The present invention generally relates to air transport systems. More specifically, all terrain transport systems with modular adaptability for a variety of uses, including human transport.
Humans have continued to innovate in new systems and methods to obtain personal flight. Some such systems have included a variety of different types of aircraft including multi-rotor aircraft and fixed winged aircraft. Personal transportation devices have also included single person vehicles to multi-passenger vehicles in a number of different configurations. Some of which have included vehicles with traditional fuel systems as well as electrically powered systems. Some developers have attempted to make hybrid systems that combine more traditional fuel systems with electrical ones as well as combined uses of multiple rotors and fixed wings. The continued development of personal transportation devices has led to the development of such devices as jetpacks that can be worn by an individual. However, many such devices rely on traditional fuel systems that carry specific safety concerns as well as lack the ability to adapt.
Although some developments have led to smaller and more compact personal transportation systems, many implementations lack feasible and cost-effective solutions for real world applications.
Many embodiments are directed to an all-terrain modular mobility system capable of moving a desired payload over a distance. The modular mobility system can have a number of different thrusters to generate vertical thrust as well as thrust vectoring to control the system while in flight. Some embodiments may incorporate fixed elements for longer sustained horizontal flight. In various embodiments, the power system can consist of modular electrical components that allow for adaptation depending on the terrain, environment, and/or mission requirements.
Additional embodiments and features are set forth in part in the description that follows, and in part will become apparent to those skilled in the art upon examination of the specification or may be learned by the practice of the disclosure. A further understanding of the nature and advantages of the present disclosure may be realized by reference to the remaining portions of the specification and the drawings, which forms a part of this disclosure.
The description will be more fully understood with reference to the following FIGURES, which are presented as exemplary embodiments of the invention and should not be construed as a complete recitation of the scope of the invention, wherein:
Turning now to the drawings, systems and methods for an all-terrain modular mobility system are illustrated. Many embodiments of a modular mobility system have a frame structure that can be configured to support a plurality of energy storage elements. Each of the plurality of storage elements can be configured to provide power in order to operate a variety of propulsion devices. The propulsion devices can be electronically connected to the energy storage elements in a variety of manners including, but not limited to, power cables that can be flexible. In many embodiments, at least some of the propulsion devices can be manipulated in a number of axes in order to create a thrust vectoring for the mobility system. The thrust vectoring can thus allow the mobility system to maneuver while in flight.
Various transportation systems have been used to transport a number of things from human cargo to simple camera systems for data collection to other payloads. With the advancement of more efficient propulsion systems, personal transportation devices have captured the eye of many developers. For example, some personal taxi systems have been developed with a fuselage to carry the payload and a propulsion system. The overall systems tend to be similar to a helicopter with a rotary winged element and/or some fixed winged element.
Some of the prototypes have relied upon more traditional energy supply systems such as petrol-based fuel. However, the advancement of electrical technology has led to some developers creating fully electric vehicles. However, current battery technology presents various issues with scalability in terms of personal transportation systems. The current energy density of battery technology requires large battery banks or battery cells to provide sufficient energy to power the propulsion systems. Additionally, the large battery cells and larger propulsion systems typically require larger footprints. This can prove difficult to provide systems that are capable of sustained flight.
In contrast, the present invention is related to smaller individualized transportation systems that take advantage of modularity and adaptability as well as the current energy density available in electronic energy systems. The modularity of the various embodiments also allows for improved function over time as new developments arise with respect to higher energy density. Many such embodiments are directed toward a personal mobility system that can be worn by an individual or used as a transportation system to deliver any of a variety of different payloads.
In accordance with many embodiments, the modular mobility system 100 is designed to provide vertical thrust through the use of a number of different vertical thrusters 106. In accordance with various embodiments, the vertical thrusters 106 can be positioned near the top of the system 100 and remain in a fixed position such that the operation of the thrusters would provide a vertical thrust sufficient to provide lift to the system and the user. The vertical thrusters can be connected to the battery bank 102 by any number of electrical connections 107 such that the vertical thrusters 106 can draw power from the bank 102. In some embodiments the vertical thrusters are in a fixed position. In other embodiments, the vertical thrusters may be tilted at an angle such that the thrust generated can be both vertical and horizontal thrust. The primary function of the thrusters is to generate sufficient force to provide lift to the system 100 and payload, while the vertical thrusters 106 may also be configured to provide a secondary horizontal element when needed.
While the vertical thrusters 106 have a primary function to provide vertical thrust for the system, many embodiments can have one or more auxiliary thrusters 110. The auxiliary thrusters 110 can be configured to provide thrust vectoring. Thrust vectoring is a manner in which the overall thrust of the vehicle or system can be directed in such a way to redirect the movement of the vehicle. In many embodiments, the auxiliary thrusters 110 can be held by the users' hands such that the movement of the users' arms can direct the thrust from the auxiliary thrusters along any axis of movement. The auxiliary thrusters 110 can thus be used to generate a horizontal motion of the overall system. In order to help facilitate the overall function of the auxiliary thrusters 110, some embodiments may connect two or more auxiliary thrusters 110 through a handle 112 or other type of framework piece that connects the thrusters and allows the user to control the movement of the auxiliary thrusters.
Similar to the vertical thrusters 106, the auxiliary thrusters 110 can be powered by the onboard battery bank 102. Additionally, the auxiliary thrusters 110 can be connected to the battery bank by similar electrical connections 114. It should be understood that the electrical connections 114 for the auxiliary thrusters 110 can be flexible and adjustable such that they can allow the users to move the auxiliary thrusters 110 in any direction needed for flight. Additionally, the adjustability of the connections 114 can allow for different sized users to operate the mobility system without significant modifications to the overall system.
As previously described with respect to
With the described modularity of the various embodiments of the mobility system, it should be understood that some embodiments can be adapted to operate without a human payload. For example,
Although various embodiments of a mobility system have been discussed primarily with respect to vertical flight and thrust vectoring for maneuvering, some embodiments of a mobility system can be configured for longer sustained horizontal flight. For example,
Other embodiments of the mobility system 400 can be configured to obtain flight from a horizontal initial position, similar to a traditional fixed wing aircraft. Accordingly, the main thrusters 402 can provide the necessary horizontal thrust to generate the lift from the fixed wing 410 to obtain vertical flight. From there, the auxiliary thrusters 404 can produce the necessary thrust to maintain flight. In many embodiments, the fixed wing element 410 can have a number of control surfaces 412 integrated into the wing element. The control surfaces can help adjust the pitch, roll, and yaw of the vehicle and allow the auxiliary thrusters to remain in a fixed position. The movement of the control surfaces would require far less energy than moving the auxiliary thrusters for thrust vectoring, thus increasing the flight time capabilities of the system 400 by reducing the energy needed to operate the thrusters. As with various other embodiments, the mobility system illustrated in
As can be appreciated, the various flight control elements can be connected to the framework 510 of the system 500 in a number of different ways. Additionally, each of the flight control elements can be removable such that the system can be converted to an alternative version as needed for the various mission parameters. For example, the fixed wing element 506 as well as the tail fin 502 and stabilizers 504 can be removed to resemble a configuration similar to that illustrated in
The modularity of the various embodiments of the mobility system can be carried throughout the overall design and in a number of different components. Much like the fixed wing elements can be removed and modified for different mission requirements, it should be understood that the power supply system can also be modular and adaptable. For example,
As can be fully appreciated by the modularity of the various embodiments of mobility systems and the associated components can be used in a number of different environments and terrains. For example, the modularity of the systems can allow for use in mountainous terrains or over water. Additionally, many embodiments can be adapted for use in wet or dry environments. Embodiments of the energy storage systems and the associated connections can be sealed and water tight. Sealing the enclosures of a mobility system in this way can allow for the system to be used in rainy or moist environments without risk of damage to the electrical or mechanical systems. Likewise, the sealed systems can be used in dry desert like environments that can be subject to sand storms or other weather conditions that might expose the various components to corrosive debris. Additionally, the simplicity of the various thruster designs can offer improved longevity and sustainability in the various embodiments of the system due to their lack of complex moving parts. Furthermore, the modularity of the systems and components described herein offer greater adaptability and ease of use in any terrain and/or environment.
As can be appreciated, the control of the various embodiments of mobility systems can require unique solutions in order to enable safe flight operations. In the case of a human operator, training should be involved such that the system can be operated safely. Additionally, various embodiments may incorporate additional controllers that can be computer controlled to help the human operator have an interface with the various system components such that the operator can operate the mobility system safely. For example, some embodiments may have a controller that can communicate system component data such as battery life, rotor speed, distance, overall flight speed, estimated distance on battery left, etc. to a heads-up display worn by the controller. In some embodiments of the mobility system without a human operator, the system information can be transmitted to an offsite controller that can be a human or a computer system for controlling the flight of the vehicle.
As can be fully appreciated, battery power and energy density can be an important component to mobility systems as described herein. At a minimum, the electric systems should be capable of providing 0.18 kilowatt-hours per Kg in order to sustain flight for any non-negligible amount of time. Many embodiments may be capable of incorporating energy storage elements with 0.18 kilowatt-hours per Kg or more. For example, some energy storage elements can have 0.21 kilowatt-hours per kg. As can be appreciated, the energy storage elements can be of any suitable type such as lithium batteries or any such device with the desired energy density of 0.18 kilowatt-hours per kg or higher. Electric energy can be relatively efficient and provide an environmentally advantageous solution to mobility systems. Additionally, electric systems can offer quieter systems for deployment in areas or missions that may require unique applications. As previously mentioned, the low noise emissions of the various embodiments can allow for more stealth-like or undetectable movement. This can be highly advantageous depending on the overall mission requirements and operational environment. It can be appreciated, that energy density of the power supply system can prove the greatest challenge to sustained flight. This can also be affected by the transported as well as the overall weight of the system. Accordingly, many embodiments described herein allow for adaptability to increase or adjust the energy supply system as well as adapt and update the power system with higher energy density components as well as lighter more agile components; thus, improving the overall efficiency of the system. Additionally, the efficiency of the system can be adjusted based on the mission requirements to allow for ingress and egress of various payloads without negatively affecting the outcome of the mission.
As can be fully appreciated from the discussion above, modularity and adaptability can be an important aspect of the various embodiments of the mobility systems and the various subsystems. Accordingly,
To assist in the directional movement of the mobility system 800, some embodiments can have a number of different auxiliary thrusters 806.
As can be inferred from the above discussion, the above-mentioned concepts can be implemented in a variety of arrangements in accordance with embodiments of the invention. Specifically, the use of a modular mobility system for easy deployment of personnel and/or equipment through a number of different terrains and/or environments. Some embodiments may incorporate a number of different thrust generating devices that allow for thrust vectoring as well as vertical thrust. Other configurations can be adapted to accommodate longer, more sustained flights through fixed wing elements.
Accordingly, although the present invention has been described in certain specific aspects, many additional modifications and variations would be apparent to those skilled in the art. It is therefore to be understood that the present invention may be practiced otherwise than specifically described. Thus, embodiments of the present invention should be considered in all respects as illustrative and not restrictive.
The current application is a continuation of U.S. Non-Provisional application Ser. No. 18/180,756, entitled “Modular Mobility System”, filed Mar. 8, 2023, which claims priority under 35 U.S.C. 119(e) to U.S. Provisional Patent Application Ser. No. 63/269,162, entitled “Modular Mobility System”, filed Mar. 10, 2022, the disclosures are hereby incorporated herein by reference in their entirety.
| Number | Name | Date | Kind |
|---|---|---|---|
| 2417896 | Zimmerman | Mar 1947 | A |
| 2547266 | Hoglin | Apr 1951 | A |
| 2943816 | Hiller, Jr. | Jul 1960 | A |
| 2953321 | Robertson et al. | Sep 1960 | A |
| 3021095 | Moore | Feb 1962 | A |
| 3023980 | Martin et al. | Mar 1962 | A |
| 3107069 | Draim | Oct 1963 | A |
| 3149798 | Moore | Sep 1964 | A |
| 3149799 | Hulbert | Sep 1964 | A |
| 3184183 | Plasecki | May 1965 | A |
| 3243144 | Hulbert et al. | Mar 1966 | A |
| 3277858 | Athey | Oct 1966 | A |
| 3381917 | Moore | May 1968 | A |
| 3416753 | Hulbert | Dec 1968 | A |
| 3434290 | Cresswell | Mar 1969 | A |
| 3443775 | Williams | May 1969 | A |
| 3474987 | Meditz | Oct 1969 | A |
| RE26756 | Moore et al. | Jan 1970 | E |
| 3506221 | Caillette et al. | Apr 1970 | A |
| 3556438 | Meditz | Jan 1971 | A |
| 3558079 | Curriston | Jan 1971 | A |
| 3559922 | Gluhareff | Feb 1971 | A |
| 3570785 | Croft et al. | Mar 1971 | A |
| 3614030 | Moller | Oct 1971 | A |
| 3662973 | Paine | May 1972 | A |
| 4253625 | Dmitrowsky | Mar 1981 | A |
| 4379532 | Dmitrowsky | Apr 1983 | A |
| 4447024 | Williams | May 1984 | A |
| 4457476 | Andresevitz | Jul 1984 | A |
| 4461436 | Messina | Jul 1984 | A |
| 4778128 | Wright et al. | Oct 1988 | A |
| 4824048 | Kim | Apr 1989 | A |
| 4934629 | Brant | Jun 1990 | A |
| 5094157 | Challis et al. | Mar 1992 | A |
| 5115996 | Moller | May 1992 | A |
| 5779188 | Frick | Jul 1998 | A |
| 6178741 | Nelson et al. | Jan 2001 | B1 |
| 6203027 | Ishikawa et al. | Mar 2001 | B1 |
| D445086 | Moshier | Jul 2001 | S |
| 6488232 | Moshier | Dec 2002 | B2 |
| D496606 | Sanders | Sep 2004 | S |
| D496900 | Bulaga | Oct 2004 | S |
| 6874728 | Lau | Apr 2005 | B2 |
| 6969027 | Ishiba | Nov 2005 | B2 |
| 7077358 | Quartarone | Jul 2006 | B1 |
| 7182295 | Redmond | Feb 2007 | B2 |
| 7258301 | Li | Aug 2007 | B2 |
| 7484687 | Martin | Feb 2009 | B2 |
| 7581608 | St. Louis | Sep 2009 | B2 |
| 7980522 | Anderson et al. | Jul 2011 | B2 |
| 8336805 | Zapata | Dec 2012 | B1 |
| 8590828 | Marcus | Nov 2013 | B2 |
| 8608103 | Martin et al. | Dec 2013 | B2 |
| 8608104 | Zapata | Dec 2013 | B2 |
| 8651432 | De Roche | Feb 2014 | B2 |
| 8695916 | Martin | Apr 2014 | B2 |
| 8746613 | Suchezky et al. | Jun 2014 | B2 |
| D714086 | Li et al. | Sep 2014 | S |
| D716065 | Hubbard, Jr. | Oct 2014 | S |
| 8894015 | Contoret | Nov 2014 | B2 |
| 8965409 | Abhyanker | Feb 2015 | B2 |
| 8979017 | Zapata | Mar 2015 | B2 |
| 9002754 | Abhyanker | Apr 2015 | B2 |
| 9004396 | Colin et al. | Apr 2015 | B1 |
| 9022324 | Abhyanker | May 2015 | B1 |
| 9037516 | Abhyanker | May 2015 | B2 |
| 9064288 | Abhyanker | Jun 2015 | B2 |
| 9070101 | Abhyanker | Jun 2015 | B2 |
| 9071367 | Abhyanker et al. | Jun 2015 | B2 |
| 9098545 | Abhyanker | Aug 2015 | B2 |
| 9171479 | Martin et al. | Oct 2015 | B2 |
| 9373149 | Abhyanker | Jun 2016 | B2 |
| 9439367 | Abhyanker | Sep 2016 | B2 |
| 9441981 | Abhyanker | Sep 2016 | B2 |
| 9451020 | Liu et al. | Sep 2016 | B2 |
| 9457901 | Bertrand et al. | Oct 2016 | B2 |
| 9459622 | Abhyanker | Oct 2016 | B2 |
| 9561850 | Tsunekawa et al. | Feb 2017 | B2 |
| 9637238 | Wypyszynski | May 2017 | B2 |
| 9834305 | Taylor et al. | Dec 2017 | B2 |
| 9849980 | Li | Dec 2017 | B2 |
| 9880563 | Fisher et al. | Jan 2018 | B2 |
| 9944393 | Lorence | Apr 2018 | B1 |
| 9963227 | Tsunekawa et al. | May 2018 | B2 |
| 9971985 | Abhyanker | May 2018 | B2 |
| 9977435 | Fisher et al. | May 2018 | B2 |
| 9987506 | Marcus | Jun 2018 | B2 |
| 10000284 | Purwin et al. | Jun 2018 | B1 |
| 10107196 | Devine | Oct 2018 | B2 |
| 10112713 | Tyler | Oct 2018 | B2 |
| 10124880 | Ellzey et al. | Nov 2018 | B1 |
| 10239615 | Duru | Mar 2019 | B2 |
| 10336470 | Fisher et al. | Jul 2019 | B2 |
| 10345818 | Sibley et al. | Jul 2019 | B2 |
| 10364028 | Wilhour | Jul 2019 | B1 |
| 10379424 | Lozovsky | Aug 2019 | B2 |
| 10464668 | Evulet | Nov 2019 | B2 |
| D892222 | Levy | Aug 2020 | S |
| D892223 | Levy | Aug 2020 | S |
| D892224 | Levy | Aug 2020 | S |
| 10793271 | Demonfort | Oct 2020 | B2 |
| 10830562 | Himmelmann | Nov 2020 | B2 |
| 10850866 | Fisher et al. | Dec 2020 | B2 |
| 10858101 | Zapata | Dec 2020 | B2 |
| 10875658 | Evulet | Dec 2020 | B2 |
| 10912977 | Fuller | Feb 2021 | B1 |
| 10974823 | Van Niekerk et al. | Apr 2021 | B2 |
| 11001378 | Evulet | May 2021 | B2 |
| 11021266 | Fisher et al. | Jun 2021 | B2 |
| 11097177 | Fuller | Aug 2021 | B1 |
| 11142523 | Davenport et al. | Oct 2021 | B2 |
| 11148801 | Evulet | Oct 2021 | B2 |
| 11279482 | Browning | Mar 2022 | B2 |
| 11453479 | Zapata | Sep 2022 | B2 |
| 11479345 | Charron et al. | Oct 2022 | B2 |
| 11661185 | Bernard et al. | May 2023 | B2 |
| 11667965 | Porreca et al. | Jun 2023 | B2 |
| 11679879 | Baharav et al. | Jun 2023 | B2 |
| 11679885 | Browning | Jun 2023 | B2 |
| 11680284 | Gore et al. | Jun 2023 | B2 |
| 11702203 | Mckeehan et al. | Jul 2023 | B2 |
| 11718390 | Sinusas et al. | Aug 2023 | B2 |
| 11745877 | Lin | Sep 2023 | B2 |
| 11768200 | Porreca et al. | Sep 2023 | B2 |
| D1001713 | Gouverneur | Oct 2023 | S |
| 11787537 | Sinha et al. | Oct 2023 | B2 |
| 11807356 | Arsentyev et al. | Nov 2023 | B2 |
| 11814185 | Hehn et al. | Nov 2023 | B2 |
| 11820507 | Raptopoulos et al. | Nov 2023 | B2 |
| 11827344 | Truong et al. | Nov 2023 | B2 |
| 11840730 | Porreca et al. | Dec 2023 | B1 |
| 11845548 | Cruzada | Dec 2023 | B2 |
| 11851178 | Beck | Dec 2023 | B2 |
| 11866168 | Cooper et al. | Jan 2024 | B2 |
| 11878805 | Hines | Jan 2024 | B2 |
| 20020003188 | Moshier | Jan 2002 | A1 |
| 20020113165 | Moshier | Aug 2002 | A1 |
| 20060192047 | Goossen | Aug 2006 | A1 |
| 20070290097 | Ishiba | Dec 2007 | A1 |
| 20080014811 | Zeyger | Jan 2008 | A1 |
| 20080142644 | O'Roark | Jun 2008 | A1 |
| 20090020654 | Tyler | Jan 2009 | A1 |
| 20120097801 | Barrett | Apr 2012 | A1 |
| 20120298790 | Bitar | Nov 2012 | A1 |
| 20130203306 | Zapata | Aug 2013 | A1 |
| 20130206915 | Desaulniers | Aug 2013 | A1 |
| 20140196650 | Zapata | Jul 2014 | A1 |
| 20150197337 | Tsunekawa | Jul 2015 | A1 |
| 20160123182 | Samaritano | May 2016 | A1 |
| 20160340035 | Duru | Nov 2016 | A1 |
| 20170073070 | Mar 2017 | A1 | |
| 20170080997 | Zapata | Mar 2017 | A1 |
| 20170361929 | Demonfort | Dec 2017 | A1 |
| 20180029703 | Simon | Feb 2018 | A1 |
| 20180127094 | Zapata | May 2018 | A1 |
| 20190161188 | Zapata | May 2019 | A1 |
| 20190202559 | Levy | Jul 2019 | A1 |
| 20200023970 | Bitar | Jan 2020 | A1 |
| 20200207474 | Foggia | Jul 2020 | A1 |
| 20210171188 | Charron et al. | Jun 2021 | A1 |
| 20220355922 | Filho | Nov 2022 | A1 |
| 20230356839 | Bitar | Nov 2023 | A1 |
| Entry |
|---|
| “DARPA's Electric Jetpack Program Heads to Prototyping Phase”, Aviation Week Network, Jun. 7, 2022, Retrieved from: https://aviationweek.com/defense-space/aircraft-propulsion/darpas-electric-jetpack-program-heads-prototyping-phase. |
| “Electric Jet Aircraft EJ-1S”, Electric VTOL News, Retrieved on Sep. 12, 2023, Retrieved from: https://evtol.news/electric-jet-ej-1/, 56 pgs. |
| “Electric Jet Aircraft is creating electric jet turbine propulsion systems for personal flight and UAS systems to provide solutions to a variety of industries and applications”, Electric Jet Aircraft, Retrieved on: Sep. 11, 2023, Retrieved from: https://electricjetaircraft.com/. |
| Hart, Matthew, “This Electric Jetpack Just Completed its First Test Flight”, Nerdist, Jun. 4, 2021, Retrieved from: https://nerdist.com/article/electric-jetpack-first-test-flight/, 4 pgs. |
| Smith, Mat, “I flew, ever so briefly, with a jet suit”, Engadget, Jul. 13, 2021, Retrieved from: https://www.engadget.com/gravity-industries-jet-suit-test-impressions-future-lab-festival-of-speed-160009551.html, 12 pgs. |
| Zyga, Lisa, “Company to sell ‘world's first practical jetpack’ for $75,000 (w/ Video)”, Phys.org, Mar. 9, 2010, Retrieved from: https://phys.org/news/2010-03-company-world-jetpack-video.html, 2 pgs. |
| Number | Date | Country | |
|---|---|---|---|
| 63269162 | Mar 2022 | US |
| Number | Date | Country | |
|---|---|---|---|
| Parent | 18180756 | Mar 2023 | US |
| Child | 18458902 | US |