System and method for ground navigation

Information

  • Patent Grant
  • 9354633
  • Patent Number
    9,354,633
  • Date Filed
    Friday, October 31, 2008
    17 years ago
  • Date Issued
    Tuesday, May 31, 2016
    10 years ago
Abstract
A method for determining a heading, velocity, and/or position of an aircraft includes receiving a first radar return at a radar antenna for mounting to a first wing of the aircraft and receiving a second radar return at a radar antenna mounted to a second wing of the aircraft where the first wing and the second wing extend from opposite sides of the aircraft. The method also includes determining a velocity of each wing based on the radar returns using processing electronics and calculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities using the processing electronics.
Description
BACKGROUND

The present disclosure relates generally to the field of aircraft navigation. More particularly, the disclosure relates to aircraft navigation using multiple radar antennas.


Conventional efforts in aircraft to implement tactical situation awareness displays and situational awareness displays with a track-up orientation for low-visibility surface operations are hampered by low quality navigation systems that support ground operations. Inertial Navigation Simulators (INS), Altitude Heading Reference Systems (AHRS), and Air Data Computers (ADC) do not provide velocity and/or heading data at speeds below about 40 or 50 knots (e.g., at taxiing speed). Magnetic compasses can provide heading information, but operate poorly during ground operations due to interference from ground infrastructure.


Velocity and track (heading) can be derived from GPS position data, but when the aircraft is stationary or performing low speed turning operations (e.g., turning 90 degrees from a hold line onto a runway) cannot be adequately measured by changes in aircraft position without using a Satellite Based Augmentation System (SBAS) to obtain additional messages broadcast by satellites or a Ground Based Augmentation System (GBAS) to obtain additional ground-based radio messages.


A GPS does provide accurate position information (latitude, longitude, and altitude). Aircraft velocity and track can be determined from a change in aircraft position over time. If more than one GPS antenna is installed, aircraft heading can be determined or derived from the difference between the two positions. However, the error in a standard positioning system is greater than the length of most aircraft. SBAS can bring the nominal error down to 7.5 meters 95% of the time and GBAS can bring the nominal error down to 2 meters 95% of the time, however, the smaller the aircraft, the closer the two antennas must be. For many aircraft, the distance between the two antennas is less than the error for standard GPS and not much bigger than the error for a system including an SBAS or GBAS. Further, GPS is subject to multi-path problems during ground operations.


Therefore, what is needed is a high quality navigation system and method for implementing with tactical situation awareness displays and situational awareness displays with a track-up orientation for low-visibility surface operations. What is also needed is a system and method for accurately providing velocity and heading information of an aircraft during low speed maneuvers or when stationary.


SUMMARY

One embodiment of the disclosure relates to a navigation system for use on an aircraft for determining a heading, velocity, and/or position of the aircraft. The navigation system includes a first radar antenna for mounting to a first wing of the aircraft and configured to receive radar returns and a second radar antenna for mounting to a second wing of the aircraft and configured to receive radar returns where the first wing and the second wing extend from opposite sides of the aircraft. The navigation system also includes processing electronics configured to determine a velocity of the first and second wings based on the radar returns. The processing electronics calculate the heading, velocity, and/or position of the aircraft based on the determined wing velocities.


Another embodiment of the disclosure relates to a method for determining a heading, velocity, and/or position of an aircraft. The method includes receiving a first radar return at a radar antenna for mounting to a first wing of the aircraft and receiving a second radar return at a radar antenna mounted to a second wing of the aircraft where the first wing and the second wing extend from opposite sides of the aircraft. The method also includes determining a velocity of each wing based on the radar returns using processing electronics and calculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities using the processing electronics.


Another embodiment of the disclosure relates to an apparatus for determining a heading, velocity, and/or position of an aircraft. The apparatus includes means for receiving a first radar return at a first wing of the aircraft and means for receiving a second radar return at a second wing of the aircraft where the first wing and the second wing extend from opposite sides of the aircraft. The apparatus also includes means for determining a velocity of each wing based on the radar returns and means for calculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities.





BRIEF DESCRIPTION OF THE DRAWINGS

The disclosure will become more fully understood from the following detailed description, taken in conjunction with the accompanying drawings.



FIG. 1 is an illustration of an aircraft control center or cockpit according to an exemplary embodiment.



FIG. 2 is an overhead view of an aircraft including an aircraft control center and radar system according to an exemplary embodiment.



FIG. 3A is an overhead view of a map with a north-up orientation on a display screen according to an exemplary embodiment.



FIG. 3B is an overhead view of a map with a track-up orientation on a display screen according to an exemplary embodiment.



FIG. 4 is a block diagram of a radar system for the aircraft of FIG. 2 according to an exemplary embodiment.



FIG. 5 is a block diagram of a radar system for the aircraft of FIG. 2 according to another exemplary embodiment.



FIG. 6 is a flow chart illustrating a method for calculating velocity and track information of an aircraft according to an exemplary embodiment.



FIG. 7 is a flow chart illustrating a method for calculating velocity and track information of an aircraft according to another exemplary embodiment.



FIG. 8 is a flow chart illustrating a method for calculating velocity and track information of an aircraft according to another exemplary embodiment.



FIG. 9 is a flow chart illustrating a method for calculating velocity and track information of an aircraft according to another exemplary embodiment.



FIG. 10 is a side view of an aircraft and various radar returns and angles that can be used to determine velocity according to an exemplary embodiment.



FIG. 11 is a graph illustrating a signature of ground echoes of radar returns according to an exemplary embodiment.





DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS

Before describing in detail the particular improved system and method, it should be observed that the invention includes, but is not limited to a novel structural combination of conventional data/signal processing components and communications circuits, and not in the particular detailed configurations thereof. Accordingly, the structure, methods, functions, control and arrangement of conventional components software, and circuits have, for the most part, been illustrated in the drawings by readily understandable block representations and schematic diagrams, in order not to obscure the disclosure with structural details which will be readily apparent to those skilled in the art, having the benefit of the description herein. Further, the invention is not limited to the particular embodiments depicted in the exemplary diagrams, but should be construed in accordance with the language in the claims.


Referring generally to the figures, a system and method for determining a heading, velocity, and/or position of an aircraft is shown. The system can include an electronic display, a weather radar or other type of radar system, and a navigation system. The method can include receiving radar returns at the wings of the aircraft, determining a velocity of each wing based on the radar returns, and calculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities.


Referring to FIG. 1, an illustration of an aircraft control center or cockpit 10 is shown, according to one exemplary embodiment. Aircraft control center 10 includes flight displays 20. Flight displays 20 can be used to provide information to the flight crew, thereby increasing visual range and enhancing decision-making abilities. According to an exemplary embodiment, at least one of the displays of the flight displays 20 is configured to provide an indication to a flight crew as to the velocity, heading, and/or position of the aircraft.


In an exemplary embodiment, flight displays 20 can provide an output from a radar system of the aircraft. Flight displays 20 can include displays used for surface operations, such as an electronic moving map of an airport with an indication of present position. Such a display with a moving map may include user selectable options for providing the map with a north-up or track-up mode of operation. Flight displays 20 may include cultural features, for example buildings, signage, lighting structures, trees, etc.


Flight displays 20 can also include a weather display, a joint display, a weather radar map, and a terrain or obstacle display. Further, flight displays 20 may include an electronic display or a synthetic vision system (SVS). For example, flight displays 20 can include a display configured to display a three dimensional perspective image of terrain, obstacle, and/or weather information. Other view of terrain, obstacles, and/or weather information may also be provided (e.g. plan view, horizontal view, vertical view, etc.). Additionally, flight displays 20 can be implemented using any of a variety of display technologies, including CRT, LCD, organic LED, dot matrix display, and others. Flight displays 20 can also include head-up displays (HUD) with or without a projector.


Aircraft control center 10 additionally includes one or more user interface (UI) elements 21. UI elements 21 can include dials, switches, buttons, touch screens, or any other user input device. UI elements 21 can be used to adjust features of flight displays 20, such as contrast, brightness, width, and length. UI elements 21 can also (or alternatively) be used by an occupant to interface with or change the displays of flight displays 20. UI elements 21 can additionally be used to calibrate or adjust an indication of aircraft heading, velocity, and/or position provided by flight displays 20. Further, UI elements 21 can be used to calibrate or set an aircraft configuration used to determine the aircraft heading, velocity, and/or position.


Referring to FIG. 2, an overhead view of an aircraft 100 is shown with aircraft control center 10, left wing 102, and right wing 104 according to an exemplary embodiment. Wings 102 and 104 each include a radar sensor or antenna 106 and 108, respectively. While radar antennas 106 and 108 are shown at the tips of wings 106 and 108, according to other exemplary embodiments radar antennas 106 and 108 can be located anywhere along respective wings 106 and 108 as long as the antennas are generally equal in distance from the center or fuselage of aircraft 100. According to other exemplary embodiments, radar antennas 106 and 108 can be located on the tail wings of aircraft 100. Radar antennas 106 and 108 are each configured to transmit radar pulses and receive radar returns independent of one another. According to various exemplary embodiments, radar antennas 106 and 108 can be any radar antenna capable of transmitting radar pulses and receiving radar returns, for example transmitting pulses towards ground targets and receiving associated returns.


According to some exemplary embodiments, radar antennas 106 and 108 may be generally short-range radar sensors. Radar antennas 106 and 108 may be configured to transmit radar pulses to locate potential obstructions relative to the position of the aircraft, for example lighting systems, signage, other aircraft, ground vehicles, etc. The radar returns received by radar antennas 106 and 108 may also be used to determine the velocity of the wings 102 and 104 relative to the ground. Heading or track rate can be derived from the difference in the velocity of left and right wings 102 and 104. The velocity of wings 102 and 104 can also be used to determine velocity of aircraft 100.


Referring to FIG. 3A, an electronic display 300 is shown, according to an exemplary embodiment. Electronic display 300 may be generally configured for use with surface operations and display an electronic moving map of an airport with an indication of the present position of aircraft 100. Display 300 includes indications of a runway/taxiway 302, a building 304, and signage 306, but can include indications of other cultural features or obstacles (e.g., lighting structures, towers, etc.) Display 300 can also be configured to illustrate other aircraft or terrain near runway/taxiway 302. Display 300 is shown with a north-up orientation and the illustrated map updates as aircraft 100 moves, but north remains at the top of the screen.


Referring also to FIG. 3B, an electronic display 310 is similar to electronic display 300, but has a track-up orientation according to an exemplary embodiment. The map moves or illustrates updates as aircraft 100 moves, but the with an orientation where the nose of aircraft 100 remains pointing at the top of the screen. Electronics display 300 and/or 310 may include user selectable options for providing the map with a north-up or track-up mode of operation as desired.


According to an exemplary embodiment, the color of the obstacles shown in electronic display 300 or 310 may be configured to be different colors to allow the aircrew to quickly recognize a potential hazard. For example, the obstacle may be configured to flash, enlarge, turn red or any combination thereof to provide a warning signal to the aircrew. Alternatively, electronic display 300 or 310 may be configured to provide an indicator to warn the flight crew of nearby obstacles or obstacles in the aircraft path. The indicator can be an icon, text, string, symbol, synthetic image, LED indicator, audible tone, or any other visible and/or audible alarm provided by electronic display 300 or 310, another aircraft display, an audio system, etc.


Referring to FIG. 4, a navigation system 400 is configured to determine and provide velocity, heading, and/or position data of aircraft 100. Navigation system 400 may also determine and provide obstacle avoidance information. Navigation system 400 generally includes a radar antenna 406 on left wing 102, a radar antenna 408 on right wing 104, processing electronics 410, a display 412, and a user interface 414. Radar antennas 406 and 408 are configured in a similar manner as described with reference to radar antennas 106 and 108 of FIG. 2. Radar antennas 406 and 408 are generally configured to cast one or more radar beams from, and to receive radar returns. Radar antennas 406 and 408 may perform multiple radar sweeps. The radar sweeps can include horizontal sweeps, vertical sweeps, or a combination of horizontal and vertical sweeps. Radar antennas 406 and 408 can be steered or directed in various directions in order to perform the radar sweeps.


Processing electronics 410 are configured to interpret radar returns received at radar antennas 406 and 408. Processing electronics 410 may determine a velocity of first and second wings 102 and 104 based on radar returns received at radar antennas 406 and 408. According to various exemplary embodiments, the velocity of wings 104 and 106 may be relative to the ground, relative to each other, relative to terrain or an obstacle, relative to weather, etc. For example, the velocity of wings 104 and 106 can be determined relative to a runway, a taxiway, signage, a building, or other ground structure. Based on the determined velocity of wings 102 and 104, processing electronics 410 can calculate the heading, velocity, and/or position of the aircraft relative to the ground, to terrain or an obstacle, to weather, etc. The heading may be determined by comparing the wing velocities. If the wing velocities are the same, the aircraft is moving in a straight line or stationary. If the wing velocities are different, the aircraft is turning. The wing with the higher velocity is the outside wing of the turn (e.g., if left wing 102 is faster, the aircraft is turning right and vice versa). The position of the aircraft can be determined from a history of velocity and heading determinations from an initial starting position.


Processing electronics 410 can also be configured to use the radar return data to determine navigation solutions to stay centered in runways and taxiways in order to avoid fixed obstacles such as signage, lighting, etc. and/or to avoid traffic (e.g., aircraft and ground vehicles). According to various exemplary embodiments, processing electronics 410 can be any hardware and/or software processor or processing architecture capable of executing instructions and processing radar returns.


Display 412 (e.g., an electronic display) can be used to display information from processing electronics 410, for example obstacle avoidance data and/or velocity, heading, and/or position data of aircraft 100. According to various exemplary embodiments, display 412 can be similar to display 32 or can be any other display capable of providing velocity, heading, and/or position data of the aircraft. User interface 414 can be used to select what data is shown on display 412 or to select aircraft configuration. For example, obstacle avoidance data, velocity data, heading data, and/or position data.


Referring to FIG. 5, a navigation system 500 is configured to determine and provide velocity, heading, and/or position data of aircraft 100. Navigation system 500 may also determine and provide obstacle avoidance information. Navigation system 500 is similar to navigation system 400 and generally includes a radar antenna 506 on left wing 102, a radar antenna 508 on right wing 104, processing electronics 510, a display 512, and a user interface 514. Radar antennas 506 and 508, display 512, and user interface 514 are similar in configuration to radar antennas 406 and 408, display 412, and user interface 414. Navigation system 500 also includes a display driver 516, an aircraft configuration module 518, a global positioning device 520, and a memory device 522.


Processing electronics 510 are configured to interpret radar returns received at radar antennas 506 and 508. Processing electronics 510 may determine a velocity of first and second wings 102 and 104 based on radar returns received at radar antennas 506 and 508. Based on the determined velocity of wings 102 and 104, processing electronics 510 can calculate the heading, velocity, and/or position of the aircraft. Processing electronics 510 can also be configured to use the radar return data to determine navigation solutions to stay centered in runways and taxiways in order to avoid fixed obstacles such as signage, lighting, etc. and/or to avoid traffic (e.g., aircraft and ground vehicles). According to various exemplary embodiments, processing electronics 510 can be any hardware and/or software processor or processing architecture capable of executing instructions and processing radar returns.


Aircraft configuration module 518 is configured to store and/or provide various information related to a state or configuration of aircraft 100. For example, aircraft configuration module 518 may store information related to a center of gravity of aircraft 100, a landing gear position of aircraft 100, a position of radar antennas 506 and 508, and/or a position of a GPS antenna (e.g., for global positioning device 520). According to various exemplary embodiments, aircraft configuration module may be any hardware and/or software architecture capable of storing and/or providing aircraft configuration information, for example a database.


Global positioning device 520 can be any device configured to communicate with satellites in a global positioning system to determine a velocity, heading, and/or position of aircraft 100. Memory 522 is configured to store instructions for execution by processing electronics 510 and/or to store data for use by processing electronics 510 such as a history of calculated velocities, headings, and/or positions of the aircraft. Memory 522 may be a volatile or non-volatile memory.


Processing electronics 510 are further configured to use information received from aircraft configuration module 518, global positioning device 520, and memory device 522 to determine the velocity of wings 102 and 104 and determine the presence of obstacles. Processing electronics 510 may “blend” the inputs from radar antenna 506, radar antenna 508, and global positioning device 520, for example, processing electronics 510 may determine a generally high-precision solution for the velocity, heading, and position of the aircraft based on the inputs from these devices. The determination of the velocity, heading, and/or position of aircraft 100 may be adjusted depending on the information received from aircraft configuration module 518 or additional information can be derived from aircraft configuration module 518. For example, while basic information such as the velocity of the aircraft and turn rate can be derived from velocity of the wing tips, the actual track of the landing gear through a turn can be derived using the relative location of each set of wheels compared to the location of the radar antennas.


Display driver 516 is configured to process data from processing electronics for use by display 512. While user interface 514 can be directly coupled to processing electronics 510 as illustrated, according to other exemplary embodiments, input received from user interface 514 can also be processed by display driver 516 for output to display 516. Display driver 516 can then communicate the received input to various other components. Display driver 516 can be any computer hardware and/or software that enables display 512 to communicate with and receive data from processing electronics 512 or other components.


Referring to FIG. 6, a method 600 is configured to determine a heading, velocity, and/or position of aircraft 100 using a navigation system (e.g., navigation system 400 or 500) according to an exemplary embodiment. A radar antenna of wing 102 (e.g., antenna 406 or 506) receives a first radar return (step 602) and a radar antenna of wing 104 (e.g., antenna 408 or 508) receives a second radar return (step 604). Processing electronics (e.g., processing electronics 410 or 510) determine a velocity of each wing based on the radar returns (step 606). The processing electronics then determine or calculate the heading, velocity, and/or position of the aircraft based on the determined wing velocities (step 608).


Referring to FIG. 7, a method 700 is configured to determine a heading, velocity, and/or position of aircraft 100 using a navigation system (e.g., navigation system 400 or 500) according to another exemplary embodiment. A radar antenna of wing 102 (e.g., antenna 406 or 506) receives a first radar return (step 702) and a radar antenna of wing 104 (e.g., antenna 408 or 508) receives a second radar return (step 704). Processing electronics (e.g., processing electronics 410 or 510) determine a velocity of each wing based on the radar returns (step 706). Global positioning device 520 (or the processing electronics using global position device 520) determines a position of aircraft 100 (step 708). The processing electronics determine or calculate the heading, velocity, and/or position of the aircraft based on the determined wing velocities from step 706 and the determined position of the aircraft at step 708 (step 710). A display (e.g., display 412 or 512) then shows the calculated heading, velocity, and/or position of aircraft 100.


Referring to FIG. 8, a method 800 is configured to determine a heading, velocity, and/or position of aircraft 100 using a navigation system (e.g., navigation system 400 or 500) according to another exemplary embodiment. Global positioning device 520 (or the processing electronics using global position device 520) determines a position of aircraft 100 (step 802). The processing electronics determine or update the heading, velocity, and/or position of the aircraft based on the position of the aircraft determined at step 802 (step 804) and a display (e.g., display 412 or 512) shows an indication of the updated heading, velocity, and/or position of the aircraft (step 806). A radar antenna of wing 102 (e.g., antenna 406 or 506) receives a first radar return (step 808) and a radar antenna of wing 104 (e.g., antenna 408 or 508) receives a second radar return (step 810). The processing electronics determine a velocity of each wing based on the radar returns (step 812) and update, correct, or override the heading, velocity, and/or position of the aircraft based on the determined wing velocities from step 812 (step 814). The display then shows the updated heading, velocity, and/or position of aircraft 100 at step 806. The processing electronics then determine whether it is time for a global positioning update (step 816). If it is not time for a global positioning update, the navigation system continues to update the heading, velocity, and/or position of the aircraft using radar returns to determine the wing velocity. If it is time for a global positioning device update, method 800 returns to step 802 to update the heading, velocity, and/or position using global positioning data. It is noted that alternatively, the processing electronics may poll the global positioning device at fixed intervals or between radar updates without checking to see if global positioning updates are available.


Referring to FIG. 9 a method 900 is configured to determine a heading, velocity, and/or position of aircraft 100 using a navigation system (e.g., navigation system 400 or 500) according to another exemplary embodiment. Processing electronics (e.g., processing electronics 410 or 510) receives an aircraft configuration (step 902), for example a center of gravity of aircraft 100, a landing gear position of aircraft 100, a position of radar antennas 506 and 508, and/or a position of a GPS antenna. The processing electronics determine or update the heading, velocity, and/or position of the aircraft based on the configuration information from step 902 and previous radar returns or global positioning updates (step 904). A display (e.g., display 412 or 512) shows an indication of the updated heading, velocity, and/or position of the aircraft (step 906). A radar antenna of wing 102 (e.g., antenna 406 or 506) receives a first radar return (step 908) and a radar antenna of wing 104 (e.g., antenna 408 or 508) receives a second radar return (step 910). The processing electronics determine a velocity of each wing based on the radar returns (step 912) and update, override, or correct the heading, velocity, and/or position of the aircraft based on the determined wing velocities from step 912 (step 914). The display then shows the updated heading, velocity, and/or position of aircraft 100 at step 806.


Furthermore, it should be appreciated that the specific sequences of processes shown in the embodiments of FIGS. 6-9 are by way of example only. For example, the methods may determine the heading, velocity, and/or position of the aircraft using radar returns, global positioning information, and aircraft configuration information. Furthermore, there may be no check for a global positioning update (step 816) but the system may simply poll the current data at fixed time periods. According to other exemplary embodiments, additional steps may be included or various steps can be omitted from the illustrated methods.


Referring to FIG. 10, a side view of aircraft 100 illustrates various radar returns and geometries that may be used to determine a velocity vector 1000 of wing 102 or wing 104. The wing speed is determined by Doppler shift in ground echoes or returns. Each individual ground patch echo has a Doppler value that is a function of the range and geometry of observation, the angle of elevation & azimuth with reference to the wing speed vector. For example, an angle 1002 between a radar pulse 1004 and wing velocity vector 1000. The Doppler value or frequency is generally equal to twice the measured velocity divided by the wavelength of the radar return at the frequency of operation. A ground patch echo from a given Range R, will have a velocity V given by V=Vwing×cos(elevation), where the elevation=arcsine (H/R) and H is the height of the radar.


Referring also to FIG. 11, navigation system 400 or 500 collects echoes from the radar antennas and classifies the echoes into a Range×Doppler Matrix (RDM) 1100. The number of echoes are summed by column. In a first pre-selection, the navigation system determines the N×Doppler values that totalize the greater number of echoes. Processing electronics 410 or 510 then performs a best fit algorithm between the measured RDM and the ground echoes theoretical signature to determine wing velocity 1000.


To estimate the wing velocity processing electronics 410 or 510 may execute a Recursive Least Square algorithm that estimates the wing velocity using the data measurements and adaptative time varying filtering to estimate the parameters at a specific time “n.” The parameters at time “n” are determined based on an estimation of time “n−1” and measured data at time “n”. Alternatively, a Bayesian estimation algorithm can be used to estimate the wing velocity.


The heading of aircraft 100 may be determined by comparing the wing velocities. If the wing velocities are the same, the aircraft is moving in a straight line or stationary. If the wing velocities are different, the aircraft is turning. The wing with the higher velocity is the outside wing of the turn (e.g., if left wing 102 is faster, the aircraft is turning right and vice versa). The position of the aircraft can be determined from a history of velocity and heading determinations from an initial starting position.


While the detailed drawings, specific examples, detailed algorithms, and particular configurations given describe preferred and exemplary embodiments, they serve the purpose of illustration only. The inventions disclosed are not limited to the specific forms shown. For example, the methods may be performed in any of a variety of sequence of steps or according to any of a variety of mathematical formulas. The hardware and software configurations shown and described may differ depending on the chosen performance characteristics and physical characteristics of the radar and processing devices. For example, the type of system components and their interconnections may differ. The systems and methods depicted and described are not limited to the precise details and conditions disclosed. The flow charts show preferred exemplary operations only. The specific data types and operations are shown in a non-limiting fashion. For example, the scope of the claims are intended to cover any technique that uses a selectable fractional aperture unless literally delineated from the claims. Furthermore, other substitutions, modifications, changes, and omissions may be made in the design, operating conditions, and arrangement of the exemplary embodiments without departing from the scope of the invention as expressed in the appended claims.

Claims
  • 1. A navigation system for use on an aircraft for determining a heading, velocity, and/or position of the aircraft, comprising: a first radar antenna for mounting to a first wing of the aircraft and configured to receive radar returns;a second radar antenna for mounting to a second wing of the aircraft and configured to receive radar returns, the first wing and second wing extending from opposite sides of the aircraft; andprocessing electronics configured to determine a velocity of the first and second wings based on the radar returns, the processing electronics calculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities.
  • 2. The navigation system of claim 1, wherein the radar antennas are configured to be located at or near tips of the first and second wings.
  • 3. The navigation system of claim 1, further comprising: a global positioning device for mounting to the aircraft and configured to determine the position of the aircraft,wherein the processing electronics determine the heading, velocity, and/or position of the aircraft based on the wing velocities and the position of the aircraft determined by the global positioning device.
  • 4. The navigation system of claim 3, wherein the processing electronics update the heading, velocity, and/or position of the aircraft using the wing velocities at time periods between updates of the heading, velocity, and/or position based on the position of the aircraft determined by the global positioning device.
  • 5. The navigation system of claim 3, wherein the processing electronics use the heading, velocity, and/or position of the aircraft determined from the wing velocities to override or correct the heading, velocity, and/or position of the aircraft determined from the position of the aircraft determined by the global positioning device.
  • 6. The navigation system of claim 1, wherein the processing electronics use aircraft configuration information to determine the heading, velocity, and/or position of the aircraft.
  • 7. The navigation system of claim 6, wherein the aircraft configuration information comprises at least one of a location of an aircraft center of gravity, a landing gear position, a position of one or both the radar antennas, and a global positioning system position.
  • 8. The navigation system of claim 1, wherein the first and second radar antennas are also used to locate potential obstructions relative to the position of the aircraft.
  • 9. The navigation system of claim 1, wherein the processing electronics calculate the heading of the aircraft based on a difference between the wing velocities, the processing electronics calculate the velocity of the aircraft based on a history of differences between the wing velocities, and the processing electronics calculate the position of the aircraft based on a predetermined starting point of the aircraft and a history of calculated velocities of the aircraft.
  • 10. The navigation system of claim 1, wherein the wing velocities are velocities relative to the ground, velocities relative to each other, velocities relative to weather, velocities relative to terrain, or velocities relative to an obstacle.
  • 11. The navigation system of claim 1, wherein the determined heading, velocity, and/or position of the aircraft is stored in a memory device and/or displayed on an electronic display.
  • 12. The navigation system of claim 1, wherein the aircraft is taxiing or on a runway and the wing velocities are determined relative to the ground.
  • 13. A method for determining a heading, velocity, and/or position of an aircraft, comprising: receiving a first radar return at a radar antenna for mounting to a first wing of the aircraft;receiving a second radar return at a radar antenna mounted to a second wing of the aircraft, the first wing and the second wing extending from opposite sides of the aircraft;determining a velocity of each wing based on the radar returns using processing electronics; andcalculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities using the processing electronics.
  • 14. The method of claim 13, wherein the radar antennas for mounting to the first and second wings are configured to be located at or near tips of the first and second wings.
  • 15. The method of claim 13, further comprising: determining a position of the aircraft at a global positioning device for mounting on the aircraft,wherein the processing electronics determine the heading, velocity, and/or position of the aircraft based on the wing velocities and based on the position of the aircraft determined by the global positioning device.
  • 16. The method of claim 15, further comprising: updating the heading, velocity, and/or position of the aircraft using the wing velocities at time periods between updates of the heading, velocity, and/or position based on the position of the aircraft determined by the global positioning device.
  • 17. The method of claim 13, further comprising: receiving an aircraft configuration at the processing electronics, the processing electronics using the aircraft configuration to determine the heading, velocity, and/or position of the aircraft,wherein the aircraft configuration comprises at least one of a location of an aircraft center of gravity, a landing gear position, a position of one or both the radar antennas, and a global positioning system position.
  • 18. The method of claim 17, wherein the processing electronics calculate the heading of the aircraft based on a difference between the wing velocities, the processing electronics calculate the velocity of the aircraft based on a history of differences between the wing velocities, and the processing electronics calculate the position of the aircraft based on a predetermined starting point of the aircraft and a history of calculated velocities of the aircraft.
  • 19. The method of claim 13, wherein the wing velocities are velocities relative to the ground, to each other, to signage, to lighting structures, or to buildings.
  • 20. An apparatus for determining a heading, velocity, and/or position of an aircraft, comprising: means for receiving a first radar return at a first wing of the aircraft;means for receiving a second radar return at a second wing of the aircraft, the first wing and the second wing extending from opposite sides of the aircraft;means for determining a velocity of each wing based on the radar returns; andmeans for calculating the heading, velocity, and/or position of the aircraft based on the determined wing velocities.
US Referenced Citations (433)
Number Name Date Kind
2416155 Chubb Feb 1947 A
2849184 Arden et al. Aug 1958 A
2929059 Parker Mar 1960 A
2930035 Altekruse Mar 1960 A
2948892 White Aug 1960 A
2965894 Sweeney Dec 1960 A
2994966 Senitsky et al. Aug 1961 A
3031660 Young Apr 1962 A
3049702 Schreitmueller Aug 1962 A
3064252 Varela Nov 1962 A
3070795 Chambers Dec 1962 A
3071766 Fenn Jan 1963 A
3072903 Meyer Jan 1963 A
3107351 Milam Oct 1963 A
3113310 Standing Dec 1963 A
3129425 Sanner Apr 1964 A
3153234 Begeman et al. Oct 1964 A
3175215 Blasberg et al. Mar 1965 A
3212088 Alexander et al. Oct 1965 A
3221328 Walter Nov 1965 A
3241141 Wall Mar 1966 A
3274593 Varela et al. Sep 1966 A
3325807 Burns et al. Jun 1967 A
3334344 Colby, Jr. Aug 1967 A
3339199 Pichafroy Aug 1967 A
3373423 Levy Mar 1968 A
3397397 Barney Aug 1968 A
3448450 Alfandari et al. Jun 1969 A
3618090 Garrison Nov 1971 A
3680094 Bayle et al. Jul 1972 A
3716855 Asam Feb 1973 A
3739380 Burdic et al. Jun 1973 A
3781878 Kirkpatrick Dec 1973 A
3810175 Bell May 1974 A
3815132 Case et al. Jun 1974 A
3866222 Young Feb 1975 A
3885237 Kirkpatrick May 1975 A
3956749 Magorian May 1976 A
4024537 Hart May 1977 A
4058701 Gruber et al. Nov 1977 A
4058710 Altmann Nov 1977 A
4063218 Basov et al. Dec 1977 A
4277845 Smith et al. Jul 1981 A
4405986 Gray Sep 1983 A
4435707 Clark Mar 1984 A
4481519 Margerum Nov 1984 A
4532515 Cantrell et al. Jul 1985 A
4594676 Breiholz et al. Jun 1986 A
4595925 Hansen Jun 1986 A
4598292 Devino Jul 1986 A
4628318 Alitz Dec 1986 A
4646244 Bateman et al. Feb 1987 A
4649388 Atlas Mar 1987 A
4654665 Kiuchi et al. Mar 1987 A
4685149 Smith et al. Aug 1987 A
4760396 Barney et al. Jul 1988 A
4828382 Vermilion May 1989 A
4843398 Houston et al. Jun 1989 A
4912477 Lory Mar 1990 A
4914436 Bateman et al. Apr 1990 A
4924401 Bice et al. May 1990 A
4939513 Paterson et al. Jul 1990 A
4951059 Taylor, Jr. Aug 1990 A
4953972 Zuk Sep 1990 A
4965573 Gallagher et al. Oct 1990 A
4987419 Salkeld Jan 1991 A
5045855 Moreira Sep 1991 A
5047779 Hager Sep 1991 A
5047781 Bleakney Sep 1991 A
5049886 Seitz et al. Sep 1991 A
5166688 Moreira Nov 1992 A
5173703 Mangiapane et al. Dec 1992 A
5175554 Mangiapane et al. Dec 1992 A
5198819 Susnjara Mar 1993 A
5202690 Frederick Apr 1993 A
5247303 Cornelius et al. Sep 1993 A
5311183 Mathews et al. May 1994 A
5332998 Avignon et al. Jul 1994 A
5345241 Huddle Sep 1994 A
5442364 Lee Aug 1995 A
5539409 Mathews et al. Jul 1996 A
5559515 Alimena et al. Sep 1996 A
5559518 DiDomizio Sep 1996 A
5592178 Chang et al. Jan 1997 A
5736957 Raney Apr 1998 A
5820080 Eschenbach Oct 1998 A
5828332 Frederick Oct 1998 A
5831570 Ammar et al. Nov 1998 A
5839080 Muller et al. Nov 1998 A
5867119 Corrubia et al. Feb 1999 A
5894286 Morand et al. Apr 1999 A
5920276 Frederick Jul 1999 A
5923279 Bamler et al. Jul 1999 A
5936575 Azzarelli et al. Aug 1999 A
5945926 Ammar et al. Aug 1999 A
5978715 Briffe et al. Nov 1999 A
6002347 Daly et al. Dec 1999 A
6023240 Sutton Feb 2000 A
6061016 Lupinski et al. May 2000 A
6061022 Menegozzi et al. May 2000 A
6064942 Johnson et al. May 2000 A
6075484 Daniel et al. Jun 2000 A
6092009 Glover Jul 2000 A
6112141 Briffe et al. Aug 2000 A
6112570 Hruschak Sep 2000 A
6122570 Muller et al. Sep 2000 A
6127944 Daly et al. Oct 2000 A
6128553 Gordon et al. Oct 2000 A
6138060 Conner et al. Oct 2000 A
6150901 Auken Nov 2000 A
6154151 McElreath et al. Nov 2000 A
6154169 Kuntman Nov 2000 A
6157339 Sato et al. Dec 2000 A
6157891 Lin Dec 2000 A
6163021 Mickelson Dec 2000 A
6166661 Anderson et al. Dec 2000 A
6169770 Henely Jan 2001 B1
6178391 Anderson et al. Jan 2001 B1
6184816 Zheng et al. Feb 2001 B1
6188330 Glover Feb 2001 B1
6194980 Thon Feb 2001 B1
6199008 Aratow et al. Mar 2001 B1
6201494 Kronfeld Mar 2001 B1
6204806 Hoech Mar 2001 B1
6205400 Lin Mar 2001 B1
6208284 Woodell et al. Mar 2001 B1
6219592 Muller et al. Apr 2001 B1
6233522 Morici May 2001 B1
6236351 Conner et al. May 2001 B1
6259400 Higgins et al. Jul 2001 B1
6266114 Skarohlid Jul 2001 B1
6278799 Hoffman Aug 2001 B1
6281832 McElreath Aug 2001 B1
6285298 Gordon Sep 2001 B1
6285337 West et al. Sep 2001 B1
6285926 Weiler et al. Sep 2001 B1
6289277 Feyereisen et al. Sep 2001 B1
6311108 Ammar et al. Oct 2001 B1
6317468 Meyer Nov 2001 B1
6317690 Gia Nov 2001 B1
6317872 Gee et al. Nov 2001 B1
6340946 Wolfson et al. Jan 2002 B1
6345127 Mitchell Feb 2002 B1
6359585 Bechman et al. Mar 2002 B1
6373418 Abbey Apr 2002 B1
6374286 Gee et al. Apr 2002 B1
6377202 Kropfli et al. Apr 2002 B1
6377892 Johnson et al. Apr 2002 B1
6388607 Woodell May 2002 B1
6388608 Woodell et al. May 2002 B1
6389354 Hicks et al. May 2002 B1
6401038 Gia Jun 2002 B2
6411890 Zimmerman Jun 2002 B1
6421000 McDowell Jul 2002 B1
6421603 Pratt et al. Jul 2002 B1
6424288 Woodell Jul 2002 B1
6426717 Maloratsky Jul 2002 B1
6426720 Ross et al. Jul 2002 B1
6427122 Lin Jul 2002 B1
6441773 Kelly et al. Aug 2002 B1
6445310 Bateman et al. Sep 2002 B1
6448922 Kelly Sep 2002 B1
6452511 Kelly et al. Sep 2002 B1
6456236 Hauck et al. Sep 2002 B1
6456238 Posey Sep 2002 B1
6462703 Hedrick Oct 2002 B2
6473026 Ali-Mehenni et al. Oct 2002 B1
6473037 Vail et al. Oct 2002 B2
6473240 Dehmlow Oct 2002 B1
6492934 Hwang et al. Dec 2002 B1
6501424 Haendel et al. Dec 2002 B1
6512476 Woodell Jan 2003 B1
6512527 Barber et al. Jan 2003 B1
6516272 Lin Feb 2003 B2
6516283 McCall et al. Feb 2003 B2
6520056 Nemeth et al. Feb 2003 B1
6525674 Kelly et al. Feb 2003 B1
6531669 Miller et al. Mar 2003 B1
6549161 Woodell Apr 2003 B1
6567728 Kelly et al. May 2003 B1
6574030 Mosier Jun 2003 B1
6577947 Kronfeld et al. Jun 2003 B1
6590528 DeWulf Jul 2003 B1
6591171 Ammar et al. Jul 2003 B1
6593875 Bergin et al. Jul 2003 B2
6600443 Landt Jul 2003 B2
6603425 Woodell Aug 2003 B1
6650275 Kelly et al. Nov 2003 B1
6650291 West et al. Nov 2003 B1
6653947 Dwyer et al. Nov 2003 B2
6667710 Cornell et al. Dec 2003 B2
6690298 Barber et al. Feb 2004 B1
6690299 Suiter Feb 2004 B1
6690317 Szeto et al. Feb 2004 B2
6697008 Sternowski Feb 2004 B1
6697012 Lodwig et al. Feb 2004 B2
6710663 Berquist Mar 2004 B1
6714186 Mosier et al. Mar 2004 B1
6724344 Stockmaster et al. Apr 2004 B1
6731236 Hager et al. May 2004 B1
6738011 Evans May 2004 B1
6741203 Woodell May 2004 B1
6741208 West et al. May 2004 B1
6744382 Lapis et al. Jun 2004 B1
6744408 Stockmaster Jun 2004 B1
6757624 Hwang et al. Jun 2004 B1
6771626 Golubiewski et al. Aug 2004 B1
6782392 Weinberger et al. Aug 2004 B1
6799095 Owen et al. Sep 2004 B1
6804614 McGraw et al. Oct 2004 B1
6806846 West Oct 2004 B1
6807538 Weinberger et al. Oct 2004 B1
6813777 Weinberger et al. Nov 2004 B1
6819983 McGraw Nov 2004 B1
6822617 Mather et al. Nov 2004 B1
6825804 Doty Nov 2004 B1
6839017 Dillman Jan 2005 B1
6850185 Woodell Feb 2005 B1
6862323 Loper Mar 2005 B1
6862501 He Mar 2005 B2
6865452 Burdon Mar 2005 B2
6879280 Bull et al. Apr 2005 B1
6879886 Wilkins et al. Apr 2005 B2
6882302 Woodell et al. Apr 2005 B1
6918134 Sherlock et al. Jul 2005 B1
6933885 Stockmaster et al. Aug 2005 B1
6938258 Weinberger et al. Aug 2005 B1
6950062 Mather et al. Sep 2005 B1
6959057 Tuohino Oct 2005 B1
6972727 West et al. Dec 2005 B1
6977608 Anderson et al. Dec 2005 B1
6990022 Morikawa et al. Jan 2006 B2
6992614 Joyce Jan 2006 B1
6995726 West et al. Feb 2006 B1
6998908 Sternowski Feb 2006 B1
6999022 Vesel et al. Feb 2006 B1
6999027 Stockmaster Feb 2006 B1
7002546 Stuppi et al. Feb 2006 B1
7010398 Wilkins et al. Mar 2006 B2
7023375 Klausing et al. Apr 2006 B2
7026956 Wenger et al. Apr 2006 B1
7028304 Weinberger et al. Apr 2006 B1
7034753 Elsallal et al. Apr 2006 B1
7042387 Ridenour et al. May 2006 B2
7053796 Barber May 2006 B1
7057549 Block Jun 2006 B2
7064680 Reynolds et al. Jun 2006 B2
7069120 Koenck et al. Jun 2006 B1
7089092 Wood et al. Aug 2006 B1
7092645 Sternowski Aug 2006 B1
7098913 Etherington et al. Aug 2006 B1
7109912 Paramore et al. Sep 2006 B1
7109913 Paramore et al. Sep 2006 B1
7123260 Brust Oct 2006 B2
7129885 Woodell et al. Oct 2006 B1
7145501 Manfred et al. Dec 2006 B1
7148816 Carrico Dec 2006 B1
7151507 Herting Dec 2006 B1
7158072 Venkatachalam et al. Jan 2007 B1
7161525 Finley et al. Jan 2007 B1
7170446 West et al. Jan 2007 B1
7170959 Abbey Jan 2007 B1
7180476 Guell et al. Feb 2007 B1
7191406 Barber et al. Mar 2007 B1
7196329 Wood et al. Mar 2007 B1
7205933 Snodgrass Apr 2007 B1
7209070 Gilliland et al. Apr 2007 B2
7212216 He et al. May 2007 B2
7218268 VandenBerg May 2007 B2
7219011 Barber May 2007 B1
7242343 Woodell Jul 2007 B1
7242345 Raestad et al. Jul 2007 B2
7250903 McDowell Jul 2007 B1
7265710 DeAgro Sep 2007 B2
7269657 Alexander et al. Sep 2007 B1
7272472 McElreath Sep 2007 B1
7280068 Lee et al. Oct 2007 B2
7289058 Shima Oct 2007 B2
7292178 Woodell et al. Nov 2007 B1
7292180 Schober Nov 2007 B2
7295150 Burlet et al. Nov 2007 B2
7295901 Little et al. Nov 2007 B1
7301496 Honda et al. Nov 2007 B2
7307576 Koenigs Dec 2007 B1
7307577 Kronfeld et al. Dec 2007 B1
7307583 Woodell et al. Dec 2007 B1
7312725 Berson et al. Dec 2007 B2
7312743 Ridenour et al. Dec 2007 B2
7317427 Pauplis et al. Jan 2008 B2
7321332 Focke et al. Jan 2008 B2
7337043 Bull Feb 2008 B2
7352292 Alter et al. Apr 2008 B2
7372394 Woodell et al. May 2008 B1
7373223 Murphy May 2008 B2
7375678 Feyereisen et al. May 2008 B2
7379014 Woodell et al. May 2008 B1
7379796 Walsdorf et al. May 2008 B2
7417578 Woodell et al. Aug 2008 B1
7417579 Woodell Aug 2008 B1
7423578 Tietjen Sep 2008 B1
7446697 Burlet et al. Nov 2008 B2
7474262 Alland Jan 2009 B2
7479920 Niv Jan 2009 B2
7486220 Kronfeld et al. Feb 2009 B1
7486291 Berson et al. Feb 2009 B2
7492304 Woodell et al. Feb 2009 B1
7492305 Woodell et al. Feb 2009 B1
7515087 Woodell et al. Apr 2009 B1
7515088 Woodell et al. Apr 2009 B1
7525448 Wilson et al. Apr 2009 B1
7528765 Woodell et al. May 2009 B1
7541970 Godfrey et al. Jun 2009 B1
7541971 Woodell et al. Jun 2009 B1
7557735 Woodell et al. Jul 2009 B1
7570177 Reynolds et al. Aug 2009 B2
7576680 Woodell Aug 2009 B1
7603209 Dwyer et al. Oct 2009 B2
7609200 Woodell et al. Oct 2009 B1
7612706 Honda et al. Nov 2009 B2
7616150 Woodell Nov 2009 B1
7633428 McCusker et al. Dec 2009 B1
7633430 Wichgers et al. Dec 2009 B1
7639175 Woodell Dec 2009 B1
7664601 Daly, Jr. Feb 2010 B2
7675461 McCusker et al. Mar 2010 B1
7693621 Chamas Apr 2010 B1
7696921 Finley et al. Apr 2010 B1
7714767 Kronfeld et al. May 2010 B1
7733264 Woodell et al. Jun 2010 B1
7783427 Woodell et al. Aug 2010 B1
7783429 Walden et al. Aug 2010 B2
7791529 Filias et al. Sep 2010 B2
7808422 Woodell et al. Oct 2010 B1
7843380 Woodell Nov 2010 B1
7859448 Woodell et al. Dec 2010 B1
7859449 Woodell et al. Dec 2010 B1
7864103 Weber et al. Jan 2011 B2
7868811 Woodell et al. Jan 2011 B1
7872594 Vesel Jan 2011 B1
7889117 Woodell et al. Feb 2011 B1
7889118 Finley et al. Feb 2011 B1
7965223 McCusker Jun 2011 B1
7965225 Dickerson et al. Jun 2011 B1
8035547 Flanigan et al. Oct 2011 B1
8059025 D'Addio Nov 2011 B2
8068984 Smith et al. Nov 2011 B2
8072368 Woodell Dec 2011 B1
8077078 Woodell et al. Dec 2011 B1
8140223 Whitehead et al. Mar 2012 B2
8159464 Gribble et al. Apr 2012 B1
8232917 Scherzinger et al. Jul 2012 B2
8296065 Haynie et al. Oct 2012 B2
8373580 Bunch et al. Feb 2013 B2
8410975 Bell et al. Apr 2013 B1
8477062 Kanellis Jul 2013 B1
8493241 He Jul 2013 B2
8515600 McCusker Aug 2013 B1
8558731 Woodell Oct 2013 B1
8576112 Garrec et al. Nov 2013 B2
8583315 Whitehead et al. Nov 2013 B2
8594879 Roberge et al. Nov 2013 B2
8603288 Sampica et al. Dec 2013 B2
8634993 McClure et al. Jan 2014 B2
8639416 Jones et al. Jan 2014 B2
8643533 Woodell et al. Feb 2014 B1
8691043 Sampica et al. Apr 2014 B2
8717226 Bon et al. May 2014 B2
8936057 Sampica et al. Jan 2015 B2
20010023390 Gia Sep 2001 A1
20020039070 Ververs et al. Apr 2002 A1
20020111717 Scherzinger et al. Aug 2002 A1
20020116125 Lin Aug 2002 A1
20020116126 Lin Aug 2002 A1
20020158256 Yamada et al. Oct 2002 A1
20020185600 Kerr Dec 2002 A1
20030021491 Brust Jan 2003 A1
20030071828 Wilkins et al. Apr 2003 A1
20030093187 Walker May 2003 A1
20030102999 Bergin et al. Jun 2003 A1
20030160718 Nagasaku Aug 2003 A1
20030195672 He Oct 2003 A1
20030216859 Martell et al. Nov 2003 A1
20030222887 Wilkins et al. Dec 2003 A1
20040044445 Burdon Mar 2004 A1
20040059473 He Mar 2004 A1
20040072575 Young et al. Apr 2004 A1
20040083038 He Apr 2004 A1
20040160341 Feyereisen et al. Aug 2004 A1
20040160364 Regev Aug 2004 A1
20040181318 Redmond et al. Sep 2004 A1
20040264549 Hoole Dec 2004 A1
20050004748 Pinto Jan 2005 A1
20050052451 Servantie Mar 2005 A1
20050174350 Ridenour et al. Aug 2005 A1
20050200502 Reusser et al. Sep 2005 A1
20050230563 Corcoran, III Oct 2005 A1
20060004497 Bull Jan 2006 A1
20060097895 Reynolds et al. May 2006 A1
20060164284 Pauplis et al. Jul 2006 A1
20060227012 He Oct 2006 A1
20060244636 Rye et al. Nov 2006 A1
20060290531 Reynolds et al. Dec 2006 A1
20070001897 Alland Jan 2007 A1
20070002078 He et al. Jan 2007 A1
20070008214 Wasiewicz Jan 2007 A1
20070013575 Lee et al. Jan 2007 A1
20070018887 Feyereisen et al. Jan 2007 A1
20070032951 Tanenhaus et al. Feb 2007 A1
20070060063 Wright et al. Mar 2007 A1
20070146364 Aspen Jun 2007 A1
20070171094 Alter et al. Jul 2007 A1
20070176794 Feyereisen et al. Aug 2007 A1
20070247350 Ryan Oct 2007 A1
20070279253 Priest Dec 2007 A1
20080018524 Christianson Jan 2008 A1
20080051947 Kemp Feb 2008 A1
20080074308 Becker et al. Mar 2008 A1
20080111731 Hubbard et al. May 2008 A1
20080180351 He Jul 2008 A1
20090040070 Alter et al. Feb 2009 A1
20090152391 McWhirk Jun 2009 A1
20090164067 Whitehead et al. Jun 2009 A1
20090207048 He et al. Aug 2009 A1
20100033499 Gannon et al. Feb 2010 A1
20100312428 Roberge et al. Dec 2010 A1
20100312461 Haynie et al. Dec 2010 A1
20110054729 Whitehead et al. Mar 2011 A1
20110282580 Mohan Nov 2011 A1
20120053831 Halder Mar 2012 A1
20120150426 Conway Jun 2012 A1
20120174445 Jones et al. Jul 2012 A1
20120215410 McClure et al. Aug 2012 A1
20130041529 He et al. Feb 2013 A1
Foreign Referenced Citations (2)
Number Date Country
196 49 838 Apr 1998 DE
0 814 744 Jun 1959 GB
Non-Patent Literature Citations (112)
Entry
U.S. Appl. No. 11/851,323, filed Sep. 6, 2007, McCusker.
U.S. Appl. No. 11/863,219, filed Sep. 27, 2007, Woodell.
U.S. Appl. No. 11/863,221, filed Sep. 27, 2007, Woodell.
U.S. Appl. No. 11/899,801, filed Sep. 6, 2007, Woodell et al.
U.S. Appl. No. 11/900,002, filed Sep. 6, 2007, Woodell et al.
U.S. Appl. No. 12/167,200, filed Jul. 2, 2008, Woodell et al.
U.S. Appl. No. 12/167,203, filed Jul. 2, 2008, Woodell.
U.S. Appl. No. 12/167,208, filed Jul. 2, 2008, Dickerson et al.
U.S. Appl. No. 12/180,293, filed Jul. 25, 2008, Woodell et al.
U.S. Appl. No. 12/236,464, filed Sep. 23, 2008, Rockwell Collins.
U.S. Appl. No. 13/224,992, filed Sep. 2, 2011, Hufnagel et al.
U.S. Appl. No. 13/250,307, filed Sep. 30, 2011, Jinkins.
U.S. Appl. No. 13/250,798, filed Sep. 30, 2011, Jinkins.
U.S. Appl. No. 13/627,788, filed Sep. 26, 2012, Rockwell Collins.
U.S. Appl. No. 13/857,955, filed Apr. 5, 2013, Barber et al.
U.S. Appl. No. 13/250,798, filed Sep. 30, 2011, Rockwell Collins.
U.S. Appl. No. 14/301,199, filed Jun. 10, 2014, Rockwell Collins.
U.S. Appl. No. 14/482,681, filed Sep. 10, 2014, Rockwell Collins.
“MountainScope™ on a TabletPC,” PCAvionics™, printed from website www.pcavionics.com on Aug. 28, 2007, 1 page.
TAWS Class A and Class B, Terrain Awareness and Warning Systems, Universal® Avionics Systems Corporation, Sep. 2007, 6 pages.
“TAWS Terrain Awareness and Warning System,” Universal® Avionics, printed from website www.uasc.com on Aug. 28, 2007, 2 pages.
Adams, Charlotte, “Synthetic Vision: Picturing the Future,” Avionics magazine, Oct. 1, 2006, printed from website www.aviationtoday.com, 4 pages.
Adams, Charlotte, “Synthetic Vision: Picturing the Future,” Avionics magazine, Solutions for Global Airspace Electronics, Oct. 2006, cover and pp. 22-29.
Airports Authority of India, Chapter 7: Visual Aids for Navigation—Lights, available prior to Jan. 1, 2005, retrieved from the internet at: http://www.aai.aero/aai—employees/chapter—7.pdf on Sep. 26, 2014, 33 pages.
Blue Mountain Avionics' Products, printed from website www.bluemountainavionics.com on Aug. 28, 2007, 4 pages.
Brailovsky et al., REVS122: A Radar-Based Enhanced Vision System for Degraded Visual Environments, Proc. of SPIE vol. 9087 908708-1, retrieved from the internet at http://proceedings.spiedigitallibrary.org on Jun. 25, 2014, 13 pages.
Carter, S. P., D. D. Blankenship, M. E. Peters, D. A. Young, J. W. Holt, and D. L. Morse (2007), Radar-based subglacial lake classification in Antarctica, Geochem. Geophys. Geosyst., 8, 003016, doi:10.1029/2006GC001408, 20 pages.
Federal Aviation Administration, Advisory Circular AC 90-106, “Enhanced Flight Vision Systems”, initiated by AFS-400, dated Jun. 2, 2010, 55 pages.
Federal Aviation Administration, Aeronautical Information Manual (AIM) Basic Flight Information and ATC Procedures, dated Jul. 24, 2014, 2 pages.
Final Office Action on U.S. Appl. No. 13/250,798 dated Sep. 4, 2014, 22 pages.
Final Office Action on U.S. Appl. No. 13/250,307 Dated Jun. 11, 2014, 8 pages.
Final Office Action on U.S. Appl. No. 13/250,798 Dated Aug. 7, 2015, 21 pages.
Fountain, J.R., Digital Terrain Systems, Airborne Navigation Systems Workshop (Digest No. 1997/169), IEE Colloquium, pp. 4/1-4/6, Feb. 21, 1997.
G2000, Garmin, printed from website https://buy.garmin.com/shop/shop.do?cID=153&pID=97668 on Jun. 28, 2011, 2 pages.
G3000, Garmin, printed from website https://buy.garmin.com/shop/shop.do?cID=153&pID=66916 on Jun. 28, 2011, 2 pages.
G5000, Garmin, printed from website https://buy.garmin.com/shop/shop.do?cID=153&pID=90821&ra=true on Apr. 20, 2011, 2 pages.
Honeywell, RDR-4B Forward looking windshear detection / weather radar system user's manual with radar operating guidelines, Rev. 6, Jul. 2003, 106 pages.
Johnson, A., et al., Vision Guided Landing of an Autonomous Helicopter in Hazardous Terrain, Robotics and Automation, 2005. ICRA 2005. Proceedings of the 2005 IEEE International Conference, pp. 3966-3971, Apr. 18-22, 2005.
Kuntman, D., Airborne system to address leading cause of injuries in non-fatal airline accidents, ICAO Journal, Mar. 2000, 4 pages.
Non-Final Office Action on U.S. Appl. No. 13/250,798 Dated Mar. 18, 2015, 21 pages.
Non-Final Office Action on U.S. Appl. No. 14/301,199 dated Sep. 9, 2015, 18 pages.
Notice of Allowance for U.S. Appl. No. 11/863,215, mail date Oct. 13, 2009, 8 pages.
Notice of Allowance for U.S. Appl. No. 11/863,219, mail date Jun. 23, 2009, 7 pages.
Notice of Allowance for U.S. Appl. No. 11/863,221, mail date Aug. 2, 2010, 9 pages.
Notice of Allowance for U.S. Appl. No. 11/899,801, mail date Aug. 19, 2010, 5 pages.
Notice of Allowance for U.S. Appl. No. 11/900,002, mail date Sep. 14, 2010, 5 pages.
Notice of Allowance for U.S. Appl. No. 12/167,200, mail date Oct. 28, 2010, 5 pages.
Notice of Allowance for U.S. Appl. No. 12/167,203, mail date Jun. 21, 2013, 7 pages.
Notice of Allowance for U.S. Appl. No. 12/167,208, mail date Mar. 21, 2011, 8 pages.
Notice of Allowance for U.S. Appl. No. 12/180,293, mail date Aug. 4, 2011, 8 pages.
Notice of Allowance on U.S. Appl. No. 13/241,051 Dated Aug. 28, 2014, 9 pages.
Notice of Allowance on U.S. Appl. No. 13/247,742 Dated Jul. 30, 2014, 9 pages.
Office Action for U.S. Appl. No. 11/851,323, mail date Dec. 15, 2010, 13 pages.
Office Action for U.S. Appl. No. 11/851,323, mail date Aug. 6, 2009, 23 pages.
Office Action for U.S. Appl. No. 11/851,323, mail date Jul. 5, 2012, 23 pages.
Office Action for U.S. Appl. No. 11/863,215, mail date May 27, 2009, 5 pages.
Office Action for U.S. Appl. No. 11/863,215, mail date Nov. 12, 2008, 8 pages.
Office Action for U.S. Appl. No. 11/863,219, mail date Dec. 12, 2008, 7 pages.
Office Action for U.S. Appl. No. 11/863,221, mail date Dec. 18, 2009, 5 pages.
Office Action for U.S. Appl. No. 11/863,221, mail date Dec. 8, 2008, 8 pages.
Office Action for U.S. Appl. No. 11/863,221, mail date May 26, 2009, 5 pages.
Office Action for U.S. Appl. No. 12/167,200, mail date Jul. 21, 2010, 6 pages.
Office Action for U.S. Appl. No. 12/167,203, mail date Aug. 26, 2010, 9 pages.
Office Action for U.S. Appl. No. 12/167,203, mail date Jul. 20, 2011, 6 pages.
Office Action for U.S. Appl. No. 12/167,203, mail date Mar. 7, 2013, 5 pages.
Office Action for U.S. Appl. No. 12/167,203, mail date Oct. 31, 2011, 5 pages.
Office Action for U.S. Appl. No. 12/167,203, mail date Sep. 21, 2012, 6 pages.
Office Action for U.S. Appl. No. 12/167,208, mail date Dec. 30, 2009, 10 pages.
Office Action for U.S. Appl. No. 12/167,208, mail date Feb. 7, 2011, 8 pages.
Office Action for U.S. Appl. No. 12/167,208, mail date Jun. 3, 2010, 11 pages.
Office Action for U.S. Appl. No. 12/167,208, mail date Oct. 19, 2010, 8 pages.
Office Action for U.S. Appl. No. 12/180,293, mail date Jan. 4, 2011, 5 pages.
Office Action for U.S. Appl. No. 12/180,293, mail date Jul. 28, 2010, 8 pages.
Office Action for U.S. Appl. No. 12/263,282, mail date Jan. 5, 2012, 10 pages.
Office Action for U.S. Appl. No. 12/892,563, mail date Feb. 19, 2013, 12 pages.
Office Action for U.S. Appl. No. 12/976,871, mail date Feb. 15, 2012, 8 pages.
Office Action for U.S. Appl. No. 12/976,871, mail date Jul. 10, 2012, 4 pages.
Office Action for U.S. Appl. No. 12/976,871, mail date May 6, 2013, 5 pages.
Office Action for U.S. Appl. No. 12/976,871, mail date Nov. 21, 2012, 5 pages.
Office Action for U.S. Appl. No. 12/976,871, mail date Oct. 9, 2013, 5 pages.
Office Action for U.S. Appl. No. 13/183,314, mail date Aug. 14, 2013, 11 pages.
Office Action for U.S. Appl. No. 13/183,314, mail date Mar. 28, 2013, 12 pages.
Office Action for U.S. Appl. No. 13/224,992, mail date Feb. 28, 2013, 10 pages.
Office Action for U.S. Appl. No. 13/250,307, mail date Nov. 5, 2013, 11 pages.
Office Action for U.S. Appl. No. 13/474,559, mail date Aug. 28, 2013, 10 pages.
Office Action for U.S. Appl. No. 13/474,559, mail date Dec. 28, 2012, 8 pages.
Office Action for U.S. Appl. No. 13/743,182, mail date Apr. 8, 2013, 10 pages.
Office Action on U.S. Appl. No. 12/236,464, mail date Jul. 12, 2013, 17 pages.
Office Action on U.S. Appl. No. 11/787,460, mail date Mar. 19, 2010, 16 pages.
Office Action on U.S. Appl. No. 11/787,460, mail date Sep. 16, 2009, 15 pages.
Office Action on U.S. Appl. No. 12/236,464, mail date Feb. 11, 2014, 21 pages.
Office Action on U.S. Appl. No. 12/236,464, mail date Jun. 22, 2011, 14 pages.
Office Action on U.S. Appl. No. 12/892,563, mail date May 7, 2013, 6 pages.
Office Action on U.S. Appl. No. 12/892,563, mail date Oct. 10, 2012, 12 pages.
Office Action on U.S. Appl. No. 13/241,051 Dated Feb. 27, 2014, 21 pages.
Office Action on U.S. Appl. No. 13/247,742 Dated Dec. 3, 2013, 11 pages.
Office Action on U.S. Appl. No. 13/250,798 Dated Apr. 23, 2014, 15 pages.
Office Action on U.S. Appl. No. 13/627,788, mail date Jul. 28, 2014, 10 pages.
Office Action U.S. Appl. No. 11/787,460, mail date Aug. 31, 2010, 18 pages.
Pictures of DELPHINS, printed from website www.tunnel-in-the-sky.tudelft.nl on Aug. 28, 2007, 4 pages.
REVS Product Information Sheet, Sierra Nevada Corporation, dated May 7, 2014, 2 pages.
Skolnik, Introduction to Radar Systems, McGraw Hill Book Company, 2001, 3 pages.
Skolnik, Radar Handbook (McGraw Hill Book Company), 1990, 23 pages.
Synthetic Vision System, en.wikipedia.org/wiki/Synthetic—vision—system, retrieved Feb. 28, 2013, 4 pages.
Technical Standard Order, TSO-C115b, Airborne Area Navigation Equipment Using Multi-Sensor Inputs, Department of Transportation, Federal Aviation Administration, Sep. 30, 1994, 11 pages.
US Office Action on U.S. Appl. No. 11/900,002 Dated Jun. 8, 2010, 7 pages.
US Office Action on U.S. Appl. No. 13/247,742 Dated Apr. 16, 2014, 15 pages.
Vadlamani, A., et al., Improving the detection capability of spatial failure modes using downward-looking sensors in terrain database integrity monitors, Digital Avionics Systems Conference, 2003. DASC-03. The 22nd, vol. 2, pp. 9C.5-91-12 vol. 2, Oct. 12-16, 2003.
Van Kasteren, Joost, “Tunnel-in-the-Sky, Synthetic vision simplifies the pilot's job and enhances safety,” printed from website www.delftoutlook.tudelft.nl on Aug. 28, 2007, 13 pages.
Wang et al., A Simple Based on DSP Antenna Controller of Weather Radar, 2001 CIE International Conference, 4 pages.
Non-Final Office Action on U.S. Appl. No. 13/250,798 dated Feb. 26, 2016, 9 pages.
Notice of Allowance on U.S. Appl. No. 14/301,199 dated Mar. 1, 2016, 11 pages.