On an aircraft, a nacelle is used to house an engine and a thrust reverser which can be of the cascade or pivoting type, among other types.
A main jet stream F1 flows through the nacelle 22 from an approximate right-to-left direction in
The contour/shape of the flow channel 53 has a significant impact on operational parameters. For example, it is generally desirable to have a smooth flow line 61. However, the cavity 62 has been shown to contribute to total pressure losses, due at least in part to secondary flows recirculating behind the blocker door 56. The pressure losses lead to degraded performance in terms of, e.g., specific fuel consumption (SFC).
The following presents a simplified summary in order to provide a basic understanding of some aspects of the disclosure. The summary is not an extensive overview of the disclosure. It is neither intended to identify key or critical elements of the disclosure nor to delineate the scope of the disclosure. The following summary merely presents some concepts of the disclosure in a simplified form as a prelude to the description below.
Aspects of the disclosure are directed to a thrust reverser of an aircraft, comprising: a wall having a first surface that partially forms a flow channel associated with an air flow, a blocker door having a second surface that partially forms the flow channel, and a dielectric elastomeric (DE) device that is configured to selectively expand and contract within a cavity formed between the wall and the blocker door where the cavity is substantially radially adjacent to the flow channel when the thrust reverser is in a stowed state. In some embodiments, the dielectric elastomeric device is in a first state when the thruster reverser is operated in the stowed state and in a second state when the thrust reverser is operated in a deployed state. In some embodiments, a first size of the dielectric elastomeric device in the first state is larger than a second size of the dielectric elastomeric device in the second state. In some embodiments, the dielectric elastomeric device comprises an elastomer located between two electrodes. In some embodiments, the dielectric elastomeric device is in an energized state when the thruster reverser is operated in the stowed state and in a de-energized state when the thrust reverser is operated in a deployed state. In some embodiments, the energized state and the de-energized state are based on a voltage that is applied to the electrodes. In some embodiments, the voltage is based on a 28 Volt direct current aircraft power source. In some embodiments, the thrust reverser further comprises a shutter plate coupled to the dielectric elastomeric device, wherein the shutter plate partially forms the flow channel. In some embodiments, the shutter plate is formed from at least one of aluminum, titanium, or a composite material. In some embodiments, a first end of the shutter plate is hinged to the blocker door, and wherein a second end of the shutter plate couples to a protrusion formed in a deflector when the thrust reverser is operated in the stowed state. In some embodiments, the dielectric elastomeric device is configured to completely fill the cavity when the thrust reverser is operated in the stowed state. In some embodiments, the thrust reverser system further comprises an actuator configured to control a deployment or stowing of the blocker door. In some embodiments, the dielectric elastomeric device is wedge-shaped.
The present disclosure is illustrated by way of example and not limited in the accompanying figures in which like reference numerals indicate similar elements.
It is noted that various connections are set forth between elements in the following description and in the drawings (the contents of which are included in this disclosure by way of reference). It is noted that these connections are general and, unless specified otherwise, may be direct or indirect and that this specification is not intended to be limiting in this respect. A coupling between two or more entities may refer to a direct connection or an indirect connection. An indirect connection may incorporate one or more intervening entities.
In accordance with various aspects of the disclosure, apparatuses, systems and methods are described for utilizing a dielectric elastomeric device in connection with a thrust reverser. As one skilled in the art would appreciate, a DE device may belong to a family of electroactive polymers which are capable of large strains (e.g., on the order of 100% to 300%) that are produced in response to one or more inputs or conditions, such as for example an electric current, an electric field, etc. Referring to
The DE device may be used to increase/maximize forward mode (stowed reverser) thrust reverser performance by reducing/minimizing total pressure losses. The DE device may be used to control a selective filling of a pit/cavity (e.g., cavity 62 of
The thrust reverser 200 includes a shutter plate 210 (having an axis of rotation denoted by a reference character 210-1) and a DE device 213. The shutter plate 210 is coupled (e.g., attached or hinged) to the blocker door 56 at the first end 210-1 of the shutter plate 210. A second end 210-2 of the shutter plate 210 may couple to, or rest on, a protrusion/lip 52-1 formed in the wall 52 or the front deflector 59. The shutter plate 210 may be formed from one or more materials, such as aluminum, titanium, or a composite material.
In
Whereas in
Aspects of the disclosure may be applied in connection with a variable area nozzle. For example, aspects of the disclosure may be applied near the exit of a nacelle where a thrust reverser deploys. Embodiments that optimize the operational characteristics of modern high bypass ratio (BPR) turbofan engines may include varying the exit nozzle area around an engine core and the circumscribing nacelle.
The assembly 400 may include one or more blocker doors 456 (which may correspond to the blocker doors 56 described above). The blocker doors 456 may pivot in the direction of the arrow 456′.
The assembly 400 includes a DE device 413. The DE device 413 may seal a small gap between one or more edges of the blocker doors 456 when the blocker doors 456 are stowed.
In
The shapes (e.g., triangular/wedge) and dimensions of the DE devices (e.g., DE devices 213, 313, 413, 513) described herein are illustrative. One skilled in the art would appreciate, based on a review of this disclosure, that other shapes/geometrical modes of the DE devices may be used.
Technical effects and benefits of this disclosure include, as a result of the use of DE devices, compact size/form factors, elimination or reduction of mechanical moving parts, accurate continuous control due to precise adjustment of surrounding fields (e.g., electric fields), a capability to fill a door pit cavity of conventional thrust reversers, an exposed kicker plate/blocker door during landing upon thrust reverser deployment, a reduction of total pressure loss, high levels of deformation (e.g., actuation) of the DE devices before returning to an “original” shape, and fast response times (e.g., during rapid aerodynamic transients), low power consumption from available power sources already on-board an aircraft (e.g., 28 Volts direct current (DC)). The use of DE devices provides for enhanced durability/reliability, particularly when confronted by sources of foreign object damage (FOD), such as for example rain, sleet, snow, ice, and hail. Aspects of the disclosure may be applied/retrofitted to an existing fleet of aircraft or incorporating into a newly-designed aircraft model.
Aspects of the disclosure have been described in terms of illustrative embodiments thereof. Numerous other embodiments, modifications, and variations within the scope and spirit of the appended claims will occur to persons of ordinary skill in the art from a review of this disclosure. For example, one of ordinary skill in the art will appreciate that the steps described in conjunction with the illustrative figures may be performed in other than the recited order, and that one or more steps illustrated may be optional in accordance with aspects of the disclosure. One or more features described in connection with a first embodiment may be combined with one or more features of one or more additional embodiments.
Number | Name | Date | Kind |
---|---|---|---|
5003770 | Schegerin | Apr 1991 | A |
5239822 | Buchacher | Aug 1993 | A |
5671598 | Standish | Sep 1997 | A |
6068213 | Gonidec et al. | May 2000 | A |
6293495 | Aten | Sep 2001 | B1 |
6995658 | Tustison | Feb 2006 | B2 |
8316632 | West | Nov 2012 | B2 |
8593035 | Asada | Nov 2013 | B2 |
20080061192 | Sullivan | Mar 2008 | A1 |
20100329851 | Nilsson | Dec 2010 | A1 |
20140116025 | Todorovic | May 2014 | A1 |
Number | Date | Country |
---|---|---|
0357494 | Aug 1989 | EP |
0520871 | Jun 1992 | EP |
0542624 | Nov 1992 | EP |
0558381 | Feb 1993 | EP |
0601610 | Nov 1993 | EP |
0852290 | Dec 1996 | EP |
0926333 | Dec 1997 | EP |
0882881 | Jun 1998 | EP |
0763653 | Sep 2005 | EP |
9855754 | Dec 1998 | WO |
Entry |
---|
Wikipedia, Dielectric Elastomer, Apr. 13, 2008, pp. 1-2, (https://web.archive.org/web/20080413231456/http://en.wikipedia.org/wiki/Dielectric_elastomers). |
Wikipedia, Composite Material, Sep. 28, 2013, pp. 1-4, (https://web.archive.org/web/20130928224642/http://en.wikipedia.org/wiki/Composite_material). |
Number | Date | Country | |
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20160245231 A1 | Aug 2016 | US |