Oscillating propulsor
10273932 ยท 2019-04-30
Inventors
Cpc classification
F03B17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C25/32
PERFORMING OPERATIONS; TRANSPORTING
F05B2210/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T70/5236
GENERAL 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
B64C11/325
PERFORMING OPERATIONS; TRANSPORTING
Y02E10/20
GENERAL 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
Y02E10/72
GENERAL 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
F05B2240/311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/30
GENERAL 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
Y02E10/70
GENERAL 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
B63H1/32
PERFORMING OPERATIONS; TRANSPORTING
F03D5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63H3/008
PERFORMING OPERATIONS; TRANSPORTING
F03B13/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/931
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60F3/0007
PERFORMING OPERATIONS; TRANSPORTING
F03B13/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B64C29/00
PERFORMING OPERATIONS; TRANSPORTING
B63H1/32
PERFORMING OPERATIONS; TRANSPORTING
F03B13/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64C25/32
PERFORMING OPERATIONS; TRANSPORTING
F03B17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60F3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A curved body (830), for propelling fluids, crafts and harvesting fluid power, comprises a convex outer leading surface securely connected to a concave inner trailing surface to define an open vessel. Upon oscillation, ambient fluids are accelerated and ejected from the vessel to propel the vessel and the ambient fluids in opposite directions. Apparatus is secured to a motive power source directly or via actuating member (832), by fastening through aperture (834). The oscillating propulsor can be operated directly by a reciprocating motive power source, and indirectly by the reaction momentum imparted to a supporting base. Thrust may be vectored by rotation of the curved body (830) about the supporting base. Drag reduction using fluid dynamic shapes, intake openings, a fore fin (844), an aft fin (846), and a lubricant cavity, are embodied. Enhanced propulsion using multistage oscillating propulsors is embodied.
Claims
1. A curved body, for propelling fluids, crafts and harnessing fluid power, having a section plane and comprising: a convex outer leading surface, and a concave inner trailing surface, rigidly integrated to the convex outer leading surface in a substantially concentric manner to define an open vessel with trailing edges of its opening coplanar with the section plane, whereby upon oscillation in the section plane, in any direction offset to the trailing edges, ambient fluids are accelerated and ejected from the open vessel, thereby propelling the curved body and the ambient fluids in opposite directions.
2. The curved body of claim 1, wherein the open vessel is a segment of a sphere.
3. The curved body of claim 1, wherein the open vessel is a segment of a cylinder.
4. The curved body of claim 1, wherein the open vessel is a segment of a cylinder with flat end caps.
5. The curved body of claim 1, wherein the open vessel is a segment of a cylinder with spherical end caps.
6. The curved body of claim 1, wherein the open vessel is a segment of a cylinder bent into a toroidal shape.
7. The apparatus of claim 1, wherein the concave inner trailing surface rigidly integrated to the convex outer leading surface in a substantially concentric manner includes a radiused trailing edges, whereby ambient fluids ejected from the concave inner trailing surface are redirected towards the convex outer leading surface, thereby causing reverse propulsion.
8. The apparatus as recited in claim 1, further comprising: an actuating member, cooperatively secured to the curved body, whereby motive power is transmitted thereby enabling oscillation of the curved body.
9. The apparatus of claim 1 or 8, wherein at least one intake opening is provided through the convex outer leading surface and the concave inner trailing surface, whereby ambient fluids are admitted and drag is reduced.
10. The apparatus of claim 1 or 8, further including an impulse plate, securely attached to the concave inner trailing surface of the curved body, whereby energy in moving fluid is converted into a propulsive impulse before ejection from the concave inner trailing surface.
11. The apparatus of claim 1 or 8, further including at least one fin, comprising: a cylindrical head, cooperatively connected to the curved body, and a resilient sheet, cooperatively secured to the cylindrical head, whereby upon oscillation, ambient fluids and the curved body with the fin are propelled in opposite directions and fluid drag is reduced.
12. The apparatus of claim 1 or 8, further comprising lubricant cavity provision systems, fluidly connected to the curved body, whereby a lubricant cavity is coated over the convex outer leading surface of the open vessel, thereby reducing fluid drag.
13. The apparatus of claim 11 wherein the radius of the cylindrical head is blended into the resilient sheet using flexible material.
14. The apparatus of claim 1 wherein surface configuration and mechanical vibration friction-reducing devices are provided on the open vessel whereby the formation of a reduced viscosity boundary layer is promoted thereby reducing drag of the apparatus in the ambient fluids.
15. The apparatus as recited in claim 9, wherein provision of the intake opening reduces the open vessel to a paired assembly of curved plates, with trailing edges and leading edges.
16. The apparatus as recited in claim 15, wherein the distance between the curved plates at the leading edges is less than one time the corresponding distance between the curved plates at the trailing edges, whereby the frontal stagnant pressure zone is mitigated.
17. The apparatus of claim 15 or 16, wherein under partially submerged operation, the open vessel is reduced to the structure of a single curved plate.
18. The apparatus of claim 1 wherein upon oscillation in the section plane comprises electromagnetic actuation.
19. A method of propelling ambient fluids, crafts, and harnessing fluid power, comprising the steps of: cooperatively securing to a base at least a first one of the apparatus of claim 1, and oscillating the at least a first one of the apparatus of claim 1 whereby ambient fluids are accelerated and ejected from the open vessel, thereby propelling the base and the ambient fluids in opposite directions.
20. A craft for transportation in and about fluids comprising: a base, a motive power source, securely attached to the base, and at least a first open vessel, cooperatively connected to the motive power source, wherein the open vessel comprises a section plane, and a convex outer leading surface rigidly integrated to a concave inner trailing surface in a substantially concentric manner to define an open vessel with trailing edges of its opening coplanar with the section plane, whereby upon oscillation in the section plane, in any direction offset to the trailing edges, ambient fluids are accelerated and ejected from the at least a first open vessel, thereby propelling the base and the ambient fluids in opposite directions.
21. The craft of claim 20, further comprising at least a second open vessel, securely attached to the base, whereby the reaction momentum of the motive power source on the base actuates the at least a second open vessel to propel the base.
22. The craft of claim 20 further comprising lubricant cavity provision systems, secured to the base and fluidly connected to the open vessel, whereby a lubricant cavity is coated over the open vessel thereby reducing drag in the ambient fluids.
23. The craft of claim 21 wherein ambient fluids ejected from the at least a first open vessel are directed to the intake of the at least a second open vessel thereby providing looped feedback propulsion enhancement.
24. The craft as recited in claim 20 wherein the base is an aircraft, whereby the ambient fluids accelerated and ejected from the open vessel propel the aircraft to fly.
25. The craft as recited in claim 20, wherein the base is a hybrid aircraft-in-water, whereby the ambient fluids accelerated and ejected from the open vessel propel the hybrid aircraft-in-water to lift off the water thereby reducing drag and therefore increasing propulsion efficiency in the water.
26. The craft as recited in claim 20 wherein the base is a hybrid water and air craft whereby air and water accelerated and ejected from the open vessel enable water based flight and full airborne flight.
27. The craft as recited in claim 20 wherein the base is supported in the ambient fluids by the open vessel.
28. The craft of claim 27 wherein the base is supported in the ambient fluids by the open vessel comprises buoyancy of the open vessel, whereby the base is buoyed.
29. The craft of claim 27 wherein the base is supported in the ambient fluids by the open vessel comprises fluid dynamic forces acting on the open vessel whereby lift is effected.
30. The craft as recited in claim 20 wherein at least a first open vessel cooperatively connected to the motive power source includes a connection rotatable to the base, whereby steering of the craft in the ambient fluids is effected.
31. The craft as recited in claim 20 or 21 wherein propelling the base includes twinned open vessels whereby differential thrusting enables steering of the craft in the ambient fluids.
32. The craft as recited in claim 20 wherein upon oscillation includes actuation by wave power from the ambient fluids, whereby the open vessel is reciprocated.
33. A curved body, for propelling fluids, crafts and harnessing fluid power, having a section plane and comprising: a convex outer leading surface, and a concave inner trailing surface, rigidly integrated to the convex outer leading surface in a substantially concentric manner to define an open vessel with trailing edges of its opening coplanar with the section plane, wherein at least one intake opening is provided through the convex outer leading surface and the concave inner trailing surface, whereby upon oscillation in the section plane, in any direction offset to the trailing edges, ambient fluids are accelerated and ejected from the open vessel, thereby propelling the curved body and the ambient fluids in opposite directions.
34. The curved body of claim 33, wherein the open vessel is a segment of a sphere.
35. The curved body of claim 33, wherein the open vessel is a segment of a cylinder.
36. The curved body of claim 33, wherein the open vessel is a segment of a cylinder with flat end caps.
37. The curved body of claim 33, wherein the open vessel is a segment of a cylinder with spherical end caps.
38. The curved body of claim 33, wherein the open vessel is a segment of a cylinder bent into a toroidal shape.
39. The apparatus of claim 33, wherein the concave inner trailing surface rigidly integrated to the convex outer leading surface in a substantially concentric manner includes radiused trailing edges, whereby ambient fluids ejected from the concave inner trailing surface are redirected towards the convex outer leading surface, thereby causing reverse propulsion.
40. The apparatus as recited in claim 33, further comprising: an actuating member, cooperatively secured to the curved body, whereby motive power is transmitted thereby enabling oscillation of the curved body.
41. The apparatus of claim 33 or 40, further including an impulse plate, securely attached to the concave inner trailing surface of the curved body, whereby energy in moving fluid is converted into a propulsive impulse before ejection from the concave inner trailing surface.
42. The apparatus of claim 33 or 40, further including at least one fin, comprising: a cylindrical head, cooperatively connected to the curved body, and a resilient sheet, cooperatively secured to the cylindrical head, whereby upon oscillation, ambient fluids and the curved body with the fin are propelled in opposite directions and fluid drag is reduced.
43. The apparatus of claim 33 or 40, further comprising lubricant cavity provision systems, fluidly connected to the curved body, whereby a lubricant cavity is coated over the convex outer leading surface of the open vessel, thereby reducing fluid drag.
44. The apparatus of claim 42 wherein the radius of the cylindrical head is blended into the resilient sheet using flexible material.
45. The apparatus of claim 33 wherein surface configuration and mechanical vibration friction-reducing devices are provided on the open vessel whereby the formation of a reduced viscosity boundary layer is promoted thereby reducing drag of the apparatus in the ambient fluids.
46. The apparatus as recited in claim 33, wherein provision of the intake opening reduces the open vessel to a paired assembly of curved plates, with trailing edges and leading edges.
47. The apparatus as recited in claim 46, wherein the distance between the curved plates at the leading edges is less than one time the corresponding distance between the curved plates at the trailing edges, whereby the frontal stagnant pressure zone is mitigated.
48. The apparatus of claim 46 or 47, wherein under partially submerged operation, the open vessel is reduced to the structure of a single curved plate.
49. The apparatus of claim 33 wherein upon oscillation in the section plane comprises electromagnetic actuation.
50. A craft for transportation in and about fluids comprising: a base, a motive power source, securely attached to the base, and at least a first open vessel, cooperatively connected to the motive power source, wherein the open vessel comprises a section plane, and a convex outer leading surface rigidly integrated to a concave inner trailing surface in a substantially concentric manner to define an open vessel with trailing edges of its opening coplanar with the section plane, wherein at least one intake opening is provided through the convex outer leading surface and the concave inner trailing surface, whereby upon oscillation in the section plane, in any direction offset to the trailing edges, ambient fluids are accelerated and ejected from the at least a first open vessel, thereby propelling the base and the ambient fluids in opposite directions.
51. The craft of claim 50 further comprising lubricant cavity provision systems, secured to the base and fluidly connected to the open vessel, whereby a lubricant cavity is coated over the open vessel thereby reducing drag in the ambient fluids.
52. The craft as recited in claim 50 wherein the base is an aircraft, whereby the ambient fluids accelerated and ejected from the open vessel propel the aircraft to fly.
53. The craft as recited in claim 50, wherein the base is a hybrid aircraft-in-water, whereby the ambient fluids accelerated and ejected from the open vessel propel the hybrid aircraft-in-water to lift off the water thereby reducing drag and therefore increasing propulsion efficiency in the water.
54. The craft as recited in claim 50 wherein the base is a hybrid water and air craft whereby air and water accelerated and ejected from the open vessel enable water based flight and full airborne flight.
55. The craft as recited in claim 50 wherein the base is supported in the ambient fluids by the open vessel.
56. The craft of claim 55 wherein the base is supported in the ambient fluids by the open vessel comprises buoyancy of the open vessel, whereby the base is buoyed.
57. The craft of claim 55 wherein the base is supported in the ambient fluids by the open vessel comprises fluid dynamic forces acting on the open vessel whereby lift is effected.
58. The craft as recited in claim 50 wherein at least a first open vessel cooperatively connected to the motive power source includes a connection rotatable to the base, whereby steering of the craft in the ambient fluids is effected.
59. The craft as recited in claim 50 wherein upon oscillation includes actuation by wave power from the ambient fluids, whereby the open vessel is reciprocated.
60. A method of propelling ambient fluids, crafts, and harnessing fluid power, comprising the steps of: cooperatively securing to a base at least a first one of the apparatus of claim 33, and oscillating the at least a first one of the apparatus of claim 33 whereby ambient fluids are accelerated and ejected from the open vessel, thereby propelling the base and the ambient fluids in opposite directions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A complete understanding of the present invention may be obtained by reference to the accompanying drawings, when considered in conjunction with the subsequent, detailed description, in which:
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OSCILLATING PROPULSORDISCLOSURE OF INVENTION
(31) An open vessel made out of a curved body, a segment of a sphere or of a cylinder for example, can propel ambient fluids from its opening, upon reciprocation or oscillation. Such a vessel can be described as comprising a convex outer, leading surface with a first perimeter edge, and a concave inner, trailing surface with a second perimeter edge. The convex outer surface is securely connected to the concave inner surface in a substantially concentric manner to define a vessel with an opening. Upon oscillation, ambient fluids are ejected from the vessel through the opening, inducing an inflow of replacement fluids into the vessel. Ejection of fluids from the vessel generates a thrust force that urges the vessel in a direction opposite that of fluid ejection. The vessel and any attachments to it, for example a base or a craft, can thus be propelled in a direction opposite that of the ambient fluids ejected from the apparatus. The magnitude of the thrust force generated by the oscillating propulsor of this disclosure is positively related to the size of the vessel, the oscillation frequency and the length of the stroke. The geometry of the vessel has a remarkable influence on the magnitude of the thrust force generated upon oscillation; for example, when a 38 mm diameter curved body of spherical profile is oscillated through a 19 mm stroke length at 30 strokes/second, maximum thrust is achieved when the vessel profile approximates that of a hemisphere, as illustrated in
(32) Neutral or positive buoyancy of the apparatus in ambient fluids can be used to eliminate or manage the mechanical and gravitational loads associated with the mass of the apparatus during oscillation; this can be achieved by attaching buoyant materials directly to the propulsor or by double walled, cored construction enclosing a medium whose density is lower than that of the ambient fluid; helium or hydrogen could be used for operation in a gaseous atmosphere for example. Expanded polymer foams such as polystyrene and polyurethane are examples of coring that can be used to achieve a desired buoyancy level in liquid fluids such as water. When not in use, a water based buoyant oscillating propulsor of long stroke could automatically float to the shortest distance from its craft, at the top of stroke position; this would lessen the risk of propulsor damage by collision with obstacles in the water. A vessel in the form of a segment of sphere or cylinder with a cutout or opening, as illustrated in
(33) The size reduction results in reduced thrust. Along the convex surface, cyclic acceleration of ambient fluids contribute to fluid flow into and past the implement. Ambient fluids are admitted into the implement through the sides as shown by curved arrows, in
(34) The apparatus can be held and actuated by hand motion or placed in a guide for actuation; the rocking and rolling motion of a craft to which it is attached may also actuate it. Advantageously, a handling stick, for reciprocating actuation, can be joined to the implement at about the mid-points of the length and the diameter, for example. This construction allows a balanced movement when the assembly is reciprocated up and down or swiveled from side to side. Alternatively, handling sticks may be joined to the ends of the cylinder or to any cylinder location convenient and effective for operation. The sticks can be made out of tubing or bar of metal, polymer or composites; any other material suitable for the context of use can be utilized for construction of the apparatus of this disclosure. Examples of criteria for suitable materials include fatigue and corrosion resistance, durability, ease of fabrication and other characteristics pertinent to the fluid and context of use.
MODES FOR CARRYING OUT THE INVENTION
(35) For purposes of clarity and brevity, features whose function is the same or basically the same will be identified in each FIG. or embodiment by a prefix of the FIG. number the variant feature appears in, followed by the feature number, the feature number being the same for all variants.
Basic EmbodimentsFIGS. 1-4
(36)
(37) Whilst this structure is inherent for constructions that use sheeted materials, such as tubing and spheres, the reason for this distinction will become evident as further embodiments of the oscillating propulsor are disclosed hereafter. This embodiment is designed for hand operation to propel fluids and produce thrust upon reciprocating animation or actuation, as shown in phantom lines; ambient fluids are accelerated and ejected from the curved body 130 at the beginning and end of each stroke, as indicated by straight arrows, to propel the apparatus and the ambient fluids in opposite directions.
(38) Apparatus diameter can be advantageously designed to fit the operator's hands. A strap or handle may be installed for ease of handling. The curved body 130 can also be guided by a sliding mechanism or by an engaging channel, for ease of manual operation. This embodiment can be used as a fluid mixer and could be remotely actuated by electromagnetic fields much like a magnetic stir bar, propeller or the likes; it can also be used as a thruster in boating and swimming, where a buoyancy core can be sandwiched in the space between the convex surface and the concave surface, similar to the pressure chamber 1152 described further in the embodiment of
(39) The trailing edge 13 of the vessel opening is advantageously tapered to a fine edge as localized fluid convection between the convex surface and the opening can result from the reciprocating movement, especially under static conditions; fluid convection is more pronounced with thicker and radiused edges and can be utilized, if desired, to cause a reverse propulsion of fluid flow from the vessel opening and towards the convex leading surface, albeit with a reduction in thrust (
(40) In another embodiment of the oscillating propulsor in
(41) The actuating member 132 is attached to the curved body 130 in a position suitable for animating the curved body 130; examples of attachment to the convex surface and alternatively to the concave surface or both, and to the ends are shown in
(42) In
(43) As illustrated in
(44) As illustrated in
(45) When reduced to minimum length, the embodiment shown in
(46) In
Embodiment Dynamic GeometryFIG. 5
(47) The geometry of the curved body of the oscillating propulsor shows a remarkable influence on the thrust generated upon oscillation in water (
Embodiments with Drag Reduction Attachments and FeaturesFIGS. 6-11
Embodiment Making Use of Hydrophobic Materials
(48) To reduce resistance to movement or drag, the oscillating propulsor surfaces may be coated with or made out of fluid phobic materials. Examples of materials suitable for water applications include polymers, silicon coating, waxes and environmentally safe oils. Advances in nanotechnology have ushered the era of superhydrophobic materials with promises of drag reduction in marine propulsion applications; coating the oscillating propulsor with these superhydrophobic materials could reduce drag and increase efficiency of propulsion.
Embodiments Making Use of Fluid Dynamic Shape to Reduce DragFIGS. 6-6C
(49) In
(50) In another embodiment, the arrangement in
(51) As illustrated in
(52) The actuating member 732 may be fitted with aperture 734 for fastening to a motive power source. In this embodiment the resulting propulsor is essentially a paired assembly of arcuate surfaces or curved plates. In partially submerged operation, this embodiment can be reduced to the structure of a single curved plate that is still capable of propelling fluids, with the advantage of even lower drag.
(53) In the embodiment shown in
(54) Actuating members 7B32, 7C32, 7D32 may be fitted with apertures 7B34, 7C34, 7D34 for fastening to a motive power source such as a reciprocating engine, for example (not shown).
(55) As shown in
(56) For example, a working propulsion fin can be constructed by attaching a 1 mm thick resilient vinyl sheet, 30 cm by 30 cm square, along and normal to the center line of a 30 cm long rod of 1 to 2 cm diameter. The size and thickness of the sheet and dimensions of the rod can be scaled up or down depending on the amount of power available to flex the resilient sheet in the fluid at hand. The angle between the cylindrical head 8A74 and the resilient sheet 8A76 can be filled with a flexible polymer to smoothly blend or fillet the radius of the cylindrical head 8A74 into the resilient sheet 8A76. Actuating member 832, 8A32 may be fitted with aperture 834, 8A34 for fastening to a motive power source.
(57) In addition to drag reduction, the fore fin 844 and the aft fin 846 also provide the advantage of additional thrust, particularly at low travel speeds. Upon oscillation, the cylindrical head 8A74 accelerates ambient fluids, which are further accelerated by the flexed alternating curvatures of the resilient sheet 8A76, as illustrated in phantom lines. Ambient fluids are propelled along direction of arrows shown in
Embodiments Making Use of Lubricant Cavity to Reduce DragFIGS. 9-11
(58) Cavitation over the oscillating propulsor can occur at high oscillation frequencies and travel velocity, for example in water. Alternatively, a lower density fluid or fast moving fluid may be coated over the oscillating propulsor's surfaces to reduce drag in the ambient fluids. The lubricant cavity provision means may be integrated with the propulsor or they may be installed independent of the propulsor, for example on the craft C or the drag reduction member 6C40 previously described for
(59) Alternatively the lubricant cavity supply system could be installed in a fixed position, at the leading tip of a low drag member (
(60) As shown in
(61) Alternatively, as shown in
Promotion of Formation of Lubricant Cavity
(62) The surface of the oscillating propulsor may be configured or constructed to promote natural formation of a reduced viscosity boundary layer of the ambient fluid as provided, for example, by cavitation phenomena in water; examples of such surface construction include sandblasting, dimpling and microstructures that reduce surface friction with ambient fluids. The surface of golf balls and at least one soccer ball, known as the Jabulani, are engineered to reduce drag by means of surface structures like dimples, nibs and ridges. Mechanical vibrations from the motive power source and reciprocating mechanisms can also promote cavitation on the propulsor and the supporting base, reducing drag. It is anticipated that the oscillating propulsor continue to function under supercavitation conditions because admission and acceleration of a high speed volume of fluid into the concave surface before ejection could enable temporary compression of affiliated gases before ejection of same in a forceful expansion.
OperationFIGS. 1, 12-14, 15-19
(63) The apparatus of this disclosure can be operated manually like oars or paddles with the additional advantages of reactive propulsion from up and down stroking as well as swiveling action. Reciprocating displacements of the apparatus accelerate fluid admitted therein before ejecting the same from the trailing concave surface at the beginning and end of each stroke. The ejection of fluid imparts a reactive propulsive momentum to the oscillating propulsor and attachments thereto. Ejection of fluid from the apparatus causes admission of ambient fluid for the next stroke and so on as long as the apparatus is oscillated or reciprocated.
(64) From a static position, thrust may be generated mostly by reaction of the oscillating propulsor to the mass and velocity of fluid ejected; as fluid flow over the oscillating propulsor increases, the momentum of the fluid may also be transmitted to the oscillating propulsor. Thus, as displacement or travel speed increases so does thrust increase; however, the increase in speed is limited by the drag of the oscillating propulsor. Embodiments with drag reduction attachments and features, as previously disclosed, can be used to mitigate this limitation.
(65) For any given fluid and embodiment of the apparatus, the thrust generated is influenced mostly by fluid capacity of the oscillating propulsor, oscillation or stroke frequency, stroke length and displacement velocity. The apparatus may be attached to a craft to provide propulsion for travel. Oscillation of the apparatus can be effected in linear mode, up and down strokes, as depicted in
(66) Alternatively, rotary to reciprocating motion converters can be used with current motors or engines to drive the oscillating propulsor. Examples of useable motion converters include crank mechanisms and Scotch Yoke devices. Electric, fluid driven and wind oscillators may also be used to drive the oscillating propulsor. The actuating member may be guided through bushings, roller guides, channel, or rocker levers as used in some reciprocating saws. For leisure, sports and in general utility applications, motive power can be provided by an operator's muscles (
INDUSTRIAL APPLICABILITY
Fluid Pumps, CraftsWatercrafts, Aircrafts
(67) A general application of the oscillating propulsor is in displacement of fluids, be it in enclosed casings as used for pumps or in the open as used for mixing, aeration of fluids, and ventilation, for examples. Attached to a craft, the apparatus can provide propulsion means for the craft's displacement in and about fluids, travel or transportation, by wave power or motive power on board.
Watercrafts
(68) An example of a watercraft propelled by the apparatus is illustrated in
(69) An alternative multi-prop assembly may be provided by arranging 3 or more propulsors 1220a, 1220b, 1220c on the actuating member 1232: propulsor 1220a is mounted fore of the smaller propulsors 1220b, 1220c so as to feed ejected ambient fluids into the intakes of propulsors 1220b, 1220c. During operation the apparatus also works as an energy harvester like propellers do by converting the energy in fluid flow into mechanical work.
(70) In this embodiment there is also a centrifugal acceleration component caused by the arcuate swivel path; the centrifugal ejection is indicated by the bottommost arrows and it may have a tangential bias, depending on stroke length and frequency. Fluid ejection imparts a reaction propulsive momentum to the oscillating propulsor and attachments thereto. The oscillating propulsor and any attachments thereto are urged or propelled in a direction opposite that of fluid ejection.
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(72) Novel craft concepts, propelled by the oscillating propulsor, are illustrated in
(73) Upon operation, oscillating propulsor 1520c thrusts water rearwards, along indication arrow, urging the craft forward. The reciprocating motion of oscillating propulsor 1520c by motor M1 causes a reactive up and down motion of the base B thus animating front and rear oscillating propulsors 1520a and 1520b, as shown in phantom lines and thrust indication arrows.
(74) Propulsion efficiency is maximized by using both the action of and reaction to the reciprocating motive force. Steering and additional thrust is provided by oscillating propulsor 1520d, reciprocated by motor M2 in a radial swivel, as shown by the arc with two arrows. Alternatively, oscillating propulsor 1520c can be installed rotatable to the base B or a conventional rudder can be installed on the craft, for steering. Recovery of reaction momentum and its application to propulsion is an advantage of this embodiment.
(75) The craft disclosed in
(76) A muscle-powered or man-powered watercraft propelled by means of the apparatus is exemplified in
(77) Alternatively, the upward stroke can be returned by a spring 1670, urging the pedal 1666 upwards. The reciprocating motion of oscillating propulsor 1620c by pedal 1666 and handle 1668 causes a reactive up and down motion of the base B, thus animating front and rear oscillating propulsors 1620a and 1620b. Operation of the oscillating propulsors thrusts water, as indicated by arrows to propel the craft in the opposite direction. Steering can be effected with a conventional rudder or by differential thrusting of twinned oscillating propulsors, as illustrated in
(78) Propulsion efficiency is maximized by using both the action of and the reaction to the reciprocating motive force of the operator. Other actuation systems can be used to operate this embodiment; examples of alternative actuation systems are described in U.S. Pat. No. 2,979,018 to Birdsall (1961) and in U.S. Pat. No. 3,236,203 to Bramson (1966).
Embodiment with Thrust Vectoring or Directional ControlFIGS. 15, 17
(79) In
(80) Alternatively, bearing 1756a can be fixed to the base of motor M to provide a propulsion cum steering assembly, detachable from the craft. This embodiment allows for rotation or steering of the oscillating propulsor 1720 while oscillating, as shown in phantom lines. One or more magnets (not shown) may be attached to the second end of the control arm 1758, opposite similar pole magnets on the guide 1762; this embodiment essentially provides a magnetic bearing that allows operation of the apparatus with reduced mechanical interference and associated noises; the control arm 1758 would be centralized in the U-shaped guide 1762 by mutual repulsion of the opposing magnets.
(81) Other vibration dampening mitigation systems may be applied, for example rubber polymers. Steering can be effected by manual displacement of the steering member 1764 or by electric means like servo motors. Conventional steering devices, for example a steering wheel, can also be coupled to the steering member 1764.
(82) The thrust vectoring system thus described can be used with embodiments of the present disclosure, as required; it can also be used generally for maneuvering and direction control in other oscillating systems and as active braking means when thrust is applied against the direction of travel to slow down or bring a craft to a halt. The control arm 1758 may be consolidated with the lubricant inlet 948 of the embodiment in
Aircraft
(83) Propulsion of an aircraft could be achieved by mounting and operating the apparatus on a craft as illustrated in
(84) This hybrid aircraft-in-water, propelled by water, provides the advantage of high thrust in water with some of the craft's weight supported by water. The lower drag of the craft in the air, compared to a similar size watercraft, is another advantage of this embodiment. The craft would also benefit from Wing-In-Ground effect, a phenomenon known to increase efficiency of lift. The craft of this embodiment could have some autonomy in full airborne flight when sufficient speed is attained to leave water and allow momentary flight by inertia of movement. Alternatively, both air and water propulsion systems could be installed and used as needed to provide a versatile hybrid water and air craft.
(85)
(86) Size and number of the oscillating propulsor 1920, stroke rate and length would have to be sufficient to lift the total weight of the craft, including contents. A twin lever system, as illustrated in
(87) Whilst the example depicted in
(88) Since other modifications and changes varied to fit particular operating requirements and environments will be apparent to those skilled in the art, the invention is not considered limited to the example chosen for purposes of disclosure, and covers all changes and modifications which do not constitute departures from the scope of this invention.
(89) Having thus described the invention, what is desired to be protected is presented in the subsequently appended claims.
7. LIST OF REFERENCE SIGNS
(90) 3 trailing edge 20 oscillating propulsor 30 curved body 32 actuating member 34 aperture 36 flat end cap 38 spherical end cap 40 drag reduction member 42 intake opening 44 fore fin 46 aft fin 48 lubricant inlet 50 lubricant outlet 52 pressure chamber 54 fulcrum 56 bearing 58 control arm 60 motion transmitter 62 guide 64 steering member 66 pedal 68 handle 70 spring 72 impulse plate 74 cylindrical head 76 resilient sheet