Balanced rotor disc, and balancing method
09920626 ยท 2018-03-20
Assignee
Inventors
- Pascal Casaliggi (Moissy-Cramayel, FR)
- Remi Bourion (Moissy-Cramayel, FR)
- Thierry Capolungo (Moissy-Cramayel, FR)
Cpc classification
F05D2260/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/027
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49334
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
F05D2220/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/60
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
International classification
F01D5/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F15/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/66
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotor disc (1) for a turbomachine, including a radial flange (2) that includes a plurality of fastening holes (3), and a plurality of scallops (4) forming notches in the flange (2), and being separated by inter-scallop flange portions (7). The flange alternatively has, in its circumferential direction: a fastening hole (3) and an inter-scallop flange portion (7) arranged in the radial extension of the fastening hole (3), and a scallop (4), in such a way that one or more of the scallops (4.sub.7, 4.sub.8, 4.sub.9; 4.sub.2, 4.sub.5-4.sub.7, 4.sub.8-4.sub.11, 4.sub.14) has a volume greater than the volume of each of the other scallops (4.sub.1-4.sub.6, 4.sub.10-4.sub.14; 4.sub.1, 4.sub.3, 4.sub.4, 4.sub.12, 4.sub.13), and one or more of the inter-scallop flange portions (7.sub.3) has a volume less than the volume of each of the other inter-scallop flange portions (7.sub.1, 7.sub.2, 7.sub.4), in order to balance said disc (1). A turbomachine including that rotor disc and a method for balancing a turbomachine rotor disc are also disclosed.
Claims
1. A rotor disc (1) for a turbomachine, comprising a radial flange (2) that has a plurality of fastening holes (3), and a plurality of scallops (4) forming notches in the flange (2), and being separated by inter-scallop flange portions (7), the flange comprising around its circumference in an alternating arrangement: a single fastening hole (3) and an inter-scallop flange portion (7) arranged in the radial extension of the fastening hole (3), and a single scallop (4), wherein one or more of the scallops (4.sub.7, 4.sub.8, 4.sub.9; 4.sub.2, 4.sub.5-4.sub.7, 4.sub.8-4.sub.11, 4.sub.14) has a volume greater than the volume of each of the other scallops (4.sub.1-4.sub.6, 4.sub.10-4.sub.14; 4.sub.1, 4.sub.3, 4.sub.4, 4.sub.12, 4.sub.13), and one or more of the inter-scallop flange portions (7.sub.3) has a volume less than the volume of each of the other inter-scallop flange portions (7.sub.1, 7.sub.2, 7.sub.4), in order to balance said disc (1).
2. The disc (1) according to claim 1, wherein: the scallops (4) have an apex (21) on the radial axis, and all the apexes (21) of the scallops (4) are positioned in such a way as to belong to one and the same circle.
3. The disc (1) according to claim 1, wherein: the scallops having a volume greater than the volume of the other scallops are not adjacent to each other, and/or the inter-scallop flange portions having a volume less than the volume of the other inter-scallop flange portions are not adjacent to each other.
4. The disc according to claim 1, wherein the flange (2) extends toward the outside of the disc (1).
5. A turbomachine comprising a rotor, at least one disc (1) of which is in accordance with claim 1.
6. A method for balancing a turbomachine rotor disc (1) comprising a radial flange (2) that has a plurality of fastening holes (3), and a plurality of scallops (4) forming notches in the flange (2), and being separated by inter-scallop flange portions (7), characterized in that the flange alternatively has, in its circumferential direction: a single fastening hole (3) and an inter-scallop flange portion (7) arranged in the radial extension of the fastening hole (3), and a single scallop (4), the method comprising the steps: measuring (E1) the imbalance of the disc (1); machining (E3) one or more scallops (4.sub.7, 4.sub.8, 4.sub.9; 4.sub.2, 4.sub.5-4.sub.7, 4.sub.8-4.sub.11, 4.sub.14), in order for the latter (4.sub.1, 4.sub.2, 4.sub.3) to have a volume greater than the volume of each of the other scallops (4.sub.1-4.sub.6, 4.sub.10-4.sub.14; 4.sub.1, 4.sub.3, 4.sub.4, 4.sub.12, 4.sub.13), and one or more inter-scallop flange portions (7.sub.3) in order for the latter to have a volume less than each of the other inter-scallop flange portions (7.sub.1, 7.sub.2, 7.sub.4), in such a way as to balance the disc (1) with respect to the measured imbalance.
7. The method according to claim 6, comprising a step (E2) selecting the scallops and/or inter-scallop flange portions to be machined as a function of the amplitude and/or angular position of the measured imbalance.
8. The method according to claim 6, wherein: prior to the machining step, the scallops (4) have an apex (21) on the radial axis of the disc, and the step of machining the scallops (4) does not alter the position of said apexes on a radial axis of the disc (1).
Description
DESCRIPTION OF THE DRAWINGS
(1) Other features, aims and advantages of the present invention will become more apparent on reading the following detailed description, with reference to the appended drawings given by way of non-limiting example and wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION
(9) Rotor Disc
(10)
(11) The disc 1 is generally not full, and comprises a full annular outer part 15, and a hole 16 in its centre.
(12) The disc 1 has a circumference 12 capable of receiving blades.
(13) For example, the circumference 12 comprises a plurality of housings 10 for receiving blades.
(14) The disc 1 further comprises at least one flange 2. In the figures, the flange 2 is carried by a portion 13 which extends in projection along the longitudinal axis XX from the annular outer part 15 of the disc 1. The solution applies to both the upstream flange and the downstream flange of the disc 1. The flange 2 allows the fastening of the disc to adjacent parts of the rotor or of the turbomachine.
(15) The flange 2 extends circumferentially and on a radial axis. In the figures, the flange 2 extends around the circumference of the portion 13 in projection. It can however extend around any other circumference of the disc 1. In the figures, the flange 2 extends radially toward the outside of the disc 1. In a variant, the flange 2 extends radially toward the inside of the disc 1.
(16) The flange 2 comprises a plurality of fastening holes 3 (cf.
(17) The flange 2 also comprises a plurality of scallops 4. These scallops 4 form notches in the flange 2. These scallops 4 particularly serve to de-stress the holes 3 of the flange 2 and to ensure its mechanical strength. Furthermore, these scallops make it possible to obtain a saving in weight.
(18) The flange 2 alternatively has fastening holes 3 and scallops 4.
(19) The scallops 4 are themselves separated by flange portions 7, which will be described below as inter-scallop flange portions 7.
(20) The scallops 4 are therefore hollowed-out parts of the flange 2, and the inter-scallop flange portions 7 are material parts of the flange 2.
(21) As illustrated, the flange alternatively has, along its circumferential direction: a fastening hole 3 and an inter-scallop flange portion 7 arranged in the radial extension of the fastening hole 3, and a scallop 4.
(22) Thus, the fastening holes 3 are all mutually separated by a scallop 4.
(23) According to an embodiment, one or more scallops each has or have a volume greater than that of each of the other scallops. The volume of a scallop 4 is understood to mean the volume of the hollowed-out part formed by said scallop 4 in the flange 2.
(24) This results from the fact that the section of said scallop (or said scallops) in a radial plane (plane orthogonal to the longitudinal axis XX) is greater than the section of the other scallops.
(25) In other words, certain scallops each form notches of a volume greater than that of the other scallops in the flange 2.
(26) This configuration makes it possible to mechanically balance the disc 1, particularly with respect to its imbalance. As explained below, the appropriate choice of the number and/or the position and/or the volume of the scallops in question makes it possible to reduce or remove the imbalance of the disc 1.
(27) Examples are shown in diagram form in
(28) In
(29) It should be noted that the flanges having a volume greater than that of each of the other scallops are not necessarily adjacent to each other on the flange 2.
(30)
(31) Alternatively, or additionally, at least one inter-scallop flange portion has a volume less than that of each of the other inter-scallop flange portions. The term volume of inter-scallop flange portion refers to the volume of material occupied by said inter-scallop flange portion.
(32) Certain inter-scallop flange portions are therefore machined in such a way as to have a volume less than that of each of the other unmachined portions. The removal of material is for example carried out along the radial axis of the disc, substantially perpendicular to the longitudinal axis XX.
(33)
(34) According to a possible aspect, the inter-scallop flange portions having a volume less than the volume of each of the other inter-scallop flange portions are not adjacent to each other.
(35) The solution using one or more inter-scallop flange portions of volume less than the volume of each of the other flange portions makes it possible to improve the angular precision of the imbalance pick-up.
(36) As illustrated in
(37) The preservation of the position of the apexes 21 of the scallops 4 of greater volume, even after their machining, allows the latter to preserve their function of de-stressing of the flange 2 (which depends in particular on the radial position of their apex 21 with respect to the fastening holes 3).
(38) The rotor disc 1 can for example be installed in a compressor (high-pressure or low-pressure) and/or in a turbine (high-pressure or low-pressure) of a turbomachine. The proposed balancing method is particularly advantageous in an aircraft used for business aviation, which requires a precise balancing of the parts of the high-pressure turbine.
(39) Balancing Method
(40) A method (cf.
(41) One of the functions of the scallops is to de-stress the flange 2.
(42) According to a possible aspect, the scallops 4 have a rounded outline, in such a way as to maximize the flange material 2 that can be removed in the subsequent machining stage.
(43) A first step E1 consists in measuring the imbalance of the disc 1 by way of a device for measuring the imbalance of the prior art, called balancer by the person skilled in the art.
(44) The method then comprises the step E3 consisting in machining: one or more scallops, in order for the latter to have a greater volume than each of the other scallops, and/or one or more inter-scallop flange portions, in order for the latter to have a volume less than each of the other inter-scallop flange portions.
(45) The machining of the disc 1 as described makes it possible to balance the disc 1 with respect to the measured imbalance.
(46) According to a possible aspect, the method includes step E2 consisting in selecting the scallops and/or inter-scallop flange portions to be machined as a function of the amplitude and/or the angular position of the measured imbalance.
(47) The selection of the scallops and/or the inter-scallop flange portions to be machined can be effected as follows.
(48) A processing unit, integrated into the measurement device, or external, supplies, from the measurement of the imbalance and from an equivalence table, the angular position and the number of scallops to be machined. Where applicable, the processing unit also supplies the volume of the scallops to be machined.
(49) The equivalence table takes into account the parameters of the components (dimensions, positions etc.).
(50) Alternatively, or additionally, the processing unit supplies the angular position and the number of inter-scallop flange portions to be machined. Where applicable, the processing unit also supplies the volume of the inter-scallop flange portions to be machined.
(51) Prior to the machining step, the scallops 4 have an apex 21 (cf.
(52) Specifically, the scallops 4 have two functions: firstly, the scallops 4 de-stress the flange 2, and secondly the scallops 4 of greater volume combat the imbalance.
(53) The preservation of the position of the apexes 21 of the scallops 4 of greater volume, even after their machining, allows the latter to preserve their function of de-stressing the flange 2 (which depends in particular on the radial position of their apex 21 in relation to the fastening holes 3).
(54) The machining with the aim of increasing the volume of the scallops in question is therefore effected in all directions as long as it does not alter the radial position of the apex 21.
(55) In an embodiment, the disc 1 does not initially have scallops, and the latter are produced in the machining step E3.
(56) This step E3 then comprises the machining of the flange 2 to produce a sufficient number of scallops required for the balancing of the disc 1. The angular position of the scallops is fixed and determined beforehand by the position of the holes 3. Additionally, this step E3 can also comprise the machining of the inter-scallop flange portions, as mentioned previously.