System for monitoring the state of a hook-keeper unit
11346138 · 2022-05-31
Assignee
Inventors
- Francisco Romero Galan (Getafe, ES)
- Carlos Manuel Escribano Serrano (Getafe, ES)
- Isabel Romero Molina (Getafe, ES)
- Jesús De Gracia Maqueda (Getafe, ES)
Cpc classification
E05B81/72
FIXED CONSTRUCTIONS
B64D29/06
PERFORMING OPERATIONS; TRANSPORTING
E05B63/143
FIXED CONSTRUCTIONS
International classification
E05B81/72
FIXED CONSTRUCTIONS
E05B53/00
FIXED CONSTRUCTIONS
E05B63/14
FIXED CONSTRUCTIONS
B64D29/06
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system for monitoring the state of a hook-keeper unit of an aeronautical structure. The hook-keeper unit is movable between a latched state and in a non-latched state, a mechanical warning element is movable between an exposed state and an unexposed state, and a connecting mechanism comprises a first end coupled to the hook-keeper unit, and a second end coupled to the mechanical warning element. The connecting mechanism is configured to automatically transmit the state of the hook-keeper unit to the mechanical warning element. The hook-keeper unit and the mechanical warning element are coupled between them by the connecting mechanism in an automatic bijective relationship, so that when the hook-keeper unit is in the latched state, the mechanical warning element is automatically in the unexposed state, and when the hook-keeper unit is in the non-latched state, the mechanical warning element is automatically in the exposed state.
Claims
1. A system for monitoring a state of a hook-keeper unit of an aeronautical structure, wherein the hook-keeper unit comprises a hook and a keeper, the system comprising: the hook-keeper unit configured to be movable between a latched state and a non-latched state, a mechanical warning element configured to be movable between an exposed state and an unexposed state, and a connecting mechanism comprising a first end coupled to the hook-keeper unit, and a second end coupled to the mechanical warning element, the connecting mechanism being configured to automatically transmit the state of the hook-keeper unit to the mechanical warning element, wherein the hook-keeper unit and the mechanical warning element are coupled between them by the connecting mechanism in an automatic bijective relationship, so that: when the hook-keeper unit is in the latched state, the mechanical warning element automatically is in the unexposed state, and when the hook-keeper unit is in the non-latched state, the mechanical warning element automatically is in the exposed state, wherein either the hook or the keeper of the hook-keeper unit is configured to be displaced from each other, wherein: if the hook or the keeper are displaced from each other, the hook-keeper unit is in the non-latched state; and if the hook or the keeper are not displaced from each other, the hook-keeper unit is in the latched state, wherein the connecting mechanism comprises at the first end a tilting piece, the tilting piece comprising a first and a second portion fixedly joined by a tilting axis, wherein the first portion is rotatably joined to the hook-keeper unit and the second portion is connected to a substantially inextensible coupling element of the connecting mechanism, wherein the connecting mechanism comprises at the second end a positioner device fixedly joined to the mechanical warning element, the positioner device being configured to rotate around a rotating axis so that the mechanical warning element automatically is in the exposed or in the unexposed state according to the state of the hook-keeper unit, and wherein the substantially inextensible coupling element transmits a displacement of either the hook or the keeper from the second portion of the tilting piece to the positioner device, said substantially inextensible coupling element being a cable.
2. The system according to claim 1, wherein the positioner device comprises a torsion spring configured to be in: a twisted state corresponding to the unexposed state of the mechanical warning element, and a default state corresponding to the exposed state of the mechanical warning element.
3. The system according to claim 1, wherein the mechanical warning element is configured to be positioned: inside the aeronautical structure in the unexposed state, and outside the aeronautical structure in the exposed state.
4. The system according to claim 1, wherein the mechanical warning element is a flag, and wherein the exposed state of the flag comprises a rotatable deployment.
5. The system according to claim 1, wherein the hook of the hook-keeper unit is configured to be latched with the keeper, and the hook-keeper unit further comprises: a rod rigidly connected to either the hook or the keeper; and a spring coupled with the rod, the spring being configured to be in: a rest state corresponding to the non-latched state of the hook-keeper unit, and a compressed state corresponding to the latched state of the hook-keeper unit.
6. The system according claim 5, wherein the rod is rigidly connected to the keeper.
7. The system according to claim 5, wherein the hook-keeper unit comprises a pair proximity sensor-target configured to match when the hook-keeper unit is in the latched state.
8. The system according to claim 7, wherein either the hook or the keeper of the hook-keeper unit is configured to be displaced from each other, wherein: if the hook or the keeper are displaced from each other, the hook-keeper unit is in the non-latched state; and if the hook or the keeper are not displaced from each other, the hook-keeper unit is in the latched state, wherein the target is placed on the rod, both being configured to be displaced together according to a displacement of either the hook or the keeper.
9. The system according to claim 7, wherein the proximity sensor is configured to send a signal with the state of the hook-keeper unit to a remote system by a connection.
10. The system according to claim 9, wherein the connection comprises an electrical connection.
11. The system according to claim 1, wherein the system comprises a plurality of hook-keeper units, and wherein the connecting mechanism comprises a plurality of first ends.
12. A two-part-cowl of an aircraft comprising the system according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other characteristics and advantages of the invention will become clearly understood in view of the detailed description of the invention which becomes apparent from a preferred embodiment of the invention, given just as an example and not being limited thereto, with reference to the drawings.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(14) Two-Part Cowl (100) of an Aircraft Engine
(15)
(16)
(17) a set of hook-keeper units (1), each one comprising a pair of a hook (2) and a keeper (3) (shown in detail in
(18) a mechanical warning element (4) able to be positioned inside the cowling part (100.1) in an unexposed state (C), and outside in the exposed state (D) (shown in
(19) a connecting mechanism (5) between the hook-keeper units (1) and the mechanical warning element (4) to automatically transmit the state of the hook-keeper unit (1) to the mechanical warning element (4).
(20) The connecting mechanism (5) comprises a first end (5.1) coupled to the hook-keeper unit (1), and a second end (5.2) coupled to the mechanical warning element (4).
(21) Additionally, it can be seen that the system comprises a connection (6.3) in the form of an electrical harness to send a signal identifying the latched/non-latched state of the hook-keeper unit (1) to a remote system (not shown).
(22) Hook-Keeper Unit (1)
(23)
(24) a keeper (3);
(25) a hook (2) configured to be latched or engaged with the keeper (3);
(26) a rod (1.1) rigidly connected to the keeper (3), and
(27) a spring (1.2) coupled with the rod (1.1) and configured to be compressed.
(28) It is to be noted that if the hook (2) is installed on one part (100.1) of the two-part cowl (100), the keeper (3) is to be installed on the other part (100.2), or vice-versa.
(29) In the embodiments shown in this description, the hook-keeper unit (1) is configured to be in a latched state (B) and in a non-latched state (A), wherein:
(30) the latched state (B) is identified with an outward state, because the keeper (3) is out further from the cowling part (100.1) to reach to and be engaged with the hook (2) installed on the other cowling part (100.2), and
(31) the non-latched state (A) is an inward state, because the keeper (3) is nearer the cowling part (100.1).
(32) In this particular embodiment, each rod (1.1) further comprises an adjustment device (1.3) to absorb the diameter size difference between the biggest in the front part intended to connect to the keeper (3), and the smallest in the rear part intended to be surrounded by the spring (1.2).
(33) As mentioned, the hook-keeper unit (1) is configured to switch between a latched (B) and a non-latched (A) state. This switching of the states (A, B) is identified by the displacement (X) of the keeper (3) along the longitudinal axis of the rod (1.1) and, thus, the pair of hook (2) and keeper (3) are:
(34) not displaced from each other in the latched state (B), also corresponding to a compressed state of the spring (1.2), and
(35) displaced a distance (X) from each other, preferably the distance (X) being 12.7 mm, in the non-latched state (A), also corresponding to a rest state of the spring (1.2) which pulls the rod (1.1) inwards if no force is exerted.
(36)
(37) In the latched state (B) of the hook-keeper unit (1), the two-part cowl (100) or cowling is properly closed. The keeper (3) is latched and cannot be moved while the spring (1.2), which is arranged coupled with the rod (1.1), tries to expand, but as the rod (1.1) is engaged, it is not dragged by the spring (1.2), thus remaining in an outward position. Additionally, in this case, the proximity sensor (6.1) is activated, because the target (6.2) is near the proximity sensor (6.1) to be detected thereby, so that the electrical warning means issue a latched status signal to a remote system by an electrical connection (6.3). Preferably, the signal sent is an electronic warning shown in the notice panel placed in the cockpit of the aircraft.
(38) In the non-latched state (A) of the hook-keeper unit (1), the two-part cowl (100) or cowling is opened. The keeper (3) is loose, and is carried by the spring (1.2) to an inward position, while the spring (1.2) extends. The target (6.2) is thus carried by the rod (1.1) far enough to not be detected by the proximity sensor (6.1), so that the electrical warning means issue a non-latched signal to a remote system by an electrical connection (6.3). Likewise, preferably the signal sent is and electronic warning shown in the notice panel placed in the cockpit of the aircraft.
(39)
(40) In this embodiment, the connecting mechanism (5) comprises at the first end (5.1) a tilting piece (5.3), the tilting piece (5.3) comprising two portions (5.3.1, 5.3.3) fixedly joined by a tilting axis (5.3.2). The tilting axis (5.3.2) rests on the structure of the hook-keeper unit (1) for pivoting, wherein the first portion (5.3.1) is rotatably joined to the hook-keeper unit (1) absorbing the movement of the rod (1.1), or force exerted, and transmitting it to the second portion (5.3.3).
(41)
(42) The rotatable joint between the first portion (5.3.1) of the tilting piece (5.3) and the rod (1.1) of the hook-keeper unit (1) is permanent, the first portion (5.3.1) coming along with the displacement (X) of the rod (1.1).
(43) It is to be noted that all the joints addressed in this embodiments are permanent joints and, thus, the automatic movement transmission is direct in both directions.
(44) In this particular embodiment, the second portion (5.3.3) is connected to a substantially inextensible coupling element (5.4) of the connecting mechanism (5). The substantially inextensible coupling element (5.4) connects the first (5.1) and second (5.2) ends of the connecting mechanism (5) (shown in
(45) As it was already mentioned, the first portion (5.3.1) is at reach of the rod (1.1), in a way that:
(46) when the rod (1.1) is in its inward state (non-latched state, A), the rod (1.1) pushes the first portion (5.3.1) of the tilting piece, and the movement of this portion is transmitted to the second portion (5.3.3), which is in turn attached to the substantially inextensible coupling element (5.4), and
(47) when the rod (1.1) is in its outward state (latched state, B), the rod (11) does not press the first portion (5.3.1) of the tilting piece (5.3), so the second portion (5.3.3) of the tilting piece does not exert any force to the substantially inextensible coupling element (5.4), this coupling element remaining at its rest position.
(48) This is how the coupling between the rod (1.1) and the inextensible coupling element (5.4) is achieved.
(49) Mechanical Warning Element (4)
(50)
(51) In the embodiments shown in this description, the mechanical warning element (4) is configured to switch from an exposed state (D) to an unexposed state (C), and vice-versa (see
(52) The substantially inextensible coupling element (5.4) of the connecting mechanism (5) ends at the second end (5.2), wherein it is arranged a positioner device (5.5) fixedly joined to a mechanical warning element (4). The positioner device (5.5) is configured to rotate around a rotating axis (5.5.1), and therefore a rotation of the positioner device (5.5.1) is directly transmitted to the mechanical warning element (4). As a consequence, the mechanical warning element (4) is automatically positioned in the exposed (D) or in the unexposed (C) state according to the state of a hook-keeper unit (1) transmitted by the connecting mechanism (5).
(53) In the embodiment of
(54) a twisted state corresponding to the unexposed state (C) of the mechanical warning element (4), and
(55) a default state corresponding to the exposed state (D) of the mechanical warning element (4).
(56) It is easily inferred from this embodiment that the default state of the torsion spring (5.5.2) is identified with an state less twisted than the twisted state per se; which advantageously allows that if a failure occurs, the mechanical warning element (4) is positioned in the exposed state (D) alerting to the operators or crew of such failure which took place any part of the system (10).
(57)
(58) inside the cowling part (100.1) in the unexposed state (C), and
(59) outside the cowling part (100.1) in the exposed state (D).
(60) As it can be seen in
(61) When the hook-keeper unit (1) is open and the rod (1.1) is therefore in its inward position, the rod (1.1) pushes the first portion (5.3.1) of the tilting piece (5.3), causing its tilting, so that the second portion (5.3.3) of the tilting piece (5.3) pulls of the substantially inextensible coupling element (5.4). As shown, this coupling element (5.4) is connected to the positioner device (5.5) which rotates around its rotating axis (5.5.1) and releases the mechanical warning element (4) (fixedly joined thereto) by anti-clockwise rotatable deployment (Y).
(62) When the hook-keeper unit (1) is closed, the substantially inextensible coupling element (5.4) is at its rest position (or less pulled instead). Thus, in this state, the positioner device (5.5) rotates clockwise around its rotating axis (5.5.1) and the mechanical warning element (4) is positioned in the unexposed state (C).
(63) Advantageously, if the hook-keeper unit (1) is not properly closed, this system (10) prevents the mechanical warning element (4) from remaining unexposed if a third party tries to force it. As the positioner device (5.5) is always connected to the substantially inextensible coupling element (5.4) and this remains pulled until the hook-keeper unit (1) is properly closed, the torsion spring (5.5.2) of the positioner device (5.5) does not retain the mechanical warning element (4) in its unexposed state (D), this (4) being therefore moved by the torsion spring (5.5.2) to stand out.
(64)
(65) Subfigure a) of
(66) In both subfigures a) and b), each telescopic end rod (5.4.1, 5.4.2) is connected to an inner body (5.4.4). This inner body (5.4.4) is able to slide inside a conduit (5.4.3), that is fixed to the cowling part (100.1 or 100.2). By the sliding, linear motion is transmitted from one telescopic end rod (5.4.1, 5.4.2) to the other. As it can be easily inferred, this sliding works in both directions, transmitting linear motion in both ways and therefore pushing (as in subfigure a) or pulling (as in subfigure b).
(67) Advantageously, if the conduit (5.4.3) is correctly installed, it may be flexible enough as to adapt to the geometry of the cowling part (100.1 or 100.2), without jeopardizing the push-pull movement function.
(68) Automatic bijective relationship between the hook-keeper unit (1) and the mechanical warning element (4)
(69) As it has been already explained, the hook-keeper unit (1) and the mechanical warning element (4) are coupled between them by the connecting mechanism (5) in an automatic bijective relationship, so that:
(70) when the hook-keeper unit (1) is in the latched state (B), the mechanical warning element (4) automatically is in the unexposed state (C), and
(71) when the hook-keeper unit (1) is in the non-latched state (A), the mechanical warning element (4) automatically is in the exposed state (D).
(72) In this sense, a bijective relationship or one-to-one correspondence is a relationship between the states (B, C; A, D) of the two elements (1, 4), wherein:
(73) each state (B, A) of one element (in this case the hook-keeper unit (1)) is paired with exactly one state (C, D) of the other element (in this case the mechanical warning element (4)), and
(74) each state (C, D) of the other element (4) is paired with exactly one state (B, A) of the first element (1).
(75) A bijection relationship from the states (B, A) of the hook-keeper unit (1) to the states (C, D) of the mechanical warning element (4) has an inverse or reverse relationship from (4) to (1). Then, the existence of a bijection relationship means both elements (1, 4) have the same number of states. There are no unpaired states.
(76) The non-latched state (A) of the hook-keeper unit (1) is automatically transmitted (without manual tasks from operators) to the mechanical warning element (4) by the connecting mechanism (5), being therefore in the exposed state (D). In the event the hook-keeper unit (1) is closed, being in the latched state (B), an automatic transmission (without manually tasks from operators) is produced to the mechanical warning element (4) throughout the connecting mechanism (5), being therefore in the unexposed state (C). Hence, the state switching of the hook-keeper unit (1) is automatically spread by the connecting mechanism (5) to update the state mechanical warning element (4).
(77) System (10) Comprising a Plurality of Hook-Keeper Units (1)
(78)
(79) In a particular embodiment, the system (10) comprises three hook-keeper units (1) and the connecting mechanism (5) comprises three first ends (5.1), each one comprising a tilting piece (5.3). Each tilting piece (5.3) comprises two portions (5.3.1, 5.3.3) fixedly joined by a tilting axis (5.3.2), the tilting pieces (5.3) are coupled to its immediate adjacent by the end of their second portions (5.3.3) by a coupling bar (5.3.4). In order to maintain all the first portions (5.3.1) resting on the bars (1.1) by default, the tilting piece (5.3) further comprises an auxiliary spring (5.3.5) coupled to the second portion (5.3.3) of at least one tilting piece (5.3). The auxiliary spring (5.3.5) maintains the first portions (5.3.1) resting on the bars (1.1) by a pre-loading of the spring, i.e., the auxiliary spring (5.3.5) tries to maintain all the tilting pieces (5.3) corresponding to the latched state (B) of their hook-keeper units (1).
(80) In addition, the second portion (5.3.3) of at least one of the tilting pieces (5.3) is connected to a substantially inextensible coupling element (5.4) of the connecting mechanism (5), as in previous particular embodiments.
(81) It is to be noted that in this system (10), the first portion (5.3.1) is not rotatably joined to the bar (1.1) of the hook-keeper unit (1); instead the first portion (5.3.1) is mechanically coupled to the rod (1.1), i.e., the first portion (5.3.1) is configured to rest on the end of the bar (1.1) when all the hook-keeper units (1) are in the latched state (B), and to be slightly separated to it when at least one of the hook-keeper unit (1) is in the non-latched state (A).
(82)
(83)
(84) Accordingly, this movement is also remitted to the mechanical warning element (4) by pulling the substantially inextensible coupling element (5.4) for deploying thereof.
(85) In addition, in this particular embodiment wherein the system (10) comprises a plurality of hook-keeper units (1), each hook-keeper units (1) comprising a pair proximity sensor (6.1)-target (6.2) configured to match when the hook-keeper unit (1) is in the latched state (B), as it was explained in
(86) While at least one exemplary embodiment of the present invention(s) is disclosed herein, it should be understood that modifications, substitutions and alternatives may be apparent to one of ordinary skill in the art and can be made without departing from the scope of this disclosure. This disclosure is intended to cover any adaptations or variations of the exemplary embodiment(s). In addition, in this disclosure, the terms “comprise” or “comprising” do not exclude other elements or steps, the terms “a” or “one” do not exclude a plural number, and the term “or” means either or both. Furthermore, characteristics or steps which have been described may also be used in combination with other characteristics or steps and in any order unless the disclosure or context suggests otherwise. This disclosure hereby incorporates by reference the complete disclosure of any patent or application from which it claims benefit or priority.