Wind turbine power generating apparatus and method of operating the same
10677220 ยท 2020-06-09
Assignee
Inventors
Cpc classification
F03D17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/331
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/322
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0224
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2200/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0276
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D7/0288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2270/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
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
F03D7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of operating a wind turbine power generating apparatus includes a step of obtaining a wind direction of a wind; a step of obtaining at least one of a wind velocity of the wind or an index of turbulence degree of the wind velocity; and a step of selecting an operation mode of the wind turbine power generating apparatus from among a plurality of operation modes including a normal operation mode and at least one load-suppressing operation mode in which a load applied to a wind turbine blade is smaller than in the normal operation mode, on the basis of whether the at least one of the wind velocity or the index of turbulence degree is at least a threshold. The threshold of the at least one of the wind velocity or the index of turbulence degree is variable in accordance with the wind direction.
Claims
1. A method of operating a wind turbine power generating apparatus including a wind turbine rotor having a wind turbine blade, the method comprising: a step of obtaining a wind direction of a wind received by the wind turbine rotor; a step of obtaining an index of turbulence degree of the wind velocity of the wind received by the wind turbine rotor during an operation of the wind turbine power generating apparatus; a step of selecting an operation mode of the wind turbine power generating apparatus from among a plurality of operation modes including a normal operation mode and at least one load-suppressing operation mode in which a target rotation speed lower than the normal operation mode or a pitch angle closer to a feather side than the normal operation mode is set such that a load applied to the wind turbine blade is smaller than that in the normal operation mode, on the basis of whether the index of turbulence degree is at least a variable threshold; and a step of controlling the wind turbine power generating apparatus based on the selected operation mode, wherein the variable threshold of the index of turbulence degree is a second threshold kX.sub.th, where k is a scaling factor which satisfies 0k<1, when the wind direction is in a second range being at least a part of a range other than a first range, provided that the variable threshold of the index of turbulence degree is a first threshold X.sub.th when the wind direction of the wind turbine power generating apparatus is in the first range, and wherein the step of controlling the wind turbine power generating apparatus includes: changing the target rotation speed or the pitch angle based on a newly selected operation mode in response to a first change in the index of the turbulence degree of the wind having the wind direction within the first range passing through the first threshold X.sub.th; and changing the target rotation speed or the pitch angle based on a newly selected operation mode in response to a second change in the index of the turbulence degree of the wind having the wind direction within the second range passing through the second threshold kX.sub.th.
2. The method of operating a wind turbine power generating apparatus according to claim 1, wherein the second range is a range where turbulence of an air flow of a wind toward the wind turbine rotor is larger than in the first range, due to another wind turbine power generating apparatus disposed around the wind turbine power generating apparatus or terrain surrounding the wind turbine power generating apparatus.
3. The method of operating a wind turbine power generating apparatus according to claim 1, further comprising: obtaining the wind velocity in addition to the index of turbulence degree, and wherein, in the step of selecting an operation mode, the at least one load-suppressing operation mode is selected if the wind velocity is at least a threshold.
4. The method of operating a wind turbine power generating apparatus according to claim 1, further comprising: a step of obtaining a load applied to the wind turbine blade, wherein, in the step of selecting an operation mode, an operation mode of the wind turbine power generating apparatus is selected from among the plurality of operation modes also on the basis of whether the load is at least a threshold.
5. The method of operating a wind turbine power generating apparatus according to claim 1, wherein the at least one load-suppressing operation mode includes a first load suppressing operation mode, and a second load suppressing operation mode in which the load is suppressed more than in the first load suppressing operation mode by reducing a rotation speed of the wind turbine rotor or by changing a pitch angle of the wind turbine blade to be closer to a feather side as compared to in the first load suppressing operation mode.
6. A method of operating a wind turbine power generating apparatus including a wind turbine rotor having a wind turbine blade, the method comprising: a step of obtaining a wind direction of a wind received by the wind turbine rotor; a step of obtaining an index of turbulence degree of a wind velocity of the wind received by the wind turbine rotor during an operation of the wind turbine generating apparatus; a step of selecting an operation mode of the wind turbine power generating apparatus from among a plurality of operation modes including a normal operation mode and at least one load-suppressing operation mode in which a target rotation speed lower than the normal operation mode or a pitch angle closer to a feather side than the normal operation mode is set such that a load applied to the wind turbine blade is smaller than in the normal operation mode, on the basis of whether the index of turbulence degree is at least a threshold; and a step of controlling the wind turbine power generating apparatus based on the selected operation mode, wherein the threshold of the index of turbulence degree is variable in accordance with the wind direction, wherein the threshold of the index of turbulence degree is variable in accordance with the wind velocity, and wherein the step of controlling the wind turbine power generating apparatus includes changing the target rotation speed or the pitch angle based on a newly selected operation mode in response to a change in the index of the turbulence degree when the index changes to pass through the threshold, wherein the index of turbulence degree is a standard deviation of time-series data of the wind velocity; wherein a threshold of the standard deviation of the wind velocity is expressed by different linear functions of the wind velocity in a first range where the wind velocity is less than a predetermined value and in a second range where the wind velocity is not less than the predetermined value, wherein an intercept of the linear function of the wind velocity defining the threshold in the first range is greater than an intercept of the linear function of the wind velocity defining the threshold in the second range; and wherein a slope of the linear function of the wind velocity defining the threshold in the first range is negative, and a slope of the linear function of the wind velocity defining the threshold in the second range is positive.
7. A wind turbine power generating apparatus, comprising: a wind turbine rotor comprising a wind turbine blade; a wind-direction sensor for obtaining a wind direction of a wind received by the wind turbine rotor; a wind-velocity sensor for obtaining a wind velocity of the wind received by the wind turbine rotor; and a controller configured to: select an operation mode of the wind turbine power generating apparatus from among a plurality of operation modes including a normal operation mode and at least one load-suppressing operation mode in which a target rotation speed lower than the normal operation mode or a pitch angle closer to a feather side than the normal operation mode is set such that a load applied to the wind turbine blade is smaller than in the normal operation mode, on the basis of whether an index of turbulence degree of the wind velocity calculated from the wind velocity during an operation of the wind turbine power generating apparatus is at least a variable threshold; and control the wind turbine power generating apparatus based on the selected operation mode, wherein the variable threshold of the index of turbulence degree is a second threshold kX.sub.th, where k is a scaling factor which satisfies 0k<1, when the wind direction is in a second range being at least a part of a range other than a first range, provided that the variable threshold of the index of turbulence degree is a threshold X.sub.th when the wind direction of the wind turbine power generating apparatus is in the first range, and wherein the controller is configured to: change the target rotation speed or the pitch angle based on a newly selected operation mode in response to a first change in the index of the turbulence degree of the wind having the wind direction within the first range passing through the first threshold X.sub.th; and change the target rotation speed or the pitch angle based on a newly selected operation mode in response to a second change in the index of the turbulence degree of the wind having the wind direction within the second range passing through the second threshold kX.sub.th.
8. The wind turbine power generating apparatus according to claim 7, wherein the second range is a range where turbulence of an air flow of a wind toward the wind turbine rotor is larger than in the first range, due to another wind turbine power generating apparatus disposed around the wind turbine power generating apparatus or terrain surrounding the wind turbine power generating apparatus.
9. The wind turbine power generating apparatus according to claim 7, wherein the at least one load-suppressing operation mode includes a first load suppressing operation mode, and a second load suppressing operation mode in which the load is suppressed more than in the first load suppressing operation mode by reducing a rotation speed of the wind turbine rotor or by changing a pitch angle of the wind turbine blade to be closer to a feather side as compared to in the first load suppressing operation mode.
10. A wind turbine power generating apparatus, comprising: a wind turbine rotor comprising a wind turbine blade; a wind-direction sensor for obtaining a wind direction of a wind received by the wind turbine rotor; a wind-velocity sensor for obtaining a wind velocity of the wind received by the wind turbine rotor; and a controller configured to: select an operation mode of the wind turbine power generating apparatus from among a plurality of operation modes including a normal operation mode and at least one load-suppressing operation mode in which a target rotation speed lower than the normal operation mode or a pitch angle closer to a feather side than the normal operation mode is set such that a load applied to the wind turbine blade is smaller than in the normal operation mode, on the basis of whether an index of turbulence degree of the wind velocity calculated from the wind velocity during an operation of the wind turbine power generating apparatus is at least a threshold; and control the wind turbine power generating apparatus based on the selected operation mode, wherein the threshold of the index of turbulence degree is variable in accordance with the wind direction obtained by the wind-direction sensor, wherein the threshold of the index of turbulence degree is variable in accordance with the wind velocity, and wherein the controller is configured to change the target rotation speed or the pitch angle based on a newly selected operation mode in response to a change in the index of the turbulence degree when the index changes to pass through the threshold, wherein the index of turbulence degree is a standard deviation of time-series data of the wind velocity; wherein a threshold of the standard deviation of the wind velocity is expressed by different linear functions of the wind velocity in a first range where the wind velocity is less than a predetermined value and in a second range where the wind velocity is not less than the predetermined value, wherein an intercept of the linear function of the wind velocity defining the threshold in the first range is greater than an intercept of the linear function of the wind velocity defining the threshold in the second range; and wherein a slope of the linear function of the wind velocity defining the threshold in the first range is negative, and a slope of the linear function of the wind velocity defining the threshold in the second range is positive.
Description
BRIEF DESCRIPTION OF DRAWINGS
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(11) Embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It is intended, however, that unless particularly specified, dimensions, materials, shapes, relative positions and the like of components described in the embodiments shall be interpreted as illustrative only and not intended to limit the scope of the present invention.
(12) An over-all configuration of a wind turbine power generating apparatus to which an operation method according to some embodiments is to be applied will be described.
(13)
(14) Furthermore, the wind turbine power generating apparatus 1 includes a nacelle 7 for housing equipment including the main shaft 6, the drive train 8, and the generator 10, and a tower 9 to support the nacelle 7. The wind turbine rotor 5 is supported rotatably by the nacelle 7. The hub 3 may be covered with a spinner (hub cover) 4.
(15) The wind turbine power generating apparatus 1 may be an offshore wind turbine power generating apparatus installed on ocean, or an onshore wind turbine power generating apparatus installed on land.
(16) The wind turbine power generating apparatus 1 further includes a load sensor 12 for obtaining loads (blade loads) applied to the wind turbine blade 2.
(17) The load sensor 12 includes, for instance, a strain sensor mounted to a blade root portion 2a of the wind turbine blade 2, and may be configured to calculate loads applied to the wind turbine blade 2 on the basis of strain data obtained by the strain sensor. It should be noted that, the blade root portion 2a of the wind turbine blade 2 is a structural portion constituting an end portion of the wind turbine blade 2 on the side of the hub 3, which receives a bending moment transmitted from the wind turbine blade 2 to the hub 3.
(18) In a case where the wind turbine rotor 5 includes a plurality of wind turbine blades 2, the load sensor 12 may be disposed on each of the plurality of wind turbine blades 2 and configured to obtain loads that act on the respective wind turbine blades 2.
(19) The wind turbine power generating apparatus 1 includes a wind-direction sensor 16 and a wind-velocity sensor 14 for obtaining the wind direction and wind velocity, respectively, of wind received by the wind turbine rotor 5. The wind-direction sensor 16 and the wind-velocity sensor 14 may be mounted to the nacelle 7.
(20)
(21) The wind turbine power generating apparatus 1 further includes a controller 20 for controlling operation of the wind turbine power generating apparatus 1. As depicted in
(22) The turbulence-degree index calculating part 21 is configured to calculate an index of turbulence degree of wind velocity on the basis of the wind velocity obtained by the wind-velocity sensor 14. The index of turbulence degree of wind velocity will be described below.
(23) The operation-mode selecting part 22 is configured to select an operation mode of the wind turbine power generating apparatus 1 from among a plurality of operation modes, on the basis of a wind velocity of wind received by the wind turbine rotor 5 obtained by the wind-velocity sensor 14, an index of turbulence degree calculated by the turbulence-degree index calculating part 21, or a blade-load degree obtained by the load sensor 12.
(24) The operation control part 26 is configured to control operation of the wind turbine power generating apparatus 1 on the basis of the operation mode selected by the operation-mode selecting part 22.
(25) Next, a method of operating a wind turbine power generating apparatus according to some embodiments will be described, where the method is applied to the above described wind turbine power generating apparatus 1, for example.
(26)
(27) A method of operating a wind turbine power generating apparatus shown in the flowchart of in
(28) A method of operating a wind turbine power generating apparatus shown in the flowchart of
(29) In the above described step of obtaining the wind velocity V (S102 or S202), the wind-velocity sensor 14 may be used to obtain the wind velocity V of wind received by the wind turbine rotor 5. In the above described step of obtaining the wind direction (S104 or S204), the wind-direction sensor 16 may be used to obtain the wind direction of wind received by the wind turbine rotor 5.
(30) In the above described step of obtaining the index I of turbulence degree of wind velocity (S205), the index I of turbulence degree of wind velocity may be calculated on the basis of the wind velocity obtained in step S202 by the turbulence-degree index calculating part 21.
(31) Furthermore, the steps of selecting an operation mode of the wind turbine power generating apparatus 1 (S106 to S116 or S208 to S216) may be performed by the operation-mode selecting part 22.
(32) In the steps of selecting an operation mode of the wind turbine power generating apparatus 1 (S104 to S116 or S114 to S216), the operation-mode selecting part 22 selects an operation mode of the wind turbine power generating apparatus 1 from among a plurality of operation modes including a normal operation mode (Mode0), and at least one load-suppressing operation modes (Mode1, Mode 2, . . . ) in which smaller loads are applied to the wind turbine blade 2 than in the normal operation mode (i.e., loads are more suppressed). In the operation method depicted in the flowchart of
(33) In another embodiment, in the steps of selecting an operation mode of the wind turbine power generating apparatus 1, an operation mode of the wind turbine power generating apparatus 1 may be selected from two operation modes including the normal operation mode (Mode0) and the above mentioned first load-suppressing operation mode (Mode1). Alternatively, in another embodiment, in the steps of selecting an operation mode, an operation mode of the wind turbine power generating apparatus 1 may be selected from four or more operation modes including the normal operation mode (Mode0), the above mentioned first load-suppressing operation mode (Mode1), the above mentioned second load-suppressing operation mode (Mode2), and another one or more load-suppressing operation mode (Mode 3 . . . ). Furthermore, operation modes of the wind turbine power generating apparatus 1 may include a stop mode of stopping operation of the wind turbine power generating apparatus 1 in a wind condition more harsh than a condition in which a load-suppressing operation mode is selected.
(34) Hereinafter, the first load-suppressing operation mode and the second load-suppressing operation mode may be referred to as the first suppressing mode and the second suppressing mode, respectively.
(35) The steps of selecting an operation mode of the wind turbine power generating apparatus 1 (S106 to S116 or S207 to S216) will be described in more detail.
(36) In the steps of selecting an operation mode, the operation-mode selecting part 22 determines whether conditions for setting a flag for each operation mode are satisfied, on the basis of the wind velocity V obtained in step S102, or on the basis of the index I of turbulence degree obtained in step S205, and turns ON a flag of an operation mode whose conditions are satisfied (S106 or S207).
(37) Furthermore, the operation-mode selecting part 22 selects an operation mode corresponding to the flag of an operation mode that is turned ON in step S106 or S207 (S108 to S116, or S208 to S216). For instance, with reference to the flowchart of
(38) Accordingly, in steps S106 to S116 or S207 to S216, from among the normal operation mode (Mode0), the first suppressing mode (Mode1), and the second suppressing mode (Mode2), a flag of an operation mode whose conditions for setting a flag are satisfied is turned ON, and the operation mode corresponding to the flag is selected.
(39) In the steps of selecting an operation mode (S106 to S116 or S207 to S216), the operation-mode selecting part 22 selects a load-suppressing operation mode (the first suppressing mode or the second suppressing mode), if the wind velocity V obtained in step S102 is at least a threshold, or if the index I of turbulence degree calculated in step S205 is at least a threshold. Specifically, in step S106 or S207, the operation-mode selecting part 22 turns ON a flag of a load-suppressing operation mode (the first suppressing mode or the second suppressing mode), if the wind velocity V obtained in step S102 is at least a threshold, or if the index I of turbulence degree calculated in step S205 is at least a threshold.
(40) The step S207 of determining an operation mode according to the embodiment depicted in
(41) In an embodiment, in the step of determining an operation mode (S207), the operation-mode selecting part 22 compares the index I of turbulence degree (the index I of turbulence degree obtained in step S205) to a threshold (S302), and turns ON a flag of one of the load-suppressing operation modes if the index I of turbulence degree is at least the threshold, or turns ON a flag of the normal operation mode if the index I of turbulence degree is less than the threshold (S304 to S312).
(42) More specifically, the operation-mode selecting part 22 compares the index I of turbulence degree with a threshold I1 (S304), and if the index I of turbulence degree is less than the threshold I1 (NO in S304), turns ON the flag of the normal operation mode (S308). On the other hand, if the index I of turbulence degree in step S304 is at least the threshold I1 (YES in S304), the operation-mode selecting part 22 further compares the index I of turbulence degree to a threshold I2 (where I2>I1) (S306), and if the index I of turbulence degree is less than the threshold I2 (NO in S306), turns ON the flag of the first suppressing mode (S310), and if the index I of turbulence degree is at least the threshold I2 (YES in S306), turns ON the flag of the second suppressing mode (S312).
(43) The step S106 of determining an operation mode according to the embodiment shown in the flowchart of
(44) In some embodiments, in the load-suppressing operation mode, the rotation speed of the wind turbine rotor 5 (rotor rotation speed) is reduced as compared to in operation in the normal operation mode, and thereby the load applied to the wind turbine blade 2 is suppressed more than in operation in the normal operation mode.
(45) For instance, if the target rotation speed (rpm) is .sub.0 in the normal operation mode, the target rotation speed may be .sub.1 (where .sub.1<.sub.0) in the load-suppressing operation mode.
(46) In an embodiment provided with a plurality of load-suppressing operation modes including the first suppressing mode and the second suppressing mode, the rotation speed of the wind turbine rotor 5 may be set to be lower in the second suppressing mode than in the first suppressing mode, so that loads applied to the wind turbine blade 2 are more suppressed in the second suppressing mode than in the first suppressing mode.
(47) For instance, with two (stages of) load-suppressing operation modes, the target rotation speed may be .sub.0 in the normal operation mode, .sub.1 (where .sub.1<.sub.0) in the first load-suppressing operation mode, and .sub.2 (where .sub.2<.sub.1) in the second load-suppressing operation mode.
(48) In some embodiments, in the load-suppressing operation mode, the load applied to the wind turbine blade 2 may be suppressed more than in operation in the normal operation mode by changing the pitch angle of the wind turbine blade 2 to be closer to the feather side than in operation in the normal operation mode. The operation method according to this embodiment can be applied to, for instance, a wind turbine power generating apparatus with a wind turbine rotor and a generator directly coupled to each other and not via a drive train, the wind turbine rotor having a fixed rotation speed.
(49) In an embodiment with a plurality of load-suppressing operation modes including the first suppressing mode and the second suppressing mode, the pitch angle of the wind turbine blade 2 may be set to be closer to the feather side in the second suppressing mode than in the first suppressing mode, so as to suppress loads applied to the wind turbine blade 2 as compared to in the first suppressing mode.
(50) Described below with reference to
(51)
(52) Before time t1, the wind turbine power generating apparatus 1 is operated in the normal operation mode (Mode0), where the rotor rotation speed (target rotation speed) is .sub.0.
(53) During operation in the normal operation mode, at time t1, in the above described steps S106 to S116 or steps S207 to S216, if a relationship II1 is satisfied and the first suppressing mode (Mode 1) is selected, for instance, the target rotation speed is set to .sub.1, and the operation control part 26 controls operation of the wind turbine power generating apparatus 1 so that the rotor rotation speed becomes .sub.1.
(54) During operation in the first suppressing mode, at time t2, in the above described steps S106 to S116 or steps S207 to S216, if a relationship II2 is satisfied and the second suppressing mode (Mode2) is selected, for instance, the target rotation speed is set to .sub.2, and the operation control part 26 controls operation of the wind turbine power generating apparatus 1 so that the rotor rotation speed becomes .sub.2.
(55) During operation in the second suppressing mode, at time t3, in the above described steps S106 to S116 or steps S207 to S216, if a relationship I<I2 is satisfied and the first suppressing mode is selected, for instance, the target rotation speed is set to .sub.1, and the operation control part 26 controls operation of the wind turbine power generating apparatus 1 so that the rotor rotation speed becomes .sub.1.
(56) During operation in the first suppressing mode, at time t4, in the above described steps S106 to S116 or steps S207 to S216, if a relationship I<I1 is satisfied and the normal operation mode is selected, for instance, the target rotation speed is set to .sub.0, and the operation control part 26 controls operation of the wind turbine power generating apparatus 1 so that the rotor rotation speed becomes .sub.0.
(57) A change rate (rpm/sec) of the rotor rotation speed may be varied between transition of the operation mode between the normal operation mode and the first suppressing mode, and transition of the operation mode between the first suppressing mode and the second suppressing mode.
(58) For instance, the rotor rotation speed may be changed relatively quickly when the operation mode shifts between the normal operation mode and the first suppressing mode, and relatively slowly when the operation mode shifts between the first suppressing mode and the second suppressing mode.
(59) The reason for the above is to suppress loads applied to the wind turbine blade 2 quickly by changing the normal operation mode relatively quickly to the first suppressing mode, and to protect components of the wind turbine power generating apparatus 1 by changing the first suppressing mode relatively slowly to the second suppressing mode.
(60) In the present specification, when another operation mode is selected during operation of an operation mode, it may be expressed as an operation mode shifts from an operation mode to another operation mode, or transition of an operation mode from an operation mode to another operation mode.
(61) Next, with reference to
(62) In some embodiments, the threshold of the wind velocity V is variable in accordance with wind direction in the operation method shown in the flowchart of
(63)
(64) Specifically, in the step S106 (see
(65) The threshold Vt_on of wind velocity is a threshold for determining whether to change the operation mode of the wind turbine power generating apparatus 1 to the stop mode, if the wind velocity increases even higher during operation in the second suppressing mode.
(66) Furthermore, the cutout wind velocity Vco is a setting value for stopping the wind turbine power generating apparatus 1 when the wind velocity reaches the cutout wind velocity Vco or higher. The cutout wind velocity Vco may be set separately from the threshold of wind velocity V for selecting an operation mode (i.e., the load-suppressing operation mode or the normal operation mode) according to an embodiment.
(67) Furthermore, if the wind-velocity reduces to fall below V2_off (where V2_off<V2_on) while the wind turbine power generating apparatus 1 is operated in the second suppressing mode, the operation mode shifts (returns) to the first suppressing mode. If the wind velocity further decreases to fall below V1_off (where V1_off<V1_on), the operation mode returns to the normal operation mode.
(68) Specifically, in the step S106 (see
(69) A gap is provided as described above between, for instance, between the threshold V1_on of wind velocity for determining whether to shift from the normal operation mode to the first suppressing mode, and the threshold V1_off of wind velocity for determining whether to shift from the first suppressing mode to the normal operation mode, so as to prevent frequent transitions between operation modes in a case where the wind velocity changes drastically, for instance, to protect the wind turbine power generating apparatus 1.
(70) The threshold Vt_off of wind velocity is a threshold for determining whether to change operation of the wind turbine power generating apparatus 1 to the second suppressing mode, when the wind velocity decreases during operation in the stop mode.
(71)
(72) An angle on the polar coordinate of
(73) Furthermore, in the polar coordinate of
(74) Furthermore, the circle formed by a dashed line indicates a cutout wind velocity Vco. In
(75) Furthermore, zone 1 and zone 2 are set in the predetermined wind-direction range. Zone 1 depicted in
(76) Zone 1 and zone 2 are, for instance, ranges of wind velocity in which the wind-velocity distribution within a rotational plane of the wind turbine rotor 5 is likely to be turbulent and wind shear tends to be strong, due to an influence from the surrounding environment such as terrain and arrangement of other wind turbine power generating apparatuses around the wind turbine power generating apparatus 1.
(77) In the polar coordinate of
(78) On the other hand, for wind directions other than zone 1 and zone 2, only the cutout wind velocity Vco is set, which is a threshold having a value larger than the above described thresholds V1_on, V2_on, and Vt_on in zone 1 and zone 2, but thresholds of the wind velocity V for determining transition of an operation mode including the normal operation mode and the load-suppressing operation mode are not set.
(79) As described above, in particular directions including zone 1 and zone 2, where turbulence is likely to occur in an air flow of wind toward the wind turbine rotor 5, such as strong wind shear in the rotor plane, thresholds of the wind velocity V (V1_on, V2_on, and Vt_on in the example of
(80) On the other hand, for wind directions other than zone 1 and zone 2, where turbulence tends to be smaller in an air flow of wind toward the wind turbine rotor 5, such as less stronger wind shear in the rotor plane, thresholds of the wind velocity V (cutout wind velocity Vco in the example of
(81) Furthermore, different thresholds may be set for a plurality of particular wind-directional ranges.
(82) In the example depicted in
(83) As described above, in the wind-direction range of zone 1 where turbulence tends to be large in an air flow of wind toward the wind turbine rotor 5, such as strong wind shear or the like, thresholds set to determine whether to shift the operation modes are smaller than those for zone 2, and thereby a load-suppressing operation mode can be selected in zone 1 even when the wind velocity is relatively small. Accordingly, it is possible to select an operation mode appropriately for the wind turbine power generating apparatus 1.
(84) Next, with reference to
(85) In some embodiments, the thresholds of the index I of turbulence degree of wind velocity are variable in accordance with wind direction in the operation method shown in the flowchart of
(86) In the present specification, turbulence degree of wind velocity is turbulence degree of wind velocity in a predetermined period, which indicates variation of wind velocity with respect to time.
(87) In an embodiment, as the index I of turbulence degree of wind velocity, a standard deviation of time-series data of wind velocity V in a predetermined period T can be used. Furthermore, in an embodiment, as the index I of turbulence degree of wind velocity, turbulence intensity TI of the wind velocity V in the predetermined period T can be used. The turbulence intensity TI can be expressed by the following expression (1):
TI=/Vm(1)
where is a standard deviation of time-series data of the wind velocity V in the predetermined period T and Vm is an average of time series data of the wind velocity V (mean wind velocity).
(88) Specifically, the index I of turbulence degree of wind velocity is calculated on the basis of the wind velocity V in the predetermined period T.
(89) In some embodiments, in the operating method shown in the flowchart of
(90) The turbulence degree of wind velocity is an index of a load or a fluctuating load on the wind turbine blade 2, and thus may affect contact of the wind turbine blade 2 with the tower 9 or damage to the wind turbine blade 2 or the like.
(91) Meanwhile, turbulence in an air flow of wind toward the wind turbine rotor 5 is affected by the surrounding environment of the wind turbine power generating apparatus 1 (e.g. terrain or arrangement of other wind turbine power generating apparatuses around the wind turbine power generating apparatus 1), and thus a load or a fluctuating load on the wind turbine blade 2 may vary depending on wind direction even if the turbulence degree of wind velocity is the same.
(92) In view of this, thresholds of the index I of turbulence degree of wind velocity are set variable in accordance with wind direction, and thereby it is possible to select an operation mode in accordance with the wind direction more appropriately as compared to in a case where thresholds of turbulence of wind velocity are constant regardless of the wind direction. Accordingly, for example, for particular wind directions which tend to be accompanied by strong wind shear in the rotor plane, thresholds of the index I of turbulence degree of wind velocity are set to be relatively small, and thereby it is possible to appropriately reduce a load or a fluctuating load on the wind turbine blade in the particular directions, and to appropriately suppress contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like. On the other hand, for another wind directions which tend to be accompanied by less strong wind shear in the rotor plane, for instance, thresholds of the index I of turbulence degree of wind velocity are set to be relatively large, and thereby it is possible to increase the opportunity of power generation by the wind turbine power generating apparatus 1 in the particular wind directions.
(93)
(94) An angle on the polar coordinate of
(95) In the polar coordinate of
(96) Furthermore, in the coordinate of
(97) Furthermore, in the polar coordinate system of
(98) The zone 4 and zone 5 are wind-velocity ranges in which the wind-velocity distribution within a rotational plane of the wind turbine rotor 5 is likely to be turbulent and wind shear tends to be stronger than in zone 3, due to an influence from the surrounding environment including terrain and arrangement of other wind turbine power generating apparatuses around the wind turbine power generating apparatus 1. More specifically, zone 5 is a wind-velocity range in which the wind-velocity distribution within a rotational plane of the wind turbine rotor 5 is likely to be turbulent and wind shear tends to be stronger than in zone 4.
(99) In some embodiments, when the wind direction of the wind turbine power generating apparatus 1 is in the second range, which is at least a part of the range other than the first range, the threshold of the index I of turbulence degree is kX.sub.th (where 0k<1), provided that X.sub.th is the threshold of the index I of turbulence degree when the wind direction is in the first range.
(100) For instance, in the example of
(101) Accordingly, thresholds kX.sub.th are set for zone 4 and zone 5 (second range) by multiplying the threshold X.sub.th of zone 3 (first range) by k (where, 0k<1), and thereby it is possible to set relatively smaller thresholds for zone 4 and zone 5 (second range) of wind-directional range where wind shear tends to be stronger. Accordingly, it is possible to select an operation mode appropriately for the wind turbine power generating apparatus 1.
(102) Furthermore, in zone 5, where wind shear is stronger than in zone 4, a threshold 0.6X.sub.th smaller than the threshold 0.8X.sub.th in zone 4 is set, and thereby it is possible to appropriately reduce a load or a fluctuating load on the wind turbine blade in the particular wind direction more effectively, to appropriately suppress contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like.
(103) In
(104) In some embodiments, the thresholds of the index I of turbulence degree of wind velocity for selecting an operation mode of the wind turbine power generating apparatus 1 are variable in accordance with the wind velocity V.
(105) That is, the thresholds of the index I of turbulence degree of wind velocity are determined on the basis of combination of the index I of turbulence degree of wind velocity and the wind velocity V.
(106) Next, with reference to
(107)
(108) In the graph of
(109) Also in the examples depicted in
(110) In
(111) In
(112) Each of the thresholds TI1 and TIt of the turbulence intensity TI in
(113) In the example depicted in
(114) For instance, if the wind velocity is relatively small even though the turbulence of wind velocity is relatively large, or if the turbulence of wind velocity is relatively small even though the wind velocity is relatively large, the load on the wind turbine blade 2 may be of such a level that does not affect contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like.
(115) As in the example depicted in
(116) As described above, in the example depicted in
(117)
(118) In
(119) In the example shown in
(120) In the graph of
(121) In the graph of
(122) The graph of
(123) The graph showing the thresholds of the turbulence intensity TI as in
(124) In
(125) In
(126) Here, Vm (P.sub.7) is the mean wind velocity at the intersection point P.sub.7 of the thresholds 1_1 and 1_2 of the standard deviation , and also the mean wind velocity at the intersection point P.sub.7 of the thresholds TI1_1 and TI1_2 of the above described turbulence intensity TI.
(127) In
1_1=k.sub.1Vm+c.sub.1(2)
1_2=k.sub.2Vm+c.sub.2(3)
where k.sub.1 and c.sub.1 are the slope and the intercept in the graph of 1_1, while k.sub.2 and c.sub.2 are the slope and the intercept in the graph of 1_2.
(128) Specifically, in the example depicted in
(129) As shown in
(130) Here, when the threshold of the standard deviation depicted in
(131) The thresholds TI1_1 and TI1_2 of turbulence intensity shown in
(132) Accordingly, in the range R1_1 (first range) of a relatively low wind-velocity range, the threshold TI1_1 of turbulence intensity rapidly increases with a decrease in the wind velocity (mean wind velocity Vm), and thus the opportunity to select the normal operation mode at a low wind velocity increases, which makes it possible to ensure a power generation amount of the wind turbine power generating apparatus 1. Furthermore, in the range R1_2 (second range) of a relatively high wind-velocity range, the threshold TI1_2 of turbulence intensity gradually decreases with an increase in the wind velocity (mean wind velocity Vm), and thus the opportunity to select a load-suppressing operation mode at a high wind velocity increases, which makes it possible to appropriately suppress contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like.
(133) In
(134) In
(135) For the thresholds of the index I of turbulence degree of wind velocity for determining which one of the normal operation mode or the first suppressing mode to select can be described similarly to the above described thresholds of the index I of turbulence degree of wind velocity for determining which one of the normal operation mode or the first suppressing mode to select.
(136) Specifically, the thresholds of the standard deviation of wind velocity depicted in
(137) Here, Vm (P.sub.8) is the mean wind velocity at the intersection point P.sub.8 of the thresholds t_1 and t_2 of the standard deviation , and also the mean wind velocity at the intersection point P.sub.8 of the thresholds TIt_1 and TIt_2 of the above described turbulence intensity TI.
(138) By setting such thresholds, the opportunity to select the first suppressing mode in the range Rt_1 (first range) of a relatively low wind-velocity range increases, and thereby it is possible to ensure the power generation amount of the wind turbine power generating apparatus 1. Furthermore, in the range Rt_2 (second range) of a relatively high wind-velocity range, the opportunity to select the stop mode increases, which makes it possible to appropriately suppress contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like.
(139)
(140) The x-axis and y-axis in the graphs of
(141) In the graphs of
(142) In
(143) As described above, also in a case where an operation mode of the wind turbine power generating apparatus 1 is selected from among a plurality of operation modes including two or more load-suppressing operation modes, similarly to the above description, setting thresholds appropriately increases the opportunity to select the normal operation mode at a low wind velocity, which makes it possible to ensure a power generation amount of the wind turbine power generating apparatus 1, and also increases the opportunity to select a load-suppressing operation mode at a high wind velocity, which makes is possible to appropriately suppress contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like.
(144) In a method of operating the wind turbine power generating apparatus 1 according to some embodiments, the wind velocity V is obtained by the wind-velocity sensor 14, and the index I of the turbulence degree of wind velocity is obtained on the basis of the wind velocity. Thus, in the step of selecting an operation mode of the wind turbine power generating apparatus 1, the wind velocity V is compared to a threshold, and the index I of turbulence degree of wind velocity is compared to a threshold. If at least one of the wind velocity V or the index I of turbulence degree of wind velocity is at least the threshold, one of the at least one load-suppressing operation mode is selected.
(145) In this case, an operation mode is selected on the basis of a plurality of indexes related to a load or a fluctuating load on the wind turbine blade 2 (i.e., the wind velocity V and the index I of turbulence degree of wind velocity), and thereby it is possible increase the opportunity of power generation by the wind turbine power generating apparatus 1 while reducing a load applied to the wind turbine blade 2 more effectively, and suppressing contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like more effectively.
(146) In the method of operating the wind turbine power generating apparatus 1 according to some embodiments, the load sensor 12 provided for the wind turbine blade 2 may be used to obtain the load M applied to the wind turbine blade 2. In the step of selecting an operation mode of the wind turbine power generating apparatus 1, the wind velocity V or the index I of turbulence degree of wind velocity is compared to a threshold, and the load M is compared to a threshold. If at least one of the wind velocity V or the load M, or at least one of the index I of turbulence degree of wind velocity or the load M is not less than the threshold, one of the at least one load-suppressing operation modes is selected.
(147) In the method of operating the wind turbine power generating apparatus 1 according to some embodiments, the load sensor 12 provided for the wind turbine blade 2 may be used to obtain the load M applied to the wind turbine blade 2. In the step of selecting an operation mode of the wind turbine power generating apparatus 1, the wind velocity V, the index I of turbulence degree of wind velocity, and the load M are each compared to a threshold. If at least one of the wind velocity V, the index I of turbulence degree of wind velocity, or the load M is not less than the threshold, one of the at least one load-suppressing operation modes is selected.
(148) As described above, an operation mode is selected on the basis of a plurality of indexes related to a load or a fluctuating load on the wind turbine blade 2 and the load M applied to the wind turbine blade 2, and thereby it is possible to reduce a load applied to the wind turbine blade 2 more effectively. Thus, it is possible to increase the opportunity of power generation by the wind turbine power generating apparatus 1 while reducing loads applied to components of the wind turbine (wind turbine power generating apparatus 1), and suppressing contact of the wind turbine blade 2 with the tower 9 and occurrence of damage to the wind turbine blade 2 or the like more effectively.
(149) Embodiments of the present invention were described in detail above, but the present invention is not limited thereto, and various amendments and modifications may be implemented.
(150) For instance, an expression of relative or absolute arrangement such as in a direction, along a direction, parallel, orthogonal, centered, concentric and coaxial shall not be construed as indicating only the arrangement in a strict literal sense, but also includes a state where the arrangement is relatively displaced by a tolerance, or by an angle or a distance whereby it is possible to achieve the same function.
(151) For instance, an expression of an equal state such as same equal and uniform shall not be construed as indicating only the state in which the feature is strictly equal, but also includes a state in which there is a tolerance or a difference that can still achieve the same function.
(152) Further, for instance, an expression of a shape such as a rectangular shape or a cylindrical shape shall not be construed as only the geometrically strict shape, but also includes a shape with unevenness or chamfered corners within the range in which the same effect can be achieved.
(153) On the other hand, an expression such as comprise, include, have, contain and constitute are not intended to be exclusive of other components.