WHAT IS CLAIMED IS:
I. An apparatus for diverting at least a portion of a surface flow of water, the apparatus comprising: a first and second foil assembly, wherein at least one of the first and second foil assemblies comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water; and at least one elongated member movably coupling the first and second foil assemblies.
2. The apparatus of claim 1 , further comprismg two elongated members moveably coupled to each foil assembly.
3. The apparatus of claim 1, wherein the surface flow of water comprises contaminants floating on the water.
4. The apparatus of claim 1, wherein the surface flow of water comprises contaminants floating on the water, and wherein the contaminants comprise hydrocarbons.
5. The apparatus of claim 1, wherein the surface flow of water comprises contaminants floating on the water, and wherein the contaminants comprise oil.
6. The apparatus of claim 1, wherein both the first foil assembly and the second foil assembly comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water.
7. The apparatus of claim 1, wherein both the first foil assembly and the second foil assembly comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water; and wherein the apparatus is configured so that the distance between the foils is at least 1.3 times the length of the buoyant members.
8. The apparatus of claim 1, wherein each foil comprises a leading edge, and a trailing edge; and wherein the leading edge and the trailing edge of the foil are shaped to reduce turbulence.
9. The apparatus of claim 1, wherein each foil comprises a leading edge, and a trailing edge; and wherein the leading and trailing edges are inclined.
10. The apparatus of claim 1, wherein each foil comprises a first face, and a second face; and wherein at least one of the faces of each foil is substantially flat.
I I . The apparatus of claim 1 , wherein each foil comprises a first face, and a second face; and wherein at least one of the faces of each foil is curved.
12. The apparatus of claim 1, wherein the at least one elongated member comprises a rigid material.
13. The apparatus of claim 1, wherein the at least one elongated member comprises at least one spacer configured to restrict the motion of the foil assemblies such that the foil assemblies are maintained at least at a minimum distance from one another.
14. The apparatus of claim 1, wherein the foil assemblies further comprise a spacer configured to restrict the motion of foil assemblies such that the foil assemblies are maintained at least at a minimum distance from one another.
• 15. The apparatus of claim 1, wherein each foil assembly further comprises at least one movable elongated member movably coupling the at least one elongated member to the foil assembly.
16. The apparatus of claim 1, wherein the at least one elongated member is configured to keep the foil assemblies substantially parallel during use.
17. The apparatus of claim 1, further comprising at least one submerged elongated member, wherein the at least one submerged elongated member is movably coupled to the foil assemblies.
18. The apparatus of claim 1 , further comprising at least one submerged elongated member, wherein each foil assembly further comprises at least one movable elongated member movably coupling the at least one submerged elongated member to the foil assembly.
19. The apparatus of claim 1, further comprising at least one submerged elongated member, wherein the at least one submerged elongated member comprises a rigid material.
20. The apparatus of claim 1, further comprising at least one submerged elongated member, wherein the at least one submerged elongated member comprises a cable.
21. The apparatus of claim 1 , further comprismg at least one submerged elongated member; and at least one cover on the at least one submerged elongated member configured to reduce drag.
22. The apparatus of claim 1, wherein each buoyant member comprises a first end and a second end, and wherein the first end and the second end of each buoyant member are shaped to reduce turbulence.
23. The apparatus of claim 1, wherein each buoyant member comprises a first end and a second end, and wherein the first end and the second end of each buoyant member are inclined,
24. The apparatus of claim 1, wherein at least one buoyant member comprises a slot for receiving a foil, wherein the foil is retained within the buoyant member at a desired draft by a retaining device.
25. The apparatus of claim 1 , wherein the length of each buoyant member is greater than the length of each foil.
26. The apparatus of claim 1 , wherein the length of each buoyant member is at least 2 times the length of each foil.
27. The apparatus of claim 1, wherein each buoyant member is symmetrical fore and aft.
28. The apparatus of claim 1, wherein each foil is symmetrical fore and aft.
29. The apparatus of claim 1, wherein each foil assembly is symmetrical fore and aft.
30. The apparatus of claim 1, further comprising at least one impeller coupled to the apparatus, wherein the at least one impeller is configured to agitate the surface of the water.
31. The apparatus of claim 1 , further comprising at least one mixing device coupled to the apparatus, wherein the at least one mixing device is configured to agitate the surface of the water.
32. The apparatus of claim 1, further comprising at least one chemical feed line coupled to the apparatus, wherein the at least one chemical feed line is configured to dispense a chemical to the water.
33. The apparatus of claim 1, further comprising at least one chemical feed line coupled to the apparatus, wherein the at least one chemical feed line is configured to dispense a chemical over the apparatus.
34. The apparatus of claim 1, wherein the foil assemblies are coated to resist oil intrusion, chemical degradation, and denting.
35. The apparatus of claim 1, wherein each buoyant member comprises a fire resistant material.
36. The apparatus of claim 1, wherein each elongated member comprises a fire resistant material.
37. The apparatus of claim 1, comprismg one or more fire resistant materials.
38. The apparatus of claim 1, further comprising at least one chemical feed line and at least one chemical distribution nozzle, wherein at least one chemical feed line and at least one chemical distribution nozzle comprise a fire resistant material.
39. The apparatus of claim 1, further comprising one or more attachment points, wherein each attachment point comprises a fire resistant material
40. The apparatus of claim 1, further comprising ballast, wherein the ballast is coupled to at least one foil assembly to provide heel stability.
41. The apparatus of claim 1 , further comprising ballast, wherein the ballast is internal to at least one foil assembly to provide heel stability.
42. The apparatus of claim 1, wherein the distance between the foil assemblies is adjustable.
43. The apparatus of claim 1, further comprising a foil extension, wherein the foil extension is configured to be coupled to the bottom of a foil.
44. The apparatus of claim 1, wherein at least one foil is configured to have an adjustable draft.
45. The apparatus of claim 1, further comprising at least one towing connector coupled to the apparatus configured to couple equipment to be towed to the apparatus, and configured to vertically distribute forces exerted on the apparatus by towing of equipment.
46. A system for diverting at least a portion of a surface flow of a body of water, the system comprising: at least one flow-diverter apparatus comprising: a first and second foil assembly, wherein at least one of the first and second foil assemblies comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water; at least one elongated member movably coupling the first and second foil assemblies; and at least one control line coupled to the at least one flow-diverter apparatus.
47. The system of claim 46, comprising at least two control lines.
48. The system of claim 46, wherein the at least one flow-diverter apparatus further comprises two elongated members moveably coupled to each foil assembly.
49. The system of claim 46, wherein the surface flow of water comprises contaminants floating on the water.
50. The system of claim 46, wherein the surface flow of water comprises contaminants floating on the water; and wherein the contaminants comprise hydrocarbons.
51. The system of claim 46, wherem the surface flow of water comprises contaminants floating on the water; and wherein the contaminants comprise oil.
52. The system of claim 46, wherein both the first foil assembly and the second foil assembly comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water.
53. The system of claim 46, wherein both the first foil assembly and the second foil assembly comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water; and wherein the distance between foils is at least 1.3 times the length of the buoyant members.
54. The system of claim 46, wherein both the first foil assembly and the second foil assembly comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water; and wherein the distance between the foil assemblies is adjustable.
55. The system of claim 46, wherein each foil comprises a leading edge and a trailing edge; and wherein the leading edge and the trailing edge of each foil are shaped to reduce turbulence.
56. The system of claim 46, wherein each foil comprises a first face and a second face; and wherein at least one of the faces of each foil is substantially flat.
57. The system of claim 46, wherein each foil comprises a first face and a second face; and wherein at least one of the faces of each foil is curved.
58. The system of claim 46, wherein each foil comprises a leading edge and a trailing edge; and wherein the leading and trailing edges are inclined.
59. The system of claim 46, wherein the at least one elongated member comprises a rigid material.
60. The system of claim 46, comprising a plurality of flow-diverter apparatus.
61. The system of claim 46, further comprising one or more devices configured to vertically distribute the force exerted by the at least one control line on the at least one flow-diverter apparatus.
62. The system of claim 46, further comprismg at least one cable coupling the at least one control line to the at least one flow-diverter apparatus, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the at least one flow-diverter apparatus.
63. The system of claim 46, further comprising at least one cable coupling the at least one control line to the at least one flow-diverter apparatus, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the at least one flow-diverter apparatus; wherein the at least one cable is configured to have an adjustable length.
64. The system of claim 46, further comprising at least one cable coupling the at least one control line to the at least one flow-diverter apparatus, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the at least one flow-diverter apparatus; and further comprising one or more covers on the at least one cable configured to reduce drag.
65. The system of claim 46, further comprising at least one cable coupling the at least one control line to the at least one flow-diverter apparatus, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the at least one flow-diverter apparatus; and further comprising a towing connector coupled to the at least one cable configured to couple equipment to be towed to the flow-diverter system.
66. The system of claim 46, further comprising at least one towing connector coupled to the system configured to couple equipment to be towed to the system, and configured to vertically distribute forces exerted on the system by towing of equipment.
67. The system of claim 46, wherein the system is configured to allow a boom to be coupled to the system.
68. The system of claim 46, wherein the system is configured to allow a scientific instrument to be coupled to the system.
69. The system of claim 46, wherein the system is configured to allow at least one chemical feed line to be coupled to the system.
70. The system of claim 46, wherein the at least one elongated member comprises at least one spacer configured to restrict the motion of foil assemblies such that the foil assemblies are maintained at least at a minimum distance from one another.
71. The system of claim 46, wherein the foil assemblies further comprise a spacer configured to restrict the motion of foil assemblies such that the foil assemblies are maintained at least at a niinimum distance from one another.
72. The system of claim 46, wherein each foil assembly further comprises at least one swiveling elongated member moveably coupling the at least one elongated member to the foil assembly.
73. The system of claim 46, wherein the at least one elongated member is configured to keep the foil assemblies of a flow-diverter apparatus substantially parallel during use.
74. The system of claim 46, further comprising one or more covers on the at least one control line configured to reduce drag.
75. The system of claim 46, wherein each flow-diverter apparatus further comprises at least one submerged elongated member movably coupled to the foil assemblies.
76. The system of claim 46, wherein each flow-diverter apparatus further comprises at least one submerged elongated member movably coupled to the foil assemblies; and wherein each foil assembly further comprises at least one swiveling elongated member movably coupling the at least one submerged elongated member to the foil assembly.
77. The system of claim 46, wherein each flow-diverter apparatus further comprises at least one submerged elongated member movably coupled to the foil assemblies; and wherein the at least one submerged elongated member comprises a rigid material.
78. The system of claim 46, wherein each flow-diverter apparatus further comprises at least one submerged elongated member movably coupled to the foil assemblies; and wherein the at least one submerged elongated member comprises a cable.
79. The system of claim 46, wherein each flow-diverter apparatus further comprises at least one submerged elongated member movably coupled to the foil assemblies; and further comprising one or more covers on the at least one submerged elongated member configured to reduce drag.
80. The system of claim 46, wherein each buoyant member comprises a first end and a second end, and wherein the first end and the second end of each buoyant member are shaped to reduce turbulence.
81. The system of claim 46, wherein each buoyant member comprises a first end and a second end, and wherein the first end and the second end of each buoyant member are inclined.
82. The system of claim 46, wherein at least one buoyant member comprises a slot for receiving a foil, wherein the foil is retained within the buoyant member at a desired draft by a retaining device.
83. The system of claim 46, wherein the length of each buoyant member is greater than the length of each foil.
84. The system of claim 46, wherein the length of each buoyant member is at least 2 times the length of each foil.
85. The system of claim 46, wherein each buoyant member is symmetrical fore and aft.
86. The system of claim 46, wherein each foil is symmetrical fore and aft.
87. The system of claim 46, wherein each foil.assembly is symmetrical fore and aft.
88. The system of claim 46, further comprising at least one impeller coupled to the system, wherein the at least one impeller is configured to agitate the surface of the body of water.
89. The system of claim 46, further comprising at least one mixing device coupled to the system, wherein the at least one mixing device is configured to agitate the surface of the body of water.
90. The system of claim 46, further comprising at least one chemical feed line coupled to the system, wherein the at least one chemical feed line is configured to dispense a chemical to the body of water.
91. The system of claim 46, further comprising at least one chemical feed line coupled to the system, wherein the at least one chemical feed line is configured to dispense a chemical over the system.
92. The system of claim 46, wherein the at least one flow-diverter apparatus is configured to be coupled to at least one other flow-diverter apparatus by two or more connectors.
93. The system of claim 46, wherein the at least one flow-diverter apparatus is configured to be coupled to at least one other flow-diverter apparatus by two or more connectors, and wherein the two or more connectors comprise a fire resistant material.
94. The system of claim 46, wherein the foil assemblies are coated to resist oil intrusion, chemical degradation, and denting.
95. The system of claim 46, wherein each buoyant member comprises a fire resistant material.
96. The system of claim 46, wherein each elongated member comprises a fire resistant material.
97. The system of claim 46, comprising one or more fire resistant materials.
98. The system of claim 46, further comprising one or more attachment points, wherein each attachment point comprises a fire resistant material.
99. The system of claim 46, further comprising at least one chemical feed line and at least one chemical distribution nozzle, wherein at least one chemical feed line and at least one chemical distribution nozzle comprise a fire resistant material.
100. The system of claim 46, further comprising ballast, wherein the ballast is coupled to the foil assemblies to provide heel stability.
101. The system of claim 46, further comprising ballast, wherein the ballast is internal to the foil assemblies to provide heel stability.
102. The system of claim 46, further comprising a fixed mooring coupled to the at least one control line.
103. The system of claim 46, further comprising a movable mooring coupled to the at least one control line.
104. The system of claim 46, further comprising a foil extension, wherein the foil extension is configured to be coupled to the bottom of a foil.
105. The system of claim 46, wherein at least one foil is configured to have an adjustable draft.
106. A method of diverting the surface of a body of water, the method comprising: placing a flow-diverter system into a body of water, the system comprising: at least one flow-diverter apparatus, wherein each flow-diverter apparatus comprises: a first and second foil assembly, wherein at least one of the first and second foil assemblies comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water; at least one elongated member movably coupling the foil assemblies; and at least one control line coupled to the at least one flow-diverter apparatus; feeding out the at least one control line until a desired sweep length is attained; and adjusting the angle of attack of the flow-diverter system until a desired angle of attack is attained.
107. The method of claim 106, wherein the system comprises two control lines.
108. The method of claim 106, wherein the at least one flow-diverter apparatus further comprises two elongated members moveably coupled to the foil assemblies.
109. The method of claim 106, wherein the surface flow of the body of water includes contaminants floating on the water.
110. The method of claim 106, wherein the surface flow of the body of water includes contaminants floating on the water; and wherein the contaminants comprise hydrocarbons.
111. The method of claim 106, wherein the surface flow of the body of water includes contaminants floating on the water; and wherein the contaminants comprise oil.
112. The method of claim 106, wherein both of the first and second foil assemblies comprise: a buoyant member; and a foil coupled to the buoyant member such that at least a portion of the foil extends into the water.
113. The method of claim 106, wherein each foil comprises a leading edge and a trailing edge; and wherein the leading and trailing edges are shaped to reduce turbulence.
114. The method of claim 106, wherein each foil comprises a first face and a second face; and wherein at least one of the faces of each foil is substantially flat.
115. The method of claim 106, wherein each foil comprises a first face and a second face; and wherein at least one of the faces of each foil is curved.
116. The method of claim 106, wherein each foil comprises a leading edge and a trailing edge; and wherein the leading and trailing edges are inclined.
117. The method of claim 106, wherein the at least one elongated member comprises a rigid material.
118. The method of claim 106, further comprising coupling equipment to be deployed on the body of water to the flow-diverter system prior to feeding out the at least one control line.
119. The method of claim 106, wherein the flow-diverter system further comprises one or more devices configured to vertically distribute the force exerted by the at least one control line on the system.
120. The method of claim 106, wherein the flow-diverter system further comprises at least one cable coupling the at least one control line to the system, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the system.
121. The method of claim 106, wherein the flow-diverter system further comprises at least one cable coupling the at least one control line to the system, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the system; and wherein the at least one cable is configured to have an adjustable length.
122. The method of claim 106, wherein the flow-diverter system further comprises at least one cable coupling the at least one control line to the system, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the system; and wherein the flow-diverter system further comprises one or more covers on the at least one cable configured to reduce drag.
123. The method of claim 106, wherein the flow-diverter system further comprises at least one cable coupling the at least one control line to the system, the at least one cable configured to vertically distribute the force exerted by the at least one control line on the system; and wherein the flow-diverter system further comprises a towing connector coupled to the at least one cable configured to couple equipment to be towed to the system.
124. The method of claim 106, wherein the flow-diverter system is configured to allow a boom to be coupled to the system.
125. The method of claim 106, wherein the flow-diverter system is configured to allow a scientific instrument to be coupled to the system.
126. The method of claim 106, wherein the flow-diverter system is configured to allow at least one chemical feed line to be coupled to the system.
127. The method of claim 106, wherein the at least one elongated member comprises at least one spacer configured to restrict the motion of foil assemblies such that the foil assemblies are maintained at least at a niinimum distance from one another.
128. The method of claim 106, wherein the foil assemblies further comprise a spacer configured to restrict the motion of foil assemblies such that the foil assemblies are maintained at least at a iriimmum distance from one another.
129. The method of claim 106, wherein each foil assembly further comprises at least one swiveling elongated members moveably coupling the at least one elongated member to the foil assembly.
130. The method of claim 106, wherein the at least one elongated member is configured to keep the foil assemblies of a flow-diverter apparatus substantially parallel during use.
131. The method of claim 106, wherein tlie flow-diverter system further comprises one or more covers on the at least one control line configured to reduce drag.
132. The method of claim 106, wherein each flow-diverter apparatus further comprises at least one submerged elongated member moveably coupled to the foil assemblies.
133. The method of claim 106, wherein each flow-diverter apparatus further comprises at least one submerged elongated member moveably coupled to the foil assemblies; and wherein each foil assembly further comprises at least one swiveling elongated member moveably coupling the at least one submerged elongated member to the foil assembly.
134. The method of claim 106, wherein each flow-diverter apparatus further comprises at least one submerged elongated member moveably coupled to the foil assemblies; and wherein each foil assembly further comprises one or more covers on the at least one submerged elongated member configured to reduce drag.
135. The method of claim 106, wherein each buoyant member comprises a first end and a second end, and wherein the first end and the second end of each buoyant member are shaped to reduce turbulence.
136. The method of claim 106, wherein each buoyant member comprises a first end and a second end, and wherein the first end and the second end of each buoyant member are inclined.
137. The method of claim 106, wherein at least one buoyant member comprises a slot for receiving a foil, wherein the foil is retained within the buoyant member at a desired draft by a retaining device.
138. The method of claim 106, wherein the length of each buoyant member is greater than tlie length of each foil.
139. The method of claim 106, wherein tlie length of each buoyant member is at least 2 times tlie length of each foil.
140. The method of claim 106, wherein each buoyant member is symmetrical fore and aft.
141. The method of claim 106, wherein each foil is symmetrical fore and aft.
142. The method of claim 106, wherein each foil assembly is symmetrical fore and aft.
143. The method of claim 106, wherein the flow-diverter system further comprises at least one impeller coupled to the system, wherein the at least one impeller is configured to agitate the surface of the body of water.
144. The method of claim 106, wherein the flow-diverter system further comprises at least one mixing device coupled to tlie system, wherein the at least one mixing device is configured to agitate the surface of the body of water.
145. The method of claim 106, wherein the flow-diverter system further comprises at least one chemical feed line coupled to tlie system, wherein the at least one chemical feed line is configured to dispense a chemical to the body of water.
146. The method of claim 106, wherein the flow-diverter system further comprises at least one chemical feed line coupled to the system, wherein the at least one chemical feed line is configured to dispense a chemical over the system.
147. The method of claim 106, wherein tlie foil assemblies are coated to resist oil intrusion, chemical degradation, and denting.
148. The method of claim 106, wherein each buoyant member comprises a fire resistant material.
149. The method of claim 106, wherein each elongated member comprises a fire resistant material.
150. The method of claim 106, wherein each flow-diverter apparatus comprises one or more fire resistant materials.
151. The method of claim 106, wherein each flow-diverter apparatus further comprises one or more attachment points, wherein each attachment point comprises a fire resistant material.
152. The method of claim 106, wherein the flow-diverter system further comprises at least one chemical feed line and at least one chemical distribution nozzle, wherein at least one chemical feed line and at least one chemical distribution nozzle comprise a fire resistant material.
153. The method of claim 106, wherein the flow-diverter system further comprises ballast, wherein the ballast is coupled to the foil assemblies to provide heel stability.
154. The method of claim 106, wherein the flow-diverter system further comprises ballast, wherein the ballast is internal to the foil assemblies to provide heel stability.
155. The method of claim 106, wherein the distance between foils is at least 1.3 times the length of the buoyant members.
156. The method of claim 106, further comprising adjusting the distance between the foil assemblies.
157. The method of claim 106, wherein the flow-diverter system further comprises a fixed mooring coupled to the at least one control line.
158. The method of claim 106, wherein the flow-diverter system further comprises a movable mooring coupled to the at least one control line.
159. The method of claim 106, wherein tlie flow-diverter system further comprises a foil extension, wherein the foil extension is configured to be coupled to the bottom of a foil.
160. The method of claim 106, wherem at least one foil is configured to have an adjustable draft.
161. The method of claim 106, further comprising adjusting the draft of at least one foil to a desired draft based on the depth of the body of water.
162. The method of claim 106, further comprising adjusting the draft of at least one foil to a desired draft based on a desired diversion of the surface flow.
163. The method of claim 106, wherein the flow-diverter system further comprises at least one towing connector coupled to tlie system configured to couple equipment to be towed by the system, and configured to vertically distribute forces exerted on the system by towing of equipment.
164. The method of claim 106, wherein the body of water is a moving body of water, and placing the flow-diverter system into the body of water comprises: placing the flow-diverter system into the moving body of water at a first point, wherein the motion of the water relative to the foils generates a component of force acting on the flow-diverter system in a direction transverse to the direction of flow of the moving body of water; wherein the force pushes the flow-diverter system away from the first point.
165. The method of claim 106, wherein placing the flow-diverter system into the body of water comprises: placing the flow-diverter system into a body of water from a vessel, wherein and motion of the water relative to the foils generates a component of force acting on the flow-diverter system in a direction transverse to the direction of the relative motion of the vessel and the body of water; wherein the force pushes the flow-diverter system away from the vessel.
166. The method of claim 106, wherein adjusting the angle of attack comprises adjusting the relative lengths of a first and second control line.
167. The method of claim 106, further comprising retrieving the flow-diverter system by adjusting the angle of attack oftlie flow-diverter system.
168. The method of claim 106, further comprising coupling one or more booms to the flow-diverter system before deploying the flow-diverter system.
169. The method of claim 106, further comprising coupling one or more scientific instruments to the flow-diverter system before deploying the flow-diverter system.
170. The method of claim 106, further comprising deploying two or more flow-diverter systems wherein a first flow-diverter system is deployed at a first sweep length, and each flow-diverter system downstream relative to the flow is adjusted to a sweep length less than the previous flow-diverter system.
171. The method of claim 106, wherein the flow-diverter system comprises a plurality of flow-diverter apparatus.
172. The method of claim 106, wherein the flow-diverter system comprises a plurality of flow-diverter apparatus and wherein the flow-diverter apparatus are coupled by a plurality of lines.
173. The method of claim 106, wherein a contaminant is floating on the surface of the body of water, and the method further comprises dispersing the contaminant floating on top of the surface of the body of water by turbulent movement of the water past the flow-diverter system.
174. The method of claim 106, wherein the flow-diverter system further comprises at least one mixing device coupled to a line, wherein the line is coupled to the flow-diverter system, and configured to trail behind the flow-diverter system during use.
175. The method of claim 106, wherein the flow-diverter system further comprises at least one impeller coupled to a line, wherein the line is coupled to the flow-diverter system, and configured to trail behind the flow-diverter system during use.
176. The method of claim 106, wherein a contaminant is floating on the surface of the body of water, and wherein the flow-diverter system further comprises a dispersant chemical feed system coupled to the flow-diverter system, and wherein the method further comprises distributing a dispersant chemical over the surface of the body of water, and mixing the dispersant chemical into the body of water by turbulent movement of the water past the flow-diverter system.
177. The method of claim 106, wherein the flow-diverter system further comprises a chemical feed system, and wherein the method further comprises distributing a chemical over at least a portion of the flow-diverter system.
178. The method of claim 106, wherein a contaminant is floating on the surface of the body of water, and wherein the flow-diverter system is deployed to divert the contaminant to a collection area.
179. The method of claim 106, wherein at least one flow-diverter systems is deployed on each side of a tow vessel.
180. The method of claim 106, wherein at least one flow-diverter systems is deployed on each side of a tow vessel; and further comprising following the tow vessel with a collection system.
181. The method of claim 106, wherein a contaminant is floating on the surface of the body of water, and wherein the flow-diverter system is deployed to divert the contaminant to an in-situ treatment area.
182. The method of claim 106, wherein a contaminant is floating on the surface of the body of water, and wherein the method further comprises employing a collection system to collect the contaminant floating on tlie surface of the water from the redirected surface flow.