System for producing energy through the action of waves

Information

  • Patent Grant
  • 9944353
  • Patent Number
    9,944,353
  • Date Filed
    Tuesday, June 4, 2013
    11 years ago
  • Date Issued
    Tuesday, April 17, 2018
    6 years ago
  • Inventors
  • Original Assignees
  • Examiners
    • Wiest; Anthony D
    Agents
    • Grossman, Tucker, Perreault & Pfleger, PLLC
Abstract
A hull that is part of a system for producing energy through the action of waves. The hull's shape, dimension and orientation make the system less costly and increase the energy provided by the system.
Description
FIELD OF THE INVENTION

The present invention relates to a system for producing energy through the action of waves. More particularly, it relates to a ship's hull that constitutes part of, or contains, a system for producing energy through the action of waves.


BACKGROUND OF THE INVENTION

There are numerous examples in the art of systems and methods for producing energy through the action of waves on ships' hulls and other floating platforms (collectively, herein “hulls”). For example, U.S. Patent Publication No. US-2009-0160191-A1, which is incorporated herein by reference, describes a system for producing electricity through the action of waves on a hull. A second movable mass is carried by and movable relative to the hull, a first movable, the second movable mass creates kinetic energy as a result of varying its position relative to the hull. A mechanism then converts the kinetic energy of the second mass moving relative to the first mass into electricity in a preferred embodiment. In this example, the hull is an integral part of the system for producing energy.


In other examples of systems for producing energy through the action of waves, hulls merely carry, or contain, the system, Herein, a hull that is an integral part of a system for producing energy through the action of waves, or merely carries or contains such a system, will be referred to as part of the system for producing energy through the action of waves.


Many parts of these systems for producing energy through the action of waves are described in detail. However, little attention, if any, is paid to hulls that are part of these systems even though the shape, dimension and orientation of the hulls may significantly affect both the costs of producing the systems and the amount of energy provided by the systems.


It is a goal of the present invention to produce hulls to reduce the costs of producing systems for the production of energy through the action of waves and to increase the energy produced by the systems.


SUMMARY OF THE INVENTION

The present invention is hulls that are part of systems for producing energy through the action of waves. The hulls' shapes, dimensions and orientations make the systems less costly and increase the energy produced by the systems.


These aspects of the invention are not meant to be exclusive and other features, aspects, and advantages of the present invention will be readily apparent to those of ordinary skill in the art when read in conjunction with the following description, appended claims, and accompanying drawings.





BRIEF DESCRIPTION OF THE DRAWINGS

These and other features and advantages of the present invention will be better understood by reading the following detailed description of embodiments, taken together with the drawings wherein:



FIG. 1 is a schematic view of wave periods;



FIG. 2 is a table showing wave lengths and wave frequencies;



FIG. 3 is a cross-section of a hull;



FIG. 3A is a cross-section of a hull;



FIG. 4 is a schematic view of a water plane;



FIG. 5 is a schematic view of tuned elliptical hulls;



FIG. 5A is a schematic view of a hull with external ballast retaining means;



FIG. 6 is a schematic view of the orientation of a single hull;



FIG. 7 is a schematic view of the orientation of another single hull;



FIG. 8 is a schematic view of the orientation of multiple hulls connected by trusses;



FIG. 9 is a schematic view of the orientation of multiple hulls connected to a stationary mooring line and a winch line;



FIG. 10 is a schematic view of the orientation of multiple hulls connected to a stationary mooring line and multiple winch lines;



FIG. 11 is a schematic view of a phase array of multiple hulls;



FIG. 12 is a graph of power produced versus time for a single hull;



FIG. 13 is a schematic view of a phase array of two hulls;



FIG. 14 is a graph of power produced versus time for two hulls;



FIG. 15 is a schematic view of one embodiment of a phase array;



FIG. 16 is a schematic view of another embodiment of a phase array;



FIG. 17 is a schematic view of another embodiment of a phase array;



FIG. 18 is a schematic view of another embodiment of a phase array;



FIG. 19 is a schematic view of another embodiment of a phase array;



FIG. 20 is a schematic view of another embodiment of a phase array;



FIG. 21 is a schematic view of another embodiment of a phase array; and



FIG. 22 is a schematic view of another embodiment of a phase array.





DETAILED DESCRIPTION OF EMBODIMENTS

The present invention is a hull constituting part of a system for producing energy through the action of waves. The other parts of the system may be parts of the system described in U.S. Patent Publication US-2009-0160191-A1 or any other system for producing energy through the action of waves.


A preferred embodiment of the present invention is designed to reduce manufacturing costs. Ocean waves can be divided into two groups based on their frequencies: one group contains waves with frequencies centered around 9 sec. (medium frequency) and one group contains waves with frequencies centered around 12 sec. (long frequency). As shown in FIG. 1, a 9 sec. wave has a one-half wavelength, the distance from a peak to an adjacent trough of 207 ft. and a 12 sec. wave has a one-half wavelength of 368 ft. The optimum length of a hull is between one-quarter and three-quarters of a wavelength. Here, as shown in FIG. 2, the optimum length of a hull to be used for both 9 sec. and 12 sec. waves would be longer than one-quarter of a wavelength of a 12 sec. or long wave, 184 ft., and shorter than three-quarters of a wavelength of a 9 sec. or medium wave, 311 ft. A preferred embodiment has a hull length of between 200 and 280 feet.


As shown in FIG. 3, a cross-section 345 of a hull in another preferred embodiment is an ellipse having a cross-section with a long axis that is vertical 346 of 75 ft. and a short axis that is horizontal 349 of 53 ft. The curved walls of the ellipse cause it to have greater strength than structures with straight sections of wall. This, in turn, allows the use of thinner, less expensive walls.


In addition, this elliptical shape is optimized for displacement and water plane to be self-tuning to multiple wave frequencies ranging from 7 sec. to 15 sec. Other cross-section geometries, such as a diamond shape, as shown in FIG. 3A, that are similar to an ellipse in increasing or decreasing waterplane as the hull pitches or heaves can also be used. The elliptical geometry of the hull is used to tune the phase of the hull to wave lengths via changes to the waterplane, which is the plane formed by the intersection of the hull and the waterline, as shown in FIG. 4. As shown in FIG. 5, as the waterplane of the ellipse increases or decreases for a given moment of inertia, the hull becomes stiffer or softer, tuning it to higher or lower frequency waves. As the waterplane increases and the hull becomes stiffer 571, it is tuned to higher frequency waves, and as the waterplane decreases and the hull becomes softer 572, it is tuned to lower frequency waves as it pitches and heaves.


The draft of the ellipse determines the static waterplane of the hull. As the draft increases, the waterline rides higher on the ellipse 572, which then has a smaller waterplane, which softens the hull. As the draft decreases and the waterline rides closer to the geometric horizontal centerline of the ellipse 571, the waterplane of the hull increases, which stiffens the hull.


In addition, as the moment of inertia of a hull increases, the hull can be tuned to longer and longer wave frequencies. By adding mass externally at the bow or stern of the hull, the moment of inertia of the hull increases without adding additional volume to the hull. The relocation of the additional mass is much less expensive than adding volume to the hull to accommodate more mass needed to create a similar moment of inertia if the mass were added within the hull.


The addition or subtraction of additional mass, located externally at the bow and stern of the hull, also increases or decreases the displacement of the hull, which, in turn, increases or decreases the moment of inertia of the hull, without adding volume to the hull, which, in turn, tunes the phase of the hull to longer or shorter wave periods, respectively.


In another preferred embodiment, as shown in FIG. 5A, a hull 501 has an external ballast retaining means 502 at its bow 503, which can also be at its stern (not shown). The ballast retaining means can consist of a hook 502 for hanging modular ballast 504 such as blocks of concrete or sheets of metal or cages into which such ballast can be placed, or other retaining means known to those skilled in the art. The modular ballast is added to, or subtracted from, the ballast retaining means. The addition or subtraction of such ballast increases or decreases hull length, displacement and moment of inertia, respectively, to tune the phase of the hull to operate in phase with higher frequency or lower frequency waves and increase power generation.


A typical hull 210, as shown in FIG. 6, has a greater moment of inertia along the line 211 from bow 212 to stern 213 than the moment of inertia along the line 214 from port 215 to starboard 216. This will result in the hull turning so that the line 211 from bow 212 to stern 213 is perpendicular to the direction 217 of the waves 218, causing the hull to roll from port to starboard. It should be noted that, as used herein, the direction of the wind is parallel to the direction of the waves and perpendicular to the wavefront.


In order to build a hull that will orient itself so that the line from bow to stern is parallel to the direction of the waves, the moment of inertia along the line from port to starboard must be increased so that it is greater than the moment of inertia along the line from bow to stern. This has been done in the prior art by increasing the dimension of the hull along the line 220 from port 221 to starboard 222, as shown in FIG. 7. However, the cost of materials for such a hull and the cost of manufacturing and transporting it are significant.


In a preferred embodiment, as shown in FIG. 8, multiple hulls (here two but more than two can be used) 303, 304 are held in position parallel to each other by simple trusses 305. The trusses hold the hulls apart such that the first hull is closest to the second hull between the starboard side of the first hull and the port side of the second hull. The distance between the hulls 306 is chosen, in part, so that the moment of inertia along the line 307 from the port side of the left-most hull to the starboard side of the right-most hull exceeds the moment of inertia along the line 308 from the bow to the stern of a hull. This will result in the multiple hulls structure orienting itself so the line 308 from bow to stern is parallel to the direction 310 of the waves 311.


In another preferred embodiment, as shown in FIG. 9, multiple hulls 320-329 are attached to a stationary mooring, which can be either a mooring line 330 with ends attached to buoys 331 and 332 or individual stationary moorings for each hull (not shown). The multiple hulls 320-329 are also attached to a winch line 333 with ends attached to winches 334 and 335 in buoys 331, 332. As waves change direction, the winches 334 and 335, by moving the winch line from one winch to the other, actively orient the hulls to the wave direction so that the line 336 from the stern 338 to the bow 337 of a hull, or the direction in which the hull is headed, is parallel to the direction 339 of a wave 340. A string mooring, excluding the active winch line, can also be used to moor hulls with trusses, as described above, that are self-orienting. In another embodiment, as shown in FIG. 10, multiple hulls 520-529 are attached to a stationary mooring, which can be either a mooring line 530 with ends attached to buoys 531-532 or an individual stationary mooring for each hull (not shown). A winch 540-549 can be attached to each individual 520-529 hull with winch lines 560 having one end attached to the winch and one end attached to the stationary mooring. Each hull winch 540-549, by moving an individual winch line 550-568, can actively orient each individual hull 520-529 so that the line from the stern to the bow of the hull, or the direction in which the hull is headed, is parallel to the direction of a wave.


In another preferred embodiment, multiple hulls that are part of a system to produce electricity through the action of waves are arranged in a phase array as shown in FIG. 11. The purpose of the phase array is to address the problem of the intermittent nature or granularity, as described below, of the electricity produced by one or more independent hulls.


With one hull, electricity is produced while a wave is acting on the hull. However, no electricity is produced during the period from one wave ceasing to act on the hull to the next wave beginning to act on the hull. The electricity produced is granular, as shown in FIG. 12, for waves with peaks 10 secs. apart. Such granular electricity cannot be transmitted directly to commercial electric grids but must be stored in batteries or other costly storage devices, adding to the expense of producing the electricity.


The solution is to orient multiple hulls so that the peak of a first wave in a series of waves is acting on a second when the peak of a second wave is not acting on the first hull. For example, if two hulls 401, 402 are moored by mooring lines 403, 404 in a phase array 400, as shown in FIG. 13, the peak of a wave in a series of waves traveling in direction 405 with peaks 10 secs. apart acts on hull 401 first and 5 seconds later on hull 402. In this phase array, as shown in FIG. 14, the granularity of electricity 406 produced, which is a combination of the electricity produced by hulls 401 and the electricity produced by hull 402, begins to be smoothed out. With a larger number of hulls arrayed appropriately the aggregate total of the electricity produced by all the hulls loses its graininess and the need for costly storage devices goes away.


In another preferred embodiment, shown in FIG. 11, multiple hulls 410-419 are attached to mooring lines 420, 421, the ends of which form a right array angle 422 to form phase array 424. The phase array allows the hulls 410-419 to be moved so that waves of different frequencies or waves coming from different directions, in this embodiment +/−20°, will still produce electricity from hulls 410-419 that is not granular. For example, if the time between wave peaks increases, the distance 423 from the bow of one hull 411 to the bow of another hull 412 can be increased by moving the hulls apart on mooring line 420. Also, the array angle 402 can be decreased, in effect increasing the distance from the bow of one hull to the bow of another hull.


Other mooring line configurations in other phase arrays are shown in FIGS. 15-22 as examples. In FIG. 15 the ends of the mooring lines 601, 602 form a 90° angle, which can be increased or decreased to change the distance between the bow of one hull on one of the mooring lines to the bow of another such hull. In FIG. 16, the mooring lines 601, 602 do not intersect so they can be moved perpendicular to the direction of the wind to take into account changes in wind direction. In FIG. 17, the mooring lines 601, 602 do not intersect so that one or both can be moved parallel to the general direction of the wind.


In FIG. 18 the mooring lines 601, 602 each form a different angle with a line parallel to the general direction of the wind. Each of those angles can be increased or decreased. In FIG. 19 the mooring lines 601, 602 are of different lengths. The lengths of each of the mooring lines can be increased or decreased. In. FIG. 20, the hulls along one mooring line 601 can be spaced apart or the entire mooring line can be moved.


In FIG. 21 there are multiple phase arrays. Each one consists of two mooring lines 601, 602 with ends meeting at a 90° angle. The phase arrays can be moved closer together or further apart in the direction perpendicular to the general direction of the wind. In FIG. 22, there are multiple phase arrays. Again, each one consists of two mooring lines 601, 602 with ends meeting at a 90° angle. The phase arrays can be moved closer together or further apart in the direction parallel to the general direction of the wind.


While the principles of the invention have been described herein, it is to be understood by those skilled in the art that this description is made only by way of example and not as a limitation as to the scope of the invention. Other embodiments are contemplated within the scope of the present invention in addition to the exemplary embodiments shown and described herein. Modifications and substitutions by one of ordinary skill in the art are considered to be within the scope of the present invention.

Claims
  • 1. A system for producing energy through the action of waves comprising, a hull having a bow and stern, wherein at least a portion of the hull has a cross-section such that a static waterplane of the hull increases or decreases as a draft of the hull decreases or increases, respectively;at least one system to produce electricity from the action of waves and resulting pitching movement of the hull, wherein at least a portion of the at least one system is secured to the hull; anda system to tune the pitching of the hull relative to hydraulic forces of the waves to increase energy generated by the system to produce electricity, wherein: in response to the frequency of the wave decreasing and a wave period increasing, the system to tune is configured to cause the draft of the hull to increase and the static waterplane of the hull to decrease; andin response to the frequency of the wave increasing and the wave period decreasing, the system to tune is configured to cause the draft of the hull to decrease and the static waterplane of the hull to increase.
  • 2. The system for producing energy through the action of waves of claim 1, wherein the hull has an elliptical cross-section having a long axis and a short axis wherein the long axis is vertical and the short axis is horizontal.
  • 3. The system for producing energy through the action of waves of claim 1, wherein the system to tune the hull comprises a controller and one or more sensors configured output a signal representative of the wave height.
  • 4. The system for producing energy through the action of waves of claim 1, wherein the hull has a generally diamond shaped cross-section.
  • 5. The system for producing energy through the action of waves of claim 1, wherein the hull has a length extending between the bow and the stern and the length of the hull is between 200 and 280 feet.
  • 6. The system for producing energy through the action of waves of claim 1, wherein the hull has a length extending between the bow and the stern that is between one quarter and three quarters of a length of the wave frequency.
  • 7. The system for producing energy through the action of waves of claim 1, further comprising: a bow external modular ballast;a stern external modular ballast; andan external bow ballast hanger and an external stern ballast hanger disposed at the bow and the stern for retaining the bow and the stern external modular ballast, respectively.
  • 8. A system for producing energy through the action of waves comprising, a hull having a bow and stern, wherein at least a portion of the hull has a cross-section such that a static waterplane of the hull increases or decreases as a draft of the hull decreases or increases, respectively;a generator secured to the hull, the generator to produce electricity from a pitching movement of the hull induced by the action of waves;a controller to monitor wave frequency and to tune the pitching of the hull relative to hydraulic forces of the waves to increase electricity generated by the generator, wherein: in response to the frequency of the wave decreasing and a wave period increasing, the controller is configured to cause the draft of the hull to increase such that a static waterplane of the hull decreases; andin response to the frequency of the wave increasing and the wave period decreasing, the controller is configured to cause the draft of the hull to decrease such that the static waterplane of the hull increases.
  • 9. The system for producing energy through the action of waves of claim 8, wherein the hull has an elliptical cross-section having a long axis and a short axis wherein the long axis is vertical and the short axis is horizontal.
  • 10. The system for producing energy through the action of waves of claim 8, wherein the hull has a generally diamond shaped cross-section.
  • 11. The system for producing energy through the action of waves of claim 8, wherein the hull has a length extending between the bow and the stern and the length of the hull is between 200 and 280 feet.
  • 12. The system for producing energy through the action of waves of claim 8, wherein the hull has a length extending between the bow and the stern that is between one quarter and three quarters of a length of the wave frequency.
  • 13. The system for producing energy through the action of waves of claim 8, further comprising an external bow ballast hanger and an external stern ballast hanger disposed at the bow and the stern for retaining a bow and a stern external modular ballast, respectively.
  • 14. A system for producing energy through the action of waves comprising, a hull having a bow and stern, wherein a top portion of the hull has a cross-section that decreases as a draft of the hull increases;an electrical generator secured to the hull to produce electricity from a pitching movement of the hull induced by the action of waves;a controller to monitor wave frequency and to tune the pitching of the hull relative to hydraulic forces of the waves to increase electricity generated by the electrical generator, wherein: in response to the frequency of the wave decreasing and a wave period increasing, the controller is configured to cause the draft of the hull to increase such that a static waterplane of the hull decreases; andin response to the frequency of the wave increasing and the wave period decreasing, the controller is configured to cause the draft of the hull to decrease such that the static waterplane of the hull increases.
  • 15. The system for producing energy through the action of waves of claim 14, wherein the hull has an elliptical cross-section having a long axis and a short axis wherein the long axis is vertical and the short axis is horizontal.
  • 16. The system for producing energy through the action of waves of claim 14, wherein the hull has a generally diamond shaped cross-section.
  • 17. The system for producing energy through the action of waves of claim 14, wherein the hull has a length extending between the bow and the stern and the length of the hull is between 200 and 280 feet.
  • 18. The system for producing energy through the action of waves of claim 14, wherein the hull has a length extending between the bow and the stern that is between one quarter and three quarters of a length of the wave frequency.
  • 19. The system for producing energy through the action of waves of claim 14, further comprising an external bow ballast hanger and an external stern ballast hanger disposed at the bow and the stern for retaining a bow and a stern external modular ballast, respectively.
  • 20. The system for producing energy through the action of waves of claim 19, further comprising the bow and the stern external modular ballast.
  • 21. A method for producing energy through the action of waves on a hull, the method comprising: adjusting the pitching motion of the hull by adjusting an amount of ballast of the hull to adjust a draft of the hull based on, at least in part, a frequency of the waves, at least a portion of the hull having a cross-section such that a static waterplane of the hull increases or decreases as a draft of the hull decreases or increases, respectively, wherein adjusting the pitching motion of the hull by adjusting the amount of ballast of the hull comprises: increasing the draft of the hull and decreasing the static waterplane of the hull in response to the frequency of the wave decreasing; anddecreasing the draft of the hull and increasing the static waterplane of the hull in response to the frequency of the wave increasing; andgenerating electricity from the action of waves and resulting pitching movement of the hull.
  • 22. The method of claim 21, wherein the hull has a length that is between one quarter and three quarters of a wave length.
  • 23. The method of claim 21, further comprising adjusting an amount of ballast to alter a moment of inertia of the hull and to tune a phase of the hull to operate in phase with the frequency of the waves.
  • 24. The method for producing energy through the action of waves of claim 21, wherein the hull has an elliptical cross-section having a long axis and a short axis wherein the long axis is vertical and the short axis is horizontal.
  • 25. The method for producing energy through the action of waves of claim 21, wherein the hull has a generally diamond shaped cross-section.
  • 26. The method for producing energy through the action of waves of claim 21, wherein the hull has a length of between 200 and 280 feet.
  • 27. The method for producing energy through the action of waves of claim 21, wherein generating electricity from the action of waves and resulting movement of the hull comprises: moving a second movable mass that is carried by relative to a first movable mass to create kinetic energy as a result of varying its position relative to the first movable mass, wherein the first movable mass is the hull; andconverting the kinetic energy of the second mass moving relative to the first mass into electricity.
CROSS-REFERENCE TO RELATED APPLICATIONS

The present application claims the benefit of Provisional Patent Application Ser. No. 61/655,095 filed Jun. 4, 2012, which is incorporated herein by reference.

US Referenced Citations (94)
Number Name Date Kind
861997 Luck Jul 1907 A
1448029 Larry et al. Mar 1923 A
1545504 Lilley Jul 1925 A
2170481 Morrison et al. Aug 1939 A
3021864 Young Feb 1962 A
3173271 Wittgenstein Mar 1965 A
3204110 Masuda Aug 1965 A
3717103 Guderjahn Feb 1973 A
3837287 Lichtenberg Sep 1974 A
3870893 Mattera Mar 1975 A
4009396 Mattera et al. Feb 1977 A
4048686 Ege Sep 1977 A
4063430 Lamy Dec 1977 A
4123667 Decker Oct 1978 A
4132084 Francisco-Arnold Jan 1979 A
4183697 Lamy Jan 1980 A
4207739 Scarpi Jun 1980 A
4260901 Woodbridge Apr 1981 A
4266143 Ng May 1981 A
4271550 Joubert et al. Jun 1981 A
4274757 Francisco-Arnold Jun 1981 A
4332510 Ferrentino Jun 1982 A
4352023 Sachs et al. Sep 1982 A
4364715 Bolding Dec 1982 A
4392061 Dubois et al. Jul 1983 A
4418286 Scott Nov 1983 A
4423334 Jacobi et al. Dec 1983 A
4438343 Marken Mar 1984 A
4497173 Gillilan Feb 1985 A
4704049 Vilain Nov 1987 A
4719158 Salomon Jan 1988 A
4781023 Gordon Nov 1988 A
5256093 Balstad Oct 1993 A
5347186 Konotchick Sep 1994 A
5552657 Epstein et al. Sep 1996 A
5710464 Kao et al. Jan 1998 A
5727496 Welch, Jr. Mar 1998 A
6003458 Valliere Dec 1999 A
6435126 Burke Aug 2002 B1
6647716 Boyd Nov 2003 B2
6700217 North et al. Mar 2004 B1
6831373 Beaston Dec 2004 B1
7003947 Kanki Feb 2006 B2
7105939 Bednyak Sep 2006 B2
7140180 Gerber et al. Nov 2006 B2
7239038 Zimmerman et al. Jul 2007 B1
7288860 Cheung et al. Oct 2007 B2
7339285 Negron Crespo Mar 2008 B2
7755224 Beane Jul 2010 B2
7989975 Clement et al. Aug 2011 B2
8004105 Whittaker et al. Aug 2011 B2
8237304 Dehlsen et al. Aug 2012 B2
8264093 Moore Sep 2012 B2
8519557 Beane Aug 2013 B2
8701403 Beane Apr 2014 B2
8713928 Gregory May 2014 B2
8766470 Beane Jul 2014 B2
8915078 Beane Dec 2014 B2
20020157398 Boyd Oct 2002 A1
20030116971 Likitcheva Jun 2003 A1
20030183149 Jessen et al. Oct 2003 A1
20040007880 French Jan 2004 A1
20040134190 Kanki Jul 2004 A1
20040179958 Miyake Sep 2004 A1
20060208839 Taylor Sep 2006 A1
20070048086 Thorsbakken Mar 2007 A1
20070116565 Beane May 2007 A1
20070137195 Tayla et al. Jun 2007 A1
20070228736 Smushkovich Oct 2007 A1
20070261404 Stewart et al. Nov 2007 A1
20080029014 Giles Feb 2008 A1
20080038061 Morse Feb 2008 A1
20080224472 Bean Sep 2008 A1
20090160191 Beane Jun 2009 A1
20090189396 Terao Jul 2009 A1
20090309366 Moore Dec 2009 A1
20090313988 Cassagnol et al. Dec 2009 A1
20090315431 Rastegar Dec 2009 A1
20090322080 Ruiz Minguela et al. Dec 2009 A1
20100013231 Bolin Jan 2010 A1
20100107627 Morgan May 2010 A1
20100123313 Hobdy May 2010 A1
20100140942 Pitre Jun 2010 A1
20100320759 Lightfoot et al. Dec 2010 A1
20110042949 Laz et al. Feb 2011 A1
20110089689 Gregory Apr 2011 A1
20110158753 Ohkubo et al. Jun 2011 A1
20110162572 Chamberlin Jul 2011 A1
20110185719 Beane Aug 2011 A1
20110187101 Beane Aug 2011 A1
20110304144 Dehlsen et al. Dec 2011 A1
20130067903 Murtagh et al. Mar 2013 A1
20130319309 Beane Dec 2013 A1
20140162509 Harrington Jun 2014 A1
Foreign Referenced Citations (50)
Number Date Country
652718 Feb 1991 AU
1086878 May 1994 CN
1127844 Jul 1996 CN
2755302 Feb 2006 CN
1761815 Apr 2006 CN
201186160 Jan 2009 CN
201196138 Feb 2009 CN
101460733 Jun 2009 CN
101490341 Jul 2009 CN
201381930 Jan 2010 CN
102171443 Aug 2011 CN
202289436 Jul 2012 CN
3224894 Jan 1984 DE
10241854 Apr 2003 DE
102006044563 Apr 2008 DE
2171264 Apr 2010 EP
WO 2011089280 Jul 2011 ES
27547 Jul 1924 FR
2375463 Jul 1978 FR
2480361 Oct 1981 FR
2504986 Nov 1982 FR
2523654 Sep 1983 FR
2911927 Aug 2008 FR
1562174 Mar 1980 GB
S55109771 Aug 1980 JP
S5634970 Apr 1981 JP
S63255571 Oct 1988 JP
2002339857 Nov 2002 JP
2009216076 Sep 2009 JP
2011220283 Nov 2011 JP
9402887 Mar 1996 SE
587570 Jan 1978 SU
1363393 Dec 1987 SU
WO9100962 Jan 1991 WO
WO9747516 Dec 1997 WO
WO 0071891 Nov 2000 WO
WO200071891 Nov 2000 WO
WO200223039 Mar 2002 WO
WO2002061277 Aug 2002 WO
WO2006040341 Apr 2006 WO
WO2007056282 May 2007 WO
WO2008000314 Jan 2008 WO
WO2008006145 Jan 2008 WO
WO2008122867 Oct 2008 WO
WO2008149132 Dec 2008 WO
WO2009013766 Jan 2009 WO
WO2010034888 Apr 2010 WO
WO2010071706 Jun 2010 WO
WO2011089280 Jul 2011 WO
WO2012018393 Feb 2012 WO
Non-Patent Literature Citations (76)
Entry
Oskar Danielsson, “Design of a Linear Generator for Wave Energy Plant,” Master's Thesis—Engineering Physics Programme at Uppsala University School of Engineering, Jan. 22, 2003.
AU Patent Examination Report No. 1 dated Apr. 11, 2014 in corresponding Australian Patent Application No. 2009327499.
CA Examination Search Report dated Oct. 27, 2015 in corresponding Canadian Patent Application No. 2,750,850.
CL Office Action dated May 15, 2014 in corresponding Chilean Patent Application No. 1432-2011. Concise explanation of relevancy provided on p. 2.
CL Office Action dated Jul. 15, 2013 in corresponding Chilean Patent Application No. 1432-2011. Concise explanation of relevancy provided on p. 2.
CN Office Action dated Jan. 15, 2014 in corresponding Chinese Patent Application No. ZL200980156881.3.
CN Office Action dated Jun. 5, 2014 in corresponding Chinese Patent Application No. ZL200980156881.3.
CN Office Action dated Jul. 4, 2013 in corresponding Chinese Patent Application No. ZL200980156881.3.
EP Search Report dated Mar. 28, 2013 in corresponding European Patent Application No. 09833786.8.
EP Examination Report dated Feb. 29, 2016 in corresponding European Patent Application No. 09833786.8.
JP Office Action dated Oct. 8, 2013 in corresponding Japanese Patent Application No. 2011-542158.
KR Office Action dated Mar. 9, 2016 in corresponding Korean Patent Application No. 10-2011-7016250.
KR Office Action dated Sep. 7, 2015 in corresponding Korean Patent Application No. 10-2011-7016250.
MX Office Action dated Oct. 15, 2013 in corresponding Mexican Patent Application No. MX/a/2011/006408.
US Office Action dated Apr. 28, 2011 in corresponding U.S. Appl. No. 12/316,772.
US Office Action dated Nov. 29, 2011 in corresponding U.S. Appl. No. 12/316,772.
International Search Report and Written Opinion dated Apr. 13, 2010 in corresponding PCT Patent Application No. PCT/US09/59531.
PE Office Action dated Sep. 25, 2015 in corresponding Peruvian Patent Application No. 001215-2011. Concise explanation of relevancy provided on p. 2.
AU Patent Examination Report No. 1 dated Jan. 16, 2015 in corresponding Australian Patent Application No. 2011286468.
CL Office Action dated Jan. 11, 2016 in corresponding Chilean Patent Application No. CL 328-2013. Concise explanation of relevancy provided on p. 2.
CL Office Action dated Aug. 7, 2015 in corresponding Chilean Patent Application No. CL 328-2013. Concise explanation of relevancy provided on p. 2.
CN Office Action dated Feb. 28, 2015 in corresponding Chinese Patent Application No. 201180045154.7.
EP Search Report dated Dec. 10, 2015 in corresponding European Patent Application No. 11814908.7.
ID Office Action dated Oct. 6, 2015 in corresponding Indonesian Patent Application No. W00201300905. Concise explanation of relevancy provided on pp. 2-3.
JP Office Action dated Feb. 16, 2016 in corresponding Japanese Patent Application No. 2013-523153.
JP Office Action dated Apr. 28, 2015 in corresponding Japanese Patent Application No. 2013-523153.
MX Office Action dated Mar. 18, 2015 in corresponding Mexican Patent Application No. MX/a/2013/001283.
US Office Action dated Sep. 19, 2012 in corresponding U.S. Appl. No. 12/850,340.
International Search Report and Written Opinion dated Jan. 27, 2012 in corresponding PCT Patent Application No. PCT/US2011/001368.
AU Patent Examination Report No. 1 dated Mar. 5, 2014 in corresponding Australian Patent Application No. 2011286469.
AU Patent Examination Report No. 2 dated May 21, 2015 in corresponding Australian Patent Application No. 2011286469.
AU Patent Examination Report No. 3 dated Aug. 24, 2015 in corresponding Australian Patent Application No. 2011286469.
AU Patent Examination Report No. 4 dated Nov. 27, 2015 in corresponding Australian Patent Application No. 2011286469.
CL Office Action dated Jan. 11, 2016 in corresponding Chilean Patent Application No. CL 327-2011 concise explanation of relevancy provided on p. 2.
CL Office Action dated Aug. 7, 2015 in corresponding Chilean Patent Application No. CL 327-2011 concise explanation of relevancy provided on p. 2.
CN Office Action dated Feb. 28, 2015 in corresponding Chinese Patent Application No. 201180045142.4.
CN Office Action dated Aug. 20, 2015 in corresponding Chinese Patent Application No. 201180045142.4.
EP Search Report dated Jan. 13, 2015 in corresponding European Patent Application No. 11814909.5.
JP Office Action dated Mar. 8, 2016 in corresponding Japanese Patent Application No. 2013-523154.
JP Office Action dated Apr. 28, 2015 in corresponding Japanese Patent Application No. 2013-523154.
MX Office Action dated Mar. 18, 2015 in corresponding Mexican Patent Application No. MX/a/2013/001284.
US Office Action dated Sep. 12, 2012 in corresponding U.S. Appl. No. 12/850,371.
US Office Action dated Nov. 15, 2013 in corresponding U.S. Appl. No. 12/850,371.
US Office Action dated Mar. 20, 2013 in corresponding U.S. Appl. No. 12/850,371.
International Search Report and Written Opinion dated May 30, 2012 in corresponding PCT Patent Application No. PCT/US2011/001369.
AU Patent Examination Report No. 1 dated Jul. 19, 2016 in corresponding Australian Patent Application No. 2013271795.
CN Office Action dated Jun. 2, 2016 in corresponding Chinese Patent Application No. 201380041254.1.
EP Search Report dated Sep. 13, 2016 in corresponding European Patent Application No. 13800503.8.
EP Partial Supplementary Search Report dated Apr. 26, 2016 in corresponding European Patent Application No. 13800503.8.
US Office Action dated Feb. 10, 2015 in corresponding U.S. Appl. No. 13/909,258.
US Office Action dated Mar. 4, 2016 in corresponding U.S. Appl. No. 13/909,258.
US Office Action dated Sep. 15, 2016 in corresponding U.S. Appl. No. 13/909,258.
US Office Action dated Sep. 22, 2015 in corresponding U.S. Appl. No. 13/909,258.
International Search Report and Written Opinion dated Jan. 3, 2014 in corresponding PCT Patent Application No. PCT/US2013/044020.
US Office Action dated Feb. 10, 2016 in corresponding U.S. Appl. No. 14/709,517.
US Office Action dated Sep. 30, 2016 in corresponding U.S. Appl. No. 14/709,517.
International Search Report and Written Opinion dated Jul. 29, 2015 in corresponding PCT Patent Application No. PCT/US2015/030300.
US Office Action dated May 25, 2016 in corresponding U.S. Appl. No. 14/579,090.
International Search Report and Written Opinion dated Mar. 18, 2016 in corresponding PCT Patent Application No. PCT/US15/67497.
CA Examination Search Report dated Sep. 8, 2016 in corresponding Canadian Patent Application No. 2,750,850.
US Office Action dated Feb. 7, 2017 in corresponding U.S. Appl. No. 14/579,090.
CL Written Opinion dated Feb. 14, 2017 in corresponding Chilean Patent Application No. 3305-2014.
AU Patent Examination Report No. 1 dated Sep. 20, 2016 in corresponding Australian Patent Application No. 2015264803.
CN Office Action dated Feb. 21, 2017 in corresponding Chinese Patent Application No. 2013800412541.
MX Office Action dated Feb. 28, 2017 in corresponding Mexican Patent Application No. MX/a/21014/014849.
JP Office Action dated Apr. 4, 2017 in corresponding Japanese Patent Application No. 2015-516106.
PE Office Action dated Jul. 3, 2017 in corresponding Peruvian Patent Application No. 000168-2013.
CL Office Action dated Aug. 23, 2017 in corresponding Chilean Patent Application No. 3305-2014.
US Office Action dated Aug. 31, 2017 in corresponding U.S. Appl. No. 14/579,090.
CA Office Action dated Jul. 4, 2017 in corresponding Canadian Application No. 2,750,850.
MX Office Action dated Jul. 28, 2017 in corresponding Mexican Application No. MX/a/2014/014849.
PE Office Action dated Sep. 8, 2017 in corresponding Peruvian Application No. 000169-2013.
CN Office Action dated Sep. 19, 2017 in corresponding Chinese Application No. 201380041254.1.
ID Official Action dated Oct. 6, 2017 in corresponding Indonesian Application No. P00201407541.
ID Official Action dated Oct. 4, 2017 in corresponding Indonesian Application No. W00201102521.
EP Official Action dated Sep. 6, 2017 in corresponding European Application No. 13800503.8.
Related Publications (1)
Number Date Country
20130319309 A1 Dec 2013 US
Provisional Applications (1)
Number Date Country
61655095 Jun 2012 US