Trailing edge device with bell crank mechanism
09840320 ยท 2017-12-12
Assignee
Inventors
Cpc classification
Y02T50/30
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
B64C9/10
PERFORMING OPERATIONS; TRANSPORTING
B64C9/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64C9/04
PERFORMING OPERATIONS; TRANSPORTING
B64C9/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A bell crank mechanism is configured to at least indirectly link movement of an aircraft wing spoiler-like hinge panel to the movement of a primary flight control device on an aircraft wing trailing edge. The aircraft wing is configured to be fixed to and to extend from an aircraft fuselage, the wing including a leading edge and a trailing edge. The primary flight control device is attached to the trailing edge, and any movement of the control device is directly subject to an aircraft input controller by a linear actuator. The moveable aerodynamic hinge panel, a secondary control device, is situated proximally to the primary flight control device, and the hinge panel is separately attached to the trailing edge. The bell crank mechanism slaves any hinge panel motion to movements of the primary control device.
Claims
1. A bell crank mechanism secured to an aircraft wing, the wing having a leading edge and a trailing edge, and having a primary control device attached to the trailing edge, and a movable aerodynamic hinge panel being separately attached to the trailing edge, the hinge panel being a secondary control device; wherein the bell crank mechanism comprises: a plurality of links serially coupled together, each link having a pivot coupling at each end, the pivot coupling joining adjacent links of the plurality of links, wherein one of the plurality of links comprises a center link having three connecting joints arranged along a single axis, the center link pivotally connected to, and translationally fixed to the trailing edge, for supporting only pivotal movement of the center link relative to the trailing edge, wherein two other of the plurality of links comprise a first hinge panel link and a second hinge panel link, wherein the first hinge panel link has opposed ends coupled respectively to the center link and the second hinge panel link, and the second hinge panel link is coupled directly to the hinge panel; a linear actuator configured to directly control the primary control device; wherein the bell crank mechanism is configured to link movement of the primary control device by the linear actuator to movement of the hinge panel for slaving the motion of the hinge panel to that of the primary control device.
2. The bell crank mechanism of claim 1, wherein the three connecting joints of the center link includes a center pivot coupling positioned intermediately between opposed ends of the center link, the center pivot coupling being translationally fixed to the trailing edge for permitting the pivotal movement of the center link relative to the trailing edge.
3. The bell crank mechanism of claim 2, wherein another one other of the plurality of links comprises a flap link, and wherein the opposed ends of the center link are each pivotally coupled to one end of the flap and first hinge panel links respectively via separate pivot couplings.
4. The bell crank mechanism of claim 1, wherein the linear actuator is directly controlled by an aircraft input controller.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(8) It should be understood that the drawings are not necessarily to scale, and that the disclosed embodiments are illustrated only schematically. It should be further understood that the following detailed description is merely exemplary and not intended to be limiting in application or uses. As such, although the present disclosure is, for purposes of explanatory convenience, depicted and described in only the illustrative embodiments presented, the disclosure may be implemented in numerous other embodiments, and within various other systems and environments not shown or described herein.
DETAILED DESCRIPTION
(9) The following detailed description is intended to provide both apparatus and methods for carrying out the disclosure. Actual scope of the disclosure is as defined by the appended claims.
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(11) Continuing reference to
(12) The flap extension flange 162 is coupled via a coupling joint 164 to a bottom or flap link 166. At the forward end of the link 166 is a coupling joint 168 which pivotally secures the link 166 to a center link 170. At an intermediate portion thereof, the center link 170 is fixed to and rotates about a fixed coupling joint 172, which is secured to a support header 174, which is an integral part of the trailing edge 132 of the wing 110.
(13) An upper coupling joint 176 of the center link 170 is configured to couple with an upper link 178. It will be appreciated that the latter provides a first, indirect connection to the hinge panel 140. The upper link 178 includes a forward coupling joint 180 adapted to connect directly to hinge panel link 182 (shown in phantom, since hidden behind support structures within the trailing edge 132). A forward coupling joint 184 of the hinge panel link 182 provides a direct connection to a hinge panel support header 186, a structural support member of the hinge panel 140, as depicted.
(14) The described elements, including all links and coupling joints (i.e., connections) are maintained in
(15) Those skilled in the art will appreciate that in order to support slaved movement of the bell crank mechanisms 150, 152 with respect to movement of the flap 124 relative to the trailing edge 132, there must be an additional pivotally fixed reactive connection between the flap 124 and the trailing edge 132.
(16) Referring now to
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(18) Finally, a method of causing a hinge panel 140 (or other spoiler-like structure), as a secondary aeronautical control device to follow the movement of a trailing edge primary flight control device such as a flap 124, includes steps of providing a bell crank mechanism 150, 152 having a center link 170 pivotally secured to a trailing edge 132 of an aircraft wing 110, and fixing a first or flap link 166 to extend from the flap 124 to a first end of the bell crank mechanism 150, 152. The method further includes utilizing a second or hinge panel link 182 extending from a hinge panel 140, through a third or upper link 178 to a second, or upper coupling joint 176 of the pivotal center link 170, and providing at least one linear actuator 200, 202 to move the flap 124 to thereby indirectly control movement of the hinge panel 140 through the motion of the bell crank mechanism 150, 152.
(19) Those skilled in the art will appreciate that the structures described, including the various links 166, 170, 178, and 182, as associated with the hinge panel 140 may offer numerous benefits over the described cam track mechanism 42 of the related art. Moreover, via use of bell cranks 150, 152 for hinge panel control, not only is a cam track weight penalty avoided, but above-described fusing requirements can be avoided as well. Additional benefits include a reduction in manufacturing complexity associated with cam track mechanisms, and avoidance of issues inherent to cam track mechanisms, including gouging or fracture damage, and/or imposition of increased loading on structures, from deleterious accumulations of wear particle debris within cam track surfaces, as examples.
(20) In addition, the disclosure may also cover numerous additional embodiments. For example, the lengths of each link may be adjusted to support various aerodynamically distinct flight circumstances and/or surface geometries for minimizing interference drag coefficients, including those related to skin friction, parasitic and separation drag, as well as wave drag. As such, particular forms and shapes of the links, for example, can be tailored to optimize variously desired gaps controlled by the hinge panel for management of and for optimizing flight performance characteristics.