The invention relates to the field of hydropower industry.
Francis runner erosion is often observed in the blade-band (or blade-crown) fillet.
Each of these erosion zones is located in a critical area of stress peak. It is difficult to repair them at site without increasing residual stress and risking runner crack.
There is thus a problem of finding a method and/or a device to repair such zones.
The invention first concerns a local blade extension for fixing to the trailing edge of a blade and to either the band or the crown or the hub of a hydraulic turbine, comprising:
The invention further concerns a hydraulic turbine comprising a runner crown or a hub, possibly a band, and blades fixed to said crown or hub, or between said band and said crown or hub, and to be actuated in rotation around an axis of rotation, each blade comprising:
The sharp ridge line avoids or reduces the Von Karman vortices that are involved in the cavitation erosion.
A local blade extension according to the invention can comprise:
The invention further concerns a hydraulic turbine comprising a runner crown or a hub, possibly a band and blades fixed to said crown or said hub, or between said band and said crown, and to be actuated in rotation around an axis of rotation, each blade comprising:
The lateral sides of said at least one local extension preferably have a shape which follows the flow lines along said blade when the turbine is operated in water.
Said turbine is for example of the Francis or Kaplan or diagonal flow type or is a pump-turbine.
The invention also concerns a method for improving the performances of a hydraulic turbine comprising a runner crown or a hub, possibly a band, and blades fixed to said crown or hub, or between said band and said crown, and to be actuated in rotation around an axis of rotation, each blade comprising a leading edge and a trailing edge, said method comprising fixing at least one local extension according to the invention to the trailing edge of the blade and to either the band or the crown or the hub of said runner.
The invention further concerns a method for improving the performances of a hydraulic turbine comprising a runner crown or a hub, possibly a band, and blades fixed to said crown or hub, or between said band or crown, and to be actuated in rotation around an axis of rotation, each blade comprising a leading edge and a trailing edge, said method comprising fixing at least one local extension to the trailing edge of the blade via a first contact surface, and to either said crown or hub, or to said band, via a second contact surface, said local extension having two lateral sides joining at a ridge line.
A method according to the invention can comprise fixing two local extensions to the trailing edge of each blade, one local extension being fixed to the band and the other one to the crown or the hub of said runner.
In a method according to the invention said turbine is for example of the Francis or Kaplan or diagonal flow type or is a pump-turbine.
A first example of a blade local extension 20 according to the invention will be explained in connection with
This local extension has a first contact surface with the blade, delimited by a first line of contact 181 with the blade 2, close to its trailing edge 10 and a second contact surface with the runner band 6, and possibly with the band fillet (not shown of this figure), delimited by second line of contact 182. Both lines form together a contour or an outline of the local extension.
Instead of a squared shaped trailing edge whose thickness e (see
The local extension has two lateral sides 241, 242, joining at a ridge line 22. These two lateral sides 241, 242, have a shape which follows the flow lines 28, 29. Each of said lateral sides 241, 242, extends between a portion of the first line of contact 181, a portion of said second line of contact 182 and said trailing edge 22. The shape of the local extension, in particular said lateral sides and said ridge line, can be tested or measured and/or calculated in order to avoid or reduce Von Karman vortices.
Von Karman vortices are generated by a fluid flowing along a profile having a trailing edge. When the fluid leaves said trailing edge, it turns into a wake that organizes itself into a series of vortices. These vortices are organized symmetrically along the profile axis.
In the present application to hydraulic turbines, the inventors have evidenced that the amplitude of the von Karman vortices is linked to the thickness of the trailing edge 10 of the blade and that these vortices are reduced if the thickness of the trailing edge is reduced. Ultimately, if said thickness is smoothly reduced to 0, smoothly enough to avoid flow separation, no vortices appears.
To test a local blade extension according to the invention an experimental setup can be implemented and computer simulations (Computational fluid dynamics, CFD) can be performed as disclosed for example in P. Ausoni et al. in “Karman vortex shedding in the wake of a 2D hydrofoil: measurement and numerical simulation”, IAHR Int. Meeting of WG on Cavitation and Dynamic Problems in Hydraulic Machinery and Systems, Barcelona, 28-30 Jun. 2006; in particular, flow induced vibrations can be measured with help of an accelerometer and a laser vibrometer. It is thus possible to ensure that the von Karman phenomenon is reduced or has disappeared thanks to a local extension according to the invention. The shape of a local extension according to the invention can be adapted according to the above mentioned tests and simulations in order to reach the desired degree of reduction of von Karman phenomenon.
In the example of
The ridge line 22, from its top 22s1 (against the blade 2) to its bottom 22s2 (against the band 6) is curved. In some embodiments it has, starting from its top 22s1, a concave shape and then, a convex shape which terminates at the bottom 22s2. Alternatively, in this or in other embodiments, it can have, starting from its top 22s1, a convex shape and then, a concave shape which terminates at the bottom 22s2. As other possibility, it can have a concave shape from its top 22s1 to its bottom 22s2.
On each of
The local extension illustrated on the
Alternatively, a local extension 20 according to the invention can also have an asymmetrical shape, as illustrated on
Another example of asymmetrical local extension 20 according to the invention is shown on
A local extension according to the invention is fixed with respect to both the blade and the blade to band (or blade to crown) fillet and/or the band (or the crown). A deformation of the local extension is possible with respect to the blade or the runner band, preferably without applying a significant load to the band and/or to the blade.
For a runner of 6 m diameter, the local extension 20 has for example the following dimensions:
For runners with larger or smaller or larger diameters, these ranges can be adapted in a homothetic way.
A local extension 20 according to the invention can be made in resin, for example epoxy resin or in a composite or plastic material; other possible materials are glass fibers or carbon fibers mixed with an epoxy resin. All these materials allow a deformation of this local extension with respect to both the band and the blade; they also avoid any welding of the local extension on the band or crown and the blade. On
A local extension according to the invention can be pre-shaped to have all the attributes normally achieved after securing it against the blade and the runner band.
It can be fabricated based on 3D printing technologies or additive techniques. It can then be assembled with the blade and the band and/or the band fillet.
The above description can be applied to a blade local extension 20 in contact with a crown.
One or more local extension(s) 20 as described above can be fixed, for example by gluing, to a blade and the crown (or the hub) or the band of an existing turbine runner, for example of the type disclosed above in connection with
Number | Date | Country | Kind |
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19305070.5 | Jan 2019 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2020/051097 | 1/17/2020 | WO | 00 |