The present invention relates to a vortex flow type water surface control device for a draining device, and more particularly relates to a control device which controls a water surface inside a storm overflow chamber (water separating manhole) which separates rain water and waste water from each other in a draining device used to combine the waste water and the rain water for drainage treatment.
Reference numeral 4 denotes an outflow pipe. Reference numeral 1 denotes a separating weir which is provided in the storm overflow chamber, separates the opening of the inflow pipe 2 and the opening of the intercepting pipe 3 from an opening of the outflow pipe 4, and is higher than the opening of the outflow pipe 4.
Reference numeral 5 denotes floating debris which flow from the inflow pipe 2.
In the conventional storm overflow chamber shown in
As described above, in the conventional storm overflow chamber, the inflowing floating debris 5 do not flow into the intercepting pipe 3 in a rainy weather, and flow out to the public water body via the outflow pipe 4, constituting a cause of water pollution in the public water body. One reason is a hydraulic characteristic in the rainy weather in the conventional storm overflow chamber. In the conventional storm overflow chamber, a water surface gradient is formed from the inflow pipe 2 toward the intercepting pipe 3 in a fine weather as shown in
As means to solve this problem, it is necessary to generate a flow which facilitates the flow of the floating debris 5 into the intercepting pipe 3 in the storm overflow chamber, and it is thus necessary to improve the conventional storm overflow chamber so as to reduce the floating debris which flow out to the public water body.
According to the present invention, a vortex flow type water surface control device for a draining device including an inflow pipe, an outflow pipe, an intercepting pipe, and a separating weir that is disposed to block the intercepting pipe and the inflow pipe from the outflow pipe is provided. In non-limiting embodiments, the vortex flow type water surface control device may include a control plate that is disposed between an opening of the inflow pipe and an opening of the intercepting pipe, where the height of the control plate is higher than at least the height of the separating weir, where the control plate is apart from the separating weir, and where the separating weir is not located behind the control plate, but is located at a side of the control plate, when the separating weir is viewed from the opening of the inflow pipe.
According to a non-limiting embodiment, the vortex flow type water surface control device for a draining device may include a guide wall that is disposed along the separating weir between the opening of the inflow pipe and the separating weir, the height of the guide wall being higher than at least the height of the separating weir.
According to another non-limiting embodiment, the vortex flow type water surface control device for a draining device may include a guide wall that is disposed between the opening of the inflow pipe and the separating weir, a bottom end of the guide wall being positioned below a top end of the separating weir, a top end of the guide wall being positioned above a pipe top of the intercepting pipe.
According to yet another non-limiting embodiment, the control plate may be located closer to the opening of the intercepting pipe than the opening of the inflow pipe.
According to a further non-limiting embodiment, a bottom end of the control plate may be higher than a bottom of the opening of the inflow pipe.
A description will now be given of an embodiment of the present invention with reference to drawings.
According to the present invention, as shown in
Since the vortex flow type water surface control device for a draining device according to the present invention has the configuration as described above, a vortex flow is generated on a rear surface (on an intercepting pipe 3 side) of the vertical control plate 6 by a flow which has passed between the vertical control plate 6 and the separating weir 1 from the inflow pipe 2 toward the intercepting pipe 3 in a rainy weather, and floating debris 5 almost entirely flow into the intercepting pipe 3 along the flow as shown in
If the quantity of the water flowing into the storm overflow chamber increases, and the water depth exceeds the height of the separating weir 1 in the storm overflow chamber, the water surface gradient is formed by an overflow over the separating weir 1 from the opening of the inflow pipe 2 toward the opening of the outflow pipe 4 as shown in
If the quantity of the water further increases, influence of a surface flow toward the outflow pipe 4 increases, most of the floating debris 5 pass over the separating weir 1, and flow out to the outflow pipe 4, and only a part thereof flows into the intercepting pipe 3, resulting in an insufficient intercepting effect.
Thus, according to another embodiment of the present invention, a guide wall 7 whose bottom end is slightly lower than the top end of the separating weir 1, and whose top end is higher than the top surface of the opening of the inflow pipe 2 and the top end of the separating weir 1 is provided between the separating weir 1 and the opening of the inflow pipe 2 such that the side surface of the guide wall 7 is almost parallel with a side surface of the vertical control plate 6, as shown in
According to this embodiment, if the water depth is above the height of the separating weir 1 in the storm overflow chamber in a rainy weather, the water surface rises in a vicinity of the guide wall 7, and the water surface gradient is not formed from the opening of the inflow pipe 2 toward the separating weir 1 as shown in
It should be noted that the present invention can be similarly applied to a conventional storm overflow chamber (water separating manhole) including an intercepting pipe 3 and an outflow pipe 4 formed on the same wall surface for a combined sewer system as shown in
Industrial Applicability
According to the vortex flow type water surface control device for a draining device according to the present invention, there is formed a vortex flow which facilitates the inflow of the floating debris 5 into the intercepting pipe 3, and the floating debris 5 flowing out to a public water body are thus reduced, which is a large benefit.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2004/011394 | 8/2/2004 | WO | 00 | 3/19/2007 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2006/013634 | 2/9/2006 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3666102 | Blanchard | May 1972 | A |
4151859 | Jakobi | May 1979 | A |
5052442 | Johannessen | Oct 1991 | A |
6641720 | Crompton et al. | Nov 2003 | B1 |
7094337 | Williams et al. | Aug 2006 | B2 |
7138048 | O'Connor et al. | Nov 2006 | B1 |
20040222159 | Peters et al. | Nov 2004 | A1 |
20050045541 | Williams et al. | Mar 2005 | A1 |
20050077248 | Stark et al. | Apr 2005 | A1 |
Number | Date | Country |
---|---|---|
2614731 | Apr 1977 | DE |
20112168 | Feb 2002 | DE |
2365448 | Feb 2002 | GB |
2380691 | Apr 2003 | GB |
9-209434 | Aug 1997 | JP |
2002-166105 | Jun 2002 | JP |
2004-027701 | Jan 2004 | JP |
2004-238833 | Aug 2004 | JP |
9417896 | Aug 1994 | WO |
Entry |
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E.P.O. Office action, mail date is Sep. 25, 2013. |
English Language Abstract of JP 2004-027701, Jan. 29, 2004. |
English Language Abstract of JP 9-209434, Aug. 12, 1997. |
English Language Abstract of JP 2004-238833, Aug. 26, 2004. |
Number | Date | Country | |
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20080023074 A1 | Jan 2008 | US |