WO2006038602A1 - Member for rainwater containing structure and rainwater containing structure body using the same - Google Patents

Member for rainwater containing structure and rainwater containing structure body using the same Download PDF

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Publication number
WO2006038602A1
WO2006038602A1 PCT/JP2005/018319 JP2005018319W WO2006038602A1 WO 2006038602 A1 WO2006038602 A1 WO 2006038602A1 JP 2005018319 W JP2005018319 W JP 2005018319W WO 2006038602 A1 WO2006038602 A1 WO 2006038602A1
Authority
WO
WIPO (PCT)
Prior art keywords
pipe
rainwater storage
rainwater
storage structure
dimensional structure
Prior art date
Application number
PCT/JP2005/018319
Other languages
French (fr)
Japanese (ja)
Inventor
Hideki Miyaji
Kaoru Inoue
Katsuhiko Tanigawa
Toshiya Taniguchi
Akira Yoshida
Youetsu Kudou
Original Assignee
Toyo Tire & Rubber 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
Priority claimed from JP2004291013A external-priority patent/JP2006104721A/en
Priority claimed from JP2004291698A external-priority patent/JP2006104739A/en
Priority claimed from JP2005162190A external-priority patent/JP2006336299A/en
Priority claimed from JP2005165450A external-priority patent/JP2006336405A/en
Priority claimed from JP2005165459A external-priority patent/JP2006336406A/en
Priority claimed from JP2005268195A external-priority patent/JP3802919B1/en
Application filed by Toyo Tire & Rubber Co., Ltd. filed Critical Toyo Tire & Rubber Co., Ltd.
Publication of WO2006038602A1 publication Critical patent/WO2006038602A1/en

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03FSEWERS; CESSPOOLS
    • E03F5/00Sewerage structures
    • E03F5/10Collecting-tanks; Equalising-tanks for regulating the run-off; Laying-up basins
    • E03F5/101Dedicated additional structures, interposed or parallel to the sewer system
    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03FSEWERS; CESSPOOLS
    • E03F1/00Methods, systems, or installations for draining-off sewage or storm water
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D35/00Filtering devices having features not specifically covered by groups B01D24/00 - B01D33/00, or for applications not specifically covered by groups B01D24/00 - B01D33/00; Auxiliary devices for filtration; Filter housing constructions
    • B01D35/02Filters adapted for location in special places, e.g. pipe-lines, pumps, stop-cocks
    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03BINSTALLATIONS OR METHODS FOR OBTAINING, COLLECTING, OR DISTRIBUTING WATER
    • E03B11/00Arrangements or adaptations of tanks for water supply
    • E03B11/10Arrangements or adaptations of tanks for water supply for public or like main water supply
    • E03B11/14Arrangements or adaptations of tanks for water supply for public or like main water supply of underground tanks
    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03BINSTALLATIONS OR METHODS FOR OBTAINING, COLLECTING, OR DISTRIBUTING WATER
    • E03B3/00Methods or installations for obtaining or collecting drinking water or tap water
    • E03B3/02Methods or installations for obtaining or collecting drinking water or tap water from rain-water
    • E03B3/03Special vessels for collecting or storing rain-water for use in the household, e.g. water-butts
    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03FSEWERS; CESSPOOLS
    • E03F1/00Methods, systems, or installations for draining-off sewage or storm water
    • E03F1/002Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells
    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03FSEWERS; CESSPOOLS
    • E03F1/00Methods, systems, or installations for draining-off sewage or storm water
    • E03F1/002Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells
    • E03F1/005Methods, systems, or installations for draining-off sewage or storm water with disposal into the ground, e.g. via dry wells via box-shaped elements
    • EFIXED CONSTRUCTIONS
    • E03WATER SUPPLY; SEWERAGE
    • E03FSEWERS; CESSPOOLS
    • E03F5/00Sewerage structures
    • E03F5/14Devices for separating liquid or solid substances from sewage, e.g. sand or sludge traps, rakes or grates
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2221/00Applications of separation devices
    • B01D2221/12Separation devices for treating rain or storm water
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A20/00Water conservation; Efficient water supply; Efficient water use
    • Y02A20/108Rainwater harvesting

Definitions

  • the present invention relates to a member for a rainwater storage structure and a rainwater storage structure using the same, and more specifically, a plurality of pipe-like longitudinal members having a predetermined length and a connection for connecting these pipe-like longitudinal members to be connectable
  • the present invention relates to a member for a rainwater storage structure having a member and a rainwater storage structure using the same.
  • a rainwater storage structure for example, a pit is dug on the ground, a water blocking sheet is laid on the outer surface, and a plurality of container-like members are stacked vertically and horizontally on the upper surface thereof.
  • An invention has been made of a structure in which the uppermost portion is covered with soil and the like to store rainwater (Patent Document 1).
  • Patent Document 1 Japanese Patent Application Laid-Open No. 63-268823
  • Patent Document 2 Japanese Patent Application Laid-Open No. 2004-19205
  • the rainwater storage structure or the packing material for rainwater storage of the above embodiment uses the packing material for rainwater storage consisting of the container-like member, the detachable post and the connecting member, and it is sufficient for inspection. Maintenance inspections can not be performed practically, because the openings are not wide enough. Even if sediment has accumulated due to long-term use and can not perform its prescribed function, cleaning work is easy and no function can be restored.
  • the characteristic configuration of the member for a structure for storing rainwater according to the present invention includes a plurality of pipe-shaped vertical members having a predetermined length, a horizontal member that assembles a three-dimensional structure together with these grooved vertical members, and the pipe-shaped vertical member And a connecting jig for connecting the horizontal members, and by forming the pipe-like vertical members and the horizontal members into a three-dimensional structure via the connecting jig, a space can be formed inside. It is to
  • connection jig is fitted and attached to the pipe-like longitudinal member and is engaged with and connected to the cross member.
  • connection work is easy, as there is no need to prepare and fasten a fastener such as a bolt and a nut separately.
  • assembly work to a three-dimensional structure on site can be performed more efficiently.
  • a plurality of pipe-shaped vertical members having a predetermined length and the pipe-shaped members having a predetermined length are connected to each other to be three-dimensional.
  • a connecting member that can be assembled into a structure may be provided, and a space may be formed inside a three-dimensional structure formed of the pipe-like member and the connecting member.
  • the opening having a predetermined size can be easily selected simply by selecting the lengths of the pipe-like member and the connecting member.
  • the resin pipe-like member and the connecting member such as the length and diameter, it can be flexibly adapted according to the shape of the rainwater storage and permeation tank, and the design freedom is improved compared to the prior art. It will improve dramatically.
  • the connecting member has a direction substantially perpendicular to the pipe-like member at least at its end. It is preferable to be able to be fitted and connected.
  • connection member is fitted to the pipe-like member, the pipe-like members are connected, and the connection between the eve and the connection member is repeated in the direction perpendicular to each other. It can be easily assembled into a three-dimensional structure on site.
  • the height adjustment in the case of connecting two to four connecting members to one pipe-like member can be easily performed by using a spacer having a predetermined height or the like.
  • a back surface side of the cross member is opened to form a recess, and a longitudinal rib extending in a longitudinal direction is formed to define the recess.
  • the structure after the construction can be made excellent.
  • connection between the lateral member and the connecting jig is made such that the end face of the lateral member and the outer peripheral surface of the connecting jig face each other, and the end face of the lateral member is the circumference of the connecting jig. It is preferable that the connection be non-rotatable.
  • a protrusion or a hole is formed on an end face of the cross member, and a hole or a protrusion fitted to the protrusion or a hole of the cross member is formed on an outer peripheral portion of the connection jig. It is preferable that a large number of water draining through holes are formed on the top surface of the member.
  • connection of each member becomes reliable and strong, and the rainwater is reliably stored at the bottom.
  • a short side rib on the short side orthogonal to the longitudinal direction rib is formed in a recess on the back side of the horizontal member.
  • the strength of the cross member is further enhanced against the deflection due to the load of the upper force only against the deflection due to the load of the upper force, and the construction of the worker during the construction More stable work can be done.
  • the outer circumferential surface of the pipe-shaped vertical member may have ribs formed along the vertical direction. It is preferable to attach a side panel having a locking portion that locks onto it.
  • the strength of the pipe-like vertical member in particular, the buckling strength, and the like can be remarkably improved with a simple configuration, and the strength of the assembly for rainwater storage structure can be generally improved. It can be done.
  • a flat panel which has a cap member which can be fitted to the uppermost position of the connection member and which can smooth this portion, and which can be disposed between the pipe-like longitudinal members and on the cross member Preferred to have and.
  • unexpected directional force and external force can be prevented from acting during or after construction, and the strength of this portion can be maintained at a certain level or higher, and a flat panel is disposed.
  • the strength of the assembly for a rainwater storage structure can be further enhanced, and the workability can be enhanced, for example, the worker can easily walk when performing the work of assembling the rainwater storage structure.
  • the three-dimensional structure preferably has a compressive strength of at least 10 8 kNZm 2 or more.
  • the characteristic configuration of the rainwater storage structure according to the present invention includes a water-impervious material laid in the recess on the ground, a three-dimensional structure disposed on the upper surface side of the water-impervious material, and the three-dimensional structure.
  • the three-dimensional structure comprises a plurality of pipe-like longitudinal members having a predetermined length, and the three-dimensional structure together with these pipe-like longitudinal members. It has a horizontal member to be assembled and a connecting jig for connecting the horizontal member to the pipe-shaped vertical member, and the pipe-shaped vertical member and the horizontal member are assembled through the connecting jig. It is in.
  • a convective generation mechanism for convecting the rainwater stored inside the three-dimensional structure is provided. It is preferable that a solid recovery device capable of recovering accumulated solids be provided.
  • a convection generating mechanism is attached to the inside of the three-dimensional structure storing rainwater, for example, at one end side, and is operated periodically or irregularly to store the internal water storage.
  • convecting not only solids such as earth and sand adhering to the three-dimensional structure itself, but also solids deposited on the bottom can be moved to the other, and these solids can be recovered as solids.
  • the interior of the rainwater storage structure can be efficiently cleaned at all times, and the high function of rainwater storage can be maintained for many years of use.
  • a solid substance is used as a concept representing a solid substance widely including various powdery and granular substances such as earth and sand and dust mixed in rain water.
  • rainwater storage does not require laborious work such as workers entering the water storage tank from the manhole on a regular basis, yet it is possible to reliably remove soil and the like that flowed into the rainwater storage structure.
  • a structure can be provided.
  • the pipe-shaped longitudinal member is a member made of a plurality of resin members having a predetermined length, and is stored in the inside of the three-dimensional structure assembled by the resin-made pipe-shaped longitudinal members and the horizontal member.
  • a plurality of aeration devices for detonating the rainwater can be removably attached! /, Preferred! /.
  • the aeration system If the aeration system is installed properly, the stored rainwater can be cleaned, the deterioration of the water quality can be prevented, the utility value can be high, and the rainwater can be stored.
  • a lower recess is formed in the ground recess on the side facing the convection generating mechanism, and a pressure reduction capable of discharging the solid stored in the recess by the solid recovery device.
  • Air is fed through the inside of the pipe-like longitudinal member and stored in the three-dimensional structure.
  • an aeration device for detonating the rainwater is attachable.
  • the pipe-shaped vertical member is a plurality of resin members having a predetermined length, and a convection generating mechanism for convecting the rainwater stored inside the three-dimensional structure, and the rainwater It is preferable to be provided with a solid recovery device capable of recovering the solid deposited on the inside of the rainwater storage structure to be stored.
  • a convection generating mechanism is attached, for example, to one end side of the three-dimensional structure storing rain water, and it operates periodically or irregularly to store the internal water storage.
  • convecting not only solids such as earth and sand adhering to the three-dimensional structure itself, but also solids deposited on the bottom of the rainwater storage structure can be moved to the other, and these solids
  • solid collection device By collecting materials using a solid collection device, the interior of the rainwater storage structure can be efficiently cleaned at all times, and the high function of rainwater storage can be maintained for many years of use.
  • a lower recess is formed in the ground recess on the side facing the convection generating mechanism, and a pressure reduction capable of discharging the solid stored in the recess by the solid recovery device.
  • the three-dimensional structure is covered with a flexible water-permeable material, and a peripheral end of the water-permeable material covers at least the ground recess around the three-dimensional structure, A filler filling the ground recess around the three-dimensional structure on the upper surface of the permeable material It is preferable that the three-dimensional structure is pressed and covered with the water-permeable material by being placed.
  • a large water storage space is formed by the three-dimensional structure, and the water-permeable material is firmly attached along the side surface and the upper surface of the three-dimensional structure to strengthen the three-dimensional structure. Even if the groundwater level rises due to long rain etc. in addition to the rainwater stored inside the rainwater storage structure, the three-dimensional structure will come to a standstill! Can be prevented.
  • the rainwater storage structure is constructed by mainly burying the assembly for the rainwater storage structure, which is mainly made of resin molded body, to constitute the rainwater storage structure, even if the groundwater level rises, the rainwater storage that can strongly prevent floating.
  • a structure can be provided.
  • the water-permeable material having flexibility is a non-woven fabric or a resin-made net material or mat material, and a resin-coated net material having a selected one kind of force, and the filling has the three-dimensional structure. It is preferable that it is a stone material which fills the ground recess around the body.
  • the non-woven fabric made of non-woven fabric and the non-woven fabric made of non-woven resin is excellent in water permeability and flexibility, and is placed by the filler. Even if pressed, it has sufficient strength, is durable, and is relatively inexpensive, so it is possible to avoid an increase in manufacturing costs.
  • resin-coated netting can be used.
  • the stone as the filler is heavy, the three-dimensional structure can be firmly held down via the non-woven fabric or resin-made net material or mat material, or the resin-coated net material. Even if the level of stored rainwater rises, it can exert a great deal of resistance to buoyancy. Not only that, a space is formed in the place where the stone is placed, and it is possible to store water in this place.
  • a convective generation mechanism for convecting the rainwater stored inside the three-dimensional structure is provided, and a solid recovery device capable of recovering the deposited solid is provided, and the third order is further provided. It is preferable that a plurality of aerators for detonating the rainwater stored inside the original structure be detachably attachable.
  • the three-dimensional structure can be cleaned by maintaining the convection by the convection generating mechanism regularly or irregularly, and the water storage function can be constantly maintained high, and the force can also be reduced.
  • the aeration system can be used to clean rain water, prevent deterioration of the water quality, and enhance the utilization value of stored rain water.
  • FIG. 1 is (a) a plan view and (b) a front sectional view of a connecting jig constituting the member for a rainwater storage structure according to the first embodiment of the present invention.
  • FIG. 2 (a) Left side view, (b) plan view, (c) n-II cross-sectional view of a lateral member constituting the member for a rainwater storage structure according to the first embodiment of the present invention.
  • FIG. 3 is (a) a front view, (b) a cross-sectional view along a line n-III of a pipe-shaped vertical member constituting the member for a rainwater storage structure according to the first embodiment of the present invention.
  • FIG. 4 is a front view illustrating the assembly procedure of the rainwater storage structure assembly A using a pipe-like member and a connection member.
  • FIG. 5 is a plan view illustrating the assembly procedure of the rainwater storage structure assembly A using a pipe-like member and a connection member.
  • FIG. 6 A schematic cross-sectional view of a rainwater storage structure using the rainwater storage structure member of Fig. 1
  • FIG. 7 (a) front sectional view, (b) b-b sectional view of a pipe-like member which is a member for a rainwater storage structure according to a second embodiment of the present invention
  • FIG. 8 (a) plan view, (b) front sectional view, (c) c c sectional view of a connecting member which is a member for a rainwater storage structure according to a second embodiment of the present invention
  • FIG. 9 A perspective view for explaining the assembly procedure of the assembly A for a rainwater storage structure using the pipe-like member of FIG. 7 and a connection member.
  • FIG. 10 is a perspective view for explaining the assembly procedure of the assembly A for rainwater storage structure using the pipe-like member and the connection member of FIG. 7;
  • FIG. 11 is a perspective view showing a unit block of an assembly member for a rainwater storage structure according to a third embodiment of the present invention.
  • FIG. 12 is a perspective view of a cross member constituting the assembly member for a rainwater storage structure of FIG. 11 as viewed from the upper surface direction.
  • FIG. 13 A perspective view also showing the force on the bottom side of the cross member in FIG. 12. [FIG. 13] A perspective view also showing the force on the bottom side of the cross member in FIG. 12. [FIG. 13]
  • FIG. 14 Deformation of the connection structure between the cross member and the connecting jig that constitute the assembly member for rainwater storage structure It is a perspective view which shows the middle of an example assembly.
  • FIG. 15 is a perspective view showing an assembled state of the connection structure of FIG. 14;
  • FIG. 16 is a perspective view showing a modification of the pipe-shaped vertical member according to the third embodiment.
  • FIG. 17 is a perspective view showing a cap member according to Modification 3 for use at the uppermost position of the connection member shown in FIGS. 14 and 15;
  • FIG. 18 is a left side view of a panel according to a modification 4 of the third embodiment.
  • FIG. 19 is a plan view of the panel of FIG.
  • FIG. 20 is a bottom view of the panel of FIG.
  • 21 is a sectional view taken along the line A-A of FIG.
  • FIG. 22 is a front view showing a modified example of the side panel according to the third embodiment.
  • Fig.23 is a left side view of the side panel of Fig.22.
  • FIG. 24 is a bottom view of the side panel of FIG.
  • FIG. 25 is a schematic front cross-sectional view of a rainwater storage structure according to a fourth embodiment of the present invention.
  • FIG. 26 is a schematic front cross-sectional view of a rainwater storage structure according to a fifth embodiment of the present invention.
  • FIG. 27 is a schematic front cross-sectional view of a rainwater storage structure according to a sixth embodiment of the present invention.
  • FIG. 1 to 3 show a connecting jig 1 used as an assembly member for a rainwater storage structure, a horizontal member 2 and a pipe-like vertical member 3. That is, FIG. 1 (a) shows the planar structure of the connection jig 1, and (b) shows an I-I cross-sectional structure. Fig. 2 (a) shows the left side structure of the cross member 2, (b) shows the bottom structure, and (c) shows the II II sectional structure. FIG. 3 (a) shows the front structure of the pipe-like longitudinal member 3, and FIG. 3 (b) shows the III-III cross sectional structure.
  • Figures 4 and 5 combine the connection jig 1 shown in Figures 1 to 3 with the horizontal member 2 and the pipe-like longitudinal member 3 to assemble a jungle gym-like rainwater storage assembly A as a three-dimensional structure.
  • Fig. 4 shows the procedure
  • Fig. 4 shows its partial front structure
  • Fig. 5 shows its partial planar structure.
  • connection jig 1 is made of resin. As shown in FIG. 1, it has a cylindrical portion la which can be externally fitted to the longitudinal member 3, and a projecting portion lb which protrudes at four points on the outer peripheral surface and engages with the end of the transverse member 2 to connect them. ing. The projection lb receives and engages an end projection 2a of the cross member 2 described later. Four through holes lc are formed. Furthermore, a somewhat small diameter through hole Id is also formed inside the cylindrical portion la to reduce the weight, and the rain water is moved downward and stored.
  • the transverse member 2 is made of resin. As shown in FIG. 2, end protrusions 2a inserted into and engaged with the through holes lc of the connection jig 1 are formed downward at both ends, and predetermined intervals are provided at two positions in the longitudinal direction. A reinforcing rib 2b is provided. However, the number, position, shape, etc. of the reinforcing ribs 2b can be changed variously.
  • the pipe-shaped vertical member 3 also has a force made of resin, and as shown in FIGS. 3 (a) and 3 (b), it has a cylindrical shape having a predetermined length, and the cylindrical portion la of the connection jig 1 is It is possible to fit inside.
  • a part of the assembly A for a rainwater storage structure which constitutes a three-dimensional structure in a jungle gym shape, forms an upper end of each of the pipe-shaped vertical members 3 erected. Connect and attach the connection jig 1 to the. Thereafter, of the connecting jigs 1 mounted on the two pipe-shaped vertical members 3, the end projections 2a of the horizontal member 2 are respectively inserted into the through holes lc of the two connecting jigs 1 adjacent to each other. By inserting and engaging, the pipe-shaped longitudinal member 3 and the cross member 2 are connected, and this is repeated.
  • the assembly A for a rainwater storage structure which is an assembly of the assembly member for a rainwater storage structure according to the present embodiment, is used for a rainwater storage structure.
  • a recess (pit) of about 1 to 5 m is excavated * on the ground, and side grooves 7 are formed around the pit, and crushed stone, sand, etc. are laid on the bottom of the pit.
  • make a foundation B by leveling.
  • the pipe-shaped vertical members 3 made of resin and the connecting jig 2 are used to form the internal volume of the pit as shown in FIGS. Construct an assembly A for the rainwater storage structure in the form of Jian Daljim.
  • the rainwater storage structure assembly A may be assembled in the pit, or the rainwater storage structure assembly A is assembled outside the pit and then inserted into the pit. May be
  • the rainwater storage structure assembly A assembled in this way is preferably made of resin and / or fastened with a belt made of metal or the like. Furthermore, a rectangular panel may be inserted between the pipes at the side peripheral part to ensure flatness at the side peripheral part and to increase strength. [0064] On the side portion C of the assembly A for rainwater storage structure, backfilling is performed if necessary, and a pipe 8 is installed which allows rainwater to flow into the pit from the side groove 7 and is communicated.
  • the upper surface is covered with a water-impervious sheet 5, and a soil covering 6 of about 0.5 to 5 Lm is applied from above.
  • the upper surface water blocking sheet 5 and the soil cover 6 form a cover layer.
  • a water permeable sheet may be coated to allow rainwater to permeate.
  • the gutter 7 is slightly deeper at the bottom so that a mud 9 is formed at the bottom.
  • the three-dimensional structure, rainwater storage structure assembly A preferably has a compressive strength of at least 108 kNZm 2 or more. In this way, even if soil cover of about 2 m (load: about 36 kNZm 2 ) is installed at the top, it has sufficient strength that is more than three times the earth pressure. Specifically, when using a cross member of about 50 cm in length, use a pipe-like member having a compressive strength of at least 27 kNZ with 4 Zm 2 and use a cross member of about 40 cm in length. 6. Use a pipe-shaped member with 25 zm 2 and at least a compressive strength of approximately 17.28 kNZ.
  • the pipe-like member 3 is configured to be able to be fitted inside the tubular portion la of the connecting jig 1
  • the outer diameter of the tubular portion la of the connecting jig 1 is reduced to form a pipe It may be fitted inside the member 3.
  • the end projection 2a of the lateral member 2 is cylindrical, and the through hole lc of the connecting jig 1 engaged by inserting the end projection 2a is circular.
  • the end projection 2a of the cross member 2 may be formed in a square shape, and the through hole lc of the connection jig 1 may be formed in a square shape so as to be insertable. In this way, the positions of the cross member 2 and the connection jig 1, that is, the positions of the cross member 2 and the pipe-like member 3 are fixed, and both are locked, making it easy to handle at the time of assembly Preferred to resist deformation by.
  • a rainwater storage structure assembly A having a height of about 3 m and a width of about 3 m, as partially shown in FIGS. 4 and 5, is formed and placed in a pit having a predetermined internal volume of about 5 m in depth.
  • a storage structure was constructed.
  • This polyethylene pipe has a compressive strength of approximately 27 kNZ in the longitudinal direction, and using 4 per lm 2 gives a compressive strength of 108 kN / m 2 and a covered soil of 2 m (load: about 36 kN / m 2 ) Even in the case of 2 ), since a compression strength of about 3 times or more can be obtained, it can be seen that it is sufficiently practical.
  • a rainwater storage structure was constructed with a size of lm X lm X lm, and a weight equivalent to a 2 m soil cover was placed on it, and more than a year has passed, but it becomes a problem in use Deformation and other troubles did not occur at all.
  • FIGS. 7 and 8 show a pipe-like longitudinal member 11 and a connecting member 12 used as an assembly member for a rainwater storage structure according to this embodiment. That is, FIG. 7 (a) shows a front sectional structure of the pipe-like longitudinal member 11, and FIG. 7 (b) shows a b-b sectional structure. Fig. 8 (a) shows the planar structure of the connecting member 12, (b) shows the front sectional structure, and (c) shows the c-c sectional structure.
  • FIGS. 9 and 10 show a procedure for assembling a jungle gym-like rainwater storage structure assembly A which is a three-dimensional structure by combining the pipe-shaped vertical members 1 and the connecting members 2 shown in FIGS.
  • the nove shaped longitudinal member 11 also has a resin-made force, and as shown in FIG. 7, it has a substantially cylindrical shape having a cylindrical portion 11 a and a slightly enlarged diameter portion l ib at the lower portion thereof. There is.
  • the inner diameter of the enlarged diameter portion l ib is slightly larger than the outer diameter of the cylindrical portion 11a so that the pipe-like members 11 can be connected to each other in the height direction, and can be externally fitted to the cylindrical portion 11a.
  • the connecting member 12 also has a resin-made force as with the nove-shaped member 11. As shown in FIG. 8, a cylindrical connecting end 12a formed at both ends and a shaft 12b connecting the connecting ends 12a are formed, and the shaft 12b is shown in FIG. 8 (c).
  • the cross section is approximately + + shaped!
  • the pipe-shaped vertical member 11 and the connecting member 12 are a combination of the pipe-shaped vertical members 11. It is possible to assemble a jungle gym-like rainwater storage structure assembly A by connecting several pipe-shaped vertical members 11 with the connection end 12a of the connection member 12 by setting several tubes in advance.
  • the cylindrical connecting end 12a of the connecting member 12 is fitted onto the cylindrical portion 11a of the nove-like member 11 and is locked at the top of the enlarged diameter portion l ib, and the outer diameter of the enlarged diameter portion l ib and the connecting member
  • the outer diameters of the twelve cylindrical connection ends 12a are substantially the same.
  • connection between the pipe-shaped vertical member 11 and the connecting member 12 may be established in the pit after the pipe-shaped vertical member 11 and the connecting member 12 are connected.
  • connection end 12a of the new connection member 12 is superimposed on the upper end of the connection end 12a of the existing connection member 12, but a step may be generated in height while repeating a plurality of connections.
  • the level difference can be adjusted by using a cylindrical spacer 13 having a predetermined height and having an inner diameter that can be externally fitted to the cylindrical portion 11 a of the pipe-shaped vertical member 11.
  • the spacer 13 having an appropriate length can be used. By repeating this operation, it is possible to construct a jungle gym-like assembly A for rainwater storage structure.
  • the assembly for a rainwater storage structure A which is an assembly of the assembly member for a rainwater storage structure according to the second embodiment, is configured as shown in FIG. 6 also for a construction example using the rainwater storage structure.
  • the rainwater storage structure assembly A may be assembled in the pit, and the rainwater storage structure assembly A may be assembled outside the pit and then inserted into the pit. You may The rainwater storage structure assembly A assembled in this way is fastened and fixed with a belt made of resin or metal. Is preferable as in the first embodiment. Furthermore, a rectangular panel may be inserted between the pipes at the side surface outer peripheral portion to ensure the flatness at the side surface outer peripheral portion and to increase the strength.
  • An assembly for a rainwater storage structure which is a three-dimensional structure of the present embodiment
  • A can also be made to have a compressive strength of at least 10 8 kNZ m 2 or more.
  • FIGS. A rainwater storage structure assembly of about 3 m in height and width of about 3 m was formed and placed in a pit having a predetermined internal volume of about 5 m in depth to construct a rain water storage structure as shown in FIG.
  • polyethylene pipes has a compressive strength of about 27kNZ present longitudinal, using four per lm 2, compression strength 108kN / m 2 It can be understood that even when the soil cover is 2 m (load: about 36 kN / m 2 ), a compressive strength of about 3 times or more can be obtained, so that it is sufficiently practical.
  • a rainwater storage structure was constructed with a size of lm X lm X lm, and a weight equivalent to a 2 m soil cover was placed on it and it has been over a year or more, but it becomes a problem in use Deformation and other troubles did not occur at all.
  • FIG. 11 is a perspective view of a unit block obtained by assembling the connection jig 1 used as an assembly member for a rainwater storage structure according to the third embodiment, the horizontal member 22 and the pipe-like vertical member 3. That is, FIG. 12 is a perspective view seen from the top surface direction of the horizontal member 22, and FIG. 13 is a perspective view seen from the bottom surface side of the horizontal member 22 in FIG.
  • the connecting jig 1 is made of resin, and as shown in FIG. 11, a cylindrical portion la which can be externally fitted to the vertical member 3, and four points of force on the outer peripheral surface are projected to the end of the horizontal member 22 and It has a projection 1 b that engages and connects the two.
  • the projection lb is formed with four through holes lc for receiving and engaging the end projections 22a of the cross member 22 described later.
  • a somewhat small diameter through hole is also formed inside the cylindrical portion la to reduce the weight, and the rainwater is moved downward and stored.
  • the nove shaped longitudinal member 3 is made of resin and has a cylindrical shape having a predetermined length, and can be fitted inside the cylindrical portion la of the connection jig 1.
  • the cross member 22 is also made of resin. As shown in FIGS. 12 and 13, end protrusions 22a inserted into and engaged with the through holes lc of the connecting jig 1 are formed downward at both ends on the back surface side, and between the end protrusions 22a A recessed portion 22b opened downward is formed. Further, two longitudinal reinforcement ribs 22c are provided at predetermined intervals in the longitudinal direction so as to define the recess 22b. In the short side direction, reinforcing short side ribs 22d are provided at several places (three places in FIG. 13) to define the recess 22b. By providing the longitudinal rib 22c, it is possible to exert a large strength against the compressive force acting on the transverse member 22 in the longitudinal direction.
  • the heights of the longitudinal ribs 22c and the short side ribs 22d are formed somewhat lower than the height of the longitudinal vertical wall 22e which forms the recess 22b, so that the weight can be reduced. This is because the strength of the top surface on the surface side where the shallow groove 22h extending in the longitudinal direction of the cross member 22 is formed and the strength balance between the longitudinal rib 22c and the short side rib 22d are formed. .
  • the height balance of the longitudinal rib 22c and the short side rib 22d should be the same as the height of the longitudinal vertical wall 22e forming the recess 22b.
  • the number, position, shape, etc. of the reinforcing ribs 22c can be changed variously. Further, as shown in FIG. 12, a large number of water removal through holes 22f are formed on the top surface on the surface side of the lateral member 22 at predetermined intervals.
  • connection jig 1 is fitted and mounted on the upper end of each of the vertically arranged pipe-like longitudinal members 3.
  • the connecting jigs 1 attached to the two pipe-shaped vertical members 3 the end projections of the horizontal member 22 in each of the through holes lc of the two connecting jigs 1 adjacent to each other. Insert 22a and engage.
  • the pipe-shaped longitudinal member 3 and the cross member 22 are connected, and this is repeated.
  • the three-dimensional structure, rainwater storage structure assembly A preferably has a compressive strength of at least 108 kNZm 2 or more. In this way, even if soil cover of about 2 m (load: about 36 kNZm 2 ) is installed at the top, it has sufficient strength that is more than three times the earth pressure. Specifically, when combining a pipe-like longitudinal member approximately 40 cm long and a horizontal member 40 cm long In this case, use a pipe-shaped longitudinal member with 6.25 Zm 2 and at least 17.28 kNZ compressive strength.
  • the connecting member 21 has four projecting portions 21b formed at substantially the center in the height direction of the cylindrical portion 21a, and a through hole 21c is formed in each projecting portion 21b. It is the same as the connecting member 1 shown in 11. However, while four projecting parts 21d are formed between each projecting part 21b, four vertical grooves 21e are formed in the upper and lower cylindrical parts 21a, and further, the upper end side of the projecting part 21d is somewhat protruded There is a difference that forms the overhang projection 21f.
  • the connecting member 21 is configured as described above, when the vertical member is fitted to the upper and lower cylindrical portions 21a, the cylindrical portion 21a is appropriately expanded in diameter. As the design freedom increases, the dimensional flexibility of the longitudinal members increases, and the installation workability improves. Furthermore, also for the connection with the lateral member 22, the recess 22g on the end face side of the vertical wall 22e formed in the lateral member 22 and the tension formed on the upper side of the projecting portion 21d of the connecting member 21. The protrusion 21f is engaged, the connection between the connection member 21 and the cross member 22 is further strengthened, and the strength of the assembly A for rainwater storage structure in which the assembly member for rainwater storage structure is assembled is significantly improved.
  • connection between the connecting member 21 and the cross member 22 is achieved by lowering the cross member 22 in the direction shown by the arrow R in the state force of FIG. 14 (before connection) to the connected state shown in FIG. 15 (after connection).
  • a shallow concave groove 22h extending in the longitudinal direction is formed on the top surface on the surface side of the cross member 22, and a water removal through hole 22f is formed on the bottom thereof.
  • the shape, number, and the like of the recessed grooves 22h can be changed as appropriate.
  • the number, diameter, etc. of the through holes 22f for draining can be changed as appropriate.
  • the shape of the concave groove is simply made circular, when it is formed in a wave shape, the strength against deformation especially in the horizontal direction is enhanced.
  • the longitudinal rib 14 for reinforcement may be attached to the outer peripheral surface of the longitudinal member 3 along the vertical direction.
  • the longitudinal ribs 14 are narrowly extended at the center of the outer peripheral surface except for the upper and lower end portions of the pipe-shaped longitudinal member 3 and are substantially equally spaced on the outer peripheral surface of the pipe-shaped longitudinal member 3.
  • the water draining holes 14a are formed in the upper and lower two places of the longitudinal rib 14 in the two. According to this structure, the strength of the pipe-like longitudinal member 3, particularly the buckling strength, can be remarkably improved with a simple structure.
  • the material of the longitudinal ribs 14 can be variously changed, and the material is preferably the same material as the pipe-like longitudinal member 3 but may be different. Also, the longitudinal rib 14 may be attached to the inner circumferential surface side of the novee-like longitudinal member 3 or may be integrally formed as a ribbed pipe-like longitudinal member from the beginning.
  • the cap member 15 includes a thin disk-like top portion 15a and an inner cylindrical portion 15b which is fitted into the central hole 21g of the connecting member 21. Stepped ribs 15c are formed vertically at six intervals.
  • the cap member 15 can be mounted not only at the uppermost position of the connecting member 21 shown in FIGS. 14 and 15 but also at the uppermost position of the connecting member 1 shown in FIG.
  • FIGS. 18 to 21 when assembling the rainwater storage structure assembly A, square plate-like panels 16 shown in FIGS. 18 to 21 are disposed by being fitted between the pipe-like longitudinal members 3 and on the transverse members 2; In addition to securing flatness for enhancing assembling workability, the strength of the rainwater storage structure assembly A may be enhanced.
  • This panel 6 has a smooth upper surface, as shown in FIG. 18 for the left side structure, in FIG. 19 for the planar structure, in FIG. 20 for the bottom structure and in FIG. It is easy for workers to walk, and holes 17 are made at several places (four places in Figs. 19 and 20) near the outer periphery, and panels 16 adjacent to each other are bound with polypropylene bands. It has become possible.
  • the uneven portion 18 is projected to the back side to be formed in several places (four places in FIGS. 19 and 20) so that it can be transported in a state in which a large number of panels 16 are stacked.
  • the convex part which protrudes to the back surface of the is fitted with the concave part of the upper surface of the panel 16 on the lower surface side, and the panel 16 in which a large number of sheets are stacked deviates each other at the time of transportation!
  • a substantially turtle-shaped pattern is formed, which also acts as a reinforcing rib, achieving both lightening and strengthening at the same time.
  • the four corners of the panel 16 are formed in a substantially 1Z4 arc shape so as to be in surface contact with the connecting members 1 and 21. However, at the time of actual construction, it is also possible to place the panel 16 upside down and use it.
  • a side panel 19 as shown in FIGS. 22 to 24 may be mounted on the outer periphery of the side of the rainwater storage structure assembly A to improve the strength of the rainwater storage structure assembly A.
  • This side panel 19 has a structure opened like a turtle shell over the entire surface as in the front structure shown in FIG. 22 so that weight saving and strength strengthening are achieved, and pipes are provided on both sides. It has a locking portion 19 a locked to the vertical member 3.
  • the locking portion 19a can be formed in various structures. For example, a pipe-like longitudinal member 3 having longitudinal ribs 14 shown in FIG. As shown in FIG.
  • the planar structure of the side panel 19 is formed by forming a pair of projections 19b on the side panel 19 engaged with the longitudinal rib 14 and sandwiching the longitudinal rib 14 between the pair of projections 19b. It is conceivable to use a locking system that makes it easy. By mounting such a side panel 19 on the side surface outer peripheral portion of the rainwater storage structure assembly A or the side surface of the unit block as appropriate, a large resistance to ground displacement can be exhibited.
  • a straight horizontal rib or a straight vertical rib is formed so as to cross the tortoise pattern. It is also good. When such a rib is formed, the side panel 19 is hardly stagnated even when an external force is applied, and the side panel 19 can be hardly detached from the pipe-shaped vertical member 3.
  • An assembly A for a rainwater storage structure in which the assembly member for a rainwater storage structure according to the third embodiment is assembled, can be configured as shown in FIG. 6 for a construction example of a rainwater storage structure. While forming a ground recess (sometimes referred to as a pit below) of about 1 to 5 m on the surface, IJ ⁇ forms a gutter 7 around the pit and lays crushed stone, sand etc. on the bottom of the pit ⁇ construction Make a foundation B by leveling. After laying the water-impervious sheet 4 which is a water-impervious material on the surface, further joining is performed while forming unit blocks shown in FIG. 1 from resin-made longitudinal members 3 and connecting jig 1 made of resin. Expand and arrange a jungle gym-like assembly A for rainwater storage structure according to the internal volume of the pit.
  • a ground recess sometimes referred to as a pit below
  • the side part of the assembly A for rainwater storage structure disposed in the pit performs backfilling C as necessary, and the piping 8 which allows rainwater to flow into the pit from the side groove 7 is used.
  • cover the top of the sheet with a water-impervious sheet 5 and cover the soil with a thickness of about 0.5 to 5 Lm.
  • the above-mentioned water-impervious sheet 5 on the upper surface, soil cover 6, etc. form a covering layer.
  • inspection holes may be provided at a plurality of locations of the coating layer 6.
  • the water permeable sheet may be covered to allow rainwater to permeate.
  • the gutter 7 is somewhat deeper at the bottom so that a mud 9 is formed at the bottom.
  • Polypropylene pipe with an outer diameter of about 60 mm, a thickness of about 5. O mm and a length of about 40 cm (Fuji Chemical Co., Ltd. trade name: Fuji 'polypropylene-PP) and A pit with a predetermined internal volume of about 5 m deep is formed using a connection jig to form a rainwater storage structure assembly A about 3 m high and about 3 m high and low, as partially shown in Figs. It was placed inside to construct a rainwater storage structure.
  • This polypropylene pipe has a longitudinal compressive strength of about 10 5 kNZ (26.25 kNZ), and using 6.25 pipes per 2 lm, a compressive strength of 160 kN / m 2 is obtained and the soil covering is covered. It can be understood that even when the value of 2 m (load: about 36 kN / m 2 ) is used, a compressive strength of about 4.5 times or more can be obtained, so that it is sufficiently practical.
  • a rainwater retention structure is constructed with a size of 1 m x l. 2 m x l. 2 m (for a unit of 0.4 m pitch), and a weight corresponding to a 2 m covered soil from above It has been over a year since it was placed, but there were no deformations or other problems that would cause problems in use.
  • FIG. 25 shows a schematic front cross-sectional structure of the rainwater storage structure according to the fourth embodiment.
  • the convection generating mechanism 23 for convecting the rainwater stored inside the assembly A for rainwater storage structure is insertable through the inspection hole 10, and when the convection for a predetermined time is completed, it is removed appropriately. It has become possible.
  • a screw device 23b may be provided at the end of the shaft 23a, and may be configured to be inserted into the interior of the assembly A for rainwater storage structure by a motor not shown. The screw device 23b is driven to agitate and circulate the stored rainwater, and the sediment adhering to the assembly A for rainwater storage structure is dropped to the bottom and accumulated on the sediment and bottom.
  • a recess 24 lower than the bottom of the pit is formed on the other side where the assembly A for a rainwater storage structure is disposed, and sand and the like are formed in the recess 24 by the convection of the stored rainwater by the convection generating mechanism 23. It will be deposited. In this case, the bottom of the pit may be inclined toward the recess 24. After the convection is generated by the convection generating mechanism 23 for a predetermined time, this may be removed.
  • a deposit 25 such as earth and sand deposited in the recess 24 is a solid material recovery device that can be inserted into the recess 24 with a long hose etc., as needed, through the inspection hole 10 and the like.
  • the vacuum suction device 26 discharges out of the pit.
  • various commercially available vacuum devices can be selected and adopted according to the storage capacity and specifications of rainwater.
  • the aeration device 27 can be inserted into the interior of the rainwater storage structure assembly A through the inspection hole 10 It has become possible to keep fresh water inside by taking fresh air into the rainwater and aerating it properly, and by acidifying it, it is possible to clean rain water and prevent bad water quality. There is.
  • the aeration device 27 is also detachable, and can be inserted into the pit and operated as appropriate during use, and can be removed when the aeration processing is completed.
  • the vacuum suction device 26, and the aeration device 27 in addition to a commercial power source, portable power generation devices, or batteries such as various primary batteries and secondary batteries may be used.
  • portable power generation devices or batteries such as various primary batteries and secondary batteries may be used.
  • a solar cell power generator or a wind power generator may be provided on the ground part of the rainwater storage structure, and the power obtained from this may be used.
  • the screw device 23b of the convection generating mechanism 23 and the propeller for wind power generation are directly connected, and the screw device 23b is rotated.
  • the convection generating mechanism 23, the vacuum suction device 26 for recovering solid matter, and the aeration device 27 are configured to be detachable, they may be fixed to a rainwater storage structure.
  • FIG. 26 shows a schematic front sectional view of the rainwater storage structure according to the fifth embodiment.
  • a convection generation mechanism 23 for convecting the rainwater stored in the assembly A for the rainwater storage structure is insertable through the inspection hole 10, and can be removed as appropriate when the convection for a predetermined time is completed. It is supposed to be.
  • a screw device 23b can be provided at the end of the shaft 23a, and it is inserted into the inner part of the assembly A for rainwater storage structure, and the motor is not shown. The screw device 23b is driven to agitate and circulate the stored rainwater, and the sediment adhering to the assembly A for rainwater storage structure is dropped to the bottom and these sediment and sediment deposited on the bottom. Push etc.
  • a recess 24 lower than the bottom of the pit is formed on the other side where the assembly A for a rainwater storage structure is disposed, and sand and the like are formed in the recess 24 by the convection of the stored rainwater by the convection generating mechanism 23. It will be deposited.
  • the bottom of the pit may be inclined toward the recess 24. After the convection is generated by the convection generating mechanism 23 for a predetermined time, this may be removed.
  • a deposit 25 such as earth and sand deposited in the recess 24 is a solid material recovery device that can be inserted into the recess 24 with a long hose etc., as needed, via the inspection hole 10 and the like.
  • Decompression suction device 26 Are discharged out of the pit. As the decompression suction device 26, as described with reference to FIG. 25, various commercially available vacuum devices can be selected and adopted according to the storage capacity and specifications of rainwater.
  • the aeration device 37 can be connected to the pipe-like longitudinal member 3 constituting the rainwater storage structure assembly A, and fresh air can be stored in the rainwater stored inside. By sending it in, aerating and oxidizing it, it is possible to clean rainwater and prevent the deterioration of water quality.
  • the aeration device 37 can be connected to the upper portion of the pipe-like longitudinal member and the air supply pump P is connected. By operating the air supply pump P, air is fed into the interior 3a of the pipe-like longitudinal member 3 and the air is released from the air bubbles pierced near the bottom of the pipe-like longitudinal member 3! Ru.
  • the aeration device 37 is removable and can be removed once the aeration process is completed.
  • the power source used for the convection generation mechanism 23, the vacuum suction device 26, and the aeration device 37 in addition to a commercial power source, a portable power generation device or batteries such as various primary batteries and secondary batteries may be used.
  • a solar cell power generator or a wind power generator may be provided on the ground part of the rainwater storage structure, and the power obtained from this may be used.
  • the screw device 23b of the convection generating mechanism 23 and the propeller for wind power generation are directly connected, and the screw device 23b is rotated.
  • the convection generation mechanism 23, the solid matter recovery device 26, and the aeration device 37 are respectively configured to be detachable, but may be fixed to a rainwater storage structure. As shown in Fig. 26, the number of pumps P in 37 need to be several, so that only a single pump is used to supply air.
  • FIG. 27 shows a schematic front sectional view of the rainwater storage structure according to the sixth embodiment.
  • the assembly A for rainwater storage structure After arranging the assembly A for rainwater storage structure on the water blocking sheet 4, it is made of a non-woven fabric which is a flexible water-permeable material so as to cover the assembly A!
  • a net made of resin or non-woven fabric made of resin In one case, a resin mat material or a resin-coated net material (hereinafter may be simply referred to as a mat material or the like) 30 is coated over the side and top of the rainwater storage structure assembly A. The peripheral edge of this mat material 30 is an excavated portion excavated somewhat lower than the ground around the pit.
  • the mat material or the like 30 is disposed so as to cover the side surface and the top surface of the overburden portion periphery 31b, the overburden portion slope 31a, and the assembly A for rainwater storage structure. Furthermore, although it is preferable that the peripheral edge of the mat material 30 and the like is disposed as far as the periphery 31b of the overburden portion, it is not necessary that the peripheral edge 31b of the overburden portion be at least the overburden portion It only needs to reach Slope 31 a.
  • the mat material etc. 30 is rainwater when it is pressed and covered with its own weight 32 by the lump 32 made of massive crushed stone or stone which fills the upper surface and full strength pit of the mat material etc. It is firmly attached along the side and top of the storage structure assembly A, and the rainwater storage structure assembly A is pressed firmly.
  • the rainwater storage structure assembly A is pressed firmly.
  • a void is formed between the fillings 32. It is possible not only to store rainwater in this part, but also to combine soil material and the like 30 covering the assembly A for rainwater storage structure with soil and sand.
  • the filler 32 it is preferable to use a large amount of crushed stone or stone such as stone or the like, but it is sufficient if mainly crushed stone can be used even with crushed concrete.
  • a pipe-like inlet 33 for letting in rainwater is provided around one of the pits, and a pipe-like outlet 34 capable of discharging the overflowed rainwater is provided for the other.
  • the water-permeable material for covering the rainwater storage structure assembly A is preferably made of a non-woven fabric or the like, but the covering soil is not particularly limited to this, and the covering of the soil is not limited to this. It should be anything that can not easily get into item A, is flexible, and can withstand heavy loads such as crushed stone.
  • the force exemplified by polypropylene as the constituent material of the pipe-shaped longitudinal member made of resin is not limited to this, and polyethylene, polyvinyl chloride, PET (polyethylene terephthalate) or the like is used.
  • Various types of thermoplastic resins can be used if the required strength is obtained.
  • the pipe-like longitudinal member instead of resin, it may be made of metal pipe such as stainless steel, or concrete may be injected into the interior of the resin pipe-like longitudinal member or reinforced concrete may be inserted. It may be reinforced.
  • the pipe-like member, the horizontal member, and the connecting jig are made of the same material of resin, but may be made of resin of different materials.
  • Powdered calcium carbonate (carbum carbonate) or the like may be mixed into the constituent materials of the resin pipe-shaped member, the horizontal member, and the connecting jig.
  • the specific gravity of the constituent material can be increased, the buoyancy generated when storing rain water can be resisted, and special construction as a countermeasure for buoyancy becomes unnecessary, and even in a small space, larger It is preferable because the amount of stored water can be secured.
  • the specific gravity can be made to be 1.0 or more by mixing about 13% of charcoal into the resin.
  • whiskers such as talc and barium sulfate may be mixed. These have a large effect of increasing the aspect ratio and the strength compared with carbon steel.
  • glass fibers may be mixed into the above-mentioned constituent members. Glass fiber is high in strength and dimensional stability, as it only increases the specific gravity of component members. And is preferable. For example, when glass fiber is added at 4.6 wt% (30 parts added to 20 wt% master batch 100), the specific gravity is increased by 0.03, the strength is improved by 15%, and the shrinkage rate at molding is 0.4% Improve.
  • the rainwater storage structure according to the present invention can be used not only as a tank for storing and using rainwater but also as a pyotope or the like.

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Abstract

A member for a rainwater containing structure, having pipe-like longitudinal members (3) with a predetermined length, lateral members (2) for forming, together with the pipe-like longitudinal members (3), a three-dimensional structure body, and connection jigs(1) for connecting the pipe-like longitudinal members (3) to the lateral members (2). When the pipe-like longitudinal members (3) and the lateral members (2) are assembled in the three-dimensional structure body through the connection jigs (1), a space can be formed inside the structure body.

Description

明 細 書  Specification
雨水貯留構造用部材とこれを用いた雨水貯留構造物  Rainwater storage structural member and rainwater storage structure using the same
技術分野  Technical field
[0001] 本発明は雨水貯留構造用部材とこれを用いた雨水貯留構造物に関し、詳しくは、 所定長さを有する複数のパイプ状縦部材と、これらパイプ状縦部材を連結可能にす る接続部材とを有する雨水貯留構造用部材とこれを用いた雨水貯留構造物に関す る。  The present invention relates to a member for a rainwater storage structure and a rainwater storage structure using the same, and more specifically, a plurality of pipe-like longitudinal members having a predetermined length and a connection for connecting these pipe-like longitudinal members to be connectable The present invention relates to a member for a rainwater storage structure having a member and a rainwater storage structure using the same.
背景技術  Background art
[0002] 近年、特に都市部で異常降雨や出水、あるいはその逆の異常乾燥といった問題が 頻繁に生じており、その原因としてヒートアイランド現象が取り上げられている。かかる 現象を緩和するため、雨水を利用する施設の構築が提案されており、雨水貯留構造 物あるいは雨水貯留用充填材などの開発が進んでいる。  In recent years, in particular, in urban areas, problems such as abnormal rainfall and runoff or abnormal drying frequently occur frequently, and the heat island phenomenon is taken as the cause. In order to alleviate this phenomenon, construction of facilities that use rainwater is proposed, and development of rainwater storage structures or packing materials for rainwater storage is in progress.
[0003] このような雨水貯留構造物として、例えば、地面にピットを堀り、その外表面に遮水 シートを敷設して、その上面に複数の容器状部材を縦横および上下に積み上げ、更 に最上部に覆土などを施して被覆し、雨水を貯留する構造物の発明がなされている( 特許文献 1)。  [0003] As such a rainwater storage structure, for example, a pit is dug on the ground, a water blocking sheet is laid on the outer surface, and a plurality of container-like members are stacked vertically and horizontally on the upper surface thereof. An invention has been made of a structure in which the uppermost portion is covered with soil and the like to store rainwater (Patent Document 1).
[0004] あるいは、中空体である複数の着脱自在支柱を、連結部材によって垂直に固定し てなる雨水貯留用充填材であって、連結部材が着脱自在の連結桟および縁枠により 一体的に連結する等して、運搬中における隅部での支柱の脱落を防止できるように した発明がなされている (特許文献 2)。  Alternatively, it is a filler for rainwater storage, in which a plurality of hollow detachable supports are vertically fixed by a connecting member, and the connecting member is integrally connected by a detachable connecting bar and an edge frame. Thus, an invention has been made which can prevent the falling off of the support at the corner during transportation (Patent Document 2).
特許文献 1:特開昭 63 - 268823号公報  Patent Document 1: Japanese Patent Application Laid-Open No. 63-268823
特許文献 2:特開 2004 - 19205号公報  Patent Document 2: Japanese Patent Application Laid-Open No. 2004-19205
発明の開示  Disclosure of the invention
発明が解決しょうとする課題  Problem that invention tries to solve
[0005] しかしながら、上記実施形態の雨水貯留構造物あるいは雨水貯留用充填材は、容 器状部材ゃ着脱自在支柱と連結部材とからなる雨水貯留用充填材を使用しており、 点検用の十分な広さの開口部が形成されていないため、保守点検は実質上できず、 永年の使用により土砂が蓄積して所定の機能を発揮し得なくなった場合にも、清掃 作業は容易でなぐ機能を復帰させることはできない。 However, the rainwater storage structure or the packing material for rainwater storage of the above embodiment uses the packing material for rainwater storage consisting of the container-like member, the detachable post and the connecting member, and it is sufficient for inspection. Maintenance inspections can not be performed practically, because the openings are not wide enough. Even if sediment has accumulated due to long-term use and can not perform its prescribed function, cleaning work is easy and no function can be restored.
[0006] のみならず、上記従来技術の容器状部材ゃ充填材を運搬する場合は、これらが雨 水を貯留するための大きな空間を内蔵して嵩張るため、搬送量の割に輸送コストが 高くかかるという問題がある。し力も、これらの容器状部材ゃ充填材は形状が固定さ れて 、るため、雨水貯留浸透槽の形状に対して柔軟に対応できな 、と 、う問題もあ る。  [0006] In addition to the above, when the container-like member and the filling material of the above-mentioned prior art are transported, they contain a large space for storing rainwater and are bulky, so the transportation cost is high for the transport amount. There is a problem of this. Also, there is a problem that these containers and fillers are fixed in shape, so that they can not flexibly cope with the shape of the rainwater storage and permeation tank.
[0007] そこで、本発明の目的は、上記従来技術の有する問題点に鑑みて、組み立てた場 合に、大きい開口部を確保できて保守点検が容易であり、し力も個々の構成部材か ら組立を容易にして、現地での組立を可能にすることにより輸送コストを低減でき、か つ雨水貯留浸透槽の形状に対して柔軟に対応可能な雨水貯留構造用部材とこれを 用いた雨水貯留構造物を提供することにある。  Therefore, in view of the problems of the above-mentioned prior art, it is an object of the present invention to secure a large opening when assembled, to facilitate maintenance and inspection, and to reduce the force from individual component members. By facilitating assembly and enabling on-site assembly, transportation costs can be reduced, and a member for a rainwater storage structure that can flexibly cope with the shape of a rainwater storage and permeation tank, and a rainwater storage using the same. It is to provide a structure.
課題を解決するための手段  Means to solve the problem
[0008] 上記課題は、請求項記載の発明により達成される。すなわち、本発明に係る雨水 貯留構造用部材の特徴構成は、所定長さを有する複数のパイプ状縦部材と、これら ノイブ状縦部材と共に三次元構造体を組み立てる横部材と、前記パイプ状縦部材に 前記横部材を接続するための接続治具とを有し、これらパイプ状縦部材と横部材とを 、前記接続治具を介して三次元構造体に組み立てることにより、内部に空間を形成 可能にすることにある。 The above object is achieved by the invention described in the claims. That is, the characteristic configuration of the member for a structure for storing rainwater according to the present invention includes a plurality of pipe-shaped vertical members having a predetermined length, a horizontal member that assembles a three-dimensional structure together with these grooved vertical members, and the pipe-shaped vertical member And a connecting jig for connecting the horizontal members, and by forming the pipe-like vertical members and the horizontal members into a three-dimensional structure via the connecting jig, a space can be formed inside. It is to
[0009] この構成によれば、パイプ状縦部材と横部材と接続治具との組み合わせで構成さ れているため、ノイブ状縦部材と横部材の長さを選択するだけで、保守点検可能な 所定広さの開口部を容易に形成することができ、し力も、施工現場に輸送する際には 、 ノイブ状縦部材と横部材と接続治具とを、組み立てた状態にすることなぐ夫々の 部材として輸送することになるので、従来技術のように、少なくない空間を有する容器 状部材ゃ充填材として輸送するものではないため、輸送時の嵩が小さくて済み、効 率の良い輸送ができることになり、輸送コストを大幅に低減できる。のみならず、パイ プ状縦部材および横部材の長さ、径など形状を変更することにより、雨水貯留浸透 槽の形状に応じて柔軟に対応でき、従来技術に比べて設計の自由度が格段に向上 する。 According to this configuration, since the pipe-shaped vertical member, the horizontal member, and the connecting jig are combined, maintenance and inspection can be performed only by selecting the lengths of the veeve-shaped vertical member and the horizontal member. It is possible to easily form an opening of a predetermined size, and also to transfer the force to the construction site, without bringing the nove-shaped longitudinal member, the horizontal member and the connecting jig into an assembled state. As it is not transported as a container-like member with a lot of space like the prior art, or as a filler, it has a small bulk at the time of transportation, and an efficient transport is effective. It will be possible to greatly reduce the cost of transportation. Not only that, by changing the length, diameter, etc. of the pipe-like longitudinal member and the horizontal member, it is possible to respond flexibly to the shape of the rainwater storage and permeation tank, and the design freedom is significantly better than the prior art. Improve on Do.
[0010] その結果、組み立てた場合に、大きい開口部を確保できて保守点検が容易であり、 し力も個々の構成部材力 組立を容易にして、現地での組立を可能にすることにより 輸送コストを低減でき、かつ雨水貯留浸透槽の形状に対して柔軟に対応可能な雨水 貯留構造用部材を提供することができた。  [0010] As a result, when assembled, a large opening can be secured, maintenance and inspection are easy, and individual components can be assembled easily, thereby enabling on-site assembly and transportation costs. It is possible to provide a member for a rainwater storage structure that can reduce the amount of water and flexibly respond to the shape of the rainwater storage and infiltration tank.
[0011] 前記接続治具は、前記パイプ状縦部材に嵌合して装着されると共に、前記横部材 とは係止して連結されることが好まし 、。  It is preferable that the connection jig is fitted and attached to the pipe-like longitudinal member and is engaged with and connected to the cross member.
[0012] この構成によれば、接続治具を介してパイプ状縦部材と横部材とを接続するので、 別にボルトとナットのような固着具を用意して締め付ける必要がなぐ接続作業が容 易であり、現地での三次元構造体への組立作業を一層効率良く行うことができる。 According to this configuration, since the pipe-like vertical member and the horizontal member are connected via the connection jig, the connection work is easy, as there is no need to prepare and fasten a fastener such as a bolt and a nut separately. As a result, assembly work to a three-dimensional structure on site can be performed more efficiently.
[0013] 更に、本発明に係る雨水貯留構造用部材の特徴構成として、所定長さを有する複 数のパイプ状縦部材と、所定長さを有し前記パイプ状部材どうしを連結して三次元構 造体に組み立て可能な連結部材とを備え、前記パイプ状部材と連結部材とから形成 される三次元構造体の内部に空間を形成可能にするようにしてもよい。  Furthermore, as a characteristic configuration of the member for a structure for storing rainwater according to the present invention, a plurality of pipe-shaped vertical members having a predetermined length and the pipe-shaped members having a predetermined length are connected to each other to be three-dimensional. A connecting member that can be assembled into a structure may be provided, and a space may be formed inside a three-dimensional structure formed of the pipe-like member and the connecting member.
[0014] この構成によれば、パイプ状部材と連結部材とで三次元構造体を組み立てるため、 パイプ状部材と連結部材の長さを選択するだけで、容易に所定の広さの開口部を形 成することができ、し力も、施工現場に輸送する際には、パイプ状部材と連結部材と を個別に、組立前の状態で輸送することになるので、従来技術のように、少なくない 空間と体積を有する容器状部材ゃ充填材として輸送するものではな!、ため、輸送時 の嵩が著しく小さくて済み、効率の良い輸送ができることになり、輸送コストを大幅に 低減できる。のみならず、榭脂製パイプ状部材と連結部材の長さ、径など形状を変更 することにより、雨水貯留浸透槽の形状に応じて柔軟に対応でき、従来技術に比べ て設計の自由度が格段に向上する。  According to this configuration, in order to assemble the three-dimensional structure with the pipe-like member and the connecting member, the opening having a predetermined size can be easily selected simply by selecting the lengths of the pipe-like member and the connecting member. As in the prior art, it is possible to form and to transport the pipe-like member and the connecting member separately in the state before assembly when transporting to the construction site. Since the container-like member having space and volume is not to be transported as a filler !, the transport volume can be extremely small, efficient transport can be performed, and the transportation cost can be significantly reduced. Not only that, by changing the shape of the resin pipe-like member and the connecting member such as the length and diameter, it can be flexibly adapted according to the shape of the rainwater storage and permeation tank, and the design freedom is improved compared to the prior art. It will improve dramatically.
[0015] その結果、組み立てた場合に、大きい開口部を確保できて保守点検が容易であり、 し力も個々の構成部材力 組立を容易にして、現地での組立を可能にすることにより 輸送コストを低減でき、かつ雨水貯留浸透槽の形状に対して柔軟に対応可能な雨水 貯留構造用部材を提供することができた。  [0015] As a result, when assembled, a large opening can be secured, maintenance and inspection are easy, and individual components can be assembled easily, thereby enabling on-site assembly and transportation costs. It is possible to provide a member for a rainwater storage structure that can reduce the amount of water and flexibly respond to the shape of the rainwater storage and infiltration tank.
[0016] 前記連結部材は、少なくともその端部において、前記パイプ状部材と略直角方向 に嵌合して連結可能になって 、ることが好まし 、。 [0016] The connecting member has a direction substantially perpendicular to the pipe-like member at least at its end. It is preferable to be able to be fitted and connected.
[0017] この構成によれば、パイプ状部材に連結部材を嵌合させてパイプ状部材どうしを連 結し、ノイブと接続部材とを互いに直角方向になるように接続することを繰り返すこと により、現地において容易に三次元構造体に組み立てることができる。尚、 1のパイプ 状部材に 2〜4の連結部材を連結する場合の高さ調節には、所定高さのスぺーサー を使用する等により、容易に行うことができる。 According to this configuration, the connection member is fitted to the pipe-like member, the pipe-like members are connected, and the connection between the eve and the connection member is repeated in the direction perpendicular to each other. It can be easily assembled into a three-dimensional structure on site. The height adjustment in the case of connecting two to four connecting members to one pipe-like member can be easily performed by using a spacer having a predetermined height or the like.
[0018] 前記横部材の裏面側が開口されて凹部が形成されていると共に、この凹部を区画 するように長手方向にわたる長手方向リブが形成されて 、ることが好ま 、。 [0018] It is preferable that a back surface side of the cross member is opened to form a recess, and a longitudinal rib extending in a longitudinal direction is formed to define the recess.
[0019] この構成によれば、強度が確保されているので、安定した施工作業ができると共にAccording to this configuration, since the strength is secured, stable construction work can be performed.
、施工後の耐久性にも優れた構造とすることができる。もとより、パイプ縦部材と横部 材の長さを適宜変更して、前者の場合には水平方向の圧縮強度を高めたり、後者の 場合には垂直方向の圧縮強度を高めたりすることができる。 Also, the structure after the construction can be made excellent. Of course, it is possible to increase the compressive strength in the horizontal direction in the former case and to increase the compressive strength in the vertical direction in the latter case by appropriately changing the lengths of the pipe longitudinal member and the horizontal member.
[0020] 前記横部材と接続治具との接続が、前記横部材の端面と前記接続治具の外周面と が互いに対面してなされると共に、前記横部材の端面が前記接続治具の廻りを回転 不能に接続されることが好ま 、。 The connection between the lateral member and the connecting jig is made such that the end face of the lateral member and the outer peripheral surface of the connecting jig face each other, and the end face of the lateral member is the circumference of the connecting jig. It is preferable that the connection be non-rotatable.
[0021] この構成によれば、施工時に、接続部材に連結された横部材が不用意に回転する ことを防止でき、作業が安定して行えると共に、接続強度が高まる。 According to this configuration, it is possible to prevent careless rotation of the horizontal member connected to the connection member at the time of construction, and it is possible to perform the operation stably and to increase the connection strength.
[0022] 前記横部材の端面に突起または孔が形成されていると共に、前記接続治具の外周 部に、前記横部材の突起または孔と嵌合する孔または突起が形成されていて、前記 横部材の上面に、多数の水抜き用貫通孔が形成されていることが好ましい。 A protrusion or a hole is formed on an end face of the cross member, and a hole or a protrusion fitted to the protrusion or a hole of the cross member is formed on an outer peripheral portion of the connection jig. It is preferable that a large number of water draining through holes are formed on the top surface of the member.
[0023] この構成によれば、各部材の接続が確実かつ強固となると共に、雨水が確実に底 部に貯留される。 According to this configuration, the connection of each member becomes reliable and strong, and the rainwater is reliably stored at the bottom.
[0024] 前記横部材の裏面側の凹部に、前記長手方向リブに直交する短辺側の短辺リブが 形成されて ヽることが好ま ヽ。  It is preferable that a short side rib on the short side orthogonal to the longitudinal direction rib is formed in a recess on the back side of the horizontal member.
[0025] この構成によれば、上方力 の加重によるたわみに対するだけでなぐ横方向ある いはねじれ方向力 のたわみに対しても、横部材の強度が一層高まり、施工時に作 業者が組み立てる途中、より安定した作業ができる。 [0025] According to this configuration, the strength of the cross member is further enhanced against the deflection due to the load of the upper force only against the deflection due to the load of the upper force, and the construction of the worker during the construction More stable work can be done.
[0026] 前記パイプ状縦部材の外周面に、上下方向に沿って形成されたリブを有すると共 に、これに係止する係止部を有する側面パネルを取り付けることが好ま 、。 [0026] The outer circumferential surface of the pipe-shaped vertical member may have ribs formed along the vertical direction. It is preferable to attach a side panel having a locking portion that locks onto it.
[0027] この構成によれば、簡単な構成でパイプ状縦部材の強度、特に座屈強度などを顕 著に向上させることができると共に、雨水貯留構造用組立物の強度を全体的に向上 させることがでさる。 According to this configuration, the strength of the pipe-like vertical member, in particular, the buckling strength, and the like can be remarkably improved with a simple configuration, and the strength of the assembly for rainwater storage structure can be generally improved. It can be done.
[0028] 前記接続部材の最上部位置に嵌着して、この箇所を平滑ィ匕可能なキャップ部材を 有すると共に、前記パイプ状縦部材の間にかつ前記横部材上に配置可能な平坦状 パネルを有することが好まし 、。  [0028] A flat panel which has a cap member which can be fitted to the uppermost position of the connection member and which can smooth this portion, and which can be disposed between the pipe-like longitudinal members and on the cross member Preferred to have and.
[0029] この構成によれば、施工時あるいは施工後に不測の方向力 外力が作用すること を防止できると共に、この部分の強度を一定以上に保つことができ、し力も平坦状パ ネルが配置されると、雨水貯留構造用組立物の強度を一層高めることができると共に 、雨水貯留構造物を組み立てる作業を行う上で、作業者が歩行し易くなる等、作業 性を高くできる。  According to this configuration, unexpected directional force and external force can be prevented from acting during or after construction, and the strength of this portion can be maintained at a certain level or higher, and a flat panel is disposed. As a result, the strength of the assembly for a rainwater storage structure can be further enhanced, and the workability can be enhanced, for example, the worker can easily walk when performing the work of assembling the rainwater storage structure.
[0030] 前記三次元構造体は、少なくとも 108kNZm2以上の圧縮強度を有することが好ま しい。 [0030] The three-dimensional structure preferably has a compressive strength of at least 10 8 kNZm 2 or more.
[0031] この構成によれば、最上部に覆土 2m程度を施工したとしても、土圧の 3倍以上とな る十分な強度を有する。  According to this configuration, even if a soil covering of about 2 m is installed at the top, it has sufficient strength to be three times or more of the earth pressure.
[0032] また、本発明に係る雨水貯留構造物の特徴構成は、地面凹部に敷設された遮水 材と、この遮水材の上面側に配置された三次元構造体と、この三次元構造体の上面 側に配置された被覆層を有する雨水貯留構造物において、前記三次元構造体が、 所定長さを有する複数のパイプ状縦部材と、これらパイプ状縦部材と共に三次元構 造体を組み立てる横部材と、前記パイプ状縦部材に前記横部材を接続するための 接続治具とを有し、これらパイプ状縦部材と横部材とを、前記接続治具を介して組み 立てられたことにある。  In addition, the characteristic configuration of the rainwater storage structure according to the present invention includes a water-impervious material laid in the recess on the ground, a three-dimensional structure disposed on the upper surface side of the water-impervious material, and the three-dimensional structure. In the rainwater storage structure having a covering layer disposed on the upper surface side of the body, the three-dimensional structure comprises a plurality of pipe-like longitudinal members having a predetermined length, and the three-dimensional structure together with these pipe-like longitudinal members. It has a horizontal member to be assembled and a connecting jig for connecting the horizontal member to the pipe-shaped vertical member, and the pipe-shaped vertical member and the horizontal member are assembled through the connecting jig. It is in.
[0033] この構成によれば、組み立てた場合に、大き 、開口部を確保できて保守点検が容 易であり、し力も個々の構成部材カも組立を容易にして、現地での組立を可能にする ことにより輸送コストを低減でき、かつ雨水貯留浸透槽の形状に対して柔軟に対応可 能な雨水貯留構造用部材を用いた雨水貯留構造物を提供することができる。  [0033] According to this configuration, when assembled, a large opening can be secured, which facilitates maintenance and inspection, and assembly of individual components and forces can be facilitated, enabling on-site assembly. As a result, it is possible to provide a rainwater storage structure using a member for a rainwater storage structure capable of reducing transportation costs and flexibly responding to the shape of the rainwater storage and infiltration tank.
[0034] 前記三次元構造体の内部に貯留された前記雨水を対流させる対流生成機構が設 けられると共に、堆積した固形物を回収可能な固形物回収装置が設けられていること が好ましい。 A convective generation mechanism for convecting the rainwater stored inside the three-dimensional structure is provided. It is preferable that a solid recovery device capable of recovering accumulated solids be provided.
[0035] この構成によれば、雨水を貯留している三次元構造体の内部の、例えば一端部側 に対流生成機構を装着して、定期的にあるいは不定期に作動させて内部の貯水を 対流させることにより、三次元構造体自体に付着している土砂などの固形物のみなら ず、底部に堆積している固形物も他方に移動させることができ、これら固形物を、固 形物回収装置を用いて回収することにより、効率よく雨水貯留構造物の内部を常時 清浄にでき、長年にわたる使用に対しても、雨水貯留の高い機能を維持できる。  According to this configuration, for example, a convection generating mechanism is attached to the inside of the three-dimensional structure storing rainwater, for example, at one end side, and is operated periodically or irregularly to store the internal water storage. By convecting, not only solids such as earth and sand adhering to the three-dimensional structure itself, but also solids deposited on the bottom can be moved to the other, and these solids can be recovered as solids. By using the device, the interior of the rainwater storage structure can be efficiently cleaned at all times, and the high function of rainwater storage can be maintained for many years of use.
[0036] なお、本明細書において固形物とは、雨水に混在する土砂、塵芥など各種粉粒状 物を広く含む固体状態の物を表す概念として用いる。  In the present specification, a solid substance is used as a concept representing a solid substance widely including various powdery and granular substances such as earth and sand and dust mixed in rain water.
[0037] その結果、定期的に作業員がマンホールより貯水槽内部に入り込むなどの面倒な 作業を必要とせず、それでいて雨水貯留構造物内に流入した土砂などを確実に除 去可能にする雨水貯留構造物を提供することができる。  [0037] As a result, rainwater storage does not require laborious work such as workers entering the water storage tank from the manhole on a regular basis, yet it is possible to reliably remove soil and the like that flowed into the rainwater storage structure. A structure can be provided.
[0038] 前記パイプ状縦部材が所定長さを有する複数の榭脂製部材力 なり、これら榭脂 製パイプ状縦部材と前記横部材とによって組み立てられた前記三次元構造体の内 部に貯留された前記雨水を爆気させる複数の曝気装置が着脱自在に取り付け可能 になって!/、ることが好まし!/、。  [0038] The pipe-shaped longitudinal member is a member made of a plurality of resin members having a predetermined length, and is stored in the inside of the three-dimensional structure assembled by the resin-made pipe-shaped longitudinal members and the horizontal member. A plurality of aeration devices for detonating the rainwater can be removably attached! /, Preferred! /.
[0039] この構成によれば、榭脂製パイプ状縦部材および横部材の長さ、径など形状を変 更することにより、雨水貯留構造物の形状に応じて柔軟に対応でき、設計の自由度 が高くなり、し力も、曝気装置を適宜取り付けることにより、貯留している雨水を清浄ィ匕 でき、水質の悪化を防止できて利用価値の高!、雨水貯留ができる。  According to this configuration, it is possible to flexibly cope with the shape of the rainwater storage structure by changing the length, diameter and other shapes of the resin pipe-shaped vertical member and the horizontal member, and design freedom can be achieved. If the aeration system is installed properly, the stored rainwater can be cleaned, the deterioration of the water quality can be prevented, the utility value can be high, and the rainwater can be stored.
[0040] 前記対流生成機構とは対面する側の前記地面凹部に、より低い凹所が形成されて いると共に、前記固形物回収装置が前記凹所に貯留された固形物を排出可能な減 圧吸引装置であることが好ま 、。  A lower recess is formed in the ground recess on the side facing the convection generating mechanism, and a pressure reduction capable of discharging the solid stored in the recess by the solid recovery device. Preferred to be a suction device.
[0041] この構成によれば、対流させ移動させた固形物を対流生成機構の位置とは反対側 の凹所に集めることができ、その後、この凹所に溜まった固形物を減圧吸引装置によ り雨水貯留構造物外に排出できるので、構造物内部を確実に清浄に保持できる。  According to this configuration, it is possible to collect the convectively moved solid matter in the recess opposite to the position of the convection generating mechanism, and thereafter, the solid matter accumulated in the recess is transferred to the vacuum suction device. Since the water can be discharged out of the rainwater storage structure, the inside of the structure can be reliably kept clean.
[0042] 前記パイプ状縦部材の内部を通して空気を送り込み、前記三次元構造体内に貯留 された前記雨水を爆気させる曝気装置が取り付け可能になっていることが好ましい。 Air is fed through the inside of the pipe-like longitudinal member and stored in the three-dimensional structure. Preferably, an aeration device for detonating the rainwater is attachable.
[0043] この構成によれば、曝気装置を取り付けるのに、三次元構造体を構成する部材に 取り付け、この部材を通して空気を送り込むことにより、貯留している雨水を曝気して 清浄ィ匕できるので、従来技術のような多大の工事費を費やして貯水槽内に散気管を 配設する工事が不要となり、低いコストで効果的な雨水の清浄ィ匕ができ、水質の悪化 を防止できて利用価値の高 、雨水貯留ができる。  [0043] According to this configuration, when attaching the aeration device, it can be attached to the member constituting the three-dimensional structure and air can be sent through this member to clean the stored rainwater by aeration. As in the prior art, a large amount of construction cost is spent, and the installation of the aeration pipe in the water storage tank becomes unnecessary, the rain water can be effectively cleaned at a low cost, and the deterioration of the water quality can be prevented. High value, can store rainwater.
[0044] その結果、雨水貯留構造物の構造を利用して、製造コストが低くでき、かつ貯留さ れている雨水の水質を高く維持可能な雨水貯留構造物を提供することができる。  [0044] As a result, by using the structure of the rainwater storage structure, it is possible to provide a rainwater storage structure that can be manufactured at low cost and can maintain high water quality of the stored rainwater.
[0045] 前記パイプ状縦部材が所定長さを有する複数の榭脂製部材カもなると共に、前記 三次元構造体の内部に貯留された前記雨水を対流させる対流生成機構と、前記雨 水を貯留する雨水貯留構造物の内部に堆積した固形物を回収可能な固形物回収 装置とが設けられて 、ることが好ま 、。  [0045] The pipe-shaped vertical member is a plurality of resin members having a predetermined length, and a convection generating mechanism for convecting the rainwater stored inside the three-dimensional structure, and the rainwater It is preferable to be provided with a solid recovery device capable of recovering the solid deposited on the inside of the rainwater storage structure to be stored.
[0046] この構成によれば、雨水を貯留している三次元構造体の内部の、例えば一端部側 に対流生成機構を装着して、定期的にあるいは不定期に作動させて内部の貯水を 対流させることにより、三次元構造体自体に付着している土砂などの固形物のみなら ず、雨水貯留構造物の底部に堆積している固形物も他方に移動させることができ、こ れら固形物を、固形物回収装置を用いて回収することにより、効率よく雨水貯留構造 物の内部を常時清浄にでき、長年にわたる使用に対しても、雨水貯留の高い機能を 維持できる。  According to this configuration, a convection generating mechanism is attached, for example, to one end side of the three-dimensional structure storing rain water, and it operates periodically or irregularly to store the internal water storage. By convecting, not only solids such as earth and sand adhering to the three-dimensional structure itself, but also solids deposited on the bottom of the rainwater storage structure can be moved to the other, and these solids By collecting materials using a solid collection device, the interior of the rainwater storage structure can be efficiently cleaned at all times, and the high function of rainwater storage can be maintained for many years of use.
[0047] 前記対流生成機構とは対面する側の前記地面凹部に、より低い凹所が形成されて いると共に、前記固形物回収装置が前記凹所に貯留された固形物を排出可能な減 圧吸引装置であることが好ま 、。  A lower recess is formed in the ground recess on the side facing the convection generating mechanism, and a pressure reduction capable of discharging the solid stored in the recess by the solid recovery device. Preferred to be a suction device.
[0048] この構成によれば、対流させ移動させた固形物を対流生成機構の位置とは反対側 の凹所に集めることができ、その後、この凹所に溜まった固形物を減圧吸引装置によ り雨水貯留構造物外に排出できるので、構造物内部を確実に清浄に保持できる。  According to this configuration, it is possible to collect the convectively moved solid matter in the recess opposite to the position of the convection generating mechanism, and thereafter, the solid matter accumulated in the recess is transferred to the vacuum suction device. Since the water can be discharged out of the rainwater storage structure, the inside of the structure can be reliably kept clean.
[0049] 前記三次元構造体が柔軟性を有する透水性材に覆われていると共に、この透水性 材の周辺端部が少なくとも前記三次元構造体の周辺の前記地面凹部を覆っていて、 前記透水性材の上面に、前記三次元構造体の周辺の地面凹部を埋める充填物が 載置されることにより、前記三次元構造体が前記透水性材によって押圧 ·被覆される ことが好ましい。 [0049] The three-dimensional structure is covered with a flexible water-permeable material, and a peripheral end of the water-permeable material covers at least the ground recess around the three-dimensional structure, A filler filling the ground recess around the three-dimensional structure on the upper surface of the permeable material It is preferable that the three-dimensional structure is pressed and covered with the water-permeable material by being placed.
[0050] この構成によれば、三次元構造体によって大きな貯水空間が形成されると共に、透 水性材が三次元構造体の側面および上面に沿って強固に張りつけられ、三次元構 造体を強く押さえつけるようになり、雨水貯留構造物内部に貯留されている雨水に加 えて、長雨などによって地下水位が上昇するような場合であっても、三次元構造体が 浮き上がると!/、う事態を確実に防止できる。  According to this configuration, a large water storage space is formed by the three-dimensional structure, and the water-permeable material is firmly attached along the side surface and the upper surface of the three-dimensional structure to strengthen the three-dimensional structure. Even if the groundwater level rises due to long rain etc. in addition to the rainwater stored inside the rainwater storage structure, the three-dimensional structure will come to a standstill! Can be prevented.
[0051] その結果、主として榭脂成形体力 なる雨水貯留構造用組立物を地面に埋設して 雨水貯留構造物を構成した場合、たとえ地下水位が上昇したとしても、浮き上がりを 強固に防止できる雨水貯留構造物を提供することができる。  [0051] As a result, when the rainwater storage structure is constructed by mainly burying the assembly for the rainwater storage structure, which is mainly made of resin molded body, to constitute the rainwater storage structure, even if the groundwater level rises, the rainwater storage that can strongly prevent floating. A structure can be provided.
[0052] 柔軟性を有する前記透水性材が、不織布製あるいは榭脂製のネット材またはマット 材、榭脂コーティングされたネット材力 選ばれた 1種力 なり、前記充填物が前記三 次元構造体の周辺の地面凹部を埋める石材であることが好ましい。  The water-permeable material having flexibility is a non-woven fabric or a resin-made net material or mat material, and a resin-coated net material having a selected one kind of force, and the filling has the three-dimensional structure. It is preferable that it is a stone material which fills the ground recess around the body.
[0053] この構成によれば、不織布製ある!/ヽは榭脂製のネット材、または不織布製ある 、は 榭脂製のマット材が透水性、柔軟性に優れると共に、充填物によって載置され押圧さ れても充分な強度を有しているため耐久性があり、し力も比較的安価であるため、製 造コストの高騰を避けることができる。同様に、榭脂コーティングされたネット材を使用 することもできる。また、充填物としての石材は重量があるため、三次元構造体が不 織布製あるいは榭脂製のネット材またはマット材、または榭脂コーティングされたネッ ト材を介して強固に押さえつけられるので、貯留されている雨水の水位が高くなつた としても、浮力に対して大きな抵抗力を発揮し得る。のみならず、石材の配置される 箇所に空隙が形成されて、この箇所にも貯水することができる。  [0053] According to this configuration, the non-woven fabric made of non-woven fabric and the non-woven fabric made of non-woven resin is excellent in water permeability and flexibility, and is placed by the filler. Even if pressed, it has sufficient strength, is durable, and is relatively inexpensive, so it is possible to avoid an increase in manufacturing costs. Similarly, resin-coated netting can be used. In addition, since the stone as the filler is heavy, the three-dimensional structure can be firmly held down via the non-woven fabric or resin-made net material or mat material, or the resin-coated net material. Even if the level of stored rainwater rises, it can exert a great deal of resistance to buoyancy. Not only that, a space is formed in the place where the stone is placed, and it is possible to store water in this place.
[0054] 前記三次元構造体の内部に貯留された前記雨水を対流させる対流生成機構が設 けられると共に、堆積した固形物を回収可能な固形物回収装置が設けられており、 更に、前記三次元構造体の内部に貯留された前記雨水を爆気させる複数の曝気装 置が着脱自在に取り付け可能になって 、ることが好ま 、。  A convective generation mechanism for convecting the rainwater stored inside the three-dimensional structure is provided, and a solid recovery device capable of recovering the deposited solid is provided, and the third order is further provided. It is preferable that a plurality of aerators for detonating the rainwater stored inside the original structure be detachably attachable.
[0055] この構成によれば、対流生成機構による対流を定期あるいは不定期に起こさせるこ とにより、三次元構造体内を清浄にして、その貯水機能を常時高く維持でき、し力も 曝気装置によって雨水の清浄ィ匕を図り、水質の悪化を防止でき、貯留している雨水 の利用価値を高めることができる。 According to this configuration, the three-dimensional structure can be cleaned by maintaining the convection by the convection generating mechanism regularly or irregularly, and the water storage function can be constantly maintained high, and the force can also be reduced. The aeration system can be used to clean rain water, prevent deterioration of the water quality, and enhance the utilization value of stored rain water.
図面の簡単な説明 Brief description of the drawings
[図 1]本発明の第 1実施形態に係る雨水貯留構造用部材を構成する接続治具の (a) 平面図、(b)正面断面図である。 FIG. 1 is (a) a plan view and (b) a front sectional view of a connecting jig constituting the member for a rainwater storage structure according to the first embodiment of the present invention.
[図 2]本発明の第 1実施形態に係る雨水貯留構造用部材を構成する横部材の (a)左 側面図、(b)平面図、(c) n— II断面図である。  [FIG. 2] (a) Left side view, (b) plan view, (c) n-II cross-sectional view of a lateral member constituting the member for a rainwater storage structure according to the first embodiment of the present invention.
[図 3]本発明の第 1実施形態に係る雨水貯留構造用部材を構成するパイプ状縦部材 の (a)正面図、(b)ni— III断面図である。  FIG. 3 is (a) a front view, (b) a cross-sectional view along a line n-III of a pipe-shaped vertical member constituting the member for a rainwater storage structure according to the first embodiment of the present invention.
[図 4]パイプ状部材と接続部材とを用いて雨水貯留構造用組立物 Aの組立手順を説 明する正面図である。  FIG. 4 is a front view illustrating the assembly procedure of the rainwater storage structure assembly A using a pipe-like member and a connection member.
[図 5]パイプ状部材と接続部材とを用いて雨水貯留構造用組立物 Aの組立手順を説 明する平面図である。  FIG. 5 is a plan view illustrating the assembly procedure of the rainwater storage structure assembly A using a pipe-like member and a connection member.
[図 6]図 1の雨水貯留構造用部材を用いた雨水貯留構造物の概略断面図  [Fig. 6] A schematic cross-sectional view of a rainwater storage structure using the rainwater storage structure member of Fig. 1
[図 7]本発明の第 2実形態に係る雨水貯留構造用部材であるパイプ状部材の (a)正面 断面図、(b)b— b断面図  [FIG. 7] (a) front sectional view, (b) b-b sectional view of a pipe-like member which is a member for a rainwater storage structure according to a second embodiment of the present invention
[図 8]本発明の第 2実施形態に係る雨水貯留構造用部材である接続部材の (a)平面 図、(b)正面断面図、(c) c c断面図  [FIG. 8] (a) plan view, (b) front sectional view, (c) c c sectional view of a connecting member which is a member for a rainwater storage structure according to a second embodiment of the present invention
[図 9]図 7のパイプ状部材と接続部材とを用いた雨水貯留構造用組立物 Aの組立手 順を説明する斜視図である。  [FIG. 9] A perspective view for explaining the assembly procedure of the assembly A for a rainwater storage structure using the pipe-like member of FIG. 7 and a connection member.
[図 10]図 7のパイプ状部材と接続部材とを用いて雨水貯留構造用組立物 Aの組立手 順を説明する斜視図である。  FIG. 10 is a perspective view for explaining the assembly procedure of the assembly A for rainwater storage structure using the pipe-like member and the connection member of FIG. 7;
[図 11]本発明の第 3実施形態に係る雨水貯留構造用組立部材の単位ブロックを示 す斜視図である。  FIG. 11 is a perspective view showing a unit block of an assembly member for a rainwater storage structure according to a third embodiment of the present invention.
[図 12]図 11の雨水貯留構造用組立部材を構成する横部材の上面方向からみた斜 視図である。  12 is a perspective view of a cross member constituting the assembly member for a rainwater storage structure of FIG. 11 as viewed from the upper surface direction.
[図 13]図 12の横部材の底面側力もみた斜視図である。  13] A perspective view also showing the force on the bottom side of the cross member in FIG. 12. [FIG.
[図 14]雨水貯留構造用組立部材を構成する横部材と接続治具との接続構造の変形 例の組み立て途中を示す斜視図である。 [Fig. 14] Deformation of the connection structure between the cross member and the connecting jig that constitute the assembly member for rainwater storage structure It is a perspective view which shows the middle of an example assembly.
[図 15]図 14の接続構造の組み立て完了状態を示す斜視図である。  FIG. 15 is a perspective view showing an assembled state of the connection structure of FIG. 14;
[図 16]第 3実施形態に係るパイプ状縦部材の変形例を示す斜視図である。  FIG. 16 is a perspective view showing a modification of the pipe-shaped vertical member according to the third embodiment.
[図 17]図 14, 15に示す接続部材の最上部位置に用 、た変形例 3に係るキャップ部 材を示す斜視図である。  FIG. 17 is a perspective view showing a cap member according to Modification 3 for use at the uppermost position of the connection member shown in FIGS. 14 and 15;
[図 18]第 3実施形態の変形例 4に係るパネルの左側面図である。  FIG. 18 is a left side view of a panel according to a modification 4 of the third embodiment.
[図 19]図 18のパネルの平面図である。  FIG. 19 is a plan view of the panel of FIG.
[図 20]図 18のパネルの底面図である。  FIG. 20 is a bottom view of the panel of FIG.
[図 21]図 20の A— A断面図である。  21 is a sectional view taken along the line A-A of FIG.
[図 22]第 3実施形態に係る側面パネルの変形例を示す正面図である。  FIG. 22 is a front view showing a modified example of the side panel according to the third embodiment.
[図 23]図 22の側面パネルの左側面図である。  Fig.23 is a left side view of the side panel of Fig.22.
[図 24]図 22の側面パネルの底面図である。  FIG. 24 is a bottom view of the side panel of FIG.
[図 25]本発明の第 4実施形態に係る雨水貯留構造物の概略正面断面図である。  FIG. 25 is a schematic front cross-sectional view of a rainwater storage structure according to a fourth embodiment of the present invention.
[図 26]本発明の第 5実施形態に係る雨水貯留構造物の概略正面断面図である。  FIG. 26 is a schematic front cross-sectional view of a rainwater storage structure according to a fifth embodiment of the present invention.
[図 27]本発明の第 6実施形態に係る雨水貯留構造物の概略正面断面図である。 発明を実施するための最良の形態  FIG. 27 is a schematic front cross-sectional view of a rainwater storage structure according to a sixth embodiment of the present invention. BEST MODE FOR CARRYING OUT THE INVENTION
[0057] <第 1実施形態 >  First Embodiment
本発明の第 1実施形態を、図面を参照して詳細に説明する。図 1〜3は、雨水貯留 構造用組立部材として使用する接続治具 1と横部材 2とパイプ状縦部材 3とを示す。 すなわち、図 1 (a)は、接続治具 1の平面構造を示し、 (b)は、 I— I断面構造を示す。 図 2 (a)は横部材 2の左側面構造、(b)は底面構造、(c)は II II断面構造を示す。 図 3 (a)は、パイプ状縦部材 3の正面構造を示し、 (b)は、 III— III横断面構造を示す 。図 4, 5は、図 1〜3に示す接続治具 1と横部材 2とパイプ状縦部材 3とを組み合わせ て、三次元構造体であるジャングルジム状の雨水貯留構造用組立物 Aを組み立てる 手順を示し、図 4はその部分正面構造、図 5は部分平面構造を示す。  A first embodiment of the present invention will be described in detail with reference to the drawings. 1 to 3 show a connecting jig 1 used as an assembly member for a rainwater storage structure, a horizontal member 2 and a pipe-like vertical member 3. That is, FIG. 1 (a) shows the planar structure of the connection jig 1, and (b) shows an I-I cross-sectional structure. Fig. 2 (a) shows the left side structure of the cross member 2, (b) shows the bottom structure, and (c) shows the II II sectional structure. FIG. 3 (a) shows the front structure of the pipe-like longitudinal member 3, and FIG. 3 (b) shows the III-III cross sectional structure. Figures 4 and 5 combine the connection jig 1 shown in Figures 1 to 3 with the horizontal member 2 and the pipe-like longitudinal member 3 to assemble a jungle gym-like rainwater storage assembly A as a three-dimensional structure. Fig. 4 shows the procedure, Fig. 4 shows its partial front structure, and Fig. 5 shows its partial planar structure.
[0058] 接続治具 1は榭脂製である。図 1に示すように、縦部材 3に外嵌可能な筒状部 laと 、外周面の 4箇所力 突出して横部材 2の端部と係合して両者を接続する突出部 lb を有している。突出部 lbには、後述する横部材 2の端部突起 2aを受け入れて係合す る貫通孔 lcが 4箇形成されている。更に、筒状部 la内部にも、やや小径の貫通孔 Id が形成されて重量軽減が図られていると共に、雨水を下方に移動させて貯留させる ようになっている。 The connection jig 1 is made of resin. As shown in FIG. 1, it has a cylindrical portion la which can be externally fitted to the longitudinal member 3, and a projecting portion lb which protrudes at four points on the outer peripheral surface and engages with the end of the transverse member 2 to connect them. ing. The projection lb receives and engages an end projection 2a of the cross member 2 described later. Four through holes lc are formed. Furthermore, a somewhat small diameter through hole Id is also formed inside the cylindrical portion la to reduce the weight, and the rain water is moved downward and stored.
[0059] 横部材 2は榭脂製である。図 2に示すように、接続治具 1の貫通孔 lcに挿入されて 係合する端部突起 2aを両端部に下向きに形成していると共に、長手方向の途中 2箇 所に所定間隔を空けて補強用のリブ 2bが設けられている。もっとも、補強用のリブ 2b の数、位置、形状などは種々に変更可能である。  The transverse member 2 is made of resin. As shown in FIG. 2, end protrusions 2a inserted into and engaged with the through holes lc of the connection jig 1 are formed downward at both ends, and predetermined intervals are provided at two positions in the longitudinal direction. A reinforcing rib 2b is provided. However, the number, position, shape, etc. of the reinforcing ribs 2b can be changed variously.
[0060] パイプ状縦部材 3は榭脂製力もなり、図 3 (a)、(b)に示すように、所定長さを有する 円筒形をしており、接続治具 1の筒状部 laに内嵌可能になっている。  The pipe-shaped vertical member 3 also has a force made of resin, and as shown in FIGS. 3 (a) and 3 (b), it has a cylindrical shape having a predetermined length, and the cylindrical portion la of the connection jig 1 is It is possible to fit inside.
[0061] ジャングルジム状に三次元構造体を構成する雨水貯留構造用組立物 Aを形成は、 図 4, 5にその一部を示すように、立設された各パイプ状縦部材 3の上端に接続治具 1を嵌合して装着しておく。その後、 2本のパイプ状縦部材 3に装着された各接続治 具 1どうしの内、互いに隣接する 2個の接続治具 1の貫通孔 lcの夫々に、横部材 2の 端部突起 2aを挿入させて係合することにより、パイプ状縦部材 3と横部材 2とを接続し 、これを繰り返えす。  As shown in FIGS. 4 and 5, a part of the assembly A for a rainwater storage structure, which constitutes a three-dimensional structure in a jungle gym shape, forms an upper end of each of the pipe-shaped vertical members 3 erected. Connect and attach the connection jig 1 to the. Thereafter, of the connecting jigs 1 mounted on the two pipe-shaped vertical members 3, the end projections 2a of the horizontal member 2 are respectively inserted into the through holes lc of the two connecting jigs 1 adjacent to each other. By inserting and engaging, the pipe-shaped longitudinal member 3 and the cross member 2 are connected, and this is repeated.
[0062] つぎに、本実施形態に係る雨水貯留構造用組立部材を組み立てた雨水貯留構造 用組立物 Aを、雨水貯留構造物に用いる施工例について説明する。  Next, a construction example in which the assembly A for a rainwater storage structure, which is an assembly of the assembly member for a rainwater storage structure according to the present embodiment, is used for a rainwater storage structure.
[0063] 図 6に示すように、地面に l〜5m程度の凹部(ピット)を掘削 *形成すると共に、ピッ ト周囲に側溝 7を形成し、ピットの底面に砕石、砂などを敷設'施工し平準化して基礎 Bを形成する。その表面に遮水材である遮水シート 4を敷設した後、榭脂製の各パイ プ状縦部材 3と接続治具 2とから、図 4, 5に示すように、ピットの内容積に応じジヤン ダルジム状の雨水貯留構造用組立物 Aを構成する。ピットの内容積が大きい場合に は、ピット内で雨水貯留構造用組立物 Aを組み立ててもよいし、雨水貯留構造用組 立物 Aをピット外で組み立てた後、ピット内に挿入するようにしてもよい。このようにし て組み立てた雨水貯留構造用組立物 Aは、榭脂製ある!/、は金属製などのベルトで締 結 ·固定されることが好ましい。更に、側面外周部には、角形のパネルをパイプ間に 嵌め込んで側面外周部での平坦性を確保すると共に、強度を高めるようにしてもよい [0064] 雨水貯留構造用組立物 Aの側面部 Cには、必要に応じて埋め戻しを行うと共に、側 溝 7よりピット内に雨水を流し込み可能に連通する配管 8を敷設する。更に、上面に 遮水シート 5を被覆し、その上から 0. 5〜: Lm程度の覆土 6を施す。これら、上面の遮 水シート 5、覆土 6は、被覆層を形成する。もっとも、雨水貯留構造用組立物 A上面に 遮水シート 5を被覆する代わりに、透水性シートを被覆して雨水を浸透させるようにし てもよい。側溝 7は、その底部に泥溜 9が形成されるように、底部が幾分深くなつてい る。 As shown in FIG. 6, a recess (pit) of about 1 to 5 m is excavated * on the ground, and side grooves 7 are formed around the pit, and crushed stone, sand, etc. are laid on the bottom of the pit. Make a foundation B by leveling. After laying the water-impervious sheet 4 which is a water-impervious material on the surface, the pipe-shaped vertical members 3 made of resin and the connecting jig 2 are used to form the internal volume of the pit as shown in FIGS. Construct an assembly A for the rainwater storage structure in the form of Jian Daljim. If the internal volume of the pit is large, the rainwater storage structure assembly A may be assembled in the pit, or the rainwater storage structure assembly A is assembled outside the pit and then inserted into the pit. May be The rainwater storage structure assembly A assembled in this way is preferably made of resin and / or fastened with a belt made of metal or the like. Furthermore, a rectangular panel may be inserted between the pipes at the side peripheral part to ensure flatness at the side peripheral part and to increase strength. [0064] On the side portion C of the assembly A for rainwater storage structure, backfilling is performed if necessary, and a pipe 8 is installed which allows rainwater to flow into the pit from the side groove 7 and is communicated. Furthermore, the upper surface is covered with a water-impervious sheet 5, and a soil covering 6 of about 0.5 to 5 Lm is applied from above. The upper surface water blocking sheet 5 and the soil cover 6 form a cover layer. However, instead of coating the water blocking sheet 5 on the upper surface of the rainwater storage structure assembly A, a water permeable sheet may be coated to allow rainwater to permeate. The gutter 7 is slightly deeper at the bottom so that a mud 9 is formed at the bottom.
[0065] 三次元構造体である雨水貯留構造用組立物 Aは、少なくとも 108kNZm2以上の 圧縮強度を有することが好ましい。このようにすれば、最上部に覆土 2m程度 (負荷: 約 36kNZm2 )を施工したとしても、土圧の 3倍以上となる十分な強度を有する。具 体的には、長さ約 50cmの横部材を使用する場合、 4本 Zm2で少なくとも 27kNZ本 の圧縮強度を有するパイプ状部材を使用し、長さ約 40cmの横部材を用いる場合に は、 6. 25本 Zm2で少なくとも圧縮強度約 17. 28kNZ本を有するパイプ状部材を 用いる。 [0065] The three-dimensional structure, rainwater storage structure assembly A, preferably has a compressive strength of at least 108 kNZm 2 or more. In this way, even if soil cover of about 2 m (load: about 36 kNZm 2 ) is installed at the top, it has sufficient strength that is more than three times the earth pressure. Specifically, when using a cross member of about 50 cm in length, use a pipe-like member having a compressive strength of at least 27 kNZ with 4 Zm 2 and use a cross member of about 40 cm in length. 6. Use a pipe-shaped member with 25 zm 2 and at least a compressive strength of approximately 17.28 kNZ.
[0066] このようにすることにより、一旦雨水を貯留して、庭園などへの散水、洗浄水、非常 用水など各種用途に利用したり、大量の雨水を徐々に放流できるような調整機能を 備えさせたりすることができる。しカゝも、コンクリートで構成する場合に比べて、養生期 間などが不要であることから、雨水貯留構造物の構築速度を格段に早くすることがで きる。  [0066] In this way, it is possible to temporarily store rainwater and use it for water sprinkling in gardens etc., wash water, emergency water, etc. for various uses, or to have an adjustment function that allows a large amount of rain water to be released gradually. It can be done. In addition, since the curing period is unnecessary as compared with the case where it is made of concrete, the construction speed of the rainwater storage structure can be made much faster.
[0067] パイプ状部材 3を接続治具 1の筒状部 laに内嵌可能に構成した例を示したが、接 続治具 1の筒状部 laの外径を小さくして、パイプ状部材 3に内嵌させるようにしてもよ い。  Although an example in which the pipe-like member 3 is configured to be able to be fitted inside the tubular portion la of the connecting jig 1 has been described, the outer diameter of the tubular portion la of the connecting jig 1 is reduced to form a pipe It may be fitted inside the member 3.
[0068] 上記例では、横部材 2の端部突起 2aを円筒状にし、この端部突起 2aを挿入して係 合する接続治具 1の貫通孔 lcを円形とした例を示したが、これに代えて、横部材 2の 端部突起 2aを角状とし、接続治具 1の貫通孔 lcもこれを挿入可能に角形にしてもよ い。このようにすると、横部材 2と接続治具 1の位置、すなわち、横部材 2とパイプ状部 材 3の位置が固定されるようになって両者が係止され、組立時に扱い易くなると共に 外力による変形に抵抗できて好ま 、。 実施例 1 In the above example, the end projection 2a of the lateral member 2 is cylindrical, and the through hole lc of the connecting jig 1 engaged by inserting the end projection 2a is circular. Instead of this, the end projection 2a of the cross member 2 may be formed in a square shape, and the through hole lc of the connection jig 1 may be formed in a square shape so as to be insertable. In this way, the positions of the cross member 2 and the connection jig 1, that is, the positions of the cross member 2 and the pipe-like member 3 are fixed, and both are locked, making it easy to handle at the time of assembly Preferred to resist deformation by. Example 1
実際に施工した例について説明する。外径約 60mm、肉厚約 5. 5mm,長さ約 50 cmのポリエチレン製パイプ (積水化学工業製。商品名:エスロンノ、ィパー PE)を用い て、図 1に示す接続治具を用いて、図 4, 5にその一部を示すような、高さ約 3m、縦 横約 3mの雨水貯留構造組立物 Aを形成し、深さ約 5mの所定内容積を有するピット 内に配置し、雨水貯留構造物を構築した。このポリエチレン製パイプは、長さ方向の 圧縮強度約 27kNZ本を有しており、 lm2当たり 4本を使用すると、圧縮強度 108kN /m2が得られ、覆土を 2m (負荷:約 36kN/m2)とした場合でも、約 3倍強の圧縮強 度が得られるので、十分に実用的であることがわかる。 An example of actual construction will be described. Using a polyethylene pipe (manufactured by Sekisui Chemical Co., Ltd .; trade name: Eslonno, RP PE) with an outer diameter of about 60 mm, a wall thickness of about 5.5 mm, and a length of about 50 cm, using the connecting jig shown in FIG. A rainwater storage structure assembly A having a height of about 3 m and a width of about 3 m, as partially shown in FIGS. 4 and 5, is formed and placed in a pit having a predetermined internal volume of about 5 m in depth. A storage structure was constructed. This polyethylene pipe has a compressive strength of approximately 27 kNZ in the longitudinal direction, and using 4 per lm 2 gives a compressive strength of 108 kN / m 2 and a covered soil of 2 m (load: about 36 kN / m 2 ) Even in the case of 2 ), since a compression strength of about 3 times or more can be obtained, it can be seen that it is sufficiently practical.
[0069] 実際、 lm X lm X lmの大きさで雨水貯留構造物を構築し、その上から 2mの覆土 に相当する重錘を載置して 1年以上経過したが、使用上問題となる変形その他のトラ ブルは一切生じな力つた。 Actually, a rainwater storage structure was constructed with a size of lm X lm X lm, and a weight equivalent to a 2 m soil cover was placed on it, and more than a year has passed, but it becomes a problem in use Deformation and other troubles did not occur at all.
<第 2実施形態 >  Second Embodiment
本発明の第 2実施形態を、図面を参照して詳細に説明する。図 7、 8は、本実施形 態に係る雨水貯留構造用組立部材として使用するパイプ状縦部材 11と連結部材 12 を示す。すなわち、図 7 (a)は、パイプ状縦部材 11の正面断面構造を示し、 (b)は、 b —b断面構造を示す。図 8 (a)は連結部材 12の平面構造、(b)は正面断面構造、(c) は c— c断面構造を示す。図 9、 10は、図 7、 8に示すパイプ状縦部材 1と連結部材 2と を組み合わせて、三次元構造体であるジャングルジム状の雨水貯留構造用組立物 A を組み立てる手順を示す。  A second embodiment of the present invention will be described in detail with reference to the drawings. 7 and 8 show a pipe-like longitudinal member 11 and a connecting member 12 used as an assembly member for a rainwater storage structure according to this embodiment. That is, FIG. 7 (a) shows a front sectional structure of the pipe-like longitudinal member 11, and FIG. 7 (b) shows a b-b sectional structure. Fig. 8 (a) shows the planar structure of the connecting member 12, (b) shows the front sectional structure, and (c) shows the c-c sectional structure. FIGS. 9 and 10 show a procedure for assembling a jungle gym-like rainwater storage structure assembly A which is a three-dimensional structure by combining the pipe-shaped vertical members 1 and the connecting members 2 shown in FIGS.
[0070] ノイブ状縦部材 11は榭脂製力もなり、図 7に示すように、円筒部 11aとその下部に やや拡径された拡径部 l ibとを有して略円筒形をしている。そして、拡径部 l ibの内 径は、パイプ状部材 11が互いに高さ方向に連結可能に、円筒部 11aの外径よりやや 大きくなつていて、円筒部 11aに外嵌できるようになつている。連結部材 12は、ノイブ 状部材 11と同様に榭脂製力もなる。図 8に示すように、両端部に形成されている円筒 形の接続端 12aとこれら接続端 12aどうしを接続する軸部 12bからなつていると共に、 軸部 12bは図 8 (c)に示すように、断面略 +形をして!/、る。  The nove shaped longitudinal member 11 also has a resin-made force, and as shown in FIG. 7, it has a substantially cylindrical shape having a cylindrical portion 11 a and a slightly enlarged diameter portion l ib at the lower portion thereof. There is. The inner diameter of the enlarged diameter portion l ib is slightly larger than the outer diameter of the cylindrical portion 11a so that the pipe-like members 11 can be connected to each other in the height direction, and can be externally fitted to the cylindrical portion 11a. There is. The connecting member 12 also has a resin-made force as with the nove-shaped member 11. As shown in FIG. 8, a cylindrical connecting end 12a formed at both ends and a shaft 12b connecting the connecting ends 12a are formed, and the shaft 12b is shown in FIG. 8 (c). The cross section is approximately + + shaped!
[0071] パイプ状縦部材 11と連結部材 12とは、図 9に示すように、パイプ状縦部材 11の複 数本を予め立設しておき、これらパイプ状縦部材 11に接続部材 12の接続端 12aを 嵌合させて、ジャングルジム状の雨水貯留構造用組立物 Aを組み立てることができる 。接続部材 12の円筒形接続端 12aは、ノイブ状部材 11の円筒部 11aに外嵌される と共に、拡径部 l ibの上部で係止され、この拡径部 l ibの外径と接続部材 12の円筒 形接続端 12aの外径とが略同寸になっている。このようにすると、両部材を組み立て た際に、雨水貯留構造用組立物 Aにおける縦方向の凹凸が少なくなり、この部分で の土砂その他が積層されるのを防止できて好ましい。もっとも、パイプ状縦部材 11と 接続部材 12との連結は、パイプ状縦部材 11と連結部材 12とを連結した後、ピット内 に立設するようにしてもよい。 As shown in FIG. 9, the pipe-shaped vertical member 11 and the connecting member 12 are a combination of the pipe-shaped vertical members 11. It is possible to assemble a jungle gym-like rainwater storage structure assembly A by connecting several pipe-shaped vertical members 11 with the connection end 12a of the connection member 12 by setting several tubes in advance. The cylindrical connecting end 12a of the connecting member 12 is fitted onto the cylindrical portion 11a of the nove-like member 11 and is locked at the top of the enlarged diameter portion l ib, and the outer diameter of the enlarged diameter portion l ib and the connecting member The outer diameters of the twelve cylindrical connection ends 12a are substantially the same. In this case, when the two members are assembled, the unevenness in the longitudinal direction in the assembly A for rainwater storage structure is reduced, and it is possible to prevent the accumulation of earth and sand and the like in this portion, which is preferable. Of course, the connection between the pipe-shaped vertical member 11 and the connecting member 12 may be established in the pit after the pipe-shaped vertical member 11 and the connecting member 12 are connected.
[0072] 更に、 2本のパイプ状縦部材 11に 1本の連結部材 12を連結した後、これらを互い に連結するため、図 10に示すように、更に連結部材 2をパイプ状縦部材 11に嵌合し て連結する。その場合、新たな連結部材 12の接続端 12aを既存の連結部材 12の接 続端 12aの上部に重ねることになるが、複数の連結を繰り返すうちに、高さに段差を 生じることがある。しかし、所定高さを有し、パイプ状縦部材 11の円筒部 11aに外嵌 可能な内径を有する円筒形のスぺーサー 13を用いて、段差を調整することができる 。また、高さ方向にパイプ状縦部材 11どうしを連結する場合にも、適度な長さのスぺ ーサー 13を用いて行うことができる。このような動作を繰り返すことにより、ジャングル ジム状の雨水貯留構造用組立物 Aを構築することができる。  Further, after connecting one connecting member 12 to two pipe-shaped vertical members 11, in order to connect them to each other, as shown in FIG. Fit to and connect. In this case, the connection end 12a of the new connection member 12 is superimposed on the upper end of the connection end 12a of the existing connection member 12, but a step may be generated in height while repeating a plurality of connections. However, the level difference can be adjusted by using a cylindrical spacer 13 having a predetermined height and having an inner diameter that can be externally fitted to the cylindrical portion 11 a of the pipe-shaped vertical member 11. Further, also in the case of connecting the pipe-shaped vertical members 11 in the height direction, the spacer 13 having an appropriate length can be used. By repeating this operation, it is possible to construct a jungle gym-like assembly A for rainwater storage structure.
[0073] 第 2の実施形態に係る雨水貯留構造用組立部材を組み立てた雨水貯留構造用組 立物 Aを、雨水貯留構造物に用いる施工例についても、図 6に示すように構成するこ とができる。地面に l〜5m程度の凹部 (ピット)を掘肖 IJ '形成すると共に、ピット周囲に 側溝 7を形成し、ピットの底面に砕石、砂などを敷設'施工し平準化して基礎 Bを形成 する。その表面に遮水シート 4を敷設した後、榭脂製のノイブ状縦部材 11と接続部 材 12とから、図 7〜10に示す手順で、ピットの内容積に応じたジャングルジム状の雨 水貯留構造用組立物 Aを構成する。ピットの内容積が大きい場合には、ピット内で雨 水貯留構造用組立物 Aを組み立ててもよ ゝし、雨水貯留構造用組立物 Aをピット外 で組み立てた後、ピット内に挿入するようにしてもよい。このようにして組み立てた雨 水貯留構造用組立物 Aは、榭脂製あるいは金属製などのベルトで締結 ·固定される ことが好ましいのは第 1実施形態の場合と同様である。更に、側面外周部には、角形 のパネルをパイプ間に嵌め込んで側面外周部での平坦性を確保すると共に、強度を 高めるようにしてもよい。本実施形態の三次元構造体である雨水貯留構造用組立物The assembly for a rainwater storage structure A, which is an assembly of the assembly member for a rainwater storage structure according to the second embodiment, is configured as shown in FIG. 6 also for a construction example using the rainwater storage structure. Can. While forming a recess (pit) of about 1 to 5 m on the ground, form a groove IJ 'around the pit, form a gutter 7 around the pit, lay a crushed stone, sand, etc. on the bottom of the pit and level it to form a foundation B . After laying the water-impervious sheet 4 on the surface, a jungle gym-like rain according to the internal volume of the pits is made from the fibrous nove vertical member 11 and the connecting member 12 according to the procedure shown in FIGS. Construct assembly A for water storage structure. If the internal volume of the pit is large, the rainwater storage structure assembly A may be assembled in the pit, and the rainwater storage structure assembly A may be assembled outside the pit and then inserted into the pit. You may The rainwater storage structure assembly A assembled in this way is fastened and fixed with a belt made of resin or metal. Is preferable as in the first embodiment. Furthermore, a rectangular panel may be inserted between the pipes at the side surface outer peripheral portion to ensure the flatness at the side surface outer peripheral portion and to increase the strength. An assembly for a rainwater storage structure which is a three-dimensional structure of the present embodiment
Aについても、少なくとも 108kNZm2以上の圧縮強度を有するようにできる。 A can also be made to have a compressive strength of at least 10 8 kNZ m 2 or more.
実施例 2  Example 2
実際に施工した例について説明する。外径約 60mm、肉厚約 5. 5mm,長さ約 50 cmのポリエチレン製パイプ (積水化学工業製。商品名:エスロンノ、ィパー PE)を用い て、図 7〜10に示す手順により、高さ約 3m、縦横約 3mの雨水貯留構造組立物を形 成し、深さ約 5mの所定内容積を有するピット内に配置し、図 6に示すような雨水貯留 構造物を構築した。この場合も、第 1実施形態の場合と同様に、ポリエチレン製パイ プは、長さ方向の圧縮強度約 27kNZ本を有しており、 lm2当たり 4本を使用すると、 圧縮強度 108kN/m2が得られ、覆土を 2m (負荷:約 36kN/m2)とした場合でも、 約 3倍強の圧縮強度が得られるので、十分に実用的であることがわかる。 An example of actual construction will be described. Using a polyethylene pipe (manufactured by Sekisui Chemical Co., Ltd .; trade name: Eslonno, RP PE) with an outer diameter of about 60 mm, a wall thickness of about 5.5 mm, and a length of about 50 cm, the height shown in FIGS. A rainwater storage structure assembly of about 3 m in height and width of about 3 m was formed and placed in a pit having a predetermined internal volume of about 5 m in depth to construct a rain water storage structure as shown in FIG. In this case, as in the first embodiment, polyethylene pipes has a compressive strength of about 27kNZ present longitudinal, using four per lm 2, compression strength 108kN / m 2 It can be understood that even when the soil cover is 2 m (load: about 36 kN / m 2 ), a compressive strength of about 3 times or more can be obtained, so that it is sufficiently practical.
[0074] 実際、 lm X lm X lmの大きさで雨水貯留構造物を構築し、その上から 2mの覆土 に相当する重錘を載置して 1年以上経過したが、使用上問題となる変形その他のトラ ブルは一切生じな力つた。 [0074] Actually, a rainwater storage structure was constructed with a size of lm X lm X lm, and a weight equivalent to a 2 m soil cover was placed on it and it has been over a year or more, but it becomes a problem in use Deformation and other troubles did not occur at all.
<第 3実施形態 >  Third Embodiment
本発明に係る第 3実施形態を、図面を参照して詳細に説明する。図 11は、第 3実 施形態に係る雨水貯留構造用組立部材として使用する接続治具 1と横部材 22とパイ プ状縦部材 3とを組み立てた単位ブロックの斜視図を示す。すなわち、図 12は横部 材 22の上面方向からみた斜視図、図 13は、図 12の横部材 22の底面側からみた斜 視図を示す。  A third embodiment according to the present invention will be described in detail with reference to the drawings. FIG. 11 is a perspective view of a unit block obtained by assembling the connection jig 1 used as an assembly member for a rainwater storage structure according to the third embodiment, the horizontal member 22 and the pipe-like vertical member 3. That is, FIG. 12 is a perspective view seen from the top surface direction of the horizontal member 22, and FIG. 13 is a perspective view seen from the bottom surface side of the horizontal member 22 in FIG.
[0075] 接続治具 1は榭脂製であり、図 11に示すように、縦部材 3に外嵌可能な筒状部 laと 、外周面の 4箇所力 突出して横部材 22の端部と係合して両者を接続する突出部 1 bを有している。そして、突出部 lbには、後述する横部材 22の端部突起 22aを受け 入れて係合する貫通孔 lcが 4箇形成されている。筒状部 la内部にも、やや小径の貫 通孔が形成されて重量軽減が図られていると共に、雨水を下方に移動させて貯留さ せるようになっている。 [0076] ノイブ状縦部材 3は榭脂製力 なり、所定長さを有する円筒形をしており、接続治 具 1の筒状部 laに内嵌可能になっている。 The connecting jig 1 is made of resin, and as shown in FIG. 11, a cylindrical portion la which can be externally fitted to the vertical member 3, and four points of force on the outer peripheral surface are projected to the end of the horizontal member 22 and It has a projection 1 b that engages and connects the two. The projection lb is formed with four through holes lc for receiving and engaging the end projections 22a of the cross member 22 described later. A somewhat small diameter through hole is also formed inside the cylindrical portion la to reduce the weight, and the rainwater is moved downward and stored. The nove shaped longitudinal member 3 is made of resin and has a cylindrical shape having a predetermined length, and can be fitted inside the cylindrical portion la of the connection jig 1.
[0077] 横部材 22も榭脂製である。図 12, 13に示すように、接続治具 1の貫通孔 lcに挿入 されて係合する端部突起 22aを、裏面側の両端部に下向きに形成していると共に、 端部突起 22a間は下方に向けて開口された凹部 22bが形成されている。更に、凹部 22bを区画するように、長手方向にわたり、 2本の所定間隔を空けて補強用の長手方 向リブ 22cが設けられている。短辺方向にも、数箇所(図 13では 3箇所)補強用の短 辺リブ 22dが設けられて、凹部 22bを区画している。長手方向リブ 22cを設けているこ とにより、横部材 22の長手方向力 作用する圧縮力に対して大きな強度を発揮し得 る。短辺リブ 22dを設けていることにより、横部材 22に作用するねじれ方向の外力に 対して耐久力を発揮し得る。これら長手方向リブ 22c、短辺リブ 22dの高さは、凹部 2 2bを形成する長手方向垂壁 22eの高さより幾分低く形成されており、それだけ重量 軽減が図られている。これは、横部材 22の長手方向にわたる浅い凹溝 22hが形成さ れている表面側の天面の強度と、上記長手方向リブ 22c、短辺リブ 22dの強度バラン スが形成されていることによる。もとより、横部材 22の天面の強度が高い場合には、 長手方向リブ 22c、短辺リブ 22dの高さを、凹部 22bを形成する長手方向垂壁 22eの 高さと同じにすることが強度バランス上好ましい。もっとも、補強用のリブ 22cの数、位 置、形状などは種々に変更可能である。また、横部材 22の表面側の天面には、図 1 2に示すように、多数の水抜き用貫通孔 22fが所定間隔を空けて穿たれている。  The cross member 22 is also made of resin. As shown in FIGS. 12 and 13, end protrusions 22a inserted into and engaged with the through holes lc of the connecting jig 1 are formed downward at both ends on the back surface side, and between the end protrusions 22a A recessed portion 22b opened downward is formed. Further, two longitudinal reinforcement ribs 22c are provided at predetermined intervals in the longitudinal direction so as to define the recess 22b. In the short side direction, reinforcing short side ribs 22d are provided at several places (three places in FIG. 13) to define the recess 22b. By providing the longitudinal rib 22c, it is possible to exert a large strength against the compressive force acting on the transverse member 22 in the longitudinal direction. By providing the short side ribs 22d, it is possible to exhibit durability against external force in the twisting direction acting on the cross member 22. The heights of the longitudinal ribs 22c and the short side ribs 22d are formed somewhat lower than the height of the longitudinal vertical wall 22e which forms the recess 22b, so that the weight can be reduced. This is because the strength of the top surface on the surface side where the shallow groove 22h extending in the longitudinal direction of the cross member 22 is formed and the strength balance between the longitudinal rib 22c and the short side rib 22d are formed. . In addition, when the strength of the top surface of the cross member 22 is high, the height balance of the longitudinal rib 22c and the short side rib 22d should be the same as the height of the longitudinal vertical wall 22e forming the recess 22b. Above preferred. However, the number, position, shape, etc. of the reinforcing ribs 22c can be changed variously. Further, as shown in FIG. 12, a large number of water removal through holes 22f are formed on the top surface on the surface side of the lateral member 22 at predetermined intervals.
[0078] ジャングルジム状に三次元構造体を構成する雨水貯留構造用組立物 Aを形成する には、立設された各パイプ状縦部材 3の上端に接続治具 1を嵌合して装着しておき、 2本のパイプ状縦部材 3に装着された各接続治具 1どうしの内、互いに隣接する 2個 の接続治具 1の貫通孔 lcの夫々に、横部材 22の端部突起 22aを挿入させて係合す る。更に、パイプ状縦部材 3と横部材 22とを接続し、これを繰り返えす。  In order to form the rainwater storage structure assembly A constituting a three-dimensional structure in a jungle gym shape, the connection jig 1 is fitted and mounted on the upper end of each of the vertically arranged pipe-like longitudinal members 3. Among the connecting jigs 1 attached to the two pipe-shaped vertical members 3, the end projections of the horizontal member 22 in each of the through holes lc of the two connecting jigs 1 adjacent to each other. Insert 22a and engage. Furthermore, the pipe-shaped longitudinal member 3 and the cross member 22 are connected, and this is repeated.
[0079] 三次元構造体である雨水貯留構造用組立物 Aは、少なくとも 108kNZm2以上の 圧縮強度を有することが好ましい。このようにすれば、最上部に覆土 2m程度 (負荷: 約 36kNZm2 )を施工したとしても、土圧の 3倍以上となる十分な強度を有する。具 体的には、長さ約 40cmのパイプ状縦部材と長さ 40cmの横部材を組み合わせる場 合には、 6. 25本 Zm2となり少なくとも圧縮強度約 17. 28kNZ本を有するパイプ状 縦部材を用いる。 [0079] The three-dimensional structure, rainwater storage structure assembly A, preferably has a compressive strength of at least 108 kNZm 2 or more. In this way, even if soil cover of about 2 m (load: about 36 kNZm 2 ) is installed at the top, it has sufficient strength that is more than three times the earth pressure. Specifically, when combining a pipe-like longitudinal member approximately 40 cm long and a horizontal member 40 cm long In this case, use a pipe-shaped longitudinal member with 6.25 Zm 2 and at least 17.28 kNZ compressive strength.
[0080] このようにすることにより、一旦雨水を貯留して、庭園などへの散水、洗浄水、非常 用水など各種用途に利用したり、大量の雨水を徐々に放流できるような調整機能を 備えさせたりすることができる。しカゝも、コンクリートで構成する場合に比べて、養生期 間などが不要であることから、雨水貯留構造物の構築速度を格段に早くすることがで きる。  [0080] In this way, it is possible to temporarily store rainwater and use it for water sprinkling in gardens etc., wash water, emergency water, etc. for various uses, or to have an adjustment function that allows a large amount of rain water to be released gradually. It can be done. In addition, since the curing period is unnecessary as compared with the case where it is made of concrete, the construction speed of the rainwater storage structure can be made much faster.
[0081] <変形例 1 >  <Modification 1>
雨水貯留構造用組立部材を構成する接続部材の変形例を、図 14, 15を参照して 説明する。この接続部材 21は、筒状部 21aの高さ方向の略中央箇所に 4箇所の突 出部 21bが形成されていると共に、各突出部 21bに貫通孔 21cが形成されている点 は、図 11に示す接続部材 1と同様である。しかし、各突出部 21b間に張出部 21dが 4 箇所形成されていると共に、上下の筒状部 21aに縦溝 21eが 4箇所形成されており、 更に張出部 21dの上段側が幾分突出した張出突出部 21fを形成している相違点を 有する。各突出部 21b間に張出部 21dが 4箇所形成されていることから、横部材 22を 接続した際、横部材 22が水平方向に回転するのを防止できる(廻り止め機構)。その 結果、施工作業を行うに当たり、横部材 22が不用意に回転移動しないので、作業が し易くなると共に、施工作業時に横部材の下方へのたわみを抑制する効果を発揮す る。  A modification of the connecting member constituting the rainwater storage structure assembly member will be described with reference to FIGS. The connecting member 21 has four projecting portions 21b formed at substantially the center in the height direction of the cylindrical portion 21a, and a through hole 21c is formed in each projecting portion 21b. It is the same as the connecting member 1 shown in 11. However, while four projecting parts 21d are formed between each projecting part 21b, four vertical grooves 21e are formed in the upper and lower cylindrical parts 21a, and further, the upper end side of the projecting part 21d is somewhat protruded There is a difference that forms the overhang projection 21f. Since four projecting portions 21d are formed between the projecting portions 21b, when the cross member 22 is connected, it is possible to prevent the cross member 22 from rotating in the horizontal direction (anti-rotation mechanism). As a result, when performing the construction work, since the horizontal member 22 does not rotate and move carelessly, the work becomes easy and the effect of suppressing the downward deflection of the horizontal member at the construction work is exhibited.
[0082] 接続部材 21が、このように構成されていることから、上下の筒状部 21aに縦部材を 嵌合する際に、筒状部 21aが適度に拡径変形するので、縦部材の設計自由度が幾 分高くなると共に、縦部材の寸法融通性が高くなり、施工作業性が向上する。更に、 横部材 22との接続に対しても、横部材 22に形成されている垂壁 22eの端面側の凹 み 22gと、接続部材 21の張出部 21dの上段側に形成されている張出突出部 21fとが 嵌合し、接続部材 21と横部材 22との接続が一層強固になり、雨水貯留構造用組立 部材を組み立てた雨水貯留構造用組立物 Aの強度が顕著に向上する。接続部材 2 1と横部材 22との接続は、図 14 (接続前)の状態力も矢印 Rに示す方向に横部材 22 を降下させて、図 15 (接続後)に示す接続状態とする。 [0083] 図 14, 15に示すように、横部材 22の表面側の天面には、長手方向にわたる浅い 凹溝 22hが形成されており、その底部に水抜き用貫通孔 22fが形成されている。この 凹溝 22hの形状、数、などは適宜変更できる。水抜き用貫通孔 22fの数、径などにつ いても、適宜変更できる。もっとも、凹溝の形状を単なる円弧状にする場合に比べて、 波状に形成すると、特に水平方向の変形に対する強度が高まる。 Since the connecting member 21 is configured as described above, when the vertical member is fitted to the upper and lower cylindrical portions 21a, the cylindrical portion 21a is appropriately expanded in diameter. As the design freedom increases, the dimensional flexibility of the longitudinal members increases, and the installation workability improves. Furthermore, also for the connection with the lateral member 22, the recess 22g on the end face side of the vertical wall 22e formed in the lateral member 22 and the tension formed on the upper side of the projecting portion 21d of the connecting member 21. The protrusion 21f is engaged, the connection between the connection member 21 and the cross member 22 is further strengthened, and the strength of the assembly A for rainwater storage structure in which the assembly member for rainwater storage structure is assembled is significantly improved. The connection between the connecting member 21 and the cross member 22 is achieved by lowering the cross member 22 in the direction shown by the arrow R in the state force of FIG. 14 (before connection) to the connected state shown in FIG. 15 (after connection). As shown in FIGS. 14 and 15, a shallow concave groove 22h extending in the longitudinal direction is formed on the top surface on the surface side of the cross member 22, and a water removal through hole 22f is formed on the bottom thereof. There is. The shape, number, and the like of the recessed grooves 22h can be changed as appropriate. The number, diameter, etc. of the through holes 22f for draining can be changed as appropriate. However, compared with the case where the shape of the concave groove is simply made circular, when it is formed in a wave shape, the strength against deformation especially in the horizontal direction is enhanced.
[0084] <変形例 2 >  <Modification 2>
ノイブ状縦部材 3についても、図 16に示すように、その外周面に上下方向に沿って 補強用の縦リブ 14を取り付けてもよい。この縦リブ 14は、パイプ状縦部材 3の上下端 部を除ぐ外周面の中央部分に上下にわたり延設された細幅状をしており、パイプ状 縦部材 3の外周面に略等間隔に 4本取り付けられている。その内、 2本には縦リブ 14 の上下 2箇所に水抜き孔 14aが形成されている。このように構成すると、簡単な構成 でパイプ状縦部材 3の強度、特に座屈強度などを顕著に向上させることができる。縦 リブ 14の幅、長さ、数などは種々に変更可能であり、材質についてはパイプ状縦部 材 3と同材質であることが好ましいが、異なる材質であってもよい。また、縦リブ 14は、 ノイブ状縦部材 3の内周面側に取り付けられていてもよぐ当初よりリブ付きパイプ状 縦部材として一体成形されてもょ ヽ。  As shown in FIG. 16, the longitudinal rib 14 for reinforcement may be attached to the outer peripheral surface of the longitudinal member 3 along the vertical direction. The longitudinal ribs 14 are narrowly extended at the center of the outer peripheral surface except for the upper and lower end portions of the pipe-shaped longitudinal member 3 and are substantially equally spaced on the outer peripheral surface of the pipe-shaped longitudinal member 3. Four are attached to Among them, the water draining holes 14a are formed in the upper and lower two places of the longitudinal rib 14 in the two. According to this structure, the strength of the pipe-like longitudinal member 3, particularly the buckling strength, can be remarkably improved with a simple structure. The width, length, number, etc. of the longitudinal ribs 14 can be variously changed, and the material is preferably the same material as the pipe-like longitudinal member 3 but may be different. Also, the longitudinal rib 14 may be attached to the inner circumferential surface side of the novee-like longitudinal member 3 or may be integrally formed as a ribbed pipe-like longitudinal member from the beginning.
[0085] 図 16に示すパイプ(外径約 60mm、肉厚約 4mm、長さ約 400mm、曲げ弾性率 1 700MPaの材料)を使用した場合、圧縮強度 200kNZm2が得られた。 When the pipe shown in FIG. 16 (a material having an outer diameter of about 60 mm, a wall thickness of about 4 mm, a length of about 400 mm, and a flexural modulus of 1 700 MPa) was used, a compressive strength of 200 kNZm 2 was obtained.
[0086] <変形例 3 >  <Modification 3>
図 14, 15に示す接続部材 11の最上部位置では、パイプ状縦部材 3を接続しない ため、上方に向けた筒状部 21aは不要となる。そのため、筒状部 21aの上部の突出し た部分を取り除き、図 17に示すキャップ部材 15を嵌着することが好ましい。このキヤ ップ部材 15は、薄い円盤状の頂部 15aと、接続部材 21の中心孔 21gに内嵌される 内筒部 15bとからなり、内筒部 15bの外周面の周囲には、略等間隔に 6箇所、段付き リブ 15cが上下方向に形成されている。そして、キャップ部材 15の内筒部 15bを、接 続部材 21の最上部の中心孔 21gに嵌着させると、頂部 15aに接する拡径された張出 リブ 15dの下部と中心孔 21gの周囲縁とが接当すると共に、頂部 21aとの間に形成さ れた隙間に横部材 22の端上部が嵌まり込み可能になっている。このようにすると、接 続部材 21の最上部位置が略平滑に保たれ、施工時あるいは施工後に不測の方向 力も外力が作用することを防止できると共に、この部分の強度が一定以上に保たれる 。もっとも、このキャップ部材 15は、図 14, 15に示す接続部材 21の最上部位置のみ ならず、図 11に示す接続部材 1の最上部位置に装着することもできる。 In the uppermost position of the connecting member 11 shown in FIGS. 14 and 15, since the pipe-shaped vertical member 3 is not connected, the cylindrical portion 21a directed upward is unnecessary. Therefore, it is preferable to remove the protruding part of the upper part of the cylindrical portion 21a and fit the cap member 15 shown in FIG. The cap member 15 includes a thin disk-like top portion 15a and an inner cylindrical portion 15b which is fitted into the central hole 21g of the connecting member 21. Stepped ribs 15c are formed vertically at six intervals. Then, when the inner cylindrical portion 15b of the cap member 15 is fitted into the central hole 21g at the top of the connecting member 21, the lower edge of the enlarged diameter rib 15d in contact with the top 15a and the peripheral edge of the central hole 21g And the top end of the cross member 22 can be fitted into the gap formed between the top 21a. In this way, The uppermost position of the connecting member 21 is maintained substantially flat, and unexpected directional force can be prevented from being applied during or after construction, and the strength of this portion can be maintained at a certain level or more. However, the cap member 15 can be mounted not only at the uppermost position of the connecting member 21 shown in FIGS. 14 and 15 but also at the uppermost position of the connecting member 1 shown in FIG.
[0087] <変形例 4>  <Modification 4>
更に、雨水貯留構造用組立物 Aの組み立て作業をするに際して、図 18〜21に示 す角板状のパネル 16を、パイプ状縦部材 3の間と横部材 2上に嵌め込んで配置し、 組み立て作業性を高めるための平坦性を確保すると共に、雨水貯留構造用組立物 Aの強度を高めるようにしてもよい。このパネル 6は、図 18に左側面構造を、図 19に 平面構造を、図 20に底面構造を、図 21に図 20の A— A断面構造を示すように、上 面が平滑になっていて、作業者が歩行し易くなつていると共に、外周部近くの数箇所 (図 19, 20では 4箇所)の孔 17が穿たれていて、両側に隣接するパネル 16どうしを ポリプロピレン製バンドで結束できるようになつている。更に、パネル 16の多数枚を重 ねた状態で搬送可能なような、凹凸部 18が裏面側に突出して数箇所(図 19, 20で は 4箇所)形成されていて、上面側のパネル 16の裏面に突出する凸部分が下面側の パネル 16の上面の凹部分と嵌合して、多数枚を重ねたパネル 16が互いに搬送時に ずれな 、ようになって!/、る。  Further, when assembling the rainwater storage structure assembly A, square plate-like panels 16 shown in FIGS. 18 to 21 are disposed by being fitted between the pipe-like longitudinal members 3 and on the transverse members 2; In addition to securing flatness for enhancing assembling workability, the strength of the rainwater storage structure assembly A may be enhanced. This panel 6 has a smooth upper surface, as shown in FIG. 18 for the left side structure, in FIG. 19 for the planar structure, in FIG. 20 for the bottom structure and in FIG. It is easy for workers to walk, and holes 17 are made at several places (four places in Figs. 19 and 20) near the outer periphery, and panels 16 adjacent to each other are bound with polypropylene bands. It has become possible. Furthermore, the uneven portion 18 is projected to the back side to be formed in several places (four places in FIGS. 19 and 20) so that it can be transported in a state in which a large number of panels 16 are stacked. The convex part which protrudes to the back surface of the is fitted with the concave part of the upper surface of the panel 16 on the lower surface side, and the panel 16 in which a large number of sheets are stacked deviates each other at the time of transportation!
[0088] 裏面側は、略亀甲模様が形成されていて、これらが補強用リブとしても作用し、軽 量化と強度の強化とが同時に図られている。また、パネル 16の 4隅は、接続部材 1, 2 1と面接触可能に略 1Z4円弧状に形成されている。もっとも、実際の施工時には、パ ネル 16の表裏を逆にして配置 '使用することも可能である。  On the back side, a substantially turtle-shaped pattern is formed, which also acts as a reinforcing rib, achieving both lightening and strengthening at the same time. Further, the four corners of the panel 16 are formed in a substantially 1Z4 arc shape so as to be in surface contact with the connecting members 1 and 21. However, at the time of actual construction, it is also possible to place the panel 16 upside down and use it.
[0089] <変形例 5 >  <Modification 5>
更に又、雨水貯留構造用組立物 Aの側面外周部に、図 22〜24に示すような側面 パネル 19を装着して、雨水貯留構造用組立物 Aの強度を向上させるようにしてもよ い。この側面パネル 19は、図 22に示す正面構造のように、その全面にわたり亀甲模 様状に開口された構造を有して、軽量化と強度強化が図られていると共に、両側部 にはパイプ状縦部材 3に係止される係止部 19aを備えている。この係止部 19aは、種 々の構造に形成できる。例えば、図 16に示す縦リブ 14を有するパイプ状縦部材 3と は、図 24に側面パネル 19の平面構造を示すように、縦リブ 14に係合する一対の突 起 19bを側面パネル 19に形成しておき、一対の突起 19bの間に縦リブ 14を挟持す るようにした係止方式が考えられる。このような側面パネル 19を、雨水貯留構造用組 立物 Aの側面外周部あるいは適宜単位ブロックの側面に装着することにより、地盤変 位などに対して大きな抵抗力を発揮し得るものとなる。 Furthermore, a side panel 19 as shown in FIGS. 22 to 24 may be mounted on the outer periphery of the side of the rainwater storage structure assembly A to improve the strength of the rainwater storage structure assembly A. . This side panel 19 has a structure opened like a turtle shell over the entire surface as in the front structure shown in FIG. 22 so that weight saving and strength strengthening are achieved, and pipes are provided on both sides. It has a locking portion 19 a locked to the vertical member 3. The locking portion 19a can be formed in various structures. For example, a pipe-like longitudinal member 3 having longitudinal ribs 14 shown in FIG. As shown in FIG. 24, the planar structure of the side panel 19 is formed by forming a pair of projections 19b on the side panel 19 engaged with the longitudinal rib 14 and sandwiching the longitudinal rib 14 between the pair of projections 19b. It is conceivable to use a locking system that makes it easy. By mounting such a side panel 19 on the side surface outer peripheral portion of the rainwater storage structure assembly A or the side surface of the unit block as appropriate, a large resistance to ground displacement can be exhibited.
[0090] また、側面パネル 19の全面にわたり形成されている亀甲模様の箇所を補強するた め、亀甲模様を横切るように直線状の横方向リブ、あるいは直線状の縦方向リブを形 成してもよい。このようなリブを形成しておくと、外力が作用した場合にも、側面パネル 19が橈み難くなり、パイプ状縦部材 3から外れ難くできる。  Also, in order to reinforce the tortoise pattern formed on the entire surface of the side panel 19, a straight horizontal rib or a straight vertical rib is formed so as to cross the tortoise pattern. It is also good. When such a rib is formed, the side panel 19 is hardly stagnated even when an external force is applied, and the side panel 19 can be hardly detached from the pipe-shaped vertical member 3.
[0091] この第 3実施形態に係る雨水貯留構造用組立部材を組み立てた雨水貯留構造用 組立物 Aを、雨水貯留構造物に施工例についても、図 6に示すように構成できる。地 面に l〜5m程度の地面凹部(以下、ピットということがある)を掘肖 IJ ·形成すると共に、 ピット周囲に側溝 7を形成し、ピットの底面に砕石、砂などを敷設 ·施工し平準化して 基礎 Bを形成する。その表面に遮水材である遮水シート 4を敷設した後、榭脂製の各 ノイブ状縦部材 3と接続治具 1とから、図 1に示す単位ブロックを形成しつつ、更に継 ぎ足し拡張して、ピットの内容積に応じジャングルジム状の雨水貯留構造用組立物 A を配置する。  An assembly A for a rainwater storage structure, in which the assembly member for a rainwater storage structure according to the third embodiment is assembled, can be configured as shown in FIG. 6 for a construction example of a rainwater storage structure. While forming a ground recess (sometimes referred to as a pit below) of about 1 to 5 m on the surface, IJ · forms a gutter 7 around the pit and lays crushed stone, sand etc. on the bottom of the pit · construction Make a foundation B by leveling. After laying the water-impervious sheet 4 which is a water-impervious material on the surface, further joining is performed while forming unit blocks shown in FIG. 1 from resin-made longitudinal members 3 and connecting jig 1 made of resin. Expand and arrange a jungle gym-like assembly A for rainwater storage structure according to the internal volume of the pit.
[0092] ついで、ピット内に配置された雨水貯留構造用組立物 Aの側面部は、必要に応じ て埋め戻し Cを行うと共に、側溝 7よりピット内に雨水を流し込み可能に連通する配管 8を敷設し、更に、上面に遮水シート 5を被覆し、その上から 0. 5〜: Lm程度の土砂を 被覆して覆土 6とする。これら、上面の遮水シート 5、覆土 6などは、被覆層を形成す る。また、これら被覆層 6の複数箇所には、点検孔が設けられていてもよい。なお、雨 水貯留構造用組立物 A上面に遮水シート 5を被覆する代わりに、透水性シートを被 覆して雨水を浸透させるようにしてもよい。側溝 7は、その底部に泥溜 9が形成される ように、底部が幾分深くなつている。  Next, the side part of the assembly A for rainwater storage structure disposed in the pit performs backfilling C as necessary, and the piping 8 which allows rainwater to flow into the pit from the side groove 7 is used. Then, cover the top of the sheet with a water-impervious sheet 5 and cover the soil with a thickness of about 0.5 to 5 Lm. The above-mentioned water-impervious sheet 5 on the upper surface, soil cover 6, etc. form a covering layer. In addition, inspection holes may be provided at a plurality of locations of the coating layer 6. Instead of covering the water blocking sheet 5 on the upper surface of the rainwater storage structure assembly A, the water permeable sheet may be covered to allow rainwater to permeate. The gutter 7 is somewhat deeper at the bottom so that a mud 9 is formed at the bottom.
実施例 3  Example 3
実際に施工した例について説明する。外径約 60mm、肉厚約 5. Omm,長さ約 40 cmのポリプロピレン製パイプ(富士化工社製。商品名:フジ'ポリプロピレン— PP)及 び接続治具を用い、図 2, 3にその一部を示すような、高さ約 3m、縦横約 3mの雨水 貯留構造組立物 Aを形成し、深さ約 5mの所定内容積を有するピット内に配置し、雨 水貯留構造物を構築した。このポリプロピレン製パイプは、長さ方向の圧縮強度約 1 05kNZ4本(26. 25kNZ本)を有しており、 lm2当たり 6. 25本を使用すると、圧縮 強度 160kN/m2が得られ、覆土を 2m (負荷:約 36kN/m2)とした場合でも、約 4. 5倍強の圧縮強度が得られるので、十分に実用的であることがわかる。 An example of actual construction will be described. Polypropylene pipe with an outer diameter of about 60 mm, a thickness of about 5. O mm and a length of about 40 cm (Fuji Chemical Co., Ltd. trade name: Fuji 'polypropylene-PP) and A pit with a predetermined internal volume of about 5 m deep is formed using a connection jig to form a rainwater storage structure assembly A about 3 m high and about 3 m high and low, as partially shown in Figs. It was placed inside to construct a rainwater storage structure. This polypropylene pipe has a longitudinal compressive strength of about 10 5 kNZ (26.25 kNZ), and using 6.25 pipes per 2 lm, a compressive strength of 160 kN / m 2 is obtained and the soil covering is covered. It can be understood that even when the value of 2 m (load: about 36 kN / m 2 ) is used, a compressive strength of about 4.5 times or more can be obtained, so that it is sufficiently practical.
[0093] 実際、 1. 2m X l . 2m X l . 2m(lユニット 0. 4mピッチのため)の大きさで雨水貯 留構造物を構築し、その上から 2mの覆土に相当する重錘を載置して 1年以上経過 したが、使用上問題となる変形その他のトラブルは一切生じな力 た。 [0093] In fact, a rainwater retention structure is constructed with a size of 1 m x l. 2 m x l. 2 m (for a unit of 0.4 m pitch), and a weight corresponding to a 2 m covered soil from above It has been over a year since it was placed, but there were no deformations or other problems that would cause problems in use.
<第 4実施形態 >  Fourth Embodiment
図 25は、第 4実施形態に係る雨水貯留構造物の概略正面断面構造を示す。この 雨水貯留構造用組立物 Aの内部に貯留された雨水を対流させる対流生成機構 23が 、点検孔 10を介して挿入可能になっており、所定時間の対流が終了すれば、適宜取 り外しできるようになつている。対流生成機構 23としては、例えば、軸 23a先端にスク リュー装置 23bが設けられて 、る構成とすることができ、雨水貯留構造用組立物 Aの 内部に挿入されて、図外の電動機などによりスクリュー装置 23bを駆動させて貯留さ れている雨水を撹拌 '対流させ、雨水貯留構造用組立物 Aに付着している土砂など を底部に落下させると共に、これらの土砂および底部に堆積している土砂などを他方 側に向けて押しやる。雨水貯留構造用組立物 Aの配置されている他方側に、ピットの 底部より低い凹所 24が形成されており、対流生成機構 23による貯留雨水の対流に より、この凹所 24に土砂などが沈積されることになる。この場合、ピット底部を凹所 24 に向けて傾斜状になるように構成してもよい。所定時間の間、対流生成機構 23により 対流を発生させた後は、これを取り外してもよい。  FIG. 25 shows a schematic front cross-sectional structure of the rainwater storage structure according to the fourth embodiment. The convection generating mechanism 23 for convecting the rainwater stored inside the assembly A for rainwater storage structure is insertable through the inspection hole 10, and when the convection for a predetermined time is completed, it is removed appropriately. It has become possible. As the convection generating mechanism 23, for example, a screw device 23b may be provided at the end of the shaft 23a, and may be configured to be inserted into the interior of the assembly A for rainwater storage structure by a motor not shown. The screw device 23b is driven to agitate and circulate the stored rainwater, and the sediment adhering to the assembly A for rainwater storage structure is dropped to the bottom and accumulated on the sediment and bottom. We push the earth and sand to the other side. A recess 24 lower than the bottom of the pit is formed on the other side where the assembly A for a rainwater storage structure is disposed, and sand and the like are formed in the recess 24 by the convection of the stored rainwater by the convection generating mechanism 23. It will be deposited. In this case, the bottom of the pit may be inclined toward the recess 24. After the convection is generated by the convection generating mechanism 23 for a predetermined time, this may be removed.
[0094] 凹所 24に沈積された土砂などの堆積物 25は、随時、点検孔 10などを介して、長尺 のホース等を有して凹所 24に挿入可能な固形物回収装置である減圧吸引装置 26 により、ピット外に排出されるようになっている。減圧吸引装置 26としては、雨水の貯 留容量や仕様に応じた市販の各種バキューム装置を選択'採用することができる。  [0094] A deposit 25 such as earth and sand deposited in the recess 24 is a solid material recovery device that can be inserted into the recess 24 with a long hose etc., as needed, through the inspection hole 10 and the like. The vacuum suction device 26 discharges out of the pit. As the decompression suction device 26, various commercially available vacuum devices can be selected and adopted according to the storage capacity and specifications of rainwater.
[0095] 更に、点検孔 10を介して曝気装置 27が雨水貯留構造用組立物 Aの内部に挿入可 能になっており、内部に貯留されて 、る雨水に新鮮空気を取り入れて適宜曝気させ 、酸ィ匕させることにより、雨水の清浄化を図り、水質の悪ィ匕を防止できるようになって いる。この曝気装置 27も着脱自在であり、使用に際して適宜、ピット内に挿入し作動 させることができ、曝気処理が終了すれば、取り外すことができる。 Furthermore, the aeration device 27 can be inserted into the interior of the rainwater storage structure assembly A through the inspection hole 10 It has become possible to keep fresh water inside by taking fresh air into the rainwater and aerating it properly, and by acidifying it, it is possible to clean rain water and prevent bad water quality. There is. The aeration device 27 is also detachable, and can be inserted into the pit and operated as appropriate during use, and can be removed when the aeration processing is completed.
[0096] 対流生成機構 23、減圧吸引装置 26、曝気装置 27に用いる動力源としては、商用 電源の他、可搬式の発電装置や、各種一次電池、二次電池などの電池を使用する ことができ、更には雨水貯留構造物の地上部に太陽電池発電装置や風力発電装置 などを設けて、これから得られた電力を使用するようにしてもよい。特に、対流生成機 構 23のスクリュー装置 23bと風力発電用プロペラとを直結し、スクリュー装置 23bを回 転させるようにしてちょい。  As the power source used for the convection generation mechanism 23, the vacuum suction device 26, and the aeration device 27, in addition to a commercial power source, portable power generation devices, or batteries such as various primary batteries and secondary batteries may be used. In addition, a solar cell power generator or a wind power generator may be provided on the ground part of the rainwater storage structure, and the power obtained from this may be used. In particular, the screw device 23b of the convection generating mechanism 23 and the propeller for wind power generation are directly connected, and the screw device 23b is rotated.
[0097] また、対流生成機構 23、固形物回収する減圧吸引装置 26、曝気装置 27を、それ ぞれ着脱自在の構成としたが、雨水貯留構造物に固定してもよい。  In addition, although the convection generating mechanism 23, the vacuum suction device 26 for recovering solid matter, and the aeration device 27 are configured to be detachable, they may be fixed to a rainwater storage structure.
<第 5実施形態 >  Fifth Embodiment
図 26は、第 5実施形態に係る雨水貯留構造物の概略正面断面構造を示す。雨水 貯留構造用組立物 Aの内部に貯留された雨水を対流させる対流生成機構 23が、点 検孔 10を介して挿入可能になっており、所定時間の対流が終了すれば、適宜取り外 しできるようになっている。対流生成機構 23としては、例えば、軸 23a先端にスクリュ 一装置 23bが設けられている構成とすることができ、雨水貯留構造用組立物 Aの内 部に挿入されて、図外の電動機などによりスクリュー装置 23bを駆動させて貯留され ている雨水を撹拌 '対流させ、雨水貯留構造用組立物 Aに付着している土砂などを 底部に落下させると共に、これらの土砂および底部に堆積している土砂などを他方 側に向けて押しやる。雨水貯留構造用組立物 Aの配置されている他方側に、ピットの 底部より低い凹所 24が形成されており、対流生成機構 23による貯留雨水の対流に より、この凹所 24に土砂などが沈積されることになる。この場合、ピット底部を凹所 24 に向けて傾斜状になるように構成してもよい。所定時間の間、対流生成機構 23により 対流を発生させた後は、これを取り外してもよい。  FIG. 26 shows a schematic front sectional view of the rainwater storage structure according to the fifth embodiment. A convection generation mechanism 23 for convecting the rainwater stored in the assembly A for the rainwater storage structure is insertable through the inspection hole 10, and can be removed as appropriate when the convection for a predetermined time is completed. It is supposed to be. As the convection generating mechanism 23, for example, a screw device 23b can be provided at the end of the shaft 23a, and it is inserted into the inner part of the assembly A for rainwater storage structure, and the motor is not shown. The screw device 23b is driven to agitate and circulate the stored rainwater, and the sediment adhering to the assembly A for rainwater storage structure is dropped to the bottom and these sediment and sediment deposited on the bottom. Push etc. toward the other side. A recess 24 lower than the bottom of the pit is formed on the other side where the assembly A for a rainwater storage structure is disposed, and sand and the like are formed in the recess 24 by the convection of the stored rainwater by the convection generating mechanism 23. It will be deposited. In this case, the bottom of the pit may be inclined toward the recess 24. After the convection is generated by the convection generating mechanism 23 for a predetermined time, this may be removed.
[0098] 凹所 24に沈積された土砂などの堆積物 25は、随時、点検孔 10などを介して、長尺 のホース等を有して凹所 24に挿入可能な固形物回収装置である減圧吸引装置 26 により、ピット外に排出されるようになっている。減圧吸引装置 26としては、図 25につ いて説明したように、雨水の貯留容量や仕様に応じた市販の各種バキューム装置を 選択'採用することができる。 [0098] A deposit 25 such as earth and sand deposited in the recess 24 is a solid material recovery device that can be inserted into the recess 24 with a long hose etc., as needed, via the inspection hole 10 and the like. Decompression suction device 26 Are discharged out of the pit. As the decompression suction device 26, as described with reference to FIG. 25, various commercially available vacuum devices can be selected and adopted according to the storage capacity and specifications of rainwater.
[0099] 更に、点検孔 10を通して、曝気装置 37が雨水貯留構造用組立物 Aを構成するパ イブ状縦部材 3に接続可能になっており、内部に貯留されて ヽる雨水に新鮮空気を 送り込んで曝気させ、酸化させることにより、雨水の清浄化を図り、水質の悪化を防止 できるようになつている。この曝気装置 37は、後述するように、パイプ状縦部材の上 部と接続可能になっていると共に送気ポンプ Pが接続されている。この送気ポンプ P を作動させることにより、パイプ状縦部材 3の内部 3aに空気を送り込み、パイプ状縦 部材 3の底部近くに穿たれた散気孔から空気を放出するようになって!/ヽる。曝気装置 37は着脱自在であり、曝気処理が終了すれば、取り外すことができる。  Furthermore, through the inspection hole 10, the aeration device 37 can be connected to the pipe-like longitudinal member 3 constituting the rainwater storage structure assembly A, and fresh air can be stored in the rainwater stored inside. By sending it in, aerating and oxidizing it, it is possible to clean rainwater and prevent the deterioration of water quality. As described later, the aeration device 37 can be connected to the upper portion of the pipe-like longitudinal member and the air supply pump P is connected. By operating the air supply pump P, air is fed into the interior 3a of the pipe-like longitudinal member 3 and the air is released from the air bubbles pierced near the bottom of the pipe-like longitudinal member 3! Ru. The aeration device 37 is removable and can be removed once the aeration process is completed.
[0100] 対流生成機構 23、減圧吸引装置 26、曝気装置 37に用いる動力源としては、商用 電源の他、可搬式の発電装置や、各種一次電池、二次電池などの電池を使用する ことができ、更には雨水貯留構造物の地上部に太陽電池発電装置や風力発電装置 などを設けて、これから得られた電力を使用するようにしてもよい。特に、対流生成機 構 23のスクリュー装置 23bと風力発電用プロペラとを直結し、スクリュー装置 23bを回 転させるようにしてちょい。  As the power source used for the convection generation mechanism 23, the vacuum suction device 26, and the aeration device 37, in addition to a commercial power source, a portable power generation device or batteries such as various primary batteries and secondary batteries may be used. In addition, a solar cell power generator or a wind power generator may be provided on the ground part of the rainwater storage structure, and the power obtained from this may be used. In particular, the screw device 23b of the convection generating mechanism 23 and the propeller for wind power generation are directly connected, and the screw device 23b is rotated.
[0101] 本実施形態では、対流生成機構 23、固形物回収装置 26、曝気装置 37を、それぞ れ着脱自在の構成としたが、雨水貯留構造物に固定してもよぐまた、曝気装置 37 のポンプ Pは図 26に示すように複数である必要はなぐ単一のポンプを用いて送気 するようにしてちょい。  In the present embodiment, the convection generation mechanism 23, the solid matter recovery device 26, and the aeration device 37 are respectively configured to be detachable, but may be fixed to a rainwater storage structure. As shown in Fig. 26, the number of pumps P in 37 need to be several, so that only a single pump is used to supply air.
<第 6実施形態 >  Sixth Embodiment
図 27は、第 6実施形態に係る雨水貯留構造物の概略正面断面構造を示す。遮水 シート 4上に雨水貯留構造用組立物 Aを配置した後、これを覆うようにして、柔軟性を 有する透水性材である不織布製ある!ヽは榭脂製のネット材、または不織布製ある ヽ は榭脂製のマット材、または榭脂コーティングされたネット材 (以下、単にマット材等と いうことがある) 30を雨水貯留構造用組立物 Aの側面および上面にわたり被覆する。 このマット材等 30の周辺端部は、ピット周辺の幾分地面より低く掘削された余掘部周 辺 31bに配置されていて、その結果、マット材等 30は、余掘部周辺 31bと余掘部法 面 31a、及び雨水貯留構造用組立物 Aの側面と上面を覆うように配置される。もっと も、マット材等 30の周辺端部は、余掘部周辺 31bにまで配置されていることが好まし いが、必ずしも余掘部周辺 31bにまで達していなくてもよぐ少なくとも余掘部法面 31 aに達していればよい。 FIG. 27 shows a schematic front sectional view of the rainwater storage structure according to the sixth embodiment. After arranging the assembly A for rainwater storage structure on the water blocking sheet 4, it is made of a non-woven fabric which is a flexible water-permeable material so as to cover the assembly A! A net made of resin or non-woven fabric made of resin In one case, a resin mat material or a resin-coated net material (hereinafter may be simply referred to as a mat material or the like) 30 is coated over the side and top of the rainwater storage structure assembly A. The peripheral edge of this mat material 30 is an excavated portion excavated somewhat lower than the ground around the pit. As a result, the mat material or the like 30 is disposed so as to cover the side surface and the top surface of the overburden portion periphery 31b, the overburden portion slope 31a, and the assembly A for rainwater storage structure. Furthermore, although it is preferable that the peripheral edge of the mat material 30 and the like is disposed as far as the periphery 31b of the overburden portion, it is not necessary that the peripheral edge 31b of the overburden portion be at least the overburden portion It only needs to reach Slope 31 a.
[0102] その後、マット材等 30の周辺部上面および全面力 ピットを埋める塊状の砕石や土 石など石材力 なる充填物 32により、その自重によって押圧 ·被覆されると、マット材 等 30が雨水貯留構造用組立物 Aの側面および上面に沿って強固に張りつけられ、 雨水貯留構造用組立物 Aを強く押さえつけるようになる。その結果、雨水貯留構造物 内部に貯留されている雨水に加えて、長雨などによって地下水位が上昇するような 場合であっても、雨水貯留構造用組立物 Aが浮き上がるという事態を確実に防止で きる。この充填物 32どうしに空隙が形成されており、この箇所にも雨水を貯留すること が可能になるのみならず、雨水貯留構造用組立物 Aを覆うマット材等 30と併せて、土 砂や塵芥その他の異物が雨水貯留構造用組立物 A内に流入するのを防止する機能 を有する。充填物 32としては、塊状の砕石や土石など石材力もなることが好ましいが 、破砕されたコンクリートなどでもよぐ主として石材力もなつていればよい。  [0102] After that, the mat material etc. 30 is rainwater when it is pressed and covered with its own weight 32 by the lump 32 made of massive crushed stone or stone which fills the upper surface and full strength pit of the mat material etc. It is firmly attached along the side and top of the storage structure assembly A, and the rainwater storage structure assembly A is pressed firmly. As a result, in addition to the rainwater stored inside the rainwater storage structure, even if the groundwater level rises due to long rain etc., the situation that the assembly A for rainwater storage structure rises is surely prevented. Can. A void is formed between the fillings 32. It is possible not only to store rainwater in this part, but also to combine soil material and the like 30 covering the assembly A for rainwater storage structure with soil and sand. It has a function to prevent dust and other foreign matter from flowing into the rainwater storage structure assembly A. As the filler 32, it is preferable to use a large amount of crushed stone or stone such as stone or the like, but it is sufficient if mainly crushed stone can be used even with crushed concrete.
[0103] 更に、ピットの一方の周辺に雨水を流入させるパイプ状をした流入口 33を設けると 共に、他方にオーバーフローした雨水を排出可能なパイプ状をした流出口 34を設け ておく。このようにすることにより、雨水を周囲からも確実に雨水貯留構造用組立物 A 内に誘導して流入させ貯留させることができ、オーバーフローするようになれば、下 水口などに向けて流出口より雨水を排出させ、雨水貯留構造用組立物 A内の貯水量 を常時調整することができる。この場合、流入口 33および流出口 34を、雨水貯留構 造用組立物 Aに直接接続する必要はなぐ従って、この部分の構造を簡素にできる。 これは余掘部 31に充填された砕石 32どうしの間隙箇所が、雨水貯留の機能をも果 たす力 である。  Furthermore, a pipe-like inlet 33 for letting in rainwater is provided around one of the pits, and a pipe-like outlet 34 capable of discharging the overflowed rainwater is provided for the other. By doing this, it is possible to guide rainwater reliably from the surroundings into the rainwater storage structure assembly A and to be allowed to flow and be stored, and if it overflows, it will be directed from the outlet toward the water outlet etc. Rainwater can be drained and the amount of water stored in the rainwater storage assembly A can be adjusted at all times. In this case, it is not necessary to directly connect the inlet 33 and the outlet 34 to the rainwater storage structure assembly A, so the structure of this portion can be simplified. This is the force where the gap between crushed stones 32 filled in the overfilling section 31 also functions as a rainwater reservoir.
[0104] 雨水貯留構造物上のマット材等 30および砕石 32の上から、 0. 5〜lm程度の覆土 6で被覆し、地面との高さ調整を行うと共に、目的に応じた表面に仕上げる。その場 合、この雨水貯留構造物に適当位置に、点検孔を 1又は複数箇所設けるようにしても よい。そのような点検孔を設けることにより、例えば、雨水貯留構造用組立物 Aの内部 に貯留された雨水を対流させる対流生成機構を点検孔力 取り外し自在に挿入でき るようにし、所定時間の対流を定期あるいは不定期に起こさせることにより、雨水貯留 構造用組立物 A内を清浄にして、その貯水機能を常時高く維持できる。 [0104] From the top of the mat material 30 and crushed stone 32 on the rainwater storage structure, cover with soil cover 6 of about 0.5 to 1 lm, adjust the height with the ground, and finish the surface according to the purpose . In this case, one or more inspection holes may be provided at appropriate positions in this rainwater storage structure. Good. By providing such an inspection hole, for example, a convection generating mechanism for convecting rainwater stored in the interior of the rainwater storage structure assembly A can be removably inserted into the inspection hole force, and convection for a predetermined period of time can be performed. By raising the water storage structure assembly A regularly and irregularly, the water storage function can be maintained high at all times.
[0105] また、雨水貯留構造用組立物 Aを被覆する透水性材としては、不織布などで構成 されていることが好ましいが、特にこれに限定されるものではなぐ覆土が雨水貯留構 造用組立物 Aに容易に入り込まず、柔軟性があり、砕石などの加重に耐えられるもの であればよい。  The water-permeable material for covering the rainwater storage structure assembly A is preferably made of a non-woven fabric or the like, but the covering soil is not particularly limited to this, and the covering of the soil is not limited to this. It should be anything that can not easily get into item A, is flexible, and can withstand heavy loads such as crushed stone.
[0106] 〔別実施の形態〕  Another Embodiment
(1)上記実施形態の場合、榭脂製パイプ状縦部材の構成材料としてポリプロピレン 製を例示した力 これに限定されるものではなぐポリエチレン、ポリ塩化ビニル、 PE T (ポリエチレンテレフタレート)等を使用してもよいし、必要な強度が得られれば、各 種の熱可塑性榭脂を使用することができる。更に、パイプ状縦部材として、榭脂製に 代えてステンレス鋼などの金属製パイプとすることもでき、榭脂製パイプ状縦部材の 内部にコンクリートを注入したり、あるいは鉄筋コンクリートを挿入したりして補強しても よい。  (1) In the case of the above-described embodiment, the force exemplified by polypropylene as the constituent material of the pipe-shaped longitudinal member made of resin is not limited to this, and polyethylene, polyvinyl chloride, PET (polyethylene terephthalate) or the like is used. Various types of thermoplastic resins can be used if the required strength is obtained. Furthermore, as the pipe-like longitudinal member, instead of resin, it may be made of metal pipe such as stainless steel, or concrete may be injected into the interior of the resin pipe-like longitudinal member or reinforced concrete may be inserted. It may be reinforced.
(2)パイプ状部材、横部材、接続治具とは、同じ材質の樹脂製としたが、異なる材質 の榭脂製であってもよい。  (2) The pipe-like member, the horizontal member, and the connecting jig are made of the same material of resin, but may be made of resin of different materials.
(3)榭脂製パイプ状部材、横部材、接続治具の構成材料に、粉体状の炭酸カルシゥ ム (炭カル)等を混入させるようにしてもよい。このようにすると、構成材料の比重を大 きくすることができ、雨水を貯留する際に生じる浮力に抗することができ、浮力対策と して特別な施工が不必要となり、小さいスペースでもより大きい貯水量が確保できて 好ましい。具体的には、 13%程度の炭カルを榭脂に混入させることにより、比重を 1. 0以上にすることができる。  (3) Powdered calcium carbonate (carbum carbonate) or the like may be mixed into the constituent materials of the resin pipe-shaped member, the horizontal member, and the connecting jig. In this way, the specific gravity of the constituent material can be increased, the buoyancy generated when storing rain water can be resisted, and special construction as a countermeasure for buoyancy becomes unnecessary, and even in a small space, larger It is preferable because the amount of stored water can be secured. Specifically, the specific gravity can be made to be 1.0 or more by mixing about 13% of charcoal into the resin.
(4)上記構成材料に混入させる場合、炭カルに代えて、タルク、硫酸バリウムなどの ゥイスカーを混入させるようにしてもよい。これらは、炭カルに比べてアスペクト比が大 きぐ強度を高める効果が大きい。更に、ガラス繊維を上記構成部材に混入させても 良い。ガラス繊維は、構成部材の比重を高めるだけでなぐ強度、寸法安定性をも高 めることができて好ましい。例えば、ガラス繊維を 4. 6wt%添加(20wt%マスターバ ツチ 100に対して 30部添加)すると、比重は 0. 03高くなり、強度は 15%向上し、成 型時に収縮率は 0. 4%改善する。 (4) In the case of mixing into the above-mentioned constituent materials, in place of charcoal, whiskers such as talc and barium sulfate may be mixed. These have a large effect of increasing the aspect ratio and the strength compared with carbon steel. Furthermore, glass fibers may be mixed into the above-mentioned constituent members. Glass fiber is high in strength and dimensional stability, as it only increases the specific gravity of component members. And is preferable. For example, when glass fiber is added at 4.6 wt% (30 parts added to 20 wt% master batch 100), the specific gravity is increased by 0.03, the strength is improved by 15%, and the shrinkage rate at molding is 0.4% Improve.
産業上の利用可能性 Industrial applicability
本発明に係る雨水貯留構造物は、雨水を貯留して利用するタンクとしての用途に 止まらず、ピオトープ等として利用することもできる。  The rainwater storage structure according to the present invention can be used not only as a tank for storing and using rainwater but also as a pyotope or the like.

Claims

請求の範囲 The scope of the claims
[1] 所定長さを有する複数のパイプ状縦部材と、これらパイプ状縦部材と共に三次元構 造体を組み立てる横部材と、前記パイプ状縦部材に前記横部材を接続するための 接続治具とを有し、これらパイプ状縦部材と横部材とを、前記接続治具を介して三次 元構造体に組み立てることにより、内部に空間を形成可能にする雨水貯留構造用部 材。  [1] A plurality of pipe-like longitudinal members having a predetermined length, a transverse member for assembling a three-dimensional structure together with the pipe-like longitudinal members, and a connecting jig for connecting the transverse member to the pipe-like longitudinal member A member for a rainwater storage structure, which is capable of forming a space inside by assembling the pipe-shaped vertical member and the horizontal member into a three-dimensional structure via the connection jig.
[2] 前記接続治具は、前記パイプ状縦部材に嵌合して装着されると共に、前記横部材と は係止して連結される請求項 1に記載の雨水貯留構造用部材。  [2] The rainwater storage structure member according to claim 1, wherein the connecting jig is fitted and mounted to the pipe-like vertical member, and is engaged with and connected to the horizontal member.
[3] 所定長さを有する複数のパイプ状縦部材と、所定長さを有し前記パイプ状部材どうし を連結して三次元構造体に組み立て可能な連結部材とを備え、前記パイプ状部材と 連結部材とから形成される三次元構造体の内部に空間を形成可能にする雨水貯留 構造用部材。  [3] A plurality of pipe-like vertical members having a predetermined length, and a connecting member having a predetermined length and connecting the pipe-like members to assemble them into a three-dimensional structure, the pipe-like members A member for a rainwater storage structure capable of forming a space inside a three-dimensional structure formed of a connecting member.
[4] 前記連結部材は、少なくともその端部にぉ 、て、前記パイプ状部材と略直角方向に 嵌合して連結可能になっている請求項 3に記載の雨水貯留構造用部材。  [4] The rainwater storage structure member according to claim 3, wherein the connecting member is fittable and connectable in at least an end portion of the connecting member in a direction substantially perpendicular to the pipe-like member.
[5] 前記横部材の裏面側が開口されて凹部が形成されていると共に、この凹部を区画す るように長手方向にわたる長手方向リブが形成されている請求項 1記載の雨水貯留 構造用部材。  [5] The rainwater storage structural member according to claim 1, wherein the back surface side of the cross member is opened to form a recess, and a longitudinal rib extending in the longitudinal direction is formed to define the recess.
[6] 前記横部材と接続治具との接続が、前記横部材の端面と前記接続治具の外周面と が互いに対面してなされると共に、前記横部材の端面が前記接続治具の廻りを回転 不能に接続される請求項 5記載の雨水貯留構造用部材。  [6] The connection between the horizontal member and the connection jig is made such that the end surface of the horizontal member and the outer peripheral surface of the connection jig face each other, and the end surface of the horizontal member is the circumference of the connection jig. The rainwater storage structure member according to claim 5, wherein the member is connected non-rotatably.
[7] 前記横部材の端面に突起または孔が形成されていると共に、前記接続治具の外周 部に、前記横部材の突起または孔と嵌合する孔または突起が形成されていて、前記 横部材の上面に、多数の水抜き用貫通孔が形成されている請求項 5記載の雨水貯 留構造用部材。  [7] A protrusion or a hole is formed on an end face of the lateral member, and a hole or a protrusion to be fitted to the protrusion or a hole of the lateral member is formed on an outer peripheral portion of the connecting jig. The member for a rainwater storage structure according to claim 5, wherein a plurality of drainage through holes are formed on the upper surface of the member.
[8] 前記横部材の裏面側の凹部に、前記長手方向リブに直交する短辺側の短辺リブが 形成されて!ヽる請求項 5記載の雨水貯留構造用部材。  [8] The member for a rainwater storage structure according to [5], wherein a short side rib on a short side orthogonal to the longitudinal direction rib is formed in the recess on the back side of the lateral member.
[9] 前記パイプ状縦部材の外周面に、上下方向に沿って形成されたリブを有すると共に[9] While having a rib formed along the up and down direction on the outer peripheral surface of the pipe-like longitudinal member
、これに係止する係止部を有する側面パネルを取り付ける請求項 5記載の雨水貯留 構造用部材。 The rainwater reservoir according to claim 5, wherein a side panel having a locking portion for locking thereto is attached. Structural members.
[10] 前記接続部材の最上部位置に嵌着して、この箇所を平滑ィ匕可能なキャップ部材を有 すると共に、前記パイプ状縦部材の間にかつ前記横部材上に配置可能な平坦状パ ネルを有する請求項 5記載の雨水貯留構造用部材。  [10] A flat shape which is fitted to the uppermost position of the connection member and has a cap member which can smooth this portion and which can be disposed between the pipe-like longitudinal members and on the cross member The member for a rainwater storage structure according to claim 5, which has a panel.
[11] 前記三次元構造体は、少なくとも 108kNZm2以上の圧縮強度を有する請求項 1〜1[11] The three-dimensional structure has a compressive strength of at least 10 8 kNZ m 2 or more.
0のいずれか 1項記載の雨水貯留構造用部材。 The member for rainwater storage structures according to any one of 0.
[12] 地面凹部に敷設された遮水材と、この遮水材の上面側に配置された三次元構造体と[12] A water-impervious material laid in the ground recess, and a three-dimensional structure disposed on the upper surface side of the water-impervious material
、この三次元構造体の上面側に配置された被覆層とを有する雨水貯留構造物にお いて、前記三次元構造体が、所定長さを有する複数のパイプ状縦部材と、これらパイ プ状縦部材と共に三次元構造体を組み立てる横部材と、前記パイプ状縦部材に前 記横部材を接続するための接続治具とを有し、これらパイプ状縦部材と横部材とを、 前記接続治具を介して組み立てられたことを特徴とする雨水貯留構造物。 In the rainwater storage structure having a covering layer disposed on the upper surface side of the three-dimensional structure, the three-dimensional structure comprises a plurality of pipe-like longitudinal members having a predetermined length, and the pipe-like longitudinal members. A horizontal member for assembling the three-dimensional structure together with the vertical members, and a connecting jig for connecting the horizontal members to the pipe-shaped vertical members, and the pipe-shaped vertical members and the horizontal members are A rainwater storage structure characterized by being assembled through a tool.
[13] 前記三次元構造体の内部に貯留された前記雨水を対流させる対流生成機構が設け られると共に、堆積した固形物を回収可能な固形物回収装置が設けられている請求 項 12記載の雨水貯留構造物。 [13] The rainwater according to claim 12, further comprising a convection generation mechanism for convecting the rainwater stored inside the three-dimensional structure, and a solid collection device capable of collecting the deposited solid. Storage structure.
[14] 前記パイプ状縦部材が所定長さを有する複数の榭脂製部材力 なり、これら榭脂製 パイプ状縦部材と前記横部材とによって組み立てられた前記三次元構造体の内部 に貯留された前記雨水を爆気させる複数の曝気装置が着脱自在に取り付け可能に なっている請求項 13記載の雨水貯留構造物。 [14] The pipe-shaped longitudinal member is made of a plurality of resin members having a predetermined length, and is stored inside the three-dimensional structure assembled by the resin pipe-shaped longitudinal members and the cross member. The rainwater storage structure according to claim 13, wherein a plurality of aeration devices for detonating the rainwater are detachably attachable.
[15] 前記対流生成機構とは対面する側の前記地面凹部に、より低い凹所が形成されてい ると共に、前記固形物回収装置が前記凹所に貯留された固形物を排出可能な減圧 吸弓 I装置である請求項 13記載の雨水貯留構造物。 [15] A lower recess is formed in the ground recess on the side facing the convection generating mechanism, and the solid material recovery device is capable of discharging the solid material stored in the recess. The stormwater storage structure according to claim 13, which is a bow I device.
[16] 前記パイプ状縦部材の内部を通して空気を送り込み、前記三次元構造体内に貯留 された前記雨水を爆気させる曝気装置が取り付け可能になっている請求項 12記載 の雨水貯留構造物。 [16] The rainwater storage structure according to claim 12, wherein an aeration device for feeding air through the inside of the pipe-like vertical member and detonating the rainwater stored in the three-dimensional structure is attachable.
[17] 前記パイプ状縦部材が所定長さを有する複数の榭脂製部材力 なると共に、前記三 次元構造体の内部に貯留された前記雨水を対流させる対流生成機構と、前記雨水 を貯留する雨水貯留構造物の内部に堆積した固形物を回収可能な固形物回収装 置とが設けられている請求項 16記載の雨水貯留構造物。 [17] The pipe-like longitudinal member is made of a plurality of resin members having a predetermined length, and a convection generating mechanism for convecting the rainwater stored inside the three-dimensional structure, and the rainwater is stored. Solids recovery equipment capable of recovering solids accumulated inside a rainwater storage structure The rainwater storage structure according to claim 16, wherein a storage is provided.
[18] 前記対流生成機構とは対面する側の前記地面凹部に、より低い凹所が形成されてい ると共に、前記固形物回収装置が前記凹所に貯留された固形物を排出可能な減圧 吸弓 I装置である請求項 16記載の雨水貯留構造物。 [18] A lower recess is formed in the ground recess on the side facing the convection generating mechanism, and the solid material recovery device is capable of discharging the solid material stored in the recess. The rainwater storage structure according to claim 16, which is a bow I device.
[19] 前記三次元構造体が柔軟性を有する透水性材に覆われていると共に、この透水性 材の周辺端部が少なくとも前記三次元構造体の周辺の前記地面凹部を覆っていて、 前記透水性材の上面に、前記三次元構造体の周辺の地面凹部を埋める充填物が 載置されることにより、前記三次元構造体が前記透水性材によって押圧 ·被覆される 請求項 12記載の雨水貯留構造物。 [19] The three-dimensional structure is covered with a flexible water-permeable material, and a peripheral end of the water-permeable material covers at least the ground recess around the three-dimensional structure, 13. The three-dimensional structure is pressed and covered with the water-permeable material by placing a filler filling the ground recess around the three-dimensional structure on the upper surface of the water-permeable material. Rainwater storage structure.
[20] 柔軟性を有する前記透水性材が、不織布製あるいは榭脂製のネット材またはマット 材、榭脂コーティングされたネット材力 選ばれた 1種力 なり、前記充填物が前記三 次元構造体の周辺の地面凹部を埋める石材である請求項 19記載の雨水貯留構造 物。 [20] The water-permeable material having flexibility is a non-woven or resin-made net material or mat material, a resin-coated net material force selected from one type, and the filling has the three-dimensional structure. The rainwater storage structure according to claim 19, which is a stone filling a ground recess around the body.
[21] 前記三次元構造体の内部に貯留された前記雨水を対流させる対流生成機構が設け られると共に、堆積した固形物を回収可能な固形物回収装置が設けられており、更 に、前記三次元構造体の内部に貯留された前記雨水を爆気させる複数の曝気装置 が着脱自在に取り付け可能になっている請求項 19の雨水貯留構造物。  [21] A convective generation mechanism for convecting the rainwater stored inside the three-dimensional structure is provided, and a solid recovery device capable of recovering the deposited solid is provided, and further, the three-dimensional structure is further provided. 20. The rainwater storage structure according to claim 19, wherein a plurality of aeration devices for detonating the rainwater stored inside the original structure are detachably attachable.
PCT/JP2005/018319 2004-10-04 2005-10-04 Member for rainwater containing structure and rainwater containing structure body using the same WO2006038602A1 (en)

Applications Claiming Priority (14)

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JP2004-291698 2004-10-04
JP2004291013A JP2006104721A (en) 2004-10-04 2004-10-04 Member for rainwater storage structure and rainwater storage structure using the same
JP2004-291013 2004-10-04
JP2004291698A JP2006104739A (en) 2004-10-04 2004-10-04 Member for rainwater storage structure and rainwater storage structure using the same
JP2005162190A JP2006336299A (en) 2005-06-02 2005-06-02 Rainwater storage structure
JP2005-162190 2005-06-02
JP2005-165450 2005-06-06
JP2005165450A JP2006336405A (en) 2005-06-06 2005-06-06 Rainwater storage structure
JP2005165459A JP2006336406A (en) 2005-06-06 2005-06-06 Rainwater storage structure
JP2005-165459 2005-06-06
JP2005-206364 2005-07-15
JP2005206364 2005-07-15
JP2005-268195 2005-09-15
JP2005268195A JP3802919B1 (en) 2005-07-15 2005-09-15 Rainwater storage structure member and rainwater storage structure

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EP3187661B1 (en) * 2015-12-23 2021-08-04 HoCoSto Holding B.V. Subsurface tank

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KR101407834B1 (en) 2011-02-25 2014-06-17 후루카와 덴키 고교 가부시키가이샤 Layout design method, layout design device, and program

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