VARIABLE OVERALL HULL LENGTHS FOR WATERCRAFT
The invention relates to two parallel added floaters (2) for watercraft, which are fixed to the stern (1a) on a watercraft hull (1) or a platform element (31) whereby the single auxiliary bottom (5) is positioned higher or for the most part positioned higher than the hull bottom (6) and forms a step. The added floaters (2) create on the one hand a static lift (As) and on the other hand a dynamic (Ad) lift. The added floaters (2) or the auxiliary bottoms (5) can be adjusted independently from each other in trim angle (N), stroke (H) and deadrise angle (KW) and may have in addition technical mean (30)
The invention is based on a variable hull length for watercraft according to the generic name of the first claim.
BACKGROUND OF THE INVENTIONWatercraft hulls should be able to go through the water with as little resistance as possible. For this reason, to reduce the harmful frictional resistance, various auxiliary means have been introduced, as for eg means which influence the laminar flow, as described in U.S. Pat. No. 5,819,677 or by reducing the partial wetted lifting areas on the hull or and by introducing air by having special air ducts as described in U.S. Pat. No. 5,685,253.
The not particularly good riding performance at low speed and during acceleration of gliding hulls can be improved by additional buoyancy and stability, such as fixing or integrating extensions onto the hull rear end as described in U.S. Pat. No. 3,783,810. These aids enable the vessel to get quicker to planing and at the same time reducing trim, which improves the view over the bow. The same result can also be achieved successfully by mounting rigid trimtabs.
SUMMARY OF THE INVENTIONThe invention involves that the hull performance of a watercraft, whether at slow, medium or high speed operation, can be improved by means of stepped and separated added floaters, which are fixed at the stern and make specific use of static as well as of dynamic lifting mean, as well as of the omission of additional lift, according to the planing conditions.
The improvement of the hull performance at slow and medium speed is attributed to comfort, which means to generate best possible lifting in the stern area, in order to ensure a fuel saving trim position of the watercraft, as well as a good forward view especially when changing from displacement to planing speed and in addition to let the craft softly through the waves. The improvement of the hull performance at high speeds means that, when driving at a higher speed, and to achieve fuel saving in comparison to the total watercraft length this can be achieved by reducing or by the full loss of contact of the wetted surface at the stern.
The saying <the longer the better> is correct to a certain planing speed—called herein riding speed—but afterwards, friction, which means hull resistance, is hindering more than the better trim position or the reduced surface pressure of a maximised surface which means a longer hull. From this point, a smaller hull surface, which means a shorter hull is advantageous because the smaller wetted surface of a smaller, respectively shorter hull generates, due to the increased flow, nevertheless an excellent buoyancy and lets the watercraft plan more efficiently.
To enable an improvement of the hull performance for both of the different driving conditions, as well as for medium mixed driving conditions, added floaters are fixed or integrated behind the main engine, respectively at the stern of the watercraft hull with the bottom surface of the added floaters mounted higher than the watercraft's bottom so that a step is created. Unlike a conventional stepped hull which discontinues laminar flow and forces air under the hull, the additional added floaters have the primary function to reduce the surface pressure on the hull per mm2, as well as due to the improved three dimensional flow, to influence positively the waves behind the watercraft (fewer waves equals more efficient drive). Furthermore, with the length of added floaters a better trimming of the craft can be generated, and at higher speed from the point on which the additional wetted hull surface of the added floaters may have a negative effect, by means of steps which allow the contact to the water flow to be cut off, therefore the watercraft becomes shorter at the waterline.
The added floaters are divided, not only to make space for the stern drives, surface piercing drives, jets or outboards, but to allow the additional, deliberately limited, bottom surface to have the best possible effect in the longitudinal direction of the watercraft so that a best possible trim effect is generated and also to minimize the purpoising on the lateral axis of the watercraft when planing, as well as to achieve a better track keeping and to create an additional lift on the inner far rear surface of the craft in sharp turns, in order to prevent the watercraft hull from ditching in this running position.
As the point on which the additional bottom surface of the added floater may cause a negative effect (on the grounds of for eg the load weight and load position within the craft) may vary, an adjustable stepping of the added floater is of advantage on the craft hull. This can be controlled by the driver or automatically by an algorithm.
In addition the deadrise angle of a V hull has a large influence on the driving comfort, fuel consumption and the top speed of a watercraft. Therefore provision has been made for a variable angle adjustment on the bottom of the additional floater so that the deadrise of the craft can be adjusted to the driving condition. The installation of such an adjustable bottom into an additional fixed or integrated added floater is simpler, compared to the installation directly into the watercraft hull, as the unused part of the additional floater can be watertight and hollow or foamed and is a safe static lifting mean. In addition trim tabs can be inserted too, further improving trimming as well as the rolling of the watercraft, whereby this can also be achieved by adjusting the entire bottom plate.
The faster a planing craft runs, the more the hydrodynamic pressure point moves to the rear. A very fast planing craft would only lie on the lifting bodies and be a very high structural load for the components. The correspondingly formed or and controlled lifting bodies prevent the hydrodynamic pressure point from moving further back but stays constant on one point because of the intentionally reduced lifting effect of the lifting bodies at higher speed. All driving conditions refer to measurable and described conditions like lying at anchor or luring or planing speed or doing turns. The erratic conditions in heavy seas are not considered.
Furthermore the added floaters can be connected to each other above the waterline and may form a reasonably priced swim plate or be used as an enlargement of the watercraft's deck.
As far as the invention is concerned this is dealt with by the features of the first claim.
Core of the invention is that by means of additional floaters, which are placed aft of a watercraft stern and have a step next to the watercraft hull and can be used as buoyancy elements to the point as long as the friction of such additional bottom surface becomes negative.
When the craft is travelling at increasing speed then the added floaters lose on purpose the active contact to the damaging resistance flow, by lifting the hull further out of the water, then the step generates a clear distance from the water's surface. Preventing the added floaters from getting into contact with damaging resistance flow while running at high speed can also be achieved by a mechanical lifting mean activated manually or by a control mean. At anchor or at low speed the added floaters generate static buoyancy.
Further advantageous advantages of the invention are listed in the subclaims
Various exemplary aspects of the invention will be described with reference to the drawings, wherein
It shows
Only essential elements of the invention are schematically shown to facilitate immediate understanding.
DETAILED DESCRIPTION OF THE EMBODIMENTSThe more powerful the engines are and the more they are fixed in the stern region, the greater is the wish for more dynamic lifting surface and static lifting volume in the stern region so as to avoid the hull 1 from submerging and the shorter the watercraft the more it makes sense to have the added floater 2 as long as possible so that the watercraft can do it with the least necessary trim. The additional surfaces 5 offer more buoyancy but the additional wetted area means more friction. At a certain point the friction resistance is so important that the previously achieved better trimming and the low surface pressure per mm2 is no more worthwhile, as the flow speed lets the watercraft plan in total but every additional surface does not add to any additional lift but only damaging resistance. The goal is, at this point of flow speed, that flow S on the deflector 7 stalls and the added floaters 2 are no longer active. By means of this system the hull 1, according to such riding mode, can be lengthened or shortened at the waterline and create more lift or less friction.
The function of the outer side means 3 is to lead the created flow S from the hull 1 with the least possible friction to the back, and also by intense inclination of the watercraft in turns, the added floater 2 lying on the innerside in such a turn achieves buoyancy by means of its outer side mean 3. When riding straightforward, the inner side mean 4 together with the deadrise angle of auxiliary bottom 5 helps to further improve the straightforward stability.
In this way the hull 1 can be automatically lengthened or shortened specifically to the waterline WL and focused on the riding conditions creating more static lift As or dynamic lift Ad or no lift at all. Therewith the frictional resistance on the added floaters 2 can be influenced. Not shown, but understandable is that in heavy seas, should the bow be pointing upwards when going through a wave, by means of the added floater 2 a counter lift force can be created with the auxiliary bottom 5, thereby stabilizing the entire watercraft on the lateral axis as well as on the longitudinal axis.
Auxiliary strakes 10 on the inner side parts, only shown in the drawing on the right side, yield added lifting and are useful in sharp turns.
In addition, the stall of flow S at the deflector 7 can be influenced by a variable trailing edge 11, only shown here on the left side. This may be varied by cylinder 16, for eg cylinders which are electrically powered or by fluids and can be operated by a computerised algorithm or manually.
From a technical design standpoint the outer side means 3 can also be flush mounted on the hull 1 which is shown in the right drawing half.
The flow mean 23 is a straight or bent plate and functions as a trim or steering mean. In front of the extended flow mean 23, in the KW1 area, a flow brake develops, therefore a lifting Ad on the hull 1 is generated, thereby changing the watercraft's trim position. Trimming means also steering, thus when lowering the flow mean 23 on one side, an additional resistance is generated which moves the watercraft in a turn around the vertical axis, thereby pushing the craft to a new course or keeping it simply but safely on track. The settings of the deadrise KW and KW1 is generated by means identical to those described in
Because of the attachment of the added floaters 2 to the hull 1 it is also possible to design the added floaters 2 of a material especially suitable for this stern part which can be different from the hull 1 and can locally generate more stiffness and or less weight.
Both of the installations have in common that the force source whether in front of or behind the stern 1a has an influence on the wetted surface of the entire watercraft as well as on the static lift.
Of course the invention is not only applicable on shown and described examples.
DRAWING LIST
- 1 hull
- 1a stern
- 2 added floater
- 3 outer side mean
- 4 inner side mean
- 5 auxiliary bottom
- 5a link element
- 5b co-bottom
- 6 hull bottom
- 7 deflector
- 8 transom cover
- 9 cover
- 10 auxiliary strake
- 11 variable trailing edge
- 12 secondary auxiliary bottom
- 13 standard trimtabs
- 14 pivot element
- 15 mounting bracket
- 16 cylinder
- 17 controller
- 18 trim sensor
- 19 lifting mean
- 19a parallelogram
- 20 speed gauge
- 21 rpm gauge
- 23 flow mean
- 24 exhaust gas discharge
- 25 underwater light
- 26 plate
- 27 inner floating device
- 28 propulsion drive
- 29 rudder
- 30 technical mean 13,24,25,29
- 31 platform element
- WL waterline
- S flow
- Ad dynamic lift
- As static lift
- H stroke
- X standard angle
- Z phase out angle
- N trim angle
- DP pivot point
- KW deadrise angle
Claims
1. Added floaters stretching out at the stern of a watercraft wherein the added floaters form an U and auxiliary bottoms are positioned higher or at least for the most part higher than a hull bottom.
2. Added floaters in accordance with claim 1 wherein they have their origin in front or behind or directly at the stern.
3. Added floaters in accordance with claim 1 wherein the added floaters are placed in mirror-inverted symmetry and parallel to each other, behind the engine or placed to each side of an outboard engine and fixed to the hull.
4. Added floaters in accordance with claim 1 wherein the added floaters or and the auxiliary bottom show a deadrise angle similar to the deadrise angle of the hull.
5. Added floaters in accordance with claim 1 wherein the added floaters create a static lift and a dynamic lift.
6. Added floaters in accordance with claim 1 wherein the dynamic lift of the added floaters may be different from the dynamic lift of the hull.
7. Added floaters in accordance with claim 1 wherein the surface of the dynamic lift of the added floaters is reduced in riding mode, at the latest in the high speed mode by means of steps in form of secondary auxiliary bottoms or and phase out angles.
8. Added floaters in accordance with claim 1 wherein the added floaters or the auxiliary bottoms are trimmable lengthwise to the watercraft.
9. Added floaters in accordance with claim 1 wherein the added floaters are adjustable in height by a stroke by means of lifting mean and cylinders.
10. Added floaters in accordance with claim 1 wherein the deadrise angles on the added floaters or on the auxiliary bottoms are adjustable by means of cylinders.
11. Added floaters in accordance with claim 1 wherein the added floaters or the auxiliary bottoms are adjustable beyond the line of the hull bottom in the area of the deadrise angles by means of cylinders and flow means which are fixed to the auxiliary bottoms.
12. Added floaters in accordance with claim 1 wherein the added floaters by means of secondary auxiliary bottoms have one or more generic steps and the auxiliary bottoms and or the secondary auxiliary bottoms have a standard angle or a phase out angle.
13. Added floaters in accordance with claim 1 wherein the added floaters have integrated link elements on which the co-bottoms are dead level to the hull bottom and may form a connection to the other added floater.
14. Added floaters in accordance with claim 1 wherein the added floaters are connected to each other by a plate.
15. Added floaters in accordance with claim 1 wherein space is available between the added floaters for the installation of an inner floating device.
16. Added floaters in accordance with claim 15 wherein the inner floating device has a propulsion drive.
17. Added floaters in accordance with claim 15 wherein the added floaters and or the inner floating device are laminated to the hull or attached to it as modules and can be of other types of material from the hull.
18. Added floaters in accordance with claim 1 wherein at the end of the hull rigid deflectors or by means of cylinders variable trailing edges are mounted.
19. Added floaters in accordance with claim 1 wherein the left added floater or the left auxiliary bottom compared to the right added floater or the right auxiliary bottom can be activated independently re stroke, trim and deadrise adjustment.
20. Added floaters in accordance with claim 1 wherein the outer side means and or the inner side means are parallel to the watercraft axis or tapered at the trailing edge.
21. Added floaters in accordance with claim 1 wherein the added floaters have technical mean such as trim tabs or and exhaust gas discharge or and underwater lights or and rudders.
22. Added floaters in accordance with claim 1 wherein the added floaters are fixed under a platform element.
23. Added floaters in accordance with claim 1 wherein the added floaters are of different material to the watercraft hull.
Type: Application
Filed: Dec 30, 2008
Publication Date: Jun 2, 2011
Inventor: Peter A. Müller (Gattikon)
Application Number: 12/735,272
International Classification: B63B 1/32 (20060101); B63B 1/08 (20060101); B63B 1/22 (20060101);