Vertical pipe with spiral guideway
The vertical pipe with a spiral guideway design maintains vortex flow efficiency and reduces construction costs by using multiple central cylinders and ladders, addressing economic and installation challenges in sewerage systems.
Patent Information
- Application Number
- JP2021210721
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-12-24
- Publication Date
- 2025-12-11
- Estimated Expiration
- 2041-12-24
AI Technical Summary
Existing vertical pipes with spiral guideways in sewerage systems face challenges in maintaining vortex flow, are economically disadvantageous due to long central cylinders and numerous spirals, and require complex installation, especially when head differences between upstream and downstream pipes are significant.
The design incorporates a vertical pipe with a spiral guideway featuring multiple central cylinders, including an upper and lower central cylinder with spiral guide paths, and ladders between them, allowing for a necessary vortex flow maintenance while reducing the number of spirals and simplifying installation.
This design maintains vortex flow efficiency, reduces construction costs, and enhances maintainability by providing a cost-effective solution with reduced weight and improved drainage efficiency through the use of central cylinders and ladders.
Smart Images

Figure 0007784296000001 
Figure 0007784296000002 
Figure 0007784296000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a vertical pipe with a spiral guideway through which liquid flows downward in a spiral manner. [Background technology]
[0002] As is well known, in sewerage systems, the main lines of river basin sewerage systems are planned to be located relatively deep underground, and the connection points with related public sewerage systems are high-head junctions, and the vertical pipes installed inside manholes are long, so the impact of the sewage flowing down to the bottom of the vertical pipe is large, and there is a risk of damaging the bottom.
[0003] Therefore, a technology is becoming popular in which a vertical pipe with a spiral guideway (a drop shaft with a central tube that rises and falls) is used as a vertical pipe to connect an upstream horizontal pipe located above and a downstream horizontal pipe located below (see, for example, Patent Document 1).
[0004] A vertical pipe with a spiral guideway (a central tube lifting drop shaft) generally has a spiral guideway formed around a central tube placed inside the vertical pipe body, with the spiral guideway continuing to the bottom. When installing a vertical pipe with a spiral guideway inside the vertical pipe body, the spiral guide member must be fixed to the inner surface of the vertical pipe body using FRP lamination in a narrow space inside the vertical pipe body, which requires technically very specialized and difficult work.
[0005] Furthermore, when the difference in head between the upstream and downstream horizontal pipes is large, the central cylinder of a vertical pipe with a spiral guideway becomes longer and the number of spiral turns forming the spiral guideway also increases, which can be economically disadvantageous in some cases.
[0006] On the other hand, in order to eliminate the economic disadvantage by reducing the number of spirals in the spiral guideway in a central tube lifting drop shaft (vertical tube with spiral guideway), a hollowed-out type has been proposed in which the upper spiral and lower spiral are separated and the spiral guideway in that part is omitted (see, for example, Patent Document 2). [Prior art documents] [Patent documents]
[0007] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-179920 [Patent Document 2] Japanese Patent Application Laid-Open No. 2011-089338 Summary of the Invention [Problem to be solved by the invention]
[0008] The sewerage design guidelines published by the Japan Sewage Works Association require that the vertical spacing of "landings (intermediate slabs, central cylinders)" be within 5m. For this reason, central cylinders are generally designed to be spaced 3 to 5m apart. Furthermore, in order to prevent the vortex generated inside the vertical pipe from disappearing, the vertical spacing of the spiral guideway must be within 10 times (10D) the nominal diameter of the vertical pipe.
[0009] In vertical pipes installed in sewers, the 10D can be 5 m or more. Therefore, installing central cylinders with spiral guideways at intervals of 3 to 5 m in accordance with the above-mentioned design guidelines is more than necessary to maintain the vortex flow inside the vertical pipes. This has created challenges in reducing construction costs.
[0010] The present invention has been made in consideration of the above-mentioned circumstances, and aims to provide a vertical pipe with a spiral guideway that is provided with a necessary and sufficient number of guideways, does not cause the internal vortex flow to disappear, and is inexpensive. [Means for solving the problem]
[0011] In order to solve the above problems, the present invention proposes the following means. The vertical pipe with a spiral guide path of the present invention comprises a vertical pipe main body made of a straight pipe and arranged in a vertical direction, a plurality of central cylinders arranged in a vertical direction inside the vertical pipe main body, an upper central cylinder having the central cylinder located at the top of the plurality of central cylinders and an upper spiral guide path formed in a spiral around the central cylinder, and a lower central cylinder having the central cylinder located at the bottom of the plurality of central cylinders and a lower spiral guide path arranged below the upper central cylinder, and is characterized in that the plurality of central cylinders have at least one central cylinder guide path formed between the upper central cylinder and the lower central cylinder, and ladders are installed between the upper central cylinder and the central cylinder guide path and between the central cylinder guide path and the lower central cylinder.
[0012] According to this invention, the multiple central cylinders include at least one central cylinder guideway formed between an upper central cylinder and a lower central cylinder. In other words, a central cylinder without a spiral guideway is provided between the upper and lower central cylinders. This allows the spacing between the upper and lower central cylinders to be set to a necessary and sufficient distance of 10D or less, while the spacing between the central cylinders can be set to 3 to 5 m. This allows for a vertical pipe with a spiral guideway that is sufficiently provided with spiral guideways and that does not eliminate vortex flows inside. Furthermore, the absence of a spiral guideway allows for a more inexpensive product. Furthermore, the weight of the product can be reduced, shortening the construction period. These factors result in a more cost-effective vertical pipe with a spiral guideway.
[0013] Furthermore, ladders are installed between the upper central cylinder and the central cylinder guideway, and between the central cylinder guideway and the lower central cylinder, allowing movement between the upper central cylinder and the central cylinder guideway, and between the central cylinder guideway and the lower central cylinder, thereby ensuring excellent maintainability.
[0014] The lower central cylinder may be provided at its upper portion with a water inflow prevention roof and an air exhaust port.
[0015] According to this invention, a water inflow prevention roof and an air outlet are provided on the upper part of the lower central cylinder. The provision of the water inflow prevention roof can prevent water from entering the interior of the lower central cylinder. Here, the wastewater that flows down the lower spiral guide path may contain air. If this air flows downstream from the vertical pipe with the spiral guide path, drainage efficiency will decrease. The provision of an air outlet on the upper part of the lower central cylinder allows the air contained in the wastewater that flows down through the lower central cylinder to be removed from the interior of the wastewater via the lower central cylinder. Therefore, air can be prevented from flowing downstream from the vertical pipe with the spiral guide path, improving drainage efficiency.
[0016] The lower end of the lower central cylinder may be located above a downstream horizontal pipe line connected to a lower side surface of the vertical pipe body.
[0017] According to this invention, the lower end of the lower center cylinder is located above the downstream horizontal duct arranged on the lower side surface of the vertical pipe body, thereby preventing water from entering from the lower end of the lower center cylinder via the downstream horizontal duct. [Effects of the Invention]
[0018] According to the present invention, it is possible to provide a vertical pipe with a spiral guideway that is provided with a necessary and sufficient number of guideways, does not cause the vortex flow inside to disappear, and is inexpensive. [Brief explanation of the drawings]
[0019] [Figure 1] 5 is a schematic configuration diagram seen from the side indicated by arrow II in FIG. 4, illustrating the schematic configuration of the vertical pipe with a spiral guide path according to the first embodiment of the present invention. FIG. [Figure 2] 5 is a schematic configuration diagram seen from the side indicated by arrows II-II in FIG. 4, illustrating the schematic configuration of the vertical pipe with a spiral guide path according to the first embodiment. FIG. [Figure 3] 5 is a side view taken along the line II-II in FIG. 4, illustrating a main part of the vertical pipe with a spiral guideway according to the first embodiment. FIG. [Figure 4] 4 is a conceptual plan view taken along arrows IV-IV in FIG. 1, illustrating the schematic configuration of the vertical pipe with a spiral guideway according to the first embodiment. FIG. [Figure 5] FIG. 2 is an enlarged view of the lower upper end slab according to the first embodiment. [Figure 6] FIG. 6 is a plan view of the lower top slab shown in FIG. 5. [Figure 7] This is a modified example in which a vertical tube with a spiral guideway has an intermediate central cylinder. DETAILED DESCRIPTION OF THE INVENTION
[0020] A first embodiment of the present invention will be described below with reference to FIGS. FIG. 1 is a schematic diagram of a vertical pipe with a spiral guideway according to a first embodiment of the present invention, viewed from the side as indicated by arrow II in FIG. 4, and FIG. 2 is a schematic diagram of a vertical pipe with a spiral guideway according to a first embodiment of the present invention, viewed from the side as indicated by arrows II-II in FIG. 4. FIG. 3 is a diagram of a main portion of the vertical pipe with a spiral guideway, viewed from the side as indicated by arrows II-II in FIG. 4, and FIG. 4 is a conceptual diagram of a plan view as indicated by arrows IV-IV in FIG. 1. FIG. 5 is an enlarged view of a lower upper end slab according to the first embodiment. FIG. 6 is a plan view of the lower upper end slab shown in FIG. 5. FIG. 7 shows a modified example in which a vertical pipe with a spiral guideway has an intermediate central cylinder. In FIGS. 1 to 7, dashed lines and cross sections may be used only where necessary.
[0021] 1 to 7, reference numeral 10 denotes a vertical pipe with a spiral guideway, 100 denotes the vertical pipe body, 110 denotes a central cylinder, 120 denotes the spiral guideway, 121 denotes the upper spiral guideway, 125 denotes the lower spiral guideway, 130 denotes a hollow space, 140 denotes a flat guide member, 150 denotes a central cylinder fixing support member, 160 denotes the central cylinder guideway, O denotes the pipe axis of the vertical pipe body, and P denotes the pitch. Reference numerals R1 and R2 conceptually indicate the direction of movement of sewage (liquid) in the upper and lower spiral guideways. Dimensional relationships are exaggerated in some places.
[0022] As shown in Figures 1 to 4, the vertical pipe 10 with a spiral guide path includes, for example, a vertical pipe main body 100, a central cylinder 110, a spiral guide path 120, a hollow space 130, a flat guide member 140, a central cylinder fixing support member 150, and a central cylinder guide path 160. In this embodiment, the vertical pipe body 100 and the central cylinder body 110 have a pipe axis O that is coaxial with each other.
[0023] The vertical pipe 10 with a spiral guideway is arranged vertically within a concrete underground structure (e.g., a manhole) 11 formed vertically in the ground G, and connects an upstream horizontal pipeline 12 and a downstream horizontal pipeline 13 vertically within the manhole 11. In this embodiment, the upstream horizontal duct 12 and the downstream horizontal duct 13 are formed in directions perpendicular to each other when viewed from above.
[0024] The manhole 11 is made of concrete or the like and has a cylindrical wall portion arranged so that its axis runs vertically, an upper wall portion (not shown) formed above the cylindrical wall portion, and a concrete bottom surface formed on the underside. An opening (not shown) is formed in the upper wall, and a manhole entrance (not shown) that leads to the ground is connected to the opening. Furthermore, for example, the manhole 11 may have an inner diameter of about several meters, and may be an assembly type formed by stacking a plurality of pipes, or may be formed from cast-in-place concrete.
[0025] As shown in Figures 1 to 4, the vertical pipe body 100 is formed from a cylindrical straight pipe with a vertical pipe hollow portion 101 formed inside, and is arranged in the vertical direction along the pipe axis O inside the manhole 11. The material for forming the vertical pipe body 100 can be set arbitrarily, but in this embodiment, it is formed from, for example, FRP (Fiber Reinforced Plastics).
[0026] An upper opening 102 is formed on the upper side surface of the vertical pipe body 100, and the upstream horizontal pipe 12 is connected to this upper opening 102. A lower opening 103 is formed on the lower side surface of the vertical pipe body 100, and the downstream horizontal pipe 13 is connected to this lower opening 103. In other words, the downstream horizontal pipe 13 is disposed on the lower side surface of the vertical pipe body 100.
[0027] A plurality of central cylinders 110 are arranged in the vertical direction inside the vertical pipe main body 100. Specifically, as shown in Figs. 1 to 4, the central cylinders 110 are formed of cylindrical straight pipes with central cylinder hollow portions 111 formed inside, and are arranged in the vertical direction inside the manhole 11 along the pipe axis O. In this embodiment, the uppermost of the multiple central cylinders 110 is referred to as the upper central cylinder 110a. The lowermost of the multiple central cylinders 110 is referred to as the lower central cylinder 110b. The one located between the upper central cylinder 110a and the lower central cylinder 110b is referred to as the intermediate central cylinder 110c. Hereinafter, when there is no need to distinguish between the upper central cylinder 110a, the lower central cylinder 110b, and the intermediate central cylinder 110c, they will all be referred to as the central cylinder 110. Furthermore, the material for forming the central cylinder 110 can be set arbitrarily, but in this embodiment, it is formed from, for example, FRP (Fiber Reinforced Plastics).
[0028] Furthermore, a plurality of inspection ladders 115 are arranged at intervals along the vertical direction inside the central cylinder 110. Furthermore, a retractable hook ladder 116 is arranged below the inspection ladders 115. Furthermore, steps 114 are formed between the inspection ladders 115 and near the top end of the retractable hook ladder 116 .
[0029] The spiral guide path 120 guides the flow direction of the wastewater that flows down the vertical pipe body 100. Specifically, the spiral guide path 120 allows the wastewater to flow down the inside of the vertical pipe body 100 in a spiral shape, causing the wastewater to form a vortex. This serves to increase the efficiency of drainage. In order for the wastewater to form a vortex, it is preferable that the spiral guide path 120 form at least three spirals from the upper end to the lower end.
[0030] As shown in FIGS. 1 to 4, the spiral guide path 120 is connected to the outer peripheral surface 110A of the central cylinder 110, and is formed in a counterclockwise spiral shape around the tube axis O when viewed in plan. The spiral guide path 120 can be made of any material, but in this embodiment, it is made of, for example, FRP (Fiber Reinforced Plastics). The spiral guide path 120 is connected to the inner peripheral surface 100B of the vertical pipe body 100 by, for example, laminating FRP.
[0031] As shown in Figures 1 to 4, the spiral guide path 120 includes an upper spiral guide path 121 arranged in the upper central cylinder 110a and a lower spiral guide path 125 arranged in the lower central cylinder 110b. The upper spiral guide path 121 is formed in a spiral shape around the upper central cylinder 110a. In this embodiment, the upper spiral guide path 121 has at least three spiral turns from the upper end to the lower end. Hereinafter, the configuration including the upper central cylinder 110a and the upper spiral guide path 121 will be referred to as the upper central cylinder 121a. The lower spiral guide path 125 is formed in a spiral shape around the lower central cylinder 110b. In this embodiment, the lower spiral guide path 125 has at least three spiral turns from the upper end to the lower end. Hereinafter, the configuration including the lower central cylinder 110b and the lower spiral guide path 125 will be referred to as the lower central cylinder 125a.
[0032] As shown in FIG. 3 , in the upper central cylinder 121a, the lower end of the upper spiral guide path 121 and the lower end of the upper central cylinder 110a are located at the same position in the direction of the tube axis O. Alternatively, the lower end of the upper central cylinder 110a may be located lower than the lower end of the upper spiral guide path 121. An upper end slab 121S is installed inside the upper central cylinder 110a near the lower end. An extension ladder 117 is installed on the upper end slab 121S. The extension ladder 117 can extend and retract within a range of 3 to 5 meters. When the extension ladder 117 is extended, it is located between the upper central cylinder 121a and the lower central cylinder 125a. In other words, the extension ladder 117 extends downward from the upper end slab 121S.
[0033] A lower upper end slab 125S is provided on the upper part of the lower central cylinder 110b. A safety fence 125f for preventing falls is provided on the outer periphery of the lower upper end slab 125S, as shown in Fig. 5. As shown in Fig. 5, the lower upper end slab 125S is provided with a water inflow prevention roof 125r and an air exhaust port 125d.
[0034] The water inflow prevention roof 125r prevents water from entering the lower center cylinder 110b from above in the direction of the tube axis O. The lower center cylinder 110b and the water inflow prevention roof 125r are connected by beams B. Specifically, the connection is made as follows: First, the underside of the water inflow prevention roof 125r is connected to the first flange frame F1 shown in FIG. 5 by welding or the like. Next, the first flange frame F1 is connected to the second flange frame F2 provided at the upper end of the lower center cylinder 110b by flange bolts FB. The second flange frame F2 is preferably provided on the lower center cylinder 110b in advance before construction. The second flange frame F2 may be attached to the lower center cylinder 110b by welding, or may be integrally formed during the manufacturing of the lower center cylinder 110b.
[0035] As shown in Figures 5 and 6, a lid 125c is provided on the water inflow prevention roof 125r. The lid 125c is fixed to the water inflow prevention roof 125r with fixing bolts 125b. The lid 125c is opened when an operator enters the interior of the lower central cylinder 125a. This keeps the upper end of the lower central cylinder 110b closed while the spiral guideway-equipped vertical pipe 10 is in use, and opens it to allow an operator to enter the interior during inspection. FRP is preferably used for the lid 125c.
[0036] 5, the air outlet 125d is provided between the lower center cylinder 110b and the water inflow prevention roof 125r. The air outlet 125d is a gap between the lower center cylinder 110b and the water inflow prevention roof 125r that opens in a direction perpendicular to the tube axis O. When wastewater flows down inside the vertical pipe 10 with a spiral guide path, air may be entrained in the wastewater (entrained air). If this entrained air flows down into the downstream horizontal pipe 13, it will cause a decrease in the efficiency of drainage. The air discharge port 125d serves to discharge the entrained air contained in the wastewater through the lower central cylinder 110b.
[0037] 3, water may splash from the bottom of the vertical pipe 10 with a spiral guideway when draining water. This may cause the drainage water to enter the interior of the lower central cylinder 125a from below. To prevent this, the lower end of the lower central cylinder 125a is positioned above the upper end of the downstream horizontal pipe 13. It is preferable that the lower end of the lower central cylinder 125a be at a height that allows an operator to stand upright at the bottom of the vertical pipe 10 with a spiral guide path and makes maintenance easy. From this perspective, it is preferable that the lower end of the lower central cylinder 125a be located approximately 2 m above the bottom of the vertical pipe 10 with a spiral guide path in the direction of the pipe axis O. The lower end of the lower spiral guide path 125 and the lower end of the lower central cylinder 110b are located at the same position in the direction of the pipe axis O. The upper end of the lower spiral guide path 125 and the upper end of the lower central cylinder 110b are provided at the same position in the direction of the tube axis O. Alternatively, without being limited to this, the upper end of the lower central cylinder 110b may be located above the upper end of the lower spiral guide path 125.
[0038] Between the upper central cylinder 121a and the lower central cylinder 125a in the direction of the pipe axis O, the spiral guide path 120 and the central cylinder 110 are not arranged, and a hollow space 130 is formed into which liquid such as sewage can freely fall due to gravity. In this embodiment, at least one hollow space 130 is formed. When moving through the hollow space 130 in the direction of the pipe axis O, that is, when moving between the upper central cylinder 110a and the lower central cylinder 110b, an extendable ladder 117 is used for movement. For this reason, the dimension of the hollow space 130 in the direction of the pipe axis O is preferably 3 to 5 m.
[0039] As shown in FIG. 3, the upper spiral guide path 121 has an upper end 122 disposed below the bottom surface of the upstream horizontal pipe 12, for example. The upper spiral guide path 121 receives liquid such as sewage that flows into the vertical pipe body 100 from the upstream horizontal pipe 12, and causes it to flow down along the upper spiral guide path 121 in a spiral shape (in the direction of arrow R1) around the central cylinder 110, and then discharges it from the lower end 123 into the hollow space 130.
[0040] The lower spiral guideway 125 has a lower end 127 disposed above the downstream horizontal pipe 13 . The lower spiral guide path 125 is configured to receive liquid such as sewage that has flowed down the hollow space 130, and cause it to flow down in a spiral around the central cylinder 110 along the lower spiral guide path 125, and then discharge it from the lower end 127.
[0041] Centrifugal force causes liquid such as sewage to flow along the inner circumferential surface 100B of the vertical pipe main body 100. Air is collected on the inner circumferential side (the pipe axis O side) and moves upward through the vertical pipe hollow portion 101. The sewage also attenuates its flow energy while flowing downward in a spiral shape (in the direction of arrow R2) along the upper spiral guide path 121, thereby preventing it from strongly colliding with the bottom surface portion 100C of the vertical pipe main body 100. The sewage (liquid) that has flowed down to the bottom surface portion 100C is then discharged through the downstream horizontal pipe 13.
[0042] As described above, the spiral guide path 120 has the role of increasing the efficiency of drainage by causing the drainage water to form a vortex. In this case, if the distance between the lower end of the upper spiral guide path 121 and the upper end of the lower spiral guide path 125 is 10 times (10D) or less the inner diameter D of the vertical pipe body 100, the vortex formed by the upper spiral guide path 121 does not disappear and moves to the lower spiral guide path 125. Therefore, in the pipe axis O direction of the vertical pipe body 100, a region not having the spiral guide path 120 can be provided up to 10D.
[0043] When the above-mentioned 10D exceeds 5 m, that is, when the dimension in the direction of the tube axis O from the lower end of the upper center cylinder 110a to the upper end of the lower center cylinder 110b exceeds 5 m, an intermediate center cylinder 110c is provided between the upper center cylinder 110a and the lower center cylinder 110b, as shown in Fig. 7. In this case, the dimension in the direction of the tube axis O between the lower end of the upper center cylinder 110a and the upper end of the intermediate center cylinder 110c, and between the lower end of the intermediate center cylinder 110c and the upper end of the lower center cylinder 110b, is preferably 3 m to 5 m.
[0044] A lower upper end slab 125S is provided at the upper end of the intermediate central cylinder 110c, similar to the lower central cylinder 110b. An inspection ladder 115 and a retractable hook ladder 116 are arranged inside the intermediate central cylinder 110c, similar to the upper central cylinder 110a and the lower central cylinder 110b. Furthermore, an upper terminal slab 121S is provided at the lower end of the intermediate central cylinder 110c, similar to the upper central cylinder 110a. An extension ladder 117 is provided on the upper terminal slab 121S.
[0045] A plurality of intermediate central cylinders 110c may be provided at intervals of 3 m to 5 m in the direction of the tube axis O. In this case, if the dimension in the direction of the tube axis O from the lower end of the upper spiral guide path 121 to the upper end of the lower spiral guide path 125 exceeds 10D, the vortex formed by the upper spiral guide path 121 will disappear. In this case, in order to prevent the vortex from disappearing, a middle spiral guide path (not shown) is provided between the upper spiral guide path 121 and the lower spiral guide path 125.
[0046] The middle spiral guide path is provided on the outer periphery of the middle central cylinder 110c. The middle spiral guide path has the same configuration as the upper spiral guide path 121 and the lower spiral guide path 125. In this embodiment, the middle spiral guide path has at least three spiral turns from the upper end to the lower end. Hereinafter, a configuration including the middle central cylinder 110c and the middle spiral guide path will be referred to as the middle central cylinder. Furthermore, the middle central cylinder 110c that does not have the middle spiral guide path will be referred to as the center cylinder guide path 160.
[0047] The central center cylinder may be provided at one location in the direction of the tube axis O, or multiple locations may be provided. When multiple central center cylinders are provided, it is preferable that the central center cylinders and the central cylinder guide paths 160 are provided alternately. However, this does not apply when the distance between the central center cylinders in the vertical direction is 10D or less. Specifically, multiple central cylinder guide paths 160 may be arranged between the central center cylinders. At least one central cylinder guide path 160 is formed between the upper central cylinder 121a and the lower central cylinder 125a as one of the multiple central cylinders 110. The central cylinder guide path 160 may be provided at one location in the tube axis O direction, or multiple locations may be provided.
[0048] The flat guide member 140 is, for example, a rectangular flat plate member. The flat guide member 140 is arranged along the direction of the tube axis O. The material from which the flat guide member 140 is made can be set arbitrarily, but in this embodiment, it is made of, for example, stainless steel. The flat guide member 140 is provided on the outer circumferential surface of the central cylinder 110 in a portion where the spiral guide path 120 is not provided. Specifically, the flat guide member 140 is arranged in the following manner.
[0049] For example, when the lower end of the upper central cylinder 110a is located lower than the lower end of the upper spiral guide path 121, the flat guide member 140 is provided in a portion of the upper central cylinder 110a where the upper spiral guide path 121 is not provided. Alternatively, when the upper end of the lower central cylinder 110b is located above the upper end of the lower spiral guide path 125, the flat guide member 140 is provided in a portion of the lower central cylinder 110b where the lower spiral guide path 125 is not provided. Alternatively, the flat guide member 140 is provided on the outer circumferential surface of the central tube guide path 160 . In this embodiment, the flat guide member 140 is provided in a portion of the lower central cylinder 110b where the lower spiral guide path 125 is not provided.
[0050] The flat guide member 140 is formed, for example, so that its width corresponds to the radial distance between the vertical pipe main body 100 and the central cylinder 110 (half the difference in inner diameter). When viewed in a plane, the flat guide member 140 has an outer peripheral edge 140A connected to the inner peripheral surface 100B of the vertical pipe main body 100, and an inner peripheral edge 140B connected to the outer peripheral surface 110A of the central cylinder 110. As a result, the flat guide member 140 has the function of fixing and supporting the central cylinder 110 and the vertical pipe main body 100 .
[0051] In addition, in this embodiment, as shown in FIG. 3, the distance L from the upper end 141 of the flat guide member 140 to the lower end of the upper spiral guide path 121 is set to, for example, L = 1.0D when the inner diameter of the vertical pipe body 100 is D.
[0052] The position of the upper end 141 of the flat guide member 140 in the direction of the tube axis O is spaced apart by a distance L It may be set arbitrarily within the range of ≧0.8D. Setting the distance L from the upper end 141 of the flat guide member 140 to the lower end 123 of the upper spiral guide path 121 in the direction of the pipe axis O within the range of distance L ≧ 0.8D is preferable because the distance L is lower than one revolution of the spiral guide path 120, allowing the circumferential velocity of the liquid flowing downward to be sufficiently reduced. Furthermore, distance L ≧ 0.8D means that the distance is lower by 1P (pitch) or more in the upper spiral guide path 121. With this configuration, the sewage flowing out of the upper spiral guide path 121 makes one circuit around the central cylinder 110 before colliding with the flat guide member 140 .
[0053] Furthermore, when viewed from above, the flat guide member 140 is disposed at the same position in the circumferential direction as the lower end 123 of the upper spiral guide path 121. In other words, the flat guide member 140 is disposed directly below the lower end 123 of the upper spiral guide path 121.
[0054] A lower end portion 142 of the flat guide member 140 is disposed so as to correspond to an upper end 126 of the lower spiral guide path 125 in the pipe axis O direction.
[0055] In other words, the flat guide member 140 is formed in the range from a position spaced a distance L from the lower end 123 of the upper spiral guide path 121 to the upper end 126 of the lower spiral guide path 125 in the direction of the pipe axis O.
[0056] Specifically, the lower end 142 of the flat guide member 140 is formed about a quarter turn forward (downstream) from the upper end 126 of the lower spiral guide path 125 in the circular direction when the sewage (liquid) flows from upstream to downstream, in other words, about 90° forward around the pipe axis O. The circumferential position of the lower end 142 of the flat guide member 140 is not limited to being a quarter turn forward of the upper end 126 of the lower spiral guide path 125, and may be set arbitrarily.
[0057] The central cylinder fixing support member 150 supports the upper central cylinder 121a, the lower central cylinder 125a, and the intermediate central cylinder 110c inside the vertical pipe main body 100. The material for forming the central cylinder fixing support member 150 can be set arbitrarily, but in this embodiment, the central cylinder fixing support member 150 is formed from, for example, stainless steel. Forming the central cylinder fixing support member 150 from stainless steel is preferable because it prevents corrosion of the central cylinder fixing support member 150 even when it comes into contact with sewage or the like inside the vertical pipe 10 with a spiral guideway. The central cylinder fixing and supporting member 150 may be made of a material other than stainless steel, or may be made of a plurality of materials.
[0058] Next, the operation of the vertical pipe 10 with the spiral guideway will be described. (1) First, liquid such as sewage flows into the vertical pipe 10 with a spiral guideway. Specifically, the liquid flows from the upstream horizontal pipe 12 into the vertical pipe body 100. (2) The liquid that has flowed into the vertical pipe body 100 falls inside the vertical pipe body 100 and flows into the upper spiral guide path 121. (3) The liquid that has flowed into the upper spiral guide path 121 is guided by the upper spiral guide path 121, and flows downward in a spiral shape in the direction of arrow R1 while circling around the central cylinder 110. Then, the liquid flows through the upper spiral guide path 121 at an increased circumferential flow rate, and the centrifugal force increases. At this time, the liquid flows along the inner circumferential surface 100B of the vertical pipe main body 100 due to centrifugal force. The air is then collected on the inner circumferential side (the tube axis O side) and moves upward through the vertical tube cavity 101.
[0059] (4) The liquid is then discharged from the lower end 123 of the upper spiral guideway 121 into the hollow space 130 . The liquid discharged from the upper spiral guide path 121 breaks up in the hollow space 130 as its falling speed is accelerated by gravity and its circumferential speed is slowed by the upper spiral guide path 121. The broken up liquid makes one revolution around the central cylinder 110 and then collides with the flat guide member 140. This prevents the broken up liquid from becoming mist or granular. The spiral flow is guided downward by dimension L (1.0D) from the lower end 123 of the upper spiral guide path 121, so that the circumferential flow velocity is sufficiently reduced. Here, the vertical pitch 1P of the upper spiral guide path 121 is approximately 0.8D. The pitch refers to the vertical (height) dimension when the upper spiral guide path 121 goes around an imaginary cylinder extending in the vertical direction, and the height of one round of the upper spiral guide path 121 is 1P (pitch).
[0060] (5) The liquid that collides with the flat guide member 140 is rectified downward (substantially vertically, in the direction of arrow V) along the flat guide member 140. In other words, the flat guide member 140 brings the scattered liquid together. The liquid rectified by the flat guide member 140 flows into the lower spiral guide path 125 at the lower end 142 of the flat guide member 140 . (6) The liquid that has flowed into the lower spiral guide path 125 flows downward in a spiral shape while circling the periphery of the central cylinder 110 along the lower spiral guide path 125. The behavior of the liquid at this time is the same as that in the upper spiral guide path 121. The liquid that flows spirally down along the lower spiral guide path 125 in the direction of arrow R2 has a small vertical flow velocity, and is therefore prevented from strongly colliding with the bottom surface 100C of the vertical pipe main body 100. Furthermore, noise, vibration, and splashes caused by the liquid colliding are suppressed. The sewage (liquid) that has flowed down to the bottom surface portion 100C is then discharged through the downstream horizontal pipe 13.
[0061] As described above, the spiral guideway-equipped vertical pipe 10 according to this embodiment includes multiple central cylinders 110, each of which includes at least one central cylinder guideway 160 formed between the upper central cylinder 121a and the lower central cylinder 125a. In other words, a central cylinder 110 without a spiral guideway 120 is provided between the upper central cylinder 121a and the lower central cylinder 125a. This allows the spacing between the central cylinders 110 to be set to 3 to 5 meters while maintaining a necessary and sufficient distance of 10D or less between the upper central cylinder 121a and the lower central cylinder 125a. This allows for a spiral guideway-equipped vertical pipe 10 that is sufficiently equipped with the spiral guideway 120 and that does not lose its internal vortex flow. Furthermore, the absence of the spiral guideway 120 allows for a more cost-effective product. Furthermore, the weight of the product is reduced, shortening the construction period. These factors contribute to a more cost-effective spiral guideway-equipped vertical pipe 10.
[0062] Furthermore, ladders are installed between the upper central cylinder 121a and the central cylinder guide path 160, and between the central cylinder guide path 160 and the lower central cylinder 125a. This allows movement between the upper central cylinder 121a and the central cylinder guide path 160, and between the central cylinder guide path 160 and the lower central cylinder 125a, using the ladders. This ensures excellent maintainability.
[0063] Additionally, a water inflow prevention roof 125r and an air outlet 125d are provided on the upper part of the lower central cylinder 125a. The provision of the water inflow prevention roof 125r prevents water from entering the interior of the lower central cylinder 125a. Here, the wastewater flowing down the lower spiral guide path 125 may contain air. If this air flows downstream from the vertical pipe 10 with a spiral guide path, drainage efficiency will decrease. The provision of the air outlet 125d on the upper part of the lower central cylinder 125a allows the air contained in the wastewater flowing down through the lower central cylinder 125a to be removed from the interior of the wastewater via the lower central cylinder 125a. This prevents air from flowing downstream from the vertical pipe 10 with a spiral guide path, improving drainage efficiency.
[0064] In addition, the lower end of the lower central cylinder 125a is located above the downstream horizontal duct 13 arranged on the lower side surface of the vertical pipe body 100. This prevents water from entering through the downstream horizontal duct 13 from the lower end of the lower central cylinder 125a.
[0065] The technical scope of the present invention is not limited to the above-described embodiment, and various modifications can be made without departing from the spirit of the present invention. For example, although the central cylinders 110 are described as being arranged in pairs, this is not limiting, and for example, three or more central cylinders 110 may be provided.
[0066] Furthermore, the lower end 142 of the lower spiral guide path and the lower end 142 of the lower central cylinder 110b do not have to be located at the same position in the tube axis O direction. Furthermore, in the above embodiment, the liquid flowing into the vertical pipe 10 with a spiral guideway is described as sewage or the like, but the liquid flowing into the vertical pipe 10 with a spiral guideway is not limited to sewage and can be set arbitrarily.
[0067] In addition, within the scope of the spirit of the present invention, the components in the above-described embodiments may be replaced with well-known components as appropriate, and the above-described modifications may be combined as appropriate. [Explanation of symbols]
[0068] 10 Vertical pipe 13 Downstream horizontal pipe 100 Vertical pipe body 110 Center cylinder 121 Upper spiral guideway 121a Upper center cylinder 125 Lower spiral guideway 125a Lower center cylinder 125d Air Outlet 125r Water-proof roof
Claims
1. a vertical pipe body made of a straight pipe and arranged in the vertical direction; a plurality of central cylinders arranged in the vertical pipe body in the up-down direction; an upper central cylinder having the central cylinder located at the top of the plurality of central cylinders and an upper spiral guide path formed in a spiral shape around the central cylinder; a lower central cylinder having the central cylinder located at the lowest position among the plurality of central cylinders and a lower spiral guideway disposed below the upper central cylinder; and The plurality of central cylinders include at least one central cylinder guide path formed between the upper central cylinder and the lower central cylinder, a ladder is installed between the upper central cylinder and the central cylinder guideway, and between the central cylinder guideway and the lower central cylinder; A water inflow prevention roof and an air exhaust port are provided on the upper part of the lower central cylinder. Vertical pipe with spiral guideway.
2. a lower end of the lower central cylinder body being located above a downstream horizontal pipe line arranged on a lower side surface of the vertical pipe body; The vertical pipe with a spiral guideway according to claim 1 .
Citation Information
Patent Citations
Vertical conduit equipped with spiral guide plate
JP1999200467A
Vertical pipe with spiral guide passage
JP2011089338A
Manhole
JP2017179920A
Vertical pipe structure
JP2019173320A