HIGH-VOLTAGE HIERARCHY HUNDRED-MEGAWATT LEVEL BATTERY ENERGY STORAGE SYSTEM
20220045510 · 2022-02-10
Assignee
Inventors
- Xu CAI (Shanghai, CN)
- Chang LIU (Shanghai, CN)
- Rui Li (Shanghai, CN)
- Yunfeng Cao (Shanghai, CN)
- Xiaolong CAI (Shanghai, CN)
- Tao Liu (Shanghai, CN)
Cpc classification
H02J7/0048
ELECTRICITY
H02J3/32
ELECTRICITY
Y02E40/10
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
Abstract
A high-voltage hierarchy hundred-megawatt level (100 MW) battery energy storage system and optimizing and control methods are provided. The system includes a multi-phase structure, of which each phase is divided into multi-story spaces from top to bottom. A battery module is provided in each story of the multi-story spaces. The battery module is connected to a DC terminal of an H-bridge converter, and each phase is cascaded by the H-bridge converter. A capacity of the single-phase energy storage apparatus of the present invention is large, and multiple phases can be connected in parallel to form a 100 MW battery energy storage power station. The power station has the advantages of simple structure, easy coordinated control, low control loop model and coupling, and optimal system stability. The control system of the present invention has fewer hierarchies, a small information transmission delay, and a rapid response speed.
Claims
1. A high-voltage hierarchy hundred-megawatt level (100 MW) battery energy storage system, comprising a multi-phase structure, wherein each phase of the multi-phase structure is divided into multi-storey spaces from top to bottom, wherein battery modules are provided in each storey of the multi-storey spaces; the battery modules are connected to direct current (DC) terminals of H-bridge converters; and the each phase is cascaded by the H-bridge converters to form cascaded H-bridge converters.
2. The high-voltage hierarchy 100 MW battery energy storage system of claim 1, wherein the multi-storey spaces are mutually isolated spaces, and the battery modules in the each storey are mutually isolated modules.
3. The high-voltage hierarchy 100 MW battery energy storage system of claim 1, further comprising a step-up transformer and a power transmission tower, wherein the cascaded H-bridge converters are connected to the step-up transformer through a high-voltage cable, and the step-up transformer is connected to the power transmission tower.
4. The high-voltage hierarchy 100 MW battery energy storage system of claim 1, further comprising a buffer unit, wherein the DC terminals of the H-bridge converters are connected to the battery modules through the buffer unit, and the buffer unit isolates the battery modules from the H-bridge converters.
5. The high-voltage hierarchy 100 MW battery energy storage system of claim 3, wherein a secondary side of the step-up transformer is in a star-type connection and a neutral point of the step-up transformer is grounded, and a neutral point of the each of the H-bridge converters is grounded.
6. The high-voltage hierarchy 100 MW battery energy storage system of claim 3, wherein the step-up transformer comprises three sets of three-phase voltages with phase differences.
7. A high-voltage hierarchy 100 MW battery energy storage optimizing method based on the high-voltage hierarchy 100 MW battery energy storage system of claim 1, comprising the following steps: obtaining an optimal module number design by calculating an efficiency and a reliability of the high-voltage hierarchy 100 MW battery energy storage system under a design of different module numbers and drawing a relationship curve between the efficiency, the reliability and the different module numbers according to design indicator requirements of the high-voltage hierarchy 100 MW battery energy storage system in conjunction with the relationship curve.
8. A high-voltage hierarchy 100 MW battery energy storage control method based on the high-voltage hierarchy 100 MW battery energy storage system of claim 1, comprising the following steps: an upper-level control step: coordinately controlling each chain-type battery energy storage system, and calculating an active power undertaken by each apparatus through a state-of-charge (SOC) value of the each apparatus; a lower-level control step: controlling a single chain-type battery energy storage system, wherein a control strategy of the each chain-type battery energy storage system is the same.
9. The high-voltage hierarchy 100 MW battery energy storage control method of claim 8, wherein the lower-level control step comprises an SOC balancing control, a module failure control, a control under a grid asymmetry or a failure, and a power decoupling control.
10. The high-voltage hierarchy 100 MW battery energy storage optimizing method of claim 7, wherein the multi-storey spaces are mutually isolated spaces, and the battery modules in the each storey are mutually isolated modules.
11. The high-voltage hierarchy 100 MW battery energy storage optimizing method of claim 7, wherein the high-voltage hierarchy 100 MW battery energy storage system further comprises a step-up transformer and a power transmission tower, wherein the cascaded H-bridge converters are connected to the step-up transformer through a high-voltage cable, and the step-up transformer is connected to the power transmission tower.
12. The high-voltage hierarchy 100 MW battery energy storage optimizing method of claim 7, wherein the high-voltage hierarchy 100 MW battery energy storage system further comprises a buffer unit, wherein the DC terminals of the H-bridge converters are connected to the battery modules through the buffer unit, and the buffer unit isolates the battery modules from the H-bridge converters.
13. The high-voltage hierarchy 100 MW battery energy storage optimizing method of claim 11, wherein a secondary side of the step-up transformer is in a star-type connection and a neutral point of the step-up transformer is grounded, and a neutral point of the each of the H-bridge converters is grounded.
14. The high-voltage hierarchy 100 MW battery energy storage optimizing method of claim 11, wherein the step-up transformer comprises three sets of three-phase voltages with phase differences.
15. The high-voltage hierarchy 100 MW battery energy storage control method of claim 8, wherein the multi-storey spaces are mutually isolated spaces, and the battery modules in the each storey are mutually isolated modules.
16. The high-voltage hierarchy 100 MW battery energy storage control method of claim 8, wherein the high-voltage hierarchy 100 MW battery energy storage system further comprises a step-up transformer and a power transmission tower, wherein the cascaded H-bridge converters are connected to the step-up transformer through a high-voltage cable, and the step-up transformer is connected to the power transmission tower.
17. The high-voltage hierarchy 100 MW battery energy storage control method of claim 8, wherein the high-voltage hierarchy 100 MW battery energy storage system further comprises a buffer unit, wherein the DC terminals of the H-bridge converters are connected to the battery modules through the buffer unit, and the buffer unit isolates the battery modules from the H-bridge converters.
18. The high-voltage hierarchy 100 MW battery energy storage control method of claim 16, wherein a secondary side of the step-up transformer is in a star-type connection and a neutral point of the step-up transformer is grounded, and a neutral point of the each of the H-bridge converters is grounded.
19. The high-voltage hierarchy 100 MW battery energy storage control method of claim 16, wherein the step-up transformer comprises three sets of three-phase voltages with phase differences.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Other features, objectives and advantages of the present invention will become more apparent by reading detailed description on non-limited embodiments that is made with reference to the following figures:
[0024]
[0025]
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[0027]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0028] The present invention will now be explained in detail in conjunction with exemplary embodiments. The following embodiments will help those skilled in the art to further understand the present invention, but will not limit the present invention in any form. It should be pointed out that for those skilled in the art, various changes and improvements can be further made without departing from the concept of the present invention. All these changes and improvements belong to the protection scope of the present invention.
[0029] As shown in
[0030]
[0031]
[0032]
[0033] The upper-level control of the control strategy of the high-voltage hierarchy 100 MW battery energy storage system of the present invention is the coordinated control of each chain-type battery energy storage systems, and the active power undertaken by each apparatus is calculated through an SOC of each apparatus. The active power undertaken by each apparatus can be calculated through a formula (1), and in the formula, P is a charging and discharging power of the entire system, and SOC.sub.k is an SOC value of the parallel apparatuses of the k.sup.th phase, and can be calculated through a formula (2), wherein N.sub.k is the number of the modules that work normally of the k.sup.th phase, and SOC.sub.kj is an SOC value of the j.sup.th power module of the k.sup.th phase (j=1, 2, . . . N.sub.k).
[0034] The lower-level control of the control strategy of the high-voltage hierarchy 100 MW battery energy storage system of the present invention is the in-phase SOC balancing control of a single-phase chain-type battery energy storage system, module failure control, and battery module active thermal management control. The control strategy of each parallel chain-type battery energy storage system is the same, and here the first chain-type battery energy storage system is taken as an example to describe its control strategy. A modulation wave v.sub.1* is generated by power decoupling control. The in-phase SOC balancing control of the chain-type battery energy storage system, the power balancing control during the module failure, and the active thermal management control of the battery module all can be implemented by overlapping AC signals (i.e., Δv.sub.1j1*, Δv.sub.1j2, Δv.sub.1j3) generated by the corresponding control on the initial modulation wave to change an output voltage of the corresponding module to further change its output power. The battery module active thermal management control can detect a battery temperature T.sub.b and a battery temperature change ΔT.sub.b in real time, and allocate the power P.sub.1j undertaken thereby in real time accordingly. In the figure, v.sub.b1j, i.sub.b1j, r.sub.b1j are a voltage, a current and an internal resistance of the j.sup.th battery module of the first phase, respectively, and P.sub.loss, is its loss power. During the specific implementation, the control strategies of the 9-phase chain-type battery energy storage systems are the same, and can be independently controlled.
[0035] The exemplary embodiments of the present invention are described above. It should be understood that the present invention is not limited to the above specific embodiments, those skilled in the art can make various changes or modifications within the scope of the claims, and this does not affect the substantive contents of the present invention. The embodiments and the features in the embodiments of the present application can be combined with each other in the case where there is no conflict.