Fast frequency response distributed coordination control method and system forseries-parallel wind and light micro-grid
A distributed coordination, frequency response technology, applied in the direction of electrical components, circuit devices, AC network circuits, etc.
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Embodiment 1
[0041] The switching on of large electric pumps and air conditioning units causes sudden changes in the load on the AC microgrid, resulting in a reduction in the frequency of the microgrid. Therefore, a power electronic converter is required to adjust the frequency back to the rated value. Such as figure 1 As shown, several distributed energy resources DER in the microgrid will be controlled 1 、DER 2 ,···,DER N .
[0042] The method provided by this embodiment is distributed cooperative control, such as figure 2 As shown, each DER is represented as nodes 1, 2, ..., i, ... N, and is executed in two steps, such as image 3 Shown:
[0043] Step 1: Calculate the total optimal power input ΔP using model predictive control (MPC) from all storage systems required to control frequency and frequency rate of change ct .
[0044] Step 2: Distribute the required total power input across all N DERs in the microgrid by: maximum rated power and state of charge at a given time.
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Embodiment 2
[0077] Embodiment 2 of the present disclosure provides a fast frequency response distributed coordinated control system for a hybrid wind-solar microgrid, including:
[0078] The data acquisition module is configured to: acquire the operation status data of each distributed energy source;
[0079] The optimal total power input acquisition module is configured to: use the obtained operating state data to obtain the total optimal power input according to the model predictive control algorithm;
[0080] The distributed energy optimal power input acquisition module is configured to: distribute the total optimal power input across all distributed energy sources in the microgrid through the maximum rated power and the state of charge at a given time.
[0081] The working method of the system is the same as the distributed coordinated control method for fast frequency response of the hybrid wind-solar microgrid provided in Embodiment 1, and will not be repeated here.
Embodiment 3
[0083] Embodiment 3 of the present disclosure provides a computer-readable storage medium on which a program is stored. When the program is executed by a processor, the distributed coordinated control of the hybrid wind-solar microgrid with fast frequency response as described in Embodiment 1 of the present disclosure is realized. Steps in the method, the steps being:
[0084] Obtain the operating status data of each distributed energy source;
[0085] Using the obtained operating state data, the total optimal power input is obtained according to the model predictive control algorithm;
[0086] The total optimal power input is allocated across all DERs in the microgrid by the maximum rated power and state of charge at a given time.
[0087] The detailed steps are the same as the distributed coordinated control method for fast frequency response of the hybrid-connected wind-solar microgrid provided in Embodiment 1, and will not be repeated here.
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