CN213270135U - Automatic emergency yaw control system for preventing runaway of wind generating set - Google Patents

Automatic emergency yaw control system for preventing runaway of wind generating set Download PDF

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Publication number
CN213270135U
CN213270135U CN202022429589.0U CN202022429589U CN213270135U CN 213270135 U CN213270135 U CN 213270135U CN 202022429589 U CN202022429589 U CN 202022429589U CN 213270135 U CN213270135 U CN 213270135U
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relay
yaw
rotating speed
contact
power supply
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王向伟
丁春兴
张时
段瑞龙
刘毅
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Huaneng Chengde Wind Power Co ltd
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Hebei Branch Of Huaneng New Energy Co ltd
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    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction

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Abstract

The utility model discloses an automatic emergent driftage control system of wind generating set prevention driving. The system comprises an emergency yaw control circuit, wherein the input end of the emergency yaw control circuit is connected with a wind generating set impeller rotating speed detection device, and the output end of the emergency yaw control circuit is respectively connected with a yaw driving circuit and a yaw braking circuit; the emergency yaw control circuit is used for starting a power supply of the yaw brake circuit when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and starting the power supply of the yaw drive circuit after delaying preset time. Adopt the utility model discloses a system can carry out yaw control when wind generating set impeller rotational speed exceeds speed, makes the skew main wind direction of unit impeller to reach the purpose of underspeed.

Description

Automatic emergency yaw control system for preventing runaway of wind generating set
Technical Field
The utility model relates to a wind generating set braking technical field especially relates to an automatic emergent driftage control system of wind generating set prevention driving.
Background
The wind generating set runaway accident has various reasons, and factors such as a variable pitch control system fault, sudden power loss of a power grid, a backup power supply fault, improper daily maintenance and management and the like can influence the safe operation of the set to a certain extent. The runaway is the failure of a braking system of a wind generating set, the rotating speed of a wind wheel exceeds the allowable or rated rotating speed, and the set is in an out-of-control state. If the runaway of the wind turbine generator set cannot be effectively controlled, the wind turbine generator set can be subjected to destructive attacks such as blade breakage, tower falling and the like, and then huge economic losses and even crisis personal safety are caused.
SUMMERY OF THE UTILITY MODEL
The utility model aims at providing an automatic emergent yaw control system of wind generating set prevention driving can carry out yaw control when wind generating set impeller rotational speed exceeds speed, makes the skew owner wind direction of unit impeller to reach the purpose of underspeed.
In order to achieve the above object, the utility model provides a following scheme:
an automatic emergent driftage control system of wind generating set prevention driving includes:
an emergency yaw control circuit;
the input end of the emergency yaw control circuit is connected with the impeller rotating speed detection device of the wind generating set, and the output end of the emergency yaw control circuit is respectively connected with the yaw driving circuit and the yaw braking circuit; the emergency yaw control circuit is used for starting a power supply of the yaw brake circuit when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and starting the power supply of the yaw drive circuit after delaying preset time.
Optionally, the method further includes:
an additional power supply;
the additional power supply is connected with the yaw motor; the additional power supply is used for providing electric energy for the yaw motor when the yaw power supply is electrified; the yaw power supply is used for supplying electric energy to the yaw motor.
Optionally, the emergency yaw control circuit specifically includes:
the relay comprises a rotating speed relay, a first power-on delay relay, a second power-on delay relay, a power-off delay relay and a power-on non-delay relay;
the rotating speed relay is connected with the rotating speed detection device of the impeller of the wind generating set, and is used for closing a first contact of the rotating speed relay when the rotating speed of the impeller of the wind generating set exceeds a rated rotating speed and opening a second contact of the rotating speed relay when the rotating speed of the impeller of the wind generating set is less than the rated rotating speed; the first contact of the rotating speed relay is a normally open contact, and the second contact of the rotating speed relay is a normally closed contact;
the first end of the contact of the first electrified delay relay, the first end of the first contact of the electrified non-delay relay and the first end of the second contact of the electrified non-delay relay are connected with a high level;
the second end of the contact of the first electrified delay relay, the second end of the first contact of the electrified non-delay relay, the first end of the electrified non-delay relay and the first end of the power-off delay relay are connected together;
the first end of the first electrified delay relay is connected with the rotating speed relay, the first end of a second contact of the rotating speed relay is connected with the second end of the electrified non-delay relay, the second end of the second contact of the electrified non-delay relay is connected with the first end of the contact of the power-off delay relay, and the second end of the contact of the power-off delay relay is respectively connected with the first end of the second electrified delay relay and the yaw brake circuit;
the second end of the first electrifying delay relay, the second end of the second contact of the rotating speed relay, the second end of the power-off delay relay and the second end of the second electrifying delay relay are all connected with a low level;
and a first end of a contact of the second electrified delay relay is connected with a first end of the second electrified delay relay, and a second end of the contact of the second electrified delay relay is connected with the yaw driving circuit.
Optionally, the system further includes:
a power supply relay and a power supply detection circuit;
the power supply relay is connected with a total power supply of the wind generating set;
the power supply detection circuit is used for converting the wiring mode of the yaw motor when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and the yaw power supply carries out vector power.
Optionally, the power detection circuit specifically includes:
the yaw motor comprises a first relay of a yaw motor, a second relay of the yaw motor, a yaw driving relay, a yaw electromagnetic relay, a hydraulic pump relay and a clockwise yaw relay;
the first end of the normally closed contact of the power supply relay is connected with a high level, the second end of the normally closed contact of the power supply relay is connected with the first end of the normally open contact of the rotating speed relay, the second end of the normally open contact of the rotating speed relay is connected with the first end of the second electrifying delay relay, the second end of the second electrifying delay relay is connected with the first end of the normally closed contact of the second relay of the yaw motor, the second end of the normally closed contact of the second relay of the yaw motor is connected with the first end of the first relay of the yaw motor, and the second end of the first relay of the yaw motor is connected with a low level;
the first end of a normally open contact of the power supply relay is connected with a high level, the first end of a normally closed contact of the rotating speed relay is connected with the high level, the second end of the normally open contact of the power supply relay and the second end of the normally closed contact of the rotating speed relay are both connected with the first end of the normally closed contact of the first relay of the yaw motor, the second end of the normally closed contact of the first relay of the yaw motor is connected with the first end of the second relay of the yaw motor, and the second end of the second relay of the yaw motor is connected with a low level;
the first end of the yaw driving relay, the first end of the yaw electromagnetic relay, the first end of the hydraulic pump relay and the first end of the clockwise yaw relay are connected with the second end of the second electrified delay relay, and the second end of the yaw driving relay, the second end of the yaw electromagnetic relay, the second end of the hydraulic pump relay and the second end of the clockwise yaw relay are connected with a low level.
Optionally, the system further includes:
a first diode, a second diode, and a third diode;
the conduction end of the first diode is connected with the high-level end of the yaw driving circuit, and the cut-off end of the first diode is connected with the second end of the contact of the second electrifying delay relay;
the conduction end of the second diode is connected with the second end of the contact of the power-off delay relay, the conduction end of the third diode is connected with the high-level end of the yawing braking circuit, and the cut-off end of the second diode is connected with the cut-off end of the third diode.
Alternatively to this, the first and second parts may,
the delay time of the first electrifying delay relay is 2 s;
the delay time of the power-off delay relay is 1-2 s;
and the delay time of the second electrified delay relay is determined according to the time for 90 degrees of yaw.
Alternatively to this, the first and second parts may,
the voltage of the high level is 24V;
the voltage of the low level is 0V;
the voltage of the additional power supply is 400V.
Compared with the prior art, the beneficial effects of the utility model are that:
the utility model provides an automatic emergency yaw control system for preventing galloping of a wind generating set, which is characterized in that an emergency yaw control circuit is arranged, the input end of the emergency yaw control circuit is connected with a wind generating set impeller rotating speed detection device, and the output end of the emergency yaw control circuit is respectively connected with a yaw driving circuit and a yaw braking circuit; the emergency yaw control circuit is used for starting a power supply of the yaw brake circuit when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed, and starting a power supply of the yaw drive circuit after delaying preset time, so that yaw control can be carried out when the rotating speed of the impeller of the wind generating set exceeds the overspeed, the impeller of the wind generating set deviates from the main wind direction, and the aim of reducing the rotating speed is fulfilled.
In addition, through setting up the additional power, can start yaw motor when there is not yaw power, improve wind generating set and prevented automatic emergent yaw control system's of driving reliability.
Drawings
In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required to be used in the embodiments will be briefly described below, and it is obvious that the drawings in the following description are only some embodiments of the present invention, and for those skilled in the art, other drawings can be obtained according to these drawings without inventive labor.
Fig. 1 is a structure diagram of a yaw control system without accessing an emergency yaw control circuit in the embodiment of the present invention;
fig. 2 is a structure diagram of a yaw control system connected to an emergency yaw control circuit according to an embodiment of the present invention;
FIG. 3 is a diagram of an emergency yaw control circuit according to an embodiment of the present invention;
FIG. 4 is a schematic circuit diagram of a yaw motor according to an embodiment of the present invention;
fig. 5 is a schematic diagram of a 400V connection terminal in an embodiment of the present invention;
fig. 6 is a wiring diagram of a control circuit in an embodiment of the present invention.
Detailed Description
The technical solutions in the embodiments of the present invention will be described clearly and completely with reference to the accompanying drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative work belong to the protection scope of the present invention.
The utility model aims at providing an automatic emergent yaw control system of wind generating set prevention driving can carry out yaw control when wind generating set impeller rotational speed exceeds speed, makes the skew owner wind direction of unit impeller to reach the purpose of underspeed.
In order to make the above objects, features and advantages of the present invention more comprehensible, the present invention is described in detail with reference to the accompanying drawings and the detailed description.
Examples
Fig. 1 is the yaw control system structure diagram of emergent yaw control circuit is not inserted in the embodiment of the utility model, fig. 2 is the embodiment of the utility model provides an emergent yaw control system structure diagram of inserting emergent yaw control circuit, fig. 3 is the embodiment of the utility model provides an emergent yaw control circuit structure diagram, fig. 4 is the embodiment of the utility model provides an embodiment of yaw motor circuit schematic diagram.
As shown in fig. 1 to 4, an automatic emergency yaw control system for preventing runaway of a wind generating set includes: an emergency yaw control circuit; the input end of the emergency yaw control circuit is connected with the wind generating set impeller rotating speed detection device, and the output end of the emergency yaw control circuit is respectively connected with the yaw driving circuit and the yaw braking circuit; the emergency yaw control circuit is used for starting a power supply of the yaw brake circuit when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and starting the power supply of the yaw drive circuit after delaying preset time.
Emergent driftage control circuit specifically includes:
the relay comprises a rotating speed relay, a first electrified delay relay KT3, a second electrified delay relay KT2, a power-off delay relay KT1 and an electrified non-delay relay K;
the rotating speed relay is connected with the rotating speed detection device of the impeller of the wind generating set, and is used for closing a first contact KF1 of the rotating speed relay when the rotating speed of the impeller of the wind generating set exceeds a rated rotating speed and opening a second contact KF2 of the rotating speed relay when the rotating speed of the impeller of the wind generating set is less than the rated rotating speed; the first contact of the rotating speed relay is a normally open contact, and the second contact of the rotating speed relay is a normally closed contact;
the first end of a contact KT3 of the first electrified delay relay, the first end of a first contact K of the electrified non-delay relay and the first end of a second contact K of the electrified non-delay relay are all connected with a high level;
the second end of a contact KT3 of the first electrified delay relay, the second end of a first contact K of the electrified non-delay relay, the first end of the electrified non-delay relay K and the first end of the power-off delay relay KT1 are connected together;
the first end of a first electrified delay relay KT3 is connected with a rotating speed relay KF1, the first end of a second contact KF2 of the rotating speed relay is connected with the second end of an electrified non-delay relay K, the second end of the second contact K of the electrified non-delay relay is connected with the first end of a contact KT1 of a power-off delay relay, and the second end KT1 of the power-off delay relay is respectively connected with the first end of a second electrified delay relay KT2 and a yaw brake circuit;
the second end of the first electrified delay relay KT3, the second end of the second contact KF2 of the rotating speed relay, the second end of the power-off delay relay KT1 and the second end of the second electrified delay relay KT2 are connected with a low level;
the first end of a contact KT2 of the second electrified delay relay is connected with the first end of a second electrified delay relay KT2, and the second end of a contact KT2 of the second electrified delay relay is connected with the yawing drive circuit.
As shown in fig. 5-6, the automatic emergency yaw control system for preventing runaway of a wind generating set further includes: power supply relays (Ka, Kb, Kc) and a power supply detection circuit. The power supply relay is connected with a total power supply of the wind generating set; the power supply detection circuit is used for converting the wiring mode of the yaw motor when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and the yaw power supply is subjected to vector electricity.
The power supply detection circuit specifically comprises:
a yaw motor first relay (KM31, KM32, KM33, KM34), a yaw motor second relay (KM41, KM42, KM43, KM44), a yaw driving relay KA, a yaw electromagnetic relay KB, a hydraulic pump relay KC and a clockwise yaw relay KM 2;
the first end of a normally closed contact (Ka, Kb and Kc on the left of a diagram in fig. 6) of a power supply relay is connected with a high level, the second end of the normally closed contact of the power supply relay is connected with the first end of a normally open contact KF1 of a rotating speed relay, the second end of the normally open contact (KF 1 on the left of the diagram in fig. 6) of the rotating speed relay is connected with the first end of a second electrification time delay relay KT2, the second end of the second electrification time delay relay KT2 is connected with the first end of a normally closed contact (KM41, KM42, KM43 and KM44 on the left of the diagram in fig. 6) of a yaw motor second relay, the second end of the normally closed contact of the yaw motor second relay is connected with the first end of a yaw motor first relay;
the first ends of normally open contacts (Ka, Kb and Kc on the right side of a diagram 6) of a power supply relay are connected with a high level, the first ends of normally closed contacts (KF 1 on the right side of the diagram 6) of a rotating speed relay are connected with the high level, the second ends of the normally open contacts of the power supply relay and the second ends of the normally closed contacts of the rotating speed relay are both connected with the first ends of normally closed contacts (KM31, KM32, KM33 and KM34) of a first yaw motor relay, the second ends of the normally closed contacts of the first yaw motor relay are connected with the first ends of second yaw motor relays (KM41, KM42, KM43 and KM44), and the second ends of the second yaw motor relays are connected with a low level;
the first end of driftage drive relay KA, the first end of driftage electromagnetic relay KB, the first end of hydraulic pump relay KC and the first end of clockwise driftage relay KM2 all are connected with the second end of second circular telegram delay relay, and the second end of driftage drive relay KA, the second end of driftage electromagnetic relay KB, the second end of hydraulic pump relay KC and the second end of clockwise driftage relay KM2 all are connected with the low level.
Automatic emergent driftage control system of wind generating set prevention driving still includes: a first diode 1, a second diode 4 and a third diode 3; the conduction end of the first diode is connected with the high-level end of the yaw driving circuit, and the cut-off end of the first diode is connected with the second end of the contact of the second electrified delay relay; the conducting end of the second diode is connected with the second end of the contact of the power-off delay relay, the conducting end of the third diode is connected with the high-level end of the yaw brake circuit, and the stopping end of the second diode is connected with the stopping end of the third diode.
Automatic emergent driftage control system of wind generating set prevention driving still includes: an additional power supply UPS; the additional power supply is connected with the yaw motor; the additional power supply is used for providing electric energy for the yaw motor when the yaw power supply is electrified; the yaw power supply is used for supplying electric energy to the yaw motor.
The delay time of the first electrifying delay relay is 2 s; the delay time of the power-off delay relay is 1-2 s; the delay time of the second electrified delay relay is determined according to the time spent in yawing for 90 degrees. The high level voltage is 24V, and the low level voltage is 0V; the voltage of the additional power supply is 400V.
The utility model discloses divide into two kinds with the driving state: namely, powered galloping and unpowered galloping. The power supply runaway is that the power supply is provided for a primary loop of the fan, and the fan is out of control in overspeed; the power-free runaway is the condition that a primary system of a fan loses power, and the fan is out of control in overspeed (for example, a current collection circuit loses power suddenly and the fan flies).
When the wind turbine generator is in power supply flight, the rotating speed encoder detects overspeed, the overspeed relay acts, KF1 acts in the protection control loop at the moment, KT3 delays to act, the self-holding loop is switched on, the holding time is T1(T1 is the time used by yawing at 90 degrees, the time can be set according to the model, if the rotating speed is reduced to the set rotating speed (for example, 100 revolutions per minute) in T1, the KF2 acts, the automatic emergency loop is switched out), the electromagnetic brake of the yawing motor is released at the moment, the braking pressure of the yawing brake clamp is fully released, and the yawing contactor obtains 24V and performs yawing action after the T2 moment.
KT1 is time delay outage relay (guarantee deviating from main wind direction 90 degrees), KT2 is time delay circular telegram relay (guarantee the driftage brake open the back, and the yaw motor action avoids appearing the switch and overflows the tripping operation), for preventing impressed voltage counterattack module, has added three diode in the control circuit to guarantee to reverse can not switch on.
When the wind turbine generator system flies in an overspeed manner, the purpose of reducing the rotating speed is achieved by enabling the turbine generator system impeller to deviate from the main wind direction, if the yaw power supply of the wind turbine generator system is not lost in the overspeed manner, the wind turbine generator system normally drifts, and if the yaw power supply is lost, the backup power supply is put into use to provide a power supply for the yaw system. (theoretically, the deviation from 90 degrees can reduce the rotating speed of the impeller to almost no rotating speed, and in practice, after the deviation from the main wind direction, the deviation within 90 degrees can reduce the rotating speed of the impeller to be within the safe rotating speed).
1. Judging whether overspeed is exceeded:
and (3) connecting the rotating speed signal of the encoder into an overspeed relay of the control loop, and when the detected rotating speed exceeds the rated rotating speed, determining that the fan is overspeed.
KF1 is closed when speed exceeds a set value in the speed relay, KF2 is open when speed is lower than the set value, the purpose of selecting like this is control circuit output control power when overspeed, KF2 is open when the rotational speed reduces to safe rotational speed within 90 degrees of driftage, control circuit is not outputting control power, just so can not necessarily need 90 degrees of driftage, has played energy-conserving purpose.
2. After-overspeed action process:
(1) the KF1 of rotational speed relay is closed after the hypervelocity, and delay relay KT 3's control coil positive pole is got electric, and the negative pole connects zero, and delay a period of time back (set for according to each unit difference, generally about 2 seconds, the purpose is got rid of the factor wrong report that overspeed signal received interference etc. and is surpassed speed and lead to this return circuit switch-on), delay relay KT 3's main contact switch-on, and the relay K control coil positive pole is got electric this moment, and the negative pole connects zero, and relay K moves.
(2) When the relay K acts, a main contact K is closed to form a self-holding loop, the positive electrode of a control coil of the time-delay relay KT1 is electrified, the negative electrode of the time-delay relay KT1 is connected with zero, in the process of deviating from the main wind direction, the rotating speed is reduced below the rated rotating speed, but the rotating speed is very high, the rotating speed is reduced below the rated rotating speed, KF1 is disconnected, the positive electrode of the KT3 is electrified, if the self-holding is not available, the positive electrode of the control coil of the KT1 is electrified, the control loop does not output a control power supply after the electrification is finished, and the emergency yawing loop cannot work normally.
(3) The positive pole of a control coil of the time delay relay KT1 is electrified, the negative pole is connected with zero, KT1 is a time delay power-off relay, the time is set as the time used by 90 degrees of yawing, namely after the time, the impeller deviates from the main wind direction by 90 degrees, the main contact KT1 is disconnected, a control loop does not output a control power supply, and emergency yawing stops.
(4) The output control power supply controls the yaw brake to be opened all the way, controls the yaw action all the way, and KT2 is a time delay relay, because the yaw brake needs to be opened at present and the yaw can be normally drifted, so the KT2 time delay relay is added, and the control circuit outputs the power supply for controlling the yaw action 1-2 seconds after the power supply for controlling the yaw brake to be opened is output.
(5) The control circuit outputs power to the PLC, diodes 1, 2 and 3 are added in order to prevent the output power from impacting the PLC and influencing the reliability of equipment, and a diode 4 is added in order to prevent 24V output by normal yaw brake opening in a non-overspeed state (normal yaw action can be normal action in a normal state) from being serially connected into the additional control circuit.
3. Detecting whether a yaw power supply exists:
when the wind turbine generator system flies, if the purpose that the impeller deviates from the main wind direction cannot be achieved without a yaw power supply, whether the yaw power supply exists or not needs to be accurately detected, if the yaw power supply does not exist, a backup power supply needs to be accurately input, for a 690V yaw motor, the wiring mode of the motor needs to be adjusted, the purpose that the power supply of 380V is used for driving the yaw motor is achieved, the purpose of doing so is to avoid the situation that the backup power supply can be used after transformation, and the input of a transformer can be saved.
(1) Power supply detection
A400V wiring terminal of a fan main power supply (the voltage of a yaw power supply line is 690V, but a 690V detection relay is not a standard part, and 400V is obtained after the 690V is transformed by a transformer, so that the voltage can be used as detection voltage) is connected into three relays Ka, Kb and Kc, and when the 400V is de-energized, the relays can correspondingly act. Fig. 5 is a schematic diagram of a 400V terminal.
(2) Overspeed and yaw power loss
The wiring schematic diagram of the control circuit is shown in fig. 6, when a 400V power supply detection loop of the wind turbine generator detects power supply abnormality and a speed encoder detects overspeed, the wind turbine generator is considered to be in a state without yaw power supply and in a state of galloping, a relay Ka, Kb, or Kc coil loses power, contacts of Ka, Kb, or Kc are attracted, contacts of KF1 on the left side are attracted, a contact of KF1 on the right side is disconnected (contactor coils KM41, KM42, KM43, and KM44 lose power (right square box of fig. 6), contacts of KM41, KM42, KM43, and KM44 are closed (left square box of fig. 6)), power is obtained after a time delay of T2 through coils KM31, KM32, KM33, KM34, Ka, Kb, Kc, and KM2, contacts of KM31, KM32, KM33, and KM34 are disconnected, and left and right contactors of the control loop are interlocked to avoid a.
The following functions of a primary loop are mainly realized: the emergency loop is switched into operation T1 time (KT1 delay relay) after T2 time (KT2 delay relay), and provides a stable 400VAC power supply for a yaw motor, an electromagnetic brake opening brake and a hydraulic oil pump motor (an additional UPS power supply is added, a soft start device is added, and the condition that the starting current of the motor is overlarge is avoided); the connection of the yaw motor is changed from a star shape to a triangular shape (namely, the 690VAC drive is changed into the 400VAC drive); the emergency power supply loop is isolated from the original motor driving loop, the electromagnetic band-type brake loop and the hydraulic station oil pump loop.
When automatic emergency yaw control is carried out on the wind generating set for preventing galloping, whether the rotating speed of an impeller of the wind generating set is greater than the rated rotating speed or not is judged in real time; if the speed is higher than the rated speed, the power supply of the yaw braking circuit is started, and the power supply of the yaw driving circuit is started after the preset time is delayed; judging whether a yaw power supply exists or not; if the yaw power supply exists, starting a yaw motor; and if the yaw power supply does not exist, the yaw motor is connected into the additional power supply, and then the yaw motor is started. And when the rotating speed of the impeller of the wind generating set is less than the preset safe rotating speed, a second contact of a rotating speed relay in the emergency yaw control circuit is started.
The utility model discloses furthest's reduction the use of high value devices such as transformer and the change of fan master control procedure, with the most simple and convenient and reliable circuit topology optimization of safeguard measure, realize under multiple trouble situation during the flight of wind turbine generator system homoenergetic and realize skew main wind direction, 90 degrees within ranges also can cut out emergency loop if the rotational speed falls to below setting for the rotational speed, and then protected wind turbine generator system's safe and reliable operation, guarantee for the person and equipment safety provide, the availability ratio of fan has been improved, the purpose of upgrading the benefit has been realized.
The utility model discloses reliable easy going is applicable to all forms's wind generating set. Especially, the longer old unit of operating duration though exert the technological change of too much prevention driving, nevertheless does not have fundamentally to solve this problem all the time, the utility model discloses not only can be used for the technological change of the fan of having put into operation, more can apply to the design of host computer factory fan in the middle of, not only wind turbine generator's reliability can promote by a wide margin, has avoided the fan because of the emergence of accidents such as tower fall, personal injury that the driving brought, economic benefits also can promote by a wide margin moreover, and is significant.
The principle and the implementation of the present invention are explained herein by using specific examples, and the above description of the embodiments is only used to help understand the method and the core idea of the present invention; meanwhile, for the general technical personnel in the field, according to the idea of the present invention, there are changes in the concrete implementation and the application scope. In summary, the content of the present description should not be construed as a limitation of the present invention.

Claims (8)

1. The utility model provides an automatic emergent driftage control system of wind generating set prevention driving which characterized in that includes:
an emergency yaw control circuit;
the input end of the emergency yaw control circuit is connected with the impeller rotating speed detection device of the wind generating set, and the output end of the emergency yaw control circuit is respectively connected with the yaw driving circuit and the yaw braking circuit; the emergency yaw control circuit is used for starting a power supply of the yaw brake circuit when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and starting the power supply of the yaw drive circuit after delaying preset time.
2. The automatic emergency yaw control system of claim 1, further comprising:
an additional power supply;
the additional power supply is connected with the yaw motor; the additional power supply is used for providing electric energy for the yaw motor when the yaw power supply is electrified; the yaw power supply is used for supplying electric energy to the yaw motor.
3. The automatic emergency yaw control system of claim 2, wherein the emergency yaw control circuit specifically comprises:
the relay comprises a rotating speed relay, a first power-on delay relay, a second power-on delay relay, a power-off delay relay and a power-on non-delay relay;
the rotating speed relay is connected with the rotating speed detection device of the impeller of the wind generating set, and is used for closing a first contact of the rotating speed relay when the rotating speed of the impeller of the wind generating set exceeds a rated rotating speed and opening a second contact of the rotating speed relay when the rotating speed of the impeller of the wind generating set is less than the rated rotating speed; the first contact of the rotating speed relay is a normally open contact, and the second contact of the rotating speed relay is a normally closed contact;
the first end of the contact of the first electrified delay relay, the first end of the first contact of the electrified non-delay relay and the first end of the second contact of the electrified non-delay relay are connected with a high level;
the second end of the contact of the first electrified delay relay, the second end of the first contact of the electrified non-delay relay, the first end of the electrified non-delay relay and the first end of the power-off delay relay are connected together;
the first end of the first electrified delay relay is connected with the rotating speed relay, the first end of a second contact of the rotating speed relay is connected with the second end of the electrified non-delay relay, the second end of the second contact of the electrified non-delay relay is connected with the first end of the contact of the power-off delay relay, and the second end of the contact of the power-off delay relay is respectively connected with the first end of the second electrified delay relay and the yaw brake circuit;
the second end of the first electrifying delay relay, the second end of the second contact of the rotating speed relay, the second end of the power-off delay relay and the second end of the second electrifying delay relay are all connected with a low level;
and a first end of a contact of the second electrified delay relay is connected with a first end of the second electrified delay relay, and a second end of the contact of the second electrified delay relay is connected with the yaw driving circuit.
4. The wind generating set runaway prevention automatic emergency yaw control system of claim 3, further comprising:
a power supply relay and a power supply detection circuit;
the power supply relay is connected with a total power supply of the wind generating set;
the power supply detection circuit is used for converting the wiring mode of the yaw motor when the rotating speed of the impeller of the wind generating set exceeds the rated rotating speed and the yaw power supply carries out vector power.
5. The automatic emergency yaw control system of claim 4, wherein the power detection circuit specifically comprises:
the yaw motor comprises a first relay of a yaw motor, a second relay of the yaw motor, a yaw driving relay, a yaw electromagnetic relay, a hydraulic pump relay and a clockwise yaw relay;
the first end of the normally closed contact of the power supply relay is connected with a high level, the second end of the normally closed contact of the power supply relay is connected with the first end of the normally open contact of the rotating speed relay, the second end of the normally open contact of the rotating speed relay is connected with the first end of the second electrifying delay relay, the second end of the second electrifying delay relay is connected with the first end of the normally closed contact of the second relay of the yaw motor, the second end of the normally closed contact of the second relay of the yaw motor is connected with the first end of the first relay of the yaw motor, and the second end of the first relay of the yaw motor is connected with a low level;
the first end of a normally open contact of the power supply relay is connected with a high level, the first end of a normally closed contact of the rotating speed relay is connected with the high level, the second end of the normally open contact of the power supply relay and the second end of the normally closed contact of the rotating speed relay are both connected with the first end of the normally closed contact of the first relay of the yaw motor, the second end of the normally closed contact of the first relay of the yaw motor is connected with the first end of the second relay of the yaw motor, and the second end of the second relay of the yaw motor is connected with a low level;
the first end of the yaw driving relay, the first end of the yaw electromagnetic relay, the first end of the hydraulic pump relay and the first end of the clockwise yaw relay are connected with the second end of the second electrified delay relay, and the second end of the yaw driving relay, the second end of the yaw electromagnetic relay, the second end of the hydraulic pump relay and the second end of the clockwise yaw relay are connected with a low level.
6. The wind generating set runaway prevention automatic emergency yaw control system of claim 5, further comprising:
a first diode, a second diode, and a third diode;
the conduction end of the first diode is connected with the high-level end of the yaw driving circuit, and the cut-off end of the first diode is connected with the second end of the contact of the second electrifying delay relay;
the conduction end of the second diode is connected with the second end of the contact of the power-off delay relay, the conduction end of the third diode is connected with the high-level end of the yawing braking circuit, and the cut-off end of the second diode is connected with the cut-off end of the third diode.
7. The automatic emergency yaw control system of claim 6, wherein,
the delay time of the first electrifying delay relay is 2 s;
the delay time of the power-off delay relay is 1-2 s;
and the delay time of the second electrified delay relay is determined according to the time for 90 degrees of yaw.
8. The automatic emergency yaw control system of claim 7, wherein,
the voltage of the high level is 24V;
the voltage of the low level is 0V;
the voltage of the additional power supply is 400V.
CN202022429589.0U 2020-10-28 2020-10-28 Automatic emergency yaw control system for preventing runaway of wind generating set Active CN213270135U (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112145350A (en) * 2020-10-28 2020-12-29 华能新能源股份有限公司河北分公司 Automatic emergency yaw control system and method for preventing runaway of wind generating set
CN114382645A (en) * 2021-12-03 2022-04-22 重庆海装风电工程技术有限公司 Wind generating set crosswind yaw electrical control system and method and generating set

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112145350A (en) * 2020-10-28 2020-12-29 华能新能源股份有限公司河北分公司 Automatic emergency yaw control system and method for preventing runaway of wind generating set
WO2022088376A1 (en) * 2020-10-28 2022-05-05 华能新能源股份有限公司河北分公司 Automatic emergency yaw control system and method for preventing runaway of wind generator set
CN112145350B (en) * 2020-10-28 2024-04-12 华能新能源股份有限公司河北分公司 Automatic emergency yaw control method for preventing galloping of wind generating set
CN114382645A (en) * 2021-12-03 2022-04-22 重庆海装风电工程技术有限公司 Wind generating set crosswind yaw electrical control system and method and generating set

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Effective date of registration: 20231222

Address after: Yudaokou Ranch, Weichang County, Chengde City, Hebei Province, 067000

Patentee after: Huaneng Chengde Wind Power Co.,Ltd.

Address before: 050000 2 / F and 3 / F, Huashi Hotel, No.52, Hongqi Street, Qiaoxi District, Shijiazhuang City, Hebei Province

Patentee before: Hebei Branch of Huaneng new energy Co.,Ltd.