System and method for stabilizing suspended loads
The load stabilization system stabilizes suspended loads using thrusters controlled by a processor and sensor array, addressing the instability in helicopter hoisting operations and enhancing safety and performance.
Patent Information
- Application Number
- JP2024064937
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-11-08
- Filing Date
- 2024-04-12
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2039-01-15
AI Technical Summary
Helicopter hoisting operations are compromised by unstable and dangerous motion of suspended loads due to external factors, posing risks to rescuers and rescuees and complicating medical care.
A load stabilization system comprising a center module, sensor array, propeller mounting structure, and thrusters controlled by a processor to counteract swaying of suspended loads, using inertial and orientation measurements to apply thrust and stabilize the load.
Enhances mission safety by relieving pilots of load stability responsibility, increasing operational performance, and allowing widespread adoption across various platforms.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to improved systems and methods for controlling suspended loads.
[0002] This application claims priority to U.S. Provisional Patent Application No. 62 / 627,920, filed February 8, 2018, entitled "SUSPENDED LOAD STABILITY SYSTEM THROUGH SELF POWERED AUTOMATED ELECTRIC DUCT FAN CONTROL," with Derek Sikora and Jonathan Chung as inventors, and U.S. Provisional Patent Application No. 62 / 757,414, filed November 8, 2018, entitled "LOAD STABILITY SYSTEM FOR SUSPENDED LOAD CHAOTIC MOTION," with Caleb Carr, Derek Sikora, and Logan Goodrich as inventors. The above applications are incorporated herein by reference in their entireties for all purposes. The Application Data Sheets filed herein that form a part of this application, and all referenced priority documents, are hereby incorporated herein by reference in their entireties. [Background technology]
[0003] Rescue helicopters allow rapid access to injured or isolated patients at sea or on land. Often, patients are injured or have a medical emergency that warrants local or federal authorities permitting the use of expensive helicopter hoisting operations. Summary of the Invention [Problem to be solved by the invention]
[0004] However, during these maneuvers, the winch is subject to wind and other external factors, causing the rescue winch to spin and swing back and forth. This swinging motion complicates the mission, delays medical care, and has resulted in the deaths of both the rescuer and the rescuee.
[0005] Modern helicopter hoisting, rescue, and sling load operations often involve unstable and dangerous motion of suspended personnel or equipment, endangering the operation at hand and, more importantly, those involved. The motion observed is equivalent to a lateral or conical pendulum due to rotation about a hinge pivot point. A key issue in hoisting system maneuverability, namely, reliable stability of the suspension cable motion, remains unresolved. Uncontrolled cable motion can be life-threatening, jeopardize mission success, cost mission opportunity depending on environmental factors, and significantly increase operating costs. [Means for solving the problem]
[0006] The load stabilization system according to the present invention is a load stabilization system for stabilizing a load suspended from above via a cable, the load stabilization system comprising: a center module including a cable attachment point, a load attachment point, a tensioning structural element between the cable attachment point and the load attachment point, and a propeller mounting structure connected to the tensioning structural element; a power source; a sensor array including an inertial measurement system, an orientation measurement system, and an absolute position measurement system; a wireless transceiver; a propeller controller; two or more propellers connected to the propeller mounting structure and controlled by the propeller controller; and a processor operably connected to the sensor array, the wireless transceiver, and the propeller controller. the processor: determining movement of the load based on the sensor array; The thruster is controlled to apply thrust to orient the load stabilization system device in a certain direction, and thrust is applied along the direction to offset the movement of the load.
[0007] The present invention provides a method performed by an autonomous load stabilization system device suspended by a cable for counteracting swaying of a suspended load beneath the load stabilization system device, the load stabilization system device including a power source, a sensor array, a wireless transceiver, a processor, and two or more thrusters, the method comprising: receiving an activation signal; acquiring, with the sensor array, information describing the position, orientation, and movement of the load stability system device; Identifying a target location for the load stability system device; determining, by the processor, a thrust application vector that will move the cargo stabilization system device to the identified target location based on information describing the position, orientation, and movement of the cargo stabilization system device; rotating at least one of the two or more propulsors to align with the thrust application vector; and applying thrust by the at least one of the two or more thrusters aligned with the thrust application vector to counteract the swaying of the load. [Brief explanation of the drawings]
[0008] [Figure 1] 1 shows a schematic of a swinging load suspended from a helicopter and stabilized by a load stability system ("LSS"). [Figure 2A] FIG. 1 illustrates an isometric view of a load stabilization system having a box-like housing, according to one embodiment. [Figure 2B] FIG. 1 illustrates a front view of a load stabilization system including a hexagonal center module and two propulsion arms, according to one embodiment. [Figure 3] FIG. 1 illustrates a cutaway perspective view of a load stabilization system showing structural features according to one embodiment. [Figure 4A] 1A-1D illustrate perspective, front, and side views of a load stabilization system including an aerodynamic housing according to one embodiment. [Figure 4B] 1A-1D illustrate perspective, front, and side views of a load stabilization system including an aerodynamic housing according to one embodiment. [Figure 4C] 1A-1D illustrate perspective, front, and side views of a load stabilization system including an aerodynamic housing according to one embodiment. [Figure 5] 1 illustrates a central structural member of a load stabilization system according to one embodiment. [Figure 6] 10 illustrates two alternative sleeves that connect to a central structural member for attaching a load, according to one embodiment. [Figure 7] 10 illustrates a central structural member attached to each of two alternative sleeves for attaching cargo, according to one embodiment. [Figure 8] FIG. 1 illustrates a perspective view of a structural framework of a load stabilization system, according to one embodiment. [Figure 9] FIG. 1 illustrates a perspective view of components attached to the structural framework of a load stabilization system, according to one embodiment. [Figure 10] FIG. 1 illustrates a perspective view of components of a load stabilization system attached to a structural framework, according to one embodiment. [Figure 11A] FIG. 1 illustrates a perspective view of an alternative center module design for a load stabilization system, according to one embodiment. [Figure 11B] FIG. 10 illustrates a front view of another alternative center module design for a load stabilization system, according to an embodiment. [Figure 12A] FIG. 1 illustrates a perspective view of a propeller configured for use in a load stabilization system, according to one embodiment. [Figure 12B] FIG. 1 illustrates a perspective view of a two-propeller propulsion arm of a load stabilization system, according to one embodiment. [Figure 12C] FIG. 1 illustrates a perspective view of a support member for a two-propeller propulsion arm of a load stabilization system, according to one embodiment. [Figure 12D] FIG. 10 illustrates an isometric view of another two-thruster propulsion arm of a load stabilization system, according to an embodiment. [Figure 13A] FIG. 1 illustrates a perspective view of a propeller mounted to the structural framework of a load stabilization system, according to one embodiment. [Figure 13B] FIG. 1 illustrates a front view of a pusher mounted to the structural framework of a load stabilization system, according to one embodiment. [Figure 13C] FIG. 1 illustrates a side view of a pusher mounted to the structural framework of a load stabilization system, according to one embodiment. [Figure 14] FIG. 1 illustrates a perspective view of a load stabilization system including a sensor mounted on an aerodynamic housing, according to one embodiment. [Figure 15] 1 illustrates a schematic diagram of operational components of a load stabilization system including a remote interface, according to one embodiment. [Figure 16] FIG. 1 illustrates a perspective view of a remote location unit or target node of a load stabilization system, according to one embodiment. [Figure 17] FIG. 1 illustrates a perspective view of a charging station of a load stabilization system, according to one embodiment. [Figure 18] 1 illustrates an operational routine for a load stability system including multiple modes or command states, according to one embodiment. [Figure 19] 1 illustrates a load stability system decision and control routine according to one embodiment. [Figure 20A] FIG. 1 illustrates a perspective view of a top cable ring with external status indicator lights of a load stabilization system according to one embodiment. [Figure 20B] FIG. 1 illustrates a top view of a status indicator light for a load stability system, according to one embodiment. [Figure 21] 10 illustrates a screenshot of a control interface for a load stability system, according to one embodiment. [Figure 22] 1 shows a graph plotting the motion of a swinging load and the motion of a load stabilized by a load stabilization system. DETAILED DESCRIPTION OF THE INVENTION
[0009] Common approaches to controlling swinging load behavior include installing countermeasures on the airframe or manipulating the airframe itself. Some airframes, such as the Sky Crane, have rail systems installed under the cabin to mitigate load swing. The most proposed approach involves installing automated countermeasure algorithms on the aircraft's stability augmentation system. In practice, crew members remaining in the helicopter during extraction attempt to manipulate the cables by pushing or pulling them away from the cabin, with limited effectiveness. All of these countermeasures have proven insufficient.
[0010] Various embodiments address this issue with an autonomous unmanned load stability control system, as further described herein. The load stability system ("LSS") of the present disclosure counteracts load motion by exerting reaction forces from a propulsion device, such as a high-performance electric ducted fan ("EDF"), at or near the load location. As a result, the LSS enhances mission safety by completely relieving the pilot and crew of responsibility for load stability. Furthermore, the performance envelope of such operations is increased by integrating the capabilities of the LSS to dynamically control the load location independent of aircraft motion.
[0011] The load stabilization system controls the movement of the load via a self-powered, automated, and detachable system on the cable itself between the hoisting system (i.e., helicopter) and the external load. The system is agnostic to the platform from which the load is suspended (e.g., helicopter "own ship" characteristics) and independently determines the flight dynamics required to stabilize the load. This allows for widespread adoption of the system regardless of aircraft type, lowering costs and reducing solution risk.
[0012] The load stabilization system may benefit helicopter search and rescue ("SAR") and sling load operations, forest fire helicopters, oil rig crane operations, naval support vessels, construction-based sling load operations, deep sea drilling applications, spacecraft control, and civil firefighting.
[0013] Reference will now be made in detail to the description of the embodiments as illustrated in the Figures. While the embodiments are described in connection with the drawings and associated description, there is no intent to limit the scope to the embodiments disclosed herein. On the contrary, the intent is to cover all alternatives, modifications, and equivalents. In alternative embodiments, additional devices or combinations of illustrated devices may be added or combined without limiting the scope to the embodiments disclosed herein. For example, the embodiments described below are primarily described in the context of helicopter sling loads or search and rescue operations. However, these embodiments are illustrative examples and are not intended to limit the disclosed technology to any particular application or platform.
[0014] The phrases "in one embodiment," "in various embodiments," and "in some embodiments" are used repeatedly. Such phrases do not necessarily refer to the same embodiment. The terms "comprising," "having," and "including" are synonymous. As used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content clearly dictates otherwise. It should also be noted that the term "or" is used in its sense to include "and / or" unless the content clearly dictates otherwise.
[0015] 1 shows a schematic of a swinging load suspended from a helicopter 140 and stabilized by a suspended load stabilization system (“LSS”) 110. The helicopter “own ship” platform 140 suspends a person on a cable 120 from a point 130. Without the LSS 110, the cable and suspended person would be prone to swing 150 in a lateral and / or conical motion. The violent swing of the LSS 110 is counteracted and eliminated, so that the person can be delivered to a desired target point or location 160.
[0016] The LSS can take on a variety of form factors. Figures 1, 2A-2B, 3, and 4A-4C show several different arrangements and housing designs. Each of the systems shown employs two pairs of unidirectional thrusters. In other embodiments, the load stabilization system can use bidirectional thrusters in a different number or configuration. However, such implementations need not be shown to describe the exemplary embodiments.
[0017] 2A shows an isometric view 200 of a load stabilization system having a box-like housing 210, according to one embodiment. The system 210 is completely enclosed within a box-like enclosure, allowing open access only to the propeller, cable, and load attachments, and charging node. The rectangular housing of the system 210, while not particularly aerodynamic, can accommodate and protect a larger cubic volume than other designs. The larger usable internal volume allows for greater energy capacity (e.g., more batteries or other power means), enabling the system 210 to provide more powerful propellers and / or longer operating capabilities before recharging or refueling.
[0018] FIG. 2B shows a front view 250 of a load stabilization system 260 including a hexagonal center module and two propulsion arms, according to one embodiment. System 260 provides an improved aerodynamic profile compared to system 210 of FIG. 2A. System 260 also allows the two propulsion arms to be detachable, thereby providing more compact storage and easier maintenance. FIG. 11B below shows system 260 with its propulsion arms detached, and FIGS. 12B-12C show the detachable propulsion arms.
[0019] FIG. 3 shows a cutaway perspective view 300 of a load stabilization system 310 illustrating structural features according to one embodiment. The system 310 is comprised of an internal skeleton and an external shell. The external shell is a lightweight material, such as carbon fiber, that surrounds the internal skeleton. The skeleton is constructed of a lightweight, machined alloy. The cutaway or transparent housing in FIG. 300 reveals various internal components and structural elements. The structural elements include a horizontal structural box beam that connects to C-shaped arms that support electric ducted fan propellers above and below the horizontal structural box beam. At the top of the C-shaped arms is a circular sensor similar to that discussed below with reference to FIG. 14. Also prominently visible is a dark, rectangular battery with a power cable attached that provides power to the electric ducted fan propeller.
[0020] In various embodiments, the LSS may be powered by a combination of on-board and remote power. In many environments, all power for the LSS is housed on board, allowing for fully autonomous operation without relying on the availability of an external power source or delivery vehicle. In some situations, the platform from which the LSS is suspended, such as a helicopter or crane, may provide power to the LSS through lines that extend up the suspension cable to the LSS. In some other situations, the platform may provide power to the LSS, which carries a smaller power or reserve power on board for intermittent use.
[0021] 4A-4C show perspective, front, and side views of a load stabilization system 410 including an aerodynamic housing 420, according to one embodiment. FIG. 4A shows a perspective view 400, FIG. 4B shows a front view 450, and FIG. 4C shows a side view 475.
[0022] The housing 420 may be formed of any suitable material, such as metal, plastic, fiberglass-reinforced plastic, or carbon fiber. The slim and aerodynamic profile of the illustrated housing 420 provides minimal wind resistance, a short center beam, improved thruster efficiency, sufficient projection to protect from or maneuver around obstacles, and easy access for LSS maintenance. The housing allows access to the interior space of the LSS through a sealed hatch or one or more removable panels to allow for maintenance and inspection.
[0023] Further features and configurations of the LSS410 are described in the following figures.
[0024] Diagram 500 in FIG. 5 illustrates a central structural member 510 of a suspended load stabilization system 410 according to one embodiment. The structural member 510 functions as the main tension beam supporting the load. As such, it must be constructed with sufficient strength to support the load being stabilized by the LSS and similar to the cables to which it is connected. In various embodiments, the main beam structural member 510 may be constructed of aluminum, steel, or carbon fiber reinforced plastic, depending on the strength required and the type of load expected to be encountered. For example, because carbon fiber is an anisotropic material and over tension loads, sling loads may generate a rapid, powerful impact that may be off-axis, aluminum or steel may be more appropriate for that application.
[0025] At the top of structural member 510 is hoisting ring 520. Hoisting ring 520 can be machined into a complete single unit as part of structural member 510, or can be bolted to the top of structural member 510. Hoisting ring 520 allows LSS structural member 510 to be attached to an object, such as a cable, wire, or rope, for suspending a load. For example, hoisting ring 520 may be hooked onto the end of a hoisting strap or cable from a crane, boom, helicopter, or other lifting device. In some embodiments, hoisting ring is suitably a hook or other attachment mechanism.
[0026] Rotational bearings 530 allow hoisting ring 520 to spin freely under the load. Bearings 530 may include, for example, a ball bearing interface. Rotational bearings 530 on hoisting ring 520 decouple rotational energy from twisting or winding of the hoisting cables from the LSS and external load. This allows the LSS to rotate under the lifting cables without being affected by any twisting in the cables, allowing the LSS to orient (e.g., maintain or change orientation) in any direction needed to stabilize the load. This reduces torsional moments from the cables applied to the load.
[0027] In the illustrated embodiment, the bottom of the structural member 510 is provided with attachment means 540, such as bolt holes, for attaching one or more different sleeve options, as described below with reference to Figures 6A-6B and 7A-7B.
[0028] In some embodiments, instead of a central structural member onto which the cable hooks, the load stabilization system provides a cable attachment mechanism for latching onto or around the cable. For example, the load stabilization system can include a groove or slot for positioning the cable and a lever mechanism for holding or fastening the cable. By applying force to opposite sides of the cable, the load stabilization system can be securely attached to the cable above the load. In some embodiments, such a clamp-on system includes a wheel that provides opposing pressure against a hard surface, allowing for pressure clamping. In some embodiments, the wheel can rotate when clamped, allowing the system to raise or lower the cable.
[0029] In embodiments having a cable attachment mechanism for attaching the load stabilization system to a location along the cable, the cable directly supports the load, and the LSS is not attached between the end of the cable and the top of the load. The LSS is then supported on the cable such that the LSS does not support the weight of the load. Therefore, embodiments using such a cable attachment mechanism do not require a tension beam through the center of the load stabilization system apparatus. An additional rotatable element may allow the load stabilization system to freely rotate around the cable, such as by rotating around a mechanism attached to the cable.
[0030] The clamp-on cable attachment mechanism provides a simple interface to existing operating hoist and external load systems and does not require direct interference with the cables used to suspend the load.
[0031] Details of embodiments of such cable attachment mechanisms are further described in U.S. Provisional Patent Application No. 62 / 627,920, filed February 8, 2018, and entitled "SUSPENDED LOAD STABILITY SYSTEM THROUGH SELF POWERED AUTOMATED ELECTRIC DUCT FAN CONTROL," which is incorporated herein by reference.
[0032] Returning to the figures, FIGS. 6A-6B illustrate two alternative main beam sleeves for connecting to the central structural member 510 for attaching cargo, according to one embodiment. FIG. 6A shows a perspective view 600 of a main beam sleeve 610 including a load hook 630 and four bow or D-ring shelves 640. Each shelf 640 is attached to a shelf mount 645 secured to the main beam sleeve 610. The load hooks 630 are attached to the main beam sleeve 610 by an adapter plate 635. The load hooks 630 may be automatic hooks, such as an automatic (e.g., electronically) controlled release hook or one or more remotely actuated hooks remotely controllable from the cockpit of the aircraft or crane cable with the push of a button. The hook or hooks may allow rotation about a pivot point or limit rotation of the suspended object.
[0033] 6B shows a perspective view 650 of a main beam sleeve 660 that includes load hooks 630 and four bow or D-ring shelves 640. The main beam sleeve 660 also includes four protruding I-beams 670 that are welded or otherwise secured to the sleeve 660 and to which shelf mounts 645 are attached.
[0034] 7A-7B show side views 700 and 750, respectively, of central structural member 510 attached to two alternative main beam sleeves 610 and 660, respectively, for attaching cargo according to one embodiment. FIGS. 7A and 7B show hoisting ring 520 attached to rotation bearing 530 at the top of structural member 510, and cargo hook 630 at the bottom of structural member 510. In the illustrated embodiment, the LSS main beam is connected to the cargo by cargo hook 630. In various embodiments, the bottom connection may be a bottom hoisting ring or another attachment mechanism, such as that used in current flight operations.
[0035] In some embodiments, the LSS provides an interface for the load that couples the motion of the LSS with the load. That is, in the illustrated embodiment, the load hook 630 is configured not to rotate or spin independently of the main beam structural member 510. The load is rotatably locked to the LSS. In some embodiments, the LSS load hook interface includes a rotatable fitting similar to the rotation bearing 530 of the hoisting ring 520 at the opposite end of the main beam structural member 510, so that the LSS can rotate without having to rotate the load underneath the LSS.
[0036] Figure 8 shows a perspective view 800 of a structural framework 810 of a suspended load stabilization system 410, according to one embodiment. Similar to the previous figures, Figure 8 shows a main beam structural member 510 having a hoisting ring 520 and a rotation bearing 530 at the top, and a main beam sleeve 610 including a shelf 640 and a hook adapter plate 635 at the bottom. The framework 810, connected to the structural member 510, includes a pair of oval ribs 820 that support a horizontal beam 825. The horizontal beam 825 is formed from a hollow tube, which may be, for example, carbon fiber.
[0037] The horizontal beams 825 are then connected to thruster mounting ribs 830, which are set parallel to the ribs 820. The thruster mounting ribs 830 include thruster attachment mechanism points 840 at their upper and lower ends for attaching the thrusters to the framework 810. Additionally, the thruster mounting ribs 830 are configured with a central opening for accommodating a power source, such as a battery in a battery tray 850.
[0038] FIG. 9 shows a perspective view 900 of components mounted to the structural framework 810 of the load stabilization system 410, according to one embodiment. In the illustrated embodiment, the battery tray 850 of FIG. 8 is charged with a power source, such as batteries 910. The power source may be a single power brick or an array of battery cells, such as lithium-polymer (LiPo) cells, wired in series and / or parallel. The batteries 910 can be removed from the battery tray 850 for easy inspection. The batteries can be charged while installed in the LSS (i.e., without the need to remove them) via a node on the LSS 410 that connects to a charging dock. A data link allows a microcontroller unit or processor to monitor power information, including, but not limited to, battery voltage and real-time power distribution or consumption.
[0039] Also attached to the main beam is an auxiliary battery 920. The auxiliary battery 920 allows for a constant supply of power to the processor, even if, for example, the thrusters draw excessive amounts of power from the main battery 910.
[0040] The propulsion controller 930 allows the processor to control the speed, power draw, and thrust of the propulsion units. The propulsion controller 930 may be, for example, an electronic speed controller ("ESC") for an electric ducted fan ("EDF"). An ESC typically has at least three connections: a power source, a propulsion unit, and a processor and / or microcontroller. The ESC draws power from the power source and allocates it to the propulsion units, thereby controlling the amount of power to push to the propulsion units.
[0041] 10 illustrates a perspective view 1000 of components of a load stabilization system 410 mounted to a structural framework 810, according to one embodiment. In the illustrated embodiment, a processor 1010 or central processing unit (CPU) is centrally mounted within the framework 810.
[0042] The processor 1010 may be an embedded system that includes a single board computer and one or more microcontroller units ("MCUs"). The CPU and MCU are contained within a literal black box, for example, through which all data link connections are made. The black box is a wear-resistant plastic or polymer that protects the system from environmental and operating factors, such as weather and other operating conditions. In some embodiments, the CPU and MCU are mounted on the same printed circuit board (PCB).
[0043] Also mounted within framework 810 is a wireless transceiver 1020, which may form a separate transmitter and receiver, and antenna for wireless communication. The transceiver 1020 and / or wireless antenna may also be mounted or printed on the same printed circuit board as processor 1010.
[0044] 10, the vector navigation unit 1030 includes an inertial measurement unit (“IMU”) that provides inertial navigation data to the processor 1010 and is centrally mounted within the framework 810 next to the processor 1010.
[0045] Some embodiments of the load stabilization system are modular. For example, the LSS may be divided into a center module and a thruster or thruster arm assembly. FIG. 11A shows a perspective view 1100 of an alternative center module design 1100 of a load stabilization system, according to one embodiment. The LSS center module 1110 may be configured with a minimum of two thruster arms (such as the thruster arms illustrated in FIG. 12D below) and up to four to achieve a desired vector thrust. Like other LSS embodiments, the system 1110 is self-powered and completely wireless, with communication access points for Bluetooth, Wi-Fi, and / or radio frequency (RF) transmission and reception.
[0046] FIG. 11B shows a front view 1150 of another alternative center module design of a load stabilization system 1160, according to one embodiment. The LSS center module 1160 includes an emergency shutoff mechanism that includes an emergency shutoff pin 1170. The pin 1170 may be connected to a line. The pin 1170 can then be pulled to trigger an emergency shutoff of the LSS. Inside the center module, a shutoff pin presence sensor senses the position of the pin 1170 to determine whether it is present. The system 1160 can only operate when the pin 1170 is present. If the pin 1170 is not present, the system 1160 will not activate. The pin 1170 can be reinstalled by placing it back into the pin hole.
[0047] FIG. 12A shows a perspective view 1200 of a propeller 1210 configured for use in an embodiment of a load stabilization system. The LSS includes propellers 1210 connected to a center module. These propellers 1210 push a fluid, such as air, water, or gas, in a direction that enables movement. For example, the propellers 1210 may include a ducted fan that includes an electric motor that rotates rotor blades. The rotor blades are housed within an aerodynamic shroud or duct through which the fluid is pushed. In the case of a fan, the fluid passes over the rotor blades, pushing air and creating thrust.
[0048] Air is captured through an inlet at the front of the system. In some embodiments, the blades of the propeller 1210 can spin both ways, making the propeller bidirectional. Similar to other means of propelling a fluid, a bidirectional propeller can push air in both forward and aft directions. In various embodiments, fins molded into the propeller casing help to create optimal vectored airflow perpendicular to the blade cross section, i.e., in the forward and aft direction of the propeller 1210.
[0049] 12B shows a perspective view 1225 of a two-thruster propulsion arm 1230 of a load stabilization system according to one embodiment. The propulsion arm 1230 is compatible with, for example, the LSS center module 1160 of FIG. 11B above or the load stabilization system 260 of FIG. 2B above. Some propulsors are more efficient at generating thrust in a forward direction than in an aft direction. Therefore, the fans may be oriented with opposing primary thrust vectors, as illustrated in the propulsion arm 1230.
[0050] In the illustrated embodiment, the LSS has the ability to be disassembled into modular units. The thrusters 1210 can be disconnected from the arms 1230 for easy storage, and the arms 1230 can be disconnected from the center module 1160. For example, a push button release pin and electrical interface allows each thruster and arm combination to be released and disconnected from the center module 1160.
[0051] 12C shows a perspective view 1250 of a support member for a two-propeller propulsion arm 1260 of a load stabilization system, according to one embodiment. The illustrated support member connects around the propeller 1210 and allows the propeller 1210 to connect to the center module 1260. A similar support member that wraps around the propeller 1210 is shown in FIG. 3 above.
[0052] FIG. 12D shows an isometric view 1275 of another two-thruster propulsion arm 1280 of a load stabilization system, according to one embodiment. The propulsion arm 1280 is compatible with, for example, the LSS center module 1110 of FIG. 11A above. The propulsion arm 1280 is configured to fold to simplify storage and deployment. In the deployed state, the propulsion arm 1280 is parallel to the horizontal plane of the LSS center module 1110. The arm can be deployed from 0-90 degrees, for example, via a manual, spring-loaded, or powered interface.
[0053] 13A-13C show perspective, front, and side views of a thruster mounted to the structural framework of a load stabilization system, according to one embodiment. FIG. 13A shows a perspective view 1300, FIG. 13B shows a front view 1350, and FIG. 13C shows a side view 1375. In various embodiments, the thruster 1210 includes a mechanism 1320 for connecting to the thruster attachment mechanism points 840 on the rib 830. In some embodiments, the thruster 1210 can be attached and removed without tools. In some embodiments, there are threaded holes on the outside of the thruster 1210, symmetrically opposite the center of gravity of the fan shroud, through which a thruster arm can be securely bolted to the thruster 1210.
[0054] The thrusters may be connected by a series of wires bundled into a single cable. The wires terminate in connectors, such as, but not limited to, multi-pole heavy-duty connectors such as an EC5. The female connection side is located on the LSS center module, e.g., at thruster attachment mechanism point 840 on rib 830, while the male side is located on the thruster 1210, e.g., associated with mechanism 1320 or near the end of the LSS thruster arm.
[0055] FIG. 14 shows a perspective view 1400 of a load stabilization system 410 including sensors mounted on an aerodynamic housing 420, according to one embodiment. The LSS sensor array may include an inertial measurement system, an orientation measurement system, and an absolute position measurement system. The inertial measurement system ("IMS") may include a three degrees of freedom (3DOF) accelerometer, a gyroscope, and a gravity sensor, which may be a microelectromechanical system (MEMS) sensor. The orientation measurement system may include a compass, an inclinometer, a direction encoder, and a magnometer or magnetometer, such as a radio frequency relative bearing system. The absolute position measurement system may include a global positioning system (GPS) sensor 1430.
[0056] The sensor array may further include proximity sensors or light detection and ranging (LIDAR) systems 1410 (e.g., rotary or linear), and / or optical sensors 1420, such as one or more cameras or infrared (IR) sensors. Proximity sensors may include ground height sensors. Optical sensors may be located on all sides of the shell facing in all directions. The optical sensors may also provide visual information to the user. This information is communicated by the LSS processor via a data link cable and / or a wireless transceiver. The proximity and optical sensors detect obstacles (e.g., part of a tree canopy) and alter the course of the LSS to avoid the obstacle, thereby enabling the system to provide 360-degree awareness and collision avoidance. The system may also provide ground (or underwater) position data to the aircraft pilot and crew.
[0057] Additional LSS sensors may include strain sensors to measure load on the central structural member 510, rotary encoders or thruster 1210 speed sensors, which may be incremental or absolute, and blocking pin 1170 presence sensors.
[0058] The LSS may use remote position sensors or beacons, remote computing units, or target node transmitting and receiving devices to assist in characterizing the movement of the suspended platform (e.g., helicopter own ship), the LSS and suspended load, and target locations of interest such as rescue or loading objectives.
[0059] The LSS processor 1010 applies algorithms to the received sensor system data to obtain the desired system response. For example, GPS sensors can be refined through real-time kinetic (RTK) algorithms to recalibrate absolute position. Measurements are fused together by nonlinear data fusion methods, such as Kalman filtering, to produce optimal state estimates in all degrees of freedom to accurately characterize the system's location and motion in geodesic space.
[0060] FIG. 15 schematically illustrates the operational components of the load stabilization system 410, including a remote interface 1550, according to one embodiment. Within the LSS system 410 is a sensor suite 1505, which may include position sensors 1506, orientation sensors 1507, inertial sensors 1508, proximity sensors 1509, reference location sensors 1510, and thrust sensors 1511. The LSS processing capability 1520 includes the processor 1010 and a microcontroller. The LSS memory 1525 generally includes random access memory ("RAM") and non-transitory mass storage devices, such as solid-state drives, and includes navigation system 1526, targeting data 1527, and mode or command status information 1528. The communication system 1530 includes a wireless system 1531, such as the wireless transceiver 1020, and a wired system 1532. The LSS output 1515 includes thrust control 1516 via the thruster controller 930. A power management system 1540 regulates and distributes power, for example from battery 910. A data bus connects the various internal systems and logic components of the LSS.
[0061] Interactive display or remote interface 1550 is a computational unit that can be self-powered or hardwired to the airframe. Interactive display 1550 receives data from the LSS, for example, wirelessly. The data from the LSS is displayed on interactive display 1550. The computed data is analyzed and converted into visual cues. The interactive display also communicates the operator's desired command states to the LSS, as described below.
[0062] Interactive display or remote interface 1550 is in communication with LSS 410 via communication system 1570, which may be wireless 1571 or wired 1572. Output 1560 from remote interface 1550 may include information displayed on screen 1561 and audio cues 1562. Input 1565 to remote interface 1550 for controlling the LSS may include commands through touchscreen 1566 or joystick 1567. In various embodiments, remote interface 1550 may include one or more physical and / or logical devices that collectively provide the functionality described herein.
[0063] Aspects of the system may be embodied within a dedicated or special purpose computing device or data processor specifically programmed, configured, or constructed to execute one or more of the computer-executable instructions described in detail herein. Aspects of the system may also be practiced in distributed computing environments where tasks or modules are performed by remote processing devices that are linked through a communications network, such as a local area network (LAN), a wide area network (WAN), or the Internet. In a distributed computing environment, modules may be located in both local and remote memory storage devices. As shown schematically in FIG. 15, the load stabilization system 410 and the remote display interface 1550 are connected by a wired or wireless network.
[0064] 16 shows a perspective view 1600 of a remote location unit or target node of a suspended load stabilization system according to one embodiment. The remote location unit or target node includes an external sensor suite or beacon configured to wirelessly communicate with the LSS as a location reference. If the LSS is considered the primary sensor suite, the secondary sensor suite location may be a platform from which a cable hangs, and the tertiary sensor suite location may be a target location relative to the load (e.g., for positioning to retrieve or deliver the load).
[0065] The remote location unit may include a position transceiver configured to communicate with the LSS and provide a position reference via its wireless transceiver 1020. For example, the remote location unit may be mounted on a helicopter ship or a crane from which a load is hoisted.
[0066] In some embodiments, the remote location unit or target node is a black box 1610 made of a durable polymer or plastic large enough to fit in a hand. The box 1610 has an external antenna 1620 on the side or top of the box. The remote location unit may be attached, for example, to a helicopter, by, for example, a magnet, bolt, or any other attachment mechanism. The target node may be dropped at a location on the ground, or may be attached, for example, to a life support machine or other floating device, a rescuer, a load to be picked up, a load location to be delivered, or an operational location.
[0067] 17 shows a perspective view 1700 of a charging station for a suspended load stabilization system, according to one embodiment. In some embodiments, the LSS can be stored and charged in a fixed location or on-board the charging station for ease and convenience. The charging station 1710 can be off-loaded from an available power source, such as on-board power or generator power on a machine like a helicopter.
[0068] The charging station 1710 is a dockable station, and the LSS can be connected to and located within the charging station 1710 itself. In some embodiments, the docking station has two arms 1720, one on each side of the system. The LSS is placed between the arms until a click is heard, locking the LSS into place. When properly placed, LSS electrical contacts located on the system's frame will make contact with electrical contacts within the charging station, automatically initiating charging of the LSS. The LSS can be released by pressing a button on the side of the charging station 1740.
[0069] To indicate the state of charging 1730 to the user, the charging system has a light that indicates the status of charging. On top of the charging station, the station has a power switch 1750 if operationally required, while the operator can also turn the charging station on / off and view the charging status via the portable interactive display 1550.
[0070] FIG. 18 illustrates an operational routine 1800 for a load stability system that includes multiple modes or command states, according to one embodiment.
[0071] In block 1805, a load stability system device is installed on the cable from which the load is suspended. The system does not need to be powered for installation.
[0072] In block 1810, the LSS is activated. In some embodiments, the system can be initialized by pressing a button located on the face of the center module of the LSS. Near the easily accessible external buttons that can initialize the system, there is another button that, when pressed, allows for immediate system shutdown. In addition to the initialization interface on the center module, the system can also be initialized by operators who are not immediately adjacent to the system. One or more external operators, including but not limited to rescuers on the end of a cable, can initialize the system by pressing a button on one or more interactive displays 1550 wirelessly linked to the LSS.
[0073] In block 1815, the LSS is activated and proceeds to operation 1820 in one of the LSS function modes or command states selected by the operator. The system function modes or command states are: In idle mode 1821, all internal systems of the LSS are operational (e.g., the LSS observes its motion and calculates corrective actions), but the propellers are shut down or maintain only idle speed without any action that affects the motion of the payload.
[0074] In maintain relative position vs. ownship mode 1822, the LSS is stabilized relative to the slung origin. For example, if the LSS is slung with a load lower than the helicopter, the LSS will remain directly below the helicopter. The LSS takes the corrective action necessary to localize ownship motion and significantly damp any other slung load motion. If the ownship is moving at a slow speed, the LSS couples velocities so that the two entities move in coordination.
[0075] When a disturbance to the load occurs, the LSS applies thrust in the direction of the disturbance to counteract the disturbance and eliminate the rocking motion.
[0076] In move to position / stop at position mode 1823, the LSS stabilizes in a fixed position, counteracting the effects of weather or small movements of the helicopter or other suspended platform. This mode has the effect of stopping all movement. The operator can send a desired target position to the LSS via remote interface 1550. This can be accomplished in at least two ways.
[0077] At target node location 1824, the operator can place the LSS remote location unit or target node 1610 at the desired drop-off location (e.g., location 160 in FIG. 1). The target node 1610 wirelessly communicates with the LSS to indicate the desired location, and the LSS responds by operating to the desired location. The remote interface 1550 UI receives and displays location information for both entities.
[0078] User specified location 1825 allows the operator to use the remote interface 1550 UI to send the specified location (e.g., latitude and longitude coordinates) to the LSS as the commanded location. The system then steadily directs the load to the desired location. The system simultaneously sends feedback regarding position and distance information to the remote interface 1550.
[0079] In hold position mode 1826, the LSS resists all motion and maintains its current position regardless of ownship motion. This mode has the effect of stopping all motion. This mode has a conditional response to ownship speed, safety factors, and physical constraints, respectively.
[0080] Direct Control Mode 1827 is a three-degree-of-freedom joystick operation of the LSS. The operator has direct control over positioning, rotation, and thruster power levels. The LSS is fully closed-loop and requires no external controls during operation, although user control options exist.
[0081] At block 1830, the operator completes the action and obtains the LSS.
[0082] In block 1835, the system can be shut down by pressing a button on the interactive display or by pressing a button on the center module itself. If the LSS includes collapsible propulsion arms, they may be folded. The load is removed from the load hook 630, and the hanging cable is then removed from the hoist ring 520 at the top of the LSS. The LSS may then be stowed in its charger or any convenient location.
[0083] 19 illustrates a load stability system decision and control routine 1900 according to one embodiment. The LSS operates in a closed loop to understand its position and motion in near real time, performs a series of calculations to determine the most desired system response, and then transmits the desired response to the air propulsion system thruster array to mitigate cable sway during operation. This process is continuous as long as the system is powered.
[0084] The LSS high-level control flow diagram 1900 begins at block 1905 with data acquisition from a plethora of sensors, including but not limited to accelerometers, gyroscopes, magnetometers, GPS, lidar / radar, machine vision, and / or range finders.
[0085] In block 1910, the LSS combines data from the sensors to obtain a data fusion that describes its position, orientation, motion, and environment.
[0086] The sensor data is fused and filtered by the LSS via a nonlinear Kalman filter to obtain an accurate representation of the system state. Traditional closed-loop control methods, including fuzzy-tuned proportional, integral, and derivative feedback controllers, have two-way communication with advanced control methods, including deep learning neural networks and future propagation Kalman filters, enabling further real-time system identification.
[0087] In block 1915, the LSS projects near-future motion using nonlinear state estimation based on data fusion and feedback from the decision engine and control engine to the state estimator.
[0088] In block 1920, the LSS decision and control engine obtains state estimates 1915 not formed by the user selected functional mode or command state 1820, as well as additional feedback from thrust and orientation mapping 1930 and power control 1940, and determines how the LSS will move or exert forces.
[0089] The system algorithm output is sent to a motion controller where the desired thrust response is sent to the electric duct fan via phase control. The net thrust output is mapped in real time through encoders and load cells and then sent back to the host and controller for closed-loop control.
[0090] In block 1930, LSS thrust and orientation mapping applies the LSS determination of how the LSS exerts movement or force 1920 to determine thrust and direction to determine thrust.
[0091] In block 1935, fan mapping applies the determined thrust and orientation to generate fan mapping to control the propulsors 1210 to achieve the determined thrust and orientation of the LSS.
[0092] At block 1940, the LSS propulsor 1210 exerts a commanded control output to implement a dynamic response in the form of thrust that counteracts the unwanted motion.
[0093] The entire process is unmanned and automated with high-level operator-selectable function control modes. The net output is a controlled force to stabilize the load.
[0094] Status indicator lights can be mounted on various surfaces of the LSS to aid in the visibility and operation of the LSS from above and below. For example, the LSS may have external lighting, such as LEDs near the thrusters, that identify the edges and orientation of the LSS. This can improve identification in poor visibility conditions, such as inclement weather. During operation, LED display indicators, both on the interactive display and on the system itself, indicate when the system is active and convey useful information.
[0095] Figure 20A shows a perspective view of the top cable ring with external status indicator lights of a load stabilization system according to one embodiment, and Figure 20B shows a top view of the status indicator lights of a load stabilization system according to one embodiment. The illuminated status indicators on the top of the LSS housing and around the hoist ring 520 can represent various types of information useful to the operator from the LSS.
[0096] In some embodiments, a status indicator light display can indicate the integrity of LSS signal reception. The LSS processor 1010 measures signal strength and changes the color of the light to indicate such strength based on a predetermined threshold.
[0097] Another status indicator can indicate the direction and amount of thrust the system is exerting. In some embodiments, the arrows 2010 are color LEDs with the innermost arrow pointing outward being green, the next arrow being yellow, the third arrow being orange, and the outer arrow being red. The LSS can illuminate the arrow indicators 2010 to indicate the direction the system is attempting to move the load and use an arrow color hierarchy to indicate system power. For example, a green indicator 2010 may indicate a 5% to 25% system power level, yellow may indicate 25% to 50%, orange may indicate 50% to 75%, and red may indicate 75% to 100%. A high power level also provides an indication to a platform operator, such as a crane operator or aircraft pilot, to reduce system power and move in the direction indicated by the arrows 2010 to maintain the desired load positioning.
[0098] The concentric center ring LED 2020 may also include colors such as a green inner ring, an amber middle ring, and a red outer ring. The circular LED ring 2020 may indicate the height of the load above ground. For example, a green ring may indicate a height above 25 feet above ground, an amber ring may indicate a height between 25 feet and 10 feet above ground, and a red ring may indicate a height below 10 feet above ground.
[0099] In various embodiments, the external LSS status indicator lights can be configured to indicate one or more of the following: LSS position, LSS orientation, distance from obstacles, height above ground, radio transceiver signal quality, LSS processor mode or command state, load inertial behavior, power source energy capacity or available power, thruster work load or power consumption, thrust from each thruster, LSS thrust motion or direction, and a recommended direction for the operator to operate the load-suspended platform.
[0100] 21 shows a screenshot 2100 of a control interface for a suspended load stabilization system according to one embodiment. The interactive display 1550 is a computing device in wireless communication with the LSS with a screen that displays indicators of the system's current status and controls. For example, the illustrated display screen includes a graph 2110 of thrust for each thruster 1210, as well as the energy capacity 2120 and gauge readout of the current fan thrust 2130. In various embodiments, the interactive display 1550 also shows the position of the LSS system relative to the suspended platform and / or target node location. The interactive display 1550 also provides load status feedback in the form of visual (and, where appropriate, audible) indicators that describe the load's inertial behavior, recommended actions, and the system's work load in real time.
[0101] In various embodiments, the interactive display 1550 includes different buttons to indicate and select different functional modes or command states of the system, as described above with reference to Figure 18. If the operator has not reached the LSS, the operator can also initialize the LSS via the interactive display 1550. The control interface 2100 also includes an emergency shut-off mechanism 2140 in the form of a bright red "off" switch.
[0102] Figure 22 shows a graph 2200 plotting the motion of a swinging load 2230 and the motion of load stabilization 2240 due to a load stabilization system. On the Y-axis, the graph plots the angular position (in degrees) of the load 2210, in this case representing a rescue swimmer swinging under the helicopter. On the X-axis, the graph is the elapsed time (in seconds) 2220 from the initial 30 degree swing, an exceptionally large disturbance due to turbulence, while lowering a fully geared rescue swimmer weighing 100 kg onto the boat. Such a large swing from the vertical axis is a very dangerous situation for the swimmer, the ship's crew, and those relying on the boat.
[0103] Without the LSS, the pilot would gradually regain control of the suspended swimmer 2230, but he would continue to swing for an extended period of time, eventually catching or hitting the boat rail and falling to the deck. In contrast, with the LSS, the swimmer is quickly returned to a calm, vertical position below the vessel. The LSS damps the 30-degree oscillatory motion to less than 1 degree in under 10 seconds. Incorporating the LSS into such operations reduces the helicopter's hover time, allowing the crew to safely place the swimmer on board, ultimately reducing the risk and duration of the operation.
[0104] The load stabilization system described herein controls the pendulum motion of an external load attached to a cable via a dynamic air propulsion system to eliminate lateral and rotational sway. The LSS is agnostic to the type of platform from which it is suspended. It features the necessary flight dynamics and performs corrective actions with all types of loads. It is adaptable for external loads, sling loads, and rescue hoisting operations, among many other applications that can benefit from a self-contained, self-powered, closed-loop stabilization system that counteracts the pendulum sway of the load.
[0105] While specific embodiments have been illustrated and described herein, those skilled in the art will recognize that substitutions may be made for the specific embodiments shown and described without departing from the scope of the present disclosure. For example, while various embodiments are described above with reference to a helicopter submarine, in other embodiments, the LSS may be used under a construction crane or gantry. This application is intended to cover any adaptations or variations of the embodiments discussed herein.
Claims
1. A load stabilization system device for stabilizing a load suspended from above via a cable, the load stabilization system apparatus includes a sensor array, a thruster mounting structure, a power source, a thruster controller, two or more thrusters, a processor, a cable attachment point or points, and a load attachment point or points; The sensor array an inertial measurement system, an orientation measurement system, and an absolute position measurement system; the thrusters are connected to the thruster mounting structure and controlled by the thruster controller; The processor: a wireless transceiver operatively connected to the sensor array, the wireless transceiver, and the propulsion controller; configured to filter and fuse sensor data from the sensor array to determine a data fusion comprising a representation of a state of the load stability system apparatus; configured to predict near-future movements based on the data fusion and user-selected functional modes and command states, thrust, and orientation mapping; configured to determine how the load stabilization system apparatus should move or exert forces in the user-selected functional mode or command state; configured to provide a corresponding thrust by controlling the propulsor; Load stabilization system device.
2. 2. The load stabilization system according to claim 1, wherein the filter is a nonlinear Kalman filter.
3. The load stabilization system apparatus of claim 1 , wherein the user-selected function mode or command state comprises at least one of idle, maintain relative position, move to target, hold position, or direct user control.
4. 2. The load stabilization system of claim 1, wherein the inertial measurement system in the sensor array comprises at least one accelerometer or gyroscope, the orientation measurement system in the sensor array comprises at least one magnetometer or compass, and the absolute position measurement system in the sensor array comprises a Global Positioning System (GPS) sensor.
5. 2. The load stabilization system apparatus of claim 1, further comprising a remote location unit external to the load stabilization system apparatus located in a fixed position relative to a point or location of interest from which the cable is suspended, the remote location unit including a position transceiver configured to communicate with the wireless transceiver to provide a position reference to the load stabilization system apparatus.
6. an interactive display including a wireless transceiver, a display processor, a screen, an input device, and a display transceiver configured to communicate with the wireless transceiver; the interactive display comprises: means for wirelessly receiving data from the load stabilization system device via the display transceiver; configured to indicate, via the screen, one or more of the position, orientation, distance from an obstacle, height above ground of the load stabilization system device, signal quality of the wireless transceiver, functional mode or command state of the processor, inertial behavior of the load, energy capacity or available power of the power source, work or power consumption of the two or more thrusters, thrust from each thruster, movement or direction of thrust of the load stabilization system device, and a recommended direction for an operator to operate the platform suspending the load; and means for providing user control via the input device for setting one or more of the user selected function mode or command state, a target position of the load stabilization system apparatus, and an emergency shut-off mechanism of the load stabilization system apparatus. The load stabilization system of claim 1 , comprising:
7. A method for stabilizing a load suspended from above via a cable, comprising: The method comprises: executing, in a processor of the load stability system apparatus, a decision and control routine, the decision and control routine comprising: acquiring sensor data from a sensor array of the load stability system device; fusing the sensor data with a filter to thereby determine a data fusion comprising a representation of a state of the load stability system device; predicting near-future motion based on feedback and data fusion from at least one of a user-selected functional mode or command state, or thrust and orientation mapping of said load stability system device; determining how the load stabilization system device should move or exert forces in the user-selected functional mode or command state; providing thrust by controlling a plurality of thrusters of the load stabilization system; How to do it.
8. The method of claim 7 , wherein the filter is a nonlinear Kalman filter.
9. The method of claim 7 , wherein the user-selected functional mode or command state comprises at least one of idle, maintain relative position, move to target, hold position, or direct user control.
10. 8. The method of claim 7, wherein the sensor array comprises an inertial measurement system, an orientation measurement system, and an absolute position measurement system.
11. 11. The method of claim 10, wherein the inertial measurement system comprises at least one accelerometer or gyroscope, the orientation measurement system comprises at least one magnetometer or compass, and the absolute position measurement system includes a Global Positioning System (GPS) sensor.
12. 8. The method of claim 7, wherein the processor further comprises receiving a position reference from a remote location unit external to the load stability system apparatus, the position reference being associated with a function mode or command state selected by the user.
13. the processor is further configured to display, via a remote input device, an indicator of at least one of a position of the load stabilization system apparatus, an orientation of the load stabilization system apparatus, a distance from an obstacle, a height above ground, and a wireless transceiver signal quality; and 8. The method of claim 7, further configured to display the user selected functional mode or command state, the inertial behavior of the load, the energy capacity or available power of a power source, the work or power consumption of two or more thrusters, the thrust from the plurality of thrusters, the orientation of the load stability system device motion or thrust, and the recommended direction for an operator to maneuver a platform suspending the load.
14. The method of claim 13 , wherein the processor is further configured to provide user controls for setting the user-selected functional mode or command state via the input device.
15. A non-transitory computer readable storage medium having stored thereon a program that, when executed by a processor of a load stabilization system apparatus, causes a determination and control routine of the load stabilization system apparatus to execute the following instructions: The instruction: acquiring sensor data from a sensor array of the load stability system device; fusing sensor data with a filter to determine a data fusion comprising a representation of a state of the load stability system device; predicting near-future motion based on feedback and data fusion from at least one of a user-selected functional mode or command state, or thrust and orientation mapping of said load stability system device; determining how the load stabilization system device should move or exert forces in the user-selected functional mode or command state; and a non-transitory computer-readable storage medium, the non-transitory computer-readable storage medium being configured to apply a corresponding thrust by controlling a plurality of thrusters of the load stabilization system apparatus.
16. The non-transitory computer-readable storage medium of claim 15 , wherein the filter is a non-linear Kalman filter.
17. 16. The non-transitory computer-readable storage medium of claim 15, wherein the user-selected functional mode or command state comprises at least one of idle, maintain relative position, move to target, hold position, or direct user control.
18. 16. The non-transitory computer-readable storage medium of claim 15, wherein the sensor array comprises an inertial measurement system, an orientation measurement system, and an absolute position measurement system.
19. the inertial measurement system comprises at least one accelerometer or gyroscope, and the orientation measurement system comprises at least one magnetometer or compass; the absolute position measurement system comprises a global positioning system (GPS) sensor; 20. The non-transitory computer-readable storage medium of claim 18.
20. The instructions are further configured to cause, via a remote input device, to display at least one of the position of the load stabilization system apparatus, the orientation of the load stabilization system apparatus, the distance from an obstacle, the height above ground, the signal quality of a wireless transceiver, a user selected function mode or command state, the inertial behavior of a load, the energy capacity or available power of a power source, the work or power consumption of two or more thrusters, the thrust from multiple thrusters, the movement or thrust orientation of the apparatus, and a recommended direction for an operator to operate the platform suspending the load.
16. The non-transitory computer-readable storage medium of claim 15.
Citation Information
Patent Citations
Automatic turning positioning method for hoisting accessory and hoisting accessory furnished with automatic turning positioning device
JP1995179288A
State estimation device, state estimation method, and state estimation program
JP2012132713A
Crane control device, crane, crane control method, method for using the device, and software for executing these methods
JP2013184824A
Self position estimation device
JP2014102137A
Method and system for controlling cargo
JP2017500257A