The present invention relates to the design of an aerating system inside the runner of a hydraulic turbine that increases the dissolved oxygen level contained in the water circulating through the hydraulic turbine.
It has been observed in the headwater of hydraulic reservoirs in hydro plants, especially in warm climates and in particular with hydraulic reservoirs of more than 15 m deep, that stratification of the headwater in the hydraulic reservoirs occurs, which originates a low dissolved oxygen level in the water. In particular, when the dissolved oxygen level in the water is below 5 mg/l, the aquatic life is directly impacted and the stress level of most fish increases dramatically. In such conditions, air is injected in the water passages of the hydraulic turbine of the hydro plant in order to increase the dissolved oxygen level contained in the water.
There are several techniques already known in the state of the art for injecting air in the water passages of a hydraulic turbine: however, each technique has a limited capacity to inject air in the hydraulic turbine, therefore leading to a different dissolved oxygen enhancement in the water. Furthermore, each of these techniques impacts the water pressure profile and the flow velocity streamlines inside the hydraulic turbine in a different way, which has an effect on turbine performances and characteristics.
Therefore, the existing solutions known in the state of the art injecting air in the water passages of a hydraulic turbine have limited air injection capability and have a high impact on the turbine performance.
The present invention is directed towards improving the above-mentioned existing limitations in the state of the art.
The present invention relates to the design of an aerating system inside the runner of a hydraulic turbine that increases in an efficient way the dissolved oxygen level contained in the water circulating through the hydraulic turbine, minimizing the impact on the turbine performance.
In particular, in an embodiment, the aerating system of the invention comprises a plurality of hydrofoils located in the inter-blade canals of the water passage of the hydraulic turbine, these inter-blade canals being used for the air admission in the water flow, thus increasing the dissolved oxygen level contained in the water circulating through the hydraulic turbine.
The foregoing objects and many of the attendant advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description when taken in conjunction with the accompanying drawing, wherein.
The present invention relates to an aerating system 100 in the runner 10 of a hydraulic turbine. The aerating system 100 of the invention comprises a plurality of hydrofoils 12 located in the inter-blade canals 11 of the water passage of the hydraulic turbine, these inter-blade canals 11 being used for the air admission in the water flow, thus increasing the dissolved oxygen level contained in the water circulating through the hydraulic turbine. The aerating system 100 of the invention is shown in
The hydrofoils 12 of the aerating system 100 of the invention are located inside the inter-blades canals 11 of the runner 10. Each hydrofoil 12 is connected to the pressure side 101 of the inter-blade canals 11 or to the suction side 102 of the inter-blade canals 11 or to both sides 101 and 102, of the inter-blade canals 11. According to the invention, it is necessary that at least one of the blades 2 of the runner 10 that is in contact with the hydrofoil 12 comprises an aerating canal 20 to deliver air to the hydrofoil 12. This canal 20 can either connect an air inlet at the runner crown or the runner band to the hydrofoil. The profile of the hydrofoil 12 of the invention is non-axis symmetrical. The hydrofoil 12 can be made from two plates 13 and 14 with a free passage in between, or can be made from one plate having aerating canals inside to allow air admission at the hydrofoil 12 trailing edge or at one of its sides.
The hydrofoil 12 is located inside the inter-blades canal 11 where the water flow conditions best optimize the natural air admission and dissolved oxygen enhancement, for the turbine operating point.
It is possible to use one or several hydrofoils 12 in a turbine runner 10. It is possible to use the same hydraulic profile for all the hydrofoils 12 or several different hydraulic profiles. It is possible to locate all the hydrofoils 12 at the same elevation inside the inter-blades canal 11 or at different elevations depending of the expected characteristics. It is possible to use one or several hydrofoils 12 at different elevation in a same inter-blades canal 11. All these characteristics configure the different embodiments of the system of the invention.
In an embodiment, the chord of the hydrofoil is longer on the side where it connects to the aerating canal 20 and its length decreases through the inter-blade canal 11 in order to minimize friction losses.
The proposed solution according to the invention results in a distributed aerating system 100 that can be located exactly where the air admission is the most efficient for the considered operating condition of the hydraulic turbine. The outlet of the runner 10 is an appropriate location that allows good mixing between air and water; furthermore, the air admission system efficiency increases when the water pressure at the injection location is low. The pressure at the runner outlet varies in azimuth from the suction side 102 of the inter-blades canals 11 to the pressure side 101 of the inter-blade canals 11 and in the meridian view from the band side to the crown side. The proposed aerating system 100 is the only one that allows air admission in the inter-blades canals 11, from any optimized location on the suction side 102 to any optimized location on the pressure side 101.
The proposed design is an appropriate solution which satisfies the dissolved oxygen enhancement market demands at present. It mainly concerns Francis turbines but it could also be considered for Propeller turbines.
Although the present invention has been fully described in connection with preferred embodiments, it is evident that modifications may be introduced within the scope thereof, not considering this as limited by these embodiments, but by the contents of the following claims.
Number | Date | Country | Kind |
---|---|---|---|
13290283 | Nov 2013 | EP | regional |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2014/073138 | 10/28/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/071094 | 5/21/2015 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
2622 | Woodward | May 1842 | A |
20456 | Tyler | Jun 1858 | A |
31961 | Dripps | Apr 1861 | A |
39783 | Symonds | Sep 1863 | A |
117193 | Mooney | Jul 1871 | A |
146068 | Hamilton | Dec 1873 | A |
1509653 | Kaplan | Sep 1924 | A |
1514293 | Lawaczeck | Nov 1924 | A |
1529456 | White | Mar 1925 | A |
1942995 | Biggs | Jan 1934 | A |
2772863 | Harney | Dec 1956 | A |
3797965 | Tonooka | Mar 1974 | A |
3918627 | Kawano | Nov 1975 | A |
4158525 | Kawase et al. | Jun 1979 | A |
4412779 | Tsunoda et al. | Nov 1983 | A |
4780051 | Fisher, Jr. | Oct 1988 | A |
5879130 | Beyer | Mar 1999 | A |
5896657 | Beyer | Apr 1999 | A |
6135716 | Billdal | Oct 2000 | A |
6155783 | Beyer | Dec 2000 | A |
6524063 | Beyer | Feb 2003 | B1 |
7195460 | Bazin | Mar 2007 | B2 |
9175662 | Bouvet | Nov 2015 | B2 |
20040265117 | Desy et al. | Dec 2004 | A1 |
20050242451 | Demers et al. | Nov 2005 | A1 |
20060115357 | Coulson | Jun 2006 | A1 |
20110221198 | Evans | Sep 2011 | A1 |
20150192101 | Rossi | Jul 2015 | A1 |
20150285207 | De Colombel | Oct 2015 | A1 |
20160076508 | Bornard | Mar 2016 | A1 |
20160084216 | Bornard | Mar 2016 | A1 |
Number | Date | Country |
---|---|---|
2436670 | Feb 2005 | CA |
201071784 | Jun 2008 | CN |
102245893 | Nov 2011 | CN |
10122524 | Aug 2002 | DE |
06185445 | Jul 1994 | JP |
2166121 | Apr 2001 | RU |
2008076630 | Jun 2008 | WO |
Entry |
---|
Unofficial English Translation of Chinese Office Action issued in connection with corresponding CN Application No. 201480062340.5 dated Apr. 5, 2017. |
International Search Report and Written Opinion issued in connection with corresponding application PCT/US2014/073138 dated Feb. 4, 2015. |
Unofficial English Translation of Russian Office Action issued in connection with corresponding RU Application No. 2016117848 dated Jul. 9, 2018. |
Number | Date | Country | |
---|---|---|---|
20160327012 A1 | Nov 2016 | US |