This paper investigates the discovery potential of a new resonance state at 32 TeV in high-energy proton-proton collisions, a critical energy scale for exploring beyond the Standard Model (BSM) physics. We systematically analyze the production mechanisms of the 32 TeV resonance, focusing on gluon fusion (gg→R) and vector boson fusion (qq→qqR) processes, and calculate their respective production cross sections under different BSM frameworks. The resonance's decay channels—including dilepton (R→ll)、dijet (R→jj) and multi-boson (R→VV) final states—are evaluated for detectability at future high-luminosity colliders. Through Monte Carlo simulations and statistical analysis, we demonstrate that the 32 TeV resonance can be identified with a significance exceeding 5σ via optimized event selection and background suppression techniques, comparable to the discovery threshold of known heavy resonances like the Higgs boson. We also discuss the resonance's physical implications, including its potential as a signature of supersymmetry or extra dimensions, and provide quantitative guidance for experimental searches in upcoming collider programs. This work lays a foundation for verifying new physics at the 32 TeV scale and bridging the gap between theoretical predictions and experimental detection.
lei guan (Sat,) studied this question.