Engineering PapersSearch

DOE OSTI · 3009796

Feedforward equilibrium trajectory optimization with GSPulse

Abstract

One of the common tasks required for designing new plasma scenarios or evaluating capabilities of a tokamak is to design the desired equilibria using a Grad-Shafranov (GS) equilibrium solver. However, most standard equilibrium solvers are time-independent and do not include dynamic effects such as plasma current flux consumption, induced vessel currents, or voltage constraints. Another class of tools, plasma equilibrium evolution simulators, do include time-dependent effects. These are generally structured to solve the forward problem of evolving the plasma equilibrium given feedback-controlled voltages. In this work, we introduce GSPulse, a novel algorithm for equilibrium trajectory optimization, that is more akin to a pulse planner than a pulse simulator. GSPulse includes time-dependent effects and solves the inverse problem: given a user-specified set of target equilibrium shapes, as well as limits on the coil currents and voltages, the optimizer returns trajectories of the voltages, currents, and achievable equilibria. This task is useful for scoping performance of a tokamak and exploring the space of achievable pulses. The computed equilibria satisfy both Grad-Shafranov force balance and axisymmetric circuit dynamics. The optimization is performed by restructuring the free-boundary equilibrium evolution equations into a form where it is computationally efficient to optimize the entire dynamic sequence. GSPulse can solve for hundreds of equilibria simultaneously within a few minutes. GSPulse has been validated against NSTX-U and MAST-U experiments and against SPARC feedback control simulations, and is being used to perform scenario design for SPARC. The computed trajectories can be used as feedforward inputs that are connected to the feedback controller to inform and improve feedback performance. The code for GSPulse is available open-source at github.com/jwai-cfs/GSPulse_public.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Wai, J. T. [Commonwealth Fusion Systems, Cambridge, MA (United States)] (ORCID:0000000227508707), Boyer, M. D. [Commonwealth Fusion Systems, Cambridge, MA (United States)] (ORCID:0000000268459155), Battaglia, D. J. [Commonwealth Fusion Systems, Cambridge, MA (United States)] (ORCID:0000000188979740), Merle, A. [Ecole Polytechnique Federale Lausanne (EPFL) (Switzerland)] (ORCID:0000000318315644), Carpanese, F. [Ecole Polytechnique Federale Lausanne (EPFL) (Switzerland)] (ORCID:000000020488657X), Felici, F. [Google Deepmind, London (United Kingdom)] (ORCID:000000017585376X), Kochan, M. [UK Atomic Energy Authority (UKAEA), Culham (United Kingdom). Culham Centre for Fusion Energy (CCFE)] (ORCID:0009000796165828), Kolemen, E. [Princeton Univ., NJ (United States); Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States)] (ORCID:0000000342123247). 2025-12-08. Feedforward equilibrium trajectory optimization with GSPulse. https://doi.org/10.1088/1741-4326%2Fae203c

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related reports

Large-scale tearing-mode hazard function analysis with standard matched equilibrium reconstructions

The association between features from standard tokamak equilibrium reconstructions and the onset of n = 1 tearing modes (TMs) is analyzed at scale. The TM onset rate is directly modeled with a ‘hazard’ function which gives the expected number of onsets (per unit time spent) in a given equilibrium parameter region. In particular the different statistical modeling performance achieved for magnetics-only reconstructions and motional Stark effect (MSE) enhanced reconstructions is studied. It is observed that a better hazard model for the TM onset rate can be built with the MSE-enhanced equilibria compared to the matched magnetics-only situation. This advantage disappears if internal profile details are withheld from the matched analysis. Plausibility of the hazard function is further demonstrated with visualizations of global trends in the operational space, and time-traces from specific tokamak discharges. As a result, TMs typically degrade tokamak plasma performance and may lead to plasma termination, motivating this statistical study.

equilibrium