Dual-circuit modular injection tube
09689313 ยท 2017-06-27
Assignee
Inventors
Cpc classification
F02C9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/228
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02C7/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/228
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23R3/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A turbomachine injection manifold assembly including a main circuit for feeding fuel to sets of injectors, and an auxiliary circuit for feeding fuel to a set of injectors. The manifold assembly also includes a double coupling presenting a first endpiece receiving one end of a transfer tube of the main circuit, a second endpiece receiving one end of a transfer tube of the auxiliary circuit, and a mounting surface with a first orifice in fluid flow communication with the first endpiece and a second orifice in fluid flow communication with the second endpiece, the mounting surface of the double coupling being suitable for connecting the double coupling to an injector of said first set of injectors.
Claims
1. An injection manifold assembly for a turbomachine, the injection manifold assembly comprising: a first set of transfer tubes connected so as to form a main circuit for feeding fuel to at least a first set of injectors and a second set of injectors; a second set of transfer tubes connected in parallel with the first set of transfer tubes so as to form an auxiliary circuit for feeding fuel to said first set of injectors; and a double coupling presenting at least one first endpiece receiving one end of a transfer tube of the main circuit, a second endpiece receiving one end of a transfer tube of the auxiliary circuit, and a mounting surface with a first orifice in fluid flow communication with the first endpiece and a second orifice in fluid flow communication with the second endpiece, said mounting surface of the double coupling being suitable for connecting the double coupling to an injector of said first set of injectors; and a single coupling presenting at least a first endpiece receiving one end of a transfer tube of the main circuit, and a mounting surface with an orifice in fluid flow communication with the first endpiece, said mounting surface of the single coupling being suitable for connecting the single coupling to an injector of said second set of injectors.
2. An injection manifold assembly according to claim 1, wherein the single coupling does not present any endpiece in fluid flow communication with the auxiliary circuit.
3. An injection manifold assembly according to claim 1, wherein the double coupling also presents a third endpiece receiving one end of a second transfer tube of the main circuit and also in fluid flow communication with the first orifice.
4. An injection manifold assembly according to claim 1, wherein said single coupling also presents a second endpiece, receiving one end of another transfer tube of the main circuit and also in fluid flow communication with the orifice in the mounting surface of the single coupling.
5. An injection manifold assembly according to claim 1, further including a feed coupling suitable for being connected to a first source of fuel and presenting at least a first endpiece receiving one end of a transfer tube of the main circuit for feeding it with fuel from said first source.
6. An injection manifold assembly according to claim 5, wherein said feed coupling also includes a mounting surface with an orifice in fluid flow communication with the first endpiece of the feed coupling, said mounting surface of the feed coupling being suitable for connecting the feed coupling to an injector of said second set of injectors for feeding it with fuel from said first source.
7. An injection manifold assembly according to claim 5, wherein said feed coupling is also suitable for being connected to a second source of fuel in parallel with the first source and also presents at least one second endpiece receiving one end of a transfer tube of the auxiliary circuit for feeding it with fuel from said second source.
8. A turbomachine combustion chamber including an injection manifold assembly comprising: a first set of transfer tubes connected so as to form a main circuit for feeding fuel to at least a first set of injectors and a second set of injectors; a second set of transfer tubes connected in parallel with the first set of transfer tubes so as to form an auxiliary circuit for feeding fuel to said first set of injectors; and a double coupling presenting at least one first endpiece receiving one end of a transfer tube of the main circuit, a second endpiece receiving one end of a transfer tube of the auxiliary circuit, and a mounting surface with a first orifice in fluid flow communication with the first endpiece and a second orifice in fluid flow communication with the second endpiece, said mounting surface of the double coupling being suitable for connecting the double coupling to an injector of said first set of injectors; and a single coupling presenting at least a first endpiece receiving one end of a transfer tube of the main circuit, and a mounting surface with an orifice in fluid flow communication with the first endpiece, said mounting surface of the single coupling being suitable for connecting the single coupling to an injector of said second set of injectors.
9. A turbomachine including a combustion chamber including an injection manifold assembly comprising: a first set of transfer tubes connected so as to form a main circuit for feeding fuel to at least a first set of injectors and a second set of injectors; a second set of transfer tubes connected in parallel with the first set of transfer tubes so as to form an auxiliary circuit for feeding fuel to said first set of injectors; and a double coupling presenting at least one first endpiece receiving one end of a transfer tube of the main circuit, a second endpiece receiving one end of a transfer tube of the auxiliary circuit, and a mounting surface with a first orifice in fluid flow communication with the first endpiece and a second orifice in fluid flow communication with the second endpiece, said mounting surface of the double coupling being suitable for connecting the double coupling to an injector of said first set of injectors; and a single coupling presenting at least a first endpiece receiving one end of a transfer tube of the main circuit, and a mounting surface with an orifice in fluid flow communication with the first endpiece, said mounting surface of the single coupling being suitable for connecting the single coupling to an injector of said second set of injectors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention can be well understood and its advantages appear better on reading the following detailed description of an embodiment given by way of non-limiting example. The description refers to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
(11) A turbomachine, and more specifically a turboshaft engine 1 is shown in
(12) In order to inject fuel into the combustion chamber 6, the combustion chamber has a plurality of injectors 100, 100 distributed all around the combustion chamber 6 and connected to sources of fuel (not shown) by an injection manifold assembly 101, as shown in
(13) The injection manifold assembly 101 is modular and comprises a plurality of transfer tubes 102 connected by couplings 103, 104, 105, 106 of different types so as to make up said first and second circuits. As shown in particular in
(14) A first coupling 103, referred to as a feed coupling, is situated in a central position in the manifold assembly 101 and is shown in detail in
(15) In addition, the feed coupling 103 also has a baseplate 409 at its base. This baseplate 409 serves not only to mount the feed coupling 103 on an outer wall of the combustion chamber 6 by means of bolts 109, but it also enables an injector 100 of the second set to be mounted with a baseplate 110 interposed between the baseplate 409 of the feed coupling 103 and the outer wall of the combustion chamber 6. The baseplate 409 has a mounting surface 410 with an orifice 411 in fluid flow communication with the first fuel inlet 405 and with said first endpieces 401 via the first cavity 407 of the feed coupling 103. Thus, this mounting surface 410 serves not only to mount an injector 100 of said second set, but it also serves to feed it with fuel coming from the first fuel source. The orifice 411 is surrounded by a local recess 413 in the mounting surface 410, suitable for receiving a C-section sealing ring 801, which may for example be made of metal, in order to prevent fuel leaking between the baseplates 409 and 110. Such a gasket 801 is shown in
(16) On either side of the feed coupling 103, the opposite ends of the transfer tubes 102 that are connected directly to the feed coupling 102 are received in respective endpieces of couplings of a second type, referred to as a double coupling 104. Such a double coupling 104 is shown in greater detail in
(17) In addition, the double coupling 104 also includes a baseplate 509 at its base. This baseplate 509 serves not only to mount the double coupling 104 on an outer wall of the combustion chamber 6 with bolts 109, but it also serves to mount an injector 100 of the first set, having a baseplate 110 interposed between the baseplate 509 of the double coupling 104 and the outer wall of the combustion chamber 6. The baseplate 509 presents a mounting surface 510 with a first orifice 511 in fluid flow communication with said first and third endpieces 501, 503 via said first cavity 507 of the double coupling 104, and also a second orifice 512 in fluid flow communication with the second endpiece 502 via a second cavity 508 of the double coupling 104. The cavities 507 and 508 may be separate from each other inside the double coupling 104 with no direct communication between each other. The mounting surface 510 thus serves not only to mount an injector 100 of said first set, but it also serves to feed it in parallel with fuel coming from the first and second sources of fuel. Each of the orifices 511 and 512 is surrounded by a local recess 513, 514 in the mounting surface 510, enabling C-section sealing gaskets 801 to be installed to prevent leaks of fuel between the baseplates 509 and 110.
(18) Beyond the double couplings 104, the first circuit is extended by transfer tubes 102 successively connected together by single couplings 105. One such single coupling 105 is shown in greater detail in
(19) The single coupling 105 also includes a baseplate 609 at its base. This baseplate 609 serves not only to mount the single coupling 105 on an outer wall of the combustion chamber 6 with bolts 109, but it also serves to mount an injector 100 of the second set, having a baseplate 110 interposed between the baseplate 609 of the single coupling 105 and the outer wall of the combustion chamber 6. The baseplate 609 presents a mounting surface 610 with an orifice 611 in fluid flow communication with said first and second endpieces 601, 603 via the cavity 607 in the single coupling 105. Thus, this mounting surface 610 serves not only to mount an injector 100 of said second set, but it also serves to feed it with fuel coming from the second source of fuel via the main circuit of the manifold assembly 101. The orifice 611 is surrounded by a local recess 613 in the mounting surface 610, enabling a C-section sealing gasket (not shown) to be installed in order to avoid fuel leaking between the baseplates 609 and 110.
(20) The injection manifold assembly 110 also has terminal single couplings 106 forming the ends of the first circuit. One such terminal single coupling 106 is shown in greater detail in
(21) It should be observed that the double couplings 104, the single couplings 105, and the terminal single couplings 106 on either side of the feed coupling 103 are not identical, but rather are symmetrical with the corresponding couplings on the opposite side. Thus, the double coupling 104 shown in
(22) In operation, when starting the engine 1, a flow of fuel is delivered only to the injectors 100 of the first set from the second source of fuel and via the second fuel inlet 406 and the second cavity 408 of the feed coupling, the transfer tubes 102 of the auxiliary circuit, and the second cavities 508 of the double couplings 104. After the engine has started, an increasing flow rate of fuel is delivered to both sets of injectors 100 and 100 from the first source of fuel via the first fuel inlet 405 and the first cavity 407 of the feed coupling 103, the transfer tubes 102 of the main circuit, the first cavities 507 of the double couplings 104, and the single couplings 105 and the terminal single couplings 106. Finally, once the turbine has reached a predetermined operating speed, each of the injectors 100 and 100 injects fuel at a substantially identical rate into the combustion chamber 6. Thus, at this predetermined speed, the flow rate delivered by the main and auxiliary circuits to each of the injectors 100 of the first set is substantially identical to the flow rate delivered by the circuit to each of the injectors 100 of the second set.
(23) Although the present invention is described with reference to a specific embodiment, it is clear that various modifications and changes can be made to these embodiments without going beyond the general ambit of the invention as defined by the claims. In addition, individual characteristics of the various embodiments mentioned may be combined in additional embodiments. Consequently, the description and the drawings could be considered in a sense that is illustrative rather than restrictive.