This invention relates to longitudinally retractable/expandable propeller blades for use on unmanned aerial vehicle applications, such as drones.
Often drones are optimized for a particular application or use, but not easily adapted for a variety of different applications, conditions, or requirements, thereby requiring the designing, building, and/or purchasing of different drones for different applications.
Unmanned Aerial Vehicles (UAVs), or drones, of the present invention have blades that are designed to adapt to different applications, conditions, and/or requirements by providing longitudinal extension of the blades to increase/decrease propeller wingspan. Longitudinal extension allows for larger lift area while minimizing increased power draw, thereby enabling optimized battery usage and flight time of the drone based on the application, condition, or requirement. Drone configurations described herein are dynamically adaptable for adjustment of power, lift, battery life and storage. Accordingly, a single drone may be useful for a variety of different applications such as delivery of different package sizes, environmental needs, and short- or long-range recreational usage. Furthermore, the drones described herein may be more readily adaptable to a variety of flying conditions, such as in urban areas, rural areas, and through varying weather conditions including high, low, and/or changing wind direction, speed and patterns. The adaptive use of the drones for a variety of different applications, conditions, or requirements may impact parameters such as such as battery life, flight time, flight distance, acceleration, and storage size. Other advantages may be appreciated by one skilled in the art.
Provided herein are embodiments of a blade for unmanned aircraft vehicles, wherein the blade includes a base portion and an elongated portion extending longitudinally from the base portion to a tip portion, and wherein the elongated portion is adapted for extension and/or retraction in the longitudinal direction. In some embodiments, a lift area for each blade is at least about 1.1 times greater in an extended state as compared to a retracted state. In some embodiments, a fluid resistance of each blade is at least about 1.1 times greater in an extended state as compared to a retracted state. In some embodiments, a length of the blade extends at least about 5% in an extended as compared to a retracted state.
Provided herein are embodiments of a propeller for unmanned aircraft vehicles, wherein the propeller includes a hub portion adapted to fit on an unmanned aircraft system; and a plurality of blades extending longitudinally from a base portion to a tip portion, wherein the blades are adapted for extension and/or retraction in the longitudinal direction. In some embodiments, a lift area for each propeller is at least about 1.1 times greater in an extended state as compared to a retracted state. In some embodiments, a fluid resistance of each blade is at least about 1.1 times greater in an extended state as compared to a retracted state.
Provided herein are embodiments of an unmanned aircraft vehicle system, wherein the system includes a body and a control system within the body; and one or more propellers operably connected to the body, wherein the propeller includes a plurality of blades extending longitudinally from a base portion to a tip portion, wherein the blades are adapted for extension and/or retraction in the longitudinal direction. In some embodiments, a lift area of the one or more propellers is at least about 1.1 times greater in an extended state as compared to a retracted state. In some embodiments, a a wingspan of the one or more propellers is at least about 1.1 times greater in an extended state as compared to a retracted state. In some embodiments, the blades of the one or more propellers are adapted for extension and/or retraction in the longitudinal direction, thereby increasing and/or decreasing the propeller wingspan. In some embodiments, the system further includes a battery for powering the vehicle, wherein a life of the battery at least about 1.1 times greater when the blades are in an extended state compared to a retracted state. In some embodiments, a flight time, flight distance, and/or flight maximum height of the system with the battery is at least about 1.1 greater when the blades are in an extended state compared to a retracted state. In some embodiments, the control system causes extension and/or retraction between an extended state and a retracted state of the blades by an extension mechanism that utilizes centrifugal force, pressure, pneumatic force, electronic mechanism, and/or a mechanical mechanism. In some embodiments, the control system is programmed to automatically trigger an extension or retraction of the one or more blades based on an application or use of the unmanned aircraft vehicle system. In some embodiments, the control system is programmed to automatically trigger an extension or retraction of the one or more blades based on a size, weight, and/or volume of a package to be delivered. In some embodiments, the control system is programmed to automatically detect and/or trigger automatic retraction and/or extension of the blades based on an environmental condition. In some embodiments, the control system is programmed to automatically detect and/or trigger automatic retraction and/or extension of the blades based on an identified need for increased lift, decreased drag, and/or storage. In some embodiments, the system further includes a storage case with a cavity sized and arranged for receiving the unmanned aircraft system when the blades are in a longitudinally retracted state, but not when the blades are in a longitudinally extended state. In some embodiments, an overall volume space required to store the unmanned aircraft vehicle is at least about 1.1 times less in a retracted state as compared to an extended state. In some embodiments, the control system is programmed to automatically detect and/or trigger automatic retraction and/or extension of the blades based on: opening and/or closing of the case; placing and/or removing of the unmanned aerial vehicle in and/or from the case; and/or powering of the unmanned aerial vehicle on or off.
The novel and inventive features of the subject matter described herein are set forth with particularity in the appended claims. A better understanding of the feature and advantages of the present invention will be obtained by reference to the following detailed description that sets forth illustrative embodiments, in which the principles of the invention are utilized, and the accompanying drawings of which:
Although the blades of
Once retracted, or extended, the blades may be locked into the selected state with a snap or twist lock, for example, however other locking mechanisms may be used as appreciated by one skilled in the art. The extension and/or retraction may be extended manually or automatically by a control system as described in more detail elsewhere herein.
In some embodiments, the lift area for each blade, propeller and/or drone is at least about 1.1, 1.2, 1.3, 1.4, 1.5, or 1.6 times greater in extended as compared to the retracted state. In some embodiments, the fluid resistance is at least about 1.1, 1.2, 1.3, 1.4, 1.5, or 1.6 times greater in the extended state as compared to the retracted state, thereby allowing for a reduction in drag by the same amount in the retracted state as compared to the extended state.
Although the illustrated embodiment shows four propellers connected to the body of the drone, other drone configurations may generally include anywhere from 3 to 8 arms (with connected propellers) or other configurations as appreciated by one skilled in the art.
The blades may lengthen or extend as far possible without creating interference with other blades, for example at least about 5, 10, 15, 20, 25, 30, 35, 40, 45, or 50% more along the longitudinal axis of the blade.
Other UAV configurations are also possible, such as helicopter style drone with a propeller having extendable blades.
Unmanned aircraft vehicles including the extendable blades described herein have a battery life at least about 1.1, 1.2, 1.3, 1.4, 1.5, or 1.6 times greater when the blades are in an extended state compared to a retracted state. Unmanned aircraft vehicles including the extendable blades described herein have a flight time, distance, and/or height (on a single battery) of at least about 1.1, 1.2, 1.3, 1.4, 1.5, or 1.6 times greater when the blades are in an extended state compared to a retracted state.
In some embodiments, the control system causes the extension (and retraction) between the extended and retracted states of an extension mechanism of the drone utilizing centrifugal force, pressure, pneumatic force, electronic mechanism, and/or a mechanical mechanism. The extension/retraction of the blades may be triggered based on a need for increased lift, decreased drag, and/or simply for storage needs. The trigger for extension and/or retraction may be programmable and/or user-selected based on the current drone application or use. For example, the size of a package could automatically trigger an extension or retraction of the one or more blades. Environmental conditions could be detected and trigger automatic retraction and/or extension based on the programming, for example, population density, weather conditions, etc. The extension and/or retraction may be triggered upon opening a case or removing the drone from a case and/or powering the drone on or off.
The methods, software, media, and systems disclosed herein comprise at least one computer processor, or use of the same. The computer processor may comprise a computer program. A computer program may include a sequence of instructions, executable in the digital processing device's CPU, written to perform a specified task. Computer readable instructions may be implemented as program modules, such as functions, features, Application Programming Interfaces (APIs), data structures, and the like, that perform particular tasks or implement particular abstract data types. In light of the disclosure provided herein, those of skill in the art will recognize that a computer program may be written in various versions of various languages.
The functionality of the computer readable instructions may be combined or distributed as desired in various environments. A computer program may comprise one sequence of instructions. A computer program may comprise a plurality of sequences of instructions. A computer program may be provided from one location. A computer program may be provided from a plurality of locations. A computer program may include one or more software modules. A computer program may include, in part or in whole, one or more web applications, one or more mobile applications, one or more standalone applications, one or more web browser plug-ins, extensions, add-ins, or add-ons, or combinations thereof.
The examples and embodiments described herein are for illustrative purposes only and various modifications or changes suggested to persons skilled in the art are to be included within the spirit and purview of this application and scope of the appended claims.