Underwater device and method for controlling posture of underwater device
10451026 ยท 2019-10-22
Assignee
Inventors
- Norihisa Handa (Tokyo, JP)
- Shigeki Nagaya (Tokyo, JP)
- Yoshiyuki Yamane (Tokyo, JP)
- Akio Ito (Tokyo, JP)
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
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/97
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B17/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/74
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F03B17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
This underwater device is twin-motor underwater floating-type power generation device that is provided with: a device main body that is equipped with a pair of pods that have a turbine, and with a connecting beam that connects these pods together in parallel with each other; a sinker; and tether cables that tether the device main body to the seabed via this sinker. The respective turbines of the pods are each provided with variable pitch turbine blades. This device is also provided with a depth meter that detects deviation in posture in the roll direction that is generated in the pair of pods, and a posture controller that controls the pitch of the variable pitch turbine blades of the respective turbines so as to nullify any deviation in posture in the roll direction that has been generated in the pair of pods and has been detected by the depth meter.
Claims
1. An underwater device comprising: a plurality of horizontal axis-type turbines that rotate underwater, each of the turbines comprising variable pitch turbine blades; a plurality of pods, each of the pods housing at least one of the turbines; a connecting beam connecting the pods; a plurality of tilt detecting devices disposed at the plurality of pods and that detect deviation in posture in a roll direction that is generated in the pods; a posture controller that controls the posture in the roll direction of the plurality of turbines and keeps each one of the pods substantially horizontal to each other, and a torque meter that measures a torque that is generated respectively in each one of the plurality of turbines; wherein the posture controller: (i) receives a measured torque for each one of the plurality of turbines from the torque meter and (ii) controls the posture in the roll direction and keeps each one of the pods substantially horizontal to each other by controlling, based on the measured torque for each one of the plurality of turbines, the torque that is generated in at least one of the plurality of turbines by controlling a pitch of the variable pitch turbine blades of the at least one of the plurality of turbines so as to cancel out the deviation in the posture of the pods in the roll direction detected by the plurality of tilt detecting devices.
2. The underwater device according to claim 1, wherein the underwater device is an underwater tethered-type ocean current power generation device that is provided with a plurality of power generation units which have the plurality of turbines that are rotated by sea currents, and which generate power using the rotation of the plurality of turbines, the plurality of power generation units are installed in the plurality of pods, and wherein the posture controllers that control the pitch of the variable pitch turbine blades of the respective turbines in the plurality of power generation units so as to nullify any deviation in the posture in the roll direction that has been generated in the plurality of power generation units and has been detected by the plurality of tilt detection devices.
3. The underwater device according to claim 2, wherein a flow conditions measuring device that ascertains the flow conditions of an ocean current running towards the plurality of power generation units and outputs these flow conditions to the posture controller is placed on an upstream side of the plurality of power generation units that are tethered to the seabed, and, based on measurement results obtained from the flow conditions measurement device, pitch control is performed by the posture controller on the variable pitch turbine blades of the respective turbines of the plurality of power generation units in order to forestall in advance the possibility of any change occurring in the posture of the plurality of power generation units in the roll direction.
4. The underwater device according to claim 3, wherein an acoustic Doppler current profiler that is able to measure flow velocity distributions in a depth direction is used as the flow conditions measuring device, and a plurality of these acoustic Doppler current profilers are placed on an upstream side of the plurality of power generation units.
5. The underwater device according to claim 3, wherein a buoy that measures flow conditions is used as the flow conditions measuring device, and a plurality of these buoys are placed on an upstream side of the plurality of power generation units.
6. The underwater device according to claim 1, wherein each one of the plurality turbines includes a turbine shaft installed in a respective pod and a power generator joined to the turbine shaft such that the torque meter calculates the torque of a respective turbine based on an output of the power generator and a revolution count of the turbine shaft, and the posture controller controls the torque generated in each one of the plurality turbines by adjusting a load applied to each one of the plurality of turbines from a respective turbine shaft joined to a respective power generator.
7. The underwater device according to claim 1, wherein the posture controller controls the torque generated respectively in each one of the plurality of turbines in accordance with a measurement result from a flow condition measuring device provided upstream of the pods.
8. The underwater device according to claim 1, wherein the posture controller controls a pitch of at least one of the plurality of turbines to create a torque imbalance between the one of the plurality of turbines and another of the plurality of turbines to cancel deviation in posture between one of the plurality of pods and another of the plurality of pods.
9. A method for controlling the posture of an underwater device comprising a plurality of horizontal axis-type turbines that rotate underwater, each one of the turbines comprising variable pitch turbine blades, a plurality of pods, each one of the pods housing at least one of the turbines, a connecting beam connecting the pods, a plurality of tilt detecting devices disposed at the plurality of pods and that detect deviation in posture in a roll direction that is generated in the pods, and a posture controller that controls the posture in the roll direction of the plurality of turbines; the method comprising: controlling a torque that is generated in at least one of the plurality of turbines by controlling, with the posture controller, a pitch of the variable pitch turbine blades of the at least one of the plurality of turbines to create an imbalance of torque of one of the plurality of turbines relative to another of the plurality of turbines such that the posture of the plurality of turbines in the roll direction is controlled so as to cancel out the deviation in the posture of the pods in the roll direction that is detected by the plurality of tilt detecting devices.
10. The method for controlling the posture of the underwater device according to claim 9, wherein the underwater device is an underwater tethered-type ocean current power generation device that is provided with a plurality of power generation units which have the plurality of turbines that are rotated by sea currents, and which generate power using the rotation of the plurality of turbines, and the plurality of power generation units are installed in the plurality of pods, and pitch control of the variable pitch turbine blades of the respective turbines in the plurality of power generation units is performed so as to nullify any deviation in the posture in the roll direction that has been generated in the plurality of power generation units.
11. The method for controlling the posture of the underwater device according to claim 9, wherein the posture controller controls the torque generated respectively in each one of the plurality of turbines in accordance with a measurement result from a flow condition measuring device provided upstream of the pods.
12. The method for controlling the posture of the underwater device according to claim 9, wherein the underwater device includes a torque meter that measures a torque that is generated respectively in each of the plurality of turbines, and the method further includes receiving, by the posture controller, a measured torque for each one of the plurality of turbines from the torque meter; and controlling, with the posture controller, the posture in the roll direction of the plurality of turbine to keep each one of the pods substantially horizontal to each other by controlling, based on the measured torque for each of the plurality of turbines, the torque that is generated in at least one of the plurality of turbines by controlling a pitch of the variable pitch turbine blades of the at least one of the plurality of turbines so as to cancel out the deviation in the posture of the pods in the roll direction detected by the plurality of tilt detecting devices.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENT
(10) Hereinafter, the present disclosure will be described based on the drawings.
(11)
(12) It is essential that a twin-motor floating type of power generation device such as is shown in these drawings is able to float upwards or downwards underwater without any sizable difference occurring between the respective depths of the pair of power generation units, namely, is able to float upwards or downwards underwater while the pair of power generation units are kept substantially horizontal to each other. In the ocean current power generation device according to the present disclosure, posture deviation in the roll direction that is generated in the pair of power generation units refers to the horizontality of the pair of power generation units being lost so that they are no longer horizontal relative to each other.
(13) A turbine having a radius of several tens of meters is used for the horizontal axis-type turbine that generates power when rotated by an ocean current. Therefore, a power generation unit provided with such a turbine is tethered at a depth of approximately several tens of meters. In the case of a twin-motor underwater floating-type power generation device, the power generation capacity is approximately several MW. Note that this power generation capacity varies in accordance with differences in specifications and the like.
(14) As is shown in
(15) The pair of pods 4 and 4 contain built-in power generators (not shown in the drawings) that are joined to the turbine shaft so as to form a power generator. The two tether cables 6 and 6 are each connected to one of the pair of pods 4 and 4 of the device main body 2, and they are also joined into a single cable which is connected to the sinker 8 so that, overall, they form a Y shape.
(16) A turbine 3 is placed on the downstream side (i.e., on the left side in the drawing) of each one of the pair of pods 4 and 4 following the flow of seawater. The turbine 3 is formed by attaching two blades 3b and 3b to a hub 3a that is joined to a rear end portion of a turbine shaft. The turbines 3 and 3 are constructed such that they rotate in mutually opposite directions so that their respective rotation torques are canceled out.
(17) In this case, the two blades 3b and 3b of the turbine 3 are variable pitch blades whose pitch relative to the hub 3a is able to be changed. Moreover, in the pair of pods 4 and 4 there are also provided a tilt detecting device that detects any deviation in posture in the roll direction that is generated in the pair of pods 4 and 4, and a posture controller 9 that controls the pitch of the variable pitch turbine blades 3b and 3b of the turbines 3 and 3 so as to cancel out any deviation in the posture of the pods 4 and 4 in the roll direction that is detected by this tilt detecting device.
(18) Here, a gyro sensor (i.e., a gyroscope) or a depth meter can be employed as the tilt detecting device that detects any deviation in posture in the roll direction that is generated in the pair of pods 4 and 4, and in this embodiment a depth meter 7 is used as the tilt detecting device.
(19) Namely, in this embodiment, depth meters 7 and 7 are provided respectively in the pair of pods 4 and 4, and any deviation in posture in the roll direction that is generated in the pair of pods 4 and 4 is detected based on differences in depth obtained by the two depth meters 7 and 7.
(20) Note that, in order to achieve redundancy in the tilt detection system, it is also possible to employ a combination of gyro sensors and the depth meters 7 and 7.
(21) In the posture controller 9, when a deviation in the posture of the pods 4 and 4 (i.e., of the device main body 2) in the roll direction has been detected, for example, as is shown in
(22) In the ocean current power generation device 1 according to this embodiment, for example, if a slight deviation in posture in the roll direction is generated in the pair of pods 4 and 4 (i.e., in the device main body 2) so that the device main body 2 begins to rotate in the roll direction, the depth meters 7 and 7 detect this rotation and output a signal to the posture controller 9.
(23) In the posture controller 9, for example, pitch control is performed on one turbine 3 of the left and right turbines 3 in order to change the pitch of the variable pitch turbine blade 3b from the low-resistance state shown in
(24) In other words, as well as achieving a simplification of the apparatus structure and control system, it is possible to control the posture in the roll direction of the pair of pods 4 and 4.
(25)
(26) As is shown in
(27) The acoustic Doppler current profilers 10 that are serving as flow conditions measuring device measure the flow velocity distribution in the depth direction by emitting ultrasonic waves E in an upward direction from the seabed B side. By providing a plurality of (namely two in this embodiment) of these acoustic Doppler current profilers 10, it is possible to measure changes in the flow velocity of the current running past the pair of pods 4 and 4.
(28) In the posture controller 9 of this ocean current power generation device 1, based on measurement results for the flow velocity distribution obtained from the two acoustic Doppler current profilers 10 and 10, the pitch of the variable pitch turbine blades 3b and 3b of the pair of turbines 3 and 3 is controlled in order to forestall in advance the possibility of any change occurring in the posture of the pair of pods 4 and 4 in the roll direction.
(29) In the ocean current power generation device 1 according to this embodiment, if the flow velocity distribution in the depth direction of the ocean current changes on the upstream side of the pair of pods 4 and 4, then it is also possible that a change in the posture of the pair of pods 4 and 4 in the roll direction will also occur. However, if this possibility does arise, the posture controller 9 controls the pitch of the variable pitch turbine blades 3b and 3b of the pair of turbines 3 and 3 based on measurement results from the acoustic Doppler current profilers 10 and 10 that measure these changes in the flow velocity distribution. As a result, it is possible to prevent the posture of the pair of pods 4 and 4 from deviating in the roll direction.
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(31) As is shown in
(32) Note that it is possible to measure the flow velocity of the current by using the aforementioned acoustic Doppler current profilers, or by using a fluid measuring instrument such as an electromagnetic flow meter or the like.
(33) In the ocean current power generation device 1 according to this embodiment as well, if the flow conditions of the ocean current changes on the upstream side of the pair of pods 4 and 4, then it is also possible that a change in the posture of the pair of pods 4 and 4 in the roll direction will also occur. However, if this possibility does arise, the posture controller 9 controls the pitch of the variable pitch turbine blades 3b and 3b of the pair of turbines 3 and 3 based on measurement results from the plurality of buoys 11 that have recognized these changes in the flow conditions. As a result, it is possible to prevent the posture of the pair of pods 4 and 4 from deviating in the roll direction.
(34) In the ocean current power generation device 1 according to the above-described embodiment, because the acoustic Doppler current profilers 10 and 10 or the buoys 11 that measure flow conditions are used as a flow conditions measuring device, any changes in the posture of the pair of pods (i.e., power generation units) 4 and 4 in the roll direction are prevented in advance without the structure of the device or the control system being made more complex.
(35) Moreover, provided that the torque balance is maintained between the respective turbines 3 and 3 that are provided in the pair of pods 4 and 4, then even if the flow conditions of the ocean current around the pair of pods 4 and 4 does change, there is no deviation in the posture of the pair of pods 4 and 4 in the roll direction. For this reason, it is also possible to eliminate any deviation in the posture of the pair of pods 4 and 4 in the roll direction by measuring the torques that are generated respectively in each of the turbines 3 and 3, and then allowing the posture controller 9 to control the pitch of the variable pitch turbine blades 3b and 3b of the respective turbines 3 and 3 such that these torques are kept constant.
(36) In this case, as is shown, for example, in
(37) Furthermore, it is also possible to adjust the torque balance between the respective turbines 3 and 3 that are provided in the pair of pods 4 and 4 by adjusting the load that is applied to the turbine shafts 3c from the power generators 12 that are joined to the turbine shafts 3c. In this case, the torques generated in the respective turbines 3 are measured using a method such as those illustrated in the above-described
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(40) In the example shown in
(41) In the example shown in
(42) Note that in the embodiment shown in
(43) Moreover, it is also possible to predict or calculate the torque that will be generated in the respective turbines 3 and 3 based on the state of the ocean currents obtained using the flow conditions measuring device (i.e., the acoustic Doppler current profilers 10 or the buoys 11), and to then adjust the torque balance between the respective turbines 3 and 3 based on these results.
(44) The structures of the ocean current power generation device and the method of controlling the posture of an ocean current power generation device according to the present disclosure are not limited to the above-described embodiments. Additions, omissions, substitutions, and other modifications can be made insofar as they do not depart from the spirit or scope of the present disclosure. Accordingly, the disclosure is not limited by the foregoing description and is only limited by the scope of the appended claims.
(45) For example, the turbines 3 according to each of the above-described embodiments have the two variable pitch turbine blades 3b and 3b, however, the number of turbine blades is not limited to this. The installation position of the turbines 3 in the respective pods 4 is also not limited to the tail portion of the pod 4, and the turbines 3 may also be installed in a front portion (i.e., on the sinker 8 side) or in an intermediate portion of the pod 4, or in a combination of these positions. Moreover, in each of the above-described embodiments, a pair of left and right pods 4 and 4 are connected together via the connecting beam 5, however, it is also possible for three or more pods 4 and 4 to be joined together via the connecting beam 5 or the like.
(46) Furthermore, it is also possible for a plurality of pods 4 and 4 to be arranged vertically to each other, or both vertically and horizontally to each other.
(47) Moreover, in addition to a Y shape in which tether cables 6 extend out from each pod 4 and 4 and are then joined together partway along their length, the shape of the tether cable 6 may also be a V shape in which one end of each tether cable 6 extends from each of the pods 4 and 4, and the other end thereof is connected to the same sinker 8. Alternatively, it is also possible for either one or a plurality of tether cables 6 to extend from each individual pod 4, or from the connecting beam 5. If a plurality of pods 4 and 4 are arranged both vertically and horizontally relative to each other, then the tether cables 6 that extend out from each of these pods 4 and 4 may be arranged three-dimensionally such as, for example, in an X shape when viewed from the front. Moreover, the number of sinkers 8 to which the other end of the tether cables 6 is connected may either be one or a plurality of sinkers 8. Alternatively, a known tethering method other than using the tether cable 6 may also be employed.
(48) Moreover, in each of the above-described embodiments, a case is described in which the present disclosure is applied to the ocean current power generation device 1, however, the present disclosure may also be applied to underwater devices other than the ocean current power generation device 1 that are provided with a plurality of turbines and perform posture control using these turbines. For example, the present disclosure may also be applied to manned or unmanned self-propelled underwater sailing vessels, towed barges, and other structural objects (i.e., floating bodies and the like) that are confined underwater.
INDUSTRIAL APPLICABILITY
(49) According to the present disclosure, it is possible to provide an underwater floating-type underwater device ocean current that, in addition to having a simple structure and control system, makes it possible to reliably control the posture in a roll direction of a device main body, and to provide a posture control method for the same.