Jian Wang, Xiaodong Yin, Hao Liu, Junjie Liu, Jian Liu, Shuhui Yi, Jiahao Sun, Junjun Huang, Wenbo Sun
Electronic compensation networks used in high-accuracy inductive voltage dividers (IVDs) can introduce temperature- and aging-dependent drift sources, complicating long-term uncertainty evaluation. This paper presents a 1 kV, 10-tap, compensation-free three-stage IVD that combines multi-stage excitation, a closed shielded core, and equipotential coaxial-cable windings to suppress excitation, magnetic-coupling, and capacitive errors. An integrated reference winding is embedded in the third-stage coaxial-cable winding, enabling a simplified bootstrap self-calibration procedure without an additional auxiliary IVD. At 50 Hz, the calibrated ratio error and phase displacement are within 0.08 μV/V and 0.08 μrad, respectively, for all taps, with expanded uncertainties of 0.04 μV/V and 0.06 μrad. Wideband measurements up to 3 kHz further show that the proposed IVD can serve as a voltage-ratio reference for harmonic voltage measurement and calibration.