Skip to content
Open access

Digital-twin-enabled intelligent operation and maintenance for telescope-drive systems under extreme environments

Aug 2026 · Journal of Astronomical Telescopes Instruments and Systems · 0 citations

Abstract

Telescope-drive systems are a critical but underdiscussed foundation of astronomical performance because they determine whether commanded motion can be converted into stable pointing, smooth tracking, and long-duration operational availability. This challenge is becoming more acute in next-generation observatories, where direct-drive architectures, extreme environmental exposure, sparse fault data, and restricted maintenance access make conventional reliability assumptions increasingly inadequate. We synthesize the emerging literature on intelligent operation and maintenance (O&M) for telescope-drive systems, with particular emphasis on extreme-environment and unattended scenarios, and organize the field across five linked stages: state perception, fault diagnosis, behavior prediction, safety protection, and intelligent decision-making. We argue that digital twin provides the most coherent architecture for binding these stages into a closed-loop health-management framework; reframe telescope-drive reliability as a telescope-systems problem spanning sensing, control, degradation, and operational decision; place the unanticipated state at the center of telescope intelligent O&M; and evaluate current astronomical evidence across representative observatories and telescope projects. The main conclusion is that near-term progress depends on telescope-specific unanticipated-state definitions, condition-aware twins validated against laboratory and field evidence, sparse-data diagnosis that preserves uncertainty, and graded protection and decision logic suited to remote observatory operation.

Read PDF

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.