IP Library Granted Patent US 12695303
Granted Patent B1
US 12695303 · App. 18/592,515 · Granted Jul 28, 2026

Optimal control theory approach for power grid EMP protection

Inventors: Timothy James Donnelly (Albuquerque, NM); David G. Wilson (Tijeras, NM); Rush Robinett, III (Tijeras, NM); Wayne Weaver (Hancock, MI)
Assignees: National Technology & Engineering Solutions of Sandia, LLC; Michigan Technological University
H02J3/00125H02J2103/30
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Quick Facts
Patent No.
US 12695303
App. No.
18/592,515
Granted
Jul 28, 2026
Kind
B1
Abstract

A high altitude electromagnetic pulse (HEMP) or solar-geomagnetic disturbance (GMD) can introduce geomagnetically-induced currents (GICs) flowing through grounded power transformers that have the potential to severely impact the operation of large-scale electric power grids. A top-down mitigation design strategy considers grid-wide dynamic behavior during an HEMP/GMD event and uses optimal control theory to determine the compensation signals required to protect critical grid assets. As examples, the approach is applied to both a standalone transformer system, small power 3- and 4-bus systems, and large-power 20-bus system.

Claims (96)

1 . An electric power grid, comprising:

at least one transformer comprising a transformer core and a transformer neutral, wherein a low frequency current pulse generates a magnetizing flux in the transformer core;

a blocking device comprising a voltage source providing a neutral-path control signal between the transformer neutral and ground; and

a flux-blocking device comprising a current source providing a magnetizing-path control signal to the transformer core;

wherein the neutral-path control signal and the magnetizing-path control signal are optimized to keep the magnetizing flux below a saturation limit in response to the low frequency current pulse.

2 . The electric power grid of claim 1 , wherein the transformer core is characterized by a nonlinear magnetizing inductance.

3 . The electric power grid of claim 1 , wherein the low frequency current pulse comprises a geomagnetically-induced current.

4 . The electric power grid of claim 1 , wherein the low frequency current pulse has a frequency of less than 1 Hz.

5 . The electric power grid of claim 1 , wherein the blocking device comprises a linear quadratic regulator or an optimized controller based on the saturation limit.

6 . The electric power grid of claim 1 , wherein the blocking device comprises a blocking capacitor.

7 . The electric power grid of claim 1 , wherein the at least one of the neutral-path and magnetizing-path control signals is optimized by minimizing an objective function, J, according to

min

x

(

t

)

,

u

(

t

)

J

=

t

0

t

f

F

(

x

(

t

)

,

u

(

t

)

,

t

)

dt

such that,

x

˙

(

t

)

=

f

(

x

(

t

)

,

u

(

t

)

)

lb

g

(

x

(

t

)

,

u

(

t

)

)

u

b

where F is a cost function, {dot over (x)}=f(⋅) is a system dynamic equation, u(t) is the control signal, t f is a pulse interval, g(⋅) is the magnetizing flux lm, lb is a negative saturation limit, and ub is a positive saturation limit.

8 . The electric power grid of claim 1 , wherein the at least one transformer comprises a generator transformer and at least one load transformer, and wherein a low-frequency electromagnetic pulse is coupled to a transmission line connecting the generator transformer to the at least one load transformer.

9 . The electric power grid of claim 8 , wherein the at least one load transformer comprises two or more load transformers in parallel and wherein each of the load transformers has a separate blocking device and/or flux-blocking device providing a separate neutral-path control signal and/or magnetizing-path control signal for each of the load transformers.

10 . The electric power grid of claim 8 , wherein the at least one load transformer comprises two or more load transformers in parallel and wherein the neutral-path control signal and/or the magnetizing-path control signal from one of the load transformers is optimized to minimize transformer saturation at a system-level.