ELECTRICITY AND DATA COMMUNICATION ACCESS TO UNMANNED AERIAL VEHICLES FROM OVER-HEAD POWER LINES
20240017856 ยท 2024-01-18
Inventors
Cpc classification
B64U20/87
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention relates to docking and charging station for an unmanned aerial vehicle (UAV) comprising a housing configured to be fastened to an above-ground structure providing ground clearance underneath the housing, the docking and charging station comprising a power supply unit, a communication module, and a docking port for receiving and docking a UAV. Also provided are UAVs configured to dock in the provided docking and charging stations.
Claims
1-43. (canceled)
44. A docking and charging station for an unmanned aerial vehicle (UAV) comprising a housing configured to be clamped onto a conductor of an overhead power line, a power harvesting section for harvesting power from the electromagnetic field surrounding the conductor, a power supply unit that receives power from said power harvesting unit, a communication module, and a docking port arranged underneath the housing, for receiving and docking a docking and charging unit extending upwardly from an UAV, said docking port and said docking unit providing an electrical connection for charging a docked UAV, wherein the power harvesting section comprises a plurality of current transformer units each having its own a short-circuiting shunt, rectification circuit, and smoothing capacitor, and which are parallel connected to a common power supply output, and wherein a secondary winding of each current transformer is configured to be short-circuited a current shunt when not needed, and wherein the DC power output connection of each rectifier of the current transformer unit(s) is connected in parallel.
45. The docking and charging station according to claim 44, which is powered only by said power harvesting unit.
46. The docking and charging station according to claim 44, comprising a charging unit for fast-charging the UAV, powered by said power harvesting unit.
47. The docking and charging station according to claim 44, further comprising a power storage device powered by said power harvesting unit.
48. The docking and charging station according to claim 46, wherein the power storage device comprises a supercapacitor energy storage device for said fast charging of the UAV.
49. The docking and charging station according to claim 44, wherein the docking port comprises a guiding and securing portion for controllably docking, securing, storing/parking, and releasing said UAV.
50. The docking and charging station according to claim 49, wherein the guiding portion comprises a conical or funnel-shaped structure in the bottom surface of the housing for receiving the mating docking unit of said UAV.
51. The docking and charging station according to claim 49, wherein the guiding and securing portion comprises a clamping or gripping mechanism for securing the docking and charging unit of the UAV to the docking and charging station.
52. The docking and charging station according to claim 44, wherein the docking port is adapted to be releasably attached to the housing, and wherein the docking port is configured to be secured to the housing and to provide a docking socket for releasably securing said UAV to said housing.
53. The docking and charging station according to claim 44, comprising one or more of: Infrared Serial Transceiver(s), LiDAR sensor(s), RTK base station, and high-resolution camera for navigation of the UAV to the docking and charging station.
54. A system for providing docking, charging and data communication with UAVs, said system comprising: at least one docking and charging station as defined in claim 44, one or more UAV, and wherein the one or more UAV each comprises said docking and unit configured to mate to the docking port of the docking and charging station, said docking unit being arranged on the top said each UAV.
55. The system according to claim 54, wherein the at least one docking and charging station and the one or more UAVs comprise multiple Infrared Serial Transceivers for high-precision two-way aerial navigation to and from the docking and charging station and the UAVs, and wherein the multiple Infrared Serial Transceivers communicate using two-way communication protocol to determine the exact position of the UAV with respect to the docking and charging unit.
56. The system according to claim 54, wherein the docking and unit on said UAV comprises a docking probe and a connecting head or anchor having a mating structure to the docking port on said docking and charging station.
57. The system according to claim 56, wherein the docking unit is arranged within the housing of the UAV, with said docking probe and a connecting head or anchor extending upwardly from said housing of the UAV.
58. The system according to claim 56, wherein the docking unit is removably secured to the exterior of said UAV, the docking unit comprising an electrical connection for charging and data transmission.
59. The system according to claim 56, wherein the docking probe is arranged to be in a resting or flight mode during flight of the drone and an erected docking mode for docking, parking and releasing.
60. The system according to claim 59, wherein the docking probe comprises a rod which is configured to be in a horizontal position essentially aligned with the top surface in resting or flight mode, and to be erected to a substantially upright position in docking mode.
61. The system according to claim 55, wherein the at least one docking and charging station further comprises a LiDAR transceiver for distance and location measurement for high-precision aerial navigation of the UAV for the final distance to the docking port.
62. The system according to claim 55, wherein the at least one docking and charging station further comprises a high-resolution camera for reading a QR-code on the one or more UAV or the docking unit for high-precision aerial navigation of the UAV for the final distance to the docking port.
63. The system according to claim 55, wherein the at least one docking and charging station further comprises a RTK base station for improved flight navigation and docking accuracy, and said UAV being GNSS based and further comprising a RTK rover device such as, but not limited to GPS devices.
64. The system according to claim 55, wherein the at least one docking and charging station further comprises data processing means for processing data received from the UAV.
65. The system according to claim 64, wherein the data processing is used to locate the position of objects or events occurring on or near the power line, such as line fault events, fires and icing.
66. The system according to claim 64, wherein the communication module comprises a transceiver device for communicating with the one or more UAVs.
67. The system according to claim 55, wherein the docking and charging station communicates with said one or more UAVs either wirelessly or using wired connection.
68. The system according to claim 67, wherein the wireless communication comprises one or more of mobile networks, satellite networks, Wi-Fi, Bluetooth or narrowband IoT, optical guiding means, sound guiding means or visual means such as a QR code identification label, 3GPP based cellular networks such as GSM, UMTS, LTE, LTE-M, EC-GSM-IoT and 5G-NR, wireless local area networks including IEEE 802.11, Wireless Personal Area Networks including IEEE 802.15 (e.g. Bluetooth, ZigBee, Z-Wave, LoRa), RFID, optical communications including visual lighting and laser, sound communications, and visual communications such as markers and QR codes.
69. The system according to claim 55, wherein the system further comprises a remote data platform for receiving data obtained by the one or more UAVs and for sending data to the one or more UAVs.
70. The system according to claim 69, wherein the docking and charging station further comprises means for collecting, storing, processing and communicating data received from the one or more drones to the remote data platform, and for communicating data from the remote data platform to the one or more UAVs.
71. The system according to claim 55 wherein the system further comprises one or more wireless networking mesh devices for transmitting data from the one or more docking and charging stations and/or relaying data to location providing mobile coverage or other means of telecommunication for communicating with remote platform.
72. The system according to claim 71, wherein the one or more wireless networking mesh device comprises a power source and a communication module.
73. The system according to claim 72, wherein the power source is a power harvesting section for generating power by magnetic induction of the current transmitted by the phase wire.
74. The system according to claim 73, wherein the communication module is a wireless networking mesh device.
Description
BRIEF DESCRIPTION OF FIGURES
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DESCRIPTION OF THE INVENTION
[0045] The object(s) underlying the present invention is (are) particularly solved by the features defined in the independent claims. The dependent claims relate to preferred embodiments of the present invention. Further additional and/or alternative aspects are discussed below.
[0046] Thus, at least one of the preferred objects of the present invention is solved by a system for providing docking, charging and/or data communication with UAVs (drones). The system comprises i) at least one docking and charging station, further comprising: a) a housing, b) a power supply unit, and c) a communication module, and ii) one or more UAVs. The housing of the at least one docking and charging station further comprises a docking and charging unit preferably arranged underneath of the housing for controllably receiving, charging and releasing the one or more drones. Furthermore, the one or more drones comprises a docking and connecting unit to for docking to the docking and charging unit, said drone docking and connection unit being arranged on the top surface of the one or more drones.
[0047] In the present context the terms overhead power line phase wire, power transmission line and conductor refer to a wire conductor intended to transmit electricity at high or low voltage levels as an overhead power line. The operating voltage of overhead power transmission lines may range from low voltage lines with less than 1000 volts to ultra-high voltage overhead lines with voltage levels higher than 800 kV.
[0048] In the present context the terms operational platform and remote data platform refer to a remote centralized software and data platform, or operational and management system for receiving data from the docking electronic devices such as drones and drone docking and charging station clamped onto conductor of an overhead power lines.
[0049] In the present context the terms docking and charging station, drone Docking and Charging Station (DDC) and apparatus refer to an apparatus having a power supply and communication devices where the apparatus is arranged for a drone to fly and dock underneath the housing of the apparatus.
[0050] In the present context the terms docking and connecting unit and Docking and Connection Equipment (DCE) refer to a connecting device which can be mounted onto a drone or designed as an integral part of a drone where a part of the connecting device can be erected and connected to a mating structure of a drone docking and charging station.
[0051] All embodiments listed below relate to both the apparatuses, system and the method of the present invention.
[0052] In an embodiment of the present invention the system further comprises a remote data platform for receiving data obtained by drones and sending to the at least one docking and charging stations.
[0053] In an embodiment of the present invention the docking and charging station further comprises a power storage device and a power outlet for connecting to drones.
[0054] In an embodiment of the present invention the power storage device is a supercapacitor energy storage device for aiding in fast charging of the drones.
[0055] In an embodiment of the present invention the data communication module communicates with one or more drones either wirelessly or using wired connection.
[0056] In an embodiment of the present invention the wireless communication comprises one or more of mobile networks, satellite networks, Wi-Fi, Bluetooth or narrowband IoT, optical guiding means, sound guiding means or visual means such as markers or QR code identification labels, 3GPP based cellular networks such as GSM, UMTS, LTE, LTE-M, EC-GSM-IoT and 5G-NR, wireless local area networks including IEEE 802.11, Wireless Personal Area Networks including IEEE 802.15 (e.g. Bluetooth, ZigBee, Z-Wave, LoRa), RFID, optical communications including visual lighting and laser, sound communications, and visual communications such as markers and QR codes.
[0057] In an embodiment of the present invention the external devices are devices selected from, but not limited to, cameras, sensors, drones, computers, mobile phones, Internet of Things (IoT) objects, aircraft, satellites, broadband mobile network cells, Global Positioning System (GPS), and other data transceiver devices.
[0058] In an embodiment of the present invention the docking and charging station comprises a docking and charging portion for controllably securing, storing, charging and releasing drones from the docking and charging station.
[0059] In an embodiment of the present invention the docking and charging station further comprises means for collecting, storing, processing and communicating data received from drones to a remote data platform, and for communicating data from the remote data platform to drones.
[0060] In an embodiment of the present invention the docking and charging station and/or the remote data platform further comprise data processing means for processing data received from the drones.
[0061] In an embodiment of the present invention the data processing comprises carrying out operations on data to transform or classify information including, but not limited to, averaging of data series over specified periods of time, frequency analysis transformations, calculation of conductor status including sag, clearance, tension, temperature and current, conductor vibration analysis including line slapping and galloping, identification of line icing conditions and ice load, detection of fire incidents on and around the power line including sparks, flames and wildfires, detection of vegetation and wildlife contact, detection of grid faults events and their location, and image and video processing. Data processing also refers to any transformation or classification of information unrelated to the power line and the power grid.
[0062] In an embodiment of the present invention the data processing comprises image analysis of image data for single images, multiple images and/or HD video data provided by drones.
[0063] In an embodiment of the present invention the system comprises one or more drones for obtaining data on power lines and mast structures on a power grid and/or the area surrounding a power grid.
[0064] In an embodiment of the present invention the image data is fed through machine learning (ML) and artificial intelligent (AI) processes providing real-time reports, forecasts and future optimisation and increased accuracy of events related to the data.
[0065] In an embodiment of the present invention the data processing is used to locate the position of objects or events occurring on or near the power line, such as, but not limited to, line fault events, fires and line icing.
[0066] In an embodiment of the present invention, the power outlet in the housing of the docking and charging station forms the docking socket for releasably securing drones to the housing of the docking and charging station.
[0067] In an embodiment of the present invention, the docking and charging portion is adapted to be releasably attached to the housing of the apparatus, and wherein the docking and charging portion is designed to fit underneath or onto the housing of the apparatus and to form a docking portion to drones to be docked and charged.
[0068] In an embodiment of the present invention, the docking and charging portion further comprises a power socket connected to the power outlet.
[0069] In an embodiment of the present invention, the apparatus further comprises a power outlet for supplying power to or charging of drones.
[0070] In an embodiment of the present invention, the apparatus further comprises a power storage device.
[0071] In an embodiment of the present invention, the power storage device is a supercapacitor energy storage device.
[0072] In an embodiment of the present invention, the power outlet is also a docking socket for releasably securing an external device to the housing during data transfer and/or charging.
[0073] In an embodiment of the present invention, charging is facilitated by attaching a separate docking and charging station to the housing of the apparatus before or after the apparatus is mounted on the overhead power lines. This means that the docking port and associated components can be arranged in an add-on part, to be securely attached to a power harvesting station attachable to an overhead power line. The docking port may however also be an integral part of the station.
[0074] In an embodiment of the present invention, the docking and charging station comprises means for controllably attaching, storing, charging and releasing an external device (such as in particular a UAV) from the apparatus.
[0075] In an embodiment of the present invention, the data transceiver unit comprises electronic equipment for transmitting and receiving communications/data using standard protocols for networks such as, but not limited to, 3GPP based cellular networks such as GSM, UMTS, LTE, NB-IoT, LTE-M, EC-GSM-IoT and 5G-NR, wireless local area networks including IEEE 802.11, satellite networks, Wireless Personal Area Networks including IEEE 802.15 (e.g. Bluetooth, ZigBee, Z-Wave, LoRa), Ethernet networks including IEEE 802.3 or other wired serial protocols e.g. RS232, R5485, I2C, SPI, Modbus.
[0076] In an embodiment of the present invention, the apparatus (the data transceiver unit) further comprises means for collecting data obtained from the drones and transmit to a remote data platform for storing, processing and analysing data from the drones.
[0077] In an embodiment of the present invention, the apparatus further comprises means for processing data from an external device (e.g. UAV) and sending the results back to the external device.
[0078] In an embodiment of the present invention, the docking and charging station further comprises means for sending data from the devices and/or processed data to a remote IT platform, and to receive data from the remote IT platform to be relayed to the drones.
[0079] In an embodiment of the present invention, all components of the apparatus which require energy are only powered by the power harvesting unit.
[0080] In an embodiment of the present invention, the power harvesting unit further comprises i) a power harvesting section, ii) a control and supervising section, and iii) an electrical power output section.
[0081] In an embodiment of the present invention the power harvesting section comprises i) at least one current transformer unit, ii) a DC/DC regulation module, and iii) a charging control section.
[0082] In an embodiment of the present invention the power harvesting section comprises one or more current transformer units, where each current transformer unit comprises: i) a core configured to be located around a primary wire, ii) one secondary winding arranged around each of the at least one core, wherein each secondary winding has a first end and a second end, iii) a rectifier configured to convert an alternating current to a direct current, wherein the rectifier comprises two AC connections for alternating current and two DC connections for direct current, wherein the first end and the second end of the secondary winding are connected to the AC connections of the rectifier, and iv) a current shunt arranged and configured to totally short the ends of the secondary winding, wherein a common load is connected to the DC connection of the current transformer unit, and wherein the DC connection of the rectifier of the current transformer unit is connected to the common DC power output in parallel.
[0083] In an embodiment of the present invention the power harvesting section comprises a plurality current transformer units. In such an embodiment, the rectifiers that are connected to the load are connected in parallel and for each current shunt, a shunt controller unit for controlling the state of the respective shunting unit. Furthermore, each shunt controller unit comprises a voltage level state input and is configured to control the state of the respective shunt unit in dependence of the voltage level state input, where each voltage level state input is based on a voltage across the load and where each shunt controller unit may comprise a clock input where each controller unit is configured to only change a state of the respective shunt unit in dependence of the clock input. Furthermore, in such an embodiment, the system further comprises a zero-crossing detection element for detecting zero crossing states of a sensed current and a system control unit, where the system control unit is configured to generate the voltage level state inputs for each shunt controller unit based on the voltage across the load.
[0084] In an embodiment of the present invention each rectifier comprises a plurality of MOSFETs, such as at least 4 MOSFETs.
[0085] In an embodiment of the present invention each current shunt comprises a plurality of MOSFETs, such as at least 2 MOSFETs.
[0086] In an embodiment of the present invention, the electric power output of each of the one or more current transformer units is independently connectable to common electric power output.
[0087] In an embodiment of the present invention, the current transformer units are independently switched on or off based on power required by common electric power output.
[0088] In an embodiment of the present invention the apparatus further comprises a connector and clamping mechanism for an external devices such as drones.
[0089] In an embodiment of the present invention the apparatus further comprises heaters to keep components of the unit and sensors within the range of their optimal recommended operating temperatures.
[0090] In an embodiment of the present invention the apparatus further comprises a cooling mechanism and air ventilation to keep components of the unit and sensors within range of their optimal operating temperatures, such as cooling fans for central processing units (CPUs) and DC/DC power modules.
[0091] In an embodiment of the present invention the apparatus further comprises an antenna for wireless telecommunication, mobile networks, satellite networks, Wi-Fi, Bluetooth and the Global Positioning System (GPS).
[0092] In an embodiment of the present invention the control and supervising section further comprises i) at least a primary controller, ii) a power management controller, and iii) a measurement and data acquisition module.
[0093] In an embodiment of the present invention the output section further comprises power outputs for the one or more sensing or measuring devices and a wireless telecommunication module.
[0094] In an embodiment of the present invention the operational platform is a software and data platform.
[0095] In an embodiment of the present invention the drone docking and charging station comprises telecom devices, e.g., mobile router using LTE connectivity (or other available Radio Access Networks), to connect to the outside world for the operation and maintenance of the DDC station and for transferring of data from drone to control centre.
[0096] In an embodiment of the present invention the drone docking and charging station comprises Wi-Fi wireless communication equipment that enables ethernet communication with external devices such as the DCE equipment and the drone, and other devices in the surroundings.
[0097] In an embodiment of the present invention the drone docking and charging station comprises wireless communication equipment based on IEEE 802.15 standards (e.g. Bluetooth, ZigBee, Z-wave, LoRa) that enables wireless communication with external devices such as the DCE and the drone, and other devices in the surroundings.
[0098] In an embodiment of the present invention the drone docking and charging station comprises LoRa wireless communication equipment that enables wireless communication with external devices such as the DCE, the drone, and other devices in the surroundings.
[0099] In an embodiment of the present invention the drone docking and charging station comprises Serial Infrared Transceivers that enables wireless (infrared) communication between the DDC station and the drone or its DCE and are used to guide the DCE and drone at the final stage of docking and connection to the DDC station.
[0100] In an embodiment of the present invention the drone docking and charging station comprises LiDAR transceiver for precisely measuring the distance between the DDC station and the DCE and is used to guide the DCE at the final stage of docking and connection to the DDC station.
[0101] In an embodiment of the present invention the drone docking and charging station comprises High-definition camera that reads QR codes on the back of DCE and is used to guide the DCE at the final stage of docking and connection to the DDC station.
[0102] In an embodiment of the present invention the drone docking and charging station comprises RTK base station for improved accuracy of the GNSS based drone positioning device, like GPS or other type, that acts as a RTK rover.
[0103] In an embodiment of the present invention the drone docking equipment comprises Wi-Fi wireless communication equipment that enables ethernet communication with the DDC station and the drone.
[0104] In an embodiment of the present invention the drone docking equipment comprises wireless communication equipment based on IEEE 802.15 standards (e.g. Bluetooth, ZigBee, Z-wave, LoRa) that enables wireless communication with external devices such as the DCE equipment and the drone, and other devices in the surroundings.
[0105] In an embodiment of the present invention the drone docking equipment comprises LoRa wireless communication equipment that enables wireless communication with external devices such as the DCE equipment, the drone, and other devices in the surroundings.
[0106] In an embodiment of the present invention the drone docking equipment comprises Serial Infrared Transceivers that enable wireless (infrared) communication between the DDC station and the DCE and are used to guide the DCE and drone to the final stage of docking and connection to the DDC station.
[0107] In an embodiment of the present invention the drone docking equipment comprises wired serial communication devices protocols, such as, but not limited to RS232, R5485,I.sup.2C and SPI for communication between the DCE and the flight control unit of the drones it is attached to.
[0108] In an embodiment of the present invention the drone docking equipment comprises ambient light detectors.
[0109] In an embodiment of the present invention the at least one docking and charging device and the one or more drones further comprise multiple Infrared Serial Transceivers for high-precision two-way aerial navigation for the final approach to the drone docking funnel of the drone docking unit.
[0110] In an embodiment of the present invention the multiple Infrared Serial Transceivers communicate using unique two-way communication protocol that communicates the exact position of the drone docking unit underneath the docking and charging device. Thus, in an illustrative embodiment, an Infrared Serial Transceiver A of the drone docking unit must be exactly in line with Infrared Serial Transceiver A of the docking and charging device (DDC) for the drone to be correctly aligned and positioned. The same applies to the Infrared Serial Transceivers B, C and D, which all have respective corresponding transceivers on the DDC. This is illustrated in
[0111] In an embodiment of the present invention the Infrared Serial Transceivers communication data includes the unique identification number of each of the plurality of Infrared Serial Transceivers, such as two or three or preferably at least four, e.g. one in or near each corner of the bottom of the docking and charging device and a corresponding one in each corner on the top of the drone docking unit or the drone himself.
[0112] In an embodiment of the present invention positioning data includes not only the Serial Infrared Transceiver's transmitted data but also includes high precision measurement data of a LiDAR transceiver in the docking and charging device allowing for centimetre precision in measuring the distance between the docking and charging device and the drone docking unit right before docking.
[0113] In an embodiment of the present invention the Serial Infrared Transceivers take over all data communication between the docking and charging device and the drone docking unit when electrostatic discharge and other high-frequency interference in the surroundings can prevent normal operation of other wireless communication devices that are sensitive to electrostatic and electromagnetic interference.
[0114] It should be noted that the above aspect and novel use of pairwise infrared transceivers for accurate alignment of a UAV for docking and landing can as such be used in other configurations. Thus, in one embodiment a docking and charging station can have an upwardly facing docking port and infrared transceivers facing upwardly, for a drone with an appropriate docking mechanism to land and dock from above, and having downwardly facing infrared transceivers communicating with the transceivers of the station, and thus the UAV will have to correctly pair the transceivers and then it is accurately aligned for landing, essentially as described above except the UAV lands from above to an upwardly facing docking port.
DESCRIPTION OF VARIOUS EMBODIMENTS
[0115] The present invention will become more fully understood from the detailed description given hereinafter and the accompanying drawings which are given by way of illustration only, and thus, are not limitative of the present invention, and wherein:
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[0124] Panel A: The UAV is approaching the docking and charging station. Serial Infrared Transceivers on the UAV (or associated docking and charging anchor unit fastened to the UAV (DCE)) starts sending aerial navigation signals looking for mating Serial Infrared Transceivers on the docking and charging station (DDC).
[0125] Panel B: The DCE Serial Infrared Transceiver 22a data communication signal is detected at Serial Infrared Transceiver 12c on the DDC station, which is incorrect position so the UAV continues aerial navigation to correct its position underneath the DDC station before docking. Because the DDC station has detected the DCE Serial infrared Transceiver signal, it turns on the LiDAR transceiver 23 to start measuring distance between the DDC station and the DCE with millimetre resolution.
[0126] Panel C: The UAV (or associated DCE) on the drone continues aerial navigation to reach correct position underneath the DDC station before docking.
[0127] Panel D: All four Serial Infrared Transceivers on the UAV (or DCE) are now aligned and communicating with their mating counterparts on the DDC station so the UAV is correctly aligned and positioned right underneath the centre of the DDC station. Therefore, the UAV with the aid of LiDAR transceiver 23 can navigate upwards to the docking funnel (guiding funnel) and into to the docking port of the DDC station.
Example 1Serial Infrared Communication Protocol for Drones
[0128] In the example, there are four Serial Infrared Transceivers underneath the top lid of the
[0129] DCE equipment, one in each corner. The infrared transceivers communicate with identical transceivers in the four corners at the bottom of the DDC station to enable the DCE equipment and the drone it is attached to, to be precisely guided the last meters before connecting to the DDC station. The view angles of the infrared transceivers are kept narrow to ensure that the transceivers must be in direct line of sight with the mating infrared transceiver on both sides to secure that the DCE equipment docking probe is directly below the centre of the DDC station to find the way into the docking funnel and docking port of the DDC station. Each infrared transceiver has its own identification code to facilitate the drone's guidance, i.e., the correct azimuth heading, the precise location and height underneath the docking funnel of the DDC station, the last meters to the charging station. This is to secure the docking probe lands directly in the docking funnel underneath the DDC station.
[0130] The docking probe, which may be made of conductive material, and is located on top of the DCE equipment, has two functions; i) to dock and attach the drone securely to the DDC station and ii) to connect the charging current from the DDC station through the DCE equipment to the battery charging port of the drone. The drone reports to the DDC station, either directly or through the DCE equipment by the aid of wired serial communication, what voltage levels are required for the drone battery pack (3.7V7.4V11.1V14.8V18.5V22.2Vetc.) and also the charging rate curve to secure correct voltage and current levels for the charging process.
[0131] The Serial Communication protocol shown in
[0132] The Serial Infrared Transceiver connects to microcontroller in the communicating devices (DDC and DCE) through standard UART interface. The maximum transmitting distance between two Serial Infrared Transceivers is 8 meters. The bit rate ranges from 9.6 kbit/s up to 115.2 kbit/s.
[0133] The Serial Infrared Transceiver aerial guiding function and data communication are based on proprietary communication protocols designed by the present inventor. Below are few samples of many regarding data request and command strings used in this application. Those samples are not limited and may be subjected to changes, if applicable, in different embodiments of the proposed invention.
[0134] As used herein, including in the claims, singular forms of terms are to be construed as also including the plural form and vice versa, unless the context indicates otherwise. Thus, it should be noted that as used herein, the singular forms a, an, and the include plural references unless the context clearly dictates otherwise.
[0135] Throughout the description and claims, the terms comprise, including, having, and contain and their variations should be understood as meaning including but not limited to, and are not intended to exclude other components.
[0136] The present invention also covers the exact terms, features, values and ranges etc. in case these terms, features, values and ranges etc. are used in conjunction with terms such as about, around, generally, substantially, essentially, at least etc. (i.e., about 3 shall also cover exactly 3 or substantially constant shall also cover exactly constant).
[0137] The term at least one should be understood as meaning one or more, and therefore includes both embodiments that include one or multiple components. Furthermore, dependent claims that refer to independent claims that describe features with at least one have the same meaning, both when the feature is referred to as the and the at least one.
[0138] Use of exemplary language, such as for instance, such as, for example and the like, is merely intended to better illustrate the invention and does not indicate a limitation on the scope of the invention unless so claimed. Any steps described in the specification may be performed in any order or simultaneously, unless the context clearly indicates otherwise.
[0139] All of the features and/or steps disclosed in the specification can be combined in any combination, except for combinations where at least some of the features and/or steps are mutually exclusive. In particular, preferred features of the invention are applicable to all aspects of the invention and may be used in any combination.