The Tokamak à configuration variable (TCV) is equipped with an advanced set of diagnostics for studying suprathermal electron dynamics. Among these, the vertical electron cyclotron emission (VECE) diagnostic offers valuable insights into the electron energy distribution by measuring electron cyclotron emission (ECE) along a vertical line-of-sight. However, reconstructing the electron distribution from ECE measurements is inherently challenging due to harmonic overlap and thermal radiation noise. A more practical approach leverages forward modelling of ECE based on kinetic simulations. To this end, we introduce Yoda, a novel synthetic ECE diagnostic framework that simulates emission and (re)absorption of electron cyclotron (EC) radiation for arbitrary electron distributions and antenna geometries. The framework is validated against the well-established synthetic ECE code Spece, using an ohmic TCV discharge as a reference case. In this study, the 3D bounce-averaged Fokker–Planck code Luke is used to model electron distributions in two EC current drive experiments. The synthetic spectra generated using the combined Luke-Yoda framework successfully reproduce the main features of the experimental VECE measurements in both simulated discharges. The combination of kinetic and synthetic ECE simulations allow the identification of the features in the electron distribution function which give rise to certain signatures in the VECE signal.
Tokamak à configuration variable(TCV)は、超熱電子ダイナミクスを研究するための高度な診断装置群を備えている。これらのうち、垂直電子サイクロトロン放射(VECE)診断は、垂直視線に沿って電子サイクロトロン放射(ECE)を測定することにより、電子エネルギー分布に関する