CONSTANT-VOLUME COMBUSTION SYSTEM WITH SYNCHRONIZED INJECTION
20220316393 · 2022-10-06
Assignee
Inventors
- Quentin BOUYSSOU (Moissy-Cramayel, FR)
- Guillaume Alain TALIERCIO (Moissy-Cramayel, FR)
- Christophe Nicolas Henri VIGUIER (Moissy-Cramayel, FR)
- Daniel MEJIA (Moissy-Cramayel, FR)
Cpc classification
F05D2240/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C5/12
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
F02C5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A constant volume combustion system for a turbomachine comprises a plurality of combustion chambers distributed annularly about an axis, each combustion chamber comprising an inlet orifice and an outlet orifice, a selective shut-off element movable in rotation relative to the combustion chambers, the selective shut-off element comprising a shroud facing the inlet and outlet orifices of the combustion chambers. The shroud including on a first annular portion at least one intake aperture intended to cooperate with the inlet orifice of each combustion chamber during the rotation of the selective shut-off element and on a second annular portion at least one exhaust aperture intended to cooperate with the outlet orifice of each combustion chamber during the rotation of the selective shut-off element. Each combustion chamber comprises a fuel injection device whose opening and closing are synchronized by the shut-off element.
Claims
1. A constant volume combustion system for a turbomachine comprising a plurality of combustion chambers distributed annularly about an axis, each combustion chamber comprising an inlet orifice and an outlet orifice, a selective shut movable in rotation about the axis relative to the combustion chambers, the selective shut-off element comprising a shroud facing the inlet and outlet orifices of the combustion chambers, the shroud including on a first annular portion at least one intake aperture intended to cooperate with the inlet orifice of each combustion chamber during the rotation of the selective shut-off element and on a second annular portion at least one exhaust aperture intended to cooperate with the outlet orifice of each combustion chamber during the rotation of the selective shut-off element, wherein each combustion chamber comprises a fuel injection device whose opening and closing are synchronized by the shut-off element.
2. The system according to claim 1, wherein the fuel injection device comprises an injection valve present between a fuel supply circuit and a combustion chamber and a rocker arm configured to control the opening of the injection valve, the rocker arm cooperating with one or several injection cams present on the shut-off element to control the opening of the injection valve.
3. The system according to claim 2, further comprising an aerodynamic injection device configured to supply fuel to each combustion chamber in a synchronized manner via one or several injection orifices present on the shut-off element.
4. A turbomachine comprising an axial or centrifugal compressor and an axial or centripetal turbine, the turbomachine further comprising a combustion system according to claim 1, the combustion system being present between the compressor and the turbine.
5. An aircraft comprising at least one turboprop, the turboprop comprising a turbomachine according to claim 4.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DESCRIPTION OF THE EMBODIMENTS
[0017] The invention applies generally to a turbomachine comprising an axial or centrifugal compressor and an axial or centripetal turbine.
[0018]
[0019] The combustion system 1 comprises a plurality of combustion chambers, in the embodiment described here ten combustion chambers 100, numbered 1001 to 10010 in the figure, distributed annularly about an axis XX′ defining an axial direction DA. Each combustion chamber 100 is delimited by an enclosure 101, here of substantially parallelepiped shape, a closed rear bottom 101b secured to the enclosure 101 and a cylindrical ring 110 on the outer face 112 of which the enclosure 101 is fixed for example by welding, brazing, mechanical (screw-nut) connection or bonding when the enclosures 101 and the cylindrical ring 110 are made of metal material. The cylindrical ring 110 and the enclosures 101 can also be made of ceramic matrix composite (CMC) material that is to say a material formed from a carbon or ceramic fiber reinforcement densified by an at least partially ceramic matrix.
[0020] The cylindrical ring 110 forms the front bottom 101a of each combustion chamber which is located closest to the axis XX′ in a direction opposite to the rear bottom 101b along a radial direction D.sub.R. The cylindrical ring 110 includes a first series of apertures 113 each forming an inlet orifice or intake port 102 of a combustion chamber 100 and a second series of apertures 114 each forming an outlet orifice or exhaust port 103 of a combustion chamber 100 (
[0021] The combustion system 1 also comprises a selective shut-off element 200 movable in rotation about the axis XX′ relative to the combustion chambers 100. The selective shut-off element 200 comprises a shroud 210 facing the inlet and outlet orifices 102 and 103 of the combustion chambers 100. The shroud 210 is divided into a first annular portion 211 and a second annular portion 212 each extending over the entire circumference of the shroud 210 (
[0022] The combustion system 1 further comprises a fixed intake guide 300 present inside the shroud 210 of the shut-off element 200 on the side of the first portion 211 of the shut-off element and a fixed exhaust manifold 400 which extends annularly inside the shroud 210 of the selective shut-off element on the side of and along the second portion 212 of said shroud (
[0023] The selective shut-off element 200 is the only movable element rotating in the combustion system 1. In the example described here, it is driven in rotation by means of a drive shaft 233 (
[0024] In accordance with the invention, each combustion chamber 100 comprises a fuel injection device 140 whose opening and closing are synchronized by the shut-off element 200. In the example described here, each fuel injection device 140 comprises an injection valve 141 present between a fuel supply circuit 142 and a combustion chamber 100 (
[0025] The shut-off element 200 includes a plurality of injection cams 220 present here on the end of the first annular portion 211. The injection cams 220 are distributed over the outer surface of the shroud 210 of the shut-off element 200 at determined locations in order to control the injection of fuel into each combustion chamber 100 at moments synchronized with the Humphrey cycle implemented with the shut-off element 200. In other words, the injection cams 220 are placed at angular positions on the shroud 210 of the shut-off element so as to trigger the injection of fuel into a combustion chamber just before the initiation of a combustion phase therein.
[0026] The production presented here of the shut-off systems (inlet/outlet orifices) by radial apertures positioned on a cylindrical ring can also be obtained by disks pierced with axial apertures. The two disks (inlet and outlet) are then mechanically linked, one of them comprising the piloting system (cam) of the fuel injection rocker arm.
[0027] The operation of a fuel injection device 140 is illustrated in
[0028] In
[0029] The combustion can be initiated in a known manner either by a spark igniter (plug) or by a thermal gas igniter (not represented in
[0030] The system of the invention is here remarkable in that the same part, namely the rotary shut-off element, is used to control both the air openings and closings of the combustion chambers and the fuel injection therein. This ensures optimized management of the times or phases necessary for the implementation of the Humphrey cycle. In addition, the shut-off element allows pressurization of fuel in the combustion chamber without having to use an external high-pressure pump.
[0031] According to an additional characteristic of the invention, the constant volume combustion system of the invention further comprises an aerodynamic injection device configured to supply fuel to each combustion chamber in a synchronized manner via one or several injection orifices present on the shut-off element. More specifically, as illustrated in
[0032]
[0033] In this position, the circuit 161 is controlled to deliver an aerodynamic fuel jet 170 into the combustion chamber 100 via the injection orifice 162. The aerodynamic injection consists in injecting an air/fuel mixture into the combustion chamber. The speed of the air admitted into the combustion chamber allows atomizing the injected fuel.
[0034] In
[0035] In the example described above, the injection device uses a rocker arm and an injection valve for the direct fuel injection. However, other injection devices such as an electric injector with a solenoid valve, for example, can be used. In this case, the shut-off element comprises means for controlling the activation of the solenoid valve according to its angular position. In general, any injection device able to be synchronized with the shut-off element can be used.
[0036] In the system presented here, it is entirely conceivable to provide the shut-off element with several cam tracks making it possible to choose a determined fuel distribution sequence according to the operating needs, on the same principle as the variable valve timing system of a piston engine. In this case, the rocker arm will “read” either of the tracks of the cam system defining the injection sequence.