None.
The technology herein relates to avionic flight controls and to aircraft flight control systems. In more detail, the technology herein relates to and provides systems, mechanisms and methods to be used in a flight vehicle that allows a. reconfiguration among different types of flight control inceptors or other input controls.
Non-limiting technology herein provides a flexible flight control system that enables conversion from one architecture (using one type of inceptor) to another architecture (using another, different type of inceptor), through the usage of modular software, firmware and/or hardware pieces with common interfaces among the different types of inceptors. Longitudinal, lateral and other directional control laws are adapted in order to be compatible with specific aspects of the operation of each configuration (architecture), giving the option to the aircraft operator to choose any one of a number of inceptor architectures at time of manufacture. An existing fleet can be retrofitted to change from one type of control inceptor architecture to another through dedicated maintenance tasks. The example non-limiting technology herein thus allows the conversion among different types of inceptors.
Example non-limiting features and/or advantages include:
The following detailed description of exemplary non-limiting illustrative embodiments is to be read in conjunction with the drawings of which:
Typically in the aeronautical industry, a given aircraft type is conceived, developed and certified with a predefined flight control system architecture. Each architecture considers a specific flight control inceptor. Some typical inceptors used in the aeronautical industry are wheel-and-column, passive or active side-sticks, and center-sticks.
Generally, primary cockpit flight controls include a control yoke (also known as a control column), or a center stick or side-stick (the latter two also colloquially known as a control or joystick). Such flight controls are manipulated by the pilot to control the aircraft's roll and pitch. In older aircraft, a direct mechanical linkage such as a cable or a hydraulic linkage between the yoke or stick and the aircraft control surfaces moved the ailerons when the turned or deflected left and right, and moved the elevators when moved backwards or forwards. In most modern commercial aircraft, “fly by wire” systems use digital signal linkages to couple such input inceptors to remote actuators via a processor that in turn changes the positions of the ailerons or other control surfaces.
Inceptors vary among different aircraft. There are yokes where roll is controlled by rotating the yoke clockwise/counterclockwise (like steering a car) and pitch is controlled by tilting the control column towards you or away from you. In other aircraft, pitch is controlled by sliding the yoke into and out of the instrument panel. In some aircraft, the roll is controlled by sliding the whole yoke to the left and right. Center sticks also vary between aircraft.
Some advantages of the side-stick inceptor architecture are:
Some advantages of the column, in turn, are:
Center-sticks are used to provide more precise handling in specific military missions, being more common in fighters and trainers.
Although scenarios described above show clear segmentation of the market between different inceptor approaches, a given aircraft type is typically designed with a particular pre-defined inceptor solution.
One example non-limiting embodiment provides a flight control system that can be reconfigured to different types of inceptors. Some examples include, but are not limited to, wheel-and-column, side-sticks and center-sticks.
In terms of example non-limiting hardware interfaces, solutions are designed to keep a high degree of commonality for electrical power and sensors, allowing easy installation and conversion among different chosen types.
From the software perspective, in the longitudinal axis, control laws are designed for compatibility with all pre-defined inceptors and the system is adaptable to the different control inceptor inputs. A typical example would be a gamma-dot ({dot over (γ)})control law providing auto-trim and flight-path stability compatible with side-stick operation and {dot over (γ)}−U providing manual trim and speed-stability for column or yoke operation.
In one example non-limiting embodiment, with the side-sticks, the longitudinal control law controls a. gamma dot variation. With the side-stick(s) in the neutral position, the aircraft would keep a given flight path angle, consequently being flight path stable. The control law would provide auto-trim capability, not being necessary to activate a pitch trim switch or apply force in the side-stick during flight for speed variation.
On the other hand, with the wheel-and-column, the longitudinal control law is converted to provide speed stability. In this sense, speed variation is achieved through the usage of the column or pitch trim switch commands. After removal of force in the column, the control law recovers an original reference speed. Application of pitch trim switch command in turn, changes a speed-reference, trying to mimic operation of a conventional aircraft with the advantages of closed loop control, i.e., less sensitiveness of weight and center of gravity variation, better predictably of aircraft response and rejection of external disturbances such as gust and turbulence.
In the lateral axis, operation of a P-Beta control law in one example embodiment is conceptually the same for all types of lateral inceptors with the lateral command being converted to a roll demand in and pedal position providing a beta (side-slip angle) command. However, the roll demand from wheel, to side-stick, center-sticks, or others, can be adapted to provide suitable handling quality and adequate forces.
As an example, the switching from control laws for compatibility among the types of inceptors, can be done based on straps, jumpers or configuration pins in the main control law computer associated with the given aircraft type.
Physically, the conversion from one type of inceptor to the other can be implied in the repositioning of cockpit parts, besides the installation and removal of the inceptor itself. The pilot and co-pilot seats can be adapted as well for improved ergonomics.
A preferred embodiment is shown in
In the example shown, a common interface (6) is provided between the various inceptor configurations. Such an interface (6) can comprise connectors, electrical power connections and/or position sensors. Such an interface (6) can be provided in order to allow a reduction in the effort of the reconfiguration. The interface (6) can thus include intelligence that automatically detects which type of inceptor is currently connected. In order to be interchangeable, the different inceptors in one example implementation will have and use a common connector. In order words, the flight controls computer will keep the current interface as a plan, and the second inceptor will be redesigned to keep the current connector interface.
In the example shown, conventional means of transmitting data (7) such as analog wiring and/or digital buses are used to feed a main flight controls computer (8) with the inceptor positions. The flight controls computer can comprise a digital or analog computer such as a microprocessor or microcomputer coupled to a computer storage medium such as a digital memory device, random access memory and/or read only memory, in one example embodiment, computer 8 executes firmware (software) instructions stored in the computer storage medium (e.g., a flash or other semiconductor memory device) to implement a control law that processes the inceptor input(s) and provides an output. By way of example, and not limitation, computer storage media may include volatile and non-volatile, removable and non-removable media implemented in any method or technology for storage of information such as computer-readable instructions, data structures, program modules or other data. For example, computer media includes, but is not limited to, RAM, ROM, EPROM, EEPROM, flash memory or other solid state memory technology, CD-ROM, digital versatile disks (“DVD”), HD-DVD, BLU-RAY, or other optical storage, magnetic cassettes, magnetic tape, magnetic disk storage or other magnetic storage devices, or any other medium which can be used to store the desired information and which can be accessed by the computer architecture 1200. For purposes the claims, the phrase “computer storage medium” and variations thereof, does not include waves, signals, and/or other transitory and/or intangible communication media, per se.
Summed up to other sensor information such as airspeed, altitude, aircraft acceleration and attitude, the control law outputs are calculated and the control surface commands are generated (9) by the means of actuating a flight control surface. The actuating means 9 can comprise an electrical actuator, a hydraulic actuator or other mechanical, fluid or electromechanical (including electromagnetic) devices that in response to an input is able to generate force that changes the position of a control surface by a controlled amount to thereby control the position of the control surface. Means of providing power or control current to control surface actuators (hydraulic, or a power transistor, for instance) (10) is used to move the control surface(s) (11) such as ailerons, flaps, etc.
As can be seen, the control law of
When reconfigured to wheel-and-column, as an example, the closed loop is performed over speed rather than load factor. In this sense, airspeed is fed-back as an outer loop (15). In order to improve speed control, aircraft longitudinal attitude and true airspeed are fed-back as well (16). This configuration provides positive speed stability and therefore, speed is changed if force is applied over the yoke. If the inceptor returns to neutral, airspeed returns to reference speed.
In the lateral-directional axis, the structure of the control law need not be changed. However, the roll demand can be adapted from side-stick to wheels, for example, to provide adequate forces and handling qualities.
While the invention has been described in connection with what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention is not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
This application claims the benefit of U.S. Provisional Patent Application No. 62/085,006 filed Nov. 26, 2014, incorporated herein by reference.
Number | Name | Date | Kind |
---|---|---|---|
2385184 | Barber | Sep 1945 | A |
2697566 | Glass | Dec 1954 | A |
5470232 | Kelso | Nov 1995 | A |
6241182 | Durandeau et al. | Jun 2001 | B1 |
7551989 | Knotts et al. | Jun 2009 | B2 |
7579966 | Priest | Aug 2009 | B2 |
7725613 | Bhardwaj | May 2010 | B2 |
8606437 | Caldeira | Dec 2013 | B2 |
20040029094 | McGraw | Feb 2004 | A1 |
20070077540 | Testrake | Apr 2007 | A1 |
20080234881 | Cherepinsky et al. | Sep 2008 | A1 |
20080272243 | Decker | Nov 2008 | A1 |
20100266991 | Gregoire | Oct 2010 | A1 |
20140131523 | Carner | May 2014 | A1 |
20160229521 | De Miranda Car | Aug 2016 | A1 |
Number | Date | Country |
---|---|---|
2 261 116 | Dec 2010 | EP |
1140266 | Jan 1969 | GB |
WO9503212 | Feb 1995 | WO |
2014075023 | May 2014 | WO |
Entry |
---|
International Search Report dated Feb. 17, 2016, issued in related International Application No. PCT/BR2015/000178. |
Mcmahon, Ryan P., “From In-Flight Simulators to UAV Surrogates,” 2013, 12 pages. |
Mcmahon, Ryan, “From In-Flight Simulators to UAV Surrogates,” Calspan Corporation, Oct. 29, 2013, 33 pages. |
Weingarten, Norman C., “History of In-Flight Simulation & Flying Qualities Research at Calspan,” AIAA Journal of Aircraft, vol. 42, No. 2, Mar./Apr. 2005, 15 pages. |
Number | Date | Country | |
---|---|---|---|
20160229521 A1 | Aug 2016 | US |
Number | Date | Country | |
---|---|---|---|
62085006 | Nov 2014 | US |