A Marine Power Plant Assembly
20230227138 · 2023-07-20
Inventors
Cpc classification
F03B13/264
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
F05B2240/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B17/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/5032
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/93
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/411
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/931
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A marine plant assembly comprising a floating vessel and a plant operating unit attached to a buoyancy vessel in such a way that the operating unit is at least partially submerged during operation. At least one link element provides a hinged connection between the operating unit and the buoyancy vessel, thereby to allow movement of the operating unit from its submerged operating position to above the water level and adjacent the buoyancy vessel by said link element rotating into a position substantially parallel to the buoyancy vessel.
Claims
1. A marine plant assembly comprising: a buoyancy vessel; a plant operating unit attached to the buoyancy vessel in such a way that the operating unit is at least partially submerged during operation; at least one link element providing an inclined hinged connection between the operating unit and the buoyancy vessel, thereby to allow movement of the operating unit from its submerged operating position to above the water level and adjacent the buoyancy vessel by said link element rotating about an inclined axis into a position substantially parallel to the buoyancy vessel.
2. A marine plant assembly according to claim 1, wherein the hinge includes two pairs of cylindrical bearings aligned on a common inclined axis and being able to rotate relative to one another about the common axis, a first cylindrical bearing of each pair being attached secured to a connection plate which in turn is secured to the link member, and the second of each pair being indirectly secured to the buoyancy vessel.
3. A marine plant assembly according to claim 2, wherein the second bearing of one pair is secured to a mounting plate which in turn is secured to the buoyancy vessel and the second bearing of the other pair is secured to a support structure which in turn is secured to the buoyancy vessel.
4. A marine plant assembly according to claim 3, wherein each pair of cylindrical bearings has a first central shaft extending therethrough, the shaft having a rotation transmitting device secured thereto to rotate the shaft about the common axis independent of the bearings.
5. A marine plant assembly according to claim 4, wherein the rotation transmitting device comprises a first bevel gear.
6. A marine plant assembly according to claim 5, wherein the link element further includes a second rotatable shaft extending to the operating unit and having a second bevelled gear engaging, in use with the first bevelled gear such that rotational force generated by the operating unit is transmitted through the second shaft to the first shaft via engagement of first and second bevelled gears and thereon to the buoyancy vessel for utilisation.
7. A marine plant assembly according to claim 4, wherein the rotation transmitting device comprises a sprocket.
8. A marine plant assembly according to claim 7, wherein rotational force generated by the operating unit is transmitted through a chain located within and through the link element to the sprocket and thereon to the buoyancy vessel for utilisation.
9. A marine plant assembly according to claim 1, wherein the link element is secured and retained in position by props attached to the link element and the buoyancy vessel.
10. A marine plant assembly according to claim 9, wherein props are attached via a hinge to the link element and are detachable from the buoyancy vessel so to allow the props to be positioned against the link element to allow rotation of the link element around the hinge.
11. A marine plant assembly according to claim 10, wherein the props are detachable from the link element.
12. A marine plant assembly according to claim 11, wherein movement of the link element is controllable using ropes attached to winches mounted on the buoyancy vessel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0045] At least one embodiment will now be described by way of example only with reference to the accompanying figures in which:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0085] In the following description the link element will also be referred to as ‘leg’ and the host vessel as ‘main body’, ‘floating vessel’ or ‘hull’.
[0086] Individual component descriptions, referring to reference numerals in the figures, are provided at the end of this description.
[0087] For the purposes of the description, the following letter references are provided to indicate various and specific axes. [0088] U A specific longitudinal axis of the floating vessel. [0089] V Vertical axis in the plane of the “legs”, intersecting with “U”, “W” and Z. [0090] W Inclined axis of the main hinge in plane perpendicular to axis U. [0091] Z Inclined axis of the main hinge—opposite side to “W”. [0092] ZC Inclined axis of the main hinge—opposite side to “W”—out of the normal plane [0093] XA The axis of the leg in its operating position. [0094] XB The axis of the leg in its service position. [0095] YA The axis of the leg in its operating position—opposite to XA. [0096] YB The axis of the leg in its service position—opposite to XB. [0097] YAC The axis of the leg in its operating position—hinge axis WC out of the normal plane [0098] YBC The axis of the leg in its service position—hinge axis WC out of the normal plane [0099] P/Q Axes of props in operating position. [0100] R/S Axes of props in operating position. [0101] HA Horizontal line passing through the centre point “O”. [0102] HAC Horizontal line passing through the centre point “O”—out of the normal plane.
[0103] Moreover, reference letters for notable points and angles are provided below.
Point Description
[0104] O Centre of the geometry, intersection of the main axes “V”, “U”, “W” and Z. [0105] A Intersection of the main vertical axis “V” and the two leg axes “XA” and “YA”. [0106] Pivot point for the leg, intersection of axis “Z” with “XA” and “XB”. [0107] C Pivot point for the opposite leg, intersection of axis “W” with “YA” and “YB”. [0108] CC Alternative position of point ‘C’, rotated around axis ‘V’ by angle BET [0109] D Intersection of the hull with axis “V”, top. [0110] E Corner of the hull. [0111] F Intersection of the hull with axis “Z”. [0112] G Corner of the hull. [0113] H Intersection of the hull with axis “V”, bottom. [0114] I Corner of the hull. [0115] J Intersection of the hull with axis “Z”. [0116] K Corner of the hull. [0117] M Prop axis — Hull intersection point. [0118] N Prop axis — Hull intersection point. [0119] T Mid point between M and N.
Angle Description
[0120] AL Inclination of hinge axes W, Z and WC to horizontal. [0121] BET The angle between HA and HAC, the angle of hinge axis WC to the normal plane defined by axes V, W and YA. [0122] GAM The angle between the link/leg and props in elevation, The angle between line LB and LT
[0123]
[0124] The figure shows the floating vessel 100 on the surface 2 of a body of water 1 with upper end of legs 301 attached via hinges 200. Operating unit 500 is attached to the lower end of leg 302 in the operating position XA/YA and in the service position XB/YB. Props 400 attached to legs 301 via hinges 320 connect to main body 100 in the operating position via releasable connection plates 431 and fold against legs 301 in the service position. The external/upper end of hinges 200 are supported by the hinge support structure 120. The leg support structure 140 holds and secures legs 301 in the service position XB/YB.
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[0126] It can be seen from
[0127] Aligning axes W and Z in a plane normal (perpendicular) to the main longitudinal axis U results in axes XB/YB being parallel to axis U when they reach horizontal position. Axes W an Z can be slightly rotated around axis V whereby YA would move into position YAC, W into WC, point C into position CC and consequently axis YB into YBC at an angle to U, the further away from point CC the greater the distance between YBC and U.
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[0130] Leg 301/302 held in operating position by props 400 connecting to leg 301 via connection plates 321 and 421 and pin 320. Top end of props 400 connect to hull 100 via connection plates 431 which is locked in place by locking rods 166. Top end of leg 301 held by main pin 200 supported by external part of pin support structure 123. Operating plant 500 is attached to lower end of leg 302. Leg 301 is moved by counter operation of leg moving ropes 353 and 354 connecting to leg 301 via rope connection plate 352 and winches 355 and 356 mounted on the leg support structure 140 and vessel deck 101. Props are moved to/from legs 301 by the leg side control ropes 472 connecting props 400 via connection plates 433, and the hull side control ropes 474 which are moved by the hull side prop control winches 475. Leg support structure 140 is positioned on the main body 100 such that it can secure legs 301/302 in the service position via connection plates 145 and 351. Platform 190 has discontinuities to allow locking rods 166 and hull side ropes 474 being laid out along the side face of main vessel 100. Access ladders 195 connect the floating vessel top deck 101 to access platforms 190.
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[0133] Torque is transmitted from turbine blades 550 via the chain of turbine horizontal axis gear wheel 610, inclined axis gear wheel 620, lower end of drive shaft 630, drive shaft splice 640, upper end of drive shaft 650, inclined axis top end gear wheel 660, inward axis top end gear wheel 670, inward axis drive shaft 680 and inward axis lower gear wheel 690 connecting to main plant gear wheel 710.
[0134]
[0135] The essence of the hinges are cylindrical flanged bearings 235, 236, 245 and 246. Bearings 235 and 236 fit into one another, the mating face 237 allows smooth rotation along the axis Z. Bearings 245 and 256 are similar. Flanges are at the opposite ends, flanges of 246 and 236 connect to outer face of leg connection plates 310, flanges of 245 and 235 connect to pin support structure 123 and hull side mounting plate 234 respectively. Mounting plate 234 is attached to main hull 100 via connection plates 232 and 233. Guide angles 239 and 249, attached to connection plate 232 and pin support 123 extend in a circular fashion engaging with and supporting stiffener plates 311 as leg 301 rotates around axis Z. This arrangement allows the transfer of forces from leg 301 to the structure of the vessel 100.
[0136] Potential utilisation with gear-shaft drive train would have shaft 650 in leg 301 fitted with bevel gear 660. Shaft 650 would be held by thrust bearing 653 on mounting 654 attached to mounting plate 312. Internal faces 238 and 248 of bearings 235 and 245 are to be suitable to provide for continuous rotation of inclined shaft 680, driven by bevel gear 670 engaging with gear 660. Inclined shaft would be supported by bearings 215 and 225 attached to plates 214 and 224, connected to main on-board plant via plates 212 and 213 and to inside face of hull structure 100 via plates 222 and 223. Gear 690 at the inside end of shaft 680 drives main plant gear wheel 710.
[0137] Longitudinal forces on shaft 680 are transmitted to bearings 225 and 215 via thrust bearings 681 and 682 attached to shaft 680.
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[0139] Component parts of pin support structure (120), leg 121, top part 122 and external part 123 are shown in addition to parts described in
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[0141] The opening through internal bearing 235 is utilised to carry in hydraulic pipes 830 serving power transfer between the nacelle (501) and the on-board power plant (700).
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[0143] Leg connection plates 321 are attached to leg 301, prop side connection plates 421 to prop 400. Stiffener plates 422 strengthen the prop and end plate 402 closes the prop against water ingress. Props pivot around leg-prop pin 320 between service and operating positions.
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[0145] Leg side control rope 472 connecting to prop connection plate 433 with shackle 471 runs guided by rope roller 336 mounted on frame 335 to rope winch 338 held by frame 337. Guide 345 attached to leg 301 ensures prop 400 is in the correct position and connection plates 331 and 433 meet face to face.
[0146] Two main hull connection plates 431 with slots 332 are attached to top of prop 400. End plate 403 closes the prop against water ingress.
[0147] Hull side control rope 474 connecting via shackle 473 and hole 435 runs on side of main hull (100) to winch (475).
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[0149] In the alternative solution the two connection plates 431 are replaced by alternative connection plate 451, having guide nibs 452 and holes 453.
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[0151] Prop 400 is held in place by pin 332 going through holes 339 and 434 in plates 331 and 433 respectively. Pin 332 held in place by spring 334 connecting plate 333 attached to pin 332 to connection plate 331. Main hull connection plate 451 with guide nib 452 and shear pin holes 453 are shown. Top leg-prop connection is same for preferred connection layout, not shown.
[0152] Guide 345 ensures prop side connection plate 433 moves towards leg side plate 331 while being pulled up by control rope (472).
[0153] Right side shows a version of two prop-hull connection pates 431 being attached to prop 400, leg mounted upper rope winch 338 and its frame 337 with control rope 472 and shackle 471 attached to leg-prop connection plate 433.
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[0163] Movement of prop 400 towards main body 100 is guided by main connection plate guide nib 452 sliding within alternative connection guide channel 182.
[0164] Control rope hole 154 in plate 151 allows the threading through of control rope 474. Rollers 172 held by roller frames 171 lead control rope 474 towards winch 475.
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[0168] Front 510 and rear 511 nacelle covers rotate with the turbine blades 550. Torque from the rotation of turbine blades 550 carried through shaft 553 to horizontal axis gear wheel 610, to inclined axis gear wheel 620 to shaft 630 and through shaft splice 640 to upper shaft 650. Thrust bearing 631 is held by bearing housing 632 attached to lower part of leg 302. Bearing 634 attached to lower leg 302 via bearing frame 633 provides the second point of support for lower shaft 630. Top part of dive shaft 650 is supported by bearing 652 attached to lower part of leg 302 via bearing frame 651. This arrangement allows the rotation of shaft 630 and 650 around axes X-Y as well as the rotation of lower part of leg 302 and nacelle 501 relative to upper part of leg 301. This rotation could be driven and controlled by drive unit 581 via shaft 582 and drive wheel 583 engaging with lower part of leg 302.
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[0171] Indicative section through nacelle 501 taken along turbine axes 553 showing potential hydraulic drive train. Leg 301 to leg 302 and to nacelle 501 connections as on
[0172] In potential utilisation hydraulic drive train composed of gear box/transmission 810 supported on lower/upper mounting frames 811/813 with position adjustment packers 812 installed in lower part of leg 302 and hydraulic pump 820 supported on mounting plates 821 and 823 with adjustable packer 822 installed in upper part of leg 301. Gear wheel 620 transfers torque to gear box 810 via shaft 635, gear box 810 connects to hydraulic pump 820 via shaft 636 held by bearing 638 attached to lower leg 302 via bearing frame 637, shaft splice 640 and shaft 645 held by bearing 647 mounted on bearing frame 646. Hydraulic pump 820 connects to on-board plant via hydraulic pipes 830.
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[0174] Horizontal Axis Tidal Turbine with blades assumed. Operating position is shown with leg 301/302 secured in position by props 400 connecting to main body 100 and holding nacelle 501 and turbine blades 550 under the water surface 2 and away from main body 100.
[0175] Leg control ropes 353 and 354 connect to winches 355 and 356 respectively, top prop control ropes 472 connect to leg 301 and top of prop 400, lower control ropes 474 connect to winches 475. The external end of main hinges 200 are held by the pin/hinge support structure 120, leg support structure 140 is not connected to leg 301 in this position.
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[0177] The legs 301 and 302 are in transition between operating and service positions. Turbine blades 550 are aligned with leg 301 and props 400 are folded and secured to legs 301. Movement towards leg support structure 140 achieved by winch 355 pulling leg 301 while winches 356 and 475 are letting out to allow movement. Movement towards operating position achieved by winch 356 puling and winch 355 letting out while winches 475 are just taking up the slack in the control rope.
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[0183] Schematic cross section near leg support structure 140.
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[0188] Turbine. Modified Vertical Axis Tidal Turbine assumed. Detail section through leg 300 showing shaft seal/bearing 305, bulk head/end plate 309, shafts 630 and 650 with shaft splice 640, thrust bearing 631, thrust bearing housing 632, bearing frame 633, and bearing 634. Vertical Axis Turbine 570 shown schematically.
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[0190] As previously stated, an objective of the invention is to provide a marine power plant whose assembly allows of movement of the operating unit (underwater plant) 500 from specified position underwater (operating position) to another specified point above water and next to body of the host vessel (service position) by adopting an inclined hinge 200 around which the link element 301, 302 holding the operating unit 500 rotates, as can be seen in
[0191] This results in the operating unit travelling in an inclined plane from position XA to XB or back. The exact location and inclination angle AL of hinge axes W and Z and the length of the link/keg element 301/302 are designed to place the operating unit 500 into the desired positions specified by depth below water surface and distance from body of vessel for the operating and height above water surface and distance from body of vessel for the service positions.
[0192] Typically axes V, W, Z, XA and YA are in a plane normal (perpendicular) to the longitudinal axis U, this plane being depicted by points D, E, F, T, G, H, I, J and K.
[0193] The position of point O—intersection of axes W, Z, V and U—is being determined by the size of the on-board plant 700 and the position of the internal plant main axis 710, see
[0194] Hinge points B and C on axes Z and W are determined such that leg 301 and the folded-up props 400 are clear of the main body 100 in the service position indicated by axes XB and YB, see
[0195] Lateral distance/space for servicing nacelle can be provided by rotating axes W and Z around axis V out of the normal plane.
[0196] The layout and construction of the main hinge is in two parts, both aligned on the same axis, one attached directly to the main vessel, the other via the hinge support structure. Both hinges are cylindrically shaped allowing a shaft being installed through the two cylindrical openings, aligned on the same axis as the bearings and rotating independently of the link element. This allows for a drive train of shafts and bevel gears from the link element through the hinge into the body of the host vessel. Absence of said drive train and shaft allows pipes and cables being led through the opening.
[0197] An embodiment of the above feature is best shown on
[0198] On the hull side connection plates 232 and 233, attached to the main hull 100 hold the bearing mounting plate 234. The fixed part of bearing 235 is attached to mounting plate 234 via its flange in a manner allowing adjustment of position so bearing 235 can be lined up with the other bearings 245, 225 and 215. The cylindrical part of 235 is shaped both on the inside 238 and outside 237 to provide a bearing surface to shaft 680 on the inside and to rotating bearing 236 on the outside.
[0199] Rotating part 236 has bearing surface on the inside of the cylindrical part 237—bearing against the external face of bearing 235—and flange attached to main connection plate 310 of link/leg 301.
[0200] On the external side the arrangement is similar, fixed bearing 245, attached to hinge support structure 123 by its flange, holds shaft 680 on the inside through bearing surface 248 and rotating bearing 246 on the outside via face 247.
[0201] Interfaces 237, 238, 247 and 248 are to be bearing surfaces allowing relative rotation and able to transfer forces acting in the direction of the link/leg 301 axis XA.
[0202] This arrangement allows shaft 680 and link/leg element 301 both to rotate around axis Z independently.
[0203] Guide angles 239 and 249 are attached to connection plate 232 and hinge support structure 123 respectively and extend in a circular shape around axis XA to take up forces acting transversely to link/leg axis XA, transmitted by leg stiffener and guide plates 311.
[0204] The above arrangement makes it possible to construct a mechanical shaft-bevel gear -shaft drive train between the operational unit (500) via shafts (630) and 650 by having a bevel gear 660 attached on shaft 650 fitting between the main connection plates 310 of link/leg 301, engaging with bevel gear 670 fitted on shaft 680 which has bevel gear 690 attached, engaging gear 710 of the main on-board plant 700.
[0205] Inside the main hull 100 there are simple fixed bearings 225 and 215 with internal face serving as bearing to shaft 680 and flanges allowing position adjustment and connection to mounting plates 224 and 214, which are in turn attached to connection plates 222, 223 and the hull side and 212 and 213 on the main plant side. The ends of bearings 225 and 215 serve as thrust bearings against thrust bearings 681 and 682. Thrust bearing are necessary as bevel gears generate longitudinal—acting along the shaft—forces which need to be resisted by the arrangement.
[0206] The leg side shaft 650 has its thrust bearing 653 and thrust bearing housing 654 at the top of the link/leg element 301, attached to thrust bearing holding plate 312.
[0207] The arrangement of bearings 235 and 245 allows for hydraulic pipes 830 of a hydraulic drive train to pass through the central opening of bearing 235, as shown on
[0208] Link/leg members 301/302 are moved between service and operating positions by ropes 353 and 354 attached to winches 355 and 356 respectively. See
[0209] The ropes connect to rope connection plate 352 attached to upper leg 301 near the leg-prop hinges. One of said winches tightening, the other relaxing would rotate leg 301/302 around main pin 200 (axis W or Z). Designing leg 301/302 and operating unit 500 in a manner as to achieve close to neutral buoyancy of leg 301/302 and nacelle 500 allows easier moving of leg 301/302.
[0210] In service position connection plate 351 attached to leg 301 and connection plate 145 attached to leg support structure 140 come in contact and are connected to secure leg 301/302 in the service position. This can be done simply by bolting them together. See
[0211] Props are used to stabilise the link element and operating unit in the operating position. The props are attached to link element via hinges aligned at a suitable angle and connect to main body of vessel via releasable connection. In service position and during transition from one position to other props are disconnected from main vessel, folded and secured against link/leg element.
[0212] Prop-leg connection hinges 320 to be positioned such to avoid interference with the working of the operating unit. See
[0213] Connection points M and N are to be located such that the angle between link/leg 301 and prop 400 is approximately 45 degrees in plan—see
[0214] The top end of props 400 has releasable connection to link/leg 301 ensuring a fixed position is maintained while link/leg 301 rotates from service to operating position or back.
[0215]
[0216] The prop-hull connection is accomplished by main connection plate 431 having cut 432 allowing engagement with connection pin (162) attached to main hull (100) as prop 400 is rotated around pin 320. Plates 431 are parallel to plane BLM or BLN in which centreline P/Q of props 400 moves. Pins 320 and 162 are oriented perpendicular to this plane (see also
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[0218] The end view of both configurations is shown on
[0219] Alternatively, plates 331 and 433 can be connected by bolt 341 for the transition as shown on
[0220] When link/leg 301/302 reaches operating position after moving from position XB/YB to XA/YA, withdrawing locking pin 332 or un-installing bolt 341 releases prop 400 from its locked position. Pulling in rope 474 with winch (475) while keeping rope 472 tight but letting will move prop 400 towards its operating position, top end approaching hull 100. See
[0221] Connection of prop 400 to hull 100 is accomplished by slots 432 in main prop connection plates 431 engaging with pins 162 held by plates 161 connected to main hull 100. Plates 161 provide side support to plates 431 as well. See
[0222] Threaded locking rods 166 driven through threaded holes in brackets 165 lock plates 431 in operating position by preventing lift up and disengagement from pin 162. See
[0223] Threaded locking rods 166 extend to the deck of the main hull 101 allowing operations from above, as the connection is expected be under water due to its low position.
[0224] When the connection is due to be released, threaded locking rods 166 are wound up allowing plates 431 move upwards and disengage from pins 162. Tightening winches 338 while relaxing winches 475 will move props 400 towards link/leg 301 allowing securing for transition as described above.
[0225] Alternative embodiment of connection between props 400 and hull 100 is accomplished by adopting connection plate 451 in position perpendicular to planes BLN and PLM. Hull side connection plate 151 has same orientation and they match when prop 400 is in correct position. The force transfer is accomplished by shear pins 153 being attached to hull side connection plate 151 engage pin holes 453 in prop side connection plate 451. See
[0226] Shear pins 153 are attached to plate 151 in a manner strong enough to resist calculated shear forces. Their large diameter base engages through the thickness of plate 451 providing shear and bearing resistance and smaller diameter threaded end engages with the threaded plate/locknut 459 of locking device 455. See
[0227] Prop end connection plates 451 are being guided into position by guide nibs 452 sliding in guide channels 182 attached to plates 151.
[0228] The link elements are formed in two parts (upper and lower) having a common longitudinal axis and allowing rotation of the lower part around the longitudinal axis.
[0229] One embodiment of this feature is accomplished by forming upper leg 301 and lower leg 302 using circular hollow sections, upper leg 301 is larger in diameter to allow bearings 307, 308 and bearing housing 303, 304 being installed between upper and lower parts 301/302. Lower part 302 extends suitable distance inside upper part 301 to provide adequate strength to the connection against forces acting on operating unit (500) and lower part of leg 302. The gap between lower 302 and upper 301 parts is sealed by shaft bearing 305 rendering the inside of upper part 301 waterproof.
[0230] Controlled rotation of lower part 302 and operational unit (500) is achieved by drive unit 581 installed inside the upper leg 301 above the top end of lower leg 302, driving wheels 583 via drive shafts 582. Drive wheels 583 engage top of lower leg 302 and rotate it in a controlled manner. It is envisaged that without drive unit 581 operational unit (500) and lower leg 302 would be free to rotate. See
[0231] In case mechanical drive train is to be installed lower shaft 630 and upper shaft 650 would be joined by shaft splice 640 to allow for method of assembly. Shafts 630 and 650 would be held by thrust bearing 631 and rotational bearings 652 and 634 held by bearing frames 632, 633 and 651, attached to inside of lower leg 302. See
[0232] A movable and/or extendable access deck 190 installed in a manner to avoid the path of the link element and operational unit. See
[0233] The fixed part is designed to fit under the path of leg 301/302 and props 400 and allow extension to provide full width and side protection in the service position to nacelle and other components.
[0234] Potential utilisations of the invention are depicted on
[0235] Axonometric views of potential HATT utilisation are shown on
[0236] Potential utilisation with modified vertical axis tidal turbine is indicated on
[0237] Potential nacelle arrangement schematic with utilisation of low speed hydraulic pumps to create the hydraulic drive train is shown on
[0238] An assembly and system described provides a number of benefits over other known assemblies.
[0239] The operating unit can be moved next to the main vessel and mostly above water, reducing beam and draft of vessel in the servicing stage.
[0240] Servicing the operational unit can be carried out from fixed or movable platforms attached to the main vessel.
[0241] The construction of the link element is simple, commercially available sections (large diameter pipes) can be considered.
[0242] Moving the operating unit from one position to the other is being accomplished by ropes and winches, avoiding the need for complex hydraulics.
[0243] The arrangement and formation of the hinge opens up the possibility of using mechanical drive train from/to the operating unit to/from the on-board plant (generator/engine) located in the main buoyancy vessel rather than in the nacelle.
[0244] The mechanical drive train can be adopted to suit the application of vertical axis turbines and make their construction simpler.
[0245] The arrangement suits the application of hydraulic drive train between the operating unit and on-board plant.
[0246] The use of mechanical or hydraulic drive trains with the generator being positioned in the main vessel offers the possibility of the blades and nacelle being fully above the water in the service position.
[0247] Adopting mechanical or hydraulic drive trains to place the main plant on board the main vessel simplifies design, construction operation and servicing.
[0248] The simpler structural arrangement allows for simpler control system, electronic, hydraulic and mechanical.
[0249] The above benefits aggregate to financial savings and reduced construction times.
REFERENCE NUMERALS FOR COMPONENT PARTS
[0250] 1 Body of water [0251] 2 Surface of the body of water. [0252] 100 Floating vessel holding the operating unit [0253] 101 Floating vessel top deck [0254] 120 Pin Support Structure—holding the external end of the Main Hinge [0255] 121 Pin Support Structure—Columns connecting top to Floating Vessel [0256] 122 Pin Support Structure—Top [0257] 123 Pin Support Structure—Housing and mounting part for the Main Hinge [0258] 140 Leg Support Structure—holding and securing the Leg in service position [0259] 145 Leg Support Structure—Connection plate to secure Leg in service position [0260] 151 Prop—Alternative top connection—Hull side connection plate [0261] 152 Prop—Alternative top connection—Hull side connection plate—stiffener [0262] 153 Prop—Alternative top connection—Shear pin with threaded top [0263] 154 Prop—Alternative top connection—Hull side connection plate—Rope hole [0264] 161 Prop—Hull—Main connection—Hull side Plate [0265] 162 Prop—Hull—Main connection—Pin [0266] 163 Prop—Hull—Main connection—Guide plate [0267] 165 Prop—Hull—Main connection—Bracket for locking rod [0268] 166 Prop—Hull—Main connection—Locking rod [0269] 167 Prop—Hull—Main connection—Brackets for Locking rod [0270] 168 Prop—Hull—Main connection—Locking rod handle [0271] 171 Prop—Hull—Control rope roller—frame/holding plate [0272] 172 Prop—Hull—Control rope roller [0273] 181 Prop—Hull connection—Prop guide frame [0274] 182 Prop—Alternative top connection—Guide channel [0275] 190 Access platform/walkway attached to the Floating Vessel [0276] 191 Access platform/walkway—Upper level [0277] 195 Access ladder [0278] 200 Main Hinge—the structure enabling the rotation of the leg [0279] 212 Plant hinge—Connection plate [0280] 213 Plant hinge—Connection plate [0281] 214 Plant hinge—Bearing mounting plate [0282] 215 Plant hinge—Shaft bearing—Fixed [0283] 222 Main Hinge—Inside part—Hull connection plate [0284] 223 Main Hinge—Inside part—Hull connection plate [0285] 224 Main Hinge—Inside part—Bearing mounting plate [0286] 225 Main Hinge—Inside part—Shaft bearing—Fixed [0287] 232 Main hinge—Internal side—Hull connection plate [0288] 233 Main hinge—Internal side—Hull connection plate [0289] 234 Main hinge—Internal side—Bearing mounting plate [0290] 235 Main hinge—Internal bearing—Fixed part [0291] 236 Main hinge—Internal bearing—Rotating part [0292] 237 Main hinge—Hull side bearing—Fixed-Rotating contact face [0293] 238 Main hinge—Hull side bearing—Fixed-Shaft contact face [0294] 239 Main Hinge—Internal guide angle [0295] 245 Main hinge—External bearing—Fixed part [0296] 246 Main hinge—External bearing—Rotating part [0297] 247 Main hinge—External bearing—Fixed-Rotating contact face [0298] 248 Main hinge—External bearing—Fixed-Shaft contact face [0299] 249 Main Hinge—External guide angle [0300] 300 Leg—Pivoting member connected to the Vessel holding the operating unit [0301] 301 Leg—Top part attached to the Floating Vessel via the Main Hinge [0302] 302 Leg—Lower part connecting the Operating unit to the Top part [0303] 303 Leg—Lower part—Top bearing housing [0304] 304 Leg—Lower part—Lower bearing housing [0305] 305 Leg—Shaft seal [0306] 306 Leg—Lower part—Nacelle connection flange [0307] 307 Leg—Lower part—Top bearing [0308] 308 Leg—Lower part—Lower bearing [0309] 310 Leg—Main Hinge connection—Main plate [0310] 311 Leg—Main Hinge connection—Stiffener and guide plate [0311] 312 Leg—Main Hinge connection—Thrust bearing holding plate [0312] 320 Leg—Leg-Prop hinge [0313] 321 Leg—Prop lower connection plate [0314] 330 Leg—Prop Top connection—securing the prop in the service position [0315] 331 Leg—Prop upper connection plate [0316] 332 Leg—Prop connection pin [0317] 333 Leg—Prop connection pin—Spring thrust plate [0318] 334 Leg—Prop connection pin—Spring [0319] 335 Leg—Prop Upper rope roller holding frame [0320] 336 Leg—Prop Upper rope roller [0321] 337 Leg—Prop Upper rope winch holding frame [0322] 338 Leg—Prop Upper rope winch [0323] 339 Leg—Prop upper connection—pin hole [0324] 340 Leg—Prop upper connection—pin socket [0325] 341 Leg—Prop upper connection—bolt [0326] 345 Leg-Prop upper connection—Guide [0327] 351 Leg—Service position securing plate [0328] 352 Leg—Leg moving rope connection plate [0329] 353 Leg moving rope—Forward [0330] 354 Leg moving rope—Rear [0331] 355 Leg moving winch—Forward [0332] 356 Leg moving winch—Rear [0333] 400 Prop—members connecting the leg to the vessel in to operating position [0334] 402 Prop—Lower end—end plate [0335] 403 Prop—Upper end—end plate [0336] 421 Prop—Lower end—connection plate [0337] 422 Prop—Lower end—stiffener plate [0338] 431 Prop—Upper end—Main Hull connection plate [0339] 432 Prop—Upper end—Main connection plate—pin slot [0340] 433 Prop—Upper end—Leg and Rope connection plate [0341] 434 Prop—Upper end—Leg and Rope connection plate—Pin hole [0342] 435 Prop—Upper end—Leg and Rope connection plate—Rope hole [0343] 451 Prop—Alternative top connection plate [0344] 452 Prop—Alternative top connection plate—guide nib [0345] 453 Prop—Alternative top connection plate—pin hole [0346] 455 Prop—Alternative top connection—Locking device—Handle [0347] 456 Prop—Alternative top connection—Locking device—Frame [0348] 457 Prop—Alternative top connection—Locking device—Main plate [0349] 458 Prop—Alternative top connection—Locking device—Clamping cylinder [0350] 459 Prop—Alternative top connection—Locking device—Locking nut [0351] 471 Prop—Upper end—Top link/shackle [0352] 472 Prop—Upper end—Upper/Leg side control rope [0353] 473 Prop—Upper end—Lower link/shackle [0354] 474 Prop—Upper end—Lower/Hull side control rope [0355] 475 Hull side Prop control winch [0356] 500 Operating unit—plant operating under water and serviced above the water [0357] 501 Nacelle [0358] 502 Nacelle—Leg connection flange [0359] 503 Nacelle—Leg attaching “neck” [0360] 504 Nacelle—Main body [0361] 505 Nacelle—Bulk head and bearing mounting plate [0362] 506 Nacelle—Central mounting frame for shaft bearings [0363] 507 Nacelle—Central shaft bearings [0364] 510 Nacelle—Front rotating cover [0365] 511 Nacelle—Rear rotating cover [0366] 550 Turbine Blade—Horizontal axis turbine [0367] 551 Turbine blade—Mounting flanges [0368] 552 Turbine blade—Stub shaft [0369] 553 Turbine blade—Horizontal shaft [0370] 554 Turbine—Shaft seal and bearing [0371] 555 Turbine blade—Horizontal shaft—Pump shaft splice [0372] 556 Turbine axis—Bearing frame [0373] 557 Turbine axis—Bearing frame—Base [0374] 558 Turbine axis—Bearing [0375] 559 Nacelle—Hydraulic pump—Mounting podium [0376] 570 Vertical Axis Turbine [0377] 581 Nacelle rotator—drive unit [0378] 582 Nacelle rotator—drive shaft [0379] 583 Nacelle rotator—drive wheel [0380] 610 Drive train—Bevel Gear Wheel—Horizontal axis—Turbine [0381] 620 Drive train—Bevel Gear Wheel—Inclined axis—lower end [0382] 630 Drive train—Drive shaft—Lower end [0383] 631 Drive train—Lower shaft—Thrust bearing [0384] 632 Dive train—Lower shaft—Thrust bearing housing [0385] 633 Drive train—Lower shaft—Bearing frame [0386] 634 Drive train—Lower shaft—Bearing [0387] 635 Drive train—Lower shaft—Lower part [0388] 636 Drive train—Lower shaft—Upper part [0389] 637 Drive train—Lower shaft—Upper Bearing frame [0390] 638 Drive train—Lower shaft—Upper Bearing [0391] 640 Drive train—Drive shaft—splice [0392] 645 Drive train—Drive shaft—Top part [0393] 646 Drive train—Drive shaft—Top part—Shaft bearing frame [0394] 647 Drive train—Drive shaft—Top part—Shaft bearing [0395] 650 Drive train—Drive shaft—Top part [0396] 651 Drive train—Top shaft—Bearing Frame [0397] 652 Drive train—Top shaft—Bearing [0398] 653 Drive train—Top Thrust bearing on shaft [0399] 654 Drive train—Top Thrust bearing housing [0400] 660 Drive train—Bevel Gear Wheel—Inclined axis—top end [0401] 670 Drive train—Bevel Gear Wheel—Inward axis—top end [0402] 680 Drive train—Inward axis Drive shaft [0403] 681 Inward shaft—Thrust bearing—Top [0404] 682 Inward shaft—Thrust bearing—Lower [0405] 690 Drive train—Bevel Gear Wheel—Inward axis—lower end [0406] 700 Internal Plant on board the Floating Vessel [0407] 705 Internal Plant—Floor beams [0408] 706 Internal Plant—Mounting podium [0409] 710 Internal Plant—Main axis—Bevel gear wheel [0410] 810 Hydraulic drive train—Gear box/Transmission [0411] 811 Hydraulic drive train—Gear box/Transmission—Lower mounting frame [0412] 812 Hydraulic drive train—Gear box/Transmission—Packer [0413] 813 Hydraulic drive train—Gear box/Transmission—Upper mounting frame [0414] 820 Hydraulic drive train—Hydraulic pump [0415] 821 Hydraulic drive train—Hydraulic pump—Lower mounting plate [0416] 822 Hydraulic drive train—Hydraulic pump—Packer [0417] 823 Hydraulic drive train—Hydraulic pump—Upper mounting plate [0418] 830 Hydraulic drive train—Pipe [0419] 831 Hydraulic drive train—Pipe bracket