METHOD AND DEVICE FOR ESTIMATING A LATERAL SPEED AND A LATERAL POSITION OF AN AIRCRAFT, DURING A PHASE WHERE THE AIRCRAFT IS TRAVELING ON THE GROUND
20170162068 ยท 2017-06-08
Inventors
Cpc classification
B64D43/00
PERFORMING OPERATIONS; TRANSPORTING
G01C23/00
PHYSICS
International classification
Abstract
Method and device for estimating lateral speed and lateral position of an aircraft during a phase where the aircraft is traveling on the ground. The device includes a unit for determining an initial lateral position value, corresponding to lateral position with respect to axis of a runway when touching down on landing, a unit for repetitively determining, at least from runway touch down, current ground speed and a current lateral angular deviation, representing angular deviation between the current route and the heading of the runway, a unit for repetitively computing current lateral speed, from the current ground speed and current lateral angular deviation, a unit for computing a current lateral position, from current lateral speed and initial lateral position, and a link for transmitting the current lateral speed and/or the current lateral position to at least one user system.
Claims
1. A method for estimating a current lateral speed and a current lateral position of an aircraft, during a phase where the aircraft is traveling on ground on a runway after a landing, the method comprising: a first data generation step, implemented by a first data generation unit, comprising determining a lateral position value, representing an initial lateral position, the initial lateral position corresponding to a lateral position value of the aircraft with respect to a central longitudinal axis of the runway, at a time of touching down by the aircraft on the runway on landing; a second data generation step, implemented by at least a second data generation unit, comprising repetitively determining, at least from the time of the aircraft touching down on the runway when landing, a current ground speed of the aircraft and a current lateral angular deviation from at least inertial information, the current lateral angular deviation representing angular deviation between a current route of the aircraft and a heading of the runway; a first computation step, implemented by a first computation unit, comprising repetitively computing current lateral speed of the aircraft, from the current ground speed and from the current lateral angular deviation; a second computation step, implemented by a second computation unit, comprising computing a current lateral position, from the current lateral speed and from the initial lateral position; and an information transmission step, implemented by a data transmission link, comprising transmitting to at least one user system at least one or more of the following parameters: the current lateral speed computed in the first computation step, and the current lateral position computed in the second computation step.
2. The method as claimed in claim 1, wherein the first data generation step uses a multimode receiver as the first data generation unit.
3. The method as claimed in claim 2, comprising: a first processing step, implemented prior to the first data generation step by a first processing unit and comprising monitoring a lateral position generated by the multimode receiver when the aircraft is in flight, so as to be able to detect a noisy lateral position value, and wherein the first data generation step comprises determining a zero value for the initial lateral position, in case of detection of a noisy lateral position value.
4. The method as claimed in claim 3, wherein the first data generation step comprises comparing a value generated by the multimode receiver with a threshold value, and: if the generated value is less than or equal to the threshold value, using that generated value as the initial lateral position; otherwise, using an auxiliary value as the initial lateral position.
5. The method as claimed in claim 4, wherein the auxiliary value corresponds to the threshold value or zero.
6. The method as claimed in claim 2, wherein the first data generation step comprises comparing a value generated by the multimode receiver with a threshold value, and: if the generated value is less than or equal to the threshold value, using that generated value as the initial lateral position; otherwise, using an auxiliary value as the initial lateral position.
7. The method as claimed in claim 1, wherein at least the first data generation step comprises: carrying out at least one monitoring of the aircraft to detect at least one of events as follows: compression of a main landing gear of the aircraft; putting of wheels of the aircraft into rotation; and a zero height of the aircraft with respect to the ground; and determining the time that the aircraft touches down on the runway, from at least a time of detection of at least one of the events.
8. The method as claimed in claim 1, wherein the second data generation step comprises determining at least one of parameters comprising: the current ground speed of the aircraft, the current lateral angular deviation, from hybridized data obtained from inertial data and from data coming from a satellite positioning system.
9. The method as claimed in claim 1, wherein the second computation step comprising computing the current lateral position, from an expression as follows:
Yc=V.sub.Yc+Y.sub.0 wherein: V.sub.Yc is the current lateral speed; and Y.sub.0 is the initial lateral position.
10. A device for estimating a current lateral speed and a current lateral position of an aircraft, during a phase in which the aircraft is traveling on ground on a runway after a landing, the device comprising:a first data generation unit configured for determining a lateral position value, representing an initial lateral position, the initial lateral position corresponding to a lateral position value of the aircraft with respect to a central longitudinal axis of the runway, when touching down on the runway on landing; a second data generation unit configured for repetitively determining, at least from a time of touchdown of the aircraft on the runway, a current ground speed of the aircraft and a current lateral angular deviation, the current lateral angular deviation representing angular deviation between a current route of the aircraft and a heading of the runway; a first computation unit configured for repetitively computing the current lateral speed of the aircraft, from the current ground speed and from the current lateral angular deviation; a second computation unit configured for computing a current lateral position, from the current lateral speed and from the initial lateral position; and a data transmission link configured for transmitting to at least one user system at least one or more of parameters comprising: the current lateral speed computed by the first computation unit, and the current lateral position computed by the second computation unit.
11. The device as claimed in claim 10, wherein the first data generation unit corresponds to a multimode receiver.
12. The device as claimed in claim 10, wherein the second data generation unit comprises at least an inertial data system and a sensor associated with a satellite positioning system.
13. An aircraft, comprising: a device for estimating a current lateral speed and a current lateral position of an aircraft, during a phase in which the aircraft is traveling on ground on a runway after a landing, the device comprising: a first data generation unit configured for determining a lateral position value, representing an initial lateral position, the initial lateral position corresponding to a lateral position value of the aircraft with respect to a central longitudinal axis of the runway, when touching down on the runway on landing; a second data generation unit configured for repetitively determining, at least from a time of touchdown of the aircraft on the runway, a current ground speed of the aircraft and a current lateral angular deviation, the current lateral angular deviation representing angular deviation between a current route of the aircraft and a heading of the runway; a first computation unit configured for repetitively computing the current lateral speed of the aircraft, from the current ground speed and from the current lateral angular deviation; a second computation unit configured for computing a current lateral position, from the current lateral speed and from the initial lateral position; and a data transmission link configured for transmitting to at least one user system at least one or more of parameters comprising: the current lateral speed computed by the first computation unit, and the current lateral position computed by the second computation unit.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0042] The appended figures will give a good understanding of how the disclosure herein can be embodied. In these figures, identical references denote similar elements. More particularly:
[0043]
[0044]
[0045]
DETAILED DESCRIPTION
[0046] The estimation device 1 shown diagrammatically in
[0047] According to the disclosure herein, the estimation device 1 which is installed onboard the aircraft, comprises, as shown in
[0053] In a particular embodiment, the computation units 6 and 7 are integrated in a central processing unit (or computer) 10 which is connected by the intermediary of links 11, 12 and 8 to the units 3 and 5 and the assembly 9 respectively.
[0054] Moreover, the computation units 6 and 7 can, notably, correspond to functions implemented in a software manner in the central processing unit 10.
[0055] In a preferred embodiment, the assembly 9 of user systems comprises, in particular: [0056] an automatic pilot 13 (AP standing for Automatic Pilot); and [0057] a flight director 14 (FD standing for Flight Director).
[0058] The estimations produced by the estimation device 1 can thus, notably, be used by the automatic pilot 13 whilst the aircraft is traveling on the ground and piloted in automatic mode, or they can be displayed by the flight director 14 whilst traveling on the ground, for example with manual piloting by a pilot.
[0059] Moreover, in a preferred embodiment, the data generation unit 3 comprises at least: [0060] an inertial data system 15 (IRS standing for Inertial Reference System) of the aircraft; and [0061] a sensor 16 associated with a satellite positioning system, for example of the GPS (GPS standing for Global Positioning System) or other (Galileo, Glonass, Beidou, . . . ) type.
[0062] Moreover, in a particular embodiment, the estimation device 1 comprises a processing unit 17 (PROC1 standing for Processing Unit) configured for monitoring the lateral position generated by the multimode receiver 4 when the aircraft is in flight, so as to be able to detect, if any, a noisy lateral position value. The data generation unit 3 considers a zero value for the initial lateral position in the event of detection of a noisy lateral position value transmitted by the multimode receiver 4.
[0063] Thus, if the estimation device 1 observes that the MMR data is noisy even in flight, it can force the value directly to zero. In this case, the aircraft is guided straight ahead, parallel with the longitudinal central axis L of the runway 2.
[0064] Moreover, in a particular embodiment, the estimation device 1 also comprises a processing unit 18 (PROC2 standing for Processing Unit) configured for comparing the value generated by the multimode receiver 4 with a recorded threshold value. The data generation unit 3 (or the central processing unit 10 for example) is configured for: [0065] if the generated value is less than or equal to the threshold value, choosing that generated value as the initial lateral position; [0066] otherwise, choosing an auxiliary value as the initial lateral position.
[0067] Preferably, the auxiliary value corresponds, as a function of the envisaged embodiment, to one or other of the following values: [0068] either to the threshold value itself; [0069] or to a zero value.
[0070] The processing units 17 and 18 can be integrated in the data generating unit 3, as shown in
[0071] Moreover, these processing units 17 and 18 can correspond to functions implemented in a software manner in the data generation unit 3.
[0072] Moreover, the estimation device 1 comprises, for example in the data generating unit 3, a monitoring unit 19 (MONITOR standing for Monitoring Unit) which is configured for: [0073] carrying out at least one monitoring of the aircraft in such a way as to be able to detect at least one of the following events: [0074] a compression of a main landing gear of the aircraft; [0075] a putting of the wheels of the aircraft into rotation; and [0076] a zero height of the aircraft with respect to the ground; and [0077] determining the time that the aircraft touches down on the runway, from the time of detection of at least one of the above events.
[0078] Moreover, the data generating unit 5 is configured for determining the current ground speed V.sub.GND of the aircraft and the current lateral angular deviation , from: [0079] either data obtained from inertial data generated by the inertial data system 15; [0080] or, preferably, hybridized data determined both from inertial data generated by the inertial data system 15 and from data generated by the sensor 16 of the satellite positioning system.
[0081] Thus, in a preferred embodiment, instead of using pure inertial data (IRS), the data generating unit 5 uses hybridized data (that is to say inertial data adjusted by GPS data), in order to significantly reduce the drift of the inertial data and to increase the accuracy. An estimated current lateral speed V.sub.Yc which is very accurate is then obtained.
[0082] The computation unit 6 is configured for computing the current lateral speed V.sub.Yc using the projection of the hybrid ground speed V.sub.GND (IRS+GPS) on the axis L of the runway 2. Once the lateral speed is found, the lateral position is easily determined by integrating the lateral speed. Thus, it is even guaranteed that the estimations of lateral position and of lateral speed are related, because the derivative of the lateral position actually gives the estimated lateral speed.
[0083] Consequently, in order to obtain the current lateral position Yc (or Yrollout), it suffices to integrate the current lateral speed V.sub.Yc (or VYrollout).
[0084] In order to do this, the computation unit 7 is configured for computing the current lateral position Yc, from the following expression:
Yc=V.sub.Yc+Y.sub.0
wherein: [0085] V.sub.Yc is the current lateral speed; and [0086] Y.sub.0 is the initial lateral position.
[0087] The initialization constant, namely the initial position Y.sub.0, is determined as mentioned above. It is known that in flight the MMR data is not interfered with, notably by the engine speed. This MMR data is therefore used for initializing the integrator. The computation unit 6 stores the lateral position sent by the multimode receiver 4 just before the impact (or just on impact), so that it will not pass through the phase where it is interfered with, and it is inserted in the above expression as corresponding to Y.sub.0.
[0088] Moreover, in order to cover the cases where the multimode receiver is interfered with before the impact, a limit on the initialization value can be set. A criterion to be complied with can for example be that in 99% of cases (over the statistical impact performances with a cross-wind of 30 knots for example), even if the multimode receiver sends a completely incorrect value, the aircraft must not leave the runway.
[0089] The estimation device 1, as described above, implements the following set of steps E1 to E5, as shown in
[0095] The estimation device 1, such as described above, notably makes it possible to produce a very accurate estimation of the lateral speed and of the lateral position of the aircraft on the ground whilst traveling after a landing.
[0096] The subject matter disclosed herein can be implemented in or with software in combination with hardware and/or firmware. For example, the subject matter described herein can be implemented in software executed by a processor or processing unit. In one exemplary implementation, the subject matter described herein can be implemented using a computer readable medium having stored thereon computer executable instructions that when executed by a processor of a computer control the computer to perform steps. Exemplary computer readable mediums suitable for implementing the subject matter described herein include non-transitory devices, such as disk memory devices, chip memory devices, programmable logic devices, and application specific integrated circuits. In addition, a computer readable medium that implements the subject matter described herein can be located on a single device or computing platform or can be distributed across multiple devices or computing platforms.
[0097] While at least one exemplary embodiment of the 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, an 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.