The present invention relates generally to hydroelectric turbine or pump installations. More particularly, this invention pertains to hydroelectric installations with means for enhancing the level of dissolved gas in water passing through the turbine or pump.
A significant environmental problem for many hydroelectric facilities is the water quality of discharges. Various attempts have been made to enhance the level of dissolved oxygen in discharged water of hydroelectric installations. For example, U.S. Pat. No. 5,924,842 to Beyer, James R. discloses a runner for a Francis turbine comprising a crown; a band substantially concentric with the crown; and a plurality of blades extending between crown and the band at spaced intervals along the crown, each blade fixedly secured to the crown at an inner edge and to the band at a distal outer edge, each blade having a water directing surface defined by a pressure side, an opposite facing suction side, a leading edge and a spaced apart trailing edge, at least one of the blades including: a leading edge blade portion having a rear edge in which a first slot is machined along at least a portion of the rear edge; a trailing portion having a front edge in which a second slot is machined along at least a portion of the front edge; wherein the trailing portion is fixedly secured to the leading blade portion along the front edge and the rear edge, respectively, so that the first and second channels cooperate to form an integral passage in the at least one of the blades; and means for discharging an oxygen containing gas from the integral passage to a location adjacent the trailing edge.
The objective of the mentioned state of the art is to increase the level of dissolved oxygen downstream of the turbine or pump by introducing an oxygen containing gas into the water passing through the unit. The amount of gas introduced into the water passing through the unit depends on the pressure conditions on the low-pressure side of the runner. For example when the tailwater level rises and therefore the backpressure is increased, the aeration capability of the prior art designs may become ineffective. It is common at hydropower plants that the downstream level (often referred to as tail water level) rises as more flow is passed through the turbine(s) of the hydro plant or if flow is released over an adjacent spillway. The resulting higher tail water level increases the pressure at the outlet of the turbine. In aerating turbines, the source of the oxygen containing gas is often atmospheric air in the hydro plant. As the pressure downstream of the turbine runner increases, the flow of atmospheric air is reduced or even stopped due to insufficient pressure differential.
The objective of the present invention is to increase the level of dissolved oxygen downstream of the turbine or pump over the level of dissolved oxygen achieved by state of the art when backpressure increases.
The present invention provides a runner of a hydraulic turbine or pump which is capable of maintaining high levels of dissolved oxygen when backpressure increases.
The problem is solved by a runner for a hydraulic turbine or pump, comprising a plurality of blades, each blade being defined by a pressure surface, an oppositely facing suction surface, a leading edge and a spaced apart trailing edge, at least one of the blades having a device for supplying a flow of oxygen containing gas to the trailing edge of the same blade, the device includes a gas inlet aperture, a gas passage and one or more openings in the trailing edge surface to admit gas out of the gas passage to the passing fluid during operation of the runner, the profile of the suctions side surface of the blade along a cross section through a point P1 and a point P2 is concave, the point P1 is located on the suction side surface of the trailing edge where an opening is located and point the P2 is spaced apart from the point P1 by less than 3% of the runner outlet diameter D and the point P2 is located upstream of the point P1 on a line perpendicular to the trailing edge starting at the point P1. Other favorable implementations of the invention are disclosed in the depended claims. A method for manufacturing a runner according the present invention is disclosed in the independent method claim. Other favorable implementations of the method for manufacturing are disclosed in the depended claims thereof.
The inventors have recognized that the problem can be solved by altering the geometry near the trailing edge of the runner to create a local drop in pressure on the trailing edge surface. The present invention also increases the size of the wake downstream of the trailing edge to provide a path for the airflow through the wake into the main flow. This results in significantly higher mass flow of air into the main flow at higher tail water levels where the prior art became less effective or ineffective. Combining this higher mass flow of air with the main flow results in higher dissolved oxygen levels.
The invention will hereinafter be described in conjunction with the appended drawings.
This special geometry near the runner trailing edge has not been applied in the hydro industry since it would normally result in higher dynamic loading on the runner blades due to the resulting increased strength of von Kárman vortices. The inventors have realized that this problem can however be overcome since the flow of gas through the openings at the trailing edge is mitigating the formation of the vortices.
The inventors have realized that the positive effect of the invention increases, if the profile of the suction side surface 14 between the points P1 and P2 is concave and the angle between the normal vectors N1 and N2 is at least 2 degrees. Because the profile between P1 and P2 is concave, it is clear that the vectors N1 and N2 are pointing towards each other.
The inventors disclose a method for manufacturing a runner according to the present invention, which is cost-effective and can be applied to an existing aerated runner made according to the prior art. However, the manufacturing of a runner according to the present invention is not restricted to the hereafter-disclosed method, but can be performed using any other suited known method.
The runner blade 2 in step V1 can be separate or can already be integrated in a mechanical subgroup together with other blades 2 and other parts like a hub 1, a crown 11 and/or a band 12.
Either step V1 or step V2 can comprise the application of an opening 7 to the piece of material 15 in a way that the opening 7 connects to the gas passage 5 of the blade 2 after step V2 has been accomplished. With other words the opening 7 can be applied to the piece of material 15 either before or after it has been connected to the blade 2.
The above-described embodiments of the present invention can be combined with the geometry of the trailing edge shown in
The present invention is not restricted to the use of atmospheric air for aeration of the runner but can also be beneficial when using compressed oxygen-comprising gas by reducing the required overpressure and thus saving cost of operation.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/054937 | 2/28/2019 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2019/179742 | 9/26/2019 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
1955929 | Mueller | Apr 1934 | A |
5823740 | Cybularz et al. | Oct 1998 | A |
5879130 | Beyer et al. | Mar 1999 | A |
5924842 | Beyer et al. | Jul 1999 | A |
6155783 | Beyer | Dec 2000 | A |
6524063 | Beyer | Feb 2003 | B1 |
10781788 | Arce | Sep 2020 | B2 |
20050008475 | Desy | Jan 2005 | A1 |
20150030460 | Kottilingam | Jan 2015 | A1 |
Number | Date | Country |
---|---|---|
106471245 | Mar 2017 | CN |
2011137407 | Jul 2011 | JP |
2017108120 | Jun 2017 | WO |
Number | Date | Country | |
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20210017948 A1 | Jan 2021 | US |
Number | Date | Country | |
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62697736 | Jul 2018 | US | |
62646589 | Mar 2018 | US |