The application relates generally to gas turbine engines and, more particularly, to inlets for turbofan engines.
The leading edge of a fan blade is generally the thinnest portion of the fan blade, and the area of the blade most exposed to foreign object impact. The tip section of the blade leading edge, being the least structurally supported area of the blade, is generally most at risk of damage, for example due to foreign object damage (FOD).
Although the inlet of a turbofan engine may be provided with a reduced diameter rounded throat, which may shield the blade tips from FOD, the minimum throat diameter is limited by mass flow constraints, which prevent its restriction beyond a certain choke limit. Such limit may prevent the throat from being sized to adequately protect the blade tips. Accordingly, it is generally necessary to increase the thickness of the blade tips to meet the required foreign object damage requirements. Increasing the thickness of the blade tips typically leads to significant losses in fan efficiency, as the tips are usually critical regions of the blades from an aerodynamic perspective.
In one aspect, there is provided a turbofan engine, the engine comprising: a propulsive fan; and an inlet upstream of the fan having an axially extending central longitudinal axis, the inlet including an inlet wall surrounding an inlet flow path, the inlet wall extending axially from an upstream end to a downstream end adjacent the fan, the inlet wall having a shape defining a plurality of teeth circumferentially spaced around the inlet, the teeth extending axially, the teeth projecting radially inwardly toward the central longitudinal axis, a central portion of the inlet flow path having a cross-sectional dimension measured diametrically between opposed ones of the teeth, the cross-sectional dimension varying along the axial direction, the central portion defining a geometric throat at a minimum value of the cross-sectional dimension, the inlet wall shaped so that the geometric throat is axially spaced from the upstream end and the downstream end.
In another aspect, there is provided a gas turbine engine comprising: a rotor including an array of circumferentially spaced blades configured for rotation; and an annular inlet including an axially extending wall having a central longitudinal axis, the wall having an upstream end located upstream of the blades, a downstream portion surrounding the blades in proximity of tips of the blades, and an inlet wall portion extending axially from the upstream end to the downstream portion, the inlet wall portion defining an inlet flow path for directing air to the fan, the inlet wall portion having a shape defining a plurality of teeth circumferentially spaced around the inlet, the teeth extending axially, the teeth projecting radially inwardly toward the central longitudinal axis, a central portion of the inlet flow path having a cross-sectional dimension measured diametrically between opposed ones of the teeth, the cross-sectional dimension varying along the axial direction, the central portion defining a geometric throat at a minimum value of the cross-sectional dimension, the inlet wall shaped so that the geometric throat is axially spaced from the upstream end and the blades.
In a further aspect, there is provided a method of shielding tips of fan blades of a gas turbine engine from impact by an object having a predetermined minimum dimension, the method comprising: determining a required open cross-sectional area in an air inlet located upstream of the fan blades based on flow characteristics of the engine, the air inlet being defined by an inlet wall surrounding a flow path communicating with the fan blades; determining a reference circle having a cross-sectional area corresponding to the required open cross-sectional area; offsetting a circumferential part of the inlet wall radially inwardly with respect to the reference circle to define a plurality of circumferentially spaced apart teeth protruding into the reference circle; offsetting the remaining circumferential part of the inlet wall radially outwardly with respect to the reference circle to define a plurality of circumferentially spaced apart valleys alternating with the teeth and extending out of the reference circle; wherein the teeth are defined spaced apart by a circumferential distance smaller than the predetermined minimum dimension; and wherein the teeth and valleys are sized so that a cross-sectional area of a lobed area surrounded by the inlet wall corresponds to the required open cross-sectional area.
Reference is now made to the accompanying figures in which:
The fan 12 has at least one rotor 20, the rotor 20 including an array of circumferentially spaced blades 22 configured for rotation about a central longitudinal axis 11 of the engine 10. The engine 10 has an inlet 24 directing the ambient air to the fan 12. The inlet 24 generally includes an annular inlet lip 26 and an inner wall 28.
Referring to
In the embodiment shown, the inlet 24 is defined by a casing including an outer wall 30 surrounding the inner wall 28, the inner and outer walls 28, 30 being connected along the inlet lip 26. The inner wall 28 includes an inlet wall portion or inlet wall 32 located upstream of the fan blades 22, and a downstream portion 34 extending from the inlet wall portion 32. The downstream portion 34 surrounds the fan blades 22 so that the fan blade tips 36 are located in proximity of the inner wall 28, and defines the flow path through which the fan blades 22 rotate. The inlet wall portion 32 defines and surrounds the inlet flow path through which the air passes to reach the fan blades 22. The inlet wall portion 32 thus has an upstream end 38 at the inlet lip 26 and a downstream end 40 at the transition with the downstream portion 34.
The inlet wall or inlet wall portion 32 is shaped to define a plurality of teeth 42 circumferentially spaced around the inlet 24, which in a particular embodiment are regularly spaced apart around its circumference. It can be seen that the teeth 42 extend axially along a length L, from the upstream end 38 to the downstream end 40 of the inlet wall portion 32. The teeth 42 projecting radially inwardly toward the central longitudinal axis 13. The radially innermost point of the teeth 42 surround a central tooth-free portion 25 of the inlet flow path, corresponding to the central portion of the inlet flow path where a foreign object too large to penetrate between the teeth 42 can be ingested. The central portion 25 (in which a nose cone may extend) has a cross-sectional dimension 2r measured diametrically between opposed teeth 42, with r being defined as the radial distance between the radially innermost point of the teeth 42 and the central longitudinal axis 13. The cross-sectional dimension 2r varies along the axial direction. The geometric throat 44 of the inlet 24, defined at the axial location where the cross-sectional dimension 2r is smallest, is located at an intermediate position between the upstream end 38 and the downstream end 40 of the inlet wall portion 32, such that the geometric throat 44 is axially spaced from the upstream and downstream ends 38, 40.
The space between the adjacent teeth 42 defines a plurality of spaced apart valleys 46 alternating with the teeth 42. The cross-section of the flow path surrounded by the inlet wall portion 32 has a lobed shape, including the central portion 25 and the cross-section of the valleys 46 defined between the teeth 42. The cross-sectional area of the inlet flow path surrounded by the inlet wall portion 32 also varies along the axial direction. The aerodynamic throat 45 is defined a minimum value of this cross-sectional area. In a particular embodiment, the inlet wall portion 32 is shaped so that the geometric throat 44 is axially spaced from the aerodynamic throat 45. In a particular embodiment, the use of the teeth 42 and valleys 46 thus allows to decouple the position of the geometric and aerodynamic throats 44, 45, which may provide increased flexibility in the design of the inlet 24.
The teeth 42 have a radially defined height h, defined as the radial distance between the radially innermost point of the teeth 42 and the radially outermost point of the valleys 46. In the embodiment shown, the height h increases from a minimum, in a particular embodiment 0, at the inlet lip 26 to a maximum, and then decreases from the maximum to a minimum, in a particular embodiment 0, at the downstream end 40 of the inlet wall portion 32. In a particular embodiment, the maximum height h is defined at the geometric throat 44.
As mentioned above, turbofan inlets typically have a shape (circular, partly circular with flattened section, or other smooth or rounded shape, i.e. without teeth) with a reduced diameter at the geometric throat 44 (which in the prior art also corresponds to the aerodynamic throat 45).
In a particular embodiment, the fan blade tips 36 are thus shielded from impact by foreign objects in accordance with the following. The required open cross-sectional area in the inlet 24 (e.g. at the aerodynamic throat 45) is determined based on flow characteristics of the engine 10, and a reference circle having an area corresponding to the required open cross-sectional area is determined. A circumferential part of the inlet wall portion 32 is offset radially inwardly with respect to the reference circle to define the teeth 42 protruding into the reference circle, and the remaining circumferential part of the inlet wall is offset radially outwardly with respect to the circumference to define the valleys 46 extending out of the reference circle. The teeth 42 and valleys 46 are sized to maintain the required open cross-sectional area, i.e. to surround an area equivalent to that of the reference circle.
Accordingly, in a particular embodiment and as illustrated by
Referring back to
For example, as shown in
In a particular embodiment, the axial inclination of the teeth 42 blocks a direct line of sight between adjacent teeth 42 along a flow direction of the flow path. Such a configuration may protect the fan blade tips 36 from impact from smaller foreign objects (e.g. ice, hail) small enough to penetrate between adjacent teeth 42, by deflecting the foreign objects or breaking them into smaller particles as they impact the side walls between the teeth 42. In a particular embodiment, such a configuration may also advantageously generate a pre-swirl in the air reaching the fan blade tips 36, which may improve the efficiency of the fan 12. In a particular embodiment, such a configuration may also reduce the noise generated by the fan 12 and engine 10.
Referring back to
In a particular embodiment and with reference to
In the embodiment shown in
The angle Φ may vary across the axial length L of the teeth 42; in a particular embodiment, this may improve the ability to trap soft foreign objects between the teeth 42.
As discussed, the configuration of the inlet 24 may be advantageous when compared to the prior art rounded inlet. In some embodiments, the configuration of the inlet 24 and particularly of the inlet wall portion 32 may allow increased shielding against foreign object damage at the fan blade tips 36 without reducing the open cross-sectional area at the throat. In some embodiments, the configuration of the inlet wall portion 32 may allow increased shielding against foreign object damage at the fan blade tips 36 without reducing the open cross-sectional area along the axial length L of the inlet wall portion 32. In some embodiments, the teeth 42 are inclined and/or curved to block a direct line of sight to the fan blade tips 36 for objects smaller than the distance between the teeth 42. In some embodiments, the teeth 42 are inclined and/or curved to generate pre-swirl in the air reaching the fan blades 22, which may improve performance of the fan 12. In some embodiments the teeth 42 shielding the blade tips 36 of the fan 12 reduce upstream noise transmission and quiet the engine 10.
The above description is meant to be exemplary only, and one skilled in the art will recognize that changes may be made to the embodiments described without departing from the scope of the invention disclosed. Modifications which fall within the scope of the present invention will be apparent to those skilled in the art, in light of a review of this disclosure, and such modifications are intended to fall within the appended claims.
Number | Name | Date | Kind |
---|---|---|---|
3333794 | Lewis | Aug 1967 | A |
3610262 | Wise et al. | Oct 1971 | A |
3819008 | Evans et al. | Jun 1974 | A |
3937590 | Mani | Feb 1976 | A |
4076454 | Wennerstrom | Feb 1978 | A |
4104002 | Ehrich | Aug 1978 | A |
4254619 | Giffin et al. | Mar 1981 | A |
4354346 | Wooding | Oct 1982 | A |
4354804 | Cruzen | Oct 1982 | A |
4844692 | Minkkinen et al. | Jul 1989 | A |
5275531 | Roberts | Jan 1994 | A |
5365731 | Nikkanen et al. | Nov 1994 | A |
5474417 | Privett et al. | Dec 1995 | A |
5489186 | Yapp et al. | Feb 1996 | A |
5607284 | Byrne et al. | Mar 1997 | A |
5628622 | Thore et al. | May 1997 | A |
5762470 | Gelmedov et al. | Jun 1998 | A |
6179551 | Sathianathan et al. | Jan 2001 | B1 |
6227794 | Wojtyczka et al. | May 2001 | B1 |
6508624 | Nadeau et al. | Jan 2003 | B2 |
6514039 | Hand | Feb 2003 | B1 |
6540478 | Fiala et al. | Apr 2003 | B2 |
6655632 | Gupta et al. | Dec 2003 | B1 |
7118331 | Shahpar | Oct 2006 | B2 |
7444802 | Parry | Nov 2008 | B2 |
7665964 | Taylor et al. | Feb 2010 | B2 |
7797944 | Morford | Sep 2010 | B2 |
7861823 | Prasad | Jan 2011 | B2 |
7914251 | Pool et al. | Mar 2011 | B2 |
8046915 | Xie et al. | Nov 2011 | B2 |
8186942 | Haas | May 2012 | B2 |
8366047 | Euvino, Jr. et al. | Feb 2013 | B2 |
8403624 | Xie et al. | Mar 2013 | B2 |
8461713 | Sammy | Jun 2013 | B2 |
8636464 | Bottome | Jan 2014 | B2 |
8756909 | Avery | Jun 2014 | B2 |
20110164967 | Elorza Gomez et al. | Jul 2011 | A1 |
20120087787 | Brown | Apr 2012 | A1 |
20120240594 | Shamara | Sep 2012 | A1 |
20120263587 | Hergt et al. | Oct 2012 | A1 |
20130045370 | Aho et al. | Feb 2013 | A1 |
20130153456 | Zhu et al. | Jun 2013 | A1 |
20130202424 | Lussier et al. | Aug 2013 | A1 |
20140010638 | Perrot et al. | Jan 2014 | A1 |
20140030071 | Leslie et al. | Jan 2014 | A1 |
20140286768 | Boniface et al. | Sep 2014 | A1 |
20150260051 | Gallagher et al. | Sep 2015 | A1 |
20160084162 | Abrari et al. | Mar 2016 | A1 |
20160084265 | Yu et al. | Mar 2016 | A1 |
20160312618 | Macchia | Oct 2016 | A1 |
20160312641 | Macchia | Oct 2016 | A1 |
20170145840 | DiMare et al. | May 2017 | A1 |
20170145959 | Baralon | May 2017 | A1 |
20170147741 | DiMare et al. | May 2017 | A1 |
20170152861 | Japikse | Jun 2017 | A1 |
20170248156 | Parker et al. | Aug 2017 | A1 |
Number | Date | Country |
---|---|---|
101922312 | Dec 2010 | CN |
102012003902 | Jun 2013 | DE |
1956247 | Aug 2008 | EP |
623142 | May 1949 | GB |
2405184 | Feb 2005 | GB |
2000095195 | Apr 2000 | JP |
9809066 | Mar 1998 | WO |
02029224 | Apr 2002 | WO |
0229224 | Apr 2002 | WO |
20140023891 | Feb 2014 | WO |
Number | Date | Country | |
---|---|---|---|
20160084162 A1 | Mar 2016 | US |