• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


GIS Voltage Transformer Intelligent Operation and Maintenance Solution: IoT-Based Predictive Maintenance System

Rockwill
17yrs 700++ staff 108000m²+m² US$150,000,000+ China

1.Challenges:
Traditional voltage transformers (VTs) within GIS equipment often require high-frequency manual inspections, presenting three core pain points:

  • Delayed Detection of Potential Failures:​ The enclosed gas-insulated structure (GIS) makes early fault indicators like internal partial discharge (PD), minor SF6 gas density drops, and abnormal temperature rises difficult to visually detect or find via conventional methods.
  • Low Response Efficiency:​ Long manual inspection cycles (weeks/months) mean sudden failures like insulation breakdown or gas leaks often occur without warning, leading to unplanned outages.
  • High O&M Costs:​ Preventive testing and routine maintenance consume significant manpower and resources, with risks of both over-maintenance and under-maintenance.

2. Solution: IoT-Based Predictive Maintenance System
Addressing these challenges, this solution establishes an intelligent monitoring network covering the entire lifecycle of GIS-VTs:

(1) Comprehensive Sensing Layer:

  • Precision Deployment:​ Embed/attach high-precision sensors to key VT nodes (e.g., high-voltage connections, near spacers, gas compartment body):
    • Partial Discharge (PD) Sensors: High-frequency CT or Ultra-High-Frequency (UHF) sensors detect real-time insulation degradation signals.
    • Gas Density & Moisture Sensors: Continuously track changes in SF6 gas pressure, density, and moisture content.
    • Temperature Sensors: Monitor abnormal temperature rise points at conductor connections and enclosures.
  • Reliable Transmission:​ Sensor data is transmitted in real-time via device-embedded IoT gateways using industrial-grade wireless/fiber optic networks to a cloud monitoring platform, ensuring data timeliness and integrity.

(2) AI-Powered Analytics Platform:

  • Big Data Fusion:​ The platform integrates real-time monitoring data with multi-dimensional information such as historical operation/maintenance records, fault databases of similar equipment, and environmental conditions (load, temperature).
  • AI Diagnostic Engine:
    • Feature Extraction: Automatically identifies PD patterns (e.g., floating discharges, surface discharges), gas leakage trend curves, and temperature anomaly correlation maps.
    • Deep Learning Prediction: Employs algorithms like LSTM and Random Forest to build fault prediction models, quantitatively assessing component health indices (HI) and remaining useful life (RUL).
    • Precise Early Warning: Predicts critical failures like "insulator surface discharge degradation" or "gas micro-leakage due to seal ring aging" at least 7 days in advance, with an early warning accuracy rate exceeding 92%.

(3) Visualized O&M Dashboard:

  • Panoramic Visualization:​ Provides multi-level (GIS equipment, bay, individual VT) health status overviews, supporting one-stop management of asset records, real-time data, historical trends, and alarm information.
  • Intelligent Work Order Dispatch:​ Generates and dispatches precise maintenance work orders based on warning levels and prediction results (e.g., "Phase A VT: Recommend PD retesting and seal inspection within 3 days"), optimizing resource allocation.
  • Knowledge Accumulation:​ Automatically generates fault analysis reports, continuously builds an O&M knowledge base, and drives model optimization.

3. Key Benefits

Indicator

Improvement

Realized Value

Equipment Reliability

≥40% reduction in sudden failure rate

Prevents major outages, ensures grid backbone stability

O&M Efficiency

35% reduction in unplanned repair orders

Staff focus on critical areas, efficiency multiplied

O&M Costs

≥25% reduction in overall O&M costs

Reduces ineffective inspections & over-maintenance, optimizes spare parts inventory

Equipment Availability

≥99.9% annual comprehensive availability

Supports grid's high power supply reliability targets

Decision Making

Data-driven precision decisions

Transitions from "scheduled maintenance" to "precision maintenance", extends equipment life

4. Reference Case

  • 500kV Hub Substation GIS Equipment Cluster:​ Following system deployment, successfully provided early warnings for 3 potential VT insulation faults (2 floating discharges, 1 gas compartment seal anomaly), with lead times of 8-14 days, averting significant economic losses. Annual maintenance costs reduced by 28%, and equipment forced outage frequency dropped to zero.
07/11/2025
Recommended
Application of New DC Circuit Breakers in Short-Circuit Fault Protection
I. Introduction​With the rapid advancement of modern information technology, intelligence has become a major trend in the development of industrial equipment. In the field of high-voltage switching, intelligent circuit breakers—as critical control components in power systems—form the foundation for automation and intelligence in power systems. This study focuses on an intelligent DC circuit breaker based on single-chip microcomputer (SCM) technology, emphasizing its practical applica
Application Solutions of DC Circuit Breakers in the New Energy Sector
I. Overview​With the rapid development of new energy power generation and electric vehicle (EV) charging facilities, DC systems have imposed higher requirements for safety protection equipment. Traditional AC circuit breakers cannot effectively interrupt DC fault currents, creating an urgent need for specialized DC circuit breaker solutions. This solution provides professional protection configurations for two major application scenarios: photovoltaic (PV) power generation systems and EV chargin
Low-Cost, Low-Loss DC Arc-Free Circuit Breaker Solution for Rail Transit
I. Solution Overview​This solution addresses the protection needs of DC systems (particularly rail transit traction power supply) against short-circuit faults by proposing a DC circuit breaker solution based on optimized mechanical breaker structure. It achieves arc-free interruption through capacitor voltage control, combining low on-state loss and high reliability, making it suitable for frequent operation scenarios.​II. Core Principle​Utilizes a fast mechanical switch topology combined with p
PEBS Circuit Breaker DC Safety Solution
Solution Overview​In modern renewable energy power systems, such as photovoltaic (PV) power generation and energy storage systems, fault protection on the DC side is a core element for ensuring safe, stable, and efficient operation. The Projoy PEBS series DC miniature circuit breakers are specifically designed for such applications, providing a comprehensive and efficient solution integrating arc control, overload protection, and short-circuit protection. This solution aims to deliver the highes
Seed Inquiry
Download
Get the IEE Business Application
Use the IEE-Business app to find equipment, obtain solutions, connect with experts, and participate in industry collaboration anytime, anywhere—fully supporting the development of your power projects and business.