METHOD AND DEVICE FOR NEARSHORE WAVE ENERGY CONVERSION
The present disclosure provides a method and a device for converting the alternating motion produced by at least one float ( 202, 222 ) resting atop surface of a water body into unidirectional motion and converting that motion into usable energy. The method and device may be provided on a structure/vessel ( 206 ) or as the interface between the vessel and the water body surface. The vessel incorporating the device as such experiences a reduced effect of vertical perturbations from waves generated on the water body.
1 . A method for converting water body wave motion to usable energy, the method comprising:
providing a first float ( 202 ) that is connected with a second float;
providing a first common pivot ( 204 ) that is connected with the first float and the second float;
wherein the connection between the first float and second float is such that an upward displacement of the first float relative to the first common pivot causes a downward displacement of the second float relative to said pivot;
wherein an upward displacement of the second float relative to said pivot causes a downward displacement of the first float relative to said pivot;
wherein at least one of said upward displacements is caused by wave motion; and
providing a system to convert a multidirectional form of kinetic energy to a unidirectional form of kinetic energy.
2 . The method according to claim 1 , further comprising the steps of providing a third float ( 202 — FIG. 12 ) that is connected with a fourth float ( 202 — FIG. 12 );
providing a second common pivot ( 204 — FIG. 12 ) that is connected with the third float and the fourth float;
wherein the connection between the third float and fourth float is such that an upward displacement of the third float relative to the second common pivot causes a downward displacement of the fourth float relative to said second pivot;
wherein an upward displacement of the fourth float relative to the second common pivot causes a downward displacement of the third float relative to said second pivot; and
wherein the third float and the fourth float are separated by a distance ( 400 b — FIG. 12 ) that is less than the distance between the first float and the second float ( 400 a — FIG. 12 );
3 . The method of claim 2 , wherein the third float and the fourth float are provided in a region that has a lower average approximate wavelength than the region in which the first float and the second float are provided.
4 . The method of claim 1 , further comprising the steps of
providing a third float that is connected with the first float, the second float ( 202 — FIG. 14 ) and the first common pivot ( 204 );
wherein said connection is such that the first float, second float and third float in combination are substantially not colinear; and
wherein said connection is such that the first float, second float and third float in combination are substantially not coplanar on a vertical plane.
5 . The method of claim 4 , wherein the first common pivot comprises more than one degree of rotational freedom.
6 . The method of claim 1 , further comprising the steps of providing a fluid pump ( 600 — FIG. 13 ) that comprises a piston ( 630 );
providing a tether ( 610 ) that, at least in part, forms a connection between the first float ( 202 ) and the piston ( 630 );
providing a tether ( 610 ) that, at least in part, forms a connection between the second float ( 202 ) and the piston ( 630 );
7 . The method of claim 6 , further comprising the step of providing at least one pulley ( 500 — FIG. 13 ).
8 . An apparatus for converting water body wave motion to usable energy, the apparatus comprising:
a first float ( 202 ) that is connected with a second float;
a first common pivot ( 204 ) that is connected with the first float and the second float;
wherein the connection between the first float and second float is such that an upward displacement of the first float relative to the first common pivot causes a downward displacement of the second float relative to said pivot;
wherein an upward displacement of the second float relative to said pivot causes a downward displacement of the first float relative to said pivot; and
wherein at least one of said upward displacements is caused by wave motion; and
a system to convert a multidirectional form of kinetic energy to a unidirectional form of kinetic energy.
9 . The apparatus according to claim 8 , further comprising
a third float ( 202 — FIG. 12 ) that is connected with a fourth float ( 202 — FIG. 12 );
a second common pivot ( 204 — FIG. 12 ) that is connected with the third float and the fourth float;
a common platform ( 206 — FIG. 12 ) that is connected with the first common pivot and the second common pivot.
wherein the connection between the third float and fourth float is such that an upward displacement of the third float relative to the second common pivot causes a downward displacement of the fourth float relative to said second pivot;
wherein an upward displacement of the fourth float relative to the second common pivot causes a downward displacement of the third float relative to said second pivot; and
wherein the third float and the fourth float are separated by a distance ( 400 b — FIG. 12 ) that is less than the distance between the first float and the second float ( 400 a — FIG. 12 );
10 . The apparatus of claim 9 , wherein the third float and the fourth float are arranged in a region that has a lower average approximate wavelength than the region in which the first float and the second float are provided.
11 . The apparatus of claim 8 , further comprising
a third float that is connected with the first float, the second float ( 202 — FIG. 14 ) and the first common pivot ( 204 );
wherein said connection is such that the first float, second float and third float in combination are substantially not colinear; and
wherein said connection is such that the first float, second float and third float in combination are substantially not coplanar on a vertical plane.
12 . The method of claim 11 , wherein the first common pivot comprises more than one degree of rotational freedom.
13 . The method of claim 8 , further comprising the steps of providing a fluid pump ( 600 — FIG. 13 ) that comprises a piston ( 630 );
providing a tether ( 610 ) that, at least in part, forms a connection between the first float ( 202 ) and the piston ( 630 );
providing a tether ( 610 ) that, at least in part, forms a connection between the second float ( 202 ) and the piston ( 630 );
14 . The method of claim 13 , further comprising the step of providing at least one pulley ( 500 — FIG. 13 ).