Traveling wave propeller, pump and generator apparatuses, methods and systems
10190570 ยท 2019-01-29
Assignee
Inventors
Cpc classification
F03B17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63H1/37
PERFORMING OPERATIONS; TRANSPORTING
F05B2240/97
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
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
F05B2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/92
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
F05B2200/261
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2220/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1823
ELECTRICITY
International classification
F03B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02P9/04
ELECTRICITY
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The TRAVELING WAVE PROPELLER, PUMP AND GENERATOR APPARATUSES, METHODS AND SYSTEMS include force or forces applied to an arc-like flexible sheet-like material to create a deformed crenated strip fin with strained-deformations. The strained-deformations take on a sinusoid-like form that express the internal energy state of the flexible sheet-like material after it has been configured into a crenated strip fin. After being incorporated into a mechanism with couplings that prevent the crenated strip fin from returning to its un-strained state, the strained-deformations persist. Actuators may be used to sequentially rotate vertebrae attached to the fins causing the travel of sinusoid-like deformations along the fins. In a fluid medium, the traveling waves of sinusoidal deformations may exert force on the fluid causing the fluid to move and/or creating thrust. When anchored in moving fluid, hydrodynamic loading of the fins may cause the fins to move and transmit force to an electromagnetic generator or other energy-harnessing transducer to generate electricity.
Claims
1. An articulated mechanism for imparting kinetic energy into a fluid or harnessing energy from a fluid comprising a first article comprised of a sheet-like flexible material to which force is applied to create strained deformations expressing the internal energy state of the article, at least two coupling members connected to the same edge of the first article and to a common member by way of an intermediate transmission assembly, wherein the coupling members, common member and transmission assembly together constitute a physical restraint that maintains the persistence of strained deformations in the first article, wherein the transmission assembly allows the first article three degrees of freedom of motion relative to the common member.
2. A mechanism, comprising: at least one flexible sheet; a transmission assembly coupled to a common member; a plurality of coupling members, wherein each coupling member is coupled at one end to a common edge of the at least one flexible sheet and rotatably at the opposite end to the transmission assembly, wherein each coupling member is rotatably coupled at the opposite end to the transmission assembly, wherein the coupling members, common member and transmission assembly collectively maintain a persistent undulating deformation in the at least one flexible sheet, and wherein operation of the transmission assembly causes the persistent undulating deformation to oscillate as a travelling wave along the length of the at least one flexible sheet.
3. The mechanism of claim 2, wherein the common member comprises a chassis.
4. The mechanism of claim 3, wherein the chassis is coupled by at least one point along its length to at least one harnessing fixture.
5. The mechanism of claim 4, wherein the harnessing fixture is attached to a vessel.
6. The mechanism of claim 5, wherein the vessel comprises a submersible craft.
7. The mechanism of claim 4 wherein the harnessing fixture is secured to a fixed substrate.
8. The mechanism of claim 4, wherein the harnessing fixture is secured to swimmer-wearable equipment.
9. The mechanism of claim 2, wherein each coupling member is rotatably coupled at one end to the common edge of the at least one flexible sheet.
10. The mechanism of claim 9, wherein each coupling member is rotatably coupled at one end to the common edge of the at least one flexible sheet via at least one bearing.
11. The mechanism of claim 2, wherein each coupling member comprises a vertebra plate.
12. The mechanism of claim 11, wherein the vertebra plate comprises a lobed vertebra plate, and the at least one flexible sheet comprises at least two flexible sheets, each of the two flexible sheets being attached to a corresponding lobe of the lobed vertebra plate.
13. The mechanism of claim 2, wherein the at least one flexible sheet comprises a crenated strip.
14. The mechanism of claim 2, wherein each coupling member that is coupled at one end to the common edge of the at least one flexible sheet provides three degrees of freedom of movement for the at least one flexible sheet.
15. The mechanism of claim 2, wherein the plurality of coupling members are coupled, via the transmission assembly, to at least one transducer.
16. The mechanism of claim 15, wherein the at least one transducer comprises an electromagnetic motor.
17. The mechanism of claim 15, wherein the at least one transducer comprises an electromagnetic generator.
18. The mechanism of claim 17, further comprising: at least one battery electrically coupled to the electromagnetic generator and configured to store electrical energy generated by the electromagnetic generator.
19. The mechanism of claim 2, wherein the at least one flexible sheet comprises at least two flexible sheets, and wherein the plurality of coupling members point in a substantially common direction such that the at least two flexible sheets contact a solid substrate whereby the traveling wave of each flexible sheet induces a crawling action.
20. A mechanism, comprising: at least one flexible sheet; a transmission assembly coupled to a common member; a plurality of coupling members, wherein each coupling member is coupled at one end to a common edge of the at least one flexible sheet and at the opposite end to the transmission assembly, wherein each coupling member that is coupled at one end to the common edge of the at least one flexible sheet provides three degrees of freedom of movement for the at least one flexible sheet, wherein the coupling members, common member and transmission assembly collectively maintain a persistent undulating deformation in the at least one flexible sheet, and wherein operation of the transmission assembly causes the persistent undulating deformation to oscillate as a travelling wave along the length of the at least one flexible sheet.
21. The mechanism of claim 20, wherein the common member comprises a chassis.
22. The mechanism of claim 21, wherein the chassis is coupled by at least one point along its length to at least one harnessing fixture.
23. The mechanism of claim 22, wherein the harnessing fixture is attached to a vessel.
24. The mechanism of claim 23, wherein the vessel comprises a submersible craft.
25. The mechanism of claim 22 wherein the harnessing fixture is secured to a fixed substrate.
26. The mechanism of claim 22, wherein the harnessing fixture is secured to swimmer-wearable equipment.
27. The mechanism of claim 20, wherein each coupling member is rotatably coupled at one end to the common edge of the at least one flexible sheet.
28. The mechanism of claim 27, wherein each coupling member is rotatably coupled at one end to the common edge of the at least one flexible sheet via at least one bearing.
29. The mechanism of claim 20, wherein each coupling member is rotatably coupled at the opposite end to the transmission assembly.
30. The mechanism of claim 20, wherein each coupling member comprises a vertebra plate.
31. The mechanism of claim 30, wherein the vertebra plate comprises a lobed vertebra plate, and the at least one flexible sheet comprises at least two flexible sheets, each of the two flexible sheets being attached to a corresponding lobe of the lobed vertebra plate.
32. The mechanism of claim 20, wherein the at least one flexible sheet comprises a crenated strip.
33. The mechanism of claim 20, wherein the plurality of coupling members are coupled, via the transmission assembly, to at least one transducer.
34. The mechanism of claim 33, wherein the at least one transducer comprises an electromagnetic motor.
35. The mechanism of claim 33, wherein the at least one transducer comprises an electromagnetic generator.
36. The mechanism of claim 35, further comprising: at least one battery electrically coupled to the electromagnetic generator and configured to store electrical energy generated by the electromagnetic generator.
37. The mechanism of claim 20, wherein the at least one flexible sheet comprises at least two flexible sheets, and wherein the plurality of coupling members point in a substantially common direction such that the at least two flexible sheets contact a solid substrate whereby the traveling wave of each flexible sheet induces a crawling action.
38. A mechanism, comprising: at least two flexible sheets; a transmission assembly coupled to a common member; a plurality of coupling members, wherein each coupling member is coupled at one end to a common edge of each of the at least two flexible sheets and rotatably at the opposite end to the transmission assembly, wherein the coupling members, common member and transmission assembly collectively maintain persistent undulating deformations in the at least two flexible sheets, wherein operation of the transmission assembly causes the persistent undulating deformations to oscillate as travelling waves along the lengths of the at least two flexible sheets, and wherein the plurality of coupling members point in a substantially common direction such that the at least two flexible sheets contact a solid substrate whereby the traveling waves of the at least two flexible sheets induce a crawling action.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying appendices and/or drawings illustrate various non-limiting, example, innovative aspects in accordance with the present descriptions:
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DETAILED DESCRIPTION
(29) Force or forces 1 are applied to an arc-like flexible sheet-like material 2 to create a deformed crenated strip fin 3 with strained-deformations,
(30) In one embodiment, in its strained state the crenated strip fin 3 is prevented from returning to its relaxed state by being fixed in at least two locations along an inner edge 4 to a first coupling 5 that is fixed to a vertebra plate 7, for example, via a rotation-enabling component which may be a bearing 6a,
(31) In one embodiment the first coupling 5, rotation-enabling component 6, vertebra plate 7 and shaft 8 comprise a transmission assembly 13,
(32) In one embodiment the point of attachment of the crenated strip fin 3 to the transmission assembly 13, 13a, 13b has three degrees of freedom of movement. The actuator 9 induces rotation 14 of the vertebra plate 7 about the axis of the shaft 8. Since in one embodiment the vertebra plate 7 is flexible in the direction 15 parallel to the axis of the shaft 8, the end of the vertebra plate 7 where it is fixed to the rotation-enabling component 6 is able to shift 15 in a direction parallel to the axis of the shaft 8. The rotation-enabling component 6 allows the first coupling 5 to at least partially rotate 16 about an axis 17 perpendicular to the shaft 8,
(33) In one embodiment, the vertebra plate 7 may be rigid and motion of the transmission assembly 13, 13b in a direction 15 parallel to the direction of the axis of the shaft 8 may be facilitated by a bearing track, sleeve bearings 17a and/or the like,
(34) The central controller 12 induces the actuators 9 to rotate the vertebra plates 7 clockwise and counterclockwise in a sequence that causes a traveling wave to move along the crenated strip fin 3. When the mechanism in placed in a fluid medium,
(35) The central controller 12 and battery 11 or other power source may be placed, e.g., inside the common member 10 which in some implementations may be water tight or air tight. One fin, or two fins
(36) The mechanism illustrated in
(37) In another implementation, the mechanism described above and illustrated in
(38) In another embodiment, the vertebra plate 7 has two or more lobes that may be evenly-spaced and may be rotationally symmetrical about the axis of the shaft 8. A three-lobed vertebra plate 24 is shown for example in
(39) The transmission assembly 13, 28,
(40) In another embodiment, one or more harnessing fixtures 22 may be added at a location or locations on the chassis 10, 25, so that the mechanism may be fixed to another body or to an immovable object or substrate 23. In embodiments where the other body 20 is a vessel, such as a boat, submersible or lighter-than-air craft,
(41) In another embodiment, the actuators 9 are electromagnetic and/or other transducers capable of energy harnessing. In such an embodiment, when the harnessing fixture 22 is attached to an immovable object or substrate 23, ambient fluid with directional motion may cause the deformations of the crenated strips 3 to move in a traveling wave in the direction of fluid motion. Kinetic energy from the moving fluid is transferred to the crenated strip 3 and may be converted into electrical energy via the actuators 9. In one embodiment the energy may be stored in a battery 11,
(42) In another embodiment the common member 10 is a chassis-like structure 29 to which the actuators 9 are fixed,
(43) In one implementation the transmission assembly 33,
(44) In one embodiment,
(45) In another embodiment with two crenated strip fins 3,
(46) Another implementation utilizes two pairs of crenated strip fins 3,
(47) In another embodiment
(48) In another embodiment, the transmission assembly 13, 44 may be coupled to two or more crenated strip fins 3 via a lobed vertebra plate 49 with more than one crenated strip fin 3 attachment to the same lobed vertebra plate 49, to create a lobed transmission assembly 50 with more than one fin attached,
(49) In another embodiment, the mechanism may be attached via one or more harnessing fixtures 22 to a body 20, to provide thrust to the body 20. The body may be a sub-sea vessel, surface craft, or the body part of a person swimming or diving in water, or the body 20 may be attached to equipment worn by a person swimming or diving,
(50) In one generator implementation, the common member 10, 25 may be fixed to a harnessing fixture 22 which is fixed to an immovable object or substrate 23,
(51) It is to be understood that the implementations described herein facilitate significant flexibility and that many changes, modifications, variations and other uses and applications of the described implementations are possible. All such changes, modifications, variations and other uses and applications which do not depart from the spirit and scope of the invention are deemed to be covered by the implementations described herein and variants thereof.