This is the U.S. National Stage of PCT/FR2014/051358, filed Jun. 6, 2014, which in turn claims priority to French Patent Application No. 1355647, filed Jun. 17, 2013, the entire contents of all applications are incorporated herein by reference in their entireties.
The invention relates to the general field of aeronautics. It relates to turbomachine turbine disks and more particularly methods for producing cavities for axially retaining blades borne by the disks.
A turbomachine turbine blade is composed of a disk and moving blades rotationally driven by the disk under the effect of a flow of fluid from upstream to downstream through the turbine. It may be noted that the terms “upstream” and “downstream” are to be considered with respect to a general direction of flow of fluids through the turbomachine, going from upstream to downstream.
For the mounting of blades, the disk comprises on its circumferential surface a plurality of uniformly distributed teeth, protruding radially outwards from the disk and extending between two parallel lateral surfaces of the disk, said surfaces being orthogonal to the axis of rotation of the disk. The teeth are regularly spaced apart from each other over the whole circumference of the disk. The spaces between two adjacent teeth delimit cavities in which are engaged the blades of the wheel by their respective roots, enabling a radial maintaining of the blades by form fitting.
A cavity 10 delimited by two teeth 11 is schematically represented in
The cavities are generally sloping with respect to the axis X of the disk, as is shown in
At present, given the sloping constraint of the cavities, the cavities are conventionally machined one by one, by a broaching operation. A rectilinear broach of which the section corresponds to the profile of a cavity enables a removal of material so as to form the cavities. It may be noted that the broaching operation may be replaced by a milling operation. The cavities then undergo a filleting operation at the cavity inlet and outlet. Filleting makes it possible to remove the sharp edges at the inlet and the outlet of the cavities, to avoid a concentration of mechanical stresses in these zones. To finish, a machining of the circumferential surface of the disk is carried out. The machining of the circumferential surface of the disk corresponds to the machining of the extremal parts 18 of the teeth 11.
However, the operations of machining the cavities (by broaching or milling), filleting and machining the circumferential surface of the disk require heavy investments (often several million euros) and are costly in consumables.
Furthermore, the production of cavities is long since three successive operations have to be carried out.
Moreover, in the case of two-tier disks, an example of which is illustrated in
The invention offers a solution to the aforementioned problems, by proposing a method for producing sloping cavities of a turbomachine disk, applicable to two-tier disks, and which makes it possible to do away with broaching or milling operations. In a preferred embodiment, the invention further makes it possible to carry out the three operations described previously at one time.
According to a first aspect, the invention thus essentially relates to a method for producing a plurality of cavities in a turbomachine disk, said cavities extending between a first lateral surface and a second lateral surface of a turbomachine disk, said first surface and second surface extending orthogonally to an axis of the disk.
The method comprises the following steps:
“The shape of object A is complementary to the shape of object B” is taken to mean that, subject to adequate dimensions, object A fits into object B like pieces of a puzzle. The expression “inverted shape” may also be used. It may be noted that the notion of shape is independent of the notion of dimensions. For example, Russian nesting dolls have the same shape, but are of different dimensions.
Reducing the speed of rotation to a first reduced speed, when the ring is substantially at the first surface, makes it possible to avoid a step of machining sharp edges. This makes it possible in fact to generate radiuses of curvature at the inlet of the cavities. The first period of time and the first speed are chosen as a function of the desired filleting.
It may be noted that stopping the first translation of the ring when the ring has been moved in translation beyond the second surface, notably makes it possible, in the case of a two-tier disk, to stop the displacement of the ring before it reaches the tier following that which has just been machined.
Apart from the characteristics that have just been mentioned in the preceding paragraph, the method according to the first aspect of the invention may have one or more additional characteristics among the following, considered individually or according to any technically possible combinations thereof.
According to a non-limiting embodiment, the method comprises the following step:
According to a non-limiting embodiment, the first reduced speed is zero. This embodiment is simple to implement.
According to a preferred embodiment, the method comprises a following step:
Reducing the speed of rotation to a second reduced speed, when the ring is substantially at the second surface, makes it possible to avoid a step of machining of sharp edges. This makes it possible in fact to generate radiuses of curvature at the outlet of the cavities. The second period of time and the second speed are chosen as a function of the desired filleting.
According to a non-limiting embodiment, the second reduced speed is zero. This embodiment is simple to implement.
According to a second aspect, the invention relates to a ring for producing a plurality of cavities in a turbomachine disk, comprising:
The means of circulating an electrolyte at the protrusions make it possible to improve the distribution of the electrolyte at the protrusions.
Apart from the characteristics which have just been mentioned in the preceding paragraph, the ring according to the second aspect of the invention may have one or more additional characteristics among the following, considered individually or according to any technically possible combinations thereof.
According to a preferred embodiment, the ring comprises two superimposed layers:
According to a preferred embodiment, the ring comprises an annular upper layer superimposed on the intermediate layer, comprising means of supplying with electrolyte the circular channel.
Advantageously, the ring according to the second aspect of the invention is used during the implementation of the method according to the first aspect of the invention.
According to a third aspect, the invention relates to a device for producing a plurality of cavities in a turbomachine disk, said cavities extending between a first circular lateral surface and a second circular lateral surface of a turbomachine disk, said first surface and second surface extending orthogonally to an axis of the disk, said device comprising:
Apart from the characteristics which have just been mentioned in the preceding paragraph, the device according to the third aspect of the invention may comprise means of adjusting the speed of rotation of the disk.
Advantageously, the device according to the third aspect of the invention is used to implement the method according to the first aspect of the invention.
The figures are only presented for illustrative purposes and in no way limit the invention. The figures show:
Unless stated otherwise, a same element appearing in the different figures has a single reference.
The method uses an electrochemical machining method, known as PECM (Pulsed Electrical Chemical Machining), known to those skilled in the art, the basic principles of which are given hereafter. PECM is a derivative of ECM (Electrical Chemical Machining), which is an electrochemical machining by anodic or oxidation-reduction dissolution of the material of a part. The machined shapes are obtained using a tool reproducing its inverted shape in the part by driving the tool into the part. In other words, the shapes of the tool and the part are complementary.
More precisely, with reference to
It may be noted that the tool 40 and the part 42 are always distant by a minimum range G called “working range”. The advantage of PECM compared to ECM is of reducing this working range and thus increasing the precision of the machining.
With reference to
It may be noted that
The device and the method implement a ring 55 which will be described in detail hereafter. The ring 55 plays the role of cathode and the disk 52 plays the role of anode to carry out an electrochemical machining of the cavities 50 by PECM. The ring 55 has a low thickness compared to the space E between the first surface 53 and the second surface 54, and comprises an outer periphery 56 and an inner periphery 57.
The inner periphery 57 of the ring 55 comprises a plurality of protrusions 58 complementary in shape to the cavities 50 that are to be produced, and of slightly smaller dimensions due to the working range G. Furthermore, between the protrusions 58, the inner periphery 57 has an inverted shape of the teeth 59 that are to be produced. In fact, the diameter of the outer periphery 56 is greater than the diameter of the disk 52. Thus, the patterns machined in the disk 52 are the patterns of the inner periphery 57 of the ring 55. The machining of the cavities 50 and the machining of the outer circumference of the disk 52 are thus carried out at one time.
To produce sloping cavities 50, the ring 55 is driven into the disk 52 according to a movement in translation while the disk 52 undergoes a rotation about its axis X. Thus, the relative movement of the ring 55 with respect to the disk 52 is a helical movement, as illustrated in
More precisely, the method according to a non-limiting embodiment of the invention comprises the following steps:
It may be noted that insulating and leak tight masks may be used to protect from projections of electrolyte and leakage currents all the surfaces of the disk 52 other than those concerned by the method.
With reference to
The electrolyte is brought in via the circular channel 95, which supplies the transversal channels 94, which themselves supply the micro-channels 94. This makes it possible to assure a uniform distribution and in sufficient quantity of the electrolyte at the protrusions 58.
The circular channel 95 is itself supplied via openings 96 cut out at several spots of the intermediate layer 91 and the upper layer 90.
Number | Date | Country | Kind |
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13 55647 | Jun 2013 | FR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/FR2014/051358 | 6/6/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/202862 | 12/24/2014 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3288699 | Trager et al. | Nov 1966 | A |
7462273 | Mielke | Dec 2008 | B2 |
8057645 | McGee | Nov 2011 | B2 |
20100170806 | Klopf | Jul 2010 | A1 |
Number | Date | Country |
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2 011 597 | Jan 2009 | EP |
WO 2012028830 | Mar 2012 | WO |
Entry |
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International Search Report as issued in International Patent Application No. PCT/FR2014/051358, dated Jul. 25, 2014. |
Number | Date | Country | |
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20160368071 A1 | Dec 2016 | US |