IP Library › Granted Patent US 12,633,748
Granted Patent B2
US 12,633,748 · App. 18/402,271 · Granted May 19, 2026

Triple-function battery energy storage system for hybrid microgrid system

Inventors: Mohd Hasan Ali (Germantown, TN); Morteza Davirankeshavarzi (Memphis, TN)
H02J3/32H02J3/381H02J3/48H02J2300/22
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Quick Facts
Patent No.
US 12,633,748
App. No.
18/402,271
Granted
May 19, 2026
Kind
B2
Abstract

An improved “3-in-1” BESS that performs three functions: (1) improving the transient stability in a hybrid AC/DC microgrid (HMG) system during any fault; (2) improving power quality in the HMG during any sudden load change; and (3) mitigating power and frequency fluctuations due to variations in wind speed and solar irradiance in the HMG. The same control and structural design is used for all three functions, and the improved BESS thus is adaptive to the changing operating situations within the HMG, and eliminates the requirement for a number of higher cost auxiliary control devices. The control structure of the improved BESS is simple, so it is easier and cheaper to manufacture, and can be easily implemented in practice, and retro-fit into existing HMGs.

Claims (71)

1 . A hybrid microgrid system with improved battery energy storage, comprising:

a hybrid AC/DC microgrid comprising an AC sub-grid and a DC sub-grid, said AC sub-grid comprising a variable speed wind generator and a diesel generator, and said DC sub-grid comprising an array of photovoltaic solar panels; and

a triple function battery energy storage system connected via a bi-directional inverter to the AC sub-grid or the DC sub-grid, the inverter controlled to transfer power between the battery energy storage system to the AC sub-grid or the DC sub-grid by a controller providing switch control signals to the inverter and one or more of said variable speed wind generator, diesel generator, and array of photovoltaic solar panels, said triple function battery energy storage system comprising a dual loop decoupled control system implementing a droop-based control method and a grid-feeding strategy;

wherein said dual loop decoupled control system is implemented in a Rotational Reference Frame dq system, where d axis corresponds to active power control and q axis corresponds to reactive power control;

wherein the droop-based control system uses P-w and Q-V droops, where w is AC sub-grid voltage, V is AC sub-grid frequency, P is active power, and Q is reactive power;

wherein the control system is configured to track power references for active power, P ref and reactive power, Q ref , where power references are defined as

P

ref

=

P

*

-

m

p

(

ω

-

ω

*

)

⁢

Q

ref

=

Q

*

-

n

q

(

V

-

V

*

)

(

1

)

m

p

≥

P

max

-

P

min

ω

*

⁢

n

p

≥

V

max

-

V

min

V

*

(

2

)

wherein P* is a received active power reference value, Q* is a received reactive power reference value, ω* is a voltage rated set point of the AC sub-grid, V* is a frequency rated set point of the AC sub-grid, Pmax is a maximum active power value, Pmin is a minimum active power value, Vmax is a maximum AC sub-grid frequency value, Vmin is a minimum AC sub-grid frequency value, and mp and nq are droop gains for power sharing; and

wherein the control system is configured to control the active power and reactive power absorbed and injected by the inverter with the hybrid AC/DC microgrid; and

wherein said control system is adapted to reduce frequency fluctuations and power fluctuations in the hybrid AC/DC microgrid during a change in wind speed or solar irradiance by setting the active power reference value, P*, equal to a power balance mismatch calculated by subtracting a total amount of power supplied to the hybrid AC/DC microgrid from a total load power drawn from the hybrid AC/DC microgrid, and setting the reactive power reference value, Q*, equal to zero, to thereby control the battery energy storage system inverter to absorb or inject the amount of power balance mismatch between load and generation.

2 . The system of claim 1 , wherein the hybrid AC/DC microgrid does not include a series dynamic braking resistor (SDBR) or a fault current limiter.

3 . The system of claim 1 , wherein said control system is adapted to control the inverter output to track the droop adjusted active and reactive power references in order to maintain transient stability during any fault condition in the hybrid AC/DC microgrid and during a change in load in the hybrid AC/DC microgrid.

4 . The system of claim 1 , wherein the battery energy storage system is configured as an active power device to control the flow of energy in the hybrid AC/DC microgrid.

5 . The system of claim 1 , wherein the control system further comprises proportional-integer (PI) controllers.

6 . The system of claim 5 , wherein the PI controllers operate based on a set of PI regulator coefficients: Kp, Ki.

7 . The system of claim 6 , wherein the set of PI regulator coefficients remains constant during any type of disturbance to the hybrid AC/DC microgrid.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 14, 2025
From: UNIVERSITY OF MEMPHIS
To: THE UNIVERSITY OF MEMPHIS RESEARCH FOUNDATION
Reel/Frame 072558/0144 →
Continuity (3)
Continuation In Part 17068679 · Oct 12, 2020
Provisional Application 62914295 · Oct 11, 2019
Related Publication 20240154420A1 · May 9, 2024
References Cited (6)
US 20160087475A1 · Kang · 2016 [cited by examiner]
US 20200064782A1 · Li · 2020 [cited by examiner]
US 20210194383A1 · Tsuruma · 2021 [cited by examiner]
Jianwei Li, Rui Xiong, Qingqing Yang, Fei Liang, Min Zhang, Weijia Yuan, “Design/test of a hybrid energy storage system for primary frequency control using a dynamic droop method in an isolated microgrid power system”, … [cited by examiner]
M. D. Keshavarzi and M. H. Ali, “Disturbance Resilience Enhancement of Islanded Hybrid Microgrid Under High Penetration of Renewable Energy Resources by BESS,” Oct. 12, 2020, 2020 IEEE/PES Transmission and Distribution … [cited by examiner]
X. Li, Z. Li, L. Guo, J. Zhu, Y. Wang and C. Wang, “Enhanced Dynamic Stability Control for Low-Inertia Hybrid AC/DC Microgrid With Distributed Energy Storage Systems,” Jul. 5, 2019, in IEEE Access, vol. 7, pp. 91234-912… [cited by examiner]