Air intake unit for an aircraft engine and provided with an air filter and with an air filter bypass duct
10723475 ยท 2020-07-28
Assignee
Inventors
Cpc classification
F05D2260/56
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D2033/0246
PERFORMING OPERATIONS; TRANSPORTING
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
F05D2220/329
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/57
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/607
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B01D45/00
PERFORMING OPERATIONS; TRANSPORTING
F02C7/057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C7/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An air intake unit for an engine of an aircraft and having: a housing, inside which a plenum is defined, which can be connected to the engine of the aircraft; a main intake opening; an air filter which engages the main intake opening; a bypass intake opening; a shutter device, which is coupled to the bypass intake opening and has two partitions, which are mounted so as to rotate around respective rotation axes parallel to and spaced apart from one another; and an actuator, which moves the shutter device between a closed position and an open position. In the open position of the shutter device, an upper partition is arranged transversely to the wall of the housing and in a central area of the bypass intake opening, and a lower partition is arranged parallel to the wall of the housing and overlaps said wall.
Claims
1. An air intake unit for an engine of an aircraft; the intake unit comprises: a housing, inside which a plenum is defined, which can be connected to the engine of the aircraft; a main intake opening, which is obtained through a wall of the housing and through which the external air needed for the operation of the engine can be sucked into the plenum; at least one air filter, which is supported by the housing and engages the main intake opening so as to filter the external air flowing through said main intake opening; at least one bypass intake opening, which is obtained through a wall of the housing, is separate from and independent of the main intake opening and the air filter, and through which the external air needed for the operation of the engine can be sucked into the plenum; a shutter device, which is coupled to the bypass intake opening and is movable between a closed position, in which it closes the bypass intake opening, and an open position, in which it sets the passage through the bypass intake opening free; and an actuator, which moves the shutter device between the closed position and the open position; wherein the shutter device comprises two partitions, which are mounted so as to rotate around respective rotation axes parallel to and spaced apart from one another and, in the closed position, are flush with the wall of the housing so as to seamlessly connect the two ends of the wall at the opposite sides of the bypass intake opening; wherein the intake unit is configured such that: in the open position of the shutter device, an upper partition is arranged transversely to the wall of the housing and in a central area of the bypass intake opening; and in the open position of the shutter device, a lower partition is arranged parallel to the wall of the housing and overlaps said wall.
2. The air intake unit according to claim 1, wherein, in the open position of the shutter device, the lower partition is completely on the outside of the bypass intake opening.
3. The air intake unit according to claim 1, wherein, in the open position of the shutter device, the upper partition is arranged in the middle of the bypass intake opening and acts as a flow deflector, which directs the air towards the plenum.
4. The air intake unit according to claim 1, wherein, in the closed position of the shutter device, the partitions are tangent to the wall of the housing and are also tangent to one another.
5. The air intake unit according to claim 1, wherein both partitions rotate in the same direction in order to move from the closed position to the open position and vice versa.
6. The air intake unit according to claim 1, wherein the two partitions are angularly integral with one another so as to rotate together and in a synchronized manner around the corresponding rotation axes.
7. The air intake unit according to claim 1, wherein one lower partition is carried by at least one rocker arm, which is hinged so as to rotate around a first rotation axis.
8. The air intake unit according to claim 7, wherein the rocker arm comprises an outer arm, which is V-shaped and rigidly connected to the lower partition, and an inner arm, which is opposite the outer arm, relative to the first rotation axis, and mechanically connected to the actuator.
9. The air intake unit according to claim 8, wherein the actuator is a linear actuator and comprises a slider, which moves linearly and is hinged to one end of the inner arm of the rocker arm.
10. The air intake unit according to claim 7, wherein the upper partition is carried by at least one support arm, which is V-shaped and hinged so as to rotate around a second rotation axis.
11. The air intake unit according to claim 10, wherein there is provided an interconnection arm, which connects the rocker arm to the support arm, so as to make the rocker arm angularly integral with the support arm and, hence, transmit the rotation motion of the rocker arm to the support arm.
12. The air intake unit according to claim 11, wherein the interconnection arm has an adjustable length.
13. An air intake unit for an engine of an aircraft; the intake unit comprises: a housing, inside which a plenum is defined, which can be connected to the engine of the aircraft; a main intake opening, which is obtained through a wall of the housing and through which the external air needed for the operation of the engine can be sucked into the plenum; at least one air filter, which is supported by the housing and engages the main intake opening so as to filter the external air flowing through said main intake opening; at least one bypass intake opening, which is obtained through a wall of the housing, is separate from and independent of the main intake opening and the air filter, and through which the external air needed for the operation of the engine can be sucked into the plenum; a shutter device, which is coupled to the bypass intake opening and is movable between a closed position, in which it closes the bypass intake opening, and an open position, in which it sets the passage through the bypass intake opening free; and an actuator, which moves the shutter device between the closed position and the open position; wherein the shutter device comprises two partitions, which are mounted so as to rotate around respective rotation axes parallel to and spaced apart from one another and, in the closed position, are flush with the wall of the housing so as to seamlessly connect the two ends of the wall at the opposite sides of the bypass intake opening; wherein the intake unit is configured such that: in the open position of the shutter device, an upper partition is arranged transversely to the wall of the housing and in a central area of the bypass intake opening; and in the open position of the shutter device: a lower partition is arranged parallel to the wall of the housing and overlaps said wall; and the lower partition is arranged on the inside of the plenum.
14. The air intake unit according to claim 13, wherein, in the open position of the shutter device, the lower partition is arranged so as to face an inner surface of the wall of the housing.
15. The air intake unit according to claim 13, wherein, in the open position of the shutter device, the lower partition is completely on the outside of the bypass intake opening.
16. The air intake unit according to claim 13, wherein, in the open position of the shutter device, the upper partition is arranged in the middle of the bypass intake opening and acts as a flow deflector, which directs the air towards the plenum.
17. The air intake unit according to claim 13, wherein, in the closed position of the shutter device, the partitions are tangent to the wall of the housing and are also tangent to one another.
18. An air intake unit for an engine of an aircraft; the intake unit comprises: a housing, inside which a plenum is defined, which can be connected to the engine of the aircraft; a main intake opening, which is obtained through a wall of the housing and through which the external air needed for the operation of the engine can be sucked into the plenum; at least one air filter, which is supported by the housing and engages the main intake opening so as to filter the external air flowing through said main intake opening; at least one bypass intake opening, which is obtained through a wall of the housing, is separate from and independent of the main intake opening and the air filter, and through which the external air needed for the operation of the engine can be sucked into the plenum; a shutter device, which is coupled to the bypass intake opening and is movable between a closed position, in which it closes the bypass intake opening, and an open position, in which it sets the passage through the bypass intake opening free; and an actuator, which moves the shutter device between the closed position and the open position; wherein the shutter device comprises two partitions, which are mounted so as to rotate around respective rotation axes parallel to and spaced apart from one another and, in the closed position, are flush with the wall of the housing so as to seamlessly connect the two ends of the wall at the opposite sides of the bypass intake opening; wherein the intake unit is configured such that: in the open position of the shutter device, an upper partition is arranged transversely to the wall of the housing and in a central area of the bypass intake opening; and in the open position of the shutter device: a lower partition is arranged parallel to the wall of the housing and overlaps said wall; and the lower partition is arranged so as to face an inner surface of the wall of the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be described with reference to the accompanying drawings, which illustrate a non-limiting embodiment thereof, in which:
(2)
(3)
(4)
(5)
(6)
PREFERRED EMBODIMENTS OF THE INVENTION
(7) In
(8) Each turbine engine 2 comprises a tubular housing having an air inlet opening 3 at the front (through which the turbine engine 2 sucks in the external air required for its operation, i.e. external air containing oxygen required for combustion) and an air outlet opening 4 at the rear (through which the turbine engine 2 expels the exhaust gases produced by combustion). At the air inlet opening 3 of each turbine engine 2 there is an air intake unit 5 through which the air sucked by said turbine engine 2 flows.
(9) As shown in
(10) Each intake unit 5 comprises an air filter 9 that is supported by the housing 6 and engages the whole main intake opening 8 in order to filter the external air flowing through said main intake opening 8 and entering the plenum 7; in other words, the air filter 9 reproduces the shape of the main intake opening 8 so as to engage with no play the main intake opening 8 and then filter all the air passing through the main intake opening 8 and entering the plenum 7. Preferably, each air filter 9 comprises a rectangular-shaped support frame (made of aluminium, plastic material or composite material), which is fixed to the outer wall of the housing 6 and supports one or more filter material panels (for example made of cotton or other fibre fabric or non-woven fabric sandwiched between two layers of thin metal mesh that give shape and strength to said filter material).
(11) Each housing 6 also comprises a bypass intake opening 10, which is completely separate from and independent of the main intake opening 8 (thus of the air filter 9) and arranged alongside the main intake opening 8; in particular, in the embodiment illustrated in the attached figures, the bypass intake opening 10 is arranged underneath the main intake opening 8. The external air required for the operation of the turbine engine 2 can be sucked through each bypass intake opening 10; in other words, the external air required for the operation of each turbine engine 2 can enter the plenum 7 by passing through the bypass intake opening 10 and then from the plenum 7 reach the turbine engine 2. In the embodiment illustrated in the attached figures, each housing 6 comprises a single bypass intake opening 10, however according to other, not shown and perfectly equivalent embodiments, each housing 6 comprises a plurality of bypass intake openings 10 abreast of each other.
(12) Each intake unit 5 comprises a shutter device 11, which is coupled to the bypass intake opening 10 and movably mounted so that it can move between a closed position (illustrated in
(13) Lastly, each intake unit 5 comprises an actuator 12, which moves the shutter device 11 between the closed position and the open position.
(14) When each shutter device 11 is in the closed position (shown in
(15) When each shutter device 11 is in the closed position (shown in
(16) Each air intake unit 5 comprises an electronic control unit, which drives the actuator 12 to move the shutter device 11 between the closed position (shown in
(17) In addition, each electronic control unit is connected to a pressure sensor, which is arranged in the plenum 7 and measures the pressure of the intake air after it has passed through the air filter 9; when the intake air pressure measured by the pressure sensor is lower than a threshold value, the corresponding shutter device 11 is arranged and maintained by the electronic control unit in the open position (shown in
(18) Each shutter device 11 comprises an upper partition 13 and a lower partition 14, which in the closed position (shown in
(19) According to a preferred embodiment shown in the attached figures, in the closed position (shown in
(20) According to a preferred embodiment shown in the attached figures, in the open position (shown in
(21) In each shutter device 11, the lower partition 14 is carried by at least one rocker arm 18, which is hinged to the wall 17 of the housing 6 so as to rotate about the rotation axis 16 (in fact, two rocker arms 18 are preferably arranged at the opposite sides of the lower partition 14); the rocker arm 18 has an outer arm 19, which is V-shaped and rigidly connected to the lower partition 14, and an inner arm 20, which is opposite the outer arm 19, relative to the rotation axis 16, and mechanically connected to the actuator 12. In particular, the actuator 12 is a linear (pneumatic, hydraulic or electric) actuator comprising a slider 21, which moves linearly and is hinged to one end of the inner arm 20 of the rocker arm 18; in this way, the linear movement of the slider 21 of the actuator 12 causes the rotation of the rocker arm 18 about the rotation axis 16 and therefore a consequent rotation of the lower partition 14 about the rotation axis 16.
(22) In each shutter device 11, the upper partition 13 is carried by at least one support arm 22, which is V-shaped and hinged to the wall 17 of the housing 6 so as to rotate about the rotation axis 15 (in fact, two support arms 22 are preferably arranged at the opposite sides of the upper partition 13). There is provided an interconnection arm 23, which connects the rocker arm 18 (in particular, the outer arm 19 of the rocker arm 18) to the support arm 22, so as to make the rocker arm 18 angularly integral with the support arm 22 and, hence, transmit the rotary movement of the rocker arm 18 to the support arm 22. According to a preferred embodiment, the interconnection arm 23 has an adjustable (i.e. editable) length, for example through a screw system, in order to allow the adjustment, in use, of the transmission of the rotary movement of the rocker arm 18 to the support arm 22.
(23) To summarize, each actuator 12 simultaneously moves both the partitions 13 and 14 of the shutter device 11 thanks to the presence of the interconnection arm 23, which makes the two partitions 13 and 14 angularly integral with each other.
(24) According to a possible (but not limiting) embodiment, a metal grid with relatively large meshes (in the size range of one or two centimetres), which has the function of preventing the entry of birds, may be arranged at each inlet opening 9 or 10.
(25) The embodiment shown by way of example in the illustrated figures refers to a turbine engine 2, but the present invention may find advantageous application in any type of engine for an aircraft.
(26) It is important to note that each air intake unit 5 as described above may be coupled to the main engine of the helicopter 1 or to an auxiliary engine of an Auxiliary Power Unit (APU); in other words, each air intake unit 5 as described above can be used in any situation where fresh air must be drawn in from the external environment for the operation of a (main or auxiliary) engine of the helicopter 1.
(27) The embodiment shown by way of example in the illustrated figures refers to a helicopter 1, but the present invention may find advantageous application in any type of aircraft, therefore also an aeroplane.
(28) The embodiments described herein may be combined with each other without departing from the scope of protection of the present invention.
(29) The air intake unit 5 described above has many advantages.
(30) The air intake unit 5 described above allows the aircraft 1 to operate safely in very dusty areas (therefore in areas where the air near the ground is full of impurities raised by the natural wind as well as by the air currents generated by the propulsion of the aircraft 1) thanks to the presence of the air filter 9, which, if necessary, is operated (by arranging the shutter device 11 in the closed position) to filter beforehand the air sucked by the turbine engine 2.
(31) Moreover, the air intake unit 5 described above can operate for most of the flight without any performance penalization, since when the aircraft 1 is high above the ground (i.e. relatively far from the ground) the air filter is bypassed through the bypass intake opening 10 (by arranging the shutter device 11 in the open position).
(32) The shape of the shutter device 11 of the air intake unit 5 described above allows the aerodynamic penalization (i.e. increased aerodynamic resistance during forward movement) to be null when the shutter device 11 is in the closed position, and to be minimal when the shutter device 11 is in the open position. In fact, in the closed position, the two partitions 13 and 14 of the shutter device 11 seamlessly complete the wall 17 of the housing 6 (i.e. the body of the helicopter 1), whereas in the open position the lower partition 14 disappears completely inside the plenum 7, while the upper partition 13 becomes a flow deflector, which allows the air to smoothly flow into the plenum 7 and protrudes very little beyond the dimensions of the housing 6.
(33) Furthermore, the shape of the shutter device 11 makes it possible to minimize the force that must be exerted by the actuator device 12 to move the partitions 13 and 14 between the closed position and the open position.
(34) The intake unit 5 described above is adaptable to any type of helicopter, has reduced overall dimensions, and is relatively simple to install even in existing helicopters not arranged in advance for this solution (i.e. it is suitable to be used as a retrofit solution to add a new functionality to an old system).
LIST OF REFERENCE NUMBERS IN THE FIGURES
(35) 1 helicopter 2 turbine engines 3 inlet opening 4 outlet opening 5 intake unit 6 housing 7 plenum 8 main intake opening 9 air filter 10 bypass intake opening 11 shutter device 12 actuator 13 upper partition 14 lower partition 15 rotation axis 16 rotation axis 17 wall 18 rocker arm 19 outer arm 20 inner arm 21 slider 22 support arm 23 interconnection arm