Flow battery system and large scale flow battery energy storage device
11705570 · 2023-07-18
Assignee
Inventors
- Haijun Zhao (Liaoning, CN)
- Huamin Zhang (Liaoning, CN)
- Xiangkun Ma (Liaoning, CN)
- Jiayun Shao (Liaoning, CN)
- Hongbo Wang (Liaoning, CN)
- Ting Chigan (Liaoning, CN)
Cpc classification
H02M7/49
ELECTRICITY
H02M3/33576
ELECTRICITY
Y02E60/50
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
H01M8/18
ELECTRICITY
H01M8/188
ELECTRICITY
International classification
H01M8/18
ELECTRICITY
H01M8/04298
ELECTRICITY
Abstract
The present disclosure discloses a flow battery system and a large-scale flow battery energy storage device. The flow battery system comprises multiple flow batteries; each of the flow batteries comprises a battery pack A, a battery pack B, a battery pack C, and a set of electrolyte circulation system used by the battery pack A, the battery pack B and the battery pack C; the battery pack A, the battery pack B and the battery pack C comprised in each flow battery are independent of each other in the circuit. According to the present disclosure, at least two sets of electrolyte circulation system are saved under the same power scale, such that the system stability is improved while the cost is reduced.
Claims
1. A flow battery energy storage device, comprising: a plurality of flow battery units, a plurality of inverters A, a plurality of inverters B, a plurality of inverters C, and a three-phase transformer, wherein each flow battery unit comprises: a battery pack A, a battery pack B, a battery pack C, and an electrolyte circulation system connected to the battery pack A, the battery pack B, and the battery pack C, wherein the battery pack A is coupled to Phase A of the three-phase transformer via a circuit A comprising one of the plurality of inverters A, wherein the battery pack B is coupled to Phase B of the three-phase transformer via a circuit B comprising one of the plurality of inverters B, wherein the battery pack C is coupled to Phase C of the three-phase transformer via a circuit C comprising one of the plurality of inverters C, wherein the circuit A further comprises an isolated DC/DC convertor A or a transformer A, the circuit B further comprises an isolated DC/DC convertor B or a transformer B, and the circuit C further comprises an isolated DC/DC convertor C or a transformer C so that the battery pack A, the battery pack B, and the battery pack C are electrically isolated from one another, wherein the plurality of inverters A are tandemly connected to form a power unit group A, the plurality of inverters B are tandemly connected to form a power unit group B, and a plurality of inverters C are tandemly connected to form a power unit group C, wherein the power unit group A is connected to an A phase line and a neutral line of the three-phase transformer, the power unit group B is connected to a B phase line and the neutral line of the three-phase transformer, and the power unit group C is connected to a C phase line and the neutral line of the three-phase transformer, and wherein an SOC difference among the battery packs A of the plurality of flow battery units is reduced by adjusting a voltage of the AC side of each power unit of the power unit group A; an SOC difference among the battery packs B of the plurality of flow battery units is reduced by adjusting a voltage of the AC side of each power unit of the power unit group B; an SOC difference among the battery packs C of the respective flow battery systems is reduced by adjusting a voltage of the AC side of each power unit of the power unit group C.
2. The flow battery energy storage device according to claim 1, wherein two ends of a primary winding of the transformer A are connected to the A phase line and the neutral line of the three-phase transformer respectively and a secondary winding of the transformer A is coupled to the AC side of the inverter A.
3. The flow battery energy storage device according to claim 1, wherein all power units in the power unit group A have the same input/output parameters; all power units comprised in the power unit group B have the same input/output parameters; all power units comprised in the power unit group C have the same input/output parameters; the power unit comprises an H-bridge conversion circuit.
4. The flow battery energy storage device according to claim 1, wherein: in a charging process, by adjusting a voltage of the AC side of each power unit of the power unit group A, the power absorbed by the battery pack whose SOC value meets a first preset condition is lower than the power adsorbed by the battery pack whose SOC value meets a second preset condition among multiple battery packs A; by adjusting a voltage of the AC side of each power unit of the power unit group B, the power absorbed by the battery pack whose SOC value meets the first preset condition is lower than the power adsorbed by the battery pack whose SOC value meets the second preset condition among multiple battery packs B; by adjusting a voltage of the AC side of each power unit of the power unit group C, the power absorbed by the battery pack whose SOC value meets the first preset condition is lower than the power adsorbed by the battery pack whose SOC value meets the second preset condition among multiple battery packs C; in a discharging process, by adjusting the voltage of the AC side of each power unit of the power unit group A, the power released by the battery pack whose SOC value meets the first preset condition is higher than the power released by the battery pack whose SOC value meets the second preset condition among multiple battery packs A; by adjusting a voltage of the AC side of each power unit of the power unit group B, the power released by the battery pack whose SOC value meets the first preset condition is higher than the power released by the battery pack whose SOC value meets the second preset condition among multiple battery packs B; by adjusting a voltage of the AC side of each power unit of the power unit group C, the power released by the battery pack whose SOC value meets the first preset condition is higher than the power released by the battery pack whose SOC value meets the second preset condition among multiple battery packs C.
5. The flow battery energy storage device according to claim 4, wherein the i.sup.th power unit in the power unit group A is modulated by modulating wave ΔV.sub.CAi=k.sub.1.Math.k.sub.2.Math.ΔSOC.sub.Ai.Math.V.sub.CA; the i.sup.th power unit in the power unit group B is modulated by modulating wave ΔV.sub.CBi=k.sub.1.Math.k.sub.2.Math.ΔSOC.sub.Bi.Math.V.sub.CB; the i.sup.th power unit in the power unit group C is modulated by modulating wave ΔV.sub.CCi=k.sub.1.Math.k.sub.2 ΔSOC.sub.Ci.Math.V.sub.CC; wherein, ΔV.sub.CAi is the modulating wave for modulating the i.sup.th power unit in the power unit group A; ΔV.sub.CBi is the modulating wave for modulating the i.sup.th power unit in the power unit group B; ΔV.sub.CCi is the modulating wave for modulating the i.sup.th power unit in the power unit group C;
6. The flow battery energy storage device according to claim 1, wherein the battery pack A, the battery pack B, and the battery pack C each comprises a plurality of fuel cell stacks that are serially connected, and the electrolyte circulation system comprises a positive electrolyte storage tank, a negative electrolyte storage tank, and an electrolyte circulation pipeline.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4) Wherein, 1—flow battery system; 2—power unit group A; 3—DC/DC isolated conversion module; 4—power unit group B; 5—power unit group C; 6—transformer A; 7—transformer B; 8—transformer C.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) A flow battery system 1 as shown in
(6) A large-scale flow battery energy storage device as shown in
(7)
k.sub.2=0-2; ΔSOC.sub.Ai=SOC.sub.A−SOC.sub.Ai, wherein SOC.sub.A is a SOC average value of the multiple battery packs A,
(8)
SOC.sub.Ai is a SOC value of the i.sup.th battery pack A; V.sub.CA is an A phase voltage; SOC.sub.B is an SOC average value of the multiple battery packs B,
(9)
SOC.sub.Bi is a SOC value of the i.sup.th battery pack B; V.sub.CB is a B phase voltage; SOC.sub.C is a SOC average value of the multiple battery packs C,
(10)
SOC.sub.Ci is an SOC value of the i.sup.th battery pack C; V.sub.CC is a C phase voltage; i=1, 2, . . . n; I.sub.d is a total current of the DC side of the energy storage converter. The first preset condition may be that a SOC value of the battery pack X is higher than or equal to an average value of SOC values of multiple battery packs X. The battery pack X is the battery pack A, the battery pack B or the battery pack C; that is, for the multiple battery packs A, during the charging process, the power absorbed by some of the battery packs A among the multiple battery packs A is lower than the power absorbed by the remaining battery packs A; and during the discharging process, the power released by some of the battery packs A is higher than the power released by the remaining battery packs A. Here, the SOC values of the some of the battery packs A are higher than or equal to the average value of the SOC values of the multiple battery packs A, and the SOC values of the remaining battery packs A are lower than the average value of the SOC values of the multiple battery packs A. Similarly, for multiple battery packs B, during the charging process, the power absorbed by some of the battery packs B among the multiple battery packs B is lower than the power absorbed by the remaining battery packs B; and during the discharging process, the power released by some of the battery packs B is higher than the power released by the remaining battery packs B. Here, the SOC values of the some of the battery packs B are higher than or equal to the average value of the SOC values of the multiple battery packs B, and the SOC values of the remaining battery packs B are lower than the average value of the SOC values of the multiple battery packs B. For multiple battery packs C, during the charging process, the power absorbed by some of the battery packs C among the multiple battery pack C is lower than the power absorbed by the remaining battery packs C; and during the discharging process, the power released by some of the battery packs C is higher than the power released by the remaining battery packs C. Here, the SOC values of the some of the battery packs C are higher than or equal to the average value of the SOC values of the multiple battery packs C, and the SOC values of the remaining battery packs C are lower than the average value of the SOC values of the multiple battery packs C.
(11) A transformation ratio Ki of each secondary winding of the transformer A 6, the transformer B 7 or the transformer C 8 of the present disclosure may be determined according to system requirements; multiple battery packs constitutes a battery matrix. Each row of the matrix is an independently controllable flow battery. The flow battery system 1 comprises multiple flow batteries, The circuit connection of multiple flow batteries is implemented by means of series connection of energy storage converters or transformers in each set of flow batteries, each row of battery packs is electrically isolated and is equipotential. According to the present disclosure, the phases A, B and C are isolated by using multi-tapped transformer or energy storage converter, and are thus equipotential; the corresponding power units and the flow battery units are also equipotential in the circuit, and are independent of each other in the circuit. The battery pack A, the battery pack B and the battery pack C share a set of electrolyte circulation system and a set of storage tanks, that is, the capacities of the flow batteries on the three phases A, B and C are completely identical, i.e., there is only one SOC capacity in the same level, and SOC does not need to be adjusted, thereby ensuring that the outputs of the three phases A, B and C are the same exactly, accompanied with three-phase equalization and stable operation of AC outputs of the system. In addition, the power units are shared in three phases A, B and C of the same level. In addition, the energy storage device also has a certain redundancy function, when there is malfunction in any of the flow batteries, it can be switched off by a circuit breaker to ensure that the remaining flow batteries operate properly.
(12)
(13) The flow battery system and the large-scale flow battery energy storage device as provided by the present disclosure can maintain a reference potential of each battery pack unchanged and relatively save the cost of the energy storage inverter, without requiring a higher pressure resistant design. Each flow battery connected with the power unit group A, the power unit group B and the power unit group C constitutes a level together. The powers of the battery packs comprised in different levels can be controlled, so that the SOC between the battery packs of different levels can be adjusted, and the problem of SOC inconsistency between different levels is solved. When the SOCs of the battery packs in each of levels have a large difference, the SOCs may be tend to be converged by controlling the energy storage converter. When expanding the flow battery system, it is only need to increase the power of the single battery pack, and the charge and discharge currents are unchanged. At least two sets of electrolyte circulation systems are saved under the same power scale, improve the system stability while saving the cost. The flow batteries do not need to be connected in series and in parallel many times, which can greatly reduce the leakage current of the electrolyte and improve the overall efficiency and safety of the flow batteries. Compared with other topological energy storage systems under the same capacity and voltage conditions, the DC voltage and current of the battery clusters connected by this structure are lower, which reduces the scale of series-parallel connection of the flow batteries and reduces the impact of the battery cask effect on a large-capacity battery energy storage system.
(14) The above content only refers to preferred embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any equivalents or modifications of the technical solutions and the inventive concepts thereof within the technical disclosed by the present disclosure are intended to be included within the protection scope of the present disclosure.