The invention relates to a ramp of a catapult. The ramp serves as a kind of slanted take-off runaway for a light aircraft to be launched from the catapult. The light aircraft is connected to a carriage or corresponding support structure, which is supported to support surfaces on the ramp. The catapult comprises a launching cylinder for generating a launching force in order to accelerate the aircraft under guidance of the ramp and to finally launch the aircraft from the catapult.
Further, the invention relates to a catapult for launching an unmanned aircraft.
The field of the invention is defined more specifically in preambles of independent claims.
A catapult can be used for launching to the air a light unmanned aircraft, such as a drone, a surveillance plane or a missile. The catapult typically comprises a carriage to which the aircraft is connected and which carriage is catapulted at a high speed in such a manner that the aircraft obtains a controlled starting speed and direction for takeoff. The carriage is supported to a ramp. The ramp is typically a lattice structure manufacturing of which is labour-consuming. The known ramps have also shown to contain some other problems relating to their quality.
The object of the present invention is to achieve a new and improved ramp for a catapult, and a catapult.
The ramp of the invention is characterized by features disclosed in a first independent claim.
The catapult of the invention is characterized by features disclosed in a second independent claim.
An idea of the disclosed solution is that the catapult or launcher comprises a rap which is an elongated structure connectable to a carrier or other suitable support or base. The ramp may comprise one or more elongated ramp elements. Further, the ramp comprises longitudinal first guide surfaces on an upper part of the ramp for supporting a carriage movably on the ramp. Moreover, each of the one or more ramp elements comprises two parallel side plates, which are located at a horizontal distance from each other. The ramp element also comprises at least one top plate and at least one bottom plate. The top plate and the bottom plate are located at a vertical distance from each other. The side plates, the top plate and the bottom plate are frame plates, which are separate pieces, which are manufactured separately and are connected to each other during assembly. The frame plates are fastened to each other at fastening points by means of mechanical fastening elements.
An advantage of the disclosed solution is that, since mechanical fastening means are used at the fastening points, no weld joints are needed. When the components of the ramp element are assembled by using relatively simple mechanical fastening means, the ramp is easy and fast to manufacture. Tools required for mechanical fastening are simple and easy to use for anyone, unlike welding apparatuses. Thereby, assembly personnel do not need to be qualified welders. Moreover, in the production of the disclosed ramp elements assembly means may be simple and no special jigs or other assembly assisting means are necessarily needed. Further, since no thermal expansion caused by the welding occurs, the ramp may have improved dimensional accuracy and straightness. The two side plates, the top plate and the bottom plate form a closed box-like structure, which is beneficial regarding strength properties, especially torsional strength.
According to an embodiment, the ramp comprises only one single ramp element. One ramp element may be sufficient for a small catapult.
According to an embodiment, the ramp may comprise two or more elongated ramp elements, which are connected to each other by means of hinges so that the ramp may be folded for transport and storage. Thus, the ramp is a foldable structure and is provided with a launching position and a transport or storage position. The number of the ramp elements may be two to five.
According to an embodiment, the fastening points between the frame plates of the ramp element are without weld joints.
According to an embodiment, the ramp is assembled of components which are provided with premanufactured fastening points so that during the assembly it is simple to place the mechanical fastening elements to the preformed fastening points. Then, the assembly personnel need not to make additional measures or amendments for the components to be connected.
According to an embodiment, the fastening points of the frame plates are provided with fastening openings extending though structures connected at the fastening points. The fastening openings may be drilled or formed already during manufacture of the frame plates, whereby no drilling is executed at the assembly step. During the assembly the fastening openings are provided with the mechanical fastening elements, which are tightened for generating fastening forces. The mechanical fastening elements may pass through the connected two frame plates. The mechanical fastening element is relatively easy to place through the accurately predrilled fastening holes and may thereafter be tightened by a simple handheld tool, for example.
According to an embodiment, the frame plates of the ramp element are connected to each other by using rivets as the mechanical fastening elements. Thus, the ramp element is a riveted structure. The rivets may be pop rivets, for example. The rivets are easy and fast to use.
According to an embodiment, the frame plates of the ramp element are connected to each other by using fastening screws as the mechanical fastening elements. In this solution the ramp element is a screw-fastened piece.
According to an embodiment, the fastening points between the frame elements of the ramp elements are provided with adhesive joints in addition to mechanical fastening elements. Thus, one or more adhesive material may be utilized for additionally securing the mechanical fastening. The combination of two fastening systems improves durability and strength of the structure. Use of the adhesive agent does not complicate nor slow down the assembly.
According to an embodiment, the fastening points between the frame elements of the ramp elements are provided with angle pieces, which are separate pieces relative to the frame plates. Thus, the fastening point comprises two frame plates, one or two angle pieces and several mechanical fastening elements. The angle pieces comprise two fastening surfaces, which are mounted against surfaces of the frame plates to be connected. The angle pieces may be elongated bars, or alternatively they may be shorter pieces.
According to an embodiment, the fastening points between the frame elements comprise angle pieces, which are longitudinal bars made by extrusion. By means of extrusion techniques pieces having uniform quality may be produced. The extruded pieces may also be inexpensive.
According to an embodiment, one of the two frame plates connected to each other at the fastening point comprises a transverse edge portion fastened directly against another frame plate by means of mechanical fastening elements, such as rivets or screws. Thus, the fastening point may be without any intermediate connecting piece, such as an angle piece. The transverse edge portion may be a bent edge or it may be formed by means of any other way.
According to an embodiment, each of the one or more ramp elements comprises two parallel and longitudinal guide rails on their upper surface sides. The guide rails may comprise longitudinal guide flanges and longitudinal fastening flanges arranged in an angular position relative to each other. The fastening flanges of the guide rails are fastened by means of mechanical fastening means to at least one frame plate of the ramp element. The guide flanges may serve as guide surfaces for a carriage supporting an aircraft to be launched. The carriage may comprise roller or slide elements, which are in contact with the guide flanges.
According to an embodiment, each of the one or more ramp elements comprises two parallel and longitudinal guide rails. The guide rails are dimensioned to be part of a load bearing structure of the ramp element. When all the longitudinal components of the ramp elements are load bearing components, weight of the structure may be decreased.
According to an embodiment, the ramp element comprises two side plates, which extend above the top plate and form two protruding side plate portions on the upper side of the ramp element. Both protruding side plate portions are provided with longitudinal guide rails. The guide rails are fastened against opposing side surfaces of the protruding side plate portions.
According to an embodiment, one or more frame plates of at least the ramp element comprise a plurality of openings, whereby the frame plates may have a lattice structure configuration. However, the lattice structure is not formed in a conventional manner by fastening bars to each other, but is instead formed by removing material from a plate-like piece or generating the lattice structure in one go, so that the lattice structure is an integrated element.
According to an embodiment, all or one or more frame plates of the ramp element are made of aluminium or aluminium alloy. Aluminium is light weight and corrosion resistant material, and it also has good strength properties. Aluminium structures are relatively difficult to assemble by using welding techniques. However, in the disclosed solution mechanical fastening means are used, whereby assembly of the aluminium structure is not a problem.
According to an embodiment, the angle pieces arranged at corners between the frame plates are made of aluminium or aluminium alloy. The angle pieces may be manufactured by extrusion techniques.
According to an embodiment, the guide rails are made of steel whereby they have sufficient wear resistance,
According to an embodiment, at least the frame plates of the ramp element are made of composite material comprising reinforcing fibres and at least one polymeric binding material. The fibre reinforced polymer structure is light in weight and has excellent strength properties.
According to an embodiment, the frame plate of the ramp element is made of composite material comprising reinforcing fibres and at least one polymeric binding material. The frame plate is cut off from a composite blank plate by means of abrasive water jet. Further, possible openings of the frame plate are also made by abrasive water jet.
According to an embodiment, the frame plate of the ramp element is made of composite material comprising reinforcing fibres and at least one polymeric binding material. The frame plate is moulded of fibre reinforced plastic material.
According to an embodiment, the ramp may comprise a front ramp element, a rear ramp element and a middle ramp element between the front and the rear ramp elements. The middle ramp element may comprise longitudinal second guide surfaces. Then, both side plates of the middle ramp element comprise longitudinal central openings, which comprise longitudinal edges. And further, the second guide surfaces are formed of four parallel second guide rails, which are fastened to longitudinal edges of the central openings of the side plates by means of mechanical fastening means. The second guide rails may be configured provide axial support and guide for a second carriage, which is connected to a launching cylinder of the catapult.
According to an embodiment, cross sections of a front and rear ramp elements decrease towards their free ends. An upper surface of the ramp element is even and a bottom surface comprises at least one slanted portion.
According to an embodiment, the side plates and top plates of the ramp element extend as one uniform pieces from end to end.
According to an embodiment, the bottom plate of a middle ramp element extends as one uniform piece from end to end.
According to an embodiment, a catapult for launching an unmanned aircraft comprises at least the following features: an elongated ramp; a first carriage supported to the ramp and being movable in the longitudinal direction of the ramp from a launch position to a release position and back, and which first carriage comprises coupling members for supporting the aircraft; a second carriage that is also supported to the ramp and is movable in the longitudinal direction of the ramp; at least one pressure-medium-operated launching cylinder configured to move the second carriage for generating launching movement in the launching direction; at least one pulley mechanism that comprises at least one pulley and is arranged in connection with the second carriage; at least one pulling element that is engaged with the first carriage and the ramp and is further configured to run via at least one launch-side pulley mechanism and to transmit the motion of the second carriage to the first carriage for moving the first carriage from the launch position to the release position; locking means for keeping the first carriage at the launching position and for releasing it at a launching moment. Furthermore, the ramp may be in accordance with any one of the preceding embodiments and features disclosed above.
The above disclosed embodiments and features may be combined for generating suitable combinations and solutions.
The disclosed solution will be described in more detail in the accompanying drawings, in which
For the sake of clarity, the figures show the invention in a simplified manner. In the figures, similar parts are denoted by the same reference numerals.
Furthermore, the launching position 6 is provided with a locking device 9, which is able to hold the carriage 4 until the launching moment. In the locking position, the locking device 9 is able to receive the launching force LF directed to the carriage 4 and it may release the carriage 4 after the launch, whereby the carriage 4 accelerates at a high speed towards the releasing position 7. Accordingly, the catapult C is used to provide the aircraft 5 with an as high takeoff speed as possible in a short distance. In principle, the aircraft 5 may be any relatively light unmanned aircraft, which may be provided with a propulsion device, such as an airscrew, jet engine or rocket engine. Furthermore, the aircraft 5 may comprise ailerons or other control members for controlling it with remote control or automatically by means of a control system in the aircraft 5. It is further mentioned that the catapult C may alternatively be installed fixedly at a launching site or it may be connected to a movable base, such as a ship.
In
The side plates 20a, 20b may be fastened at fastening points 25 to the top plate 21 and bottom plate 22 by means of mechanical fastening elements 26, which are, for clarity reasons, shown as broken lines in
The top plate 21 and the bottom plate 22 may extend in a side ward direction a distance from the outer surfaces of the side plates 20a, 20b at least at end portions of the ramp element. Thus, the extending portions 34 may be provided with hinge and coupling means 18, 19.
Furthermore, horizontal direction H and vertical direction V are also shown in
Further, the solution of
The basic structures and fastening principles disclosed in
The drawings and the related description are only intended to illustrate the idea of the invention. The details of the invention may vary within the scope of the claims.
Number | Date | Country | Kind |
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1602536.3 | Feb 2016 | GB | national |