WO2017170207A1 - Dispositif de traitement par adsorption - Google Patents

Dispositif de traitement par adsorption Download PDF

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Publication number
WO2017170207A1
WO2017170207A1 PCT/JP2017/011965 JP2017011965W WO2017170207A1 WO 2017170207 A1 WO2017170207 A1 WO 2017170207A1 JP 2017011965 W JP2017011965 W JP 2017011965W WO 2017170207 A1 WO2017170207 A1 WO 2017170207A1
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WO
WIPO (PCT)
Prior art keywords
cylindrical
flow path
cylindrical rotor
region
path forming
Prior art date
Application number
PCT/JP2017/011965
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English (en)
Japanese (ja)
Inventor
和之 川田
辰也 加賀田
Original Assignee
東洋紡株式会社
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 東洋紡株式会社 filed Critical 東洋紡株式会社
Priority to JP2018509230A priority Critical patent/JP7028161B2/ja
Priority to CN201780021231.2A priority patent/CN109069981B/zh
Publication of WO2017170207A1 publication Critical patent/WO2017170207A1/fr

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/02Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by adsorption, e.g. preparative gas chromatography
    • B01D53/06Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols by adsorption, e.g. preparative gas chromatography with moving adsorbents, e.g. rotating beds
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/34Chemical or biological purification of waste gases
    • B01D53/38Removing components of undefined structure
    • B01D53/44Organic components
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D53/00Separation of gases or vapours; Recovering vapours of volatile solvents from gases; Chemical or biological purification of waste gases, e.g. engine exhaust gases, smoke, fumes, flue gases, aerosols
    • B01D53/34Chemical or biological purification of waste gases
    • B01D53/74General processes for purification of waste gases; Apparatus or devices specially adapted therefor
    • B01D53/81Solid phase processes
    • B01D53/83Solid phase processes with moving reactants

Definitions

  • the present invention relates to an adsorption processing apparatus for processing a large flow rate fluid.
  • Patent Document 1 is an example of a document that discloses a conventional adsorption processing apparatus.
  • a cylindrical rotating frame (cylindrical rotor) having a space (cylinder hole) formed in the center has a rotating shaft (cylinder axis) in the vertical direction. It is arranged to extend along.
  • a plurality of adsorption blocks for processing the passing gas are arranged side by side in the circumferential direction.
  • the lower side of the central space is closed, and the upper side of the central space communicates with the duct.
  • an inner peripheral duct and an outer peripheral duct are provided on the inner peripheral side and the outer peripheral side of the cylindrical rotor.
  • a gas to be treated containing a low concentration of the substance to be treated is introduced from the outer peripheral side of the cylindrical rotor in the other part described above, and the substance to be treated is adsorbed and removed by the adsorption block.
  • the treated gas from which the substance to be treated has been removed is sent through a central space to a duct communicating with the gas.
  • the regeneration gas is introduced from the inner peripheral duct into a part of the partitioned cylindrical rotor, and the substance to be treated adsorbed by the adsorption block is moved to the regeneration gas and discharged. This Recover the adsorption capacity of the adsorption block.
  • JP-A 63-84616 Japanese Patent Publication “JP-A 63-84616”
  • the adsorption capacity is affected by the volume of the adsorption block of the cylindrical rotor. For this reason, the adsorption capacity can be increased by increasing the height of the cylindrical rotor in the cylinder axis direction or arranging a plurality of cylindrical rotors in the vertical direction.
  • Patent Document 1 when the adsorption processing apparatus is configured in such a manner that the cylindrical rotor is installed on the stage so that the cylinder axis faces the vertical direction, a plurality of cylindrical rotors are arranged in the vertical direction. By arranging them side by side, a problem occurs in conveyance due to restrictions such as height restrictions.
  • the cylindrical rotor when the cylindrical rotor is rotated with the cylinder axis facing the vertical direction, it tends to be unstable. For this reason, the rotation axis is stabilized when the cylindrical rotor is rotated by increasing the height of the cylindrical rotor in the cylinder axis direction or by arranging a plurality of cylindrical rotors in a vertical direction. In some cases, the cylindrical rotor may be further wobbled, and there was a problem in use.
  • the present invention has been made in view of the above problems, and an object of the present invention is an adsorption processing apparatus having a size capable of processing a larger amount of fluid and capable of stably conveying and rotating the apparatus. Is to provide.
  • An adsorption processing apparatus is a hollow rotor in which a plurality of adsorbers are arranged in a cylindrical shape having a cylindrical hole and can rotate around a cylindrical axis, and an inner periphery defines the cylindrical hole. And a first region and a second region that are partitioned from each other and through which the plurality of adsorbents alternately pass as the cylindrical rotor rotates.
  • the cylindrical shaft of the cylindrical rotor extends in a horizontal direction, the cylindrical hole has one end closed and the other end opened, and the first region includes an inner peripheral side and an outer peripheral side of the cylindrical rotor.
  • Part of the plurality of adsorbents that move with the rotation of the cylindrical rotor is airtight with respect to the inner peripheral flow path forming member and the outer peripheral flow path forming member disposed to face each other on the side. Or it is the area
  • the second region passes from the outer peripheral side of the cylindrical rotor to the inner periphery so that the second region passes through the cylindrical hole located around the inner peripheral flow path forming member and flows out from the opening at the other end of the cylindrical hole.
  • the inner circumferential flow path forming member extends inside the cylindrical hole along the cylindrical axis direction, and The first region extends from the opening at the other end toward the outside, and the fluid that has passed through the inside of the inner peripheral flow path forming member is adsorbed from the inner peripheral side to the outer peripheral side of the cylindrical rotor.
  • the cylindrical rotor may further include a plurality of partitions each disposed between the adsorbents adjacent to each other.
  • a plurality of space portions in which each of the plurality of adsorbents is arranged are formed by the plurality of partition bodies.
  • the inner peripheral flow path forming member includes an inner peripheral opening end that faces the inner peripheral side of the cylindrical rotor. In this case, the rotation direction front side edge of the inner circumferential side opening end located on the front side in the rotation direction of the cylindrical rotor and the inner circumference located on the rear side in the rotation direction of the cylindrical rotor.
  • an inner peripheral curved surface that curves along the rotational direction is provided on each of the rear side edges in the rotational direction of the side opening end.
  • the said outer peripheral side flow-path formation member contains the outer peripheral side opening edge part which faces the outer peripheral side of the said cylindrical rotor.
  • the rotation direction front side edge of the outer circumferential side opening end located on the front side in the rotation direction of the cylindrical rotor and the outer circumference side located on the rear side in the rotation direction of the cylindrical rotor.
  • an outer peripheral curved surface that is curved along the rotational direction is provided on each of the rotation direction rear side edges of the opening end.
  • the part of the partition located on the inner peripheral side of the cylindrical rotor extends from one end side to the other end side of the cylindrical hole, and extends toward the radially inner side of the cylindrical rotor.
  • an inner seal member projecting from the outer periphery of the cylindrical rotor is provided, and the partition body in a portion located on the outer peripheral side of the cylindrical rotor extends from one end side to the other end side of the cylindrical hole and extends radially outward.
  • an outer seal member that protrudes from the partition body is provided. Further, in this case, as the cylindrical rotor rotates, the inner seal member slides with respect to the inner peripheral curved surface, and the outer seal member slides with respect to the outer peripheral curved surface. By doing so, it is preferable that a part of the plurality of space portions communicates in an air-tight or liquid-tight manner with respect to the inner peripheral flow path forming member and the outer peripheral flow path forming member.
  • the adsorption processing apparatus is a hollow rotor in which a plurality of adsorbers are arranged in a cylindrical shape having a cylindrical hole and can rotate around a cylindrical axis, and an inner periphery thereof
  • the plurality of cylindrical rotors are arranged in a horizontal direction so that the cylindrical shafts of each of the plurality of cylindrical rotors are arranged linearly and the cylindrical holes of each of the plurality of cylindrical rotors communicate with each other.
  • the cylindrical rotor of the cylindrical rotor located at one end among the plurality of cylindrical rotors arranged in the horizontal direction is closed at one end where the adjacent cylindrical rotor is not present and is adjacent to the cylindrical rotor
  • the other end of the cylindrical rotor is open, and the cylindrical holes of the plurality of cylindrical rotors other than the cylindrical rotor located at the one end among the plurality of cylindrical rotors arranged in the horizontal direction are open at both ends. is doing.
  • the first region includes an inner circumferential flow path forming member provided so as to include a portion straddling the plurality of cylindrical rotors in the communicating plurality of cylindrical holes, and the inner circumferential flow path forming member.
  • a part of the adsorbent is an area communicating in an airtight or liquid tight manner.
  • the second region passes through a portion located around the inner circumferential flow path forming member among the plurality of communicating cylindrical holes, and is at the other end of the plurality of cylindrical rotors arranged in the horizontal direction.
  • the adsorbent adsorbs the fluid from the outer peripheral side to the inner peripheral side of the plurality of cylindrical rotors so as to flow out from the opening on the side where there is no cylindrical rotor adjacent to the cylindrical hole. Or from the opening on the side where the cylindrical rotor adjacent to the cylindrical hole is not located in the cylindrical rotor located at the other end of the plurality of cylindrical rotors arranged in the horizontal direction.
  • the fluid that has passed through the portion located around the inner peripheral flow path forming member among the plurality of communicating cylindrical holes is transferred to the adsorbent from the inner peripheral side to the outer peripheral side of the plurality of cylindrical rotors. It is an area to be introduced.
  • the outer peripheral flow path forming member may include a plurality of flow path forming members.
  • each of the plurality of flow path forming members is preferably arranged corresponding to each of the plurality of cylindrical rotors.
  • the fluid that has passed through the inside of the inner peripheral flow path forming member is outer peripheral from the inner peripheral side of the cylindrical rotor.
  • the adsorbent is directed from the outer periphery side to the inner periphery side of the cylindrical rotor so that the fluid is introduced into the adsorbent body toward the side or the inner peripheral flow path forming member. It is preferable that it is the area
  • each of the plurality of cylindrical rotors may further include a plurality of partitions that are arranged between adsorbents adjacent to each other.
  • a plurality of spaces in which each of the plurality of adsorbents is arranged are formed by the plurality of partition bodies.
  • the inner peripheral flow path forming member preferably includes an inner peripheral opening end that faces the inner peripheral side of the plurality of cylindrical rotors. In this case, the rotation direction front side edge of the inner circumferential side opening end located on the front side in the rotation direction of the cylindrical rotor and the inner circumference located on the rear side in the rotation direction of the cylindrical rotor.
  • an inner peripheral curved surface that curves along the rotational direction is provided on each of the rear side edges in the rotational direction of the side opening end.
  • the said outer peripheral side flow-path formation member contains the outer peripheral side opening edge part which faces the outer peripheral side of the said some cylindrical rotor.
  • the rotation direction front side edge of the outer circumferential side opening end located on the front side in the rotation direction of the cylindrical rotor and the outer circumference side located on the rear side in the rotation direction of the cylindrical rotor.
  • an outer peripheral curved surface that is curved along the rotational direction is provided on each of the rotation direction rear side edges of the opening end.
  • the partition body of the portion located on the inner peripheral side of the cylindrical rotor extends from one end side to the other end side of the cylindrical hole, and the cylindrical rotor It is preferable that an inner seal member that protrudes from the partition toward the radially inner side is provided, and in each of the plurality of cylindrical rotors, the partition at a portion located on the outer peripheral side of the cylindrical rotor It is preferable that an outer seal member extending from one end side to the other end side of the cylindrical hole and projecting from the partition body toward the radially outer side is provided.
  • the inner seal member slides with respect to the inner peripheral curved surface
  • the outer seal member slides with respect to the outer peripheral curved surface. It is preferable that a part of the space portion communicates in an air-tight or liquid-tight manner with respect to the inner peripheral flow path forming member and the outer peripheral flow path forming member.
  • the fluid introduced into the first region is preferably a heating fluid
  • the fluid introduced into the second region is
  • the fluid to be treated contains a substance to be treated.
  • the material to be treated is adsorbed and removed from the fluid to be treated by the adsorbent located in the second region by introducing the fluid to be treated into the second region.
  • the treated substance adsorbed on the adsorbent is desorbed from the adsorbent located in the first region by introducing a heating fluid into the first region.
  • a direction in which the fluid to be processed that passes through the second region flows and a direction in which the heating fluid that passes through the first region flows.
  • the fluid to be treated is introduced from the outer peripheral side to the inner peripheral side of the cylindrical rotor.
  • the fluid to be treated is preferably exhaust gas
  • the heating fluid is preferably heated air
  • the substance to be treated is preferably an organic solvent.
  • the adsorbent preferably has a honeycomb structure.
  • an adsorption processing apparatus having a size capable of processing a larger amount of fluid and capable of stably transporting and rotating the apparatus.
  • FIG. 1 is a longitudinal sectional view of an adsorption processing apparatus according to Embodiment 1.
  • FIG. FIG. 2 is a cross-sectional view taken along line II-II shown in FIG. It is an expanded sectional view of the principal part of the cylindrical rotor shown in FIG. It is a longitudinal cross-sectional view of the adsorption processing apparatus which concerns on Embodiment 2.
  • 6 is a longitudinal sectional view of an adsorption processing apparatus according to Embodiment 3.
  • FIG. 1 is a longitudinal sectional view of an adsorption processing apparatus according to the present embodiment.
  • FIG. 2 is a cross-sectional view taken along the line II-II shown in FIG.
  • FIG. 3 is an enlarged cross-sectional view of the main part of the cylindrical rotor shown in FIG.
  • a suction processing apparatus 100 according to the present embodiment will be described.
  • the adsorption processing apparatus 100 adsorbs a substance to be treated contained in a large amount of fluid F1 supplied into the processing chamber 1 using an adsorbent 30 described later. After removing, the cleaned cleaning fluid F2 is discharged. Moreover, the adsorption processing apparatus 100 desorbs the to-be-treated substance from the adsorbent 30 and discharges it as the concentrated fluid F4 by spraying the heating fluid F3 onto the adsorbing body 30 containing the to-be-treated substance adsorbed and removed.
  • the adsorption treatment of the substance to be treated is performed in a second region R2 (see FIG. 2) described later.
  • the desorption process of the substance to be processed is performed in a first region R1 (see FIG. 2) described later.
  • the cylindrical rotor 90 rotates around the cylinder axis C
  • the adsorption process is performed on the adsorbent 30 that passes through the first region R1 and is positioned in the second region R2, and after the adsorption process, the second region R2 is moved to the second region R2.
  • a desorption process is performed on the adsorbent 30 that passes through and is located in the first region R1.
  • the adsorption process and the desorption process are continuously performed.
  • the adsorption processing apparatus 100 includes a cylindrical rotor 90, a first flow path forming member 2, an inner peripheral flow path forming member 4, and an outer peripheral flow path forming member 5.
  • the cylindrical rotor 90 is installed in the processing chamber 1.
  • the cylindrical rotor 90 is a hollow rotor and has, for example, a substantially cylindrical shape.
  • the shape of the cylindrical rotor 90 is not limited to a cylindrical shape, and may be a polygonal cylindrical shape such as a rectangular cylindrical shape or an elliptical cylindrical shape.
  • the cylindrical rotor 90 has a cylindrical hole 90a that is closed at one end and opened at the other end.
  • the cylindrical hole 90 a is defined by the inner periphery of the cylindrical rotor 90.
  • the cylindrical rotor 90 is provided so that fluid can flow in the radial direction.
  • the cylindrical rotor 90 is provided to be rotatable around the cylindrical axis C.
  • the cylindrical rotor 90 is disposed so that the direction of the cylinder axis C is in the horizontal direction.
  • the height of the cylindrical rotor 90 in the vertical direction in a state where the cylinder axis C is disposed in the horizontal direction is a height that does not hinder the conveyance.
  • the width of the cylindrical rotor in the horizontal direction in the state where the cylinder axis C is disposed in the horizontal direction is also set to a width that does not hinder the conveyance.
  • the cylindrical rotor 90 is rotatably supported by a plurality of support wheels 7 that are in contact with the peripheral end surfaces of the pair of plate-like members 10.
  • the plurality of support wheels 7 are installed on the support member 6.
  • Examples of the support wheel 7 include a wheel provided with a flange portion on one side, a wheel provided with a flange portion on both sides, and the like.
  • the cylindrical rotor 90 can be rotated around the cylinder axis C by rotating the support wheel 7 around the axis with the horizontal direction as the axial direction.
  • the support wheel 7 is rotated by a driving device (not shown) such as a motor and a power transmission mechanism (not shown) such as a shaft and a gear.
  • a belt, a chain or the like wound around the cylindrical rotor 90, a driving device (not shown) such as a motor, and a power transmission such as a shaft and a gear.
  • the cylindrical rotor 90 may be rotated by being rotated by a mechanism (not shown).
  • the cylindrical rotor 90 is configured by arranging a plurality of adsorbers 30 in a cylindrical shape having a cylindrical hole 90a.
  • the plurality of adsorbers 30 are arranged in a cylindrical shape, for example.
  • the plurality of adsorbers 30 are arranged in the circumferential direction at a predetermined pitch.
  • Each of the plurality of adsorbers 30 is accommodated in a plurality of space portions S described later that are independent of each other.
  • the plurality of adsorbers 30 are configured to be replaceable.
  • the plurality of adsorbents 30 have, for example, a block shape.
  • the adsorbent 30 is composed of an adsorbent containing any of activated alumina, silica gel, activated carbon, and zeolite.
  • the adsorbent 30 is made of activated carbon or zeolite such as granular, powder, or honeycomb. Activated carbon and zeolite are excellent for adsorbing and desorbing low-concentration organic compounds. Moreover, by making it into a honeycomb shape, the pressure loss of the fluid can be reduced, and the processing capability can be increased. Furthermore, clogging due to solid matter such as dust can be suppressed.
  • the cylindrical rotor 90 includes a pair of plate members 10 and a plurality of partitions 20.
  • a pair of plate-shaped member 10 is arrange
  • the pair of plate-like members 10 includes a first plate-like member 11 and a second plate-like member 12.
  • the first plate member 11 and the second plate member 12 have a substantially circular shape according to the shape of the cylindrical rotor 90.
  • the shape of the 1st plate-shaped member 11 and the 2nd plate-shaped member 12 is not limited to a substantially circular shape, Oval shapes, such as polygonal shapes, such as a rectangle, and an ellipse, may be sufficient.
  • the second plate member 12 is located on one side of the cylindrical rotor 90.
  • the second plate member 12 has a closing portion 13.
  • the second plate-like member 12 closes one end side of the cylindrical hole 90a.
  • the closing part 13 is, for example, a part of the second plate member 12 and a central part of the second plate member 12.
  • the closing part 13 may be comprised by the 2nd plate-shaped member 12 and another member, as long as the one end side of the cylinder hole 90a can be closed as mentioned above.
  • the second plate-like member 12 may have an opening that communicates with the cylindrical hole 90 a
  • the closing portion 13 may be a closing member that closes the opening of the second plate-like member 12.
  • the first plate member 11 is located on the other side of the cylindrical rotor 90.
  • the 1st plate-shaped member 11 has the opening part 11a.
  • the opening 11a communicates with the other end side of the cylindrical hole 90a.
  • the opening 11 a is provided at the center of the first plate-like member 11.
  • the first plate member 11 and the second plate member 12 are provided at a distance so that the partition 20 and the adsorber 30 can be disposed between them.
  • Each of the plurality of partitions 20 is disposed between the adsorbents 30 adjacent to each other.
  • a plurality of space portions S in which each of the plurality of adsorbent bodies 30 is arranged are formed by the plurality of partition bodies 20.
  • the plurality of partitions 20 partition the space between the pair of plate-like members 10 into a plurality of space portions S (see FIG. 3) that are independent from each other in the circumferential direction.
  • the plurality of partitions 20 are arranged so that their centers O (see FIG. 3) are arranged in the circumferential direction at a predetermined pitch.
  • the plurality of partitions 20 are attached between the pair of plate-like members 10 so as to be airtight and / or liquid-tight in the direction of the cylinder axis C.
  • the one end side of the first flow path forming member 2 maintains the inside of the first flow path forming member 2 and the cylindrical hole 90a of the cylindrical rotor 90 in an airtight manner, while the cylindrical rotor 90 rotates around the cylindrical axis C. It is configured to allow that. Specifically, for example, a flange portion is provided on one end side of the first flow path forming member 2, and an annular shape is formed by the flange portion and a portion of the first plate-like member 11 located at the periphery of the opening 11a. The seal member is sandwiched. The other end side of the first flow path forming member 2 is drawn out of the processing chamber 1.
  • the inner peripheral flow path forming member 4 is disposed in the cylindrical hole 90a provided on the inner peripheral side of the cylindrical rotor 90.
  • the outer peripheral flow path forming member 5 is disposed on the outer peripheral side of the cylindrical rotor 90.
  • the inner peripheral flow path forming member 4 and the outer peripheral flow path forming member 5 are arranged to face each other on the inner peripheral side and the outer peripheral side of the cylindrical rotor 90 so as to sandwich a part of the cylindrical row 90 in the circumferential direction. It is installed.
  • the inner peripheral flow path forming member 4 extends along the cylinder axis C in the cylinder hole 90a.
  • the inner peripheral main flow path forming member 4 is provided so as to extend outward from the opening at the other end of the cylindrical hole 90a (more specifically, the opening 11a of the first plate-like member 11).
  • an inner peripheral opening end 4 a facing the inner peripheral side of the cylindrical rotor 90 is provided on the one end side of the inner peripheral flow path forming member 4.
  • the opening surface of the inner peripheral opening end 4a is provided so as to face a partial region on the inner peripheral side of the cylindrical rotor 90 in the circumferential direction. Further, the opening surface faces the inner peripheral side of the cylindrical rotor 90 in the cylinder axis C direction between the first plate-like member 11 and the second plate-like member 12 of the inner peripheral flow path forming member 4. Is provided.
  • the other end side of the inner peripheral flow path forming member 4 protrudes outside the first flow path forming member 2 from an opening 2 a provided in the first flow path forming member 2.
  • an outer peripheral side opening end portion 5a facing the outer peripheral side of the cylindrical rotor 90 is provided on the one end side of the outer peripheral side flow path forming member 5.
  • the opening surface of the outer peripheral side opening end portion 5a is provided so as to face a partial region on the outer peripheral side of the cylindrical rotor in the circumferential direction.
  • the opening surface is provided between the first plate member 11 and the second plate member 12 so as to face the outer peripheral side of the cylindrical rotor 90 in the cylinder axis C direction.
  • the adsorption processing apparatus 100 includes a first region R1 (see FIG. 2) and a second region R2 (see FIG. 2) partitioned in the circumferential direction.
  • the plurality of adsorbers 30 move alternately between the first region R1 and the second region R2 as the cylindrical rotor 90 rotates around the cylinder axis C.
  • the first region R ⁇ b> 1 includes a plurality of adsorbers 30 that move with the rotation of the cylindrical rotor 90 with respect to the inner circumferential flow path forming member 4 and the outer circumferential flow path forming member 5. This is a region where a part is communicated in an airtight or liquid tight manner. More specifically, the first region R ⁇ b> 1 is one of the plurality of space portions S that move with the rotation of the cylindrical rotor 90 with respect to the inner circumferential flow path forming member 4 and the outer circumferential flow path forming member 5. This is an area where the parts communicate in an airtight manner.
  • the first region R1 is also a region where the fluid is introduced into the adsorbent 30. As will be described later, the first region R1 is a region in which the fluid that has passed through the inner circumferential flow path forming member 4 is introduced into the adsorbent 30 from the inner circumferential side of the cylindrical rotor 90 toward the outer circumferential side. But there is.
  • the fluid flow may be reversed, and the first region R1 adsorbs the fluid from the outer peripheral side of the cylindrical rotor 90 toward the inner peripheral side so as to be introduced into the inner peripheral flow path forming member 4. It may be a region introduced into the body 30.
  • the second region R2 passes through the cylindrical hole 90a positioned around the inner circumferential flow path forming member 4 and flows out from the opening at the other end of the cylindrical hole 90a.
  • fluid is introduced into the adsorbent 30 from the outer peripheral side toward the inner peripheral side.
  • the second region is a region in which the fluid that flows in from the opening at the other end of the cylindrical hole 90 a and passes through the cylindrical hole 90 a positioned around the inner peripheral flow path forming member 4 is outer peripheral from the inner peripheral side of the cylindrical rotor 90.
  • transduced into the adsorption body 30 toward the side may be sufficient.
  • the cylindrical rotor 90 includes a seal member 40 provided on each of the plurality of partitions 20.
  • Each of the plurality of partitions 20 includes an installation portion 22 for installing the main body portion 21 and the seal member 40.
  • the main body 21 has, for example, a triangular cylinder shape.
  • the installation unit 22 includes an inner peripheral installation unit 23 and an outer peripheral installation unit 24.
  • the inner periphery side installation part 23 has a plate shape.
  • the inner peripheral side installation part 23 is provided so as to extend in the cylinder axis C direction.
  • the inner peripheral side installation portion 23 is provided so as to protrude toward the radially inner side of the cylindrical rotor 90 from the top side portion of the main body portion 21 located on the inner peripheral side of the cylindrical rotor 90.
  • the inner peripheral side installation portion 23 may be configured integrally with the main body portion 21, or may be configured as a separate member from the main body portion 21.
  • the inner peripheral side installation portion 23 has an inner peripheral side installation surface 23a for installing an inner seal member 41 described later.
  • the inner circumferential side installation surface 23 a intersects the rotational direction of the cylindrical rotor 90.
  • the outer peripheral side installation part 24 has a plate shape.
  • the outer peripheral side installation portion 24 is provided so as to extend in the cylinder axis C direction.
  • the outer peripheral side installation portion 24 is provided so as to protrude toward the radially outer side of the cylindrical rotor 90 from the side surface of the main body portion 21 located on the outer peripheral side of the cylindrical rotor 90.
  • the outer periphery side installation part 24 may be comprised integrally with the main-body part 21, and may be comprised with the main body part 21 and another member.
  • the outer peripheral side installation part 24 has a shape which can be attached to the main body part 21, such as L-shape, for example.
  • the outer peripheral side installation portion 24 has an outer peripheral side installation surface 24a for installing an outer seal member 42 described later.
  • the outer peripheral installation surface 24 a intersects the rotational direction of the cylindrical rotor 90.
  • the seal member 40 is made of, for example, a rubber member having elasticity.
  • the seal member 40 includes an inner seal member 41 positioned on the inner peripheral side of the cylindrical rotor 90 and an outer seal member 42 positioned on the outer peripheral side of the cylindrical rotor 90.
  • the inner seal member 41 is installed on the inner circumferential side installation surface 23 a located on the inner circumferential side of the cylindrical rotor 90 among the installation surfaces of the partition 20.
  • the inner seal member 41 extends from one end side to the other end side of the cylindrical hole 90a. More specifically, the inner seal member 41 extends between the pair of plate members 10 from one plate member (second plate member 12) to the other plate member (first plate member 11). To do.
  • the inner seal member 41 protrudes from the partition 20 toward the radially inner side of the cylindrical rotor 90.
  • the outer seal member 42 is installed on the outer peripheral side installation surface 24 a located on the outer peripheral side of the cylindrical rotor 90 among the installation surfaces of the partition 20.
  • the outer seal member 42 extends from one end side to the other end side of the cylindrical hole 90a. More specifically, the outer seal member 42 extends between the pair of plate members 10 from one plate member (second plate member 12) to the other plate member (first plate member 11). To do.
  • the outer seal member 42 protrudes from the partition 20 toward the radially outer side of the cylindrical rotor 90.
  • the inner circumferential side opening end portion 4 a located on the front side in the rotational direction of the cylindrical rotor 90 and the rear side in the rotational direction of the cylindrical rotor 90 are positioned.
  • Inner peripheral side curved surfaces 4b and 4c that are curved along the rotational direction are provided at the respective rear side edges in the rotational direction of the inner peripheral opening end 4a.
  • outer peripheral side flow path forming member 5 In the outer peripheral side flow path forming member 5, the outer periphery located on the front edge in the rotational direction of the outer peripheral opening end 5 a located on the front side in the rotational direction of the cylindrical rotor 90 and the rear side in the rotational direction of the cylindrical rotor 90. Outer peripheral side curved surfaces 5b and 5c that are curved along the rotational direction are provided at the respective rear side edges in the rotational direction of the side opening end 5a.
  • the inner seal member 41 slides with respect to the inner peripheral curved surfaces 4b and 4c, and the outer seal member 42 slides with respect to the outer peripheral curved surfaces 5b and 5c.
  • a part of the plurality of space portions S communicates with the inner circumferential side flow path forming member 4 and the outer circumferential side flow path forming member 5 in an airtight manner.
  • the space portion S located in the airtight communication with the inner circumferential side flow path forming member 4 and the outer circumferential side flow path forming member 5 is airtight.
  • the first region R1 that is airtightly communicated with the inner peripheral flow path forming member 4 and the outer peripheral flow path forming member 5, the inner peripheral flow path forming member 4, and A second region R2 that is not communicated with the outer peripheral flow path forming member 5 and that forms a flow path different from the first area R1 is defined.
  • fluids are introduced into the first region R1 and the second region R2, respectively. It is preferable that the direction in which the fluid passing through the second region R2 flows and the direction in which the fluid passing through the first region R1 flow are opposite to each other in the radial direction of the cylindrical rotor 90.
  • the cylindrical rotor 90 passes through the cylindrical hole 90a of the cylindrical rotor 90 positioned around the inner peripheral flow path forming member 4 and flows out from the opening at the other end of the cylindrical hole 90a. Fluid is introduced into the adsorbent 30 from the outer peripheral side toward the inner peripheral side.
  • the fluid that has passed through the inner circumferential flow path forming member 4 is introduced into the adsorbent 30 from the inner circumferential side of the cylindrical rotor 90 toward the outer circumferential side.
  • the fluid introduced into the second region R2 is a fluid to be treated such as exhaust gas.
  • the fluid to be treated contains an organic solvent as a material to be treated.
  • the fluid to be processed is cleaned.
  • exhaust gas is introduced into the second region R2 of the adsorption processing apparatus 100 from the outer peripheral side of the cylindrical rotor 90 toward the inner peripheral side.
  • the organic solvent is adsorbed and removed by the plurality of adsorbents 30 located in the second region R2, To be cleaned.
  • the purified exhaust gas is discharged as clean air from the second region R2 into the cylindrical hole 90a of the cylindrical rotor 90.
  • the clean air discharged into the cylindrical hole 90a of the cylindrical rotor 90 passes through the cylindrical hole 90a positioned around the inner peripheral flow path forming member 4 and opens at the other end of the cylindrical hole 90a (more specifically, Flows out from the opening 11 a) of the first plate member 11.
  • the clean air that has flowed out of the opening at the other end of the cylindrical hole 90a passes through the first flow path forming member 2 and is discharged out of the processing chamber 1.
  • the fluid introduced into the first region R1 is a heated fluid such as heated air.
  • a heated fluid such as heated air.
  • the adsorbent 30 is regenerated and a concentrated fluid with a higher organic solvent concentration is generated.
  • heated air is introduced from the other end side of the inner circumferential flow path forming member 4.
  • the heated air introduced from the other end side of the inner peripheral flow path forming member 4 passes through the inner peripheral flow path forming member 4 to the first region from one end side of the inner peripheral flow path forming member 4. Introduced into R1.
  • the heated air introduced into the first region R1 passes through the cylindrical rotor 90 from the inner peripheral side to the outer peripheral side of the cylindrical rotor 90, the plurality of adsorbents 30 positioned in the first region R1 by heat.
  • the organic solvent adsorbed on them is desorbed.
  • the heated air containing the organic solvent is discharged from the first region R1 to the outer peripheral flow path forming member 5 as a concentrated fluid.
  • the concentrated fluid discharged to the outer peripheral side flow path forming member 5 is introduced into a post-processing device that performs post-processing such as recovery or combustion.
  • the rotation axis (cylindrical axis C) is stabilized and the cylindrical rotor 90 is stabilized. Can be rotated stably.
  • the vertical axis is more vertical than when arranging a plurality of cylindrical rotors 90 whose cylindrical axis C faces the vertical direction.
  • An increase in the overall height in the direction can be suppressed. Since the height of the cylindrical rotor 90 in the vertical direction in the state where the cylinder axis C is arranged in the horizontal direction is configured to be a height that does not hinder the conveyance, the adsorption processing apparatus 100 is hindered in the conveyance. There can be no practical size. Thereby, an adsorption processing apparatus can be conveyed stably.
  • the adsorbent 30 is designed by designing the cylindrical rotor 90 so as to increase the width of the horizontal cylindrical rotor 90 in a state in which the cylindrical rotor 90 is arranged so that the cylindrical axis C faces the horizontal direction. Or the volume of the adsorbent 30 can be increased. Thereby, the adsorption capacity of the adsorption processing apparatus 100 can also be increased. As a result, more fluid can be processed.
  • the fluid introduced into the second region R2 is exhaust gas containing an organic solvent and the fluid introduced into the first region R1 is heated air
  • the present invention is not limited to this, and the fluid introduced into the second region R2 may be waste water containing an organic solvent, and the fluid introduced into the first region R1 may be water vapor.
  • the inner peripheral side flow path forming member 4 and the outer peripheral side flow path forming member 5 are configured to communicate with the first region R1 in a liquid-tight manner.
  • the fluid to be treated may be introduced into the adsorbent 30 from the outer peripheral side of the cylindrical rotor 90 toward the inner peripheral side in the second region R2.
  • the heating fluid may be introduced into the adsorbent 30 from the inner circumference side to the outer circumference side of the cylindrical rotor 90 so as to be introduced into the inner circumference flow path forming member 4.
  • the direction of the fluid that passes through the second region R2 and the direction of the fluid that passes through the first region R1 are the same in the radial direction of the cylindrical rotor 90. May be introduced into the second region R2 and the heating fluid may be introduced into the first region R1.
  • FIG. 4 is a longitudinal sectional view of the adsorption processing apparatus according to the present embodiment. With reference to FIG. 4, the adsorption processing apparatus 100A according to the present embodiment will be described.
  • the adsorption processing apparatus 100A has a plurality of cylindrical rotors 90A, 90B, and 90C arranged side by side when compared with the adsorption processing apparatus 100 according to the first embodiment. Is different.
  • the cylindrical rotors 90A, 90B, and 90C are referred to as the cylindrical rotor 90 when they are not particularly distinguished.
  • the plurality of cylindrical rotors 90A, 90B, 90C are arranged side by side in the horizontal direction so that the cylindrical axes C are arranged in a straight line. In this state, the cylindrical holes 90a of each of the plurality of cylindrical rotors 90A, 90B, 90C communicate with each other.
  • the cylindrical hole 90a of the cylindrical rotor 90C located at one end of the plurality of cylindrical rotors 90A, 90B, 90C arranged in the horizontal direction has one end closed without an adjacent cylindrical rotor and an adjacent cylindrical rotor. The end is open.
  • the 2nd plate-shaped member 12 located in one side among a pair of plate-shaped members 10 in the cylindrical rotor 90C has the obstruction
  • the first plate member 11 located on the other side of the pair of plate members 10 in the cylindrical rotor 90C has an opening portion 11a communicating with the other end of the cylindrical hole 90a on the side where the adjacent cylindrical rotor 90B is located.
  • Both ends of the cylindrical holes 90a of the plurality of cylindrical rotors 90A, 90B other than the cylindrical rotor 90C located at one end among the plurality of cylindrical rotors 90A, 90B, 90C arranged in the horizontal direction are open.
  • the pair of plate-like members 10 respectively included in the plurality of cylindrical rotors 90A and 90B have openings 11a and 12a that allow the plurality of cylindrical holes 90a arranged in the horizontal direction to communicate with each other.
  • the plurality of cylindrical rotors 90A, 90B, 90C are arranged side by side so that the cylindrical holes 90a of the adjacent cylindrical rotors 90 are maintained airtight.
  • a seal member 8 is provided between the plate members 10 adjacent to each other among the plurality of pairs of plate members 10 to keep the adjacent cylindrical holes 90a airtight.
  • One end side of the first flow path forming member 2 is the end of the cylindrical rotor 90A located at the other end of the two cylindrical rotors 90A, 90C located on both sides in the direction in which the plurality of cylindrical rotors 90A, 90B, 90C are arranged.
  • the cylindrical rotor 90A is configured to be allowed to rotate around the cylinder axis C while maintaining the cylinder hole 90a and the inside of the first flow path forming member 2 airtight.
  • a flange portion is provided on one end side of the first flow path forming member 2, and the flange portion and the peripheral edge of the opening portion 11a of the cylindrical rotor 90A located at the other end are located.
  • An annular seal member is sandwiched between the first plate-like member 11 of the portion to be operated.
  • the other end side of the first flow path forming member 2 is drawn out of the processing chamber 1.
  • outer peripheral side flow path forming members 5 are disposed as flow path forming members, respectively.
  • Each of the plurality of outer peripheral flow path forming members 5 is disposed corresponding to each of the plurality of cylindrical rotors 90A, 90B, 90C.
  • Each of the plurality of outer peripheral flow path forming members 5 and the inner peripheral flow path forming member 4A is disposed to face each other so as to sandwich a part of each cylindrical rotor 90A, 90B, 90C in the circumferential direction. ing.
  • the inner circumferential flow path forming member 4A extends along the cylinder axis C direction in a plurality of cylinders 90a communicating in an airtight manner, and the cylindrical rotor 90A from the opening 11a of the cylindrical rotor 90A located on the other side. It is provided so that it may extend toward the outside.
  • the inner circumferential flow path forming member 4A (specifically, the inner circumferential flow path forming member 4A in a portion extending in the cylindrical axis C direction in the plurality of cylindrical holes 90a) includes a plurality of cylinders.
  • An inner peripheral opening end 4 a is provided so as to face the inner peripheral side of the cylindrical rotor 90.
  • the opening surface of the inner peripheral side opening end 4 a is provided so as to face a partial region in the circumferential direction on the inner peripheral side of the plurality of cylindrical rotors 90.
  • the other end side of the inner circumferential flow path forming member 4 ⁇ / b> A protrudes outside the first flow path forming member 2 from an opening 2 a provided in the first flow path forming member 2.
  • An outer peripheral opening end portion 5 a facing the outer peripheral side of the corresponding cylindrical rotor 90 is provided on one end side of each of the plurality of outer peripheral flow path forming members 5.
  • the opening surface of the outer peripheral opening end 5a is provided so as to face a partial region on the outer peripheral side of the cylindrical rotor 90 in the circumferential direction.
  • the opening surface is provided between the first plate member 11 and the second plate member 12 of the corresponding cylindrical rotor 90 so as to face the outer peripheral side of the cylindrical rotor 90 in the direction of the cylinder axis C. .
  • Each of the plurality of cylindrical rotors 90 includes a first region R1 that is airtightly communicated with the inner circumferential flow path forming member 4A and the outer circumferential flow path forming member 5, and the inner circumferential flow path forming member 4A and the outer circumferential side. It does not communicate with the flow path forming member 5 and is divided into a second area R2 constituting a different flow path from the first area R1.
  • the first region R1 includes an inner peripheral flow path forming member 4A provided to include a portion straddling the plurality of cylindrical rotors 90A, 90B, and 90C in the plurality of communicating cylindrical holes 90a, and the inner peripheral flow
  • a part of the plurality of adsorbers 30 included in the plurality of cylindrical rotors 90A, 90B, and 90C that move with the gas is an area that communicates in an airtight or liquid tight manner.
  • the first region R1 includes a plurality of spaces included in the plurality of cylindrical rotors 90A, 90B, and 90C with respect to the inner circumferential flow path forming member 4A and the outer circumferential flow path forming member 5.
  • a part of the part S is an area communicating in an airtight or liquid tight manner.
  • exhaust gas is introduced from the outer peripheral side of the cylindrical rotor 90 toward the inner peripheral side with respect to the second region R2 of the adsorption processing apparatus 100A.
  • the second region R2 passes through a portion located around the inner circumferential flow path forming member 4A among the plurality of communicating cylindrical holes 90a, and a plurality of cylindrical rotors 90A and 90B arranged in the horizontal direction.
  • 90C from the opening (more specifically, the opening 11a of the first plate-like member 11) of the cylindrical hole 90a in the cylindrical rotor 90A located at the other end of the cylindrical rotor 90A on the side where the adjacent cylindrical rotor 90 is not present.
  • the fluid is introduced into the adsorbent 30 from the outer peripheral side to the inner peripheral side of the plurality of cylindrical rotors 90A, 90B, 90C so as to flow out.
  • the organic solvent is adsorbed by the plurality of adsorbents 30 located in the second region R2. It is cleaned by removing.
  • the cleaned exhaust gas is discharged as clean air from the second region R2 into the cylindrical holes 90a of the cylindrical rotors 90A, 90B, 90C.
  • the clean air discharged into each of the cylindrical holes 90a of the cylindrical rotors 90A, 90B, and 90C passes through a plurality of cylinders 90a communicating in an airtight manner at a portion located around the inner peripheral flow path forming member 4A. It flows out from the opening 11a of the cylindrical rotor 90A located on the other side.
  • Clean air that has flowed out from the opening 11a of the cylindrical rotor 90A located on the other side passes through the first flow path forming member 2 and is discharged out of the processing chamber 1.
  • the heated air that has passed through the inner circumferential flow path forming member 4A is directed to the adsorption body 30 from the inner circumferential side of the cylindrical rotor 90 toward the outer circumferential side. It is an area to be introduced. In the first region R1, heated air is introduced from the inner peripheral side of the cylindrical rotor 90 toward the outer peripheral side.
  • the heated air introduced into the first region R1 passes through each of the cylindrical rotors 90A, 90B, and 90C from the inner peripheral side to the outer peripheral side of the cylindrical rotor 90, the heated air is positioned in the first region R1 by heat.
  • the organic solvent adsorbed on the plurality of adsorbents 30 is desorbed.
  • the heated air containing the organic solvent is discharged from the first region R1 to each of the outer peripheral side flow path forming members 5 as a concentrated fluid.
  • the concentrated fluid discharged to each of the outer peripheral side flow path forming members 5 is introduced into a post-processing device that performs post-processing such as recovery or combustion.
  • a plurality of cylindrical rotors 90 in which the cylinder axis C faces in the horizontal direction are arranged side by side in the horizontal direction, whereby a plurality of cylinder axes C in the vertical direction are arranged.
  • an increase in the overall height in the vertical direction can be suppressed.
  • the adsorption processing apparatus 100A Since the height of the cylindrical rotor 90 in the vertical direction in the state where the cylinder axis C is arranged in the horizontal direction is configured to be a height that does not hinder the conveyance, the adsorption processing apparatus 100A is hindered in the conveyance. There can be no practical size. Thereby, it can convey stably. Moreover, since it can suppress that the overall height in a perpendicular direction increases, it can suppress that the some cylindrical rotor 90 wobbles, and can rotate the some cylindrical rotor 90 stably.
  • the adsorption capacity and the processing amount can be significantly increased as compared with the adsorption processing apparatus 100 according to the first embodiment.
  • the case where a plurality of outer peripheral flow path forming members 5 are provided has been described as an example.
  • the present invention is not limited to this, and the outer peripheral flow path forming member 5 is single. May be.
  • the outer peripheral side flow path forming member 5 is provided so as to extend from one side to the other side in the direction in which the plurality of cylindrical rotors 90 are arranged.
  • the other end side of the outer peripheral side flow path forming member 5 may be branched into a plurality.
  • the inner peripheral flow path forming member 4A and the single outer peripheral flow path forming member are substantially the same as the inner peripheral flow path forming member 4 and the outer peripheral flow path forming member 5 according to the first embodiment. It has the same configuration.
  • the inner circumferential flow path forming member 4A includes an inner circumferential opening end 4a facing the inner circumferential side of the plurality of cylindrical rotors 90A, 90B, 90C, and is positioned on the front side in the rotational direction of the rotor of the cylindrical rotor 90.
  • the rotation direction front side edge of the inner circumferential side opening end 4a and the rotation direction rear side edge of the inner circumferential side opening end located on the rear side in the rotation direction of the cylindrical rotor 90 are respectively in the rotation direction.
  • An inner circumferential curved surface that is curved along the axis is provided.
  • the outer circumferential side flow path forming member includes an outer circumferential side opening end facing the outer circumferential side of the plurality of cylindrical rotors 90A, 90B, 90C, and the outer circumferential side opening end positioned on the front side in the rotational direction of the cylindrical rotor 90.
  • the outer peripheral curved surface that curves along the rotational direction is provided on each of the rotational direction front side edge of the part and the rotational direction rear side edge of the outer peripheral opening end located on the rear side of the cylindrical rotor 90 in the rotational direction. Is provided.
  • a part of the partition body 20 located on the inner peripheral side of the cylindrical rotor 90 extends from one end side to the other end side of the cylindrical hole 90a, and has a cylindrical shape.
  • An inner seal member that protrudes from the partition 20 toward the radially inner side of the rotor 90 is provided.
  • a part of the partition body 20 located on the outer peripheral side of the cylindrical rotor 90 extends from one end side to the other end side of the cylindrical hole 90a.
  • An outer seal member protruding from the partition 20 toward the radially outer side of the cylindrical rotor 90 is provided.
  • the inner seal member slides with respect to the inner peripheral curved surface
  • the outer seal member slides with respect to the outer peripheral curved surface.
  • a part of the space portion S communicates in an air-tight or liquid-tight manner with respect to the inner circumferential flow path forming member 4A and the outer circumferential flow path forming member.
  • exhaust gas may be introduced into each of the second regions R2 of the plurality of cylindrical rotors 90 from the inner peripheral side to the outer peripheral side of the cylindrical rotor 90.
  • the second region R2 includes the cylindrical rotor 90 adjacent to the cylindrical hole 90a in the cylindrical rotor 90A located at the other end of the plurality of cylindrical rotors 90A, 90B, 90C arranged in the horizontal direction.
  • Non-opening (more specifically, the opening 11a of the first plate-like member 11) flows in and passes through a portion of the plurality of communicating cylindrical holes 90a located around the inner circumferential flow path forming member 4A.
  • the fluid is an area where the fluid is introduced into the adsorbent 30 from the inner peripheral side to the outer peripheral side of the plurality of cylindrical rotors 90A, 90B, 90C.
  • the fluid in the first region R1, the fluid is adsorbed from the outer peripheral side of the cylindrical rotor 90 toward the inner peripheral side so as to be introduced into the inner peripheral flow path forming member 4A. It may be introduced into the body 30.
  • the present invention is not limited to this and may be two or four. It may be the above.
  • FIG. 5 is a longitudinal sectional view of the adsorption processing apparatus according to the present embodiment. With reference to FIG. 5, the adsorption processing apparatus 100B according to the present embodiment will be described.
  • the adsorption processing apparatus 100 ⁇ / b> B when compared with the adsorption processing apparatus 100 according to the first embodiment, has a cylindrical shaft between a pair of plate members 10 by a plurality of plates 9. It is different in that it is divided in the C direction and the number of support wheels 7 that support the cylindrical rotor 90 is increased accordingly. Other configurations are almost the same.
  • the plate 9 has a shape corresponding to the first plate member 11 and the second plate member 12.
  • the plate 9 is disposed between the pair of plate-like members 10.
  • the plurality of plates 9 divide the space portion S in the cylinder axis C direction. In each of the space portions S divided in the cylinder axis C direction, an adsorbent 30 corresponding to the size of the divided space portion S is accommodated.
  • the cylindrical rotor 90 is rotatably supported by a plurality of support wheels 7 that contact the peripheral end surfaces of the pair of plate-like members 10 and a plurality of support wheels 7 that contact the peripheral end surfaces of the plurality of plates 9.
  • the cylindrical rotor 90 is arranged so that the cylinder axis C faces the horizontal direction. For this reason, even in the adsorption processing apparatus 100B according to the third embodiment, substantially the same effect as the adsorption processing apparatus 100 according to the first embodiment can be obtained.
  • a plurality of plates 9 are provided, and in addition to the pair of plate-like members 10, the plurality of plates 9 are rotatably supported by the plurality of support wheels 7, so that the cylinder is more stably than in the first embodiment.
  • the rotor 90 can be rotated.
  • the case where the pair of plate-like members 10 is divided in the direction of the cylinder axis C by the plurality of plates 9 has been described as an example.
  • the present invention is not limited to this.
  • the plate-like members 10 may be divided in the direction of the cylinder axis C.
  • the partition 20 has a substantially triangular tube shape
  • the present invention is not limited to this, and the strength is such that the pair of plate-like members 10 can be supported.
  • the shape may be a plate shape or the like, and can be changed as appropriate.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Environmental & Geological Engineering (AREA)
  • Analytical Chemistry (AREA)
  • General Chemical & Material Sciences (AREA)
  • Oil, Petroleum & Natural Gas (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Health & Medical Sciences (AREA)
  • Biomedical Technology (AREA)
  • Separation Of Gases By Adsorption (AREA)
  • Treating Waste Gases (AREA)
  • Treatment Of Liquids With Adsorbents In General (AREA)

Abstract

L'invention concerne un dispositif de traitement par adsorption (100) qui comprend un rotor cylindrique (90) dans lequel une pluralité de corps d'adsorption (30) sont disposés en forme cylindrique ayant un trou cylindrique (90a), et une première région (R1) et une seconde région (R2) qui sont séparées l'une de l'autre. Un axe de cylindre C du rotor cylindrique (90) s'étend dans la direction horizontale. Une extrémité du trou cylindrique (90a) est fermée et l'autre extrémité est ouverte. La première région (R1) est une région dans laquelle certains de la pluralité de corps d'adsorption (30) sont en communication étanche à l'air ou étanche aux liquides par rapport à un élément de formation de canal côté circonférence interne (4) et un élément de formation de canal côté circonférence externe (5). La seconde région (R2) est une région dans laquelle un fluide est introduit dans les corps d'adsorption (30) depuis la circonférence externe du rotor cylindrique (90) vers la circonférence interne de ce dernier, de façon à s'écouler hors de l'ouverture sur l'autre extrémité du trou cylindrique (90a), ou est une région dans laquelle un fluide s'écoulant depuis l'ouverture sur l'autre extrémité du trou cylindrique (90a) est introduit dans les corps d'adsorption (30) depuis la circonférence interne du rotor cylindrique (90) vers la circonférence externe de ce dernier.
PCT/JP2017/011965 2016-03-28 2017-03-24 Dispositif de traitement par adsorption WO2017170207A1 (fr)

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WO2022270380A1 (fr) 2021-06-23 2022-12-29 東洋紡株式会社 Système de récupération de solvant organique

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CN109069981B (zh) 2022-05-03
CN109069981A (zh) 2018-12-21

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