1. Technical Field
The present invention relates to the field of delivery of fluids and other materials over the air, and more particularly, to a remote ballistic delivery of fluids using aerial vehicles.
2. Discussion of Related Art
Aerial vehicles are used today in various missions of delivery of fluids and granular substances from the air. In some cases, delivery from the air is the only option either due to limited access or because of the effectiveness of the air delivery in covering large areas in a short time. Non-limiting examples for such mission include firefighting, fertilizing, cooling nuclear reactors as well as using herbicides and pesticides.
The main challenge in delivering fluids and granular substances, due to their particle nature, is the tendency of these materials to be greatly affected by air resistance. Specifically, large portions of the fluids transform into an aerosol which drifts by the wind and never reaches the target on the ground or above it. The aerosol may also affect the aerial vehicle or people on board it or on the ground. In a case that the fluid contains harmful ingredients, the aerosol or other buoyant particles can cause health problems or harm the aerial vehicle. Solid granular substances suffer from similar limitations and while they do not transform into aerosol their air resistance is sufficiently high so they lose their ballistic characteristics.
In order to avoid the aforementioned aerosol effect, aerial flights today are performed at low altitudes (less than 100 feet above ground). Such a flight profile is very risky, requires special aircrafts and special pilot skills. Because of those high requirements, current aerial missions can be performed nowadays only at day time and they are stopped altogether during the night, or in strong wind and low visibility conditions such as smoke, fog or dust.
One aspect of the present invention provides a method of delivering over the air, shelled portions of fluids or granular substances containing effective ingredients to a target. The method includes the following stages: . . . selecting a type and a size of the shelled portions containing the required effective ingredients, based on mission parameters and physical data of a scene containing the target; conveying the shelled portions to a delivery point, based on the mission parameters and the physical data; and ballistically delivering the shelled portions towards the target, wherein the shelled portions comprise fluids or granular substances covered by shells that provide the portions a ballistic coefficient that is significantly higher than a ballistic coefficient of similar portions without the shells. The mission parameters may include any of the following: the required type of effective ingredients, the height of the target above sea level, the required height above the target above ground level (AGL), the required velocity of the aerial vehicle, the footprint and the distribution at the target, and meteorological effects such as wind velocity and direction around the aerial vehicle at the delivery point and/or the wind velocity and direction around the target.
Advantageously, embodiments of the present invention provide a solution to the aforementioned risky flight profile in order to address the aerosol effect. Embodiments of the present invention ensure safe flight in high altitude for common commercial transport airplanes and further enable to perform the mission at day or at night and in all weather conditions.
These, additional, and/or other aspects and/or advantages of the present invention are set forth in the detailed description which follows; possibly inferable from the detailed description; and/or learnable by practice of the present invention.
The present invention will be more readily understood from the detailed description of embodiments thereof made in conjunction with the accompanying drawings of which:
Prior to setting forth the detailed description, it may be helpful to set forth definitions of certain terms that will be used hereinafter.
The term “shelled portions” as used herein refers to portions of the effective substance, either in the form of a fluid, powder or granules that are packed by a shell, preferably but not necessarily a flexible shell that is characterised by a ballistic coefficient that is significantly higher than the ballistic coefficient of similar portions of the effective substance or any other material which are not packed by the shells. The shelled portioned are manufactured so that they resemble in size, shape and weight so as to preserve ballistic properties of the shelled portions which contribute to the repeatability of the aerial delivery of theses shelled portions. These shelled portions may weigh each approximately 100 to 300 grams. The restrictions on the weight stem from the fact that proposed shelled portions should not be lethal upon impact with humans or animals. Before explaining at least one embodiment of the invention in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of the components set forth in the following description or illustrated in the drawings. The invention is applicable to other embodiments or of being practiced or carried out in various ways. Also, it is to be understood that the phraseology and terminology employed herein is for the purpose of description and should not be regarded as limiting.
Consistent with some embodiments of the present invention, the shelled portions of effective ingredients are selected on a per-mission basis to have the size, weight and packaging material so that they are non-harmful upon impact with human beings or any objects at the target are, whenever avoiding harmful impact is a consideration. Put differently, both the selection of the shelled portion and the ballistic delivering of the shelled portions are carried out in view of avoiding harmful impact of the shelled portion in a case of human presence or any object presence near or at the target.
In order to protect the environment, the materials of the shells may be selected such that they do not pollute the ground or the air upon falling and breaking at the target.
Consistent with some embodiments of the present invention, the shelled portions are designed such that a dissemination effect of the liquid or granular substance is achieved by tearing, opening, or breaking of the shells upon hitting the target or object above the target.
The contents of the shelled portion may be determined and selected on an ad hoc basis. For fire fighting, a fire extinguishing material may be used. Pesticides, herbicides and fertilizers may be used in agricultural applications. The shell should merely keep the fluid or granular substance in a shape, possibly made of a flexible material, usually but not necessarily a sphere.
In accordance with some embodiments of the invention, the shells of the shelled portions 100 may be made of bio degradable materials, possibly compostable materials. By selecting the shells to be compostable materials, the shells are able to break down into carbon dioxide, water and biomass once reaching the target. Advantageously, shells made of compostable materials, may not produce any toxic material and very much like compost should be able to support plant life. In some embodiments, the shells may be made from plant materials such as corn, potato, cellulose, soy and sugar. In some embodiments, the shells are made of materials that break down possibly but not exclusively through the action of a naturally occurring microorganism over a period of several weeks—a period that is substantially shorter than the decomposing period of compostable materials.
It is however understood that other materials which are not compostable may be also used for shells, including but not limited to, polyester and the like. In some embodiments, the selection of the material for the shells is selected so that in the decomposing or breaking down process, or burning on a fire, neither toxic gases nor toxic fumes are released. The decomposing process may occur on the ground and may be accelerated by bacteria on the ground.
Consistent with some embodiments, shelled portion 110D includes a shell 130 and a first granular substance 160 put together with a second granular substance 170 both can be either solid or frozen fluid. In one embodiment, first granular substance 160 may inflate or generate a gaseous substance at the target thus facilitating the propagation of second granular substance 170.
Consistent with some embodiments, shelled portion 110E includes a shell 180 that may be in the form of a frozen fluid and another fluid or granular substance 190 contained within. The shell may be made by an environmental friendly material that disintegrates or evaporated at the target. The shell may also be selected for timed application of the effective ingredient at the target, for example by selecting a material for the shell that disintegrated after a predefined time and only then fluid or granular substance 190 is applied to the target. The shell may also be configured to break or open while still in the air prior to the impact with the target so that release of the effective ingredients starts well before the impact so that is some cases the impact is with an empty or nearly empty shell. Consistent with some embodiments, shelled portion 110F includes a shell 130 and fluid or granular substance 120 wherein the shell is shaped as a cube or a prism so that packaging is easier at the expenses of air resistance.
When dropped on burned trees or vegetation in a wildfire, the shell may break up or being opened up at about 30 feet above the flames and dispense the fluid or granular substance in the shells evenly on the target.
As will be appreciated by one skilled in the art, some of the steps of method 600 may be embodied as a computer implemented method or computer program product. Accordingly, aspects of some of the steps of method 600 may take the form of an entirely hardware embodiment, an entirely software embodiment (including firmware, resident software, micro-code, etc.) or an embodiment combining software and hardware.
The delivery may be in such a way that yields a specified footprint at impact height over the target. The delivery may be carried out in various dispensing manners that are selected as to density and form of distribution of the shelled portions. The footprint is thus an effective metric by which the type of delivery may be carried out.
It is understood that the stage of ballistically delivering the shelled portions is carried out naturally once the physical conditions, specifically the size of the shelled portions, are met. It is further understood that by carefully planning the mission and selecting the appropriate type of shelled portions, the specified targets may be reached in the required timing and the required amount of the effective ingredients. The selecting and the planning may be optimized in accordance with the existing variety of the shelled portions and further by optimization methods known in the art in different fields.
In accordance with embodiments of the present invention, the footprint of the shelled portions at the target is controllable and can be planned on a per mission basis. This is due to the repeatability of delivery of the shelled portions, achieved, as explained above by the high ballistic coefficient of the shelled portions. In order to achieve this end, the shelled portions may be homogenous in size, shape and weight. This homogeneity results in a similar ballistic behavior for all shelled portions of a common type. Then, in operation, by selecting mission parameters such as the height and speed of the aerial vehicle at the delivery point, the footprint of the shelled portions at the target can be planned and predicted.
Additionally, in some embodiments of the present invention, modular sections 720 of dispenser 710 may each contain a different type of shelled portions. Dispenser 710 may be further configured to dispense on a single mission, a plurality of types of shelled portions 100 so that the selection of the types of shells and the effective substance or fluid may be selected on the fly ad so may be the aforementioned stages of method 600 discussed above. This feature may further enhance flexibility of the embodiments of the present invention.
By mere way of example, it is understood that many missions may be carried out utilizing embodiments of the present invention. In one embodiment, the mission may be cooling down of nuclear reactors. In such a mission there is significant safety distance. Granular ice may be then used for the cooling. In another embodiment, the mission may be riot control in which the shelled portion may contain non-lethal stinky substance, tear causing substance and the like. In fire fighting, two types may be used as explained above (fire fighting and fire retardant). Similarly, in handling oil spills, one material may be used to dissolve the oil while another substance may be used to hedge the oils spill and reduce its spreading. Many more applications may benefit from advantages of the embodiments of the present invention.
In the above description, an embodiment is an example or implementation of the invention. The various appearances of “one embodiment”, “an embodiment” or “some embodiments” do not necessarily all refer to the same embodiments.
Although various features of the invention may be described in the context of a single embodiment, the features may also be provided separately or in any suitable combination. Conversely, although the invention may be described herein in the context of separate embodiments for clarity, the invention may also be implemented in a single embodiment. Furthermore, it is to be understood that the invention can be carried out or practiced in various ways and that the invention can be implemented in embodiments other than the ones outlined in the description above.
The invention is not limited to those diagrams or to the corresponding descriptions. For example, flow need not move through each illustrated box or state, or in exactly the same order as illustrated and described.
Meanings of technical and scientific terms used herein are to be commonly understood as by one of ordinary skill in the art to which the invention belongs, unless otherwise defined.
While the invention has been described with respect to a limited number of embodiments, these should not be construed as limitations on the scope of the invention, but rather as exemplifications of some of the preferred embodiments. Other possible variations, modifications, and applications are also within the scope of the invention.
This application is a non-provisional patent application claiming priority from U.S. provisional patent application No. 61/522,693 filed on Aug. 12, 2011, the content of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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61522693 | Aug 2011 | US |