧縮気体貯蔵容器における圧縮気体の残量を検出する圧縮気体残量検出部と、前記圧縮気体需要量検出部の検出結果に基づいて、前記圧縮機及び前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の全てから前記圧縮気体貯蔵容器に圧縮気体が供給されて前記圧縮気体貯蔵容器に圧縮気体が貯蔵されると共に前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の一部は停止され稼働している前記圧縮機から前記圧縮気体貯蔵容器に圧縮気体が供給されて前記圧縮気体貯蔵容器に圧縮気体が貯蔵されると共に前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、前記圧縮機が停止して前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の全てから前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の一部は停止されると共に稼働している前記圧縮機のみから前記消費機器に圧縮空気が供給される状態と、前記圧縮機から前記圧縮気体貯蔵容器に圧縮気体が供給されて前記圧縮気体貯蔵容器に圧縮気体が貯蔵される状態と、に切り替える制御部と、を備える。 The compressed gas supply system according to claim 1 is provided in a plurality of compressors that compress a gas to generate a compressed gas, a container body that stores the compressed gas, and inside the container body, and is provided in the container body. A compressed gas storage container including an adsorbent for adsorbing the compressed gas inside, a compressed gas demand amount detector for detecting the demand amount of the compressed gas by the consuming device, and a remaining amount of the compressed gas in the compressed gas storage container. A state in which compressed gas is supplied from the compressor and the compressed gas storage container to the consuming device based on the detection results of the compressed gas remaining amount detecting unit to be detected and the compressed gas demand amount detecting unit, and a plurality of the above. A state in which compressed gas is supplied to the compressed gas storage container from all of the compressors, the compressed gas is stored in the compressed gas storage container, and the compressed gas is supplied from the compressed gas storage container to the consumer equipment. A part of the compressor is stopped and is in operation. Compressed gas is supplied to the compressed gas storage container, the compressed gas is stored in the compressed gas storage container, and the compressed gas storage container is used to store the compressed gas. A state in which the compressed gas is supplied to the consumer device, a state in which the compressor is stopped and the compressed gas is supplied from the compressed gas storage container to the consumer device, and a state in which all of the plurality of compressors are supplied to the consumer device. A state in which compressed gas is supplied, a state in which compressed air is supplied to the consumer equipment only from the compressors that are in operation while a part of the plurality of compressors is stopped, and a state in which the compressors perform the compression. A control unit for switching between a state in which the compressed gas is supplied to the gas storage container and the compressed gas is stored in the compressed gas storage container is provided.

この圧縮気体供給システムによれば、圧縮気体貯蔵容器の容器本体の内部には、吸着材が設けられており、この吸着材は、容器本体の内部の圧縮気体を吸着する。つまり、吸着材は、材料表面への吸着や分子や金属錯体の結晶構造の空隙への取り込みなどによる安定化するエネルギーの分だけ気体分子を効率的に貯蔵できる。したがって、吸着材が圧縮気体を吸着することにより、圧縮気体の貯蔵効率(充填密度)を向上させることができるので、容器本体の容積を小さくすることができ、ひいては、圧縮気体貯蔵容器を小型化することができる。圧縮気体貯蔵容器を小型化できる分、システム全体を小型化することができる。
また、この圧縮気体供給システムによれば、消費機器による圧縮気体の需要量と、圧縮気体貯蔵容器における圧縮気体の残量とに応じて、圧縮機及び圧縮気体貯蔵容器の少なくとも一方から消費機器への圧縮気体の供給と、圧縮気体貯蔵容器における圧縮気体の貯蔵とを切り替えるので、消費機器に安定して圧縮気体を供給することができる。
According to this compressed gas supply system, an adsorbent is provided inside the container body of the compressed gas storage container, and the adsorbent adsorbs the compressed gas inside the container body. That is, the adsorbent can efficiently store gas molecules by the amount of energy that is stabilized by adsorption on the surface of the material or incorporation of molecules or metal complexes into the voids of the crystal structure. Therefore, since the adsorbent adsorbs the compressed gas, the storage efficiency (filling density) of the compressed gas can be improved, so that the volume of the container body can be reduced, and the size of the compressed gas storage container can be reduced. can do. Since the compressed gas storage container can be miniaturized, the entire system can be miniaturized.
Further, according to this compressed gas supply system, from at least one of the compressor and the compressed gas storage container to the consuming device according to the demand amount of the compressed gas by the consuming device and the remaining amount of the compressed gas in the compressed gas storage container. Since the supply of the compressed gas is switched between the supply of the compressed gas and the storage of the compressed gas in the compressed gas storage container, the compressed gas can be stably supplied to the consuming equipment.

なお、請求項2に記載のように、請求項1に記載の圧縮気体供給システムにおいて、前記容器本体から吐出される圧縮気体について予め規定された圧力の最低値を最低利用圧力とした場合に、前記吸着材は、前記容器本体の内部の圧縮気体の圧力が前記最低利用圧力以上で前記圧縮気体の吸着量が急増する材料で形成されていても良い。 As described in claim 2, in the compressed gas supply system according to claim 1, when the minimum value of the pressure predetermined for the compressed gas discharged from the container body is set as the minimum utilization pressure, The adsorbent may be made of a material in which the pressure of the compressed gas inside the container body is equal to or higher than the minimum utilization pressure and the adsorbed amount of the compressed gas rapidly increases.

この場合の増加率の急増とは、圧力差をΔP(=P-Pmin)、吸着量の差をΔN(=N-Nmin)、容器の内容積をV、気体定数をR、温度T(等温)とした場合、ΔN/ΔP>V/RTとなるように増加率が増加することである。 In this case, the rapid increase in the rate of increase means that the pressure difference is ΔP (= P-Pmin), the adsorption amount difference is ΔN (= N-Nmin), the internal volume of the container is V, the gas constant is R, and the temperature T (isothermal). ), The rate of increase increases so that ΔN / ΔP> V / RT.

この圧縮気体供給システムによれば、吸着材は、容器本体の内部の圧縮気体の圧力が最低利用圧力以上で圧縮気体の吸着量が急増する材料で形成されている。したがって、容器本体に最底利用圧力以上で圧縮気体を貯蔵することにより、容器本体の内部の圧縮気体の貯蔵効率(充填密度)をより一層向上させることができる。これにより、圧縮気体貯蔵容器をより一層小型化することができる。 According to this compressed gas supply system , the adsorbent is made of a material in which the adsorbed amount of the compressed gas rapidly increases when the pressure of the compressed gas inside the container body is equal to or higher than the minimum utilization pressure. Therefore, by storing the compressed gas in the container body at a pressure equal to or higher than the bottom utilization pressure, the storage efficiency (filling density) of the compressed gas inside the container body can be further improved. As a result, the compressed gas storage container can be further miniaturized.

また、請求項3に記載のように、請求項2に記載の圧縮気体供給システムにおいて、前記圧縮気体は、圧縮空気であり、前記吸着材を形成する材料は、多孔質材、ゼオライト、及び、金属錯体のいずれかでも良い。 Further, as described in claim 3, in the compressed gas supply system according to claim 2, the compressed gas is compressed air, and the materials forming the adsorbent are a porous material, zeolite, and. It may be any of metal complexes.

この圧縮気体供給システムによれば、圧縮された空気を吸着する吸着材の形成材料は、多孔質材、ゼオライト、及び、金属錯体のいずれかである。したがって、容器本体の内部の圧縮気体の圧力が最低利用圧力以上で圧縮気体の吸着量を急増させることができる。 According to this compressed gas supply system , the material for forming the adsorbent that adsorbs the compressed air is either a porous material, a zeolite, or a metal complex. Therefore, when the pressure of the compressed gas inside the container body is equal to or higher than the minimum utilization pressure, the amount of the compressed gas adsorbed can be rapidly increased.

以上詳述したように、本発明によれば、圧縮気体貯蔵容器の小型化、ひいては、この圧縮気体貯蔵容器を備えた圧縮気体供給システムの小型化を実現することができる。 As described in detail above, according to the present invention, it is possible to realize the miniaturization of the compressed gas storage container and, by extension, the miniaturization of the compressed gas supply system provided with the compressed gas storage container.

本実施形態に係る圧縮気体供給システムの全体構成を示すブロック図である。It is a block diagram which shows the whole structure of the compressed gas supply system which concerns on this embodiment. 図1に示される圧縮気体貯蔵容器の具体的な構成を示す縦断面図である。It is a vertical cross-sectional view which shows the specific structure of the compressed gas storage container shown in FIG. 図2に示される吸着材の特性として、圧縮気体の圧力と吸着材の吸着量との関係を示すグラフである。As a characteristic of the adsorbent shown in FIG. 2, it is a graph which shows the relationship between the pressure of a compressed gas and the adsorbed amount of the adsorbent. 各種ガスの吸着等温線を示す図である。It is a figure which shows the adsorption isotherm of various gases. 図1に示される制御部の処理の流れを示すフローチャートである。It is a flowchart which shows the processing flow of the control part shown in FIG. 本実施形態に係る圧縮気体供給システムの動作の一例として、時間と圧縮気体の需要量及び圧縮機の台数との関係を示すグラフである。As an example of the operation of the compressed gas supply system according to the present embodiment, it is a graph which shows the relationship between time, the demand amount of compressed gas, and the number of compressors. 比較例に係る圧縮気体供給システムの動作の一例として、時間と圧縮気体の需要量及び圧縮機の台数との関係を示すグラフである。As an example of the operation of the compressed gas supply system according to the comparative example, it is a graph which shows the relationship between time, the demand amount of compressed gas, and the number of compressors.

以下、図面を参照しながら、本発明の一実施形態について説明する。 Hereinafter, an embodiment of the present invention will be described with reference to the drawings.

図1に示される本発明の一実施形態に係る圧縮気体供給システム10は、複数の消費機器100に圧縮気体を供給するためのものであり、複数の圧縮機12と、複数の圧縮気体貯蔵容器14と、圧縮気体需要量検出部16と、圧縮気体残量検出部18と、制御部20とを主要な構成として備えている。 The compressed gas supply system 10 according to the embodiment of the present invention shown in FIG. 1 is for supplying compressed gas to a plurality of consumer devices 100, and is a plurality of compressors 12 and a plurality of compressed gas storage containers. 14, a compressed gas demand amount detecting unit 16, a compressed gas remaining amount detecting unit 18, and a control unit 20 are provided as main configurations.

複数の圧縮機12は、互いに同一の構成である。各圧縮機12は、気体を圧縮して圧縮気体を生成する。本実施形態において、圧縮気体は、一例として、空気である。複数の圧縮機12の個数は、任意に設定可能である。本実施形態では、一例として、複数の圧縮機12の個数は、複数の消費機器100と同数である。各圧縮機12と消費機器100とは、圧縮気体供給配管22を介して接続されている。複数の圧縮気体供給配管22は、第一連結配管24によって連結されており、これにより、複数の圧縮機12は、複数の消費機器100に対して並列に接続されている。 The plurality of compressors 12 have the same configuration as each other. Each compressor 12 compresses the gas to generate a compressed gas. In this embodiment, the compressed gas is, for example, air. The number of the plurality of compressors 12 can be arbitrarily set. In the present embodiment, as an example, the number of the plurality of compressors 12 is the same as the number of the plurality of consumer devices 100. Each compressor 12 and the consumer device 100 are connected to each other via a compressed gas supply pipe 22. The plurality of compressed gas supply pipes 22 are connected by the first connecting pipe 24, whereby the plurality of compressors 12 are connected in parallel to the plurality of consumer devices 100.

複数の圧縮気体貯蔵容器14は、互いに同一の構成である。圧縮気体貯蔵容器14の個数は、任意に設定可能である。第一連結配管24には、容器側上流配管26の上流端が接続されており、この容器側上流配管26の下流端には、複数の入口側分岐路28が形成されている。各入口側分岐路28は、複数の圧縮気体貯蔵容器14の入口に接続されている。複数の圧縮気体貯蔵容器14の出口には、容器側下流配管30の上流端に形成された複数の出口側分岐路32が接続されており、容器側下流配管30の下流端は、第二連結配管34に接続されている。この第二連結配管34は、複数の圧縮気体供給配管22を連結しており、これにより、複数の圧縮気体貯蔵容器14は、複数の消費機器100に対して並列に接続されている。 The plurality of compressed gas storage containers 14 have the same configuration as each other. The number of the compressed gas storage containers 14 can be arbitrarily set. The upstream end of the container-side upstream pipe 26 is connected to the first connecting pipe 24, and a plurality of inlet-side branch paths 28 are formed at the downstream end of the container-side upstream pipe 26. Each inlet-side branch passage 28 is connected to the inlets of a plurality of compressed gas storage containers 14. A plurality of outlet-side branch paths 32 formed at the upstream end of the container-side downstream pipe 30 are connected to the outlets of the plurality of compressed gas storage containers 14, and the downstream end of the container-side downstream pipe 30 is secondly connected. It is connected to the pipe 34. The second connecting pipe 34 connects a plurality of compressed gas supply pipes 22, whereby the plurality of compressed gas storage containers 14 are connected in parallel to the plurality of consumer devices 100.

複数の圧縮気体供給配管22と第一連結配管24との連結部には、三方弁36がそれぞれ設けられている。三方弁36は、圧縮機12から消費機器100へ圧縮気体を流通させる状態と、圧縮機12から圧縮気体貯蔵容器14へ圧縮気体を流通させる状態とに切替可能となっている。また、複数の入口側分岐路28には、入口側開閉弁38が設けられ、複数の出口側分岐路32には、出口側開閉弁40が設けられている。また、複数の消費機器100の各々と複数の圧縮機12の各々とは、圧縮気体再利用配管42によって接続されており、消費機器100で未消費の圧縮気体は、圧縮気体再利用配管42を通じて圧縮機12に戻されるようになっている。 A three-way valve 36 is provided at each connecting portion between the plurality of compressed gas supply pipes 22 and the first connecting pipe 24. The three-way valve 36 can be switched between a state in which the compressed gas is circulated from the compressor 12 to the consumer device 100 and a state in which the compressed gas is circulated from the compressor 12 to the compressed gas storage container 14. Further, the inlet side on-off valve 38 is provided in the plurality of inlet-side branch paths 28, and the outlet-side on-off valve 40 is provided in the plurality of outlet-side branch paths 32. Further, each of the plurality of consuming devices 100 and each of the plurality of compressors 12 are connected by a compressed gas reusing pipe 42, and the compressed gas not consumed by the consuming device 100 is passed through the compressed gas reusing pipe 42. It is designed to be returned to the compressor 12.

図2に示されるように、圧縮気体貯蔵容器14は、より具体的には、圧縮気体を貯蔵する容器本体52と、この容器本体52の内部に設けられた吸着材54とを有する。容器本体52の内部には、容器本体52の上下方向に離間する一対の仕切板56が設けられており、吸着材54は、一対の仕切板56の間に収容されている。一対の仕切板56は、例えば多数の孔を有する等により圧縮気体が透過可能な構成になっている。容器本体52は、吸着材54による吸着熱を外部と容易に熱交換できるように金属製であることが望ましい。なお、容器本体52は、軽量化のためにプラスチック製でも良い。容器本体52の上端及び下端には、入口管58と出口管60がそれぞれ設けられている。この入口管58及び出口管60は、圧縮気体貯蔵容器14の入口及び出口を形成している。 As shown in FIG. 2, the compressed gas storage container 14 more specifically has a container body 52 for storing the compressed gas and an adsorbent 54 provided inside the container body 52. Inside the container body 52, a pair of partition plates 56 that are separated from each other in the vertical direction of the container body 52 are provided, and the adsorbent 54 is housed between the pair of partition plates 56. The pair of partition plates 56 are configured to allow compressed gas to permeate, for example, by having a large number of holes. It is desirable that the container body 52 is made of metal so that the heat of adsorption by the adsorbent 54 can be easily exchanged with the outside. The container body 52 may be made of plastic for weight reduction. An inlet pipe 58 and an outlet pipe 60 are provided at the upper and lower ends of the container body 52, respectively. The inlet pipe 58 and the outlet pipe 60 form an inlet and an outlet of the compressed gas storage container 14.

吸着材54は、入口管58から出口管60へ圧縮気体が通過するように多数の孔や空間等を有する。この吸着材54は、容器本体52の内部の圧縮気体を吸着して圧縮気体の体積を低減させる機能を有する。この吸着材54は、圧縮気体の圧力が所定の圧力以上で圧縮気体の吸着量が急増する材料で形成される。この場合の増加率の急増とは、圧力差をΔP(=P-Pmin)、吸着量の差をΔN(=N-Nmin)、容器の内容積をV、気体定数をR、温度T(等温)とした場合、ΔN/ΔP>V/RTとなるように増加率が増加することである。 The adsorbent 54 has a large number of holes, spaces, and the like so that the compressed gas can pass from the inlet pipe 58 to the outlet pipe 60. The adsorbent 54 has a function of adsorbing the compressed gas inside the container body 52 to reduce the volume of the compressed gas. The adsorbent 54 is made of a material in which the adsorbed amount of the compressed gas rapidly increases when the pressure of the compressed gas is equal to or higher than a predetermined pressure. In this case, the rapid increase in the rate of increase means that the pressure difference is ΔP (= P-Pmin), the adsorption amount difference is ΔN (= N-Nmin), the internal volume of the container is V, the gas constant is R, and the temperature T (isothermal). ), The rate of increase increases so that ΔN / ΔP> V / RT.

図3には、このような吸着材54の特性として、圧縮気体の圧力と吸着材54の吸着量との関係が示されている。図3において、圧力aは、圧縮気体貯蔵容器14の入口での圧力であり、圧力bは、圧縮気体貯蔵容器14の出口での圧力である。図3に示されるように、吸着材54は、圧力b以上で圧縮気体の吸着量が急増する。圧縮気体貯蔵容器14の出口での圧力bは、容器本体52から吐出される圧縮気体について予め規定された圧力の最低値、すなわち最低利用圧力に設定される。圧力bは、圧縮気体貯蔵容器14等の構造や運転状況等の条件によって適宜設定されるものであり、また、吸着材54による圧縮気体の吸着量の急増率は、吸着材54の種類や特性等によって適宜決まるものである。 FIG. 3 shows the relationship between the pressure of the compressed gas and the adsorbed amount of the adsorbent 54 as the characteristics of the adsorbent 54. In FIG. 3, the pressure a is the pressure at the inlet of the compressed gas storage container 14, and the pressure b is the pressure at the outlet of the compressed gas storage container 14. As shown in FIG. 3, the adsorbent 54 rapidly increases the amount of compressed gas adsorbed at a pressure b or higher. The pressure b at the outlet of the compressed gas storage container 14 is set to the minimum value of the pressure predetermined for the compressed gas discharged from the container body 52, that is, the minimum utilization pressure. The pressure b is appropriately set according to conditions such as the structure of the compressed gas storage container 14 and the operating conditions, and the rate of rapid increase in the amount of compressed gas adsorbed by the adsorbent 54 is the type and characteristics of the adsorbent 54. It is determined as appropriate depending on the factors such as.

このような圧縮気体の吸着量が急増する材料としては、例えば、多孔質材(シリカ、シリカゲル、アルミナ、活性炭など)、ゼオライト、金属錯体などが好適に使用される。図4には、各種ガスの吸着等温線が示されている。図4に示されるように、ある圧力まではほとんど吸着せず、その圧力になると急激に吸着が始まり、瞬時に飽和状態に達する吸着材がある(出典:SCEJ 38th Autumn Meeting (Fukuoka, 2006)、「多孔性金属錯体の吸着材および分離材への適用に関する展望」(大阪ガス)関 建司)。吸着材54に吸着された圧縮気体は、吸着材54から離脱されて圧縮気体貯蔵容器14から吐出される。 As a material in which the amount of adsorbed compressed gas rapidly increases, for example, a porous material (silica, silica gel, alumina, activated carbon, etc.), zeolite, a metal complex, or the like is preferably used. FIG. 4 shows the adsorption isotherms of various gases. As shown in Fig. 4, there is an adsorbent that hardly adsorbs up to a certain pressure, and at that pressure, adsorbs rapidly and reaches saturation instantly (Source: SCEJ 38th Autumn Meeting (Fukuoka, 2006), "Prospects for application of porous metal complexes to adsorbents and separators" (Osaka Gas) Kenji Seki). The compressed gas adsorbed on the adsorbent 54 is separated from the adsorbent 54 and discharged from the compressed gas storage container 14.

なお、吸着材54には、吸着熱の影響を緩和するために、蓄熱材が導入されていても良い。この蓄熱材としては、例えば、エリスリトールなどの糖類、酢酸トリウム3水和物や硫酸ナトリウム10水和物などの水溶液、水、パラフィンやひまし油などの油、及び、多価イソシアネート化合物などの有機物が適用可能である。 A heat storage material may be introduced into the adsorbent 54 in order to mitigate the influence of the heat of adsorption. As the heat storage material, for example, sugars such as erythritol, aqueous solutions such as thorium acetate trihydrate and sodium sulfate tetrahydrate, water, oils such as paraffin and castor oil, and organic substances such as polyvalent isocyanate compounds are applied. It is possible.

図1に示される圧縮気体需要量検出部16は、例えば、流量センサ等によって構成されている。この圧縮気体需要量検出部16は、複数の消費機器100による圧縮気体の需要量(消費量)を検出し、この検出した需要量に応じた信号を制御部20に出力する。 The compressed gas demand amount detecting unit 16 shown in FIG. 1 is composed of, for example, a flow rate sensor or the like. The compressed gas demand amount detection unit 16 detects the demand amount (consumption amount) of the compressed gas by the plurality of consuming devices 100, and outputs a signal corresponding to the detected demand amount to the control unit 20.

圧縮気体残量検出部18は、例えば、圧力センサ等によって構成されている。この圧縮気体残量検出部18は、複数の圧縮気体貯蔵容器14における圧縮気体の残量(圧力)を検出し、この検出した残量に応じた信号を制御部20に出力する。 The compressed gas remaining amount detecting unit 18 is composed of, for example, a pressure sensor or the like. The compressed gas remaining amount detecting unit 18 detects the remaining amount (pressure) of the compressed gas in the plurality of compressed gas storage containers 14, and outputs a signal corresponding to the detected remaining amount to the control unit 20.

制御部20は、例えば演算装置や記憶装置等を有する電子回路を備えている。この制御部20は、上述の圧縮気体需要量検出部16及び圧縮気体残量検出部18から出力された信号(検出結果)に基づいて、複数の圧縮機12、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。制御部20の記憶装置には、圧縮機12や圧縮気体貯蔵容器14から消費機器100に圧縮気体を供給したり、圧縮気体貯蔵容器14に圧縮気体を貯蔵したりするためのプログラムが格納されている。制御部20の演算装置は、そのプログラムを実行し、複数の消費機器100に圧縮気体を供給させる。 The control unit 20 includes, for example, an electronic circuit having an arithmetic unit, a storage device, and the like. The control unit 20 has a plurality of compressors 12, a three-way valve 36, and an inlet side on-off valve based on the signals (detection results) output from the compressed gas demand amount detecting unit 16 and the compressed gas remaining amount detecting unit 18 described above. 38 and the outlet side on-off valve 40 are controlled. The storage device of the control unit 20 stores a program for supplying the compressed gas from the compressor 12 or the compressed gas storage container 14 to the consumer device 100 and storing the compressed gas in the compressed gas storage container 14. There is. The arithmetic unit of the control unit 20 executes the program and supplies the compressed gas to the plurality of consumer devices 100.

次に、上述の圧縮気体供給システム10の動作について説明する。 Next, the operation of the above-mentioned compressed gas supply system 10 will be described.

制御部20は、上述のプログラムを実行することで、具体的には、以下のステップS1〜ステップS20を実行する。図5には、ステップS1〜ステップS20の処理の流れを表すフローチャートが示されている。 By executing the above-mentioned program, the control unit 20 specifically executes the following steps S1 to S20. FIG. 5 shows a flowchart showing the processing flow of steps S1 to S20.

(ステップS1)
ステップS1では、制御部20が、圧縮気体需要量検出部16から出力された信号に基づいて、消費機器100の需要が圧縮機12の供給量を上回っているか判断する。消費機器100の需要が圧縮機12の供給量を上回っていない場合、制御部20は、ステップS5に移行し、消費機器100の需要が圧縮機12の供給量を上回っている場合、制御部20は、ステップS2に移行する。
(Step S1)
In step S1, the control unit 20 determines whether the demand of the consumer device 100 exceeds the supply amount of the compressor 12 based on the signal output from the compressed gas demand amount detection unit 16. When the demand of the consumer device 100 does not exceed the supply amount of the compressor 12, the control unit 20 proceeds to step S5, and when the demand of the consumer device 100 exceeds the supply amount of the compressor 12, the control unit 20 Goes to step S2.

(ステップS2)
ステップS2では、制御部20が、圧縮気体残量検出部18から出力された信号に基づいて、圧縮気体貯蔵容器14に圧縮気体の残量があるか判断する。圧縮気体貯蔵容器14に圧縮気体の残量がない場合、制御部20は、ステップS4に移行し、圧縮気体貯蔵容器14に圧縮気体の残量がある場合、制御部20は、ステップS3に移行する。
(Step S2)
In step S2, the control unit 20 determines whether the compressed gas storage container 14 has a remaining amount of compressed gas based on the signal output from the compressed gas remaining amount detecting unit 18. When the compressed gas storage container 14 has no remaining amount of compressed gas, the control unit 20 proceeds to step S4, and when the compressed gas storage container 14 has a remaining amount of compressed gas, the control unit 20 proceeds to step S3. To do.

(ステップS3)
消費機器100の需要が圧縮機12の供給量を上回っており、圧縮気体貯蔵容器14に圧縮気体の残量がある場合、ステップS3では、制御部20が、圧縮機12及び圧縮気体貯蔵容器14から消費機器100に圧縮気体が供給されるように、圧縮機12、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、圧縮機12を稼働させ、三方弁36を圧縮機12から消費機器100へ圧縮気体を流通させる状態とし、入口側開閉弁38を閉止し、出口側開閉弁40を開放する。これにより、圧縮機12及び圧縮気体貯蔵容器14から消費機器100に圧縮気体が供給される。
(Step S3)
When the demand of the consumer device 100 exceeds the supply amount of the compressor 12, and the compressed gas storage container 14 has a remaining amount of compressed gas, in step S3, the control unit 20 causes the compressor 12 and the compressed gas storage container 14 to operate. The compressor 12, the three-way valve 36, the inlet side on-off valve 38, and the outlet-side on-off valve 40 are controlled so that the compressed gas is supplied from the consumer device 100. That is, the control unit 20 operates the compressor 12, puts the three-way valve 36 in a state of circulating compressed gas from the compressor 12 to the consumer device 100, closes the inlet side on-off valve 38, and opens the outlet-side on-off valve 40. To do. As a result, the compressed gas is supplied from the compressor 12 and the compressed gas storage container 14 to the consumer equipment 100.

(ステップS4)
消費機器100の需要が圧縮機12の供給量を上回っているが、圧縮気体貯蔵容器14に圧縮気体の残量がない場合、ステップS4では、制御部20が、圧縮気体貯蔵容器14からの圧縮気体の供給が停止され、圧縮機12のみから消費機器100に圧縮気体が供給されるように、圧縮機12、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、圧縮機12を稼働させ、三方弁36を圧縮機12から消費機器100へ圧縮気体を流通させる状態とし、入口側開閉弁38及び出口側開閉弁40を閉止する。これにより、圧縮気体貯蔵容器14からの圧縮気体の供給が停止され、圧縮機12のみから消費機器100に圧縮気体が供給される。また、制御部20は、圧縮気体の供給不足を発報する。さらに、制御部20は、消費機器100の需要を絞る。このとき、供給先の消費機器100の構成に応じて、需要を絞る消費機器100の優先順位をつけても良い。
(Step S4)
When the demand of the consumer device 100 exceeds the supply amount of the compressor 12, but there is no remaining amount of compressed gas in the compressed gas storage container 14, in step S4, the control unit 20 compresses from the compressed gas storage container 14. The compressor 12, the three-way valve 36, the inlet side on-off valve 38, and the outlet-side on-off valve 40 are controlled so that the supply of gas is stopped and the compressed gas is supplied from only the compressor 12 to the consumer equipment 100. That is, the control unit 20 operates the compressor 12, puts the three-way valve 36 in a state where the compressed gas is circulated from the compressor 12 to the consumption device 100, and closes the inlet side on-off valve 38 and the outlet side on-off valve 40. As a result, the supply of the compressed gas from the compressed gas storage container 14 is stopped, and the compressed gas is supplied to the consumer device 100 only from the compressor 12. Further, the control unit 20 notifies that the supply of the compressed gas is insufficient. Further, the control unit 20 narrows down the demand for the consumer device 100. At this time, the consumer equipment 100 that narrows down the demand may be prioritized according to the configuration of the consumer equipment 100 of the supply destination.

(ステップS5)
消費機器100の需要が圧縮機12の供給量を上回っていない場合、ステップS5では、制御部20が、圧縮気体需要量検出部16から出力された信号に基づいて、消費機器100において圧縮気体の需要があるか判断する。消費機器100において圧縮気体の需要がない場合、制御部20は、ステップS15に移行し、消費機器100において圧縮気体の需要がある場合、制御部20は、ステップS6に移行する。
(Step S5)
When the demand of the consumer device 100 does not exceed the supply amount of the compressor 12, in step S5, the control unit 20 determines the compressed gas in the consumer device 100 based on the signal output from the compressed gas demand amount detection unit 16. Determine if there is demand. If there is no demand for compressed gas in the consumer equipment 100, the control unit 20 proceeds to step S15, and if there is a demand for compressed gas in the consumer equipment 100, the control unit 20 proceeds to step S6.

(ステップS6)
ステップS6では、制御部20が、圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要があるか判断する。判断方法としては、単に圧縮気体貯蔵容器における圧縮気体の残量で判断しても良いし、過去の需要データからの需要予測により判断しても良い。圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要がない場合、制御部20は、ステップS10に移行し、圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要がある場合、制御部20は、ステップS7に移行する。
(Step S6)
In step S6, the control unit 20 determines whether the compressed gas needs to be stored in the compressed gas storage container 14. As a judgment method, it may be judged simply by the remaining amount of the compressed gas in the compressed gas storage container, or may be judged by the demand forecast from the past demand data. When it is not necessary to store the compressed gas in the compressed gas storage container 14, the control unit 20 proceeds to step S10, and when it is necessary to store the compressed gas in the compressed gas storage container 14, the control unit 20 moves to step S7. Move to.

(ステップS7)
ステップS7では、制御部20が、圧縮機12の一部を停止しても圧縮気体を圧縮気体貯蔵容器14に貯蔵できるか判断する。圧縮機12の一部を停止すると圧縮気体を圧縮気体貯蔵容器14に貯蔵できない場合、制御部20は、ステップS9に移行し、圧縮機12の一部を停止しても圧縮気体を圧縮気体貯蔵容器14に貯蔵できる場合、制御部20は、ステップS8に移行する。
(Step S7)
In step S7, the control unit 20 determines whether the compressed gas can be stored in the compressed gas storage container 14 even if a part of the compressor 12 is stopped. If the compressed gas cannot be stored in the compressed gas storage container 14 when a part of the compressor 12 is stopped, the control unit 20 proceeds to step S9 and stores the compressed gas in the compressed gas even if a part of the compressor 12 is stopped. If it can be stored in the container 14, the control unit 20 proceeds to step S8.

(ステップS8)
ステップS8では、制御部20が、圧縮機12の一部(可能な限りの台数の圧縮機12)を停止させる。また、制御部20は、稼働している残りの圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵されると共に、圧縮気体貯蔵容器14から消費機器100に圧縮気体が供給されるように、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、三方弁36を圧縮機12から圧縮気体貯蔵容器14へ圧縮気体を流通させる状態とし、入口側開閉弁38を開放し、出口側開閉弁40を開放する。これにより、稼働している残りの圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵されると共に、圧縮気体貯蔵容器14から消費機器100に圧縮気体が供給される。
(Step S8)
In step S8, the control unit 20 stops a part of the compressors 12 (as many compressors 12 as possible). Further, the control unit 20 supplies the compressed gas to the compressed gas storage container 14 from the remaining compressor 12 in operation, stores the compressed gas in the compressed gas storage container 14, and consumes the compressed gas from the compressed gas storage container 14. The three-way valve 36, the inlet side on-off valve 38, and the outlet-side on-off valve 40 are controlled so that the compressed gas is supplied to the device 100. That is, the control unit 20 sets the three-way valve 36 in a state in which the compressed gas flows from the compressor 12 to the compressed gas storage container 14, opens the inlet-side on-off valve 38, and opens the outlet-side on-off valve 40. As a result, the compressed gas is supplied from the remaining compressor 12 in operation to the compressed gas storage container 14, the compressed gas is stored in the compressed gas storage container 14, and the compressed gas storage container 14 is compressed into the consumer equipment 100. Gas is supplied.

(ステップS9)
圧縮機12の一部を停止すると圧縮気体を圧縮気体貯蔵容器14に貯蔵できない場合、ステップS9では、制御部20が、全ての圧縮機12を稼働させる。また、制御部20は、全ての圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵されると共に、圧縮気体貯蔵容器14から消費機器100に圧縮気体が供給されるように、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、ステップS8と同様に、三方弁36を圧縮機12から圧縮気体貯蔵容器14へ圧縮気体を流通させる状態とし、入口側開閉弁38を開放し、出口側開閉弁40を開放する。
(Step S9)
If the compressed gas cannot be stored in the compressed gas storage container 14 when a part of the compressor 12 is stopped, the control unit 20 operates all the compressors 12 in step S9. Further, the control unit 20 supplies the compressed gas from all the compressors 12 to the compressed gas storage container 14, stores the compressed gas in the compressed gas storage container 14, and compresses the compressed gas from the compressed gas storage container 14 to the consumer device 100. The three-way valve 36, the inlet side on-off valve 38, and the outlet-side on-off valve 40 are controlled so that gas is supplied. That is, the control unit 20 sets the three-way valve 36 in a state where the compressed gas flows from the compressor 12 to the compressed gas storage container 14, opens the inlet side on-off valve 38, and opens the outlet-side on-off valve 40, as in step S8. Open.

(ステップS10)
消費機器100において圧縮気体の需要があるが、圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要がない場合、ステップS10では、制御部20が、圧縮気体貯蔵容器14のみから消費機器100に圧縮気体を供給しても良いか判断する。圧縮気体貯蔵容器14のみから消費機器100に圧縮気体を供給して良くない場合、制御部20は、ステップS12に移行し、圧縮気体貯蔵容器14のみから消費機器100に圧縮気体を供給しても良い場合、制御部20は、ステップS11に移行する。
(Step S10)
When there is a demand for compressed gas in the consumer device 100, but it is not necessary to store the compressed gas in the compressed gas storage container 14, in step S10, the control unit 20 sends the compressed gas from only the compressed gas storage container 14 to the consumer device 100. Determine if it is okay to supply. If it is not good to supply the compressed gas from only the compressed gas storage container 14 to the consuming device 100, the control unit 20 may move to step S12 and supply the compressed gas from only the compressed gas storage container 14 to the consuming device 100. If it is good, the control unit 20 shifts to step S11.

(ステップS11)
圧縮気体貯蔵容器14のみから消費機器100に圧縮気体を供給しても良い場合、ステップS11では、制御部20が、全ての圧縮機12を停止させる。また、制御部20は、圧縮気体貯蔵容器14のみから消費機器100に圧縮気体が供給されるように、入口側開閉弁38及び出口側開閉弁40を制御する。すなわち、制御部20は、入口側開閉弁38を閉止し、出口側開閉弁40を開放する。これにより、圧縮気体貯蔵容器14のみから消費機器100に圧縮気体が供給される。
(Step S11)
When the compressed gas may be supplied to the consuming device 100 only from the compressed gas storage container 14, the control unit 20 stops all the compressors 12 in step S11. Further, the control unit 20 controls the inlet side on-off valve 38 and the outlet-side on-off valve 40 so that the compressed gas is supplied to the consumption device 100 only from the compressed gas storage container 14. That is, the control unit 20 closes the inlet-side on-off valve 38 and opens the outlet-side on-off valve 40. As a result, the compressed gas is supplied to the consumer device 100 only from the compressed gas storage container 14.

(ステップS12)
圧縮気体貯蔵容器14のみから消費機器100に圧縮気体を供給して良くない場合、ステップS12では、制御部20が、圧縮機12の一部を停止しても残りの圧縮機12から消費機器100に圧縮気体を供給できるか判断する。圧縮機12の一部を停止すると所望の量の圧縮気体を消費機器100に供給できない場合、制御部20は、ステップS14に移行し、圧縮機12の一部を停止しても所望の量の圧縮気体を消費機器100に供給できる場合、制御部20は、ステップS13に移行する。
(Step S12)
If it is not good to supply the compressed gas from only the compressed gas storage container 14 to the consuming device 100, in step S12, even if the control unit 20 stops a part of the compressor 12, the consuming device 100 is supplied from the remaining compressor 12. Determine if compressed gas can be supplied to. If a desired amount of compressed gas cannot be supplied to the consuming device 100 when a part of the compressor 12 is stopped, the control unit 20 proceeds to step S14, and even if a part of the compressor 12 is stopped, a desired amount of compressed gas is obtained. When the compressed gas can be supplied to the consuming device 100, the control unit 20 proceeds to step S13.

(ステップS13)
ステップS13では、制御部20が、圧縮機12の一部(可能な限りの台数の圧縮機12)を停止させる。また、制御部20は、稼働している残りの圧縮機12から消費機器100に圧縮気体が供給されるように、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、三方弁36を圧縮機12から消費機器100へ圧縮気体を流通させる状態とし、入口側開閉弁38及び出口側開閉弁40を閉止する。これにより、稼働している残りの圧縮機12のみから消費機器100に圧縮気体が供給される。
(Step S13)
In step S13, the control unit 20 stops a part of the compressor 12 (as many compressors 12 as possible). Further, the control unit 20 controls the three-way valve 36, the inlet side on-off valve 38, and the outlet-side on-off valve 40 so that the compressed gas is supplied from the remaining compressor 12 in operation to the consumer equipment 100. .. That is, the control unit 20 sets the three-way valve 36 in a state in which the compressed gas flows from the compressor 12 to the consumer device 100, and closes the inlet side on-off valve 38 and the outlet side on-off valve 40. As a result, the compressed gas is supplied to the consumer device 100 only from the remaining compressor 12 in operation.

(ステップS14)
圧縮機12の一部を停止すると所望の量の圧縮気体を消費機器100に供給できない場合、ステップS14では、制御部20が、全ての圧縮機12を稼働させる。また、制御部20は、全ての圧縮機12から消費機器100に圧縮気体が供給されるように、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、三方弁36を圧縮機12から消費機器100へ圧縮気体を流通させる状態とし、入口側開閉弁38及び出口側開閉弁40を閉止する。これにより、全ての圧縮機12から消費機器100に圧縮気体が供給される。
(Step S14)
If a desired amount of compressed gas cannot be supplied to the consuming device 100 when a part of the compressor 12 is stopped, in step S14, the control unit 20 operates all the compressors 12. Further, the control unit 20 controls the three-way valve 36, the inlet side on-off valve 38, and the outlet-side on-off valve 40 so that the compressed gas is supplied from all the compressors 12 to the consumer equipment 100. That is, the control unit 20 puts the three-way valve 36 in a state where the compressed gas flows from the compressor 12 to the consumer device 100, and closes the inlet side on-off valve 38 and the outlet side on-off valve 40. As a result, the compressed gas is supplied from all the compressors 12 to the consumer device 100.

(ステップS15)
消費機器100において圧縮気体の需要がない場合、ステップS15では、制御部20が、消費機器100への圧縮気体の供給が停止されるように、圧縮機12及び出口側開閉弁40を制御する。すなわち、制御部20は、圧縮機12を停止させ、出口側開閉弁40を閉止する。これにより、消費機器100への圧縮気体の供給が停止される。そして、制御部20は、ステップS16に移行する。
(Step S15)
When there is no demand for the compressed gas in the consumer device 100, in step S15, the control unit 20 controls the compressor 12 and the outlet side on-off valve 40 so that the supply of the compressed gas to the consumer device 100 is stopped. That is, the control unit 20 stops the compressor 12 and closes the outlet side on-off valve 40. As a result, the supply of the compressed gas to the consumer device 100 is stopped. Then, the control unit 20 shifts to step S16.

(ステップS16)
ステップS16では、制御部20が、圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要があるか判断する。圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要がない場合、制御部20は、ステップS20に移行し、圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要がある場合、制御部20は、ステップS17に移行する。
(Step S16)
In step S16, the control unit 20 determines whether the compressed gas needs to be stored in the compressed gas storage container 14. When it is not necessary to store the compressed gas in the compressed gas storage container 14, the control unit 20 proceeds to step S20, and when it is necessary to store the compressed gas in the compressed gas storage container 14, the control unit 20 moves to step S17. Move to.

(ステップS17)
ステップS17では、制御部20が、圧縮機12の一部を停止しても圧縮気体を圧縮気体貯蔵容器14に貯蔵できるか判断する。圧縮機12の一部を停止すると圧縮気体を圧縮気体貯蔵容器14に貯蔵できない場合、制御部20は、ステップS19に移行し、圧縮機12の一部を停止しても圧縮気体を圧縮気体貯蔵容器14に貯蔵できる場合、制御部20は、ステップS18に移行する。
(Step S17)
In step S17, the control unit 20 determines whether the compressed gas can be stored in the compressed gas storage container 14 even if a part of the compressor 12 is stopped. If the compressed gas cannot be stored in the compressed gas storage container 14 when a part of the compressor 12 is stopped, the control unit 20 proceeds to step S19 and stores the compressed gas in the compressed gas even if a part of the compressor 12 is stopped. If it can be stored in the container 14, the control unit 20 proceeds to step S18.

(ステップS18)
ステップS18では、制御部20が、圧縮機12の一部(可能な限りの台数の圧縮機12)を停止させる。また、制御部20は、稼働している残りの圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵されるように、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、三方弁36を圧縮機12から圧縮気体貯蔵容器14へ圧縮気体を流通させる状態とし、入口側開閉弁38を開放し、出口側開閉弁40を開放する。これにより、稼働している残りの圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵される。
(Step S18)
In step S18, the control unit 20 stops a part of the compressor 12 (as many compressors 12 as possible). Further, the control unit 20 has a three-way valve 36 on the inlet side so that the compressed gas is supplied to the compressed gas storage container 14 from the remaining compressor 12 in operation and the compressed gas is stored in the compressed gas storage container 14. The on-off valve 38 and the outlet-side on-off valve 40 are controlled. That is, the control unit 20 sets the three-way valve 36 in a state in which the compressed gas flows from the compressor 12 to the compressed gas storage container 14, opens the inlet-side on-off valve 38, and opens the outlet-side on-off valve 40. As a result, the compressed gas is supplied from the remaining compressor 12 in operation to the compressed gas storage container 14, and the compressed gas is stored in the compressed gas storage container 14.

(ステップS19)
圧縮機12の一部を停止すると圧縮気体を圧縮気体貯蔵容器14に貯蔵できない場合、ステップS19では、制御部20が、全ての圧縮機12を稼働させる。また、制御部20は、全ての圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵されるように、三方弁36、入口側開閉弁38、及び、出口側開閉弁40を制御する。すなわち、制御部20は、三方弁36を圧縮機12から圧縮気体貯蔵容器14へ圧縮気体を流通させる状態とし、入口側開閉弁38を開放し、出口側開閉弁40を閉止する。これにより、全ての圧縮機12から圧縮気体貯蔵容器14に圧縮気体が供給されて圧縮気体貯蔵容器14に圧縮気体が貯蔵される。
(Step S19)
If the compressed gas cannot be stored in the compressed gas storage container 14 when a part of the compressor 12 is stopped, in step S19, the control unit 20 operates all the compressors 12. Further, the control unit 20 has a three-way valve 36, an inlet side on-off valve 38, so that the compressed gas is supplied from all the compressors 12 to the compressed gas storage container 14 and the compressed gas is stored in the compressed gas storage container 14. And, the outlet side on-off valve 40 is controlled. That is, the control unit 20 sets the three-way valve 36 in a state in which the compressed gas flows from the compressor 12 to the compressed gas storage container 14, opens the inlet-side on-off valve 38, and closes the outlet-side on-off valve 40. As a result, the compressed gas is supplied from all the compressors 12 to the compressed gas storage container 14, and the compressed gas is stored in the compressed gas storage container 14.

(ステップS20)
消費機器100への圧縮気体の供給が停止し、圧縮気体を圧縮気体貯蔵容器14に貯蔵する必要がない場合、ステップS20では、制御部20が、全ての圧縮機12を停止させる。
(Step S20)
When the supply of the compressed gas to the consumer device 100 is stopped and it is not necessary to store the compressed gas in the compressed gas storage container 14, the control unit 20 stops all the compressors 12 in step S20.

このように、本実施形態の圧縮気体供給システム10は、消費機器100における圧縮気体の需要と、圧縮気体貯蔵容器14における圧縮気体の残量と、圧縮気体貯蔵容器14への圧縮気体の貯蔵の要否に応じて、圧縮機12や圧縮気体貯蔵容器14から消費機器100に圧縮気体を供給したり、圧縮気体貯蔵容器14に圧縮気体を貯蔵したりする。 As described above, in the compressed gas supply system 10 of the present embodiment, the demand for the compressed gas in the consumer equipment 100, the remaining amount of the compressed gas in the compressed gas storage container 14, and the storage of the compressed gas in the compressed gas storage container 14 are performed. Depending on the necessity, the compressed gas is supplied from the compressor 12 or the compressed gas storage container 14 to the consumer device 100, or the compressed gas is stored in the compressed gas storage container 14.

次に、本発明の一実施形態の作用及び効果について説明する。 Next, the operation and effect of one embodiment of the present invention will be described.

以上詳述したように、本発明の一実施形態に係る圧縮気体供給システム10には、圧縮気体貯蔵容器14が用いられており、この圧縮気体貯蔵容器14の容器本体52の内部には、吸着材54が設けられている。この吸着材54は、容器本体52の内部の圧縮気体を吸着する。したがって、吸着材54が圧縮気体を吸着することにより、圧縮気体の貯蔵効率(充填密度)を向上させることができるので、容器本体52の容積を小さくすることができ、ひいては、圧縮気体貯蔵容器14を小型化することができる。 As described in detail above, the compressed gas storage container 14 is used in the compressed gas supply system 10 according to the embodiment of the present invention, and is adsorbed inside the container body 52 of the compressed gas storage container 14. A material 54 is provided. The adsorbent 54 adsorbs the compressed gas inside the container body 52. Therefore, since the adsorbent 54 adsorbs the compressed gas, the storage efficiency (filling density) of the compressed gas can be improved, so that the volume of the container body 52 can be reduced, and by extension, the compressed gas storage container 14 Can be miniaturized.

また、吸着材54は、容器本体52の内部の圧縮気体の圧力が最低利用圧力以上で圧縮気体の吸着量が急増する材料で形成されている。したがって、容器本体52に最底利用圧力以上で圧縮気体を貯蔵することにより、容器本体52の内部の圧縮気体の貯蔵効率(充填密度)をより一層向上させることができる。これにより、圧縮気体貯蔵容器14をより一層小型化することができる。 Further, the adsorbent 54 is made of a material in which the pressure of the compressed gas inside the container body 52 is equal to or higher than the minimum utilization pressure and the adsorbed amount of the compressed gas rapidly increases. Therefore, by storing the compressed gas in the container body 52 at a pressure equal to or higher than the bottom utilization pressure, the storage efficiency (filling density) of the compressed gas inside the container body 52 can be further improved. As a result, the compressed gas storage container 14 can be further miniaturized.

また、圧縮された空気を吸着する吸着材54の形成材料は、多孔質材、ゼオライト、及び、金属錯体のいずれかである。したがって、容器本体52の内部の圧縮気体の圧力が最低利用圧力以上で圧縮気体の吸着量を急増させることができる。 The material for forming the adsorbent 54 that adsorbs the compressed air is any of a porous material, zeolite, and a metal complex. Therefore, when the pressure of the compressed gas inside the container body 52 is equal to or higher than the minimum utilization pressure, the amount of the compressed gas adsorbed can be rapidly increased.

また、本発明の一実施形態に係る圧縮気体供給システム10によれば、上述の圧縮気体貯蔵容器14を備えるので、圧縮気体貯蔵容器14を小型化できる分、システム全体を小型化することができる。 Further, according to the compressed gas supply system 10 according to the embodiment of the present invention, since the above-mentioned compressed gas storage container 14 is provided, the entire system can be miniaturized by the amount that the compressed gas storage container 14 can be miniaturized. ..

また、本発明の一実施形態に係る圧縮気体供給システム10によれば、消費機器100による圧縮気体の需要量と、圧縮気体貯蔵容器14における圧縮気体の残量とに応じて、圧縮機12及び圧縮気体貯蔵容器14の少なくとも一方から消費機器100への圧縮気体の供給と、圧縮気体貯蔵容器14における圧縮気体の貯蔵とを切り替えるので、消費機器100に安定して圧縮気体を供給することができる。 Further, according to the compressed gas supply system 10 according to the embodiment of the present invention, the compressor 12 and the compressor 12 and the remaining amount of the compressed gas in the compressed gas storage container 14 depend on the demand amount of the compressed gas by the consuming device 100 and the remaining amount of the compressed gas in the compressed gas storage container 14. Since the supply of the compressed gas to the consumer device 100 from at least one of the compressed gas storage container 14 and the storage of the compressed gas in the compressed gas storage container 14 are switched, the compressed gas can be stably supplied to the consumer device 100. ..

ここで、図6には、本実施形態に係る圧縮気体供給システムの動作の一例として、時間と圧縮気体の需要量及び圧縮機の台数との関係を示すグラフが示されている。また、図7には、比較例に係る圧縮気体供給システムの動作の一例として、時間と圧縮気体の需要量及び圧縮機の台数との関係を示すグラフが示されている。 Here, FIG. 6 shows a graph showing the relationship between time, the amount of demand for compressed gas, and the number of compressors, as an example of the operation of the compressed gas supply system according to the present embodiment. Further, FIG. 7 shows a graph showing the relationship between time, the amount of demand for compressed gas, and the number of compressors as an example of the operation of the compressed gas supply system according to the comparative example.

図7に示されるように、圧縮気体の需要量と同量を供給しようとすると、低い負荷率で圧縮機を運転することになり、製造効率が低くなる。また、圧縮気体の最大需要量を要する時間が少ない場合には、複数の圧縮機のうちの一部(図7中のN3)を稼働しないことがあり、稼働しない時間が長い場合には、初期投資に見合わない設備導入を迫られる可能性が懸念される。 As shown in FIG. 7, if the same amount as the demand amount of the compressed gas is to be supplied, the compressor is operated at a low load factor, and the manufacturing efficiency is lowered. Further, when the time required for the maximum demand for the compressed gas is short, a part of the plurality of compressors (N3 in FIG. 7) may not be operated, and when the non-operating time is long, the initial operation is performed. There is concern that it may be forced to introduce equipment that is not worth the investment.

一方、図6に示されるように、本実施形態の場合には、圧縮気体の需要量に応じて、圧縮気体貯蔵容器からの圧縮気体の供給と圧縮気体貯蔵容器への圧縮気体の貯蔵が切り替えられるので、場合によっては複数の圧縮機のうちの一部または全部を停止することにより、圧縮機を高い負荷率で運転することができるため、圧縮空気の製造効率が高い。つまり、図6のハッチングAで示されるように、圧縮気体の需要が少ないときにも圧縮機を高い負荷率で稼働し、圧縮気体を圧縮気体貯蔵容器に貯蔵することができる。一方、図6のハッチングBで示されるように圧縮気体貯蔵容器に貯蔵された圧縮気体を消費機器に供給し、圧縮機を停止することができる。これらにより、圧縮機の負荷を平準化、かつ高くすることができるので、効率を向上させることができる。さらに、図6のハッチングCで示されるように、圧縮気体貯蔵容器に貯蔵された圧縮気体を消費機器に供給することで、圧縮機の数を減らすことができる。これにより、設備導入費用を低減することができる。 On the other hand, as shown in FIG. 6, in the case of the present embodiment, the supply of the compressed gas from the compressed gas storage container and the storage of the compressed gas in the compressed gas storage container are switched according to the demand amount of the compressed gas. Therefore, in some cases, by stopping a part or all of the plurality of compressors, the compressors can be operated at a high load factor, so that the production efficiency of compressed air is high. That is, as shown by hatching A in FIG. 6, the compressor can be operated at a high load factor even when the demand for the compressed gas is low, and the compressed gas can be stored in the compressed gas storage container. On the other hand, as shown by hatching B in FIG. 6, the compressed gas stored in the compressed gas storage container can be supplied to the consuming equipment, and the compressor can be stopped. As a result, the load of the compressor can be leveled and increased, so that the efficiency can be improved. Further, as shown by hatching C in FIG. 6, the number of compressors can be reduced by supplying the compressed gas stored in the compressed gas storage container to the consuming equipment. As a result, the equipment introduction cost can be reduced.

次に、本発明の一実施形態の変形例について説明する。 Next, a modified example of one embodiment of the present invention will be described.

上記実施形態において、圧縮気体供給システム10で使用される圧縮気体は、空気であるが、例えば、メタン、酸素、窒素、二酸化炭素、水素、アルゴン、ヘリウムなど、一般に圧縮貯蔵され得る気体であれば、空気以外の気体が用いられても良い。 In the above embodiment, the compressed gas used in the compressed gas supply system 10 is air, as long as it is a gas that can be generally compressed and stored, such as methane, oxygen, nitrogen, carbon dioxide, hydrogen, argon, and helium. , A gas other than air may be used.

また、上記実施形態において、圧縮気体供給システム10は、複数の消費機器100に対して、複数の圧縮機12及び複数の圧縮気体貯蔵容器14を備えているが、一つの消費機器100に対して、一つの圧縮機12及び一つの圧縮気体貯蔵容器14を備える構成とされていても良い。 Further, in the above embodiment, the compressed gas supply system 10 includes a plurality of compressors 12 and a plurality of compressed gas storage containers 14 for a plurality of consuming devices 100, but for one consuming device 100. , One compressor 12 and one compressed gas storage container 14 may be provided.

以上、本発明の一実施形態について説明したが、本発明は、上記に限定されるものでなく、上記以外にも、その主旨を逸脱しない範囲内において種々変形して実施可能であることは勿論である。 Although one embodiment of the present invention has been described above, the present invention is not limited to the above, and it goes without saying that the present invention can be variously modified and implemented within a range not deviating from the gist thereof. Is.

10…圧縮気体供給システム、12…圧縮機、14…圧縮気体貯蔵容器、16…圧縮気体需要量検出部、18…圧縮気体残量検出部、20…制御部、22…圧縮気体供給配管、24…第一連結配管、26…容器側上流配管、28…入口側分岐路、30…容器側下流配管、32…出口側分岐路、34…第二連結配管、36…三方弁、38…入口側開閉弁、40…出口側開閉弁、42…圧縮気体再利用配管、52…容器本体、54…吸着材、56…仕切板、58…入口管、60…出口管、100…消費機器 10 ... Compressed gas supply system, 12 ... Compressor, 14 ... Compressed gas storage container, 16 ... Compressed gas demand detection unit, 18 ... Compressed gas remaining amount detection unit, 20 ... Control unit, 22 ... Compressed gas supply pipe, 24 ... first connecting pipe, 26 ... container side upstream pipe, 28 ... inlet side branch road, 30 ... container side downstream pipe, 32 ... outlet side branch road, 34 ... second connecting pipe, 36 ... three-way valve, 38 ... inlet side On-off valve, 40 ... Outlet-side on-off valve, 42 ... Compressed gas reuse pipe, 52 ... Container body, 54 ... Adsorbent, 56 ... Partition plate, 58 ... Inlet pipe, 60 ... Outlet pipe, 100 ... Consumable equipment

Claims (3)

気体を圧縮して圧縮気体を生成する複数の圧縮機と、
圧縮気体を貯蔵する容器本体と、前記容器本体の内部に設けられ、前記容器本体の内部の圧縮気体を吸着する吸着材と、を備える圧縮気体貯蔵容器と、
消費機器による圧縮気体の需要量を検出する圧縮気体需要量検出部と、
前記圧縮気体貯蔵容器における圧縮気体の残量を検出する圧縮気体残量検出部と、
前記圧縮気体需要量検出部の検出結果に基づいて、前記圧縮機及び前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の全てから前記圧縮気体貯蔵容器に圧縮気体が供給されて前記圧縮気体貯蔵容器に圧縮気体が貯蔵されると共に前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の一部は停止され稼働している前記圧縮機から前記圧縮気体貯蔵容器に圧縮気体が供給されて前記圧縮気体貯蔵容器に圧縮気体が貯蔵されると共に前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、前記圧縮機が停止して前記圧縮気体貯蔵容器から前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の全てから前記消費機器に圧縮気体が供給される状態と、複数の前記圧縮機の一部は停止されると共に稼働している前記圧縮機のみから前記消費機器に圧縮空気が供給される状態と、前記圧縮機から前記圧縮気体貯蔵容器に圧縮気体が供給されて前記圧縮気体貯蔵容器に圧縮気体が貯蔵される状態と、に切り替える制御部と、
を備える圧縮気体供給システム。
Multiple compressors that compress the gas to produce compressed gas,
A compressed gas storage container including a container body for storing the compressed gas and an adsorbent provided inside the container body for adsorbing the compressed gas inside the container body.
A compressed gas demand detector that detects the demand for compressed gas by consumer equipment, and a compressed gas demand detector.
A compressed gas remaining amount detecting unit that detects the remaining amount of compressed gas in the compressed gas storage container, and
Based on the detection result of the compressed gas demand detection unit, the compressed gas is supplied from the compressor and the compressed gas storage container to the consuming device, and the compressed gas storage container is supplied from all of the plurality of compressors. The compressed gas is supplied to the compressed gas storage container, the compressed gas is stored in the compressed gas storage container, and the compressed gas is supplied from the compressed gas storage container to the consumer equipment, and a part of the plurality of compressors is stopped. A state in which the compressed gas is supplied from the operating compressor to the compressed gas storage container, the compressed gas is stored in the compressed gas storage container, and the compressed gas is supplied from the compressed gas storage container to the consumer equipment. A state in which the compressor is stopped and the compressed gas is supplied from the compressed gas storage container to the consumer device, and a state in which the compressed gas is supplied to the consumer device from all of the plurality of compressors. A state in which compressed air is supplied to the consumer equipment only from the compressor that is in operation while a part of the compressor is stopped, and a state in which the compressed gas is supplied from the compressor to the compressed gas storage container. A control unit that switches between the state in which the compressed gas is stored in the compressed gas storage container and the state in which the compressed gas is stored.
Compressed gas supply system with.
前記容器本体から吐出される圧縮気体について予め規定された圧力の最低値を最低利用圧力とした場合に、
前記吸着材は、前記容器本体の内部の圧縮気体の圧力が前記最低利用圧力以上で前記圧縮気体の吸着量が急増する材料で形成されている、
請求項1に記載の圧縮気体供給システム。
When the minimum value of the pressure specified in advance for the compressed gas discharged from the container body is set as the minimum utilization pressure,
The adsorbent is made of a material in which the adsorbed amount of the compressed gas rapidly increases when the pressure of the compressed gas inside the container body is equal to or higher than the minimum utilization pressure.
The compressed gas supply system according to claim 1.
前記圧縮気体は、圧縮空気であり、
前記吸着材を形成する材料は、多孔質材、ゼオライト、及び、金属錯体のいずれかである、
請求項2に記載の圧縮気体供給システム。
The compressed gas is compressed air.
The material forming the adsorbent is any of a porous material, a zeolite, and a metal complex.
The compressed gas supply system according to claim 2.
JP2016180630A 2016-09-15 2016-09-15 Compressed gas supply system Active JP6863698B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
JP2016180630A JP6863698B2 (en) 2016-09-15 2016-09-15 Compressed gas supply system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
JP2016180630A JP6863698B2 (en) 2016-09-15 2016-09-15 Compressed gas supply system

Publications (2)

Publication Number Publication Date
JP2018044630A JP2018044630A (en) 2018-03-22
JP6863698B2 true JP6863698B2 (en) 2021-04-21

Family

ID=61694706

Family Applications (1)

Application Number Title Priority Date Filing Date
JP2016180630A Active JP6863698B2 (en) 2016-09-15 2016-09-15 Compressed gas supply system

Country Status (1)

Country Link
JP (1) JP6863698B2 (en)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2020051561A (en) * 2018-09-28 2020-04-02 株式会社神戸製鋼所 Hydrogen supply device

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP4214740B2 (en) * 2002-08-27 2009-01-28 株式会社日立製作所 Compressed air supply system
JP4611924B2 (en) * 2006-03-29 2011-01-12 株式会社日立プラントテクノロジー Hydrogen compressor system
FR2919375B1 (en) * 2007-07-23 2009-10-09 Air Liquide METHOD FOR FILLING A PRESSURIZED GAS IN A RESERVOIR
JP5392275B2 (en) * 2011-01-26 2014-01-22 マツダ株式会社 Engine control device
US20150094202A1 (en) * 2013-09-27 2015-04-02 Basf Corporation Processes for activating adsorbent materials in adsorbed gas systems

Also Published As

Publication number Publication date
JP2018044630A (en) 2018-03-22

Similar Documents

Publication Publication Date Title
CN102107110A (en) Modular compact adsorbent bed
AU2014264756C1 (en) Inertization method and system for oxygen reduction
AU2014264756B9 (en) Inertization method and system for oxygen reduction
WO2014002988A1 (en) Water electrolysis system
EP3185987B1 (en) Method of drying a hydrogen gas mixture produced by an electrochemical hydrogen compressor
JP2015531465A (en) Method of filling a sorption reservoir with gas
JP6863698B2 (en) Compressed gas supply system
JP2015517398A (en) Oxygen separator and oxygen generation method
JP2017087101A (en) Gas separator
WO2022137898A1 (en) Carbon dioxide recovery system
RU101646U1 (en) PLANT FOR PRODUCING OXYGEN FROM ATMOSPHERIC AIR
KR102268136B1 (en) control mathod and control device in oxygen generator
JP2011251243A (en) Gas separator
JP6280715B2 (en) Gas separation device
JP2013154292A (en) Gas separator
JP2009082782A (en) Gas separation system
JP2005270953A (en) Method for separating mixture gas, and device for separating nitrogen gas and system for consuming nitrogen gas
KR101969614B1 (en) Product gas supply method and product gas supply system
JP4002852B2 (en) Gas separation device
JP2013078734A (en) Gas separator and method
JP2005052757A (en) Gas supply apparatus
JP3565246B2 (en) Gas separation device
JP2653698B2 (en) Gas separation device
KR101381899B1 (en) Nitrogen gas generation device using variable supply apparatus for purity of nitrogen
JP6239435B2 (en) Gas separation device

Legal Events

Date Code Title Description
A621 Written request for application examination

Free format text: JAPANESE INTERMEDIATE CODE: A621

Effective date: 20190308

A977 Report on retrieval

Free format text: JAPANESE INTERMEDIATE CODE: A971007

Effective date: 20200120

A131 Notification of reasons for refusal

Free format text: JAPANESE INTERMEDIATE CODE: A131

Effective date: 20200128

A521 Written amendment

Free format text: JAPANESE INTERMEDIATE CODE: A523

Effective date: 20200325

A02 Decision of refusal

Free format text: JAPANESE INTERMEDIATE CODE: A02

Effective date: 20200616

A521 Written amendment

Free format text: JAPANESE INTERMEDIATE CODE: A523

Effective date: 20200713

C60 Trial request (containing other claim documents, opposition documents)

Free format text: JAPANESE INTERMEDIATE CODE: C60

Effective date: 20200713

A911 Transfer of reconsideration by examiner before appeal (zenchi)

Free format text: JAPANESE INTERMEDIATE CODE: A911

Effective date: 20200720

C21 Notice of transfer of a case for reconsideration by examiners before appeal proceedings

Free format text: JAPANESE INTERMEDIATE CODE: C21

Effective date: 20200721

A912 Removal of reconsideration by examiner before appeal (zenchi)

Free format text: JAPANESE INTERMEDIATE CODE: A912

Effective date: 20200814

C211 Notice of termination of reconsideration by examiners before appeal proceedings

Free format text: JAPANESE INTERMEDIATE CODE: C211

Effective date: 20200818

C22 Notice of designation (change) of administrative judge

Free format text: JAPANESE INTERMEDIATE CODE: C22

Effective date: 20201215

C22 Notice of designation (change) of administrative judge

Free format text: JAPANESE INTERMEDIATE CODE: C22

Effective date: 20210202

C23 Notice of termination of proceedings

Free format text: JAPANESE INTERMEDIATE CODE: C23

Effective date: 20210216

C03 Trial/appeal decision taken

Free format text: JAPANESE INTERMEDIATE CODE: C03

Effective date: 20210323

C30A Notification sent

Free format text: JAPANESE INTERMEDIATE CODE: C3012

Effective date: 20210323

A61 First payment of annual fees (during grant procedure)

Free format text: JAPANESE INTERMEDIATE CODE: A61

Effective date: 20210401

R150 Certificate of patent or registration of utility model

Ref document number: 6863698

Country of ref document: JP

Free format text: JAPANESE INTERMEDIATE CODE: R150