REDUCED SCALE RUNNER AND METHOD OF MANUFACTURING THEREOF
20210164354 · 2021-06-03
Inventors
- Renaud Guillaume (Grenoble, FR)
- Pierre-Yves Lowys (Grenoble, FR)
- François Andre (Grenoble, FR)
- Lucas Chabert (Grenoble, FR)
- Sylvain GAUDION (GRENOBLE, FR)
- Sylvain Desmarais (Grenoble, FR)
- Bernard Di Maria (Grenoble, FR)
Cpc classification
F03B3/125
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F05B2250/82
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/3069
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The invention concerns a reduced-scale model of a turbine comprising a crown (1), a band (2) and blades (3) between said band and said crown, wherein the model is a single bloc assembly of said band, said crown and said blades.
Claims
1.-15. (canceled)
16. A reduced-scale model of a turbine comprising: a crown; a band; a plurality of blades extending between the band and the crown; and wherein the band, the crown, and the blades are assembled together as a single mechanical bloc assembly.
17. The reduced-scale model according to claim 16, wherein the assembly is a mode of a pump-turbine.
18. The reduced-scale model according to claim 16, wherein: a distance (d) separating adjacent ones of the blades is less than 14 mm; and an overlap factor of the model is higher than 720°, the overlap factor being a sum of an overlap of all of the individual blades, the overlap of each blade being a maximal angle between two points of a projection of the blade in a plane perpendicular to a rotational axis of a runner.
19. The reduced-scale model according to claim 16, comprising at least one sensor, wherein the sensor is one of a pressure sensor, strain gauge, accelerometer, or displacement sensor.
20. The reduced-scale model according to claim 16, further comprising at least one of a groove, duct, or channel configured for receipt of an electrical wire therein.
21. The reduced-scale model according to claim 16, further comprising assembly lines along which different parts of the model are joined together by one of brazing, gluing, or welding.
22. The reduced-scale model according to claim 21, wherein the assembly lines comprise a thickness less than 0.5 mm.
23. The reduced-scale model according to claim 16, wherein the assembly is a model of a Francis turbine and the plurality of blades is between 13 and 19, or the assembly is a model of a pump-turbine and the plurality of blades is between 7 and 11.
24. The reduced-scale model according to claim 16, wherein the assembly is made of one of aluminum, titanium, PVC, stainless steel, or bronze.
25. A process for manufacturing a reduced-scale model of a turbine runner that comprises a crown, a band, and a plurality of blades extending between the band and the crown, the method comprising manufacturing the band, the crown, and the blades as a single bloc assembly.
26. The process according to claim 25, further comprising forming at least one of a groove, a duct, or a channel and locating an electrical wire therein.
27. The process according to claim 25, further comprising polishing and anodizing the single bloc assembly.
28. The process according to claim 25, wherein the single bloc manufacturing is one of: an investment casting process, a strong assembly process, an additive printing process, or a single bloc machining process.
29. The process according to claim 28, wherein: for the investment casting process, the model is made from aluminum or titanium; for the strong assembly process, different parts of the model are assembled by one of brazing, welding, or gluing; for the additive printing process, the model is made from plastic or metal; and for the single bloc machining process, the model is made from aluminum, PVE, stainless steel, or bronze.
30. The process according to claim 25, comprising welding or gluing different parts of the model together, positioning at least one sensor or gauge being against a surface of at least a first one of the different parts before the welding or gluing the first part with another one of the different parts.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0044]
[0045]
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DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
[0049] An example of a reduced scale model according to the invention is illustrated on
[0050] An example of a reduced scale model of a turbine comprises a circular crown 1 and a circular band 2 facing the crown. Each of them has a diameter between 10 cm and 40 cm; It is rotational symmetrical around an axis XX′ (the rotation axis of the model).
[0051] Blades 3 extend between the crown 1 and the band 2. Each blade has a curved shape or, more generally, a warped shape (which can be seen on
[0052] This reduced scale model is that of a Francis turbine. Alternatively it can be that of a pump or a pump-turbine (for simulating operations in pump mode, in which the model is used in a reversed mode of the turbine mode); in this case, the trailing edge of each blade is designed to work as a leading edge.
[0053] In view of the new operating ranges a reduced scale model according to the invention preferably includes on-board instrumentation such as pressure sensors and strain gauges to analyse the dynamic solicitation and the mechanical parameters of the structure.
[0054] One or more sensor, for example one or more pressure sensor(s) 14 and/or one or more strain gauge(s) 16 and/or more accelerometer(s) or one or more displacement sensor(s) can be positioned against the surface of the model, for example the surface of one or more blade 3. Such sensor(s) are for measuring and analyzing the mechanical response of the runner.
[0055] However, a reduced scale model according to the invention can also be used without on-board instrumentation, for performing hydraulic tests.
[0056] Grooves or passages or ducts can be formed at or in the surface of a model according to the invention in order to position one or more electrical wires therein to connect one or more pressure sensor 14 and/or strain gauge 16. For example, one or more groove(s) 7, 7a can be formed at or in the surface of one or more blade(s) 3, as illustrated on
[0057] A reduced scale model according to the invention has dimensions much smaller than those of an industrial turbine: the scale ratio is for example between 5 and 20. The diameter D.sub.1 of the circular crown 1 is for example between 200 mm and 400 mm. The diameter D.sub.2 of the circular band 2 is for example between 200 mm and 350 mm or even 400 mm. The height h (
[0058] Furthermore, a reduced scale runner (or reduced scale model), according to the present invention, is a runner implemented only for hydraulic and/or mechanical tests. In other words, a reduced scale runner is not used for electrical power production.
[0059] According to the present invention, the reduced scale model is preferably made of a single bloc and in particular a single mechanical bloc.
[0060] By “single bloc” or “single mechanical bloc”, it is meant a continuous mechanical bloc. In other words, there is no need to use bolts, screws or rivets to assemble the different parts together.
[0061] As will be discussed in more details in the next sections, a single bloc according to the present invention can be obtained via at least one of the manufacturing processes chosen among: casting process, machining process, additive process, welding process, brazing process, gluing process.
[0062] In particular, a single bloc obtained by casting, by machining or by additive process is homogeneous and continuous, and in the particular case of casting and machining can be even isotropic.
[0063] Prior art models, contrary to the reduced scale model of the present invention, can be disassembled because the means used for fastening the different parts together are reversible. Because a model according to the present invention offers a mechanical continuity between any two points, different parts of said model cannot be easily disassembled without breaking them. The absence of reversible fastening means can be easily seen when observing a model according to the invention, as can be seen for example on
[0064] Without any fastening means like bolts, or screws, or pins, or rivets, a model according to the invention is designed to correctly assess the mechanical behavior of a turbine, in particular by measuring reliable mechanical parameters like strains, and/or thrusts etc with help of one or more gauge or sensor. Even if it has neither a gauge nor a sensor, and is thus not adapted to evaluate mechanical parameters, it is nevertheless adapted to assess the hydraulic behavior of the turbine.
[0065] In particular the surface of the model offers a mechanical continuity between any two neighboring parts, especially when such neighboring parts are assembled together, preferably by one of the processes discussed below.
[0066] The tests and measurements made with such a reduced scale model are thus free of the errors affecting them when implementing reduced scale models assembled with bolts, screws, pins and/or rivets.
[0067] According to an example, the number of blades 3 is comprised between 13 and 19 for a Francis turbine and between 7 and 11 for a pump turbine, depending on the hydraulic parameters. A single bloc structure according to the invention is particularly interesting for reduced scale models having a great number of blades, for example 19, in particular because it is more difficult—if not impossible—to access to internal parts of the runner through the channels formed between two neighboring blades 3.
[0068] Depending on the number of blades 3, the distance (or opening) d (see
[0069] A reduced scale runner according to the invention can have an overlap factor higher than 600° or even higher than 720° of 860° or 1000°. Reduced scale models with a higher overlap factor, for example more than 600° or 720° are particularly interesting for pump turbine models.
[0070] The overlap factor is not scale dependent.
[0071] For each blade, the overlap is the maximal angle between two points of the blade projection in a plane perpendicular to the rotation axis of the runner.
[0072] The overlap factor of the whole runner is the sum of the overlap of all the individual blades of the runner.
[0073] In case of splitter blades (comprising pairs of long and small blades arranged periodically), the sum of the overlap of the small blade and of the overlap of the long blade is first calculated; this sum is then multiplied by the number of pairs of long and small blades.
[0074] Different processes will now be explained to manufacture a reduced scale runner according to the invention.
[0075] A first process which can be implemented for manufacturing a reduced scale runner according to the invention is an investment casting process, also known as “lost wax casting”, with help of a sacrificial pattern made of wax.
[0076] The scale model can be casted with a thin oversize, and then polished to reach an acceptable roughness, for example with a method like MMP (micro machining process) and/or it can eventually be locally machined.
[0077] Investment casting enables to manufacture a reduced scale model in full homothetic geometry with an industrial turbine, including the corner radii, the thickness of blades, the labyrinth, the crown, the band and the flange to couple the runner to the main shaft. The investment casting allows also having most of material properties in similitude with the industrial runner, for example isotropic behavior of material, continuous assembly between blades, crown and band hub etc.
[0078] Finally, the casted reduced scale model can be instrumented with sensors, for example one or more stress gage and/or pressure sensor and/or displacement sensor. One or more groove(s) or via(s) or duct(s) can be made in the model (see for example
[0079] A preferred material for implementing this process is aluminum, because of its low melting temperature. However, it is recommended to anodize the final product, obtained after investment casting. Passages or vias or ducts for introducing electrical wires therein are preferably made in the reduced scale model after investment casting, and possibly after polishing, but before anodization, so that their walls are also anodized.
[0080] Another material for implementing this process is titanium which has a high tensile strength. Furthermore, it does not need to be anodized.
[0081] A second process which can be implemented for manufacturing a reduced scale runner according to the invention is a strong assembly process.
[0082] The parts are first manufactured and then strongly assembled by different ways, for example by brazing or welding; alternatively, the different parts are glued together.
[0083] Brazing and/or gluing are generally not considered for the manufacturing of runners intended to produce electrical power. Indeed for such runners, the mechanical strength must meet specific requirements. In other words, brazing and gluing are not strong enough to make such runners resisting to mechanical forces to which it may be is exposed.
[0084] Several of these different methods can be combined for making a same reduce scaled model runner. The advantages of all these methods is that the surface of the model offers continuity between the different parts assembled together.
[0085] Concerning welding, different welding techniques can be implemented, for example manual metal arc welding or autogenous welding or electron beam welding or friction stir welding or narrow gap welding or TIG (Tungsten Inert Gas) welding. They all warrant an exact mechanical continuity.
[0086] Preferably, as illustrated on
[0089] Parts 40 and 42 can for example be two parts of the crown or of the band. Reference 42a designates a portion of a blade.
[0090] A plurality of welding paths can of course be made in order to obtain the required assembly.
[0091]
[0092] The method of assembling the reduced scale model according to the present invention can comprise the steps of:
[0093] forming a reduced scale model segment comprising a band portion, a crown portion and a blade as an integral component, such that the band portion comprises a first band joining edge and a second joining edge, the crown portion comprises a first joining edge and a second joining edge, which edges are spaced apart from the blade of the segment; and joining, for example by welding, a plurality of reduced scale model segments together at the joining edges to form the reduced scale model.
[0094] An advantage of this method for the reduced scale model according to the invention is that at least one sensor or gauge can be attached to the surface of one or more of the parts to assemble, before welding. This allows positioning at least one sensor or gauge at locations which could be difficult or impossible to reach after the model is assembled.
[0095] Brazing can notably be implemented between parts which can be positioned horizontally because of the melted metal employed for assembling the parts together. For implementing brazing it is recommended to first calculate the exact quantity of material to add, so that unnecessary material does not flow over the surface of the model, in particular along those parts along which a liquid will flow during tests performed with the model.
[0096] Preferably the clearance between the two parts to braze is between 0.1 mm and 1 mm. If it is too large (for example larger than 1 mm), there is a risk to create gaps in the final joint, which means that portions of the two parts are not well brazed. If clearance is too thin (for example thinner than 0.1 mm), there is a risk of excess brazing material flowing over the surface of the assembled parts, thus creating beads, requiring a further machining or grinding step.
[0097] The brazing material is a strip of material, for example tin or copper or silver or zinc or alloy of this material, with a thickness of 0.8 mm-1 mm. If it is aluminum an anodizing step is performed after brazing.
[0098] The final brazing joint 10 (
[0099] Gluing is easier to implement than brazing, but the assembly obtained by gluing is more fragile than by brazing. A glue material for manufacturing reduced scale models is preferably resistant over time to humidity and to mechanical constraints; preferably it is a bi-component adhesive or glue material, for example an epoxy adhesive or glue.
[0100] As an example, the glue can comprise one of the commercial glue chosen among: Loctite® EA9480 (from Henkel), Crestabond® M1-90 HV (from Scott Bader), Adekit® A155 (from Axson), Adekit® H9952 (from Axson), Duopox® AD840 (from Delo), Korapox® 565 (from Kommerling), Korapur® 840 (from Kommerling), SikaPower® 4720 (from Sika), Araldite® 2014-1 (from Huntsman), Scotch Weld® DP 490 (from 3M)
[0101] Gluing is preferably performed under controlled atmosphere, most preferably humidity controlled and a in temperature range of 5°-40° C.
[0102] The final gluing joint 12 (
[0103] An advantage of this method for the reduced scale model according to the invention is that at least one sensor or gauge can be attached to the surface of one or more of the parts before they are glued together. This allows positioning at least one sensor or gauge at locations which could be difficult or impossible to reach after the model is assembled.
[0104] An example of a detailed brazing process for manufacturing reduced scale models according to the invention comprises the following steps: [0105] the individual reduced scale parts are first manufactured, for example the crown 1, the band 2 and the blades 3 (
[0111] In any strong assembly process, passages like grooves 7, 7a or ducts 8 (
[0112] A third process which can be implemented for manufacturing a reduced scale runner according to the invention is an additive printing process.
[0113] Different additive techniques can be implemented, for example powder bed fusion, fused deposition modeling (FDM), metal additive manufacturing, CLAD additive manufacturing. Stereolithography is preferred because of the final isotropy.
[0114] A material for implementing this process is for example a plastic material or a metal, preferably a material allowing a deformation less than 0.5 mm of the trailing edge of the blades loaded during the test (this can be evaluated with help of a finite elements simulation).
[0115] The roughness of the final model is preferably less than 8 μm.
[0116] Passages grooves 7, 7a or ducts 8 (
[0117] A fourth process which can be implemented for manufacturing a reduced scale runner according to the invention is single bloc manufacturing.
[0118] According to this fourth process a small scale runner is machined from a single piece of a material, for example selected from among aluminum, PVC, stainless steel, bronze, etc.
[0119] The advantage of this process is that there is no need to assemble parts together and to add metal or glue between different parts. It is time consuming because it requires machining a material to make all parts of the runner including the blades and the ducts or channels for the wires.