WO2018024293A1 - Aile delta servant d'entraînement pour un véhicule marin et véhicule marin comportant une telle aile delta - Google Patents

Aile delta servant d'entraînement pour un véhicule marin et véhicule marin comportant une telle aile delta Download PDF

Info

Publication number
WO2018024293A1
WO2018024293A1 PCT/DE2017/100666 DE2017100666W WO2018024293A1 WO 2018024293 A1 WO2018024293 A1 WO 2018024293A1 DE 2017100666 W DE2017100666 W DE 2017100666W WO 2018024293 A1 WO2018024293 A1 WO 2018024293A1
Authority
WO
WIPO (PCT)
Prior art keywords
delta wing
watercraft
delta
wing
adjusting device
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/DE2017/100666
Other languages
German (de)
English (en)
Inventor
Alfred SPÖTH
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of WO2018024293A1 publication Critical patent/WO2018024293A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63HMARINE PROPULSION OR STEERING
    • B63H9/00Marine propulsion provided directly by wind power
    • B63H9/04Marine propulsion provided directly by wind power using sails or like wind-catching surfaces
    • B63H9/06Types of sail; Constructional features of sails; Arrangements thereof on vessels
    • B63H9/068Sails pivotally mounted at mast tip
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B15/00Superstructures, deckhouses, wheelhouses or the like; Arrangements or adaptations of masts or spars, e.g. bowsprits
    • B63B15/0083Masts for sailing ships or boats
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63HMARINE PROPULSION OR STEERING
    • B63H9/00Marine propulsion provided directly by wind power
    • B63H9/04Marine propulsion provided directly by wind power using sails or like wind-catching surfaces
    • B63H9/06Types of sail; Constructional features of sails; Arrangements thereof on vessels
    • B63H9/061Rigid sails; Aerofoil sails
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63HMARINE PROPULSION OR STEERING
    • B63H9/00Marine propulsion provided directly by wind power
    • B63H9/04Marine propulsion provided directly by wind power using sails or like wind-catching surfaces
    • B63H9/06Types of sail; Constructional features of sails; Arrangements thereof on vessels
    • B63H9/061Rigid sails; Aerofoil sails
    • B63H9/0621Rigid sails comprising one or more pivotally supported panels
    • B63H9/0628Rigid sails comprising one or more pivotally supported panels the panels being pivotable about horizontal axes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B15/00Superstructures, deckhouses, wheelhouses or the like; Arrangements or adaptations of masts or spars, e.g. bowsprits
    • B63B2015/0016Masts characterized by mast configuration or construction
    • B63B2015/005Masts characterized by mast configuration or construction with means for varying mast position or orientation with respect to the hull
    • B63B2015/0058Masts characterized by mast configuration or construction with means for varying mast position or orientation with respect to the hull comprising active mast inclination means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B35/00Vessels or similar floating structures specially adapted for specific purposes and not otherwise provided for
    • B63B2035/009Wind propelled vessels comprising arrangements, installations or devices specially adapted therefor, other than wind propulsion arrangements, installations, or devices, such as sails, running rigging, or the like, and other than sailboards or the like or related equipment

Definitions

  • Delta wing for use as propulsion for a watercraft and watercraft with such a delta wing
  • the invention relates to a delta wing for use as a drive for a watercraft and a watercraft with such a delta wing which can also be designed as a photovoltaic wing and generates electricity.
  • a sailing ship is driven primarily by two effects.
  • the pure wind pressure acting on the sail surface and the sails by the wind pressure and the suction forces that arise when the air is deflected by the curvature of the sail and a negative pressure.
  • These two effects overlap and add up when the angle of attack of the sail is favorable to the wind.
  • the water resistance of the hull essentially forms the counterforce.
  • the propulsion is formed by the wind pressure and the suction forces, which are transmitted via the sail-carrying masts and pods on the hull, which is pulled through the water.
  • Sailboats with a sailsail are fluidly able to sail at an angle to the wind.
  • the sails have a curved sail surface, similar to the wing of an aircraft, which also follows similar aerodynamic principles. If the air is deflected by the curvature of the sail, the air speed increases at the point and there is a negative pressure or suction. Together with the wind pressure, the resulting propulsion is created. The resulting drift to Lee prevents the keel or sword under the hull of the yacht and the resistance is clearly in the oblique position or heeling.
  • the windfall angle is not only influenced by the ship's heading to the actual wind, but also by its speed.
  • the apparent wind in sailing is always more prevalent than the true wind. Because the speed of the apparent wind increases with the speed of the ship, it is possible to sail faster than the wind.
  • the supersonic aircraft CONCORDE and NASA's spacecraft behave in a completely different way with the delta wing, which does not require a profile change at a much steeper landing angle from high altitude.
  • the symmetrical delta wing retains its effectiveness over a much larger angle of attack, because behind the two wind entry edges the so-called VORTEX SPINS arise, which develop a very strong buoyancy and suction on the delta wing.
  • the difference in sailing performance is especially clear when one compares the blade sail - also known as the Bermuda rig - with the delta sail directly. While the delta sail develops a much higher performance and maintains this up to the wind angle of 55 °, the performance of the sail is much lower, the flow already breaks off at a wind angle of 40 ° and triggers a high resistance.
  • VORTEX SPINS arise along the two leading edges, which meet in the middle on the upper side of the delta wing and generate the extremely strong negative pressure or suction there.
  • This suction or buoyancy builds up perpendicular to the wing, which pulls the watercraft.
  • the delta wing reacts relatively insensitive to the Windanstellwinkel.
  • regatta yachts also have a high rig and a low lift height ratio in which buoyancy is minimized by a slight bowing of the sail.
  • the way in which propulsion can be achieved with the symmetrical delta wing on watercraft is completely different from the Bermuda rig and, due to this invention, is simpler and more effective.
  • the object of this invention is to apply the aerospace advantages of the VORTEX-SPAN in marine vehicles as well, in order to avoid the negative characteristics of the vertical and vertical sails with a mast and boom and the falling and moving load.
  • This object is achieved by the use of a delta wing as a drive for a watercraft with all features of claim 1 and by a watercraft with all features of claim 5.
  • the advantageous embodiments of the invention are also in the dependent claims.
  • the delta wing according to the invention for use as a drive for watercraft is characterized in that on the delta wing neck, which can be executed pointed or rounded, a gimbal fastening element with an adjusting device, with which the delta wing about its central longitudinal axis relative to the longitudinal direction of the watercraft can be pivoted and placed in its vertical axis.
  • Such a delta wing can thus be attached in a very simple manner in the front bow area of the vessel and set up and pivoted in accordance with the windfall angle.
  • the delta wing and the vessel are basically moved by the wind pressure above the ground, but in this case the generated vortex swirls, which arise along the two symmetrical leading edges, are decisive for the high negative pressure or the large suction forces.
  • the delta wing is not a delta-shaped sail with a very restricted guide, but a self-supporting frame structure preferably made of a light metal such as aluminum or carbon fiber composite material with a fixed upper and lower fairing, which is positive affects the formation of the vortex vortex.
  • the preferably slightly curved delta wing has two symmetrically extending and formed as leading edges leading edges which start at the front of the rounded or pointed delta wing neck and the rear end of a trailing edge formed as a trailing edge, which may be straight, concave or convex in plan view.
  • the deli- Taeriel characterized in that its two Anströmgue are slightly bulbous and have a sweep between 45 ° and 80 °, and preferably between 55 ° and 70 °.
  • the delta wing is slightly arched and extremely stable, it can accommodate photovoltaic modules, in particular organic photovoltaic modules or thin-film photovoltaic cells, which generate enough power to supply all consumers of a watercraft, including a centrifugal turbomachine to supply continuously for a long time.
  • the centrifugal fluid machine is a revolutionary ship propulsion system with an efficiency of more than 90%, which can take over the propulsion of a watercraft even without the assistance of a sailing boat. Tanker and container ships save with the centrifugal turbo machine 40% to 50% fuel.
  • Vessels equipped with delta sailing technology and centrifugal turbomachinery use the energy surplus of regenerative energy to run faster and easier across the oceans and, above all, independently of fossil fuels, to protect the environment.
  • the energy is stored in rechargeable batteries or accumulators, which are preferably but not necessarily housed at the lowest point of the fuselage and counteract the sail pressure as ballast.
  • the width and length of the delta wing will be adjusted to the dimensions of the vessel on which this delta sailing technique is to be used.
  • the best effectiveness is achieved with a slightly bulbous delta wing and rounded delta wing neck.
  • a watercraft is protected with a delta wing described above, wherein a suspension is provided in the front region of the bow of the watercraft, to which the delta wing with its fastening element can be arranged and wherein an adjusting device is provided, with which the central longitudinal axis of the delta wing opposite Longitudinal direction of the watercraft is pivotable.
  • a trained watercraft has excellent forward and buoyancy characteristics, the delta wing is to be driven with its axis of symmetry in an acute angle as possible to the water surface.
  • the angled position with the nose down at about 20 ° brings a better result, because the hull and the deck affect the flow of the delta wing something.
  • Further testing has shown that the ability to run more altitude improves when the delta wing is raised to about 40 degrees. Also on space courses is so on everyone Case to achieve a performance gain. At higher angles greater than 40 °, however, reduces the effectiveness of the delta wing.
  • an adjustment arm which is movable in several directions and has a double function is used as adjusting device, which is connected to the vessel at the bow.
  • the adjusting device or the boom can bring a preferably microprocessor-controlled steering and towing kite to its starting height to develop it controlled there, which uses the uniform winds for the additional propulsion at a height of 300 meters.
  • This alternative propulsion mode can be used parallel to the delta wing, which increases the effectiveness of the ship.
  • the innovative delta sailing technology can also be used on tankers and cargo ships, whether one behind the other or side by side, when loaded they can be moved on a rail system.
  • the starting device for the steering and towing kite with a container is located on the upper side of the adjusting device or the jib and is arranged so that the vortex of Vortex vortex of the delta wing are not disturbed when sailing and all maneuvers are possible.
  • its connection to the ship is delivered to the winch in the foremost part of the fuselage, and the empty container travels over the boom back to the outfeed position on the foredeck of the ship.
  • the high-performance thin-film photovoltaic cells are only a few millimeters in size and they are completely insensitive to a possible shadow of the boom.
  • the delta wing system with an adjustment device designed as a freely movable boom can best be placed on multi-hull yachts or on cargo ships.
  • the boom is erected in a simple manner by two support and control elements, which together with the boom form a three-point bearing, which is gimbal connected to the vessel. Since the two support and control elements both together and individually hydraulically or mechanically can be retracted and retracted, the boom can be pivoted in this way both to the control and port.
  • the support and controls can bring so the multi-purpose boom in any desired position at the end of the delta wing hangs on a pivoting coupling.
  • the boom is lowered and the delta wing is brought to its rest position, it hovers slightly inclined over the deck, where it can be decoupled from the boom and fixed as weather and climate protection over the deck.
  • This invention can also be equipped with single-sea sailing yachts that use inland waters and pass through low bridges.
  • the multi-purpose boom of the delta wing is connected with mono-yachts by a nose extension with the watercraft.
  • the launching gear for the towing and towing kite running above the boom can also be used on the mono sailing yachts, either together with the delta wing or individually when the delta wing is in its rest position, for example.
  • the hydraulic system of the boom which is sunk in the hull, gives the delta wing more freedom when lowering and makes it easier to set it upright.
  • the delta wing on the delta wing neck is additionally adjustable in its longitudinal direction.
  • the delta wing At the demolition point of the delta wing, in the area of its central axis, the delta wing is suspended and connected via a coupling piece with the boom on the rocking principle. Since the delta wing hangs balanced on the rearmost point of the multi-purpose jib, it can be swiveled upside down in the wind and fixed there without much effort, depending on the wind direction and wind force, both on the port side and on the starboard side.
  • the delta wing is driven with its axis of symmetry at as acute an angle as possible to the water surface with the delta wing neck pointing downwards. At an angle of 20 °, the delta wing achieves the best result, because the hull and the flat deck superstructures usually have a positive effect on the flow.
  • the delta wing can also be set up to a position of 40 ° to allow for more height. This should not be exceeded even on clearing courses, because its effectiveness does not increase any further.
  • the sail pressure point is significantly lower than the Bermuda rig. This means that a lot of weight can be saved in the underwater area compared to the Bermuda rig, making the vessels faster and safer. Added to this is the weight reduction due to the saved fuel tanks and engines of the Watercraft through the delta wing technique and centrifugal fluid flow machine a very great importance.
  • the delta wing basically does not require buckling to produce the corresponding suction. As a rule, it should be as flat as possible with about 20 °. In order to use a wider range of wind angle and increase the power, the delta wing can be set to a maximum of 40 °.
  • the suspension for the delta wing is arranged as a gimbal fastening and a longitudinal guide in the delta wing neck so that trimming of the delta wing is possible in any position.
  • a lateral pivoting device of the delta flap which is provided in the bow area, its position can be changed in particular to the central longitudinal axis of the ship, which can be efficient to control a uniform course.
  • the delta wing can be set up and adjusted accordingly, it is provided that the adjusting device of the vessel has at least one motor, electric motor, hydraulic or pneumatic adjustable boom, with which the central longitudinal axis of the delta wing, with respect to the longitudinal direction of the watercraft is pivotable, wherein the boom can be additionally pivoted about its fulcrum.
  • the boom or the adjusting device can be adjusted in many ways, the rearwardly directed support and control elements of the boom or the adjusting device, for example, if they are designed as telescopic rods, extend or shorten separately, each on a divided by a central longitudinal axis page the delta wing are arranged and both are connected by means of at least one connecting element, which attack under the boom and this can move both centrally and to port or starboard and carry.
  • This embodiment of the invention makes it possible to adapt the delta wing in a particularly versatile and versatile manner to the wind conditions and wind directions and always place it in the best position for wind energy. fall angle to bring.
  • an observation platform can be used, which allows unhindered distance visibility at a dizzy height.
  • a height adjustment relative to the fuselage of the vessel is provided at the pivot point of the boom by means of hydraulic, which makes it possible to simple whiteness to store the delta wing in its rest position on the deck and to fix, thus providing a protective roofing for Deck forms and this shaded.
  • unnecessary heating of the fuselage interior of the vessel is avoided and the deck of the vessel is protected from external weather conditions.
  • this can be pivoted about its central longitudinal axis even in the idle state and aligned with the sun.
  • lines can attack at the widest point on both sides, whose lengths are variable. Preferably, this can also be done mechanically controlled by microprocessor.
  • the watercraft gets a special turbomachine as an electric marine propulsion, which is used for example in doldrums or little wind, as well as in the maneuvers in the harbor.
  • At least one electric motor is provided for the centrifugal turbomachine, as described in DE 10 2005 005 142 A1.
  • the electric motors are powered by rechargeable batteries or accumulators and these in turn receive the power from the photovoltaic cells of the delta wing.
  • the electric motor can be installed in the 360 ° rotatable centrifugal flow machine itself as well as inside the fuselage.
  • the fluid is accelerated by a rotor in the partially covered cell spaces, which undergoes energy exchange with the surrounding fluid in a predetermined area and at a similarly predetermined point, the fluid is caused to flow out.
  • a rotor In the direction of the water Due to the centrifugal force, open cell spaces create a negative pressure to the surrounding fluid, which ensures rapid filling of the cell spaces.
  • the process is repeated and the accelerated fluid, which is separated from the influence of the cells flows off as propulsive energy.
  • Such turbomachines are advantageously mounted as Azipod 360 ° rotatable under the fuselage.
  • the motor drive of the centrifugal fluid machine should be damped by a torque converter, so that the accelerated energy of the water is transmitted smoothly, which acts similar to the drive of a wheel on the road.
  • Figure 1 an embodiment of an embodiment of a
  • Inventive vessel according to the invention arranged delta wing in a plan view
  • FIG. 2 shows a first embodiment of a watercraft according to the invention with a delta wing according to the invention, which is in a rest position, in a side view,
  • Figure 3 the watercraft according to the figure 2 in a side view, wherein the
  • Delta wing is located in a drive position
  • Figure 4 the watercraft of Figure 3, with different angles of attack
  • Figure 5 the watercraft according to Figures 2 and 3, wherein the delta wing
  • FIG. 6 shows the vessel according to FIG. 5 in a plan view from above
  • Figures 7 to 9 a second embodiment of a watercraft according to the invention with a delta wing according to the invention in different views.
  • the delta wing 1 shows an exemplary embodiment of a delta wing 1 according to the invention arranged on a watercraft 2 for use as a drive for a watercraft 2.
  • the delta wing 1 has two convexly curved leading edges 20 and 21 formed as leading edges and a concavely curved trailing edge 22.
  • the rounded delta wing neck follows, at which in the arrangement of a vessel 2 corresponding for the buoyancy and propulsion of the vessel 2, the responsible VORTEX-SPIN begin to form up to continue as a trailing edge trained trailing edge 22.
  • a fastening element 4 is arranged in the form of a mast on the delta wing neck, with which the delta wing 1 can be attached to a watercraft 2.
  • a fastening part 9 is provided on the mast formed as a fastening element 4, which is presently designed as a ball which is arranged captive in a suspension 14 in the front region 5 of the bow 6 of the watercraft 2.
  • the delta wing 1 is formed symmetrically and divided by a central longitudinal axis 11 in two identical sides 18 and 19.
  • a coupling is provided on the central longitudinal axis 11 as a fastening element 8, on which an adjusting device 7, in particular a boom 27, of the watercraft 2 can engage in order to pivot the delta wing 1 in its arrangement on a watercraft 2 or erect.
  • photovoltaic cells 13 are still arranged in Figure 1 on the surface 12 of the delta wing 1, with which corresponding, not shown in the figures accumulators or rechargeable batteries of the watercraft 2 can be supplied with electrical energy. Further, in the bow area in front of the delta wing 1 still a container 25 is arranged, in which a steering and / or towing kite is stowed, which spent over the top of the boom 27 to the start position and for further drive of the watercraft 2 is used.
  • the photovoltaic cells 13 are formed relatively flat, so as not to disturb the responsible for the forward and buoyancy vortex vortex.
  • the container 25 will only be present for a short time at the start of the steering and towing kite in the suction area of the delta wing 1, which assists in unfolding. Thereafter, the empty container returns to its lowermost position at the front of the bow, which is outside the VORTEX SPINE.
  • FIG. 2 now shows an exemplary embodiment of a watercraft 2 according to the invention with a delta wing 1 according to the invention in a side view.
  • the delta wing 1 is arranged captive with its fastening element 4 and arranged thereon formed as a ball attachment part 9 in a suspension 14 in the front region 5 of the bow 6 of the watercraft 2.
  • the suspension 14 may be formed as a guide 15, in particular as a guide rail 29 for the fastening element 4, in particular of the fastening part 9 of the fastening element 4 of the delta wing 1.
  • the guide rail 29 may be formed transversely to the vehicle longitudinal direction 28. However, other guide rails 29 are conceivable, in particular parabolic curved guide rails.
  • the delta wing 1 In the position shown in Figure 2 of the delta wing 1 is stored in its rest position on a shelf 24 of the watercraft 2.
  • the delta wing 1 forms a shading and roofing for the deck of the watercraft 2, so that the interior of the hull of the watercraft 2 does not unnecessarily heat up and the deck of the watercraft 2 is protected from rain.
  • the fastening element 8 of the delta wing 1 engages a boom 27 of the adjusting device 7, which is guided in the fastener 8 slidably.
  • the arm 27 is fastened via a pivot point 26 to a further adjustment device 23 with which the height of the pivot point 26 can be varied.
  • the pivot point 26 is in its upper possible range, so that as much space is given below the delta wing 1, so that there people undisturbed and protected by the delta wing 1 can stay.
  • the adjusting device 7 for adjusting or pivoting the delta wing 1 two lateral adjusting elements 16 and 17, which are congruent in the present view and by means of a connecting element 30 which engages the boom 27 and the boom 27 centrally between the adjusting elements 16 and 17th holds, connected with each other.
  • these adjusting elements 16 and 17 which are adjustable by motor, electric motor, hydraulically or pneumatically, the delta wing 1 can be pivoted by these adjusting elements erect the boom 27.
  • the adjusting elements 16 and 17 are formed as telescopic rods.
  • Such an erected delta wing 1 for the vessel 2 of Figure 2 is shown in FIG.
  • the angle of attack of the delta wing 1 with respect to the longitudinal direction 28 of the watercraft is approximately 40 °.
  • the delta wing 1 has thereby released from the tray 24, while the pivot point 26 of the boom 27 has been moved by means of the adjusting device 23 in a lower position to allow a corresponding erection or pivoting of the delta wing 1 or to ensure.
  • the adjustment or pivoting of the delta wing 1 takes place as follows: By means of the adjusting elements 16 and 17 of the adjusting device 7, the adjusting elements 16 and 17 connecting the connecting element 30 is moved in its height position. The fact that this connecting element 30 engages directly on the boom 27 and the boom 27 holds centrally between the adjusting elements 16 and 17, this is erected.
  • the boom 27 is connected directly to the delta wing 1 by means of the fastening element 8 of the delta wing 1, in which the boom 27 is displaceably guided.
  • the delta wing 1 automatically aligns and can be moved or pivoted into a corresponding angle of attack, which in this case is approximately 40 ° in FIG.
  • the delta wing 1 is shown so that its surface is substantially perpendicular to the image vertical.
  • the delta wing 1 will, however, be pivoted relative to this image plane. That is, the delta wing 1 about its central longitudinal axis 11 will be twisted.
  • Such rotation of the delta wing 1 will generally be carried out by appropriate lines 10, which attack on the delta wing 1 in the region of the fastening element 8 in the upper area of the delta wing 1 and are connected to the stern of the watercraft.
  • the two lines 10 are congruent, since the delta wing 1 is not rotated around its central longitudinal axis 11 here.
  • the lines 10 it is also possible to fix the delta wing 1 in a correspondingly rotated position about its central longitudinal axis 11.
  • the lines 10 must be taut, so that the delta wing 1 does not change its position.
  • the adjustment of the lines 10 can be done both microprocessor-controlled and manually.
  • FIG. 4 the watercraft 2 according to FIG. 3 is shown, the delta wing 1 not being shown explicitly, but only three different angles of incidence of 20 °, 30 ° and 40 ° of the delta wing 1 are indicated.
  • the delta wing 1 in its angle to the longitudinal axis 11 of the
  • Watercraft 2 is adjustable and adjustable.
  • Mounting part 9 which is arranged in the guide rail 29 designed as a suspension 14 or guide 15, rotatably and slidably on the
  • Watercraft 2 in particular at the bow, is held.
  • FIG. 6 which shows a top view of the vessel 2 or the delta wing 1 of the representation of FIG. 5, it can be clearly seen that the attachment part 9 is arranged in the guide rail 29, which can be used both as a suspension 14 and as a Guide 15 is used for the fastening part 9, is held. It can also be clearly seen that the delta wing 1 in this plan view from above
  • Displaceability of the fastening part 9 within the guide rail 29 is also shown in this figure 6 by two different representations.
  • FIG. 7 now shows a second exemplary embodiment of a water meter according to the invention.
  • 2 photovoltaic elements are mounted on the top 12 of the delta wing 1 of the watercraft.
  • the local delta wing 1 is also fastened to the vessel 2 by means of a fastening element 4 in the form of a mast on the delta wing neck.
  • a fastening part 9 is also provided on the fastening element 4 designed as a mast, which in the present case is designed as a ball, which is arranged captively in a suspension 14 in the front region 5 of the bow 6 of the watercraft 2.
  • This delta wing 1 is also formed symmetrically and divided by a central longitudinal axis 11 into two identical sides 18 and 19.
  • This delta wing 1 also has two convexly curved front edges 20 and 21 formed as leading edges and a concavely curved trailing edge 22, so that here too the rounded delta wing neck adjoins the leading edges 20 and 21 formed as leading edges, at which points in the arrangement
  • the vortex swirls responsible for the buoyancy and propulsion of the watercraft 2 begin to form on the vessel corresponding to the trailing edge 22 formed as a spoiler edge.
  • a coupling is provided as fastening element 8 on the central longitudinal axis 11, on which an adjusting device 7, in particular a boom 27 of the watercraft 2 by means of a connecting element 30, which serves as an extension of the boom 27 and is held displaceably in this , Can attack to pivot the delta wing 1 in its arrangement on a watercraft or to raise.
  • the adjusting device 7 contains two further adjusting elements 16 and 17, which in the present case are designed as telescopic rods, which are connected to one another via the connecting element 30 and are in operative connection with the boom 27.
  • the adjustment elements 16 and 17 designed as telescopic rods, it is possible to pivot the delta wing 1 by raising the adjusting elements 16 and 17 by means of the connecting element 30.
  • the adjusting elements 16 and 17 may be adjustable by motor, electric motor, hydraulically or pneumatically.
  • Ver adjusting elements 16 and 17 of the adjusting device 7 are arranged at the rear of the vessel 2 and thereby a particularly good power absorption of the adjusting device 17 is ensured in particular in the positioning of the delta wing 1.
  • the boom 27 is held at the bow 6 of the watercraft 2 via a pivot point 26 and an adjusting device 23.
  • the pivot point 26 of the arm 7 can be moved to a lower position in order to enable or to ensure a corresponding erection or pivoting of the delta wing 1.
  • the mode of operation of the adjusting device 23 in this case corresponds to the adjusting device 23 of the watercraft 2 of FIGS. 1 to 6.
  • FIG. 8 While in FIG. 8 the vessel 2 according to the invention is shown from a perspective view from the rear, in which an underside of the delta wing 1 can be seen, in FIG. 9 the vessel is shown from a lateral perspective view, in which, however, also the underside of the delta wing 1 is recognizable.

Landscapes

  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • Ocean & Marine Engineering (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Sustainable Energy (AREA)
  • Other Liquid Machine Or Engine Such As Wave Power Use (AREA)
  • Wind Motors (AREA)

Abstract

L'invention concerne une aile delta (1) servant d'entraînement pour un véhicule marin (2). Il est prévu sur l'extrémité avant (3) de l'aile delta (1) un élément de fixation (4) avec lequel l'aile delta (1) peut être disposée dans la partie avant (5) de l'étrave (6) d'un véhicule marin (2). Il est par ailleurs prévu sur l'aile delta (1) au moins un élément de prise (8, 9) avec lequel s'engage un dispositif de déplacement (7) associé à l'aile delta (1) et pouvant être fixé au véhicule marin (2), permettant de faire pivoter l'aile delta (1).
PCT/DE2017/100666 2016-08-05 2017-08-07 Aile delta servant d'entraînement pour un véhicule marin et véhicule marin comportant une telle aile delta Ceased WO2018024293A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102016114543.2 2016-08-05
DE102016114543.2A DE102016114543B4 (de) 2016-08-05 2016-08-05 Wasserfahrzeug mit einem Deltaflügel

Publications (1)

Publication Number Publication Date
WO2018024293A1 true WO2018024293A1 (fr) 2018-02-08

Family

ID=59914233

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/DE2017/100666 Ceased WO2018024293A1 (fr) 2016-08-05 2017-08-07 Aile delta servant d'entraînement pour un véhicule marin et véhicule marin comportant une telle aile delta

Country Status (2)

Country Link
DE (1) DE102016114543B4 (fr)
WO (1) WO2018024293A1 (fr)

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102018002901A1 (de) * 2018-04-04 2019-10-10 Sven Assmann Dreiteilig versenkbare und bewegliche Segelmasten für Schiffe und Yachten (Containerschiffe, Segelyachten, Transport- und Frachtschiffe)
CN109795686B (zh) * 2019-03-13 2024-01-09 青岛翼飞冲天科技有限公司 水上三角翼飞船

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2170914A (en) * 1935-01-14 1939-08-29 Rummler Rudow Rigging
US3889620A (en) * 1974-02-01 1975-06-17 Charles Kenneth Dorland Symmetrical sail assembly
EP0015875A1 (fr) * 1979-03-08 1980-09-17 Johannes Heman Aménagement des voiles sur un voilier
FR2464881A1 (fr) * 1979-09-12 1981-03-20 Saez Jean Voilure articulee et triangulee pour la propulsion des bateaux
DE102005005142A1 (de) 2005-02-04 2006-08-24 Thomas Hauck Zentrifugalarbeitsmaschine
WO2010103377A1 (fr) * 2009-03-09 2010-09-16 Seagate S.R.L. Système de voilure

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2045338A5 (fr) 1970-04-13 1971-02-26 Hennebutte Georges
FR2687122B1 (fr) 1992-02-06 1996-03-01 Souaille Pierre Dispositif de greement permettant tous reglages de voile.
DE10103171A1 (de) * 2001-01-25 2002-08-22 Hartmut Wibbeler Konstruktion für ein flexibles Rigg mit Reffeinrichtung einsetzbar für Segelfahrzeuge
US7712426B1 (en) * 2008-07-09 2010-05-11 Ledder High Risk Capital Ventures, Lp Multi-purpose expedition vessel
EP2822851B1 (fr) * 2011-11-07 2020-07-08 Propelwind S.A.S. Vaisseau doté d'une installation de voile rigide en forme d'aile d'avion

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2170914A (en) * 1935-01-14 1939-08-29 Rummler Rudow Rigging
US3889620A (en) * 1974-02-01 1975-06-17 Charles Kenneth Dorland Symmetrical sail assembly
EP0015875A1 (fr) * 1979-03-08 1980-09-17 Johannes Heman Aménagement des voiles sur un voilier
FR2464881A1 (fr) * 1979-09-12 1981-03-20 Saez Jean Voilure articulee et triangulee pour la propulsion des bateaux
DE102005005142A1 (de) 2005-02-04 2006-08-24 Thomas Hauck Zentrifugalarbeitsmaschine
WO2010103377A1 (fr) * 2009-03-09 2010-09-16 Seagate S.R.L. Système de voilure

Also Published As

Publication number Publication date
DE102016114543B4 (de) 2018-12-20
DE102016114543A1 (de) 2018-02-08

Similar Documents

Publication Publication Date Title
DE102005028447B4 (de) Schiff
EP2616318B1 (fr) Navire avec une passerelle d'embarquement
EP3696075B1 (fr) Voile rigide pour véhicules nautiques, en particulier pour grands navires et véhicule nautique pourvu de voile rigide
DE212015000159U1 (de) Segelantriebssystem und Methode für Schiffe und Schlepper
DE102016114543B4 (de) Wasserfahrzeug mit einem Deltaflügel
DE68915575T2 (de) Segler mit einer Anti-Kenter-Hebevorrichtung.
DE2224059B2 (de) Segelfahrzeug
DE102008038872A1 (de) Hybrides Luftfahrzeug
EP4261121A1 (fr) Voile en nid d'abeilles souple
DE19835078A1 (de) Rigg mit nach vorn umlegbarem Spreizmast
DE29501822U1 (de) Drachenrigg
DE102016006746A1 (de) Antriebseinrichtung für ein Wasserfahrzeug sowie Wasserfahrzeug
DE3432970A1 (de) Rigg fuer ein segelfahrzeug
DE3702559A1 (de) Tragfluegelrigg fuer segelfahrzeuge
EP0242408A1 (fr) Bateau à voile
WO2019192814A1 (fr) Véhicule marin à propulsion éolienne
DE102021213123A1 (de) Flügelsegel, Wasserfahrzeug und Verfahren zum Betrieb eines Flügelsegels
DE102016006583B3 (de) Vorrichtung zum Aufspannen von Segelflächen sowie zum Verändern und Fixieren der Segelstellung auf Segelfahrzeugen
DE2556802A1 (de) Takelage fuer segelfahrzeuge
DE460399C (de) Motorsegelschiff
DE2413659A1 (de) Fliegendes segelfahrzeug
AT412465B (de) Rigg für ein segelfahrzeug
DE10253531A1 (de) Rigg für Segel mit asymmetrischem Profil und Flugdrachen (Drachenrigg)
DE19751858A1 (de) Neuartiges Rigg für Segelfahrzeuge und dgl.
DE3432280A1 (de) Anordnung und ausbildung eines segels

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 17768965

Country of ref document: EP

Kind code of ref document: A1

122 Ep: pct application non-entry in european phase

Ref document number: 17768965

Country of ref document: EP

Kind code of ref document: A1