Nova Patents
CA2845458C

Slinger combustor

Abstract

A slinger combustor has an annular combustor shell defining a combustion chamber having a radially inner fuel inlet for receiving a spray of fuel centrifuged by a fuel slinger. The combustion chamber has a fuel atomization zone extending radially outwardly from the fuel inlet and merging into a radially outwardly flaring expansion zone leading to a combustion zone. A plurality of nozzle air inlets are defined in the fuel atomization zone of the combustor shell. The nozzle air inlets have a nozzle axis intersecting the stream of fuel and a tangential component in a direction of rotation of the fuel slinger. A plurality of dilution holes are defined in the combustor shell and have a dilution axis intersecting the combustion zone. The dilution axis of at least some of the dilution holes has a tangential component opposite to the direction of rotation of the fuel slinger.

CA2845458C, drawing sheet 1
Sheet 1 of 6

Term

7.5 yearsleft in the term

Expires 10 March 2034.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

12 claims: 2 independent, 10 dependent

  1. 1
    CLAIMS:1. A slinger combustor for a gas turbine engine, the slinger combustor comprising: an annular combustor shell concentrically disposed about a central axis and defining an annular combustion chamber having a radially inner annular fuel inlet for receiving a spray of fuel centrifuged by a fuel slinger mounted for rotation about the central axis, the combustor shell having front and rear annular liners, a fuel atomization, a fuel atomization zone extending radially outwardly from the radially inner circumferential fuel inlet and merging into a radially outwardly flaring expansion zone leading to a combustion zone, wherein the fuel atomization zone is provided in the form of a straight radially extending sub-chamber bounded by axially facing parallel inner peripheral ring portions of the front and rear annular liners, a plurality of nozzle air inlets defined in the fuel atomization zone of the combustor shell, the nozzle air inlets comprising at least one circumferential array of nozzle air inlets in each of the inner peripheral ring portions of the front and rear liners, each nozzle air inlet having a nozzle axis intersecting the stream of fuel centrifuged by the fuel slinger upstream of the radially outwardly flaring expansion zone, the nozzle axis having a tangential component in a direction of rotation of the fuel slinger, and a plurality of dilution holes defined in the combustor shell, the dilution holes having a dilution axis intersecting the combustion zone, and wherein the dilution axis of at least some of the dilution holes has a tangential component in a circumferential direction opposite to the direction of rotation of the fuel slinger.
  2. 8
    9. A method for mixing fuel and air in an annular combustion chamber defined between front and rear liners mounted about a central axis, comprising:using a rotary fuel slinger, atomizing and spraying fuel in a radially outward direction through a radially inner annular fuel inlet of the combustion chamber, the fuel having a swirl component in a circumferential direction of the combustion chamber;- 11 CAN_DMS:\134092392\1 Date Reçue/Date Received 2020-06-23 further atomizing the fuel atomization zone by directing air jets into the flow of fuel through air jet holes defined in the front and rear liners at said radially inner annular fuel inlet, the air being injected with a swirl component in a same direction as that of the swirl component of the fuel, wherein the fuel atomization zone is provided in the form of straight radially extending sub-chamber bounded by axially facing parallel inner peripheral ring portions of the front and rear liners and injecting dilution air through dilution holes defined in the front and rear liners at a location downstream from the air jet holes, the dilution holes being oriented such that the dilution air flowing through at least one of said front and rear liners has a swirl component in a direction opposite to the swirl component of the fuel.
  3. 9
    10. The method defined in claim 9, wherein the swirl component of the dilution air injected through both the front and rear liners are opposite to the swirl component of the fuel.
  4. 12
    13. The method defined in claim 12, further comprising effusion cooling a portion of the front and rear liners downstream of the dilutions holes by injecting additional effusion air in said portion with a swirl component in a direction opposite to the swirl component of the fuel.