WO2009111629A1 - Bow lifting body with deadrise - Google Patents

Bow lifting body with deadrise Download PDF

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Publication number
WO2009111629A1
WO2009111629A1 PCT/US2009/036172 US2009036172W WO2009111629A1 WO 2009111629 A1 WO2009111629 A1 WO 2009111629A1 US 2009036172 W US2009036172 W US 2009036172W WO 2009111629 A1 WO2009111629 A1 WO 2009111629A1
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WO
WIPO (PCT)
Prior art keywords
deadrise
blb
bow
positive
lifting body
Prior art date
Application number
PCT/US2009/036172
Other languages
French (fr)
Inventor
Steven Loui
Ben Rosenthal
Troy Keipper
Gary Shimozono
Original Assignee
Navatek, Ltd
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 Navatek, Ltd filed Critical Navatek, Ltd
Publication of WO2009111629A1 publication Critical patent/WO2009111629A1/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B1/00Hydrodynamic or hydrostatic features of hulls or of hydrofoils
    • B63B1/02Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement
    • B63B1/04Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement with single hull
    • B63B1/06Shape of fore part
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B1/00Hydrodynamic or hydrostatic features of hulls or of hydrofoils
    • B63B1/02Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement
    • B63B1/04Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement with single hull
    • B63B1/06Shape of fore part
    • B63B1/063Bulbous bows
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B1/00Hydrodynamic or hydrostatic features of hulls or of hydrofoils
    • B63B1/16Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving additional lift from hydrodynamic forces
    • B63B1/24Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving additional lift from hydrodynamic forces of hydrofoil type
    • B63B1/248Shape, hydrodynamic features, construction of the foil
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B1/00Hydrodynamic or hydrostatic features of hulls or of hydrofoils
    • B63B1/32Other means for varying the inherent hydrodynamic characteristics of hulls
    • B63B1/40Other means for varying the inherent hydrodynamic characteristics of hulls by diminishing wave resistance
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T70/00Maritime or waterways transport
    • Y02T70/10Measures concerning design or construction of watercraft hulls

Definitions

  • the present invention relates to watercraft having a Bow Lifting Body (BLB) for improved efficiency and seakeeping.
  • BLB Bow Lifting Body
  • a BLB applied at the bow of a ship can introduce numerous positive attributes.
  • a BLB provides all the positive attributes of a traditional bulbous bow. Wave cancellation similar to a traditional bulbous bow is provided by a BLB, in an even larger speed range.
  • a BLB can be used for ballast or a sonar dome, similar to traditional bulbous bows.
  • lifting bodies have a higher lift to drag ratio (L/D, efficiency) than that of a hull alone, most noticeably at high speeds.
  • L/D lift to drag ratio
  • Bow Lifting Bodies of this type are described in detail in U.S. Patent Nos. 7,191,725 and 7,004,093, the disclosures of which are incorporated by reference.
  • a BLB has both buoyant and dynamic lift components whereas the conventional bow bulb has only buoyant lift. Because the efficiency of a BLB (defined specifically as the ratio of the body's lift to its drag) can be much greater than that of a typical ship hull, at high speeds, a portion of the vessel's weight will be supported by the BLB, thus increasing the vessel's overall efficiency.
  • a typical bow bulb is designed to be effective at a single design speed. At this speed, the wave generated by the bulb effectively cancels the wave generated by the ship's hull. This wave cancellation reduces the overall drag of the craft at this speed.
  • a BLB on the other hand, has the ability to cancel the wave generated by the ship over a much larger range of speeds. Test data shows wave cancellation over almost the entire speed range for a specific class of hulls.
  • a typical bow bulb has an elliptical or teardrop shaped cross section. In plan view, therefore, a bow bulb has very little area to aid in low speed seakeeping.
  • a BLB on the other hand, has a large amount of plan area giving it a high degree of low speed damping, keeping motions low.
  • a BLB can have active control surfaces at the extremities or wingtips and edges. This inclusion of active control allows for improvements in seakeeping at higher speeds.
  • a bow bulb has no control surfaces or winglets on which to put them.
  • the effects on lifting body performance due to proximity to the free surface are known as well.
  • the lift in general decreases with increasing proximity to the free surface.
  • the likelihood of cavitation defined as the point when the pressure on the lifting body drops below the vapor pressure of the fluid thereby causing the fluid to boil
  • separation increase with increased proximity to the free surface.
  • Yet another object of this invention is to decrease low speed motions of a vessel employing a BLB.
  • a still further object of the invention is to reduce the presence of BLB tip vortices.
  • an improved BLB which meets these objectives by having either negative or positive deadrise angle relative to the surface of the water.
  • the invention contemplates the use of incremented wing angles or "winglets" on the BLB's.
  • Incremented wing angles for increased performance have been used in airplanes for many years.
  • the advantages of specifically designing the wing angle as a function of span include: reduction of tip vortices and increased wing area for a given overall footprint.
  • This concept has been expanded to allow for large changes in deadrise as well as sweep (defined as the angle of the wing as seen from above) in incremented segments as a function of span. It has been shown that by allowing for large changes in deadrise and sweep, the use of incremented wing angles produces increases in efficiency and reduction in tip vortices.
  • Figure 1 is front view of a watercraft having a BLB as described in Patent No. 7,191,725 with no wing angle;
  • Figure 2 is a front view similar to Figure 1 of a BLB having positive deadrise in accordance with this invention.
  • Figure 3 is a front view similar to Figure 1 of a BLB having negative deadrise in accordance with this invention.
  • Figure 4 is a plot of the change in lift which occurs due to change in wing angle from -45° negative deadrise to 45° positive deadrise;
  • Figure 5 is a plot similar to Figure 4 comparing the change in lift due to change in deadrise for a watercraft with and without a strut connecting it to the watercraft;
  • Figure 6 is a perspective view of a watercraft showing pressure distribution on a BLB and its associated hull for a BLB with no deadrise;
  • Figure 7 is a view similar to Figure 6 showing pressure distribution on a BLB and its associated will for a BLB with positive deadrise;
  • Figures 8a-c are illustrations similar to Figures 1-3 showing the use of incremented deadrise or "winglets" on BLB 's with positive, deadrise, no deadrise, and negative deadrise respectively.
  • FIG. 1 a conventional BLB 10 in accordance with the disclosure of Patent No. 7,191,725 is illustrated secured to the bow of a hull 12.
  • the BLB has a thicker central portion and tapers towards its lateral edges 14.
  • Figures 2 and 3 show the same BLB but with its lateral sides bent in either positive or negative deadrise.
  • Deadrise is the angle a surface of a vessel makes to the horizontal or to the flat waterplane surface.
  • a BLB with deadrise as shown in Figures 2 or 3 provides all of the positive effects of a typical BLB. However by including the proper amount of wing angle, slamming loads are reduced, overall efficiency is increased, low speed seakeeping is improved, and BLB lift can be increased. [0032]
  • the improvements to a vessel's low speed seakeeping due to the addition of wing angle or deadrise (either positive or negative) to a BLB is due to the changes in added mass and drag coefficient consequent to the change in BLB shape.
  • the increase in entrained water due to the "cup" shaped cross section as compared to a BLB with no wing angle is clear. This increase in "added mass” will effectively change the vertical and rotational motions of the attached vessel.
  • the equation for acceleration can be stated as the ratio of the force applied to the mass of the system (this mass includes the added mass), any increase in system mass will reduce the accelerations for a given amount of force.
  • the rotational acceleration is the ratio of the moment applied to the mass moment of inertia (which includes the added mass component of the moment of inertia). Therefore, as the added mass increases, the amount of rotational acceleration for a given amount of moment will be reduced.
  • FIGS. 6 and 7 show perspective views of BLBs with no deadrise (Fig. 6) and positive deadrise (Fig. 7). These drawing demonstrate how the deadrise increases the area of reduced pressure on the BLB thereby increasing lift.
  • the second component of the improved efficiency (namely, the ability to unload the hull) will be affected by the inclusion of deadrise (again, both positive and negative).
  • deadrise both positive and negative
  • the lift will reduce with the cosine of the wing angle ⁇ , as shown in the chart of Figure 2. Since no other effects on vessel efficiency will be seen, the overall efficiency of the vessel will drop.
  • positive deadrise dihedral
  • the lift will again reduce with the cosine of the wing angle.
  • the proximity of the lifting surfaces to the hull will have a large effect on the pressures of both the hull and the lifting body.
  • Figures 6 and 7 show a three-dimensional view of the BLB with positive deadrise affixed to the bow a vessel alongside a BLB with no deadrise affixed to the bow of the same vessel.
  • the area of peak negative pressure on the BLB has increased in the case with positive deadrise.
  • Lift is defined as the integral of the pressure. Therefore the deadrise would have increased lift.
  • deadrise either positive or negative reduces the overall span of the BLB by the cosine of the deadrise angle.
  • the BLB should not exceed the beam of the boat at the installed longitudinal location. In general, it is better to have as much wing area as possible. This helps increase the low-speed damping and increase the high speed efficiency of the boat. However, if the BLB is made too large, the wingtips will extend beyond the limits of the boat. By using deadrise, the effective width of the BLB can be reduced while keeping wing area large.
  • positive deadrise can have a negative effect on BLB performance if care is not taken.
  • the inclusion of positive deadrise increases the proximity of the BLB wingtips to the free surface (the interface between the air and water). This increase in free surface proximity raises the likelihood of body cavitation. Cavitation occurs when the water along the body boils due to drop in pressure. As a surface approaches the free surface, it can cavitate at a higher pressure. Since the pressure on the BLB will be dropping due to its proximity to the hull, moving the wing tips closer to the free surface can exacerbate their problem. For this reason, in specific cases, it may be desirable to use negative deadrise in place of positive deadrise.
  • FIGS 8a-c show examples of BLB 's with incremented deadrise, i.e., deadrise in two different sections of the BLB. One of these sections on each side of the BLB is a winglet.

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  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • Ocean & Marine Engineering (AREA)
  • Vibration Prevention Devices (AREA)
  • Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)

Abstract

A watercraft has a lifting body secured to its bow below the waterline; the lifting body has deadrise on either side of the bow.

Description

TITLE
BOW LIFTING BODY WITH DEADRISE
SUMMARY OF THE INVENTION
[0001] The present invention relates to watercraft having a Bow Lifting Body (BLB) for improved efficiency and seakeeping.
BACKGROUND OF THE INVENTION
[0002] A BLB applied at the bow of a ship can introduce numerous positive attributes. First, a BLB provides all the positive attributes of a traditional bulbous bow. Wave cancellation similar to a traditional bulbous bow is provided by a BLB, in an even larger speed range. Also, a BLB can be used for ballast or a sonar dome, similar to traditional bulbous bows.
[0003] Second, lifting bodies have a higher lift to drag ratio (L/D, efficiency) than that of a hull alone, most noticeably at high speeds. By adding a component with a higher L/D than that of the original system in the absence of this new addition, it is intuitive that the L/D of the entire system increases. [0004] Bow Lifting Bodies of this type are described in detail in U.S. Patent Nos. 7,191,725 and 7,004,093, the disclosures of which are incorporated by reference.
[0005] These patents disclose the use of a submerged body affixed to the bow of a ship to reduce overall vessel drag and improve overall vessel seakeeping behavior. BLB 's have several distinct characteristics which differentiate them - ? -
from the similarly located conventional bow bulbs. A BLB has both buoyant and dynamic lift components whereas the conventional bow bulb has only buoyant lift. Because the efficiency of a BLB (defined specifically as the ratio of the body's lift to its drag) can be much greater than that of a typical ship hull, at high speeds, a portion of the vessel's weight will be supported by the BLB, thus increasing the vessel's overall efficiency.
[0006] A typical bow bulb is designed to be effective at a single design speed. At this speed, the wave generated by the bulb effectively cancels the wave generated by the ship's hull. This wave cancellation reduces the overall drag of the craft at this speed. A BLB, on the other hand, has the ability to cancel the wave generated by the ship over a much larger range of speeds. Test data shows wave cancellation over almost the entire speed range for a specific class of hulls. [0007] A typical bow bulb has an elliptical or teardrop shaped cross section. In plan view, therefore, a bow bulb has very little area to aid in low speed seakeeping. A BLB, on the other hand, has a large amount of plan area giving it a high degree of low speed damping, keeping motions low. Finally, a BLB can have active control surfaces at the extremities or wingtips and edges. This inclusion of active control allows for improvements in seakeeping at higher speeds. A bow bulb has no control surfaces or winglets on which to put them. [0008] Studies have been conducted showing the effect of deadrise angle on slamming loads for prismatic shapes. Such studies show that at higher deadrises (i.e., angle of a surface to the waterline) slamming loads were decreased. This decrease in slamming loads is inversely proportional to the deadrise angle, i.e., as the deadrise increased, the slamming loads were reduced. [0009] Investigation into the added mass effects, in the frequency domain, of different shaped bodies has shown that a cupped shape body will have higher added mass. By increasing added mass over a wide frequency range, the time- domain motions of the body can be reduced due to the increase in effective momentum of the body. Similarly, the drag coefficient of a body in the direction normal to the cup will be higher, causing a lower tendency to move. [0010] In general, the effects of anhedral (defined as a wing whose angle in relation to the goundplane is negative) and dihedral wings (defined as a wing whose angle in relation to the groundplane is positive) are well known. The lift decreases with the cosine of the angle in both instances.
[0011] The effects on lifting body performance due to proximity to the free surface are known as well. The lift, in general decreases with increasing proximity to the free surface. Similarly, the likelihood of cavitation (defined as the point when the pressure on the lifting body drops below the vapor pressure of the fluid thereby causing the fluid to boil) and separation increase with increased proximity to the free surface.
[0012] The behavior of a lifting surface and hull when in close proximity to each other has not been extensively studied. The increase in pressure on the lifting body and hull due to the reduction in cross sectional area between the two bodies is well known. The overall effect is most likely shape dependent and can either improve or hurt overall performance.
[0013] It is an object of the present invention to provide a bow lifting body to improve the overall efficiency of the watercraft or vessel to which it is attached.
[0014] It is a further object of the present invention to reduce the slamming loads of a vessel employing a BLB.
[0015] Yet another object of this invention is to decrease low speed motions of a vessel employing a BLB.
[0016] A still further object of the invention is to reduce the presence of BLB tip vortices.
SUMMARY OF THE INVENTION
[0017] In accordance with an aspect of the present invention, an improved BLB is provided which meets these objectives by having either negative or positive deadrise angle relative to the surface of the water.
[0018] The addition of deadrise to a BLB attached to the bow of a watercraft improves upon the low speed motions of a typical BLB as described in U.S. Patent 6,263,819. In the specific case of positive deadrise, a BLB according to the invention improves the overall efficiency, reduces the slamming loads, and increases the lift on the BLB. [0019] It has been found that adding deadrise to a BLB attached to the bow of a vessel can improve on the overall design of said vessel. The addition of deadrise as described herein increases the pressure on the hull and BLB due to proximity between the hull and lifting surface and reduces cavitation. [0020] In addition to the use of deadrise for bow lifting bodies, the invention contemplates the use of incremented wing angles or "winglets" on the BLB's. Incremented wing angles for increased performance have been used in airplanes for many years. The advantages of specifically designing the wing angle as a function of span include: reduction of tip vortices and increased wing area for a given overall footprint. This concept has been expanded to allow for large changes in deadrise as well as sweep (defined as the angle of the wing as seen from above) in incremented segments as a function of span. It has been shown that by allowing for large changes in deadrise and sweep, the use of incremented wing angles produces increases in efficiency and reduction in tip vortices. [0021] The above, and other objects, features and advantages of this invention will be apparent those skilled in the art from the following detailed description of illustrative embodiments of the invention which is to be read in connection with the accompanying drawings, wherein:
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is front view of a watercraft having a BLB as described in Patent No. 7,191,725 with no wing angle;
[0023] Figure 2 is a front view similar to Figure 1 of a BLB having positive deadrise in accordance with this invention;
[0024] Figure 3 is a front view similar to Figure 1 of a BLB having negative deadrise in accordance with this invention;
[0025] Figure 4 is a plot of the change in lift which occurs due to change in wing angle from -45° negative deadrise to 45° positive deadrise; [0026] Figure 5 is a plot similar to Figure 4 comparing the change in lift due to change in deadrise for a watercraft with and without a strut connecting it to the watercraft; [0027] Figure 6 is a perspective view of a watercraft showing pressure distribution on a BLB and its associated hull for a BLB with no deadrise; [0028] Figure 7 is a view similar to Figure 6 showing pressure distribution on a BLB and its associated will for a BLB with positive deadrise; and [0029] Figures 8a-c are illustrations similar to Figures 1-3 showing the use of incremented deadrise or "winglets" on BLB 's with positive, deadrise, no deadrise, and negative deadrise respectively.
DETAILED DESCRIPTION
[0030] Referring now to the drawings in detail and initially to Figure 1 , a conventional BLB 10 in accordance with the disclosure of Patent No. 7,191,725 is illustrated secured to the bow of a hull 12. The BLB has a thicker central portion and tapers towards its lateral edges 14. Figures 2 and 3 show the same BLB but with its lateral sides bent in either positive or negative deadrise. Deadrise is the angle a surface of a vessel makes to the horizontal or to the flat waterplane surface.
[0031] A BLB with deadrise as shown in Figures 2 or 3 provides all of the positive effects of a typical BLB. However by including the proper amount of wing angle, slamming loads are reduced, overall efficiency is increased, low speed seakeeping is improved, and BLB lift can be increased. [0032] The improvements to a vessel's low speed seakeeping due to the addition of wing angle or deadrise (either positive or negative) to a BLB is due to the changes in added mass and drag coefficient consequent to the change in BLB shape. The increase in entrained water due to the "cup" shaped cross section as compared to a BLB with no wing angle is clear. This increase in "added mass" will effectively change the vertical and rotational motions of the attached vessel. Since the equation for acceleration can be stated as the ratio of the force applied to the mass of the system (this mass includes the added mass), any increase in system mass will reduce the accelerations for a given amount of force. Similarly, the rotational acceleration is the ratio of the moment applied to the mass moment of inertia (which includes the added mass component of the moment of inertia). Therefore, as the added mass increases, the amount of rotational acceleration for a given amount of moment will be reduced.
[0033] Figures 6 and 7 show perspective views of BLBs with no deadrise (Fig. 6) and positive deadrise (Fig. 7). These drawing demonstrate how the deadrise increases the area of reduced pressure on the BLB thereby increasing lift.
[0034] The improvements to overall vessel efficiency over a wide speed range due to the inclusion of BLB 's at the bow of a vessel is known. This increase in efficiency comes from two sources: the cancellation of the bow wave by the BLB-generated wave and the highly efficient dynamic lift generated by the BLB at speed effectively unloading the vessel's hull. The wave generated by the BLB is almost entirely due to the displaced volume of the BLB and its proximity to the free surface. The actual shape of the BLB has very little effect on the size and shape of the wave being generated. For this reason, the inclusion of deadrise (either positive or negative) will not significantly change the wave cancellation as seen in a typical BLB. However, the second component of the improved efficiency (namely, the ability to unload the hull) will be affected by the inclusion of deadrise (again, both positive and negative). In the case of negative deadrise (anhedral), the lift will reduce with the cosine of the wing angle β, as shown in the chart of Figure 2. Since no other effects on vessel efficiency will be seen, the overall efficiency of the vessel will drop. In the case of positive deadrise (dihedral), the lift will again reduce with the cosine of the wing angle. However, the proximity of the lifting surfaces to the hull will have a large effect on the pressures of both the hull and the lifting body. Simulations have shown that this decrease in pressure on the top side of the lifting body (and thus lift over the entire lifting body) far outweighs the reduction in lift due to wing angle (this is shown in Figure 7), thereby producing an increase in lift. Since the efficiency of a system can be defined as the ratio of lift to drag, the overall efficiency of the system can be said to have increased.
[0035] The reduction in BLB slamming due to the inclusion of positive deadrise is due to the effective increase of deadrise at the bow of the vessel. As shown in Figure 1, a typical BLB (center) would have very little or no deadrise in cross- sectional view. As has been shown in several studies, by increasing the effective deadrise on a vessel, the slamming loads are reduced. It is clear that the BLB with dihedral deadrise has a much higher effective deadrise angle. [0036] Simulations in two independent, commercial fluid dynamics codes (USAero and CFX) have shown the proximity of the wings to the hull when positive deadrise is included effectively increases the overall lift of the BLB. As noted above, Figures 6 and 7 show a three-dimensional view of the BLB with positive deadrise affixed to the bow a vessel alongside a BLB with no deadrise affixed to the bow of the same vessel. As can be seen from the pressure contours, the area of peak negative pressure on the BLB has increased in the case with positive deadrise. Lift is defined as the integral of the pressure. Therefore the deadrise would have increased lift.
[0037] The inclusion of deadrise (either positive or negative) reduces the overall span of the BLB by the cosine of the deadrise angle. For practical reasons, the BLB should not exceed the beam of the boat at the installed longitudinal location. In general, it is better to have as much wing area as possible. This helps increase the low-speed damping and increase the high speed efficiency of the boat. However, if the BLB is made too large, the wingtips will extend beyond the limits of the boat. By using deadrise, the effective width of the BLB can be reduced while keeping wing area large.
[0038] The inclusion of positive deadrise can have a negative effect on BLB performance if care is not taken. The inclusion of positive deadrise increases the proximity of the BLB wingtips to the free surface (the interface between the air and water). This increase in free surface proximity raises the likelihood of body cavitation. Cavitation occurs when the water along the body boils due to drop in pressure. As a surface approaches the free surface, it can cavitate at a higher pressure. Since the pressure on the BLB will be dropping due to its proximity to the hull, moving the wing tips closer to the free surface can exacerbate their problem. For this reason, in specific cases, it may be desirable to use negative deadrise in place of positive deadrise. Although the improvements in efficiency and slamming will be lost, the likelihood of cavitation will be reduced. [0039] By including the ability to increment (i.e., bend) the deadrise and sweep in segments along the span of the BLB, the overall efficiency of the system can be further improved. Figures 8a-c show examples of BLB 's with incremented deadrise, i.e., deadrise in two different sections of the BLB. One of these sections on each side of the BLB is a winglet.
[0040] Although the present invention has been described herein in connection with the illustrative embodiments, it is to be understood that the invention is not limited to such embodiments and that various changes and modifications may be effected therein without departing from the scope or spirit of the invention.

Claims

WHAT IS CLAIMED IS:
1. A watercraft comprising a hull, including a bow, a lifting body attached to said bow, and said lifting body having deadrise on either side of the bow.
2. A watercraft as defined in Claim 1 wherein said deadrise is positive.
3. A watercraft as defined in Claim 1 wherein said deadrise is negative.
4. A watercraft as defined in Claims 2 and 3 including winglets on the outer edges of said lifting body.
5. A watercraft as defined in Claim 1 wherein said lifting body is sized and shaped to produce added buoyancy and hydrodynamic lift to the hull.
6. A watercraft as defined in Claim 5 wherein said lifting body is generally parabolicly shaped in plan.
PCT/US2009/036172 2008-03-06 2009-03-05 Bow lifting body with deadrise WO2009111629A1 (en)

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US12/043,658 US20090223431A1 (en) 2008-03-06 2008-03-06 Bow lifting body with deadrise
US12/043,658 2008-03-06

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Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8485115B2 (en) 2010-09-30 2013-07-16 Bombardier Recreational Products Inc. Watercraft with bow sponsons
JP6111491B2 (en) * 2012-06-25 2017-04-12 上野 康男 Ship propulsion device
GR20120100643A (en) * 2012-12-12 2014-07-18 Εμμανουηλ Ευαγγελου Πετρομανωλακης Boat furnished with a bow hydrodynamic flow management duct
EP2769909A3 (en) * 2013-02-22 2014-09-03 Dimitri Moskvin Hull structure and hull of a watercraft and watercraft with a hull
EP3037338A1 (en) * 2014-12-22 2016-06-29 Rasmussen Maritime Design AS Design of forepart of a vessel

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS61178284A (en) * 1985-01-31 1986-08-09 Mitsubishi Heavy Ind Ltd High-speed boat equipped with wing body at its bow
US4915048A (en) * 1987-04-28 1990-04-10 Corwin R. Horton Vessel with improved hydrodynamic performance
US5638765A (en) * 1991-10-07 1997-06-17 Poulos; John George Hydrofoil assembly for marine use, and method for mounting the same

Family Cites Families (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3157145A (en) * 1960-12-07 1964-11-17 Oceanic Systems Corp Underwater glider
US3347197A (en) * 1964-09-10 1967-10-17 Paul A Scherer Foil systems
US3429287A (en) * 1967-01-16 1969-02-25 Us Navy Hydrofoil semisubmarine
NO128434B (en) * 1972-08-01 1973-11-19 Lauenborg J T
US3947906A (en) * 1975-04-24 1976-04-06 Mclane Merle Swimming equipment
US4041885A (en) * 1975-12-31 1977-08-16 Garcia Emilio C Apparatus for and method of stabilizing a marine vessel in pitch
US4050397A (en) * 1976-04-26 1977-09-27 The Boeing Company Foil fence for hydrofoil craft
US4819576A (en) * 1988-01-20 1989-04-11 Shaw Chung Chen C Hydrofoil - submarine vessel system
US4981099A (en) * 1988-03-17 1991-01-01 Ron Holder Watercraft
US4919063A (en) * 1988-03-28 1990-04-24 Swath Ocean Systems, Inc. Hull construction for a swath vessel
US5544607A (en) * 1995-02-13 1996-08-13 Rorabaugh; Dale Moveable sponsons for hydrofoil watercraft, including both large entended-performance hydrofoil watercraft and leaping personal hydrofoil watercraft
ZA983763B (en) * 1997-05-06 1999-01-20 Univ Stellenbosch Hydrofoil supported water craft
NL1019207C2 (en) * 2001-10-22 2003-04-23 Argonautic Pleasure craft.

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS61178284A (en) * 1985-01-31 1986-08-09 Mitsubishi Heavy Ind Ltd High-speed boat equipped with wing body at its bow
US4915048A (en) * 1987-04-28 1990-04-10 Corwin R. Horton Vessel with improved hydrodynamic performance
US5638765A (en) * 1991-10-07 1997-06-17 Poulos; John George Hydrofoil assembly for marine use, and method for mounting the same

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