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


VZIMAN Z-type Grounding Transformer Solution: Eliminating Grid Risks in Ungrounded Systems​

Vziman
4yrs + staff 10000+m² US$0+ China

1. Solution Background
In 6kV~36kV distribution networks, delta-connected transformer windings lack a neutral grounding point. ​VZIMAN® Grounding Transformer ​addresses this by creating an artificial neutral through Z-type winding topology. This design prevents critical risks during single-phase ground faults, including:

  • Overvoltage hazards​(>2.5x line voltage in ungrounded systems)
  • Persistent fault currents​causing equipment degradation
  • Protection device failure​due to insufficient fault current detection

Grounding Transformer​ enables:

  • System grounding protection with <10Ω zero-sequence impedance
  • Overvoltage suppression via low-impedance fault current release
  • Neutral voltage measurement (30~70V) for full-cable networks

2 . Core Advantages

2.1 Technical Leadership

  • Z-Winding Physics (ZNyn Type)​:

Each phase splits into two reversely wound coils (Zig-Zag configuration), canceling zero-sequence flux → ​No-load losses reduced by 40%​ conventional transformers.

Zero-sequence impedance ​<10Ω​(vs. >600Ω in star-delta transformers), enabling >90% arc suppression coil utilization.

  • Flexible Grounding Transformer Configurations:

Dry-type (AN/AF cooling) or oil-immersed (ONAN/ONAF)

Short-time withstand: ​10s@3000A​(customizable to 60s)

2.2 Multifunctional Integration

  • Dual-Purpose Design:

Replaces station service transformers by carrying secondary loads while providing neutral grounding, cutting equipment costs by 25%.

  • Adaptive Neutral Control:

Generates ​30–70V measurable voltage​in full-cable networks (low unbalanced voltage).

Balanced 3-phase windings maintain accuracy under ​**>15% voltage unbalance**.

2.3 High-Reliability Engineering

  • Extreme Environment Resilience:

Operational range: ​-40℃ ~ +40℃​| Altitude: ​1000m​ (insulation customizable for 4000m)

100% humidity tolerance with IP54+ protection

3. Grounding Transformer Application Scenarios

Scenario

Grounding Transformer Solution

6kV~10kV Distribution

Provides low-impedance neutral (<10Ω) for delta systems → Direct arc suppression coil connection

35kV+ Systems

Cooperates with Y-winding transformers to optimize neutral grounding in hybrid grids

Industrial Sites

Custom windings for high unbalance/full-cable networks → Neutral voltage stabilization (30~70V)

Smart Substations

Integrated CT/VT + isolation switches → Real-time ground fault analytics

4. Grounding Transformer Specifications

Parameter

Value

Type

Zig-Zag (ZNyn)

/ Dry or oil-immersed

Rated Voltage

≤36kV

Zero-Seq Impedance

<10Ω (vs. industry avg. >600Ω)

Cooling Methods

ONAN (oil)/ONAF (oil+fan)/AN (dry)/AF (dry+fan)

Note: All Grounding Transformers include IEC 60076-1/6 certification, de-energized tap changers, and HV/LV bushings.

5. Service Commitment

  • Onsite Engineering: Certified engineers support installation, commissioning, and arc suppression coil coordination.
  • Rapid Response:

Tel: +86(577) 27869969 (Barry) | Email: support@vziman.com

  • Lifecycle Management: IEC-compliant maintenance + fault diagnostics for ​Grounding Transformer
06/14/2025
Recommended
Analysis of Advantages and Solutions for Single-Phase Distribution Transformers Compared to Traditional Transformers
1. Structural Principles and Efficiency Advantages​1.1 Structural Differences Affecting Efficiency​Single-phase distribution transformers and three-phase transformers exhibit significant structural differences. Single-phase transformers typically adopt an E-type or ​wound core structure, while three-phase transformers use a three-phase core or group structure. This structural variation directly impacts efficiency:The wound core in single-phase transformers optimizes magnetic flux distribution, ​
Integrated Solution for Single Phase Distribution Transformers in Renewable Energy Scenarios: Technical Innovation and Multi-Scenario Application
1. Background and Challenges​The distributed integration of renewable energy sources (photovoltaics (PV), wind power, energy storage) imposes new demands on distribution transformers:​Volatility Handling:​​Renewable energy output is weather-dependent, requiring transformers to possess high overload capacity and dynamic regulation capabilities.​Harmonic Suppression:​​Power electronic devices (inverters, charging piles) introduce harmonics, leading to increased losses and equipment aging.​Multi-Sc
Single-Phase Transformer Solutions for SE Asia: Voltage, Climate & Grid Needs
1. Core Challenges in the Southeast Asian Power Environment​1.1 ​Diversity of Voltage Standards​Complex voltages across Southeast Asia: Residential use often 220V/230V single-phase; industrial zones require 380V three-phase, but non-standard voltages like 415V exist in remote areas.High-voltage input (HV): Typically 6.6kV / 11kV / 22kV (some countries like Indonesia use 20kV).Low-voltage output (LV): Standardly 230V or 240V (single-phase two-wire or three-wire system).1.2 ​Climate and Grid Condi
Pad-Mounted Transformer Solutions: Superior Space Efficiency and Cost Savings over Traditional Transformers
1.Integrated Design & Protection Features of American-Style Pad-Mounted Transformers1.1 Integrated Design ArchitectureAmerican-style pad-mounted transformers employ a combined design integrating key components - transformer core, windings, high-voltage load switch, fuses, arresters - within a single oil tank, using transformer oil as both insulation and coolant. The structure consists of two main sections:​Front Section:​​High & Low Voltage Operation Compartment (with elbow plug-in conne
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.